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[RT2x00]: add driver for Ralink wireless hardware
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43f66a6c 1/******************************************************************************
bf79451e 2
171e7b2f 3 Copyright(c) 2003 - 2006 Intel Corporation. All rights reserved.
43f66a6c
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4
5 802.11 status code portion of this file from ethereal-0.10.6:
6 Copyright 2000, Axis Communications AB
7 Ethereal - Network traffic analyzer
8 By Gerald Combs <gerald@ethereal.com>
9 Copyright 1998 Gerald Combs
10
bf79451e
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11 This program is free software; you can redistribute it and/or modify it
12 under the terms of version 2 of the GNU General Public License as
43f66a6c 13 published by the Free Software Foundation.
bf79451e
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14
15 This program is distributed in the hope that it will be useful, but WITHOUT
16 ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or
17 FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License for
43f66a6c 18 more details.
bf79451e 19
43f66a6c 20 You should have received a copy of the GNU General Public License along with
bf79451e 21 this program; if not, write to the Free Software Foundation, Inc., 59
43f66a6c 22 Temple Place - Suite 330, Boston, MA 02111-1307, USA.
bf79451e 23
43f66a6c
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24 The full GNU General Public License is included in this distribution in the
25 file called LICENSE.
bf79451e 26
43f66a6c
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27 Contact Information:
28 James P. Ketrenos <ipw2100-admin@linux.intel.com>
29 Intel Corporation, 5200 N.E. Elam Young Parkway, Hillsboro, OR 97124-6497
30
31******************************************************************************/
32
33#include "ipw2200.h"
733482e4 34#include <linux/version.h>
43f66a6c 35
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36
37#ifndef KBUILD_EXTMOD
38#define VK "k"
39#else
40#define VK
41#endif
42
43#ifdef CONFIG_IPW2200_DEBUG
44#define VD "d"
45#else
46#define VD
47#endif
48
49#ifdef CONFIG_IPW2200_MONITOR
50#define VM "m"
51#else
52#define VM
53#endif
54
55#ifdef CONFIG_IPW2200_PROMISCUOUS
56#define VP "p"
57#else
58#define VP
59#endif
60
459d4087 61#ifdef CONFIG_IPW2200_RADIOTAP
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62#define VR "r"
63#else
64#define VR
65#endif
66
67#ifdef CONFIG_IPW2200_QOS
68#define VQ "q"
69#else
70#define VQ
71#endif
72
ee2c4add 73#define IPW2200_VERSION "1.2.2" VK VD VM VP VR VQ
43f66a6c 74#define DRV_DESCRIPTION "Intel(R) PRO/Wireless 2200/2915 Network Driver"
171e7b2f 75#define DRV_COPYRIGHT "Copyright(c) 2003-2006 Intel Corporation"
43f66a6c
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76#define DRV_VERSION IPW2200_VERSION
77
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78#define ETH_P_80211_STATS (ETH_P_80211_RAW + 1)
79
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80MODULE_DESCRIPTION(DRV_DESCRIPTION);
81MODULE_VERSION(DRV_VERSION);
82MODULE_AUTHOR(DRV_COPYRIGHT);
83MODULE_LICENSE("GPL");
84
f6c5cb7c 85static int cmdlog = 0;
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86static int debug = 0;
87static int channel = 0;
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88static int mode = 0;
89
90static u32 ipw_debug_level;
91static int associate = 1;
92static int auto_create = 1;
a613bffd 93static int led = 0;
43f66a6c 94static int disable = 0;
810dabd4 95static int bt_coexist = 0;
bde37d03 96static int hwcrypto = 0;
4bfdb91d 97static int roaming = 1;
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98static const char ipw_modes[] = {
99 'a', 'b', 'g', '?'
100};
d2b83e12 101static int antenna = CFG_SYS_ANTENNA_BOTH;
43f66a6c 102
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103#ifdef CONFIG_IPW2200_PROMISCUOUS
104static int rtap_iface = 0; /* def: 0 -- do not create rtap interface */
105#endif
106
107
e43e3c1e 108#ifdef CONFIG_IPW2200_QOS
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109static int qos_enable = 0;
110static int qos_burst_enable = 0;
111static int qos_no_ack_mask = 0;
112static int burst_duration_CCK = 0;
113static int burst_duration_OFDM = 0;
114
115static struct ieee80211_qos_parameters def_qos_parameters_OFDM = {
116 {QOS_TX0_CW_MIN_OFDM, QOS_TX1_CW_MIN_OFDM, QOS_TX2_CW_MIN_OFDM,
117 QOS_TX3_CW_MIN_OFDM},
118 {QOS_TX0_CW_MAX_OFDM, QOS_TX1_CW_MAX_OFDM, QOS_TX2_CW_MAX_OFDM,
119 QOS_TX3_CW_MAX_OFDM},
120 {QOS_TX0_AIFS, QOS_TX1_AIFS, QOS_TX2_AIFS, QOS_TX3_AIFS},
121 {QOS_TX0_ACM, QOS_TX1_ACM, QOS_TX2_ACM, QOS_TX3_ACM},
122 {QOS_TX0_TXOP_LIMIT_OFDM, QOS_TX1_TXOP_LIMIT_OFDM,
123 QOS_TX2_TXOP_LIMIT_OFDM, QOS_TX3_TXOP_LIMIT_OFDM}
124};
125
126static struct ieee80211_qos_parameters def_qos_parameters_CCK = {
127 {QOS_TX0_CW_MIN_CCK, QOS_TX1_CW_MIN_CCK, QOS_TX2_CW_MIN_CCK,
128 QOS_TX3_CW_MIN_CCK},
129 {QOS_TX0_CW_MAX_CCK, QOS_TX1_CW_MAX_CCK, QOS_TX2_CW_MAX_CCK,
130 QOS_TX3_CW_MAX_CCK},
131 {QOS_TX0_AIFS, QOS_TX1_AIFS, QOS_TX2_AIFS, QOS_TX3_AIFS},
132 {QOS_TX0_ACM, QOS_TX1_ACM, QOS_TX2_ACM, QOS_TX3_ACM},
133 {QOS_TX0_TXOP_LIMIT_CCK, QOS_TX1_TXOP_LIMIT_CCK, QOS_TX2_TXOP_LIMIT_CCK,
134 QOS_TX3_TXOP_LIMIT_CCK}
135};
136
137static struct ieee80211_qos_parameters def_parameters_OFDM = {
138 {DEF_TX0_CW_MIN_OFDM, DEF_TX1_CW_MIN_OFDM, DEF_TX2_CW_MIN_OFDM,
139 DEF_TX3_CW_MIN_OFDM},
140 {DEF_TX0_CW_MAX_OFDM, DEF_TX1_CW_MAX_OFDM, DEF_TX2_CW_MAX_OFDM,
141 DEF_TX3_CW_MAX_OFDM},
142 {DEF_TX0_AIFS, DEF_TX1_AIFS, DEF_TX2_AIFS, DEF_TX3_AIFS},
143 {DEF_TX0_ACM, DEF_TX1_ACM, DEF_TX2_ACM, DEF_TX3_ACM},
144 {DEF_TX0_TXOP_LIMIT_OFDM, DEF_TX1_TXOP_LIMIT_OFDM,
145 DEF_TX2_TXOP_LIMIT_OFDM, DEF_TX3_TXOP_LIMIT_OFDM}
146};
147
148static struct ieee80211_qos_parameters def_parameters_CCK = {
149 {DEF_TX0_CW_MIN_CCK, DEF_TX1_CW_MIN_CCK, DEF_TX2_CW_MIN_CCK,
150 DEF_TX3_CW_MIN_CCK},
151 {DEF_TX0_CW_MAX_CCK, DEF_TX1_CW_MAX_CCK, DEF_TX2_CW_MAX_CCK,
152 DEF_TX3_CW_MAX_CCK},
153 {DEF_TX0_AIFS, DEF_TX1_AIFS, DEF_TX2_AIFS, DEF_TX3_AIFS},
154 {DEF_TX0_ACM, DEF_TX1_ACM, DEF_TX2_ACM, DEF_TX3_ACM},
155 {DEF_TX0_TXOP_LIMIT_CCK, DEF_TX1_TXOP_LIMIT_CCK, DEF_TX2_TXOP_LIMIT_CCK,
156 DEF_TX3_TXOP_LIMIT_CCK}
157};
158
159static u8 qos_oui[QOS_OUI_LEN] = { 0x00, 0x50, 0xF2 };
160
161static int from_priority_to_tx_queue[] = {
162 IPW_TX_QUEUE_1, IPW_TX_QUEUE_2, IPW_TX_QUEUE_2, IPW_TX_QUEUE_1,
163 IPW_TX_QUEUE_3, IPW_TX_QUEUE_3, IPW_TX_QUEUE_4, IPW_TX_QUEUE_4
164};
165
166static u32 ipw_qos_get_burst_duration(struct ipw_priv *priv);
167
168static int ipw_send_qos_params_command(struct ipw_priv *priv, struct ieee80211_qos_parameters
169 *qos_param);
170static int ipw_send_qos_info_command(struct ipw_priv *priv, struct ieee80211_qos_information_element
171 *qos_param);
e43e3c1e 172#endif /* CONFIG_IPW2200_QOS */
b095c381 173
97a78ca9 174static struct iw_statistics *ipw_get_wireless_stats(struct net_device *dev);
b095c381 175static void ipw_remove_current_network(struct ipw_priv *priv);
43f66a6c 176static void ipw_rx(struct ipw_priv *priv);
bf79451e 177static int ipw_queue_tx_reclaim(struct ipw_priv *priv,
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178 struct clx2_tx_queue *txq, int qindex);
179static int ipw_queue_reset(struct ipw_priv *priv);
180
181static int ipw_queue_tx_hcmd(struct ipw_priv *priv, int hcmd, void *buf,
182 int len, int sync);
183
184static void ipw_tx_queue_free(struct ipw_priv *);
185
186static struct ipw_rx_queue *ipw_rx_queue_alloc(struct ipw_priv *);
187static void ipw_rx_queue_free(struct ipw_priv *, struct ipw_rx_queue *);
188static void ipw_rx_queue_replenish(void *);
43f66a6c 189static int ipw_up(struct ipw_priv *);
c4028958 190static void ipw_bg_up(struct work_struct *work);
43f66a6c 191static void ipw_down(struct ipw_priv *);
c4028958 192static void ipw_bg_down(struct work_struct *work);
43f66a6c 193static int ipw_config(struct ipw_priv *);
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194static int init_supported_rates(struct ipw_priv *priv,
195 struct ipw_supported_rates *prates);
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196static void ipw_set_hwcrypto_keys(struct ipw_priv *);
197static void ipw_send_wep_keys(struct ipw_priv *, int);
43f66a6c 198
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199static int snprint_line(char *buf, size_t count,
200 const u8 * data, u32 len, u32 ofs)
43f66a6c
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201{
202 int out, i, j, l;
203 char c;
bf79451e 204
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205 out = snprintf(buf, count, "%08X", ofs);
206
207 for (l = 0, i = 0; i < 2; i++) {
208 out += snprintf(buf + out, count - out, " ");
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209 for (j = 0; j < 8 && l < len; j++, l++)
210 out += snprintf(buf + out, count - out, "%02X ",
43f66a6c
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211 data[(i * 8 + j)]);
212 for (; j < 8; j++)
213 out += snprintf(buf + out, count - out, " ");
214 }
bf79451e 215
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216 out += snprintf(buf + out, count - out, " ");
217 for (l = 0, i = 0; i < 2; i++) {
218 out += snprintf(buf + out, count - out, " ");
219 for (j = 0; j < 8 && l < len; j++, l++) {
220 c = data[(i * 8 + j)];
221 if (!isascii(c) || !isprint(c))
222 c = '.';
bf79451e 223
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224 out += snprintf(buf + out, count - out, "%c", c);
225 }
226
227 for (; j < 8; j++)
228 out += snprintf(buf + out, count - out, " ");
229 }
bf79451e 230
f6c5cb7c 231 return out;
43f66a6c
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232}
233
0edd5b44 234static void printk_buf(int level, const u8 * data, u32 len)
43f66a6c
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235{
236 char line[81];
237 u32 ofs = 0;
238 if (!(ipw_debug_level & level))
239 return;
240
241 while (len) {
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242 snprint_line(line, sizeof(line), &data[ofs],
243 min(len, 16U), ofs);
244 printk(KERN_DEBUG "%s\n", line);
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245 ofs += 16;
246 len -= min(len, 16U);
247 }
248}
249
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250static int snprintk_buf(u8 * output, size_t size, const u8 * data, size_t len)
251{
252 size_t out = size;
253 u32 ofs = 0;
254 int total = 0;
255
256 while (size && len) {
257 out = snprint_line(output, size, &data[ofs],
258 min_t(size_t, len, 16U), ofs);
259
260 ofs += 16;
261 output += out;
262 size -= out;
263 len -= min_t(size_t, len, 16U);
264 total += out;
265 }
266 return total;
267}
268
c8fe6679 269/* alias for 32-bit indirect read (for SRAM/reg above 4K), with debug wrapper */
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270static u32 _ipw_read_reg32(struct ipw_priv *priv, u32 reg);
271#define ipw_read_reg32(a, b) _ipw_read_reg32(a, b)
272
c8fe6679 273/* alias for 8-bit indirect read (for SRAM/reg above 4K), with debug wrapper */
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274static u8 _ipw_read_reg8(struct ipw_priv *ipw, u32 reg);
275#define ipw_read_reg8(a, b) _ipw_read_reg8(a, b)
276
c8fe6679 277/* 8-bit indirect write (for SRAM/reg above 4K), with debug wrapper */
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278static void _ipw_write_reg8(struct ipw_priv *priv, u32 reg, u8 value);
279static inline void ipw_write_reg8(struct ipw_priv *a, u32 b, u8 c)
280{
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281 IPW_DEBUG_IO("%s %d: write_indirect8(0x%08X, 0x%08X)\n", __FILE__,
282 __LINE__, (u32) (b), (u32) (c));
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283 _ipw_write_reg8(a, b, c);
284}
285
c8fe6679 286/* 16-bit indirect write (for SRAM/reg above 4K), with debug wrapper */
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287static void _ipw_write_reg16(struct ipw_priv *priv, u32 reg, u16 value);
288static inline void ipw_write_reg16(struct ipw_priv *a, u32 b, u16 c)
289{
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290 IPW_DEBUG_IO("%s %d: write_indirect16(0x%08X, 0x%08X)\n", __FILE__,
291 __LINE__, (u32) (b), (u32) (c));
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292 _ipw_write_reg16(a, b, c);
293}
294
c8fe6679 295/* 32-bit indirect write (for SRAM/reg above 4K), with debug wrapper */
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296static void _ipw_write_reg32(struct ipw_priv *priv, u32 reg, u32 value);
297static inline void ipw_write_reg32(struct ipw_priv *a, u32 b, u32 c)
298{
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299 IPW_DEBUG_IO("%s %d: write_indirect32(0x%08X, 0x%08X)\n", __FILE__,
300 __LINE__, (u32) (b), (u32) (c));
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301 _ipw_write_reg32(a, b, c);
302}
303
c8fe6679 304/* 8-bit direct write (low 4K) */
43f66a6c 305#define _ipw_write8(ipw, ofs, val) writeb((val), (ipw)->hw_base + (ofs))
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306
307/* 8-bit direct write (for low 4K of SRAM/regs), with debug wrapper */
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308#define ipw_write8(ipw, ofs, val) \
309 IPW_DEBUG_IO("%s %d: write_direct8(0x%08X, 0x%08X)\n", __FILE__, __LINE__, (u32)(ofs), (u32)(val)); \
310 _ipw_write8(ipw, ofs, val)
311
c8fe6679 312/* 16-bit direct write (low 4K) */
43f66a6c 313#define _ipw_write16(ipw, ofs, val) writew((val), (ipw)->hw_base + (ofs))
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314
315/* 16-bit direct write (for low 4K of SRAM/regs), with debug wrapper */
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316#define ipw_write16(ipw, ofs, val) \
317 IPW_DEBUG_IO("%s %d: write_direct16(0x%08X, 0x%08X)\n", __FILE__, __LINE__, (u32)(ofs), (u32)(val)); \
318 _ipw_write16(ipw, ofs, val)
319
c8fe6679 320/* 32-bit direct write (low 4K) */
43f66a6c 321#define _ipw_write32(ipw, ofs, val) writel((val), (ipw)->hw_base + (ofs))
c8fe6679
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322
323/* 32-bit direct write (for low 4K of SRAM/regs), with debug wrapper */
43f66a6c
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324#define ipw_write32(ipw, ofs, val) \
325 IPW_DEBUG_IO("%s %d: write_direct32(0x%08X, 0x%08X)\n", __FILE__, __LINE__, (u32)(ofs), (u32)(val)); \
326 _ipw_write32(ipw, ofs, val)
327
c8fe6679 328/* 8-bit direct read (low 4K) */
43f66a6c 329#define _ipw_read8(ipw, ofs) readb((ipw)->hw_base + (ofs))
c8fe6679
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330
331/* 8-bit direct read (low 4K), with debug wrapper */
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332static inline u8 __ipw_read8(char *f, u32 l, struct ipw_priv *ipw, u32 ofs)
333{
334 IPW_DEBUG_IO("%s %d: read_direct8(0x%08X)\n", f, l, (u32) (ofs));
43f66a6c
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335 return _ipw_read8(ipw, ofs);
336}
0edd5b44 337
c8fe6679 338/* alias to 8-bit direct read (low 4K of SRAM/regs), with debug wrapper */
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339#define ipw_read8(ipw, ofs) __ipw_read8(__FILE__, __LINE__, ipw, ofs)
340
c8fe6679 341/* 16-bit direct read (low 4K) */
43f66a6c 342#define _ipw_read16(ipw, ofs) readw((ipw)->hw_base + (ofs))
c8fe6679
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343
344/* 16-bit direct read (low 4K), with debug wrapper */
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345static inline u16 __ipw_read16(char *f, u32 l, struct ipw_priv *ipw, u32 ofs)
346{
347 IPW_DEBUG_IO("%s %d: read_direct16(0x%08X)\n", f, l, (u32) (ofs));
43f66a6c
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348 return _ipw_read16(ipw, ofs);
349}
0edd5b44 350
c8fe6679 351/* alias to 16-bit direct read (low 4K of SRAM/regs), with debug wrapper */
43f66a6c
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352#define ipw_read16(ipw, ofs) __ipw_read16(__FILE__, __LINE__, ipw, ofs)
353
c8fe6679 354/* 32-bit direct read (low 4K) */
43f66a6c 355#define _ipw_read32(ipw, ofs) readl((ipw)->hw_base + (ofs))
c8fe6679
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356
357/* 32-bit direct read (low 4K), with debug wrapper */
0edd5b44
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358static inline u32 __ipw_read32(char *f, u32 l, struct ipw_priv *ipw, u32 ofs)
359{
360 IPW_DEBUG_IO("%s %d: read_direct32(0x%08X)\n", f, l, (u32) (ofs));
43f66a6c
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361 return _ipw_read32(ipw, ofs);
362}
0edd5b44 363
c8fe6679 364/* alias to 32-bit direct read (low 4K of SRAM/regs), with debug wrapper */
43f66a6c
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365#define ipw_read32(ipw, ofs) __ipw_read32(__FILE__, __LINE__, ipw, ofs)
366
c8fe6679 367/* multi-byte read (above 4K), with debug wrapper */
43f66a6c 368static void _ipw_read_indirect(struct ipw_priv *, u32, u8 *, int);
f6c5cb7c
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369static inline void __ipw_read_indirect(const char *f, int l,
370 struct ipw_priv *a, u32 b, u8 * c, int d)
371{
372 IPW_DEBUG_IO("%s %d: read_indirect(0x%08X) %d bytes\n", f, l, (u32) (b),
373 d);
374 _ipw_read_indirect(a, b, c, d);
375}
376
c8fe6679 377/* alias to multi-byte read (SRAM/regs above 4K), with debug wrapper */
f6c5cb7c 378#define ipw_read_indirect(a, b, c, d) __ipw_read_indirect(__FILE__, __LINE__, a, b, c, d)
43f66a6c 379
c8fe6679 380/* alias to multi-byte read (SRAM/regs above 4K), with debug wrapper */
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381static void _ipw_write_indirect(struct ipw_priv *priv, u32 addr, u8 * data,
382 int num);
43f66a6c
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383#define ipw_write_indirect(a, b, c, d) \
384 IPW_DEBUG_IO("%s %d: write_indirect(0x%08X) %d bytes\n", __FILE__, __LINE__, (u32)(b), d); \
afbf30a2 385 _ipw_write_indirect(a, b, c, d)
43f66a6c 386
c8fe6679 387/* 32-bit indirect write (above 4K) */
0edd5b44 388static void _ipw_write_reg32(struct ipw_priv *priv, u32 reg, u32 value)
43f66a6c 389{
0edd5b44 390 IPW_DEBUG_IO(" %p : reg = 0x%8X : value = 0x%8X\n", priv, reg, value);
b095c381
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391 _ipw_write32(priv, IPW_INDIRECT_ADDR, reg);
392 _ipw_write32(priv, IPW_INDIRECT_DATA, value);
43f66a6c
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393}
394
c8fe6679 395/* 8-bit indirect write (above 4K) */
43f66a6c
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396static void _ipw_write_reg8(struct ipw_priv *priv, u32 reg, u8 value)
397{
2638bc39 398 u32 aligned_addr = reg & IPW_INDIRECT_ADDR_MASK; /* dword align */
c8fe6679
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399 u32 dif_len = reg - aligned_addr;
400
43f66a6c 401 IPW_DEBUG_IO(" reg = 0x%8X : value = 0x%8X\n", reg, value);
c8fe6679
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402 _ipw_write32(priv, IPW_INDIRECT_ADDR, aligned_addr);
403 _ipw_write8(priv, IPW_INDIRECT_DATA + dif_len, value);
43f66a6c
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404}
405
c8fe6679 406/* 16-bit indirect write (above 4K) */
0edd5b44 407static void _ipw_write_reg16(struct ipw_priv *priv, u32 reg, u16 value)
43f66a6c 408{
2638bc39 409 u32 aligned_addr = reg & IPW_INDIRECT_ADDR_MASK; /* dword align */
c8fe6679
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410 u32 dif_len = (reg - aligned_addr) & (~0x1ul);
411
43f66a6c 412 IPW_DEBUG_IO(" reg = 0x%8X : value = 0x%8X\n", reg, value);
c8fe6679
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413 _ipw_write32(priv, IPW_INDIRECT_ADDR, aligned_addr);
414 _ipw_write16(priv, IPW_INDIRECT_DATA + dif_len, value);
43f66a6c
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415}
416
c8fe6679 417/* 8-bit indirect read (above 4K) */
43f66a6c
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418static u8 _ipw_read_reg8(struct ipw_priv *priv, u32 reg)
419{
420 u32 word;
b095c381 421 _ipw_write32(priv, IPW_INDIRECT_ADDR, reg & IPW_INDIRECT_ADDR_MASK);
43f66a6c 422 IPW_DEBUG_IO(" reg = 0x%8X : \n", reg);
b095c381 423 word = _ipw_read32(priv, IPW_INDIRECT_DATA);
0edd5b44 424 return (word >> ((reg & 0x3) * 8)) & 0xff;
43f66a6c
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425}
426
c8fe6679 427/* 32-bit indirect read (above 4K) */
43f66a6c
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428static u32 _ipw_read_reg32(struct ipw_priv *priv, u32 reg)
429{
430 u32 value;
431
432 IPW_DEBUG_IO("%p : reg = 0x%08x\n", priv, reg);
433
b095c381
JK
434 _ipw_write32(priv, IPW_INDIRECT_ADDR, reg);
435 value = _ipw_read32(priv, IPW_INDIRECT_DATA);
43f66a6c
JK
436 IPW_DEBUG_IO(" reg = 0x%4X : value = 0x%4x \n", reg, value);
437 return value;
438}
439
c8fe6679
ZY
440/* General purpose, no alignment requirement, iterative (multi-byte) read, */
441/* for area above 1st 4K of SRAM/reg space */
43f66a6c
JK
442static void _ipw_read_indirect(struct ipw_priv *priv, u32 addr, u8 * buf,
443 int num)
444{
2638bc39 445 u32 aligned_addr = addr & IPW_INDIRECT_ADDR_MASK; /* dword align */
43f66a6c 446 u32 dif_len = addr - aligned_addr;
43f66a6c 447 u32 i;
bf79451e 448
43f66a6c
JK
449 IPW_DEBUG_IO("addr = %i, buf = %p, num = %i\n", addr, buf, num);
450
ea2b26e0
JK
451 if (num <= 0) {
452 return;
453 }
454
c8fe6679 455 /* Read the first dword (or portion) byte by byte */
43f66a6c 456 if (unlikely(dif_len)) {
b095c381 457 _ipw_write32(priv, IPW_INDIRECT_ADDR, aligned_addr);
43f66a6c 458 /* Start reading at aligned_addr + dif_len */
ea2b26e0 459 for (i = dif_len; ((i < 4) && (num > 0)); i++, num--)
b095c381 460 *buf++ = _ipw_read8(priv, IPW_INDIRECT_DATA + i);
43f66a6c
JK
461 aligned_addr += 4;
462 }
463
c8fe6679 464 /* Read all of the middle dwords as dwords, with auto-increment */
b095c381 465 _ipw_write32(priv, IPW_AUTOINC_ADDR, aligned_addr);
ea2b26e0 466 for (; num >= 4; buf += 4, aligned_addr += 4, num -= 4)
b095c381 467 *(u32 *) buf = _ipw_read32(priv, IPW_AUTOINC_DATA);
bf79451e 468
c8fe6679 469 /* Read the last dword (or portion) byte by byte */
ea2b26e0 470 if (unlikely(num)) {
b095c381 471 _ipw_write32(priv, IPW_INDIRECT_ADDR, aligned_addr);
ea2b26e0 472 for (i = 0; num > 0; i++, num--)
b095c381 473 *buf++ = ipw_read8(priv, IPW_INDIRECT_DATA + i);
ea2b26e0 474 }
43f66a6c
JK
475}
476
c8fe6679
ZY
477/* General purpose, no alignment requirement, iterative (multi-byte) write, */
478/* for area above 1st 4K of SRAM/reg space */
0edd5b44 479static void _ipw_write_indirect(struct ipw_priv *priv, u32 addr, u8 * buf,
43f66a6c
JK
480 int num)
481{
2638bc39 482 u32 aligned_addr = addr & IPW_INDIRECT_ADDR_MASK; /* dword align */
43f66a6c 483 u32 dif_len = addr - aligned_addr;
43f66a6c 484 u32 i;
bf79451e 485
43f66a6c 486 IPW_DEBUG_IO("addr = %i, buf = %p, num = %i\n", addr, buf, num);
bf79451e 487
ea2b26e0
JK
488 if (num <= 0) {
489 return;
490 }
491
c8fe6679 492 /* Write the first dword (or portion) byte by byte */
43f66a6c 493 if (unlikely(dif_len)) {
b095c381 494 _ipw_write32(priv, IPW_INDIRECT_ADDR, aligned_addr);
c8fe6679 495 /* Start writing at aligned_addr + dif_len */
ea2b26e0 496 for (i = dif_len; ((i < 4) && (num > 0)); i++, num--, buf++)
b095c381 497 _ipw_write8(priv, IPW_INDIRECT_DATA + i, *buf);
43f66a6c
JK
498 aligned_addr += 4;
499 }
bf79451e 500
c8fe6679 501 /* Write all of the middle dwords as dwords, with auto-increment */
b095c381 502 _ipw_write32(priv, IPW_AUTOINC_ADDR, aligned_addr);
ea2b26e0 503 for (; num >= 4; buf += 4, aligned_addr += 4, num -= 4)
b095c381 504 _ipw_write32(priv, IPW_AUTOINC_DATA, *(u32 *) buf);
bf79451e 505
c8fe6679 506 /* Write the last dword (or portion) byte by byte */
ea2b26e0 507 if (unlikely(num)) {
b095c381 508 _ipw_write32(priv, IPW_INDIRECT_ADDR, aligned_addr);
ea2b26e0 509 for (i = 0; num > 0; i++, num--, buf++)
b095c381 510 _ipw_write8(priv, IPW_INDIRECT_DATA + i, *buf);
ea2b26e0 511 }
43f66a6c
JK
512}
513
c8fe6679
ZY
514/* General purpose, no alignment requirement, iterative (multi-byte) write, */
515/* for 1st 4K of SRAM/regs space */
bf79451e 516static void ipw_write_direct(struct ipw_priv *priv, u32 addr, void *buf,
43f66a6c
JK
517 int num)
518{
519 memcpy_toio((priv->hw_base + addr), buf, num);
520}
521
c8fe6679 522/* Set bit(s) in low 4K of SRAM/regs */
43f66a6c
JK
523static inline void ipw_set_bit(struct ipw_priv *priv, u32 reg, u32 mask)
524{
525 ipw_write32(priv, reg, ipw_read32(priv, reg) | mask);
526}
527
c8fe6679 528/* Clear bit(s) in low 4K of SRAM/regs */
43f66a6c
JK
529static inline void ipw_clear_bit(struct ipw_priv *priv, u32 reg, u32 mask)
530{
531 ipw_write32(priv, reg, ipw_read32(priv, reg) & ~mask);
532}
533
89c318ed 534static inline void __ipw_enable_interrupts(struct ipw_priv *priv)
43f66a6c
JK
535{
536 if (priv->status & STATUS_INT_ENABLED)
537 return;
538 priv->status |= STATUS_INT_ENABLED;
b095c381 539 ipw_write32(priv, IPW_INTA_MASK_R, IPW_INTA_MASK_ALL);
43f66a6c
JK
540}
541
89c318ed 542static inline void __ipw_disable_interrupts(struct ipw_priv *priv)
43f66a6c
JK
543{
544 if (!(priv->status & STATUS_INT_ENABLED))
545 return;
546 priv->status &= ~STATUS_INT_ENABLED;
b095c381 547 ipw_write32(priv, IPW_INTA_MASK_R, ~IPW_INTA_MASK_ALL);
43f66a6c
JK
548}
549
89c318ed
ZY
550static inline void ipw_enable_interrupts(struct ipw_priv *priv)
551{
552 unsigned long flags;
553
554 spin_lock_irqsave(&priv->irq_lock, flags);
555 __ipw_enable_interrupts(priv);
556 spin_unlock_irqrestore(&priv->irq_lock, flags);
557}
558
559static inline void ipw_disable_interrupts(struct ipw_priv *priv)
560{
561 unsigned long flags;
562
563 spin_lock_irqsave(&priv->irq_lock, flags);
564 __ipw_disable_interrupts(priv);
565 spin_unlock_irqrestore(&priv->irq_lock, flags);
566}
567
43f66a6c
JK
568static char *ipw_error_desc(u32 val)
569{
570 switch (val) {
bf79451e 571 case IPW_FW_ERROR_OK:
43f66a6c 572 return "ERROR_OK";
bf79451e 573 case IPW_FW_ERROR_FAIL:
43f66a6c 574 return "ERROR_FAIL";
bf79451e 575 case IPW_FW_ERROR_MEMORY_UNDERFLOW:
43f66a6c 576 return "MEMORY_UNDERFLOW";
bf79451e 577 case IPW_FW_ERROR_MEMORY_OVERFLOW:
43f66a6c 578 return "MEMORY_OVERFLOW";
bf79451e 579 case IPW_FW_ERROR_BAD_PARAM:
b095c381 580 return "BAD_PARAM";
bf79451e 581 case IPW_FW_ERROR_BAD_CHECKSUM:
b095c381 582 return "BAD_CHECKSUM";
bf79451e 583 case IPW_FW_ERROR_NMI_INTERRUPT:
b095c381 584 return "NMI_INTERRUPT";
bf79451e 585 case IPW_FW_ERROR_BAD_DATABASE:
b095c381 586 return "BAD_DATABASE";
bf79451e 587 case IPW_FW_ERROR_ALLOC_FAIL:
b095c381 588 return "ALLOC_FAIL";
bf79451e 589 case IPW_FW_ERROR_DMA_UNDERRUN:
b095c381 590 return "DMA_UNDERRUN";
bf79451e 591 case IPW_FW_ERROR_DMA_STATUS:
b095c381
JK
592 return "DMA_STATUS";
593 case IPW_FW_ERROR_DINO_ERROR:
594 return "DINO_ERROR";
595 case IPW_FW_ERROR_EEPROM_ERROR:
596 return "EEPROM_ERROR";
bf79451e 597 case IPW_FW_ERROR_SYSASSERT:
b095c381 598 return "SYSASSERT";
bf79451e 599 case IPW_FW_ERROR_FATAL_ERROR:
b095c381 600 return "FATAL_ERROR";
bf79451e 601 default:
b095c381 602 return "UNKNOWN_ERROR";
43f66a6c
JK
603 }
604}
605
b39860c6
JK
606static void ipw_dump_error_log(struct ipw_priv *priv,
607 struct ipw_fw_error *error)
43f66a6c 608{
b39860c6 609 u32 i;
bf79451e 610
b39860c6
JK
611 if (!error) {
612 IPW_ERROR("Error allocating and capturing error log. "
613 "Nothing to dump.\n");
614 return;
43f66a6c
JK
615 }
616
b39860c6
JK
617 IPW_ERROR("Start IPW Error Log Dump:\n");
618 IPW_ERROR("Status: 0x%08X, Config: %08X\n",
619 error->status, error->config);
43f66a6c 620
b39860c6 621 for (i = 0; i < error->elem_len; i++)
0edd5b44 622 IPW_ERROR("%s %i 0x%08x 0x%08x 0x%08x 0x%08x 0x%08x\n",
b39860c6
JK
623 ipw_error_desc(error->elem[i].desc),
624 error->elem[i].time,
625 error->elem[i].blink1,
626 error->elem[i].blink2,
627 error->elem[i].link1,
628 error->elem[i].link2, error->elem[i].data);
629 for (i = 0; i < error->log_len; i++)
630 IPW_ERROR("%i\t0x%08x\t%i\n",
631 error->log[i].time,
286568ab 632 error->log[i].data, error->log[i].event);
43f66a6c
JK
633}
634
c848d0af 635static inline int ipw_is_init(struct ipw_priv *priv)
43f66a6c 636{
c848d0af 637 return (priv->status & STATUS_INIT) ? 1 : 0;
43f66a6c
JK
638}
639
0edd5b44 640static int ipw_get_ordinal(struct ipw_priv *priv, u32 ord, void *val, u32 * len)
43f66a6c
JK
641{
642 u32 addr, field_info, field_len, field_count, total_len;
643
644 IPW_DEBUG_ORD("ordinal = %i\n", ord);
645
646 if (!priv || !val || !len) {
647 IPW_DEBUG_ORD("Invalid argument\n");
648 return -EINVAL;
649 }
bf79451e 650
43f66a6c
JK
651 /* verify device ordinal tables have been initialized */
652 if (!priv->table0_addr || !priv->table1_addr || !priv->table2_addr) {
653 IPW_DEBUG_ORD("Access ordinals before initialization\n");
654 return -EINVAL;
655 }
656
657 switch (IPW_ORD_TABLE_ID_MASK & ord) {
658 case IPW_ORD_TABLE_0_MASK:
659 /*
660 * TABLE 0: Direct access to a table of 32 bit values
661 *
bf79451e 662 * This is a very simple table with the data directly
43f66a6c
JK
663 * read from the table
664 */
665
666 /* remove the table id from the ordinal */
667 ord &= IPW_ORD_TABLE_VALUE_MASK;
668
669 /* boundary check */
670 if (ord > priv->table0_len) {
671 IPW_DEBUG_ORD("ordinal value (%i) longer then "
672 "max (%i)\n", ord, priv->table0_len);
673 return -EINVAL;
674 }
675
676 /* verify we have enough room to store the value */
677 if (*len < sizeof(u32)) {
678 IPW_DEBUG_ORD("ordinal buffer length too small, "
aaa4d308 679 "need %zd\n", sizeof(u32));
43f66a6c
JK
680 return -EINVAL;
681 }
682
683 IPW_DEBUG_ORD("Reading TABLE0[%i] from offset 0x%08x\n",
0edd5b44 684 ord, priv->table0_addr + (ord << 2));
43f66a6c
JK
685
686 *len = sizeof(u32);
687 ord <<= 2;
0edd5b44 688 *((u32 *) val) = ipw_read32(priv, priv->table0_addr + ord);
43f66a6c
JK
689 break;
690
691 case IPW_ORD_TABLE_1_MASK:
692 /*
693 * TABLE 1: Indirect access to a table of 32 bit values
bf79451e
JG
694 *
695 * This is a fairly large table of u32 values each
43f66a6c
JK
696 * representing starting addr for the data (which is
697 * also a u32)
698 */
699
700 /* remove the table id from the ordinal */
701 ord &= IPW_ORD_TABLE_VALUE_MASK;
bf79451e 702
43f66a6c
JK
703 /* boundary check */
704 if (ord > priv->table1_len) {
705 IPW_DEBUG_ORD("ordinal value too long\n");
706 return -EINVAL;
707 }
708
709 /* verify we have enough room to store the value */
710 if (*len < sizeof(u32)) {
711 IPW_DEBUG_ORD("ordinal buffer length too small, "
aaa4d308 712 "need %zd\n", sizeof(u32));
43f66a6c
JK
713 return -EINVAL;
714 }
715
0edd5b44
JG
716 *((u32 *) val) =
717 ipw_read_reg32(priv, (priv->table1_addr + (ord << 2)));
43f66a6c
JK
718 *len = sizeof(u32);
719 break;
720
721 case IPW_ORD_TABLE_2_MASK:
722 /*
723 * TABLE 2: Indirect access to a table of variable sized values
724 *
725 * This table consist of six values, each containing
726 * - dword containing the starting offset of the data
727 * - dword containing the lengh in the first 16bits
728 * and the count in the second 16bits
729 */
730
731 /* remove the table id from the ordinal */
732 ord &= IPW_ORD_TABLE_VALUE_MASK;
733
734 /* boundary check */
735 if (ord > priv->table2_len) {
736 IPW_DEBUG_ORD("ordinal value too long\n");
737 return -EINVAL;
738 }
739
740 /* get the address of statistic */
741 addr = ipw_read_reg32(priv, priv->table2_addr + (ord << 3));
bf79451e
JG
742
743 /* get the second DW of statistics ;
43f66a6c 744 * two 16-bit words - first is length, second is count */
0edd5b44
JG
745 field_info =
746 ipw_read_reg32(priv,
747 priv->table2_addr + (ord << 3) +
748 sizeof(u32));
bf79451e 749
43f66a6c 750 /* get each entry length */
0edd5b44 751 field_len = *((u16 *) & field_info);
bf79451e 752
43f66a6c 753 /* get number of entries */
0edd5b44 754 field_count = *(((u16 *) & field_info) + 1);
bf79451e 755
43f66a6c
JK
756 /* abort if not enought memory */
757 total_len = field_len * field_count;
758 if (total_len > *len) {
759 *len = total_len;
760 return -EINVAL;
761 }
bf79451e 762
43f66a6c
JK
763 *len = total_len;
764 if (!total_len)
765 return 0;
766
767 IPW_DEBUG_ORD("addr = 0x%08x, total_len = %i, "
bf79451e 768 "field_info = 0x%08x\n",
43f66a6c
JK
769 addr, total_len, field_info);
770 ipw_read_indirect(priv, addr, val, total_len);
771 break;
772
773 default:
774 IPW_DEBUG_ORD("Invalid ordinal!\n");
775 return -EINVAL;
776
777 }
778
43f66a6c
JK
779 return 0;
780}
781
782static void ipw_init_ordinals(struct ipw_priv *priv)
783{
784 priv->table0_addr = IPW_ORDINALS_TABLE_LOWER;
bf79451e 785 priv->table0_len = ipw_read32(priv, priv->table0_addr);
43f66a6c
JK
786
787 IPW_DEBUG_ORD("table 0 offset at 0x%08x, len = %i\n",
788 priv->table0_addr, priv->table0_len);
789
790 priv->table1_addr = ipw_read32(priv, IPW_ORDINALS_TABLE_1);
791 priv->table1_len = ipw_read_reg32(priv, priv->table1_addr);
792
793 IPW_DEBUG_ORD("table 1 offset at 0x%08x, len = %i\n",
794 priv->table1_addr, priv->table1_len);
795
796 priv->table2_addr = ipw_read32(priv, IPW_ORDINALS_TABLE_2);
797 priv->table2_len = ipw_read_reg32(priv, priv->table2_addr);
0edd5b44 798 priv->table2_len &= 0x0000ffff; /* use first two bytes */
43f66a6c
JK
799
800 IPW_DEBUG_ORD("table 2 offset at 0x%08x, len = %i\n",
801 priv->table2_addr, priv->table2_len);
802
803}
804
a73e22b2 805static u32 ipw_register_toggle(u32 reg)
a613bffd 806{
b095c381
JK
807 reg &= ~IPW_START_STANDBY;
808 if (reg & IPW_GATE_ODMA)
809 reg &= ~IPW_GATE_ODMA;
810 if (reg & IPW_GATE_IDMA)
811 reg &= ~IPW_GATE_IDMA;
812 if (reg & IPW_GATE_ADMA)
813 reg &= ~IPW_GATE_ADMA;
a613bffd
JK
814 return reg;
815}
816
817/*
818 * LED behavior:
819 * - On radio ON, turn on any LEDs that require to be on during start
820 * - On initialization, start unassociated blink
821 * - On association, disable unassociated blink
822 * - On disassociation, start unassociated blink
823 * - On radio OFF, turn off any LEDs started during radio on
824 *
825 */
ede6111c
ZY
826#define LD_TIME_LINK_ON msecs_to_jiffies(300)
827#define LD_TIME_LINK_OFF msecs_to_jiffies(2700)
828#define LD_TIME_ACT_ON msecs_to_jiffies(250)
a613bffd 829
a73e22b2 830static void ipw_led_link_on(struct ipw_priv *priv)
a613bffd
JK
831{
832 unsigned long flags;
833 u32 led;
834
835 /* If configured to not use LEDs, or nic_type is 1,
836 * then we don't toggle a LINK led */
837 if (priv->config & CFG_NO_LED || priv->nic_type == EEPROM_NIC_TYPE_1)
838 return;
839
840 spin_lock_irqsave(&priv->lock, flags);
841
842 if (!(priv->status & STATUS_RF_KILL_MASK) &&
843 !(priv->status & STATUS_LED_LINK_ON)) {
844 IPW_DEBUG_LED("Link LED On\n");
b095c381 845 led = ipw_read_reg32(priv, IPW_EVENT_REG);
a613bffd
JK
846 led |= priv->led_association_on;
847
848 led = ipw_register_toggle(led);
849
850 IPW_DEBUG_LED("Reg: 0x%08X\n", led);
b095c381 851 ipw_write_reg32(priv, IPW_EVENT_REG, led);
a613bffd
JK
852
853 priv->status |= STATUS_LED_LINK_ON;
854
855 /* If we aren't associated, schedule turning the LED off */
856 if (!(priv->status & STATUS_ASSOCIATED))
857 queue_delayed_work(priv->workqueue,
858 &priv->led_link_off,
859 LD_TIME_LINK_ON);
860 }
861
862 spin_unlock_irqrestore(&priv->lock, flags);
863}
864
c4028958 865static void ipw_bg_led_link_on(struct work_struct *work)
c848d0af 866{
c4028958
DH
867 struct ipw_priv *priv =
868 container_of(work, struct ipw_priv, led_link_on.work);
4644151b 869 mutex_lock(&priv->mutex);
c4028958 870 ipw_led_link_on(priv);
4644151b 871 mutex_unlock(&priv->mutex);
c848d0af
JK
872}
873
a73e22b2 874static void ipw_led_link_off(struct ipw_priv *priv)
a613bffd
JK
875{
876 unsigned long flags;
877 u32 led;
878
879 /* If configured not to use LEDs, or nic type is 1,
880 * then we don't goggle the LINK led. */
881 if (priv->config & CFG_NO_LED || priv->nic_type == EEPROM_NIC_TYPE_1)
882 return;
883
884 spin_lock_irqsave(&priv->lock, flags);
885
886 if (priv->status & STATUS_LED_LINK_ON) {
b095c381 887 led = ipw_read_reg32(priv, IPW_EVENT_REG);
a613bffd
JK
888 led &= priv->led_association_off;
889 led = ipw_register_toggle(led);
890
891 IPW_DEBUG_LED("Reg: 0x%08X\n", led);
b095c381 892 ipw_write_reg32(priv, IPW_EVENT_REG, led);
a613bffd
JK
893
894 IPW_DEBUG_LED("Link LED Off\n");
895
896 priv->status &= ~STATUS_LED_LINK_ON;
897
898 /* If we aren't associated and the radio is on, schedule
899 * turning the LED on (blink while unassociated) */
900 if (!(priv->status & STATUS_RF_KILL_MASK) &&
901 !(priv->status & STATUS_ASSOCIATED))
902 queue_delayed_work(priv->workqueue, &priv->led_link_on,
903 LD_TIME_LINK_OFF);
904
905 }
906
907 spin_unlock_irqrestore(&priv->lock, flags);
908}
909
c4028958 910static void ipw_bg_led_link_off(struct work_struct *work)
c848d0af 911{
c4028958
DH
912 struct ipw_priv *priv =
913 container_of(work, struct ipw_priv, led_link_off.work);
4644151b 914 mutex_lock(&priv->mutex);
c4028958 915 ipw_led_link_off(priv);
4644151b 916 mutex_unlock(&priv->mutex);
c848d0af
JK
917}
918
858119e1 919static void __ipw_led_activity_on(struct ipw_priv *priv)
a613bffd 920{
a613bffd
JK
921 u32 led;
922
923 if (priv->config & CFG_NO_LED)
924 return;
925
b095c381 926 if (priv->status & STATUS_RF_KILL_MASK)
a613bffd 927 return;
a613bffd
JK
928
929 if (!(priv->status & STATUS_LED_ACT_ON)) {
b095c381 930 led = ipw_read_reg32(priv, IPW_EVENT_REG);
a613bffd
JK
931 led |= priv->led_activity_on;
932
933 led = ipw_register_toggle(led);
934
935 IPW_DEBUG_LED("Reg: 0x%08X\n", led);
b095c381 936 ipw_write_reg32(priv, IPW_EVENT_REG, led);
a613bffd
JK
937
938 IPW_DEBUG_LED("Activity LED On\n");
939
940 priv->status |= STATUS_LED_ACT_ON;
941
c848d0af 942 cancel_delayed_work(&priv->led_act_off);
a613bffd
JK
943 queue_delayed_work(priv->workqueue, &priv->led_act_off,
944 LD_TIME_ACT_ON);
945 } else {
946 /* Reschedule LED off for full time period */
947 cancel_delayed_work(&priv->led_act_off);
948 queue_delayed_work(priv->workqueue, &priv->led_act_off,
949 LD_TIME_ACT_ON);
950 }
b095c381 951}
a613bffd 952
a73e22b2 953#if 0
b095c381
JK
954void ipw_led_activity_on(struct ipw_priv *priv)
955{
956 unsigned long flags;
957 spin_lock_irqsave(&priv->lock, flags);
958 __ipw_led_activity_on(priv);
a613bffd
JK
959 spin_unlock_irqrestore(&priv->lock, flags);
960}
a73e22b2 961#endif /* 0 */
a613bffd 962
a73e22b2 963static void ipw_led_activity_off(struct ipw_priv *priv)
a613bffd
JK
964{
965 unsigned long flags;
966 u32 led;
967
968 if (priv->config & CFG_NO_LED)
969 return;
970
971 spin_lock_irqsave(&priv->lock, flags);
972
973 if (priv->status & STATUS_LED_ACT_ON) {
b095c381 974 led = ipw_read_reg32(priv, IPW_EVENT_REG);
a613bffd
JK
975 led &= priv->led_activity_off;
976
977 led = ipw_register_toggle(led);
978
979 IPW_DEBUG_LED("Reg: 0x%08X\n", led);
b095c381 980 ipw_write_reg32(priv, IPW_EVENT_REG, led);
a613bffd
JK
981
982 IPW_DEBUG_LED("Activity LED Off\n");
983
984 priv->status &= ~STATUS_LED_ACT_ON;
985 }
986
987 spin_unlock_irqrestore(&priv->lock, flags);
988}
989
c4028958 990static void ipw_bg_led_activity_off(struct work_struct *work)
c848d0af 991{
c4028958
DH
992 struct ipw_priv *priv =
993 container_of(work, struct ipw_priv, led_act_off.work);
4644151b 994 mutex_lock(&priv->mutex);
c4028958 995 ipw_led_activity_off(priv);
4644151b 996 mutex_unlock(&priv->mutex);
c848d0af
JK
997}
998
a73e22b2 999static void ipw_led_band_on(struct ipw_priv *priv)
a613bffd
JK
1000{
1001 unsigned long flags;
1002 u32 led;
1003
1004 /* Only nic type 1 supports mode LEDs */
c848d0af
JK
1005 if (priv->config & CFG_NO_LED ||
1006 priv->nic_type != EEPROM_NIC_TYPE_1 || !priv->assoc_network)
a613bffd
JK
1007 return;
1008
1009 spin_lock_irqsave(&priv->lock, flags);
1010
b095c381 1011 led = ipw_read_reg32(priv, IPW_EVENT_REG);
a613bffd
JK
1012 if (priv->assoc_network->mode == IEEE_A) {
1013 led |= priv->led_ofdm_on;
1014 led &= priv->led_association_off;
1015 IPW_DEBUG_LED("Mode LED On: 802.11a\n");
1016 } else if (priv->assoc_network->mode == IEEE_G) {
1017 led |= priv->led_ofdm_on;
1018 led |= priv->led_association_on;
1019 IPW_DEBUG_LED("Mode LED On: 802.11g\n");
1020 } else {
1021 led &= priv->led_ofdm_off;
1022 led |= priv->led_association_on;
1023 IPW_DEBUG_LED("Mode LED On: 802.11b\n");
1024 }
1025
1026 led = ipw_register_toggle(led);
1027
1028 IPW_DEBUG_LED("Reg: 0x%08X\n", led);
b095c381 1029 ipw_write_reg32(priv, IPW_EVENT_REG, led);
a613bffd
JK
1030
1031 spin_unlock_irqrestore(&priv->lock, flags);
1032}
1033
a73e22b2 1034static void ipw_led_band_off(struct ipw_priv *priv)
a613bffd
JK
1035{
1036 unsigned long flags;
1037 u32 led;
1038
1039 /* Only nic type 1 supports mode LEDs */
1040 if (priv->config & CFG_NO_LED || priv->nic_type != EEPROM_NIC_TYPE_1)
1041 return;
1042
1043 spin_lock_irqsave(&priv->lock, flags);
1044
b095c381 1045 led = ipw_read_reg32(priv, IPW_EVENT_REG);
a613bffd
JK
1046 led &= priv->led_ofdm_off;
1047 led &= priv->led_association_off;
1048
1049 led = ipw_register_toggle(led);
1050
1051 IPW_DEBUG_LED("Reg: 0x%08X\n", led);
b095c381 1052 ipw_write_reg32(priv, IPW_EVENT_REG, led);
a613bffd
JK
1053
1054 spin_unlock_irqrestore(&priv->lock, flags);
1055}
1056
a73e22b2 1057static void ipw_led_radio_on(struct ipw_priv *priv)
a613bffd
JK
1058{
1059 ipw_led_link_on(priv);
1060}
1061
a73e22b2 1062static void ipw_led_radio_off(struct ipw_priv *priv)
a613bffd
JK
1063{
1064 ipw_led_activity_off(priv);
1065 ipw_led_link_off(priv);
1066}
1067
a73e22b2 1068static void ipw_led_link_up(struct ipw_priv *priv)
a613bffd
JK
1069{
1070 /* Set the Link Led on for all nic types */
1071 ipw_led_link_on(priv);
1072}
1073
a73e22b2 1074static void ipw_led_link_down(struct ipw_priv *priv)
a613bffd
JK
1075{
1076 ipw_led_activity_off(priv);
1077 ipw_led_link_off(priv);
1078
1079 if (priv->status & STATUS_RF_KILL_MASK)
1080 ipw_led_radio_off(priv);
1081}
1082
a73e22b2 1083static void ipw_led_init(struct ipw_priv *priv)
a613bffd
JK
1084{
1085 priv->nic_type = priv->eeprom[EEPROM_NIC_TYPE];
1086
1087 /* Set the default PINs for the link and activity leds */
b095c381
JK
1088 priv->led_activity_on = IPW_ACTIVITY_LED;
1089 priv->led_activity_off = ~(IPW_ACTIVITY_LED);
a613bffd 1090
b095c381
JK
1091 priv->led_association_on = IPW_ASSOCIATED_LED;
1092 priv->led_association_off = ~(IPW_ASSOCIATED_LED);
a613bffd
JK
1093
1094 /* Set the default PINs for the OFDM leds */
b095c381
JK
1095 priv->led_ofdm_on = IPW_OFDM_LED;
1096 priv->led_ofdm_off = ~(IPW_OFDM_LED);
a613bffd
JK
1097
1098 switch (priv->nic_type) {
1099 case EEPROM_NIC_TYPE_1:
1100 /* In this NIC type, the LEDs are reversed.... */
b095c381
JK
1101 priv->led_activity_on = IPW_ASSOCIATED_LED;
1102 priv->led_activity_off = ~(IPW_ASSOCIATED_LED);
1103 priv->led_association_on = IPW_ACTIVITY_LED;
1104 priv->led_association_off = ~(IPW_ACTIVITY_LED);
a613bffd
JK
1105
1106 if (!(priv->config & CFG_NO_LED))
1107 ipw_led_band_on(priv);
1108
1109 /* And we don't blink link LEDs for this nic, so
1110 * just return here */
1111 return;
1112
1113 case EEPROM_NIC_TYPE_3:
1114 case EEPROM_NIC_TYPE_2:
1115 case EEPROM_NIC_TYPE_4:
1116 case EEPROM_NIC_TYPE_0:
1117 break;
1118
1119 default:
1120 IPW_DEBUG_INFO("Unknown NIC type from EEPROM: %d\n",
1121 priv->nic_type);
1122 priv->nic_type = EEPROM_NIC_TYPE_0;
1123 break;
1124 }
1125
1126 if (!(priv->config & CFG_NO_LED)) {
1127 if (priv->status & STATUS_ASSOCIATED)
1128 ipw_led_link_on(priv);
1129 else
1130 ipw_led_link_off(priv);
1131 }
1132}
1133
a73e22b2 1134static void ipw_led_shutdown(struct ipw_priv *priv)
a613bffd 1135{
a613bffd
JK
1136 ipw_led_activity_off(priv);
1137 ipw_led_link_off(priv);
1138 ipw_led_band_off(priv);
afbf30a2
JK
1139 cancel_delayed_work(&priv->led_link_on);
1140 cancel_delayed_work(&priv->led_link_off);
1141 cancel_delayed_work(&priv->led_act_off);
a613bffd
JK
1142}
1143
43f66a6c
JK
1144/*
1145 * The following adds a new attribute to the sysfs representation
1146 * of this device driver (i.e. a new file in /sys/bus/pci/drivers/ipw/)
1147 * used for controling the debug level.
bf79451e 1148 *
43f66a6c
JK
1149 * See the level definitions in ipw for details.
1150 */
1151static ssize_t show_debug_level(struct device_driver *d, char *buf)
1152{
1153 return sprintf(buf, "0x%08X\n", ipw_debug_level);
1154}
a613bffd
JK
1155
1156static ssize_t store_debug_level(struct device_driver *d, const char *buf,
1157 size_t count)
43f66a6c
JK
1158{
1159 char *p = (char *)buf;
1160 u32 val;
1161
1162 if (p[1] == 'x' || p[1] == 'X' || p[0] == 'x' || p[0] == 'X') {
1163 p++;
1164 if (p[0] == 'x' || p[0] == 'X')
1165 p++;
1166 val = simple_strtoul(p, &p, 16);
1167 } else
1168 val = simple_strtoul(p, &p, 10);
bf79451e
JG
1169 if (p == buf)
1170 printk(KERN_INFO DRV_NAME
43f66a6c
JK
1171 ": %s is not in hex or decimal form.\n", buf);
1172 else
1173 ipw_debug_level = val;
1174
1175 return strnlen(buf, count);
1176}
1177
bf79451e 1178static DRIVER_ATTR(debug_level, S_IWUSR | S_IRUGO,
43f66a6c
JK
1179 show_debug_level, store_debug_level);
1180
b39860c6 1181static inline u32 ipw_get_event_log_len(struct ipw_priv *priv)
43f66a6c 1182{
c8fe6679 1183 /* length = 1st dword in log */
b39860c6 1184 return ipw_read_reg32(priv, ipw_read32(priv, IPW_EVENT_LOG));
43f66a6c 1185}
0edd5b44 1186
b39860c6
JK
1187static void ipw_capture_event_log(struct ipw_priv *priv,
1188 u32 log_len, struct ipw_event *log)
43f66a6c 1189{
b39860c6 1190 u32 base;
0edd5b44 1191
b39860c6
JK
1192 if (log_len) {
1193 base = ipw_read32(priv, IPW_EVENT_LOG);
1194 ipw_read_indirect(priv, base + sizeof(base) + sizeof(u32),
1195 (u8 *) log, sizeof(*log) * log_len);
1196 }
1197}
43f66a6c 1198
b39860c6 1199static struct ipw_fw_error *ipw_alloc_error_log(struct ipw_priv *priv)
43f66a6c 1200{
b39860c6
JK
1201 struct ipw_fw_error *error;
1202 u32 log_len = ipw_get_event_log_len(priv);
1203 u32 base = ipw_read32(priv, IPW_ERROR_LOG);
1204 u32 elem_len = ipw_read_reg32(priv, base);
43f66a6c 1205
b39860c6
JK
1206 error = kmalloc(sizeof(*error) +
1207 sizeof(*error->elem) * elem_len +
1208 sizeof(*error->log) * log_len, GFP_ATOMIC);
1209 if (!error) {
1210 IPW_ERROR("Memory allocation for firmware error log "
1211 "failed.\n");
1212 return NULL;
43f66a6c 1213 }
f6c5cb7c 1214 error->jiffies = jiffies;
b39860c6
JK
1215 error->status = priv->status;
1216 error->config = priv->config;
1217 error->elem_len = elem_len;
1218 error->log_len = log_len;
1219 error->elem = (struct ipw_error_elem *)error->payload;
3b26b110 1220 error->log = (struct ipw_event *)(error->elem + elem_len);
b39860c6
JK
1221
1222 ipw_capture_event_log(priv, log_len, error->log);
bf79451e 1223
b39860c6
JK
1224 if (elem_len)
1225 ipw_read_indirect(priv, base + sizeof(base), (u8 *) error->elem,
1226 sizeof(*error->elem) * elem_len);
1227
1228 return error;
43f66a6c 1229}
0edd5b44 1230
b39860c6
JK
1231static ssize_t show_event_log(struct device *d,
1232 struct device_attribute *attr, char *buf)
43f66a6c 1233{
b39860c6
JK
1234 struct ipw_priv *priv = dev_get_drvdata(d);
1235 u32 log_len = ipw_get_event_log_len(priv);
1236 struct ipw_event log[log_len];
1237 u32 len = 0, i;
43f66a6c 1238
b39860c6 1239 ipw_capture_event_log(priv, log_len, log);
43f66a6c 1240
b39860c6
JK
1241 len += snprintf(buf + len, PAGE_SIZE - len, "%08X", log_len);
1242 for (i = 0; i < log_len; i++)
1243 len += snprintf(buf + len, PAGE_SIZE - len,
1244 "\n%08X%08X%08X",
1245 log[i].time, log[i].event, log[i].data);
1246 len += snprintf(buf + len, PAGE_SIZE - len, "\n");
1247 return len;
43f66a6c 1248}
0edd5b44 1249
b39860c6 1250static DEVICE_ATTR(event_log, S_IRUGO, show_event_log, NULL);
43f66a6c 1251
b39860c6
JK
1252static ssize_t show_error(struct device *d,
1253 struct device_attribute *attr, char *buf)
43f66a6c 1254{
b39860c6
JK
1255 struct ipw_priv *priv = dev_get_drvdata(d);
1256 u32 len = 0, i;
1257 if (!priv->error)
1258 return 0;
1259 len += snprintf(buf + len, PAGE_SIZE - len,
f6c5cb7c
JK
1260 "%08lX%08X%08X%08X",
1261 priv->error->jiffies,
b39860c6
JK
1262 priv->error->status,
1263 priv->error->config, priv->error->elem_len);
1264 for (i = 0; i < priv->error->elem_len; i++)
1265 len += snprintf(buf + len, PAGE_SIZE - len,
1266 "\n%08X%08X%08X%08X%08X%08X%08X",
1267 priv->error->elem[i].time,
1268 priv->error->elem[i].desc,
1269 priv->error->elem[i].blink1,
1270 priv->error->elem[i].blink2,
1271 priv->error->elem[i].link1,
1272 priv->error->elem[i].link2,
1273 priv->error->elem[i].data);
1274
1275 len += snprintf(buf + len, PAGE_SIZE - len,
1276 "\n%08X", priv->error->log_len);
1277 for (i = 0; i < priv->error->log_len; i++)
1278 len += snprintf(buf + len, PAGE_SIZE - len,
1279 "\n%08X%08X%08X",
1280 priv->error->log[i].time,
1281 priv->error->log[i].event,
1282 priv->error->log[i].data);
1283 len += snprintf(buf + len, PAGE_SIZE - len, "\n");
1284 return len;
1285}
1286
1287static ssize_t clear_error(struct device *d,
1288 struct device_attribute *attr,
1289 const char *buf, size_t count)
1290{
1291 struct ipw_priv *priv = dev_get_drvdata(d);
8f760780
JJ
1292
1293 kfree(priv->error);
1294 priv->error = NULL;
b39860c6
JK
1295 return count;
1296}
43f66a6c 1297
b39860c6 1298static DEVICE_ATTR(error, S_IRUGO | S_IWUSR, show_error, clear_error);
43f66a6c 1299
f6c5cb7c
JK
1300static ssize_t show_cmd_log(struct device *d,
1301 struct device_attribute *attr, char *buf)
1302{
1303 struct ipw_priv *priv = dev_get_drvdata(d);
1304 u32 len = 0, i;
1305 if (!priv->cmdlog)
1306 return 0;
1307 for (i = (priv->cmdlog_pos + 1) % priv->cmdlog_len;
1308 (i != priv->cmdlog_pos) && (PAGE_SIZE - len);
1309 i = (i + 1) % priv->cmdlog_len) {
1310 len +=
1311 snprintf(buf + len, PAGE_SIZE - len,
1312 "\n%08lX%08X%08X%08X\n", priv->cmdlog[i].jiffies,
1313 priv->cmdlog[i].retcode, priv->cmdlog[i].cmd.cmd,
1314 priv->cmdlog[i].cmd.len);
1315 len +=
1316 snprintk_buf(buf + len, PAGE_SIZE - len,
1317 (u8 *) priv->cmdlog[i].cmd.param,
1318 priv->cmdlog[i].cmd.len);
1319 len += snprintf(buf + len, PAGE_SIZE - len, "\n");
1320 }
1321 len += snprintf(buf + len, PAGE_SIZE - len, "\n");
1322 return len;
43f66a6c 1323}
0edd5b44 1324
f6c5cb7c 1325static DEVICE_ATTR(cmd_log, S_IRUGO, show_cmd_log, NULL);
43f66a6c 1326
d685b8c2
ZY
1327#ifdef CONFIG_IPW2200_PROMISCUOUS
1328static void ipw_prom_free(struct ipw_priv *priv);
1329static int ipw_prom_alloc(struct ipw_priv *priv);
1330static ssize_t store_rtap_iface(struct device *d,
1331 struct device_attribute *attr,
1332 const char *buf, size_t count)
1333{
1334 struct ipw_priv *priv = dev_get_drvdata(d);
1335 int rc = 0;
1336
1337 if (count < 1)
1338 return -EINVAL;
1339
1340 switch (buf[0]) {
1341 case '0':
1342 if (!rtap_iface)
1343 return count;
1344
1345 if (netif_running(priv->prom_net_dev)) {
1346 IPW_WARNING("Interface is up. Cannot unregister.\n");
1347 return count;
1348 }
1349
1350 ipw_prom_free(priv);
1351 rtap_iface = 0;
1352 break;
1353
1354 case '1':
1355 if (rtap_iface)
1356 return count;
1357
1358 rc = ipw_prom_alloc(priv);
1359 if (!rc)
1360 rtap_iface = 1;
1361 break;
1362
1363 default:
1364 return -EINVAL;
1365 }
1366
1367 if (rc) {
1368 IPW_ERROR("Failed to register promiscuous network "
1369 "device (error %d).\n", rc);
1370 }
1371
1372 return count;
1373}
1374
1375static ssize_t show_rtap_iface(struct device *d,
1376 struct device_attribute *attr,
1377 char *buf)
1378{
1379 struct ipw_priv *priv = dev_get_drvdata(d);
1380 if (rtap_iface)
1381 return sprintf(buf, "%s", priv->prom_net_dev->name);
1382 else {
1383 buf[0] = '-';
1384 buf[1] = '1';
1385 buf[2] = '\0';
1386 return 3;
1387 }
1388}
1389
1390static DEVICE_ATTR(rtap_iface, S_IWUSR | S_IRUSR, show_rtap_iface,
1391 store_rtap_iface);
1392
1393static ssize_t store_rtap_filter(struct device *d,
1394 struct device_attribute *attr,
1395 const char *buf, size_t count)
1396{
1397 struct ipw_priv *priv = dev_get_drvdata(d);
1398
1399 if (!priv->prom_priv) {
1400 IPW_ERROR("Attempting to set filter without "
1401 "rtap_iface enabled.\n");
1402 return -EPERM;
1403 }
1404
1405 priv->prom_priv->filter = simple_strtol(buf, NULL, 0);
1406
1407 IPW_DEBUG_INFO("Setting rtap filter to " BIT_FMT16 "\n",
1408 BIT_ARG16(priv->prom_priv->filter));
1409
1410 return count;
1411}
1412
1413static ssize_t show_rtap_filter(struct device *d,
1414 struct device_attribute *attr,
1415 char *buf)
1416{
1417 struct ipw_priv *priv = dev_get_drvdata(d);
1418 return sprintf(buf, "0x%04X",
1419 priv->prom_priv ? priv->prom_priv->filter : 0);
1420}
1421
1422static DEVICE_ATTR(rtap_filter, S_IWUSR | S_IRUSR, show_rtap_filter,
1423 store_rtap_filter);
1424#endif
1425
a613bffd
JK
1426static ssize_t show_scan_age(struct device *d, struct device_attribute *attr,
1427 char *buf)
43f66a6c 1428{
a613bffd
JK
1429 struct ipw_priv *priv = dev_get_drvdata(d);
1430 return sprintf(buf, "%d\n", priv->ieee->scan_age);
1431}
1432
1433static ssize_t store_scan_age(struct device *d, struct device_attribute *attr,
1434 const char *buf, size_t count)
1435{
1436 struct ipw_priv *priv = dev_get_drvdata(d);
1437 struct net_device *dev = priv->net_dev;
1438 char buffer[] = "00000000";
1439 unsigned long len =
1440 (sizeof(buffer) - 1) > count ? count : sizeof(buffer) - 1;
1441 unsigned long val;
1442 char *p = buffer;
1443
1444 IPW_DEBUG_INFO("enter\n");
1445
1446 strncpy(buffer, buf, len);
1447 buffer[len] = 0;
1448
1449 if (p[1] == 'x' || p[1] == 'X' || p[0] == 'x' || p[0] == 'X') {
1450 p++;
1451 if (p[0] == 'x' || p[0] == 'X')
1452 p++;
1453 val = simple_strtoul(p, &p, 16);
1454 } else
1455 val = simple_strtoul(p, &p, 10);
1456 if (p == buffer) {
1457 IPW_DEBUG_INFO("%s: user supplied invalid value.\n", dev->name);
1458 } else {
1459 priv->ieee->scan_age = val;
1460 IPW_DEBUG_INFO("set scan_age = %u\n", priv->ieee->scan_age);
1461 }
1462
1463 IPW_DEBUG_INFO("exit\n");
1464 return len;
1465}
1466
1467static DEVICE_ATTR(scan_age, S_IWUSR | S_IRUGO, show_scan_age, store_scan_age);
1468
1469static ssize_t show_led(struct device *d, struct device_attribute *attr,
1470 char *buf)
1471{
1472 struct ipw_priv *priv = dev_get_drvdata(d);
1473 return sprintf(buf, "%d\n", (priv->config & CFG_NO_LED) ? 0 : 1);
1474}
1475
1476static ssize_t store_led(struct device *d, struct device_attribute *attr,
1477 const char *buf, size_t count)
1478{
1479 struct ipw_priv *priv = dev_get_drvdata(d);
1480
1481 IPW_DEBUG_INFO("enter\n");
1482
1483 if (count == 0)
1484 return 0;
1485
1486 if (*buf == 0) {
1487 IPW_DEBUG_LED("Disabling LED control.\n");
1488 priv->config |= CFG_NO_LED;
1489 ipw_led_shutdown(priv);
1490 } else {
1491 IPW_DEBUG_LED("Enabling LED control.\n");
1492 priv->config &= ~CFG_NO_LED;
1493 ipw_led_init(priv);
1494 }
1495
1496 IPW_DEBUG_INFO("exit\n");
1497 return count;
1498}
1499
1500static DEVICE_ATTR(led, S_IWUSR | S_IRUGO, show_led, store_led);
1501
ad3fee56 1502static ssize_t show_status(struct device *d,
0edd5b44 1503 struct device_attribute *attr, char *buf)
43f66a6c 1504{
ad3fee56 1505 struct ipw_priv *p = d->driver_data;
43f66a6c
JK
1506 return sprintf(buf, "0x%08x\n", (int)p->status);
1507}
0edd5b44 1508
43f66a6c
JK
1509static DEVICE_ATTR(status, S_IRUGO, show_status, NULL);
1510
ad3fee56
AM
1511static ssize_t show_cfg(struct device *d, struct device_attribute *attr,
1512 char *buf)
43f66a6c 1513{
ad3fee56 1514 struct ipw_priv *p = d->driver_data;
43f66a6c
JK
1515 return sprintf(buf, "0x%08x\n", (int)p->config);
1516}
0edd5b44 1517
43f66a6c
JK
1518static DEVICE_ATTR(cfg, S_IRUGO, show_cfg, NULL);
1519
ad3fee56 1520static ssize_t show_nic_type(struct device *d,
0edd5b44 1521 struct device_attribute *attr, char *buf)
43f66a6c 1522{
a613bffd
JK
1523 struct ipw_priv *priv = d->driver_data;
1524 return sprintf(buf, "TYPE: %d\n", priv->nic_type);
43f66a6c 1525}
0edd5b44 1526
43f66a6c
JK
1527static DEVICE_ATTR(nic_type, S_IRUGO, show_nic_type, NULL);
1528
ad3fee56 1529static ssize_t show_ucode_version(struct device *d,
0edd5b44 1530 struct device_attribute *attr, char *buf)
43f66a6c
JK
1531{
1532 u32 len = sizeof(u32), tmp = 0;
ad3fee56 1533 struct ipw_priv *p = d->driver_data;
43f66a6c 1534
0edd5b44 1535 if (ipw_get_ordinal(p, IPW_ORD_STAT_UCODE_VERSION, &tmp, &len))
43f66a6c
JK
1536 return 0;
1537
1538 return sprintf(buf, "0x%08x\n", tmp);
1539}
0edd5b44
JG
1540
1541static DEVICE_ATTR(ucode_version, S_IWUSR | S_IRUGO, show_ucode_version, NULL);
43f66a6c 1542
ad3fee56
AM
1543static ssize_t show_rtc(struct device *d, struct device_attribute *attr,
1544 char *buf)
43f66a6c
JK
1545{
1546 u32 len = sizeof(u32), tmp = 0;
ad3fee56 1547 struct ipw_priv *p = d->driver_data;
43f66a6c 1548
0edd5b44 1549 if (ipw_get_ordinal(p, IPW_ORD_STAT_RTC, &tmp, &len))
43f66a6c
JK
1550 return 0;
1551
1552 return sprintf(buf, "0x%08x\n", tmp);
1553}
0edd5b44
JG
1554
1555static DEVICE_ATTR(rtc, S_IWUSR | S_IRUGO, show_rtc, NULL);
43f66a6c
JK
1556
1557/*
1558 * Add a device attribute to view/control the delay between eeprom
1559 * operations.
1560 */
ad3fee56 1561static ssize_t show_eeprom_delay(struct device *d,
0edd5b44 1562 struct device_attribute *attr, char *buf)
43f66a6c 1563{
0edd5b44 1564 int n = ((struct ipw_priv *)d->driver_data)->eeprom_delay;
43f66a6c
JK
1565 return sprintf(buf, "%i\n", n);
1566}
ad3fee56 1567static ssize_t store_eeprom_delay(struct device *d,
0edd5b44
JG
1568 struct device_attribute *attr,
1569 const char *buf, size_t count)
43f66a6c 1570{
ad3fee56 1571 struct ipw_priv *p = d->driver_data;
43f66a6c
JK
1572 sscanf(buf, "%i", &p->eeprom_delay);
1573 return strnlen(buf, count);
1574}
0edd5b44
JG
1575
1576static DEVICE_ATTR(eeprom_delay, S_IWUSR | S_IRUGO,
1577 show_eeprom_delay, store_eeprom_delay);
43f66a6c 1578
ad3fee56 1579static ssize_t show_command_event_reg(struct device *d,
0edd5b44 1580 struct device_attribute *attr, char *buf)
43f66a6c
JK
1581{
1582 u32 reg = 0;
ad3fee56 1583 struct ipw_priv *p = d->driver_data;
43f66a6c 1584
b095c381 1585 reg = ipw_read_reg32(p, IPW_INTERNAL_CMD_EVENT);
43f66a6c
JK
1586 return sprintf(buf, "0x%08x\n", reg);
1587}
ad3fee56 1588static ssize_t store_command_event_reg(struct device *d,
0edd5b44
JG
1589 struct device_attribute *attr,
1590 const char *buf, size_t count)
43f66a6c
JK
1591{
1592 u32 reg;
ad3fee56 1593 struct ipw_priv *p = d->driver_data;
43f66a6c
JK
1594
1595 sscanf(buf, "%x", &reg);
b095c381 1596 ipw_write_reg32(p, IPW_INTERNAL_CMD_EVENT, reg);
43f66a6c
JK
1597 return strnlen(buf, count);
1598}
0edd5b44
JG
1599
1600static DEVICE_ATTR(command_event_reg, S_IWUSR | S_IRUGO,
1601 show_command_event_reg, store_command_event_reg);
43f66a6c 1602
ad3fee56 1603static ssize_t show_mem_gpio_reg(struct device *d,
0edd5b44 1604 struct device_attribute *attr, char *buf)
43f66a6c
JK
1605{
1606 u32 reg = 0;
ad3fee56 1607 struct ipw_priv *p = d->driver_data;
43f66a6c
JK
1608
1609 reg = ipw_read_reg32(p, 0x301100);
1610 return sprintf(buf, "0x%08x\n", reg);
1611}
ad3fee56 1612static ssize_t store_mem_gpio_reg(struct device *d,
0edd5b44
JG
1613 struct device_attribute *attr,
1614 const char *buf, size_t count)
43f66a6c
JK
1615{
1616 u32 reg;
ad3fee56 1617 struct ipw_priv *p = d->driver_data;
43f66a6c
JK
1618
1619 sscanf(buf, "%x", &reg);
1620 ipw_write_reg32(p, 0x301100, reg);
1621 return strnlen(buf, count);
1622}
0edd5b44
JG
1623
1624static DEVICE_ATTR(mem_gpio_reg, S_IWUSR | S_IRUGO,
1625 show_mem_gpio_reg, store_mem_gpio_reg);
43f66a6c 1626
ad3fee56 1627static ssize_t show_indirect_dword(struct device *d,
0edd5b44 1628 struct device_attribute *attr, char *buf)
43f66a6c
JK
1629{
1630 u32 reg = 0;
ad3fee56 1631 struct ipw_priv *priv = d->driver_data;
afbf30a2 1632
bf79451e 1633 if (priv->status & STATUS_INDIRECT_DWORD)
43f66a6c 1634 reg = ipw_read_reg32(priv, priv->indirect_dword);
bf79451e 1635 else
43f66a6c 1636 reg = 0;
bf79451e 1637
43f66a6c
JK
1638 return sprintf(buf, "0x%08x\n", reg);
1639}
ad3fee56 1640static ssize_t store_indirect_dword(struct device *d,
0edd5b44
JG
1641 struct device_attribute *attr,
1642 const char *buf, size_t count)
43f66a6c 1643{
ad3fee56 1644 struct ipw_priv *priv = d->driver_data;
43f66a6c
JK
1645
1646 sscanf(buf, "%x", &priv->indirect_dword);
1647 priv->status |= STATUS_INDIRECT_DWORD;
1648 return strnlen(buf, count);
1649}
0edd5b44
JG
1650
1651static DEVICE_ATTR(indirect_dword, S_IWUSR | S_IRUGO,
1652 show_indirect_dword, store_indirect_dword);
43f66a6c 1653
ad3fee56 1654static ssize_t show_indirect_byte(struct device *d,
0edd5b44 1655 struct device_attribute *attr, char *buf)
43f66a6c
JK
1656{
1657 u8 reg = 0;
ad3fee56 1658 struct ipw_priv *priv = d->driver_data;
afbf30a2 1659
bf79451e 1660 if (priv->status & STATUS_INDIRECT_BYTE)
43f66a6c 1661 reg = ipw_read_reg8(priv, priv->indirect_byte);
bf79451e 1662 else
43f66a6c
JK
1663 reg = 0;
1664
1665 return sprintf(buf, "0x%02x\n", reg);
1666}
ad3fee56 1667static ssize_t store_indirect_byte(struct device *d,
0edd5b44
JG
1668 struct device_attribute *attr,
1669 const char *buf, size_t count)
43f66a6c 1670{
ad3fee56 1671 struct ipw_priv *priv = d->driver_data;
43f66a6c
JK
1672
1673 sscanf(buf, "%x", &priv->indirect_byte);
1674 priv->status |= STATUS_INDIRECT_BYTE;
1675 return strnlen(buf, count);
1676}
0edd5b44
JG
1677
1678static DEVICE_ATTR(indirect_byte, S_IWUSR | S_IRUGO,
43f66a6c
JK
1679 show_indirect_byte, store_indirect_byte);
1680
ad3fee56 1681static ssize_t show_direct_dword(struct device *d,
0edd5b44 1682 struct device_attribute *attr, char *buf)
43f66a6c
JK
1683{
1684 u32 reg = 0;
ad3fee56 1685 struct ipw_priv *priv = d->driver_data;
43f66a6c 1686
bf79451e 1687 if (priv->status & STATUS_DIRECT_DWORD)
43f66a6c 1688 reg = ipw_read32(priv, priv->direct_dword);
bf79451e 1689 else
43f66a6c
JK
1690 reg = 0;
1691
1692 return sprintf(buf, "0x%08x\n", reg);
1693}
ad3fee56 1694static ssize_t store_direct_dword(struct device *d,
0edd5b44
JG
1695 struct device_attribute *attr,
1696 const char *buf, size_t count)
43f66a6c 1697{
ad3fee56 1698 struct ipw_priv *priv = d->driver_data;
43f66a6c
JK
1699
1700 sscanf(buf, "%x", &priv->direct_dword);
1701 priv->status |= STATUS_DIRECT_DWORD;
1702 return strnlen(buf, count);
1703}
43f66a6c 1704
0edd5b44
JG
1705static DEVICE_ATTR(direct_dword, S_IWUSR | S_IRUGO,
1706 show_direct_dword, store_direct_dword);
43f66a6c 1707
858119e1 1708static int rf_kill_active(struct ipw_priv *priv)
43f66a6c
JK
1709{
1710 if (0 == (ipw_read32(priv, 0x30) & 0x10000))
1711 priv->status |= STATUS_RF_KILL_HW;
1712 else
1713 priv->status &= ~STATUS_RF_KILL_HW;
1714
1715 return (priv->status & STATUS_RF_KILL_HW) ? 1 : 0;
1716}
1717
ad3fee56 1718static ssize_t show_rf_kill(struct device *d, struct device_attribute *attr,
0edd5b44 1719 char *buf)
43f66a6c
JK
1720{
1721 /* 0 - RF kill not enabled
bf79451e 1722 1 - SW based RF kill active (sysfs)
43f66a6c
JK
1723 2 - HW based RF kill active
1724 3 - Both HW and SW baed RF kill active */
ad3fee56 1725 struct ipw_priv *priv = d->driver_data;
43f66a6c 1726 int val = ((priv->status & STATUS_RF_KILL_SW) ? 0x1 : 0x0) |
0edd5b44 1727 (rf_kill_active(priv) ? 0x2 : 0x0);
43f66a6c
JK
1728 return sprintf(buf, "%i\n", val);
1729}
1730
1731static int ipw_radio_kill_sw(struct ipw_priv *priv, int disable_radio)
1732{
bf79451e 1733 if ((disable_radio ? 1 : 0) ==
ea2b26e0 1734 ((priv->status & STATUS_RF_KILL_SW) ? 1 : 0))
0edd5b44 1735 return 0;
43f66a6c
JK
1736
1737 IPW_DEBUG_RF_KILL("Manual SW RF Kill set to: RADIO %s\n",
1738 disable_radio ? "OFF" : "ON");
1739
1740 if (disable_radio) {
1741 priv->status |= STATUS_RF_KILL_SW;
1742
a613bffd 1743 if (priv->workqueue)
43f66a6c 1744 cancel_delayed_work(&priv->request_scan);
43f66a6c
JK
1745 queue_work(priv->workqueue, &priv->down);
1746 } else {
1747 priv->status &= ~STATUS_RF_KILL_SW;
1748 if (rf_kill_active(priv)) {
1749 IPW_DEBUG_RF_KILL("Can not turn radio back on - "
1750 "disabled by HW switch\n");
1751 /* Make sure the RF_KILL check timer is running */
1752 cancel_delayed_work(&priv->rf_kill);
bf79451e 1753 queue_delayed_work(priv->workqueue, &priv->rf_kill,
1c9d5e41 1754 round_jiffies(2 * HZ));
bf79451e 1755 } else
43f66a6c
JK
1756 queue_work(priv->workqueue, &priv->up);
1757 }
1758
1759 return 1;
1760}
1761
0edd5b44
JG
1762static ssize_t store_rf_kill(struct device *d, struct device_attribute *attr,
1763 const char *buf, size_t count)
43f66a6c 1764{
ad3fee56 1765 struct ipw_priv *priv = d->driver_data;
bf79451e 1766
43f66a6c
JK
1767 ipw_radio_kill_sw(priv, buf[0] == '1');
1768
1769 return count;
1770}
0edd5b44
JG
1771
1772static DEVICE_ATTR(rf_kill, S_IWUSR | S_IRUGO, show_rf_kill, store_rf_kill);
43f66a6c 1773
b095c381
JK
1774static ssize_t show_speed_scan(struct device *d, struct device_attribute *attr,
1775 char *buf)
1776{
1777 struct ipw_priv *priv = (struct ipw_priv *)d->driver_data;
1778 int pos = 0, len = 0;
1779 if (priv->config & CFG_SPEED_SCAN) {
1780 while (priv->speed_scan[pos] != 0)
1781 len += sprintf(&buf[len], "%d ",
1782 priv->speed_scan[pos++]);
1783 return len + sprintf(&buf[len], "\n");
1784 }
1785
1786 return sprintf(buf, "0\n");
1787}
1788
1789static ssize_t store_speed_scan(struct device *d, struct device_attribute *attr,
1790 const char *buf, size_t count)
1791{
1792 struct ipw_priv *priv = (struct ipw_priv *)d->driver_data;
1793 int channel, pos = 0;
1794 const char *p = buf;
1795
1796 /* list of space separated channels to scan, optionally ending with 0 */
1797 while ((channel = simple_strtol(p, NULL, 0))) {
1798 if (pos == MAX_SPEED_SCAN - 1) {
1799 priv->speed_scan[pos] = 0;
1800 break;
1801 }
1802
1867b117 1803 if (ieee80211_is_valid_channel(priv->ieee, channel))
b095c381
JK
1804 priv->speed_scan[pos++] = channel;
1805 else
1806 IPW_WARNING("Skipping invalid channel request: %d\n",
1807 channel);
1808 p = strchr(p, ' ');
1809 if (!p)
1810 break;
1811 while (*p == ' ' || *p == '\t')
1812 p++;
1813 }
1814
1815 if (pos == 0)
1816 priv->config &= ~CFG_SPEED_SCAN;
1817 else {
1818 priv->speed_scan_pos = 0;
1819 priv->config |= CFG_SPEED_SCAN;
1820 }
1821
1822 return count;
1823}
1824
1825static DEVICE_ATTR(speed_scan, S_IWUSR | S_IRUGO, show_speed_scan,
1826 store_speed_scan);
1827
1828static ssize_t show_net_stats(struct device *d, struct device_attribute *attr,
1829 char *buf)
1830{
1831 struct ipw_priv *priv = (struct ipw_priv *)d->driver_data;
1832 return sprintf(buf, "%c\n", (priv->config & CFG_NET_STATS) ? '1' : '0');
1833}
1834
1835static ssize_t store_net_stats(struct device *d, struct device_attribute *attr,
1836 const char *buf, size_t count)
1837{
1838 struct ipw_priv *priv = (struct ipw_priv *)d->driver_data;
1839 if (buf[0] == '1')
1840 priv->config |= CFG_NET_STATS;
1841 else
1842 priv->config &= ~CFG_NET_STATS;
1843
1844 return count;
1845}
1846
afbf30a2
JK
1847static DEVICE_ATTR(net_stats, S_IWUSR | S_IRUGO,
1848 show_net_stats, store_net_stats);
b095c381 1849
375dd244
ZY
1850static ssize_t show_channels(struct device *d,
1851 struct device_attribute *attr,
1852 char *buf)
1853{
1854 struct ipw_priv *priv = dev_get_drvdata(d);
742e9910 1855 const struct ieee80211_geo *geo = ieee80211_get_geo(priv->ieee);
375dd244
ZY
1856 int len = 0, i;
1857
1858 len = sprintf(&buf[len],
1859 "Displaying %d channels in 2.4Ghz band "
1860 "(802.11bg):\n", geo->bg_channels);
1861
1862 for (i = 0; i < geo->bg_channels; i++) {
1863 len += sprintf(&buf[len], "%d: BSS%s%s, %s, Band %s.\n",
1864 geo->bg[i].channel,
1865 geo->bg[i].flags & IEEE80211_CH_RADAR_DETECT ?
1866 " (radar spectrum)" : "",
1867 ((geo->bg[i].flags & IEEE80211_CH_NO_IBSS) ||
1868 (geo->bg[i].flags & IEEE80211_CH_RADAR_DETECT))
1869 ? "" : ", IBSS",
1870 geo->bg[i].flags & IEEE80211_CH_PASSIVE_ONLY ?
1871 "passive only" : "active/passive",
1872 geo->bg[i].flags & IEEE80211_CH_B_ONLY ?
1873 "B" : "B/G");
1874 }
1875
1876 len += sprintf(&buf[len],
1877 "Displaying %d channels in 5.2Ghz band "
1878 "(802.11a):\n", geo->a_channels);
1879 for (i = 0; i < geo->a_channels; i++) {
1880 len += sprintf(&buf[len], "%d: BSS%s%s, %s.\n",
1881 geo->a[i].channel,
1882 geo->a[i].flags & IEEE80211_CH_RADAR_DETECT ?
1883 " (radar spectrum)" : "",
1884 ((geo->a[i].flags & IEEE80211_CH_NO_IBSS) ||
1885 (geo->a[i].flags & IEEE80211_CH_RADAR_DETECT))
1886 ? "" : ", IBSS",
1887 geo->a[i].flags & IEEE80211_CH_PASSIVE_ONLY ?
1888 "passive only" : "active/passive");
1889 }
1890
1891 return len;
1892}
1893
1894static DEVICE_ATTR(channels, S_IRUSR, show_channels, NULL);
1895
ea2b26e0
JK
1896static void notify_wx_assoc_event(struct ipw_priv *priv)
1897{
1898 union iwreq_data wrqu;
1899 wrqu.ap_addr.sa_family = ARPHRD_ETHER;
1900 if (priv->status & STATUS_ASSOCIATED)
1901 memcpy(wrqu.ap_addr.sa_data, priv->bssid, ETH_ALEN);
1902 else
1903 memset(wrqu.ap_addr.sa_data, 0, ETH_ALEN);
1904 wireless_send_event(priv->net_dev, SIOCGIWAP, &wrqu, NULL);
1905}
1906
43f66a6c
JK
1907static void ipw_irq_tasklet(struct ipw_priv *priv)
1908{
1909 u32 inta, inta_mask, handled = 0;
1910 unsigned long flags;
1911 int rc = 0;
1912
89c318ed 1913 spin_lock_irqsave(&priv->irq_lock, flags);
43f66a6c 1914
b095c381
JK
1915 inta = ipw_read32(priv, IPW_INTA_RW);
1916 inta_mask = ipw_read32(priv, IPW_INTA_MASK_R);
1917 inta &= (IPW_INTA_MASK_ALL & inta_mask);
43f66a6c
JK
1918
1919 /* Add any cached INTA values that need to be handled */
1920 inta |= priv->isr_inta;
1921
89c318ed
ZY
1922 spin_unlock_irqrestore(&priv->irq_lock, flags);
1923
1924 spin_lock_irqsave(&priv->lock, flags);
1925
43f66a6c 1926 /* handle all the justifications for the interrupt */
b095c381 1927 if (inta & IPW_INTA_BIT_RX_TRANSFER) {
43f66a6c 1928 ipw_rx(priv);
b095c381 1929 handled |= IPW_INTA_BIT_RX_TRANSFER;
43f66a6c
JK
1930 }
1931
b095c381 1932 if (inta & IPW_INTA_BIT_TX_CMD_QUEUE) {
43f66a6c 1933 IPW_DEBUG_HC("Command completed.\n");
0edd5b44 1934 rc = ipw_queue_tx_reclaim(priv, &priv->txq_cmd, -1);
43f66a6c
JK
1935 priv->status &= ~STATUS_HCMD_ACTIVE;
1936 wake_up_interruptible(&priv->wait_command_queue);
b095c381 1937 handled |= IPW_INTA_BIT_TX_CMD_QUEUE;
43f66a6c
JK
1938 }
1939
b095c381 1940 if (inta & IPW_INTA_BIT_TX_QUEUE_1) {
43f66a6c 1941 IPW_DEBUG_TX("TX_QUEUE_1\n");
0edd5b44 1942 rc = ipw_queue_tx_reclaim(priv, &priv->txq[0], 0);
b095c381 1943 handled |= IPW_INTA_BIT_TX_QUEUE_1;
43f66a6c
JK
1944 }
1945
b095c381 1946 if (inta & IPW_INTA_BIT_TX_QUEUE_2) {
43f66a6c 1947 IPW_DEBUG_TX("TX_QUEUE_2\n");
0edd5b44 1948 rc = ipw_queue_tx_reclaim(priv, &priv->txq[1], 1);
b095c381 1949 handled |= IPW_INTA_BIT_TX_QUEUE_2;
43f66a6c
JK
1950 }
1951
b095c381 1952 if (inta & IPW_INTA_BIT_TX_QUEUE_3) {
43f66a6c 1953 IPW_DEBUG_TX("TX_QUEUE_3\n");
0edd5b44 1954 rc = ipw_queue_tx_reclaim(priv, &priv->txq[2], 2);
b095c381 1955 handled |= IPW_INTA_BIT_TX_QUEUE_3;
43f66a6c
JK
1956 }
1957
b095c381 1958 if (inta & IPW_INTA_BIT_TX_QUEUE_4) {
43f66a6c 1959 IPW_DEBUG_TX("TX_QUEUE_4\n");
0edd5b44 1960 rc = ipw_queue_tx_reclaim(priv, &priv->txq[3], 3);
b095c381 1961 handled |= IPW_INTA_BIT_TX_QUEUE_4;
43f66a6c
JK
1962 }
1963
b095c381 1964 if (inta & IPW_INTA_BIT_STATUS_CHANGE) {
43f66a6c 1965 IPW_WARNING("STATUS_CHANGE\n");
b095c381 1966 handled |= IPW_INTA_BIT_STATUS_CHANGE;
43f66a6c
JK
1967 }
1968
b095c381 1969 if (inta & IPW_INTA_BIT_BEACON_PERIOD_EXPIRED) {
43f66a6c 1970 IPW_WARNING("TX_PERIOD_EXPIRED\n");
b095c381 1971 handled |= IPW_INTA_BIT_BEACON_PERIOD_EXPIRED;
43f66a6c
JK
1972 }
1973
b095c381 1974 if (inta & IPW_INTA_BIT_SLAVE_MODE_HOST_CMD_DONE) {
43f66a6c 1975 IPW_WARNING("HOST_CMD_DONE\n");
b095c381 1976 handled |= IPW_INTA_BIT_SLAVE_MODE_HOST_CMD_DONE;
43f66a6c
JK
1977 }
1978
b095c381 1979 if (inta & IPW_INTA_BIT_FW_INITIALIZATION_DONE) {
43f66a6c 1980 IPW_WARNING("FW_INITIALIZATION_DONE\n");
b095c381 1981 handled |= IPW_INTA_BIT_FW_INITIALIZATION_DONE;
43f66a6c
JK
1982 }
1983
b095c381 1984 if (inta & IPW_INTA_BIT_FW_CARD_DISABLE_PHY_OFF_DONE) {
43f66a6c 1985 IPW_WARNING("PHY_OFF_DONE\n");
b095c381 1986 handled |= IPW_INTA_BIT_FW_CARD_DISABLE_PHY_OFF_DONE;
43f66a6c
JK
1987 }
1988
b095c381 1989 if (inta & IPW_INTA_BIT_RF_KILL_DONE) {
43f66a6c
JK
1990 IPW_DEBUG_RF_KILL("RF_KILL_DONE\n");
1991 priv->status |= STATUS_RF_KILL_HW;
1992 wake_up_interruptible(&priv->wait_command_queue);
ea2b26e0 1993 priv->status &= ~(STATUS_ASSOCIATED | STATUS_ASSOCIATING);
43f66a6c 1994 cancel_delayed_work(&priv->request_scan);
a613bffd 1995 schedule_work(&priv->link_down);
43f66a6c 1996 queue_delayed_work(priv->workqueue, &priv->rf_kill, 2 * HZ);
b095c381 1997 handled |= IPW_INTA_BIT_RF_KILL_DONE;
43f66a6c 1998 }
bf79451e 1999
b095c381 2000 if (inta & IPW_INTA_BIT_FATAL_ERROR) {
1d1b09eb 2001 IPW_WARNING("Firmware error detected. Restarting.\n");
b39860c6 2002 if (priv->error) {
1d1b09eb 2003 IPW_DEBUG_FW("Sysfs 'error' log already exists.\n");
b39860c6
JK
2004 if (ipw_debug_level & IPW_DL_FW_ERRORS) {
2005 struct ipw_fw_error *error =
2006 ipw_alloc_error_log(priv);
2007 ipw_dump_error_log(priv, error);
8f760780 2008 kfree(error);
b39860c6 2009 }
b39860c6
JK
2010 } else {
2011 priv->error = ipw_alloc_error_log(priv);
2012 if (priv->error)
1d1b09eb 2013 IPW_DEBUG_FW("Sysfs 'error' log captured.\n");
b39860c6 2014 else
1d1b09eb
ZY
2015 IPW_DEBUG_FW("Error allocating sysfs 'error' "
2016 "log.\n");
b39860c6
JK
2017 if (ipw_debug_level & IPW_DL_FW_ERRORS)
2018 ipw_dump_error_log(priv, priv->error);
b39860c6
JK
2019 }
2020
b095c381
JK
2021 /* XXX: If hardware encryption is for WPA/WPA2,
2022 * we have to notify the supplicant. */
2023 if (priv->ieee->sec.encrypt) {
2024 priv->status &= ~STATUS_ASSOCIATED;
2025 notify_wx_assoc_event(priv);
2026 }
2027
2028 /* Keep the restart process from trying to send host
2029 * commands by clearing the INIT status bit */
2030 priv->status &= ~STATUS_INIT;
afbf30a2
JK
2031
2032 /* Cancel currently queued command. */
2033 priv->status &= ~STATUS_HCMD_ACTIVE;
2034 wake_up_interruptible(&priv->wait_command_queue);
2035
43f66a6c 2036 queue_work(priv->workqueue, &priv->adapter_restart);
b095c381 2037 handled |= IPW_INTA_BIT_FATAL_ERROR;
43f66a6c
JK
2038 }
2039
b095c381 2040 if (inta & IPW_INTA_BIT_PARITY_ERROR) {
43f66a6c 2041 IPW_ERROR("Parity error\n");
b095c381 2042 handled |= IPW_INTA_BIT_PARITY_ERROR;
43f66a6c
JK
2043 }
2044
2045 if (handled != inta) {
0edd5b44 2046 IPW_ERROR("Unhandled INTA bits 0x%08x\n", inta & ~handled);
43f66a6c
JK
2047 }
2048
89c318ed
ZY
2049 spin_unlock_irqrestore(&priv->lock, flags);
2050
43f66a6c
JK
2051 /* enable all interrupts */
2052 ipw_enable_interrupts(priv);
43f66a6c 2053}
bf79451e 2054
43f66a6c
JK
2055#define IPW_CMD(x) case IPW_CMD_ ## x : return #x
2056static char *get_cmd_string(u8 cmd)
2057{
2058 switch (cmd) {
2059 IPW_CMD(HOST_COMPLETE);
bf79451e
JG
2060 IPW_CMD(POWER_DOWN);
2061 IPW_CMD(SYSTEM_CONFIG);
2062 IPW_CMD(MULTICAST_ADDRESS);
2063 IPW_CMD(SSID);
2064 IPW_CMD(ADAPTER_ADDRESS);
2065 IPW_CMD(PORT_TYPE);
2066 IPW_CMD(RTS_THRESHOLD);
2067 IPW_CMD(FRAG_THRESHOLD);
2068 IPW_CMD(POWER_MODE);
2069 IPW_CMD(WEP_KEY);
2070 IPW_CMD(TGI_TX_KEY);
2071 IPW_CMD(SCAN_REQUEST);
2072 IPW_CMD(SCAN_REQUEST_EXT);
2073 IPW_CMD(ASSOCIATE);
2074 IPW_CMD(SUPPORTED_RATES);
2075 IPW_CMD(SCAN_ABORT);
2076 IPW_CMD(TX_FLUSH);
2077 IPW_CMD(QOS_PARAMETERS);
2078 IPW_CMD(DINO_CONFIG);
2079 IPW_CMD(RSN_CAPABILITIES);
2080 IPW_CMD(RX_KEY);
2081 IPW_CMD(CARD_DISABLE);
2082 IPW_CMD(SEED_NUMBER);
2083 IPW_CMD(TX_POWER);
2084 IPW_CMD(COUNTRY_INFO);
2085 IPW_CMD(AIRONET_INFO);
2086 IPW_CMD(AP_TX_POWER);
2087 IPW_CMD(CCKM_INFO);
2088 IPW_CMD(CCX_VER_INFO);
2089 IPW_CMD(SET_CALIBRATION);
2090 IPW_CMD(SENSITIVITY_CALIB);
2091 IPW_CMD(RETRY_LIMIT);
2092 IPW_CMD(IPW_PRE_POWER_DOWN);
2093 IPW_CMD(VAP_BEACON_TEMPLATE);
2094 IPW_CMD(VAP_DTIM_PERIOD);
2095 IPW_CMD(EXT_SUPPORTED_RATES);
2096 IPW_CMD(VAP_LOCAL_TX_PWR_CONSTRAINT);
2097 IPW_CMD(VAP_QUIET_INTERVALS);
2098 IPW_CMD(VAP_CHANNEL_SWITCH);
2099 IPW_CMD(VAP_MANDATORY_CHANNELS);
2100 IPW_CMD(VAP_CELL_PWR_LIMIT);
2101 IPW_CMD(VAP_CF_PARAM_SET);
2102 IPW_CMD(VAP_SET_BEACONING_STATE);
2103 IPW_CMD(MEASUREMENT);
2104 IPW_CMD(POWER_CAPABILITY);
2105 IPW_CMD(SUPPORTED_CHANNELS);
2106 IPW_CMD(TPC_REPORT);
2107 IPW_CMD(WME_INFO);
2108 IPW_CMD(PRODUCTION_COMMAND);
2109 default:
43f66a6c
JK
2110 return "UNKNOWN";
2111 }
2112}
43f66a6c
JK
2113
2114#define HOST_COMPLETE_TIMEOUT HZ
0a7bcf26
ZY
2115
2116static int __ipw_send_cmd(struct ipw_priv *priv, struct host_cmd *cmd)
43f66a6c
JK
2117{
2118 int rc = 0;
a613bffd 2119 unsigned long flags;
43f66a6c 2120
a613bffd 2121 spin_lock_irqsave(&priv->lock, flags);
43f66a6c 2122 if (priv->status & STATUS_HCMD_ACTIVE) {
9ddf84f6
JK
2123 IPW_ERROR("Failed to send %s: Already sending a command.\n",
2124 get_cmd_string(cmd->cmd));
a613bffd 2125 spin_unlock_irqrestore(&priv->lock, flags);
9ddf84f6 2126 return -EAGAIN;
43f66a6c
JK
2127 }
2128
2129 priv->status |= STATUS_HCMD_ACTIVE;
bf79451e 2130
f6c5cb7c
JK
2131 if (priv->cmdlog) {
2132 priv->cmdlog[priv->cmdlog_pos].jiffies = jiffies;
2133 priv->cmdlog[priv->cmdlog_pos].cmd.cmd = cmd->cmd;
2134 priv->cmdlog[priv->cmdlog_pos].cmd.len = cmd->len;
2135 memcpy(priv->cmdlog[priv->cmdlog_pos].cmd.param, cmd->param,
2136 cmd->len);
2137 priv->cmdlog[priv->cmdlog_pos].retcode = -1;
2138 }
2139
b095c381
JK
2140 IPW_DEBUG_HC("%s command (#%d) %d bytes: 0x%08X\n",
2141 get_cmd_string(cmd->cmd), cmd->cmd, cmd->len,
2142 priv->status);
f516dbcd
ZY
2143
2144#ifndef DEBUG_CMD_WEP_KEY
2145 if (cmd->cmd == IPW_CMD_WEP_KEY)
2146 IPW_DEBUG_HC("WEP_KEY command masked out for secure.\n");
2147 else
2148#endif
2149 printk_buf(IPW_DL_HOST_COMMAND, (u8 *) cmd->param, cmd->len);
2150
0a7bcf26 2151 rc = ipw_queue_tx_hcmd(priv, cmd->cmd, cmd->param, cmd->len, 0);
a613bffd
JK
2152 if (rc) {
2153 priv->status &= ~STATUS_HCMD_ACTIVE;
9ddf84f6
JK
2154 IPW_ERROR("Failed to send %s: Reason %d\n",
2155 get_cmd_string(cmd->cmd), rc);
a613bffd 2156 spin_unlock_irqrestore(&priv->lock, flags);
f6c5cb7c 2157 goto exit;
a613bffd
JK
2158 }
2159 spin_unlock_irqrestore(&priv->lock, flags);
43f66a6c 2160
0edd5b44
JG
2161 rc = wait_event_interruptible_timeout(priv->wait_command_queue,
2162 !(priv->
2163 status & STATUS_HCMD_ACTIVE),
2164 HOST_COMPLETE_TIMEOUT);
43f66a6c 2165 if (rc == 0) {
a613bffd
JK
2166 spin_lock_irqsave(&priv->lock, flags);
2167 if (priv->status & STATUS_HCMD_ACTIVE) {
9ddf84f6
JK
2168 IPW_ERROR("Failed to send %s: Command timed out.\n",
2169 get_cmd_string(cmd->cmd));
a613bffd
JK
2170 priv->status &= ~STATUS_HCMD_ACTIVE;
2171 spin_unlock_irqrestore(&priv->lock, flags);
f6c5cb7c
JK
2172 rc = -EIO;
2173 goto exit;
a613bffd
JK
2174 }
2175 spin_unlock_irqrestore(&priv->lock, flags);
3b9990cb
JK
2176 } else
2177 rc = 0;
a613bffd 2178
b095c381 2179 if (priv->status & STATUS_RF_KILL_HW) {
9ddf84f6
JK
2180 IPW_ERROR("Failed to send %s: Aborted due to RF kill switch.\n",
2181 get_cmd_string(cmd->cmd));
f6c5cb7c
JK
2182 rc = -EIO;
2183 goto exit;
43f66a6c
JK
2184 }
2185
2638bc39 2186 exit:
f6c5cb7c
JK
2187 if (priv->cmdlog) {
2188 priv->cmdlog[priv->cmdlog_pos++].retcode = rc;
2189 priv->cmdlog_pos %= priv->cmdlog_len;
2190 }
2191 return rc;
43f66a6c
JK
2192}
2193
0a7bcf26
ZY
2194static int ipw_send_cmd_simple(struct ipw_priv *priv, u8 command)
2195{
2196 struct host_cmd cmd = {
2197 .cmd = command,
2198 };
2199
2200 return __ipw_send_cmd(priv, &cmd);
2201}
2202
2203static int ipw_send_cmd_pdu(struct ipw_priv *priv, u8 command, u8 len,
2204 void *data)
43f66a6c
JK
2205{
2206 struct host_cmd cmd = {
0a7bcf26
ZY
2207 .cmd = command,
2208 .len = len,
2209 .param = data,
43f66a6c
JK
2210 };
2211
0a7bcf26
ZY
2212 return __ipw_send_cmd(priv, &cmd);
2213}
2214
2215static int ipw_send_host_complete(struct ipw_priv *priv)
2216{
43f66a6c
JK
2217 if (!priv) {
2218 IPW_ERROR("Invalid args\n");
2219 return -1;
2220 }
2221
0a7bcf26 2222 return ipw_send_cmd_simple(priv, IPW_CMD_HOST_COMPLETE);
43f66a6c
JK
2223}
2224
d685b8c2 2225static int ipw_send_system_config(struct ipw_priv *priv)
43f66a6c 2226{
d685b8c2
ZY
2227 return ipw_send_cmd_pdu(priv, IPW_CMD_SYSTEM_CONFIG,
2228 sizeof(priv->sys_config),
2229 &priv->sys_config);
43f66a6c
JK
2230}
2231
0edd5b44 2232static int ipw_send_ssid(struct ipw_priv *priv, u8 * ssid, int len)
43f66a6c 2233{
43f66a6c
JK
2234 if (!priv || !ssid) {
2235 IPW_ERROR("Invalid args\n");
2236 return -1;
2237 }
2238
0a7bcf26 2239 return ipw_send_cmd_pdu(priv, IPW_CMD_SSID, min(len, IW_ESSID_MAX_SIZE),
2638bc39 2240 ssid);
43f66a6c
JK
2241}
2242
0edd5b44 2243static int ipw_send_adapter_address(struct ipw_priv *priv, u8 * mac)
43f66a6c 2244{
43f66a6c
JK
2245 if (!priv || !mac) {
2246 IPW_ERROR("Invalid args\n");
2247 return -1;
2248 }
2249
2250 IPW_DEBUG_INFO("%s: Setting MAC to " MAC_FMT "\n",
2251 priv->net_dev->name, MAC_ARG(mac));
2252
2638bc39 2253 return ipw_send_cmd_pdu(priv, IPW_CMD_ADAPTER_ADDRESS, ETH_ALEN, mac);
43f66a6c
JK
2254}
2255
a613bffd
JK
2256/*
2257 * NOTE: This must be executed from our workqueue as it results in udelay
2258 * being called which may corrupt the keyboard if executed on default
2259 * workqueue
2260 */
43f66a6c
JK
2261static void ipw_adapter_restart(void *adapter)
2262{
2263 struct ipw_priv *priv = adapter;
2264
2265 if (priv->status & STATUS_RF_KILL_MASK)
2266 return;
2267
2268 ipw_down(priv);
b095c381
JK
2269
2270 if (priv->assoc_network &&
2271 (priv->assoc_network->capability & WLAN_CAPABILITY_IBSS))
2272 ipw_remove_current_network(priv);
2273
43f66a6c
JK
2274 if (ipw_up(priv)) {
2275 IPW_ERROR("Failed to up device\n");
2276 return;
2277 }
2278}
2279
c4028958 2280static void ipw_bg_adapter_restart(struct work_struct *work)
c848d0af 2281{
c4028958
DH
2282 struct ipw_priv *priv =
2283 container_of(work, struct ipw_priv, adapter_restart);
4644151b 2284 mutex_lock(&priv->mutex);
c4028958 2285 ipw_adapter_restart(priv);
4644151b 2286 mutex_unlock(&priv->mutex);
c848d0af
JK
2287}
2288
43f66a6c
JK
2289#define IPW_SCAN_CHECK_WATCHDOG (5 * HZ)
2290
2291static void ipw_scan_check(void *data)
2292{
2293 struct ipw_priv *priv = data;
2294 if (priv->status & (STATUS_SCANNING | STATUS_SCAN_ABORTING)) {
2295 IPW_DEBUG_SCAN("Scan completion watchdog resetting "
c7b6a674
ZY
2296 "adapter after (%dms).\n",
2297 jiffies_to_msecs(IPW_SCAN_CHECK_WATCHDOG));
a613bffd 2298 queue_work(priv->workqueue, &priv->adapter_restart);
43f66a6c
JK
2299 }
2300}
2301
c4028958 2302static void ipw_bg_scan_check(struct work_struct *work)
c848d0af 2303{
c4028958
DH
2304 struct ipw_priv *priv =
2305 container_of(work, struct ipw_priv, scan_check.work);
4644151b 2306 mutex_lock(&priv->mutex);
c4028958 2307 ipw_scan_check(priv);
4644151b 2308 mutex_unlock(&priv->mutex);
c848d0af
JK
2309}
2310
43f66a6c
JK
2311static int ipw_send_scan_request_ext(struct ipw_priv *priv,
2312 struct ipw_scan_request_ext *request)
2313{
0a7bcf26 2314 return ipw_send_cmd_pdu(priv, IPW_CMD_SCAN_REQUEST_EXT,
2638bc39 2315 sizeof(*request), request);
43f66a6c
JK
2316}
2317
2318static int ipw_send_scan_abort(struct ipw_priv *priv)
2319{
43f66a6c
JK
2320 if (!priv) {
2321 IPW_ERROR("Invalid args\n");
2322 return -1;
2323 }
2324
0a7bcf26 2325 return ipw_send_cmd_simple(priv, IPW_CMD_SCAN_ABORT);
43f66a6c
JK
2326}
2327
2328static int ipw_set_sensitivity(struct ipw_priv *priv, u16 sens)
2329{
0a7bcf26 2330 struct ipw_sensitivity_calib calib = {
851ca268 2331 .beacon_rssi_raw = cpu_to_le16(sens),
43f66a6c 2332 };
0a7bcf26
ZY
2333
2334 return ipw_send_cmd_pdu(priv, IPW_CMD_SENSITIVITY_CALIB, sizeof(calib),
2638bc39 2335 &calib);
43f66a6c
JK
2336}
2337
2338static int ipw_send_associate(struct ipw_priv *priv,
2339 struct ipw_associate *associate)
2340{
a613bffd 2341 struct ipw_associate tmp_associate;
0a7bcf26
ZY
2342
2343 if (!priv || !associate) {
2344 IPW_ERROR("Invalid args\n");
2345 return -1;
2346 }
2347
a613bffd
JK
2348 memcpy(&tmp_associate, associate, sizeof(*associate));
2349 tmp_associate.policy_support =
2350 cpu_to_le16(tmp_associate.policy_support);
2351 tmp_associate.assoc_tsf_msw = cpu_to_le32(tmp_associate.assoc_tsf_msw);
2352 tmp_associate.assoc_tsf_lsw = cpu_to_le32(tmp_associate.assoc_tsf_lsw);
2353 tmp_associate.capability = cpu_to_le16(tmp_associate.capability);
2354 tmp_associate.listen_interval =
2355 cpu_to_le16(tmp_associate.listen_interval);
2356 tmp_associate.beacon_interval =
2357 cpu_to_le16(tmp_associate.beacon_interval);
2358 tmp_associate.atim_window = cpu_to_le16(tmp_associate.atim_window);
2359
0a7bcf26 2360 return ipw_send_cmd_pdu(priv, IPW_CMD_ASSOCIATE, sizeof(tmp_associate),
2638bc39 2361 &tmp_associate);
43f66a6c
JK
2362}
2363
2364static int ipw_send_supported_rates(struct ipw_priv *priv,
2365 struct ipw_supported_rates *rates)
2366{
43f66a6c
JK
2367 if (!priv || !rates) {
2368 IPW_ERROR("Invalid args\n");
2369 return -1;
2370 }
2371
0a7bcf26 2372 return ipw_send_cmd_pdu(priv, IPW_CMD_SUPPORTED_RATES, sizeof(*rates),
2638bc39 2373 rates);
43f66a6c
JK
2374}
2375
2376static int ipw_set_random_seed(struct ipw_priv *priv)
2377{
0a7bcf26 2378 u32 val;
43f66a6c
JK
2379
2380 if (!priv) {
2381 IPW_ERROR("Invalid args\n");
2382 return -1;
2383 }
2384
0a7bcf26 2385 get_random_bytes(&val, sizeof(val));
43f66a6c 2386
0a7bcf26 2387 return ipw_send_cmd_pdu(priv, IPW_CMD_SEED_NUMBER, sizeof(val), &val);
43f66a6c
JK
2388}
2389
43f66a6c
JK
2390static int ipw_send_card_disable(struct ipw_priv *priv, u32 phy_off)
2391{
43f66a6c
JK
2392 if (!priv) {
2393 IPW_ERROR("Invalid args\n");
2394 return -1;
2395 }
2396
851ca268 2397 phy_off = cpu_to_le32(phy_off);
0a7bcf26 2398 return ipw_send_cmd_pdu(priv, IPW_CMD_CARD_DISABLE, sizeof(phy_off),
2638bc39 2399 &phy_off);
43f66a6c 2400}
43f66a6c 2401
0edd5b44 2402static int ipw_send_tx_power(struct ipw_priv *priv, struct ipw_tx_power *power)
43f66a6c 2403{
43f66a6c
JK
2404 if (!priv || !power) {
2405 IPW_ERROR("Invalid args\n");
2406 return -1;
2407 }
2408
2638bc39 2409 return ipw_send_cmd_pdu(priv, IPW_CMD_TX_POWER, sizeof(*power), power);
43f66a6c
JK
2410}
2411
6de9f7f2
ZY
2412static int ipw_set_tx_power(struct ipw_priv *priv)
2413{
1867b117 2414 const struct ieee80211_geo *geo = ieee80211_get_geo(priv->ieee);
6de9f7f2
ZY
2415 struct ipw_tx_power tx_power;
2416 s8 max_power;
2417 int i;
2418
2419 memset(&tx_power, 0, sizeof(tx_power));
2420
2421 /* configure device for 'G' band */
2422 tx_power.ieee_mode = IPW_G_MODE;
2423 tx_power.num_channels = geo->bg_channels;
2424 for (i = 0; i < geo->bg_channels; i++) {
2425 max_power = geo->bg[i].max_power;
2426 tx_power.channels_tx_power[i].channel_number =
2427 geo->bg[i].channel;
2428 tx_power.channels_tx_power[i].tx_power = max_power ?
2429 min(max_power, priv->tx_power) : priv->tx_power;
43f66a6c 2430 }
6de9f7f2
ZY
2431 if (ipw_send_tx_power(priv, &tx_power))
2432 return -EIO;
2433
2434 /* configure device to also handle 'B' band */
2435 tx_power.ieee_mode = IPW_B_MODE;
2436 if (ipw_send_tx_power(priv, &tx_power))
2437 return -EIO;
bf79451e 2438
6de9f7f2
ZY
2439 /* configure device to also handle 'A' band */
2440 if (priv->ieee->abg_true) {
2441 tx_power.ieee_mode = IPW_A_MODE;
2442 tx_power.num_channels = geo->a_channels;
2443 for (i = 0; i < tx_power.num_channels; i++) {
2444 max_power = geo->a[i].max_power;
2445 tx_power.channels_tx_power[i].channel_number =
2446 geo->a[i].channel;
2447 tx_power.channels_tx_power[i].tx_power = max_power ?
2448 min(max_power, priv->tx_power) : priv->tx_power;
2449 }
2450 if (ipw_send_tx_power(priv, &tx_power))
2451 return -EIO;
2452 }
43f66a6c
JK
2453 return 0;
2454}
2455
2456static int ipw_send_rts_threshold(struct ipw_priv *priv, u16 rts)
2457{
2458 struct ipw_rts_threshold rts_threshold = {
851ca268 2459 .rts_threshold = cpu_to_le16(rts),
43f66a6c 2460 };
43f66a6c
JK
2461
2462 if (!priv) {
2463 IPW_ERROR("Invalid args\n");
2464 return -1;
2465 }
2466
0a7bcf26
ZY
2467 return ipw_send_cmd_pdu(priv, IPW_CMD_RTS_THRESHOLD,
2468 sizeof(rts_threshold), &rts_threshold);
43f66a6c
JK
2469}
2470
2471static int ipw_send_frag_threshold(struct ipw_priv *priv, u16 frag)
2472{
2473 struct ipw_frag_threshold frag_threshold = {
851ca268 2474 .frag_threshold = cpu_to_le16(frag),
43f66a6c 2475 };
43f66a6c
JK
2476
2477 if (!priv) {
2478 IPW_ERROR("Invalid args\n");
2479 return -1;
2480 }
2481
0a7bcf26
ZY
2482 return ipw_send_cmd_pdu(priv, IPW_CMD_FRAG_THRESHOLD,
2483 sizeof(frag_threshold), &frag_threshold);
43f66a6c
JK
2484}
2485
2486static int ipw_send_power_mode(struct ipw_priv *priv, u32 mode)
2487{
0a7bcf26 2488 u32 param;
43f66a6c
JK
2489
2490 if (!priv) {
2491 IPW_ERROR("Invalid args\n");
2492 return -1;
2493 }
bf79451e 2494
43f66a6c
JK
2495 /* If on battery, set to 3, if AC set to CAM, else user
2496 * level */
2497 switch (mode) {
2498 case IPW_POWER_BATTERY:
0a7bcf26 2499 param = IPW_POWER_INDEX_3;
43f66a6c
JK
2500 break;
2501 case IPW_POWER_AC:
0a7bcf26 2502 param = IPW_POWER_MODE_CAM;
43f66a6c
JK
2503 break;
2504 default:
0a7bcf26 2505 param = mode;
43f66a6c
JK
2506 break;
2507 }
2508
4e157f08 2509 param = cpu_to_le32(param);
0a7bcf26 2510 return ipw_send_cmd_pdu(priv, IPW_CMD_POWER_MODE, sizeof(param),
2638bc39 2511 &param);
43f66a6c
JK
2512}
2513
afbf30a2
JK
2514static int ipw_send_retry_limit(struct ipw_priv *priv, u8 slimit, u8 llimit)
2515{
2516 struct ipw_retry_limit retry_limit = {
2517 .short_retry_limit = slimit,
2518 .long_retry_limit = llimit
2519 };
afbf30a2
JK
2520
2521 if (!priv) {
2522 IPW_ERROR("Invalid args\n");
2523 return -1;
2524 }
2525
0a7bcf26 2526 return ipw_send_cmd_pdu(priv, IPW_CMD_RETRY_LIMIT, sizeof(retry_limit),
2638bc39 2527 &retry_limit);
afbf30a2
JK
2528}
2529
43f66a6c
JK
2530/*
2531 * The IPW device contains a Microwire compatible EEPROM that stores
2532 * various data like the MAC address. Usually the firmware has exclusive
2533 * access to the eeprom, but during device initialization (before the
2534 * device driver has sent the HostComplete command to the firmware) the
2535 * device driver has read access to the EEPROM by way of indirect addressing
2536 * through a couple of memory mapped registers.
2537 *
2538 * The following is a simplified implementation for pulling data out of the
2539 * the eeprom, along with some helper functions to find information in
2540 * the per device private data's copy of the eeprom.
2541 *
2542 * NOTE: To better understand how these functions work (i.e what is a chip
2543 * select and why do have to keep driving the eeprom clock?), read
2544 * just about any data sheet for a Microwire compatible EEPROM.
2545 */
2546
2547/* write a 32 bit value into the indirect accessor register */
2548static inline void eeprom_write_reg(struct ipw_priv *p, u32 data)
2549{
2550 ipw_write_reg32(p, FW_MEM_REG_EEPROM_ACCESS, data);
bf79451e 2551
43f66a6c
JK
2552 /* the eeprom requires some time to complete the operation */
2553 udelay(p->eeprom_delay);
2554
2555 return;
2556}
2557
2558/* perform a chip select operation */
858119e1 2559static void eeprom_cs(struct ipw_priv *priv)
43f66a6c 2560{
0edd5b44
JG
2561 eeprom_write_reg(priv, 0);
2562 eeprom_write_reg(priv, EEPROM_BIT_CS);
2563 eeprom_write_reg(priv, EEPROM_BIT_CS | EEPROM_BIT_SK);
2564 eeprom_write_reg(priv, EEPROM_BIT_CS);
43f66a6c
JK
2565}
2566
2567/* perform a chip select operation */
858119e1 2568static void eeprom_disable_cs(struct ipw_priv *priv)
43f66a6c 2569{
0edd5b44
JG
2570 eeprom_write_reg(priv, EEPROM_BIT_CS);
2571 eeprom_write_reg(priv, 0);
2572 eeprom_write_reg(priv, EEPROM_BIT_SK);
43f66a6c
JK
2573}
2574
2575/* push a single bit down to the eeprom */
0edd5b44 2576static inline void eeprom_write_bit(struct ipw_priv *p, u8 bit)
43f66a6c 2577{
0edd5b44
JG
2578 int d = (bit ? EEPROM_BIT_DI : 0);
2579 eeprom_write_reg(p, EEPROM_BIT_CS | d);
2580 eeprom_write_reg(p, EEPROM_BIT_CS | d | EEPROM_BIT_SK);
43f66a6c
JK
2581}
2582
2583/* push an opcode followed by an address down to the eeprom */
0edd5b44 2584static void eeprom_op(struct ipw_priv *priv, u8 op, u8 addr)
43f66a6c
JK
2585{
2586 int i;
2587
2588 eeprom_cs(priv);
0edd5b44
JG
2589 eeprom_write_bit(priv, 1);
2590 eeprom_write_bit(priv, op & 2);
2591 eeprom_write_bit(priv, op & 1);
2592 for (i = 7; i >= 0; i--) {
2593 eeprom_write_bit(priv, addr & (1 << i));
43f66a6c
JK
2594 }
2595}
2596
2597/* pull 16 bits off the eeprom, one bit at a time */
0edd5b44 2598static u16 eeprom_read_u16(struct ipw_priv *priv, u8 addr)
43f66a6c
JK
2599{
2600 int i;
0edd5b44 2601 u16 r = 0;
bf79451e 2602
43f66a6c 2603 /* Send READ Opcode */
0edd5b44 2604 eeprom_op(priv, EEPROM_CMD_READ, addr);
43f66a6c
JK
2605
2606 /* Send dummy bit */
0edd5b44 2607 eeprom_write_reg(priv, EEPROM_BIT_CS);
43f66a6c
JK
2608
2609 /* Read the byte off the eeprom one bit at a time */
0edd5b44 2610 for (i = 0; i < 16; i++) {
43f66a6c 2611 u32 data = 0;
0edd5b44
JG
2612 eeprom_write_reg(priv, EEPROM_BIT_CS | EEPROM_BIT_SK);
2613 eeprom_write_reg(priv, EEPROM_BIT_CS);
2614 data = ipw_read_reg32(priv, FW_MEM_REG_EEPROM_ACCESS);
2615 r = (r << 1) | ((data & EEPROM_BIT_DO) ? 1 : 0);
43f66a6c 2616 }
bf79451e 2617
43f66a6c 2618 /* Send another dummy bit */
0edd5b44 2619 eeprom_write_reg(priv, 0);
43f66a6c 2620 eeprom_disable_cs(priv);
bf79451e 2621
43f66a6c
JK
2622 return r;
2623}
2624
2625/* helper function for pulling the mac address out of the private */
2626/* data's copy of the eeprom data */
0edd5b44 2627static void eeprom_parse_mac(struct ipw_priv *priv, u8 * mac)
43f66a6c 2628{
afbf30a2 2629 memcpy(mac, &priv->eeprom[EEPROM_MAC_ADDRESS], 6);
43f66a6c
JK
2630}
2631
2632/*
2633 * Either the device driver (i.e. the host) or the firmware can
2634 * load eeprom data into the designated region in SRAM. If neither
2635 * happens then the FW will shutdown with a fatal error.
2636 *
2637 * In order to signal the FW to load the EEPROM, the EEPROM_LOAD_DISABLE
2638 * bit needs region of shared SRAM needs to be non-zero.
2639 */
2640static void ipw_eeprom_init_sram(struct ipw_priv *priv)
2641{
2642 int i;
0edd5b44 2643 u16 *eeprom = (u16 *) priv->eeprom;
bf79451e 2644
43f66a6c
JK
2645 IPW_DEBUG_TRACE(">>\n");
2646
2647 /* read entire contents of eeprom into private buffer */
0edd5b44 2648 for (i = 0; i < 128; i++)
a613bffd 2649 eeprom[i] = le16_to_cpu(eeprom_read_u16(priv, (u8) i));
43f66a6c 2650
bf79451e
JG
2651 /*
2652 If the data looks correct, then copy it to our private
43f66a6c 2653 copy. Otherwise let the firmware know to perform the operation
c7b6a674 2654 on its own.
0edd5b44 2655 */
386093ef 2656 if (priv->eeprom[EEPROM_VERSION] != 0) {
43f66a6c
JK
2657 IPW_DEBUG_INFO("Writing EEPROM data into SRAM\n");
2658
2659 /* write the eeprom data to sram */
b095c381 2660 for (i = 0; i < IPW_EEPROM_IMAGE_SIZE; i++)
0edd5b44 2661 ipw_write8(priv, IPW_EEPROM_DATA + i, priv->eeprom[i]);
43f66a6c
JK
2662
2663 /* Do not load eeprom data on fatal error or suspend */
2664 ipw_write32(priv, IPW_EEPROM_LOAD_DISABLE, 0);
2665 } else {
2666 IPW_DEBUG_INFO("Enabling FW initializationg of SRAM\n");
2667
2668 /* Load eeprom data on fatal error or suspend */
2669 ipw_write32(priv, IPW_EEPROM_LOAD_DISABLE, 1);
2670 }
2671
2672 IPW_DEBUG_TRACE("<<\n");
2673}
2674
858119e1 2675static void ipw_zero_memory(struct ipw_priv *priv, u32 start, u32 count)
43f66a6c
JK
2676{
2677 count >>= 2;
0edd5b44
JG
2678 if (!count)
2679 return;
b095c381 2680 _ipw_write32(priv, IPW_AUTOINC_ADDR, start);
bf79451e 2681 while (count--)
b095c381 2682 _ipw_write32(priv, IPW_AUTOINC_DATA, 0);
43f66a6c
JK
2683}
2684
2685static inline void ipw_fw_dma_reset_command_blocks(struct ipw_priv *priv)
2686{
b095c381 2687 ipw_zero_memory(priv, IPW_SHARED_SRAM_DMA_CONTROL,
bf79451e 2688 CB_NUMBER_OF_ELEMENTS_SMALL *
43f66a6c
JK
2689 sizeof(struct command_block));
2690}
2691
2692static int ipw_fw_dma_enable(struct ipw_priv *priv)
0edd5b44 2693{ /* start dma engine but no transfers yet */
43f66a6c
JK
2694
2695 IPW_DEBUG_FW(">> : \n");
bf79451e 2696
43f66a6c
JK
2697 /* Start the dma */
2698 ipw_fw_dma_reset_command_blocks(priv);
bf79451e 2699
43f66a6c 2700 /* Write CB base address */
b095c381 2701 ipw_write_reg32(priv, IPW_DMA_I_CB_BASE, IPW_SHARED_SRAM_DMA_CONTROL);
43f66a6c
JK
2702
2703 IPW_DEBUG_FW("<< : \n");
2704 return 0;
2705}
2706
2707static void ipw_fw_dma_abort(struct ipw_priv *priv)
2708{
2709 u32 control = 0;
2710
2711 IPW_DEBUG_FW(">> :\n");
bf79451e 2712
67fd6b45 2713 /* set the Stop and Abort bit */
43f66a6c 2714 control = DMA_CONTROL_SMALL_CB_CONST_VALUE | DMA_CB_STOP_AND_ABORT;
b095c381 2715 ipw_write_reg32(priv, IPW_DMA_I_DMA_CONTROL, control);
43f66a6c 2716 priv->sram_desc.last_cb_index = 0;
bf79451e 2717
43f66a6c
JK
2718 IPW_DEBUG_FW("<< \n");
2719}
2720
0edd5b44
JG
2721static int ipw_fw_dma_write_command_block(struct ipw_priv *priv, int index,
2722 struct command_block *cb)
43f66a6c 2723{
0edd5b44 2724 u32 address =
b095c381 2725 IPW_SHARED_SRAM_DMA_CONTROL +
0edd5b44 2726 (sizeof(struct command_block) * index);
43f66a6c
JK
2727 IPW_DEBUG_FW(">> :\n");
2728
0edd5b44
JG
2729 ipw_write_indirect(priv, address, (u8 *) cb,
2730 (int)sizeof(struct command_block));
43f66a6c
JK
2731
2732 IPW_DEBUG_FW("<< :\n");
2733 return 0;
2734
2735}
2736
2737static int ipw_fw_dma_kick(struct ipw_priv *priv)
2738{
2739 u32 control = 0;
0edd5b44 2740 u32 index = 0;
43f66a6c
JK
2741
2742 IPW_DEBUG_FW(">> :\n");
bf79451e 2743
43f66a6c 2744 for (index = 0; index < priv->sram_desc.last_cb_index; index++)
0edd5b44
JG
2745 ipw_fw_dma_write_command_block(priv, index,
2746 &priv->sram_desc.cb_list[index]);
43f66a6c
JK
2747
2748 /* Enable the DMA in the CSR register */
b095c381
JK
2749 ipw_clear_bit(priv, IPW_RESET_REG,
2750 IPW_RESET_REG_MASTER_DISABLED |
2751 IPW_RESET_REG_STOP_MASTER);
bf79451e 2752
0edd5b44 2753 /* Set the Start bit. */
43f66a6c 2754 control = DMA_CONTROL_SMALL_CB_CONST_VALUE | DMA_CB_START;
b095c381 2755 ipw_write_reg32(priv, IPW_DMA_I_DMA_CONTROL, control);
43f66a6c
JK
2756
2757 IPW_DEBUG_FW("<< :\n");
2758 return 0;
2759}
2760
2761static void ipw_fw_dma_dump_command_block(struct ipw_priv *priv)
2762{
2763 u32 address;
0edd5b44
JG
2764 u32 register_value = 0;
2765 u32 cb_fields_address = 0;
43f66a6c
JK
2766
2767 IPW_DEBUG_FW(">> :\n");
b095c381 2768 address = ipw_read_reg32(priv, IPW_DMA_I_CURRENT_CB);
0edd5b44 2769 IPW_DEBUG_FW_INFO("Current CB is 0x%x \n", address);
43f66a6c
JK
2770
2771 /* Read the DMA Controlor register */
b095c381
JK
2772 register_value = ipw_read_reg32(priv, IPW_DMA_I_DMA_CONTROL);
2773 IPW_DEBUG_FW_INFO("IPW_DMA_I_DMA_CONTROL is 0x%x \n", register_value);
43f66a6c 2774
0edd5b44 2775 /* Print the CB values */
43f66a6c
JK
2776 cb_fields_address = address;
2777 register_value = ipw_read_reg32(priv, cb_fields_address);
0edd5b44 2778 IPW_DEBUG_FW_INFO("Current CB ControlField is 0x%x \n", register_value);
43f66a6c
JK
2779
2780 cb_fields_address += sizeof(u32);
2781 register_value = ipw_read_reg32(priv, cb_fields_address);
0edd5b44 2782 IPW_DEBUG_FW_INFO("Current CB Source Field is 0x%x \n", register_value);
43f66a6c
JK
2783
2784 cb_fields_address += sizeof(u32);
2785 register_value = ipw_read_reg32(priv, cb_fields_address);
2786 IPW_DEBUG_FW_INFO("Current CB Destination Field is 0x%x \n",
2787 register_value);
2788
2789 cb_fields_address += sizeof(u32);
2790 register_value = ipw_read_reg32(priv, cb_fields_address);
0edd5b44 2791 IPW_DEBUG_FW_INFO("Current CB Status Field is 0x%x \n", register_value);
43f66a6c
JK
2792
2793 IPW_DEBUG_FW(">> :\n");
2794}
2795
2796static int ipw_fw_dma_command_block_index(struct ipw_priv *priv)
2797{
2798 u32 current_cb_address = 0;
2799 u32 current_cb_index = 0;
2800
2801 IPW_DEBUG_FW("<< :\n");
b095c381 2802 current_cb_address = ipw_read_reg32(priv, IPW_DMA_I_CURRENT_CB);
bf79451e 2803
b095c381 2804 current_cb_index = (current_cb_address - IPW_SHARED_SRAM_DMA_CONTROL) /
0edd5b44 2805 sizeof(struct command_block);
bf79451e 2806
43f66a6c 2807 IPW_DEBUG_FW_INFO("Current CB index 0x%x address = 0x%X \n",
0edd5b44 2808 current_cb_index, current_cb_address);
43f66a6c
JK
2809
2810 IPW_DEBUG_FW(">> :\n");
2811 return current_cb_index;
2812
2813}
2814
2815static int ipw_fw_dma_add_command_block(struct ipw_priv *priv,
2816 u32 src_address,
2817 u32 dest_address,
2818 u32 length,
0edd5b44 2819 int interrupt_enabled, int is_last)
43f66a6c
JK
2820{
2821
bf79451e 2822 u32 control = CB_VALID | CB_SRC_LE | CB_DEST_LE | CB_SRC_AUTOINC |
0edd5b44
JG
2823 CB_SRC_IO_GATED | CB_DEST_AUTOINC | CB_SRC_SIZE_LONG |
2824 CB_DEST_SIZE_LONG;
43f66a6c 2825 struct command_block *cb;
0edd5b44 2826 u32 last_cb_element = 0;
43f66a6c
JK
2827
2828 IPW_DEBUG_FW_INFO("src_address=0x%x dest_address=0x%x length=0x%x\n",
2829 src_address, dest_address, length);
2830
2831 if (priv->sram_desc.last_cb_index >= CB_NUMBER_OF_ELEMENTS_SMALL)
2832 return -1;
2833
2834 last_cb_element = priv->sram_desc.last_cb_index;
2835 cb = &priv->sram_desc.cb_list[last_cb_element];
2836 priv->sram_desc.last_cb_index++;
2837
2838 /* Calculate the new CB control word */
0edd5b44 2839 if (interrupt_enabled)
43f66a6c
JK
2840 control |= CB_INT_ENABLED;
2841
2842 if (is_last)
2843 control |= CB_LAST_VALID;
bf79451e 2844
43f66a6c
JK
2845 control |= length;
2846
2847 /* Calculate the CB Element's checksum value */
0edd5b44 2848 cb->status = control ^ src_address ^ dest_address;
43f66a6c
JK
2849
2850 /* Copy the Source and Destination addresses */
2851 cb->dest_addr = dest_address;
2852 cb->source_addr = src_address;
2853
2854 /* Copy the Control Word last */
2855 cb->control = control;
2856
2857 return 0;
2858}
2859
2860static int ipw_fw_dma_add_buffer(struct ipw_priv *priv,
0edd5b44 2861 u32 src_phys, u32 dest_address, u32 length)
43f66a6c
JK
2862{
2863 u32 bytes_left = length;
0edd5b44
JG
2864 u32 src_offset = 0;
2865 u32 dest_offset = 0;
43f66a6c
JK
2866 int status = 0;
2867 IPW_DEBUG_FW(">> \n");
2868 IPW_DEBUG_FW_INFO("src_phys=0x%x dest_address=0x%x length=0x%x\n",
2869 src_phys, dest_address, length);
2870 while (bytes_left > CB_MAX_LENGTH) {
0edd5b44
JG
2871 status = ipw_fw_dma_add_command_block(priv,
2872 src_phys + src_offset,
2873 dest_address +
2874 dest_offset,
2875 CB_MAX_LENGTH, 0, 0);
43f66a6c
JK
2876 if (status) {
2877 IPW_DEBUG_FW_INFO(": Failed\n");
2878 return -1;
bf79451e 2879 } else
43f66a6c
JK
2880 IPW_DEBUG_FW_INFO(": Added new cb\n");
2881
2882 src_offset += CB_MAX_LENGTH;
2883 dest_offset += CB_MAX_LENGTH;
2884 bytes_left -= CB_MAX_LENGTH;
2885 }
2886
2887 /* add the buffer tail */
2888 if (bytes_left > 0) {
0edd5b44
JG
2889 status =
2890 ipw_fw_dma_add_command_block(priv, src_phys + src_offset,
2891 dest_address + dest_offset,
2892 bytes_left, 0, 0);
43f66a6c
JK
2893 if (status) {
2894 IPW_DEBUG_FW_INFO(": Failed on the buffer tail\n");
2895 return -1;
bf79451e 2896 } else
0edd5b44
JG
2897 IPW_DEBUG_FW_INFO
2898 (": Adding new cb - the buffer tail\n");
43f66a6c 2899 }
bf79451e 2900
43f66a6c
JK
2901 IPW_DEBUG_FW("<< \n");
2902 return 0;
2903}
2904
2905static int ipw_fw_dma_wait(struct ipw_priv *priv)
2906{
397ae121 2907 u32 current_index = 0, previous_index;
43f66a6c
JK
2908 u32 watchdog = 0;
2909
2910 IPW_DEBUG_FW(">> : \n");
2911
2912 current_index = ipw_fw_dma_command_block_index(priv);
397ae121 2913 IPW_DEBUG_FW_INFO("sram_desc.last_cb_index:0x%08X\n",
0edd5b44 2914 (int)priv->sram_desc.last_cb_index);
43f66a6c
JK
2915
2916 while (current_index < priv->sram_desc.last_cb_index) {
2917 udelay(50);
397ae121 2918 previous_index = current_index;
43f66a6c
JK
2919 current_index = ipw_fw_dma_command_block_index(priv);
2920
397ae121
ZY
2921 if (previous_index < current_index) {
2922 watchdog = 0;
2923 continue;
2924 }
2925 if (++watchdog > 400) {
43f66a6c
JK
2926 IPW_DEBUG_FW_INFO("Timeout\n");
2927 ipw_fw_dma_dump_command_block(priv);
2928 ipw_fw_dma_abort(priv);
2929 return -1;
2930 }
2931 }
2932
2933 ipw_fw_dma_abort(priv);
2934
0edd5b44 2935 /*Disable the DMA in the CSR register */
b095c381
JK
2936 ipw_set_bit(priv, IPW_RESET_REG,
2937 IPW_RESET_REG_MASTER_DISABLED | IPW_RESET_REG_STOP_MASTER);
43f66a6c
JK
2938
2939 IPW_DEBUG_FW("<< dmaWaitSync \n");
2940 return 0;
2941}
2942
bf79451e 2943static void ipw_remove_current_network(struct ipw_priv *priv)
43f66a6c
JK
2944{
2945 struct list_head *element, *safe;
bf79451e 2946 struct ieee80211_network *network = NULL;
a613bffd
JK
2947 unsigned long flags;
2948
2949 spin_lock_irqsave(&priv->ieee->lock, flags);
43f66a6c
JK
2950 list_for_each_safe(element, safe, &priv->ieee->network_list) {
2951 network = list_entry(element, struct ieee80211_network, list);
2952 if (!memcmp(network->bssid, priv->bssid, ETH_ALEN)) {
2953 list_del(element);
bf79451e 2954 list_add_tail(&network->list,
43f66a6c
JK
2955 &priv->ieee->network_free_list);
2956 }
2957 }
a613bffd 2958 spin_unlock_irqrestore(&priv->ieee->lock, flags);
43f66a6c
JK
2959}
2960
2961/**
bf79451e 2962 * Check that card is still alive.
43f66a6c
JK
2963 * Reads debug register from domain0.
2964 * If card is present, pre-defined value should
2965 * be found there.
bf79451e 2966 *
43f66a6c
JK
2967 * @param priv
2968 * @return 1 if card is present, 0 otherwise
2969 */
2970static inline int ipw_alive(struct ipw_priv *priv)
2971{
2972 return ipw_read32(priv, 0x90) == 0xd55555d5;
2973}
2974
c7b6a674 2975/* timeout in msec, attempted in 10-msec quanta */
858119e1 2976static int ipw_poll_bit(struct ipw_priv *priv, u32 addr, u32 mask,
43f66a6c
JK
2977 int timeout)
2978{
2979 int i = 0;
2980
2981 do {
bf79451e 2982 if ((ipw_read32(priv, addr) & mask) == mask)
43f66a6c
JK
2983 return i;
2984 mdelay(10);
2985 i += 10;
2986 } while (i < timeout);
bf79451e 2987
43f66a6c
JK
2988 return -ETIME;
2989}
2990
bf79451e 2991/* These functions load the firmware and micro code for the operation of
43f66a6c
JK
2992 * the ipw hardware. It assumes the buffer has all the bits for the
2993 * image and the caller is handling the memory allocation and clean up.
2994 */
2995
0edd5b44 2996static int ipw_stop_master(struct ipw_priv *priv)
43f66a6c
JK
2997{
2998 int rc;
bf79451e 2999
43f66a6c
JK
3000 IPW_DEBUG_TRACE(">> \n");
3001 /* stop master. typical delay - 0 */
b095c381 3002 ipw_set_bit(priv, IPW_RESET_REG, IPW_RESET_REG_STOP_MASTER);
43f66a6c 3003
c7b6a674 3004 /* timeout is in msec, polled in 10-msec quanta */
b095c381
JK
3005 rc = ipw_poll_bit(priv, IPW_RESET_REG,
3006 IPW_RESET_REG_MASTER_DISABLED, 100);
43f66a6c 3007 if (rc < 0) {
c7b6a674 3008 IPW_ERROR("wait for stop master failed after 100ms\n");
43f66a6c
JK
3009 return -1;
3010 }
3011
3012 IPW_DEBUG_INFO("stop master %dms\n", rc);
3013
3014 return rc;
3015}
3016
3017static void ipw_arc_release(struct ipw_priv *priv)
3018{
3019 IPW_DEBUG_TRACE(">> \n");
3020 mdelay(5);
3021
b095c381 3022 ipw_clear_bit(priv, IPW_RESET_REG, CBD_RESET_REG_PRINCETON_RESET);
43f66a6c
JK
3023
3024 /* no one knows timing, for safety add some delay */
3025 mdelay(5);
3026}
3027
43f66a6c
JK
3028struct fw_chunk {
3029 u32 address;
3030 u32 length;
3031};
3032
0edd5b44 3033static int ipw_load_ucode(struct ipw_priv *priv, u8 * data, size_t len)
43f66a6c
JK
3034{
3035 int rc = 0, i, addr;
3036 u8 cr = 0;
3037 u16 *image;
3038
0edd5b44 3039 image = (u16 *) data;
bf79451e 3040
43f66a6c
JK
3041 IPW_DEBUG_TRACE(">> \n");
3042
3043 rc = ipw_stop_master(priv);
3044
3045 if (rc < 0)
3046 return rc;
bf79451e 3047
b095c381
JK
3048 for (addr = IPW_SHARED_LOWER_BOUND;
3049 addr < IPW_REGISTER_DOMAIN1_END; addr += 4) {
43f66a6c
JK
3050 ipw_write32(priv, addr, 0);
3051 }
3052
3053 /* no ucode (yet) */
3054 memset(&priv->dino_alive, 0, sizeof(priv->dino_alive));
3055 /* destroy DMA queues */
3056 /* reset sequence */
3057
b095c381 3058 ipw_write_reg32(priv, IPW_MEM_HALT_AND_RESET, IPW_BIT_HALT_RESET_ON);
43f66a6c 3059 ipw_arc_release(priv);
b095c381 3060 ipw_write_reg32(priv, IPW_MEM_HALT_AND_RESET, IPW_BIT_HALT_RESET_OFF);
43f66a6c
JK
3061 mdelay(1);
3062
3063 /* reset PHY */
b095c381 3064 ipw_write_reg32(priv, IPW_INTERNAL_CMD_EVENT, IPW_BASEBAND_POWER_DOWN);
43f66a6c 3065 mdelay(1);
bf79451e 3066
b095c381 3067 ipw_write_reg32(priv, IPW_INTERNAL_CMD_EVENT, 0);
43f66a6c 3068 mdelay(1);
bf79451e 3069
43f66a6c 3070 /* enable ucode store */
c8fe6679
ZY
3071 ipw_write_reg8(priv, IPW_BASEBAND_CONTROL_STATUS, 0x0);
3072 ipw_write_reg8(priv, IPW_BASEBAND_CONTROL_STATUS, DINO_ENABLE_CS);
43f66a6c
JK
3073 mdelay(1);
3074
3075 /* write ucode */
3076 /**
3077 * @bug
3078 * Do NOT set indirect address register once and then
3079 * store data to indirect data register in the loop.
3080 * It seems very reasonable, but in this case DINO do not
3081 * accept ucode. It is essential to set address each time.
3082 */
3083 /* load new ipw uCode */
3084 for (i = 0; i < len / 2; i++)
b095c381 3085 ipw_write_reg16(priv, IPW_BASEBAND_CONTROL_STORE,
a613bffd 3086 cpu_to_le16(image[i]));
43f66a6c 3087
43f66a6c 3088 /* enable DINO */
b095c381
JK
3089 ipw_write_reg8(priv, IPW_BASEBAND_CONTROL_STATUS, 0);
3090 ipw_write_reg8(priv, IPW_BASEBAND_CONTROL_STATUS, DINO_ENABLE_SYSTEM);
43f66a6c 3091
0edd5b44 3092 /* this is where the igx / win driver deveates from the VAP driver. */
43f66a6c
JK
3093
3094 /* wait for alive response */
3095 for (i = 0; i < 100; i++) {
3096 /* poll for incoming data */
b095c381 3097 cr = ipw_read_reg8(priv, IPW_BASEBAND_CONTROL_STATUS);
43f66a6c
JK
3098 if (cr & DINO_RXFIFO_DATA)
3099 break;
3100 mdelay(1);
3101 }
3102
3103 if (cr & DINO_RXFIFO_DATA) {
3104 /* alive_command_responce size is NOT multiple of 4 */
3105 u32 response_buffer[(sizeof(priv->dino_alive) + 3) / 4];
bf79451e
JG
3106
3107 for (i = 0; i < ARRAY_SIZE(response_buffer); i++)
43f66a6c 3108 response_buffer[i] =
a613bffd 3109 le32_to_cpu(ipw_read_reg32(priv,
b095c381 3110 IPW_BASEBAND_RX_FIFO_READ));
43f66a6c
JK
3111 memcpy(&priv->dino_alive, response_buffer,
3112 sizeof(priv->dino_alive));
3113 if (priv->dino_alive.alive_command == 1
3114 && priv->dino_alive.ucode_valid == 1) {
3115 rc = 0;
0edd5b44
JG
3116 IPW_DEBUG_INFO
3117 ("Microcode OK, rev. %d (0x%x) dev. %d (0x%x) "
3118 "of %02d/%02d/%02d %02d:%02d\n",
3119 priv->dino_alive.software_revision,
3120 priv->dino_alive.software_revision,
3121 priv->dino_alive.device_identifier,
3122 priv->dino_alive.device_identifier,
3123 priv->dino_alive.time_stamp[0],
3124 priv->dino_alive.time_stamp[1],
3125 priv->dino_alive.time_stamp[2],
3126 priv->dino_alive.time_stamp[3],
3127 priv->dino_alive.time_stamp[4]);
43f66a6c
JK
3128 } else {
3129 IPW_DEBUG_INFO("Microcode is not alive\n");
3130 rc = -EINVAL;
3131 }
3132 } else {
3133 IPW_DEBUG_INFO("No alive response from DINO\n");
3134 rc = -ETIME;
3135 }
3136
3137 /* disable DINO, otherwise for some reason
3138 firmware have problem getting alive resp. */
b095c381 3139 ipw_write_reg8(priv, IPW_BASEBAND_CONTROL_STATUS, 0);
43f66a6c 3140
43f66a6c
JK
3141 return rc;
3142}
3143
0edd5b44 3144static int ipw_load_firmware(struct ipw_priv *priv, u8 * data, size_t len)
43f66a6c
JK
3145{
3146 int rc = -1;
3147 int offset = 0;
3148 struct fw_chunk *chunk;
3149 dma_addr_t shared_phys;
3150 u8 *shared_virt;
3151
3152 IPW_DEBUG_TRACE("<< : \n");
3153 shared_virt = pci_alloc_consistent(priv->pci_dev, len, &shared_phys);
3154
3155 if (!shared_virt)
3156 return -ENOMEM;
3157
3158 memmove(shared_virt, data, len);
3159
3160 /* Start the Dma */
3161 rc = ipw_fw_dma_enable(priv);
3162
3163 if (priv->sram_desc.last_cb_index > 0) {
3164 /* the DMA is already ready this would be a bug. */
3165 BUG();
3166 goto out;
3167 }
3168
3169 do {
3170 chunk = (struct fw_chunk *)(data + offset);
3171 offset += sizeof(struct fw_chunk);
3172 /* build DMA packet and queue up for sending */
bf79451e 3173 /* dma to chunk->address, the chunk->length bytes from data +
43f66a6c
JK
3174 * offeset*/
3175 /* Dma loading */
3176 rc = ipw_fw_dma_add_buffer(priv, shared_phys + offset,
a613bffd
JK
3177 le32_to_cpu(chunk->address),
3178 le32_to_cpu(chunk->length));
43f66a6c
JK
3179 if (rc) {
3180 IPW_DEBUG_INFO("dmaAddBuffer Failed\n");
3181 goto out;
3182 }
bf79451e 3183
a613bffd 3184 offset += le32_to_cpu(chunk->length);
43f66a6c
JK
3185 } while (offset < len);
3186
0edd5b44 3187 /* Run the DMA and wait for the answer */
43f66a6c
JK
3188 rc = ipw_fw_dma_kick(priv);
3189 if (rc) {
3190 IPW_ERROR("dmaKick Failed\n");
3191 goto out;
3192 }
3193
3194 rc = ipw_fw_dma_wait(priv);
3195 if (rc) {
3196 IPW_ERROR("dmaWaitSync Failed\n");
3197 goto out;
3198 }
0edd5b44
JG
3199 out:
3200 pci_free_consistent(priv->pci_dev, len, shared_virt, shared_phys);
43f66a6c
JK
3201 return rc;
3202}
3203
3204/* stop nic */
3205static int ipw_stop_nic(struct ipw_priv *priv)
3206{
3207 int rc = 0;
3208
0edd5b44 3209 /* stop */
b095c381 3210 ipw_write32(priv, IPW_RESET_REG, IPW_RESET_REG_STOP_MASTER);
bf79451e 3211
b095c381
JK
3212 rc = ipw_poll_bit(priv, IPW_RESET_REG,
3213 IPW_RESET_REG_MASTER_DISABLED, 500);
43f66a6c 3214 if (rc < 0) {
c7b6a674 3215 IPW_ERROR("wait for reg master disabled failed after 500ms\n");
43f66a6c 3216 return rc;
bf79451e 3217 }
43f66a6c 3218
b095c381 3219 ipw_set_bit(priv, IPW_RESET_REG, CBD_RESET_REG_PRINCETON_RESET);
bf79451e 3220
43f66a6c
JK
3221 return rc;
3222}
3223
3224static void ipw_start_nic(struct ipw_priv *priv)
3225{
3226 IPW_DEBUG_TRACE(">>\n");
3227
0edd5b44 3228 /* prvHwStartNic release ARC */
b095c381
JK
3229 ipw_clear_bit(priv, IPW_RESET_REG,
3230 IPW_RESET_REG_MASTER_DISABLED |
3231 IPW_RESET_REG_STOP_MASTER |
43f66a6c 3232 CBD_RESET_REG_PRINCETON_RESET);
bf79451e 3233
43f66a6c 3234 /* enable power management */
b095c381
JK
3235 ipw_set_bit(priv, IPW_GP_CNTRL_RW,
3236 IPW_GP_CNTRL_BIT_HOST_ALLOWS_STANDBY);
43f66a6c
JK
3237
3238 IPW_DEBUG_TRACE("<<\n");
3239}
bf79451e 3240
43f66a6c
JK
3241static int ipw_init_nic(struct ipw_priv *priv)
3242{
3243 int rc;
3244
3245 IPW_DEBUG_TRACE(">>\n");
bf79451e 3246 /* reset */
43f66a6c
JK
3247 /*prvHwInitNic */
3248 /* set "initialization complete" bit to move adapter to D0 state */
b095c381 3249 ipw_set_bit(priv, IPW_GP_CNTRL_RW, IPW_GP_CNTRL_BIT_INIT_DONE);
43f66a6c
JK
3250
3251 /* low-level PLL activation */
b095c381
JK
3252 ipw_write32(priv, IPW_READ_INT_REGISTER,
3253 IPW_BIT_INT_HOST_SRAM_READ_INT_REGISTER);
43f66a6c
JK
3254
3255 /* wait for clock stabilization */
b095c381
JK
3256 rc = ipw_poll_bit(priv, IPW_GP_CNTRL_RW,
3257 IPW_GP_CNTRL_BIT_CLOCK_READY, 250);
0edd5b44 3258 if (rc < 0)
43f66a6c
JK
3259 IPW_DEBUG_INFO("FAILED wait for clock stablization\n");
3260
3261 /* assert SW reset */
b095c381 3262 ipw_set_bit(priv, IPW_RESET_REG, IPW_RESET_REG_SW_RESET);
43f66a6c
JK
3263
3264 udelay(10);
3265
3266 /* set "initialization complete" bit to move adapter to D0 state */
b095c381 3267 ipw_set_bit(priv, IPW_GP_CNTRL_RW, IPW_GP_CNTRL_BIT_INIT_DONE);
43f66a6c
JK
3268
3269 IPW_DEBUG_TRACE(">>\n");
3270 return 0;
3271}
3272
bf79451e 3273/* Call this function from process context, it will sleep in request_firmware.
43f66a6c
JK
3274 * Probe is an ok place to call this from.
3275 */
3276static int ipw_reset_nic(struct ipw_priv *priv)
3277{
3278 int rc = 0;
a613bffd 3279 unsigned long flags;
43f66a6c
JK
3280
3281 IPW_DEBUG_TRACE(">>\n");
bf79451e 3282
43f66a6c 3283 rc = ipw_init_nic(priv);
bf79451e 3284
a613bffd 3285 spin_lock_irqsave(&priv->lock, flags);
43f66a6c
JK
3286 /* Clear the 'host command active' bit... */
3287 priv->status &= ~STATUS_HCMD_ACTIVE;
3288 wake_up_interruptible(&priv->wait_command_queue);
afbf30a2
JK
3289 priv->status &= ~(STATUS_SCANNING | STATUS_SCAN_ABORTING);
3290 wake_up_interruptible(&priv->wait_state);
a613bffd 3291 spin_unlock_irqrestore(&priv->lock, flags);
43f66a6c
JK
3292
3293 IPW_DEBUG_TRACE("<<\n");
3294 return rc;
bf79451e 3295}
43f66a6c 3296
9006ea75
JK
3297
3298struct ipw_fw {
0070f8c7
ZY
3299 __le32 ver;
3300 __le32 boot_size;
3301 __le32 ucode_size;
3302 __le32 fw_size;
9006ea75
JK
3303 u8 data[0];
3304};
3305
bf79451e 3306static int ipw_get_fw(struct ipw_priv *priv,
9006ea75 3307 const struct firmware **raw, const char *name)
43f66a6c 3308{
9006ea75 3309 struct ipw_fw *fw;
43f66a6c
JK
3310 int rc;
3311
3312 /* ask firmware_class module to get the boot firmware off disk */
9006ea75 3313 rc = request_firmware(raw, name, &priv->pci_dev->dev);
43f66a6c 3314 if (rc < 0) {
9006ea75 3315 IPW_ERROR("%s request_firmware failed: Reason %d\n", name, rc);
43f66a6c 3316 return rc;
bf79451e 3317 }
43f66a6c 3318
9006ea75
JK
3319 if ((*raw)->size < sizeof(*fw)) {
3320 IPW_ERROR("%s is too small (%zd)\n", name, (*raw)->size);
3321 return -EINVAL;
3322 }
3323
3324 fw = (void *)(*raw)->data;
3325
0070f8c7
ZY
3326 if ((*raw)->size < sizeof(*fw) + le32_to_cpu(fw->boot_size) +
3327 le32_to_cpu(fw->ucode_size) + le32_to_cpu(fw->fw_size)) {
9006ea75
JK
3328 IPW_ERROR("%s is too small or corrupt (%zd)\n",
3329 name, (*raw)->size);
43f66a6c
JK
3330 return -EINVAL;
3331 }
3332
9006ea75 3333 IPW_DEBUG_INFO("Read firmware '%s' image v%d.%d (%zd bytes)\n",
43f66a6c 3334 name,
9006ea75
JK
3335 le32_to_cpu(fw->ver) >> 16,
3336 le32_to_cpu(fw->ver) & 0xff,
3337 (*raw)->size - sizeof(*fw));
43f66a6c
JK
3338 return 0;
3339}
3340
b095c381 3341#define IPW_RX_BUF_SIZE (3000)
43f66a6c 3342
858119e1 3343static void ipw_rx_queue_reset(struct ipw_priv *priv,
43f66a6c
JK
3344 struct ipw_rx_queue *rxq)
3345{
3346 unsigned long flags;
3347 int i;
3348
3349 spin_lock_irqsave(&rxq->lock, flags);
3350
3351 INIT_LIST_HEAD(&rxq->rx_free);
3352 INIT_LIST_HEAD(&rxq->rx_used);
3353
3354 /* Fill the rx_used queue with _all_ of the Rx buffers */
3355 for (i = 0; i < RX_FREE_BUFFERS + RX_QUEUE_SIZE; i++) {
3356 /* In the reset function, these buffers may have been allocated
3357 * to an SKB, so we need to unmap and free potential storage */
3358 if (rxq->pool[i].skb != NULL) {
3359 pci_unmap_single(priv->pci_dev, rxq->pool[i].dma_addr,
b095c381 3360 IPW_RX_BUF_SIZE, PCI_DMA_FROMDEVICE);
43f66a6c 3361 dev_kfree_skb(rxq->pool[i].skb);
a613bffd 3362 rxq->pool[i].skb = NULL;
43f66a6c
JK
3363 }
3364 list_add_tail(&rxq->pool[i].list, &rxq->rx_used);
3365 }
bf79451e 3366
43f66a6c
JK
3367 /* Set us so that we have processed and used all buffers, but have
3368 * not restocked the Rx queue with fresh buffers */
3369 rxq->read = rxq->write = 0;
3370 rxq->processed = RX_QUEUE_SIZE - 1;
3371 rxq->free_count = 0;
3372 spin_unlock_irqrestore(&rxq->lock, flags);
3373}
3374
3375#ifdef CONFIG_PM
3376static int fw_loaded = 0;
9006ea75 3377static const struct firmware *raw = NULL;
afbf30a2
JK
3378
3379static void free_firmware(void)
3380{
3381 if (fw_loaded) {
9006ea75
JK
3382 release_firmware(raw);
3383 raw = NULL;
afbf30a2
JK
3384 fw_loaded = 0;
3385 }
3386}
3387#else
3388#define free_firmware() do {} while (0)
43f66a6c
JK
3389#endif
3390
3391static int ipw_load(struct ipw_priv *priv)
3392{
3393#ifndef CONFIG_PM
9006ea75 3394 const struct firmware *raw = NULL;
43f66a6c 3395#endif
9006ea75
JK
3396 struct ipw_fw *fw;
3397 u8 *boot_img, *ucode_img, *fw_img;
3398 u8 *name = NULL;
43f66a6c
JK
3399 int rc = 0, retries = 3;
3400
397ae121
ZY
3401 switch (priv->ieee->iw_mode) {
3402 case IW_MODE_ADHOC:
9006ea75 3403 name = "ipw2200-ibss.fw";
397ae121 3404 break;
b095c381 3405#ifdef CONFIG_IPW2200_MONITOR
397ae121 3406 case IW_MODE_MONITOR:
9006ea75 3407 name = "ipw2200-sniffer.fw";
397ae121 3408 break;
43f66a6c 3409#endif
397ae121 3410 case IW_MODE_INFRA:
9006ea75 3411 name = "ipw2200-bss.fw";
397ae121 3412 break;
9006ea75
JK
3413 }
3414
3415 if (!name) {
397ae121 3416 rc = -EINVAL;
9006ea75
JK
3417 goto error;
3418 }
3419
3420#ifdef CONFIG_PM
3421 if (!fw_loaded) {
3422#endif
3423 rc = ipw_get_fw(priv, &raw, name);
3424 if (rc < 0)
3425 goto error;
3426#ifdef CONFIG_PM
43f66a6c 3427 }
9006ea75
JK
3428#endif
3429
3430 fw = (void *)raw->data;
3431 boot_img = &fw->data[0];
0070f8c7
ZY
3432 ucode_img = &fw->data[le32_to_cpu(fw->boot_size)];
3433 fw_img = &fw->data[le32_to_cpu(fw->boot_size) +
3434 le32_to_cpu(fw->ucode_size)];
397ae121
ZY
3435
3436 if (rc < 0)
3437 goto error;
43f66a6c
JK
3438
3439 if (!priv->rxq)
3440 priv->rxq = ipw_rx_queue_alloc(priv);
3441 else
3442 ipw_rx_queue_reset(priv, priv->rxq);
3443 if (!priv->rxq) {
3444 IPW_ERROR("Unable to initialize Rx queue\n");
3445 goto error;
3446 }
3447
0edd5b44 3448 retry:
43f66a6c 3449 /* Ensure interrupts are disabled */
b095c381 3450 ipw_write32(priv, IPW_INTA_MASK_R, ~IPW_INTA_MASK_ALL);
43f66a6c
JK
3451 priv->status &= ~STATUS_INT_ENABLED;
3452
3453 /* ack pending interrupts */
b095c381 3454 ipw_write32(priv, IPW_INTA_RW, IPW_INTA_MASK_ALL);
bf79451e 3455
43f66a6c
JK
3456 ipw_stop_nic(priv);
3457
3458 rc = ipw_reset_nic(priv);
397ae121 3459 if (rc < 0) {
43f66a6c
JK
3460 IPW_ERROR("Unable to reset NIC\n");
3461 goto error;
3462 }
3463
b095c381
JK
3464 ipw_zero_memory(priv, IPW_NIC_SRAM_LOWER_BOUND,
3465 IPW_NIC_SRAM_UPPER_BOUND - IPW_NIC_SRAM_LOWER_BOUND);
43f66a6c
JK
3466
3467 /* DMA the initial boot firmware into the device */
0070f8c7 3468 rc = ipw_load_firmware(priv, boot_img, le32_to_cpu(fw->boot_size));
43f66a6c 3469 if (rc < 0) {
a4f6bbb3 3470 IPW_ERROR("Unable to load boot firmware: %d\n", rc);
43f66a6c
JK
3471 goto error;
3472 }
3473
3474 /* kick start the device */
3475 ipw_start_nic(priv);
3476
c7b6a674 3477 /* wait for the device to finish its initial startup sequence */
b095c381
JK
3478 rc = ipw_poll_bit(priv, IPW_INTA_RW,
3479 IPW_INTA_BIT_FW_INITIALIZATION_DONE, 500);
43f66a6c
JK
3480 if (rc < 0) {
3481 IPW_ERROR("device failed to boot initial fw image\n");
3482 goto error;
3483 }
3484 IPW_DEBUG_INFO("initial device response after %dms\n", rc);
3485
bf79451e 3486 /* ack fw init done interrupt */
b095c381 3487 ipw_write32(priv, IPW_INTA_RW, IPW_INTA_BIT_FW_INITIALIZATION_DONE);
43f66a6c
JK
3488
3489 /* DMA the ucode into the device */
0070f8c7 3490 rc = ipw_load_ucode(priv, ucode_img, le32_to_cpu(fw->ucode_size));
43f66a6c 3491 if (rc < 0) {
a4f6bbb3 3492 IPW_ERROR("Unable to load ucode: %d\n", rc);
43f66a6c
JK
3493 goto error;
3494 }
bf79451e 3495
43f66a6c
JK
3496 /* stop nic */
3497 ipw_stop_nic(priv);
3498
3499 /* DMA bss firmware into the device */
0070f8c7 3500 rc = ipw_load_firmware(priv, fw_img, le32_to_cpu(fw->fw_size));
0edd5b44 3501 if (rc < 0) {
a4f6bbb3 3502 IPW_ERROR("Unable to load firmware: %d\n", rc);
43f66a6c
JK
3503 goto error;
3504 }
397ae121
ZY
3505#ifdef CONFIG_PM
3506 fw_loaded = 1;
3507#endif
3508
43f66a6c
JK
3509 ipw_write32(priv, IPW_EEPROM_LOAD_DISABLE, 0);
3510
3511 rc = ipw_queue_reset(priv);
397ae121 3512 if (rc < 0) {
43f66a6c
JK
3513 IPW_ERROR("Unable to initialize queues\n");
3514 goto error;
3515 }
3516
3517 /* Ensure interrupts are disabled */
b095c381 3518 ipw_write32(priv, IPW_INTA_MASK_R, ~IPW_INTA_MASK_ALL);
c848d0af 3519 /* ack pending interrupts */
b095c381 3520 ipw_write32(priv, IPW_INTA_RW, IPW_INTA_MASK_ALL);
bf79451e 3521
43f66a6c
JK
3522 /* kick start the device */
3523 ipw_start_nic(priv);
3524
b095c381 3525 if (ipw_read32(priv, IPW_INTA_RW) & IPW_INTA_BIT_PARITY_ERROR) {
43f66a6c
JK
3526 if (retries > 0) {
3527 IPW_WARNING("Parity error. Retrying init.\n");
3528 retries--;
3529 goto retry;
3530 }
3531
3532 IPW_ERROR("TODO: Handle parity error -- schedule restart?\n");
3533 rc = -EIO;
3534 goto error;
3535 }
3536
3537 /* wait for the device */
b095c381
JK
3538 rc = ipw_poll_bit(priv, IPW_INTA_RW,
3539 IPW_INTA_BIT_FW_INITIALIZATION_DONE, 500);
43f66a6c 3540 if (rc < 0) {
c7b6a674 3541 IPW_ERROR("device failed to start within 500ms\n");
43f66a6c
JK
3542 goto error;
3543 }
3544 IPW_DEBUG_INFO("device response after %dms\n", rc);
3545
3546 /* ack fw init done interrupt */
b095c381 3547 ipw_write32(priv, IPW_INTA_RW, IPW_INTA_BIT_FW_INITIALIZATION_DONE);
43f66a6c
JK
3548
3549 /* read eeprom data and initialize the eeprom region of sram */
3550 priv->eeprom_delay = 1;
bf79451e 3551 ipw_eeprom_init_sram(priv);
43f66a6c
JK
3552
3553 /* enable interrupts */
3554 ipw_enable_interrupts(priv);
3555
3556 /* Ensure our queue has valid packets */
3557 ipw_rx_queue_replenish(priv);
3558
b095c381 3559 ipw_write32(priv, IPW_RX_READ_INDEX, priv->rxq->read);
43f66a6c
JK
3560
3561 /* ack pending interrupts */
b095c381 3562 ipw_write32(priv, IPW_INTA_RW, IPW_INTA_MASK_ALL);
43f66a6c
JK
3563
3564#ifndef CONFIG_PM
9006ea75 3565 release_firmware(raw);
43f66a6c
JK
3566#endif
3567 return 0;
3568
0edd5b44 3569 error:
43f66a6c
JK
3570 if (priv->rxq) {
3571 ipw_rx_queue_free(priv, priv->rxq);
3572 priv->rxq = NULL;
3573 }
3574 ipw_tx_queue_free(priv);
9006ea75
JK
3575 if (raw)
3576 release_firmware(raw);
43f66a6c
JK
3577#ifdef CONFIG_PM
3578 fw_loaded = 0;
9006ea75 3579 raw = NULL;
43f66a6c
JK
3580#endif
3581
3582 return rc;
3583}
3584
bf79451e 3585/**
43f66a6c
JK
3586 * DMA services
3587 *
3588 * Theory of operation
3589 *
3590 * A queue is a circular buffers with 'Read' and 'Write' pointers.
3591 * 2 empty entries always kept in the buffer to protect from overflow.
3592 *
3593 * For Tx queue, there are low mark and high mark limits. If, after queuing
bf79451e
JG
3594 * the packet for Tx, free space become < low mark, Tx queue stopped. When
3595 * reclaiming packets (on 'tx done IRQ), if free space become > high mark,
43f66a6c
JK
3596 * Tx queue resumed.
3597 *
3598 * The IPW operates with six queues, one receive queue in the device's
3599 * sram, one transmit queue for sending commands to the device firmware,
bf79451e 3600 * and four transmit queues for data.
43f66a6c 3601 *
bf79451e 3602 * The four transmit queues allow for performing quality of service (qos)
43f66a6c 3603 * transmissions as per the 802.11 protocol. Currently Linux does not
bf79451e 3604 * provide a mechanism to the user for utilizing prioritized queues, so
43f66a6c
JK
3605 * we only utilize the first data transmit queue (queue1).
3606 */
3607
3608/**
3609 * Driver allocates buffers of this size for Rx
3610 */
3611
3612static inline int ipw_queue_space(const struct clx2_queue *q)
3613{
3614 int s = q->last_used - q->first_empty;
3615 if (s <= 0)
3616 s += q->n_bd;
3617 s -= 2; /* keep some reserve to not confuse empty and full situations */
3618 if (s < 0)
3619 s = 0;
3620 return s;
3621}
3622
3623static inline int ipw_queue_inc_wrap(int index, int n_bd)
3624{
3625 return (++index == n_bd) ? 0 : index;
3626}
3627
3628/**
3629 * Initialize common DMA queue structure
bf79451e 3630 *
43f66a6c
JK
3631 * @param q queue to init
3632 * @param count Number of BD's to allocate. Should be power of 2
3633 * @param read_register Address for 'read' register
3634 * (not offset within BAR, full address)
3635 * @param write_register Address for 'write' register
3636 * (not offset within BAR, full address)
3637 * @param base_register Address for 'base' register
3638 * (not offset within BAR, full address)
3639 * @param size Address for 'size' register
3640 * (not offset within BAR, full address)
3641 */
bf79451e 3642static void ipw_queue_init(struct ipw_priv *priv, struct clx2_queue *q,
0edd5b44 3643 int count, u32 read, u32 write, u32 base, u32 size)
43f66a6c
JK
3644{
3645 q->n_bd = count;
3646
3647 q->low_mark = q->n_bd / 4;
3648 if (q->low_mark < 4)
3649 q->low_mark = 4;
3650
3651 q->high_mark = q->n_bd / 8;
3652 if (q->high_mark < 2)
3653 q->high_mark = 2;
3654
3655 q->first_empty = q->last_used = 0;
3656 q->reg_r = read;
3657 q->reg_w = write;
3658
3659 ipw_write32(priv, base, q->dma_addr);
3660 ipw_write32(priv, size, count);
3661 ipw_write32(priv, read, 0);
3662 ipw_write32(priv, write, 0);
3663
3664 _ipw_read32(priv, 0x90);
3665}
3666
bf79451e 3667static int ipw_queue_tx_init(struct ipw_priv *priv,
43f66a6c 3668 struct clx2_tx_queue *q,
0edd5b44 3669 int count, u32 read, u32 write, u32 base, u32 size)
43f66a6c
JK
3670{
3671 struct pci_dev *dev = priv->pci_dev;
3672
3673 q->txb = kmalloc(sizeof(q->txb[0]) * count, GFP_KERNEL);
3674 if (!q->txb) {
3675 IPW_ERROR("vmalloc for auxilary BD structures failed\n");
3676 return -ENOMEM;
3677 }
3678
0edd5b44
JG
3679 q->bd =
3680 pci_alloc_consistent(dev, sizeof(q->bd[0]) * count, &q->q.dma_addr);
43f66a6c 3681 if (!q->bd) {
aaa4d308 3682 IPW_ERROR("pci_alloc_consistent(%zd) failed\n",
0edd5b44 3683 sizeof(q->bd[0]) * count);
43f66a6c
JK
3684 kfree(q->txb);
3685 q->txb = NULL;
3686 return -ENOMEM;
3687 }
3688
3689 ipw_queue_init(priv, &q->q, count, read, write, base, size);
3690 return 0;
3691}
3692
3693/**
3694 * Free one TFD, those at index [txq->q.last_used].
3695 * Do NOT advance any indexes
bf79451e 3696 *
43f66a6c
JK
3697 * @param dev
3698 * @param txq
3699 */
3700static void ipw_queue_tx_free_tfd(struct ipw_priv *priv,
3701 struct clx2_tx_queue *txq)
3702{
3703 struct tfd_frame *bd = &txq->bd[txq->q.last_used];
3704 struct pci_dev *dev = priv->pci_dev;
3705 int i;
bf79451e 3706
43f66a6c
JK
3707 /* classify bd */
3708 if (bd->control_flags.message_type == TX_HOST_COMMAND_TYPE)
3709 /* nothing to cleanup after for host commands */
3710 return;
3711
3712 /* sanity check */
a613bffd
JK
3713 if (le32_to_cpu(bd->u.data.num_chunks) > NUM_TFD_CHUNKS) {
3714 IPW_ERROR("Too many chunks: %i\n",
3715 le32_to_cpu(bd->u.data.num_chunks));
43f66a6c
JK
3716 /** @todo issue fatal error, it is quite serious situation */
3717 return;
3718 }
3719
3720 /* unmap chunks if any */
a613bffd
JK
3721 for (i = 0; i < le32_to_cpu(bd->u.data.num_chunks); i++) {
3722 pci_unmap_single(dev, le32_to_cpu(bd->u.data.chunk_ptr[i]),
3723 le16_to_cpu(bd->u.data.chunk_len[i]),
3724 PCI_DMA_TODEVICE);
43f66a6c
JK
3725 if (txq->txb[txq->q.last_used]) {
3726 ieee80211_txb_free(txq->txb[txq->q.last_used]);
3727 txq->txb[txq->q.last_used] = NULL;
3728 }
3729 }
3730}
3731
3732/**
3733 * Deallocate DMA queue.
bf79451e 3734 *
43f66a6c
JK
3735 * Empty queue by removing and destroying all BD's.
3736 * Free all buffers.
bf79451e 3737 *
43f66a6c
JK
3738 * @param dev
3739 * @param q
3740 */
0edd5b44 3741static void ipw_queue_tx_free(struct ipw_priv *priv, struct clx2_tx_queue *txq)
43f66a6c
JK
3742{
3743 struct clx2_queue *q = &txq->q;
3744 struct pci_dev *dev = priv->pci_dev;
3745
bf79451e
JG
3746 if (q->n_bd == 0)
3747 return;
43f66a6c
JK
3748
3749 /* first, empty all BD's */
3750 for (; q->first_empty != q->last_used;
3751 q->last_used = ipw_queue_inc_wrap(q->last_used, q->n_bd)) {
3752 ipw_queue_tx_free_tfd(priv, txq);
3753 }
bf79451e 3754
43f66a6c 3755 /* free buffers belonging to queue itself */
0edd5b44 3756 pci_free_consistent(dev, sizeof(txq->bd[0]) * q->n_bd, txq->bd,
43f66a6c
JK
3757 q->dma_addr);
3758 kfree(txq->txb);
3759
3760 /* 0 fill whole structure */
3761 memset(txq, 0, sizeof(*txq));
3762}
3763
43f66a6c
JK
3764/**
3765 * Destroy all DMA queues and structures
bf79451e 3766 *
43f66a6c
JK
3767 * @param priv
3768 */
3769static void ipw_tx_queue_free(struct ipw_priv *priv)
3770{
3771 /* Tx CMD queue */
3772 ipw_queue_tx_free(priv, &priv->txq_cmd);
3773
3774 /* Tx queues */
3775 ipw_queue_tx_free(priv, &priv->txq[0]);
3776 ipw_queue_tx_free(priv, &priv->txq[1]);
3777 ipw_queue_tx_free(priv, &priv->txq[2]);
3778 ipw_queue_tx_free(priv, &priv->txq[3]);
3779}
3780
858119e1 3781static void ipw_create_bssid(struct ipw_priv *priv, u8 * bssid)
43f66a6c
JK
3782{
3783 /* First 3 bytes are manufacturer */
3784 bssid[0] = priv->mac_addr[0];
3785 bssid[1] = priv->mac_addr[1];
3786 bssid[2] = priv->mac_addr[2];
3787
3788 /* Last bytes are random */
0edd5b44 3789 get_random_bytes(&bssid[3], ETH_ALEN - 3);
43f66a6c 3790
0edd5b44
JG
3791 bssid[0] &= 0xfe; /* clear multicast bit */
3792 bssid[0] |= 0x02; /* set local assignment bit (IEEE802) */
43f66a6c
JK
3793}
3794
858119e1 3795static u8 ipw_add_station(struct ipw_priv *priv, u8 * bssid)
43f66a6c
JK
3796{
3797 struct ipw_station_entry entry;
3798 int i;
3799
3800 for (i = 0; i < priv->num_stations; i++) {
3801 if (!memcmp(priv->stations[i], bssid, ETH_ALEN)) {
3802 /* Another node is active in network */
3803 priv->missed_adhoc_beacons = 0;
3804 if (!(priv->config & CFG_STATIC_CHANNEL))
3805 /* when other nodes drop out, we drop out */
3806 priv->config &= ~CFG_ADHOC_PERSIST;
3807
3808 return i;
3809 }
3810 }
3811
3812 if (i == MAX_STATIONS)
3813 return IPW_INVALID_STATION;
3814
3815 IPW_DEBUG_SCAN("Adding AdHoc station: " MAC_FMT "\n", MAC_ARG(bssid));
3816
3817 entry.reserved = 0;
3818 entry.support_mode = 0;
3819 memcpy(entry.mac_addr, bssid, ETH_ALEN);
3820 memcpy(priv->stations[i], bssid, ETH_ALEN);
3821 ipw_write_direct(priv, IPW_STATION_TABLE_LOWER + i * sizeof(entry),
0edd5b44 3822 &entry, sizeof(entry));
43f66a6c
JK
3823 priv->num_stations++;
3824
3825 return i;
3826}
3827
858119e1 3828static u8 ipw_find_station(struct ipw_priv *priv, u8 * bssid)
43f66a6c
JK
3829{
3830 int i;
3831
bf79451e
JG
3832 for (i = 0; i < priv->num_stations; i++)
3833 if (!memcmp(priv->stations[i], bssid, ETH_ALEN))
43f66a6c
JK
3834 return i;
3835
3836 return IPW_INVALID_STATION;
3837}
3838
3839static void ipw_send_disassociate(struct ipw_priv *priv, int quiet)
3840{
3841 int err;
3842
7b99659f
HL
3843 if (priv->status & STATUS_ASSOCIATING) {
3844 IPW_DEBUG_ASSOC("Disassociating while associating.\n");
3845 queue_work(priv->workqueue, &priv->disassociate);
3846 return;
3847 }
3848
3849 if (!(priv->status & STATUS_ASSOCIATED)) {
43f66a6c
JK
3850 IPW_DEBUG_ASSOC("Disassociating while not associated.\n");
3851 return;
3852 }
3853
3854 IPW_DEBUG_ASSOC("Disassocation attempt from " MAC_FMT " "
3855 "on channel %d.\n",
bf79451e 3856 MAC_ARG(priv->assoc_request.bssid),
43f66a6c
JK
3857 priv->assoc_request.channel);
3858
3859 priv->status &= ~(STATUS_ASSOCIATING | STATUS_ASSOCIATED);
3860 priv->status |= STATUS_DISASSOCIATING;
3861
3862 if (quiet)
3863 priv->assoc_request.assoc_type = HC_DISASSOC_QUIET;
3864 else
3865 priv->assoc_request.assoc_type = HC_DISASSOCIATE;
e6324726 3866
43f66a6c
JK
3867 err = ipw_send_associate(priv, &priv->assoc_request);
3868 if (err) {
3869 IPW_DEBUG_HC("Attempt to send [dis]associate command "
3870 "failed.\n");
3871 return;
3872 }
3873
3874}
3875
c848d0af 3876static int ipw_disassociate(void *data)
43f66a6c 3877{
c848d0af
JK
3878 struct ipw_priv *priv = data;
3879 if (!(priv->status & (STATUS_ASSOCIATED | STATUS_ASSOCIATING)))
3880 return 0;
43f66a6c 3881 ipw_send_disassociate(data, 0);
c848d0af 3882 return 1;
43f66a6c
JK
3883}
3884
c4028958 3885static void ipw_bg_disassociate(struct work_struct *work)
43f66a6c 3886{
c4028958
DH
3887 struct ipw_priv *priv =
3888 container_of(work, struct ipw_priv, disassociate);
4644151b 3889 mutex_lock(&priv->mutex);
c4028958 3890 ipw_disassociate(priv);
4644151b 3891 mutex_unlock(&priv->mutex);
43f66a6c
JK
3892}
3893
c4028958 3894static void ipw_system_config(struct work_struct *work)
d8bad6df 3895{
c4028958
DH
3896 struct ipw_priv *priv =
3897 container_of(work, struct ipw_priv, system_config);
d685b8c2
ZY
3898
3899#ifdef CONFIG_IPW2200_PROMISCUOUS
3900 if (priv->prom_net_dev && netif_running(priv->prom_net_dev)) {
3901 priv->sys_config.accept_all_data_frames = 1;
3902 priv->sys_config.accept_non_directed_frames = 1;
3903 priv->sys_config.accept_all_mgmt_bcpr = 1;
3904 priv->sys_config.accept_all_mgmt_frames = 1;
3905 }
3906#endif
3907
3908 ipw_send_system_config(priv);
43f66a6c
JK
3909}
3910
3911struct ipw_status_code {
3912 u16 status;
3913 const char *reason;
3914};
3915
3916static const struct ipw_status_code ipw_status_codes[] = {
3917 {0x00, "Successful"},
3918 {0x01, "Unspecified failure"},
3919 {0x0A, "Cannot support all requested capabilities in the "
3920 "Capability information field"},
3921 {0x0B, "Reassociation denied due to inability to confirm that "
3922 "association exists"},
3923 {0x0C, "Association denied due to reason outside the scope of this "
3924 "standard"},
0edd5b44
JG
3925 {0x0D,
3926 "Responding station does not support the specified authentication "
43f66a6c 3927 "algorithm"},
0edd5b44
JG
3928 {0x0E,
3929 "Received an Authentication frame with authentication sequence "
43f66a6c
JK
3930 "transaction sequence number out of expected sequence"},
3931 {0x0F, "Authentication rejected because of challenge failure"},
3932 {0x10, "Authentication rejected due to timeout waiting for next "
3933 "frame in sequence"},
3934 {0x11, "Association denied because AP is unable to handle additional "
3935 "associated stations"},
0edd5b44
JG
3936 {0x12,
3937 "Association denied due to requesting station not supporting all "
43f66a6c 3938 "of the datarates in the BSSBasicServiceSet Parameter"},
0edd5b44
JG
3939 {0x13,
3940 "Association denied due to requesting station not supporting "
43f66a6c 3941 "short preamble operation"},
0edd5b44
JG
3942 {0x14,
3943 "Association denied due to requesting station not supporting "
43f66a6c 3944 "PBCC encoding"},
0edd5b44
JG
3945 {0x15,
3946 "Association denied due to requesting station not supporting "
43f66a6c 3947 "channel agility"},
0edd5b44
JG
3948 {0x19,
3949 "Association denied due to requesting station not supporting "
43f66a6c 3950 "short slot operation"},
0edd5b44
JG
3951 {0x1A,
3952 "Association denied due to requesting station not supporting "
43f66a6c
JK
3953 "DSSS-OFDM operation"},
3954 {0x28, "Invalid Information Element"},
3955 {0x29, "Group Cipher is not valid"},
3956 {0x2A, "Pairwise Cipher is not valid"},
3957 {0x2B, "AKMP is not valid"},
3958 {0x2C, "Unsupported RSN IE version"},
3959 {0x2D, "Invalid RSN IE Capabilities"},
3960 {0x2E, "Cipher suite is rejected per security policy"},
3961};
3962
bf79451e 3963static const char *ipw_get_status_code(u16 status)
43f66a6c
JK
3964{
3965 int i;
bf79451e 3966 for (i = 0; i < ARRAY_SIZE(ipw_status_codes); i++)
ea2b26e0 3967 if (ipw_status_codes[i].status == (status & 0xff))
43f66a6c
JK
3968 return ipw_status_codes[i].reason;
3969 return "Unknown status value.";
3970}
43f66a6c
JK
3971
3972static void inline average_init(struct average *avg)
3973{
3974 memset(avg, 0, sizeof(*avg));
3975}
3976
00d21de5
ZY
3977#define DEPTH_RSSI 8
3978#define DEPTH_NOISE 16
3979static s16 exponential_average(s16 prev_avg, s16 val, u8 depth)
3980{
3981 return ((depth-1)*prev_avg + val)/depth;
3982}
3983
858119e1 3984static void average_add(struct average *avg, s16 val)
43f66a6c
JK
3985{
3986 avg->sum -= avg->entries[avg->pos];
3987 avg->sum += val;
3988 avg->entries[avg->pos++] = val;
3989 if (unlikely(avg->pos == AVG_ENTRIES)) {
3990 avg->init = 1;
3991 avg->pos = 0;
3992 }
3993}
3994
858119e1 3995static s16 average_value(struct average *avg)
43f66a6c
JK
3996{
3997 if (!unlikely(avg->init)) {
3998 if (avg->pos)
3999 return avg->sum / avg->pos;
4000 return 0;
4001 }
4002
4003 return avg->sum / AVG_ENTRIES;
4004}
4005
4006static void ipw_reset_stats(struct ipw_priv *priv)
4007{
4008 u32 len = sizeof(u32);
4009
4010 priv->quality = 0;
4011
4012 average_init(&priv->average_missed_beacons);
00d21de5
ZY
4013 priv->exp_avg_rssi = -60;
4014 priv->exp_avg_noise = -85 + 0x100;
43f66a6c
JK
4015
4016 priv->last_rate = 0;
4017 priv->last_missed_beacons = 0;
4018 priv->last_rx_packets = 0;
4019 priv->last_tx_packets = 0;
4020 priv->last_tx_failures = 0;
bf79451e 4021
43f66a6c
JK
4022 /* Firmware managed, reset only when NIC is restarted, so we have to
4023 * normalize on the current value */
bf79451e 4024 ipw_get_ordinal(priv, IPW_ORD_STAT_RX_ERR_CRC,
43f66a6c 4025 &priv->last_rx_err, &len);
bf79451e 4026 ipw_get_ordinal(priv, IPW_ORD_STAT_TX_FAILURE,
43f66a6c
JK
4027 &priv->last_tx_failures, &len);
4028
4029 /* Driver managed, reset with each association */
4030 priv->missed_adhoc_beacons = 0;
4031 priv->missed_beacons = 0;
4032 priv->tx_packets = 0;
4033 priv->rx_packets = 0;
4034
4035}
4036
858119e1 4037static u32 ipw_get_max_rate(struct ipw_priv *priv)
43f66a6c
JK
4038{
4039 u32 i = 0x80000000;
4040 u32 mask = priv->rates_mask;
4041 /* If currently associated in B mode, restrict the maximum
4042 * rate match to B rates */
4043 if (priv->assoc_request.ieee_mode == IPW_B_MODE)
4044 mask &= IEEE80211_CCK_RATES_MASK;
4045
4046 /* TODO: Verify that the rate is supported by the current rates
4047 * list. */
4048
0edd5b44
JG
4049 while (i && !(mask & i))
4050 i >>= 1;
43f66a6c 4051 switch (i) {
ea2b26e0
JK
4052 case IEEE80211_CCK_RATE_1MB_MASK:
4053 return 1000000;
4054 case IEEE80211_CCK_RATE_2MB_MASK:
4055 return 2000000;
4056 case IEEE80211_CCK_RATE_5MB_MASK:
4057 return 5500000;
4058 case IEEE80211_OFDM_RATE_6MB_MASK:
4059 return 6000000;
4060 case IEEE80211_OFDM_RATE_9MB_MASK:
4061 return 9000000;
4062 case IEEE80211_CCK_RATE_11MB_MASK:
4063 return 11000000;
4064 case IEEE80211_OFDM_RATE_12MB_MASK:
4065 return 12000000;
4066 case IEEE80211_OFDM_RATE_18MB_MASK:
4067 return 18000000;
4068 case IEEE80211_OFDM_RATE_24MB_MASK:
4069 return 24000000;
4070 case IEEE80211_OFDM_RATE_36MB_MASK:
4071 return 36000000;
4072 case IEEE80211_OFDM_RATE_48MB_MASK:
4073 return 48000000;
4074 case IEEE80211_OFDM_RATE_54MB_MASK:
4075 return 54000000;
43f66a6c
JK
4076 }
4077
bf79451e 4078 if (priv->ieee->mode == IEEE_B)
43f66a6c
JK
4079 return 11000000;
4080 else
4081 return 54000000;
4082}
4083
4084static u32 ipw_get_current_rate(struct ipw_priv *priv)
4085{
4086 u32 rate, len = sizeof(rate);
4087 int err;
4088
bf79451e 4089 if (!(priv->status & STATUS_ASSOCIATED))
43f66a6c
JK
4090 return 0;
4091
4092 if (priv->tx_packets > IPW_REAL_RATE_RX_PACKET_THRESHOLD) {
bf79451e 4093 err = ipw_get_ordinal(priv, IPW_ORD_STAT_TX_CURR_RATE, &rate,
43f66a6c
JK
4094 &len);
4095 if (err) {
4096 IPW_DEBUG_INFO("failed querying ordinals.\n");
4097 return 0;
4098 }
bf79451e 4099 } else
43f66a6c
JK
4100 return ipw_get_max_rate(priv);
4101
4102 switch (rate) {
ea2b26e0
JK
4103 case IPW_TX_RATE_1MB:
4104 return 1000000;
4105 case IPW_TX_RATE_2MB:
4106 return 2000000;
4107 case IPW_TX_RATE_5MB:
4108 return 5500000;
4109 case IPW_TX_RATE_6MB:
4110 return 6000000;
4111 case IPW_TX_RATE_9MB:
4112 return 9000000;
4113 case IPW_TX_RATE_11MB:
4114 return 11000000;
4115 case IPW_TX_RATE_12MB:
4116 return 12000000;
4117 case IPW_TX_RATE_18MB:
4118 return 18000000;
4119 case IPW_TX_RATE_24MB:
4120 return 24000000;
4121 case IPW_TX_RATE_36MB:
4122 return 36000000;
4123 case IPW_TX_RATE_48MB:
4124 return 48000000;
4125 case IPW_TX_RATE_54MB:
4126 return 54000000;
43f66a6c
JK
4127 }
4128
4129 return 0;
4130}
4131
43f66a6c
JK
4132#define IPW_STATS_INTERVAL (2 * HZ)
4133static void ipw_gather_stats(struct ipw_priv *priv)
4134{
4135 u32 rx_err, rx_err_delta, rx_packets_delta;
4136 u32 tx_failures, tx_failures_delta, tx_packets_delta;
4137 u32 missed_beacons_percent, missed_beacons_delta;
4138 u32 quality = 0;
4139 u32 len = sizeof(u32);
4140 s16 rssi;
bf79451e 4141 u32 beacon_quality, signal_quality, tx_quality, rx_quality,
0edd5b44 4142 rate_quality;
ea2b26e0 4143 u32 max_rate;
43f66a6c
JK
4144
4145 if (!(priv->status & STATUS_ASSOCIATED)) {
4146 priv->quality = 0;
4147 return;
4148 }
4149
4150 /* Update the statistics */
bf79451e 4151 ipw_get_ordinal(priv, IPW_ORD_STAT_MISSED_BEACONS,
43f66a6c 4152 &priv->missed_beacons, &len);
0edd5b44 4153 missed_beacons_delta = priv->missed_beacons - priv->last_missed_beacons;
43f66a6c
JK
4154 priv->last_missed_beacons = priv->missed_beacons;
4155 if (priv->assoc_request.beacon_interval) {
4156 missed_beacons_percent = missed_beacons_delta *
0edd5b44
JG
4157 (HZ * priv->assoc_request.beacon_interval) /
4158 (IPW_STATS_INTERVAL * 10);
43f66a6c
JK
4159 } else {
4160 missed_beacons_percent = 0;
4161 }
4162 average_add(&priv->average_missed_beacons, missed_beacons_percent);
4163
4164 ipw_get_ordinal(priv, IPW_ORD_STAT_RX_ERR_CRC, &rx_err, &len);
4165 rx_err_delta = rx_err - priv->last_rx_err;
4166 priv->last_rx_err = rx_err;
4167
4168 ipw_get_ordinal(priv, IPW_ORD_STAT_TX_FAILURE, &tx_failures, &len);
4169 tx_failures_delta = tx_failures - priv->last_tx_failures;
4170 priv->last_tx_failures = tx_failures;
4171
4172 rx_packets_delta = priv->rx_packets - priv->last_rx_packets;
4173 priv->last_rx_packets = priv->rx_packets;
4174
4175 tx_packets_delta = priv->tx_packets - priv->last_tx_packets;
4176 priv->last_tx_packets = priv->tx_packets;
4177
4178 /* Calculate quality based on the following:
bf79451e 4179 *
43f66a6c
JK
4180 * Missed beacon: 100% = 0, 0% = 70% missed
4181 * Rate: 60% = 1Mbs, 100% = Max
4182 * Rx and Tx errors represent a straight % of total Rx/Tx
4183 * RSSI: 100% = > -50, 0% = < -80
4184 * Rx errors: 100% = 0, 0% = 50% missed
bf79451e 4185 *
43f66a6c
JK
4186 * The lowest computed quality is used.
4187 *
4188 */
4189#define BEACON_THRESHOLD 5
4190 beacon_quality = 100 - missed_beacons_percent;
4191 if (beacon_quality < BEACON_THRESHOLD)
4192 beacon_quality = 0;
4193 else
bf79451e 4194 beacon_quality = (beacon_quality - BEACON_THRESHOLD) * 100 /
0edd5b44 4195 (100 - BEACON_THRESHOLD);
bf79451e 4196 IPW_DEBUG_STATS("Missed beacon: %3d%% (%d%%)\n",
43f66a6c 4197 beacon_quality, missed_beacons_percent);
bf79451e 4198
43f66a6c 4199 priv->last_rate = ipw_get_current_rate(priv);
ea2b26e0
JK
4200 max_rate = ipw_get_max_rate(priv);
4201 rate_quality = priv->last_rate * 40 / max_rate + 60;
43f66a6c
JK
4202 IPW_DEBUG_STATS("Rate quality : %3d%% (%dMbs)\n",
4203 rate_quality, priv->last_rate / 1000000);
bf79451e 4204
0edd5b44 4205 if (rx_packets_delta > 100 && rx_packets_delta + rx_err_delta)
bf79451e 4206 rx_quality = 100 - (rx_err_delta * 100) /
0edd5b44 4207 (rx_packets_delta + rx_err_delta);
43f66a6c
JK
4208 else
4209 rx_quality = 100;
4210 IPW_DEBUG_STATS("Rx quality : %3d%% (%u errors, %u packets)\n",
4211 rx_quality, rx_err_delta, rx_packets_delta);
bf79451e 4212
0edd5b44 4213 if (tx_packets_delta > 100 && tx_packets_delta + tx_failures_delta)
bf79451e 4214 tx_quality = 100 - (tx_failures_delta * 100) /
0edd5b44 4215 (tx_packets_delta + tx_failures_delta);
43f66a6c
JK
4216 else
4217 tx_quality = 100;
4218 IPW_DEBUG_STATS("Tx quality : %3d%% (%u errors, %u packets)\n",
4219 tx_quality, tx_failures_delta, tx_packets_delta);
bf79451e 4220
00d21de5 4221 rssi = priv->exp_avg_rssi;
c848d0af
JK
4222 signal_quality =
4223 (100 *
4224 (priv->ieee->perfect_rssi - priv->ieee->worst_rssi) *
4225 (priv->ieee->perfect_rssi - priv->ieee->worst_rssi) -
4226 (priv->ieee->perfect_rssi - rssi) *
4227 (15 * (priv->ieee->perfect_rssi - priv->ieee->worst_rssi) +
4228 62 * (priv->ieee->perfect_rssi - rssi))) /
4229 ((priv->ieee->perfect_rssi - priv->ieee->worst_rssi) *
4230 (priv->ieee->perfect_rssi - priv->ieee->worst_rssi));
4231 if (signal_quality > 100)
43f66a6c 4232 signal_quality = 100;
c848d0af 4233 else if (signal_quality < 1)
43f66a6c 4234 signal_quality = 0;
ea2b26e0 4235
61fb9ed9 4236 IPW_DEBUG_STATS("Signal level : %3d%% (%d dBm)\n",
43f66a6c 4237 signal_quality, rssi);
bf79451e
JG
4238
4239 quality = min(beacon_quality,
43f66a6c
JK
4240 min(rate_quality,
4241 min(tx_quality, min(rx_quality, signal_quality))));
4242 if (quality == beacon_quality)
0edd5b44
JG
4243 IPW_DEBUG_STATS("Quality (%d%%): Clamped to missed beacons.\n",
4244 quality);
43f66a6c 4245 if (quality == rate_quality)
0edd5b44
JG
4246 IPW_DEBUG_STATS("Quality (%d%%): Clamped to rate quality.\n",
4247 quality);
43f66a6c 4248 if (quality == tx_quality)
0edd5b44
JG
4249 IPW_DEBUG_STATS("Quality (%d%%): Clamped to Tx quality.\n",
4250 quality);
43f66a6c 4251 if (quality == rx_quality)
0edd5b44
JG
4252 IPW_DEBUG_STATS("Quality (%d%%): Clamped to Rx quality.\n",
4253 quality);
43f66a6c 4254 if (quality == signal_quality)
0edd5b44
JG
4255 IPW_DEBUG_STATS("Quality (%d%%): Clamped to signal quality.\n",
4256 quality);
43f66a6c
JK
4257
4258 priv->quality = quality;
bf79451e
JG
4259
4260 queue_delayed_work(priv->workqueue, &priv->gather_stats,
43f66a6c
JK
4261 IPW_STATS_INTERVAL);
4262}
4263
c4028958 4264static void ipw_bg_gather_stats(struct work_struct *work)
c848d0af 4265{
c4028958
DH
4266 struct ipw_priv *priv =
4267 container_of(work, struct ipw_priv, gather_stats.work);
4644151b 4268 mutex_lock(&priv->mutex);
c4028958 4269 ipw_gather_stats(priv);
4644151b 4270 mutex_unlock(&priv->mutex);
c848d0af
JK
4271}
4272
e7582561
BC
4273/* Missed beacon behavior:
4274 * 1st missed -> roaming_threshold, just wait, don't do any scan/roam.
4275 * roaming_threshold -> disassociate_threshold, scan and roam for better signal.
4276 * Above disassociate threshold, give up and stop scanning.
4277 * Roaming is disabled if disassociate_threshold <= roaming_threshold */
858119e1 4278static void ipw_handle_missed_beacon(struct ipw_priv *priv,
ea2b26e0
JK
4279 int missed_count)
4280{
4281 priv->notif_missed_beacons = missed_count;
4282
afbf30a2 4283 if (missed_count > priv->disassociate_threshold &&
ea2b26e0
JK
4284 priv->status & STATUS_ASSOCIATED) {
4285 /* If associated and we've hit the missed
4286 * beacon threshold, disassociate, turn
4287 * off roaming, and abort any active scans */
4288 IPW_DEBUG(IPW_DL_INFO | IPW_DL_NOTIF |
afbf30a2 4289 IPW_DL_STATE | IPW_DL_ASSOC,
ea2b26e0
JK
4290 "Missed beacon: %d - disassociate\n", missed_count);
4291 priv->status &= ~STATUS_ROAMING;
a613bffd
JK
4292 if (priv->status & STATUS_SCANNING) {
4293 IPW_DEBUG(IPW_DL_INFO | IPW_DL_NOTIF |
4294 IPW_DL_STATE,
4295 "Aborting scan with missed beacon.\n");
ea2b26e0 4296 queue_work(priv->workqueue, &priv->abort_scan);
a613bffd
JK
4297 }
4298
ea2b26e0
JK
4299 queue_work(priv->workqueue, &priv->disassociate);
4300 return;
4301 }
4302
4303 if (priv->status & STATUS_ROAMING) {
4304 /* If we are currently roaming, then just
4305 * print a debug statement... */
4306 IPW_DEBUG(IPW_DL_NOTIF | IPW_DL_STATE,
4307 "Missed beacon: %d - roam in progress\n",
4308 missed_count);
4309 return;
4310 }
4311
4bfdb91d
ZY
4312 if (roaming &&
4313 (missed_count > priv->roaming_threshold &&
4314 missed_count <= priv->disassociate_threshold)) {
ea2b26e0 4315 /* If we are not already roaming, set the ROAM
e7582561
BC
4316 * bit in the status and kick off a scan.
4317 * This can happen several times before we reach
4318 * disassociate_threshold. */
ea2b26e0
JK
4319 IPW_DEBUG(IPW_DL_NOTIF | IPW_DL_STATE,
4320 "Missed beacon: %d - initiate "
4321 "roaming\n", missed_count);
4322 if (!(priv->status & STATUS_ROAMING)) {
4323 priv->status |= STATUS_ROAMING;
4324 if (!(priv->status & STATUS_SCANNING))
c4028958
DH
4325 queue_delayed_work(priv->workqueue,
4326 &priv->request_scan, 0);
ea2b26e0
JK
4327 }
4328 return;
4329 }
4330
4331 if (priv->status & STATUS_SCANNING) {
4332 /* Stop scan to keep fw from getting
4333 * stuck (only if we aren't roaming --
4334 * otherwise we'll never scan more than 2 or 3
4335 * channels..) */
b095c381
JK
4336 IPW_DEBUG(IPW_DL_INFO | IPW_DL_NOTIF | IPW_DL_STATE,
4337 "Aborting scan with missed beacon.\n");
ea2b26e0
JK
4338 queue_work(priv->workqueue, &priv->abort_scan);
4339 }
4340
4341 IPW_DEBUG_NOTIF("Missed beacon: %d\n", missed_count);
ea2b26e0
JK
4342}
4343
43f66a6c
JK
4344/**
4345 * Handle host notification packet.
4346 * Called from interrupt routine
4347 */
858119e1 4348static void ipw_rx_notification(struct ipw_priv *priv,
43f66a6c
JK
4349 struct ipw_rx_notification *notif)
4350{
a613bffd
JK
4351 notif->size = le16_to_cpu(notif->size);
4352
0edd5b44 4353 IPW_DEBUG_NOTIF("type = %i (%d bytes)\n", notif->subtype, notif->size);
bf79451e 4354
43f66a6c 4355 switch (notif->subtype) {
0edd5b44
JG
4356 case HOST_NOTIFICATION_STATUS_ASSOCIATED:{
4357 struct notif_association *assoc = &notif->u.assoc;
4358
4359 switch (assoc->state) {
4360 case CMAS_ASSOCIATED:{
4361 IPW_DEBUG(IPW_DL_NOTIF | IPW_DL_STATE |
4362 IPW_DL_ASSOC,
4363 "associated: '%s' " MAC_FMT
4364 " \n",
4365 escape_essid(priv->essid,
4366 priv->essid_len),
4367 MAC_ARG(priv->bssid));
4368
4369 switch (priv->ieee->iw_mode) {
4370 case IW_MODE_INFRA:
4371 memcpy(priv->ieee->bssid,
4372 priv->bssid, ETH_ALEN);
4373 break;
4374
4375 case IW_MODE_ADHOC:
4376 memcpy(priv->ieee->bssid,
4377 priv->bssid, ETH_ALEN);
4378
4379 /* clear out the station table */
4380 priv->num_stations = 0;
4381
4382 IPW_DEBUG_ASSOC
4383 ("queueing adhoc check\n");
4384 queue_delayed_work(priv->
4385 workqueue,
4386 &priv->
4387 adhoc_check,
4388 priv->
4389 assoc_request.
4390 beacon_interval);
4391 break;
4392 }
4393
4394 priv->status &= ~STATUS_ASSOCIATING;
4395 priv->status |= STATUS_ASSOCIATED;
d8bad6df
ZY
4396 queue_work(priv->workqueue,
4397 &priv->system_config);
0edd5b44 4398
e43e3c1e 4399#ifdef CONFIG_IPW2200_QOS
afbf30a2
JK
4400#define IPW_GET_PACKET_STYPE(x) WLAN_FC_GET_STYPE( \
4401 le16_to_cpu(((struct ieee80211_hdr *)(x))->frame_ctl))
4402 if ((priv->status & STATUS_AUTH) &&
4403 (IPW_GET_PACKET_STYPE(&notif->u.raw)
4404 == IEEE80211_STYPE_ASSOC_RESP)) {
b095c381
JK
4405 if ((sizeof
4406 (struct
2b184d5b 4407 ieee80211_assoc_response)
b095c381
JK
4408 <= notif->size)
4409 && (notif->size <= 2314)) {
4410 struct
4411 ieee80211_rx_stats
4412 stats = {
4413 .len =
4414 notif->
4415 size - 1,
4416 };
4417
4418 IPW_DEBUG_QOS
4419 ("QoS Associate "
4420 "size %d\n",
4421 notif->size);
4422 ieee80211_rx_mgt(priv->
4423 ieee,
4424 (struct
2b184d5b 4425 ieee80211_hdr_4addr
b095c381
JK
4426 *)
4427 &notif->u.raw, &stats);
4428 }
0edd5b44 4429 }
b095c381 4430#endif
0edd5b44 4431
a613bffd 4432 schedule_work(&priv->link_up);
43f66a6c 4433
0edd5b44
JG
4434 break;
4435 }
bf79451e 4436
0edd5b44
JG
4437 case CMAS_AUTHENTICATED:{
4438 if (priv->
4439 status & (STATUS_ASSOCIATED |
4440 STATUS_AUTH)) {
0edd5b44
JG
4441 struct notif_authenticate *auth
4442 = &notif->u.auth;
4443 IPW_DEBUG(IPW_DL_NOTIF |
4444 IPW_DL_STATE |
4445 IPW_DL_ASSOC,
4446 "deauthenticated: '%s' "
4447 MAC_FMT
4448 ": (0x%04X) - %s \n",
4449 escape_essid(priv->
4450 essid,
4451 priv->
4452 essid_len),
4453 MAC_ARG(priv->bssid),
4454 ntohs(auth->status),
4455 ipw_get_status_code
4456 (ntohs
4457 (auth->status)));
43f66a6c 4458
0edd5b44
JG
4459 priv->status &=
4460 ~(STATUS_ASSOCIATING |
4461 STATUS_AUTH |
4462 STATUS_ASSOCIATED);
4463
a613bffd 4464 schedule_work(&priv->link_down);
0edd5b44
JG
4465 break;
4466 }
4467
4468 IPW_DEBUG(IPW_DL_NOTIF | IPW_DL_STATE |
4469 IPW_DL_ASSOC,
4470 "authenticated: '%s' " MAC_FMT
4471 "\n",
4472 escape_essid(priv->essid,
4473 priv->essid_len),
4474 MAC_ARG(priv->bssid));
4475 break;
4476 }
4477
4478 case CMAS_INIT:{
ea2b26e0
JK
4479 if (priv->status & STATUS_AUTH) {
4480 struct
4481 ieee80211_assoc_response
4482 *resp;
4483 resp =
4484 (struct
4485 ieee80211_assoc_response
4486 *)&notif->u.raw;
4487 IPW_DEBUG(IPW_DL_NOTIF |
4488 IPW_DL_STATE |
4489 IPW_DL_ASSOC,
4490 "association failed (0x%04X): %s\n",
4491 ntohs(resp->status),
4492 ipw_get_status_code
4493 (ntohs
4494 (resp->status)));
4495 }
4496
0edd5b44
JG
4497 IPW_DEBUG(IPW_DL_NOTIF | IPW_DL_STATE |
4498 IPW_DL_ASSOC,
4499 "disassociated: '%s' " MAC_FMT
4500 " \n",
4501 escape_essid(priv->essid,
4502 priv->essid_len),
4503 MAC_ARG(priv->bssid));
4504
4505 priv->status &=
4506 ~(STATUS_DISASSOCIATING |
4507 STATUS_ASSOCIATING |
4508 STATUS_ASSOCIATED | STATUS_AUTH);
b095c381
JK
4509 if (priv->assoc_network
4510 && (priv->assoc_network->
4511 capability &
4512 WLAN_CAPABILITY_IBSS))
4513 ipw_remove_current_network
4514 (priv);
0edd5b44 4515
a613bffd 4516 schedule_work(&priv->link_down);
0edd5b44 4517
0edd5b44
JG
4518 break;
4519 }
43f66a6c 4520
b095c381
JK
4521 case CMAS_RX_ASSOC_RESP:
4522 break;
4523
0edd5b44
JG
4524 default:
4525 IPW_ERROR("assoc: unknown (%d)\n",
4526 assoc->state);
43f66a6c 4527 break;
bf79451e 4528 }
43f66a6c 4529
43f66a6c
JK
4530 break;
4531 }
bf79451e 4532
0edd5b44
JG
4533 case HOST_NOTIFICATION_STATUS_AUTHENTICATE:{
4534 struct notif_authenticate *auth = &notif->u.auth;
4535 switch (auth->state) {
4536 case CMAS_AUTHENTICATED:
4537 IPW_DEBUG(IPW_DL_NOTIF | IPW_DL_STATE,
4538 "authenticated: '%s' " MAC_FMT " \n",
4539 escape_essid(priv->essid,
4540 priv->essid_len),
4541 MAC_ARG(priv->bssid));
4542 priv->status |= STATUS_AUTH;
4543 break;
43f66a6c 4544
0edd5b44
JG
4545 case CMAS_INIT:
4546 if (priv->status & STATUS_AUTH) {
4547 IPW_DEBUG(IPW_DL_NOTIF | IPW_DL_STATE |
4548 IPW_DL_ASSOC,
4549 "authentication failed (0x%04X): %s\n",
4550 ntohs(auth->status),
4551 ipw_get_status_code(ntohs
4552 (auth->
4553 status)));
4554 }
4555 IPW_DEBUG(IPW_DL_NOTIF | IPW_DL_STATE |
4556 IPW_DL_ASSOC,
4557 "deauthenticated: '%s' " MAC_FMT "\n",
4558 escape_essid(priv->essid,
4559 priv->essid_len),
4560 MAC_ARG(priv->bssid));
bf79451e 4561
0edd5b44
JG
4562 priv->status &= ~(STATUS_ASSOCIATING |
4563 STATUS_AUTH |
4564 STATUS_ASSOCIATED);
43f66a6c 4565
a613bffd 4566 schedule_work(&priv->link_down);
0edd5b44 4567 break;
43f66a6c 4568
0edd5b44
JG
4569 case CMAS_TX_AUTH_SEQ_1:
4570 IPW_DEBUG(IPW_DL_NOTIF | IPW_DL_STATE |
4571 IPW_DL_ASSOC, "AUTH_SEQ_1\n");
4572 break;
4573 case CMAS_RX_AUTH_SEQ_2:
4574 IPW_DEBUG(IPW_DL_NOTIF | IPW_DL_STATE |
4575 IPW_DL_ASSOC, "AUTH_SEQ_2\n");
4576 break;
4577 case CMAS_AUTH_SEQ_1_PASS:
4578 IPW_DEBUG(IPW_DL_NOTIF | IPW_DL_STATE |
4579 IPW_DL_ASSOC, "AUTH_SEQ_1_PASS\n");
4580 break;
4581 case CMAS_AUTH_SEQ_1_FAIL:
4582 IPW_DEBUG(IPW_DL_NOTIF | IPW_DL_STATE |
4583 IPW_DL_ASSOC, "AUTH_SEQ_1_FAIL\n");
4584 break;
4585 case CMAS_TX_AUTH_SEQ_3:
4586 IPW_DEBUG(IPW_DL_NOTIF | IPW_DL_STATE |
4587 IPW_DL_ASSOC, "AUTH_SEQ_3\n");
4588 break;
4589 case CMAS_RX_AUTH_SEQ_4:
4590 IPW_DEBUG(IPW_DL_NOTIF | IPW_DL_STATE |
4591 IPW_DL_ASSOC, "RX_AUTH_SEQ_4\n");
4592 break;
4593 case CMAS_AUTH_SEQ_2_PASS:
4594 IPW_DEBUG(IPW_DL_NOTIF | IPW_DL_STATE |
4595 IPW_DL_ASSOC, "AUTH_SEQ_2_PASS\n");
4596 break;
4597 case CMAS_AUTH_SEQ_2_FAIL:
4598 IPW_DEBUG(IPW_DL_NOTIF | IPW_DL_STATE |
4599 IPW_DL_ASSOC, "AUT_SEQ_2_FAIL\n");
4600 break;
4601 case CMAS_TX_ASSOC:
4602 IPW_DEBUG(IPW_DL_NOTIF | IPW_DL_STATE |
4603 IPW_DL_ASSOC, "TX_ASSOC\n");
4604 break;
4605 case CMAS_RX_ASSOC_RESP:
4606 IPW_DEBUG(IPW_DL_NOTIF | IPW_DL_STATE |
4607 IPW_DL_ASSOC, "RX_ASSOC_RESP\n");
b095c381 4608
0edd5b44
JG
4609 break;
4610 case CMAS_ASSOCIATED:
4611 IPW_DEBUG(IPW_DL_NOTIF | IPW_DL_STATE |
4612 IPW_DL_ASSOC, "ASSOCIATED\n");
4613 break;
4614 default:
4615 IPW_DEBUG_NOTIF("auth: failure - %d\n",
4616 auth->state);
4617 break;
43f66a6c 4618 }
43f66a6c
JK
4619 break;
4620 }
4621
0edd5b44
JG
4622 case HOST_NOTIFICATION_STATUS_SCAN_CHANNEL_RESULT:{
4623 struct notif_channel_result *x =
4624 &notif->u.channel_result;
43f66a6c 4625
0edd5b44
JG
4626 if (notif->size == sizeof(*x)) {
4627 IPW_DEBUG_SCAN("Scan result for channel %d\n",
4628 x->channel_num);
4629 } else {
4630 IPW_DEBUG_SCAN("Scan result of wrong size %d "
4631 "(should be %zd)\n",
4632 notif->size, sizeof(*x));
bf79451e 4633 }
43f66a6c
JK
4634 break;
4635 }
43f66a6c 4636
0edd5b44
JG
4637 case HOST_NOTIFICATION_STATUS_SCAN_COMPLETED:{
4638 struct notif_scan_complete *x = &notif->u.scan_complete;
4639 if (notif->size == sizeof(*x)) {
4640 IPW_DEBUG_SCAN
4641 ("Scan completed: type %d, %d channels, "
4642 "%d status\n", x->scan_type,
4643 x->num_channels, x->status);
4644 } else {
4645 IPW_ERROR("Scan completed of wrong size %d "
4646 "(should be %zd)\n",
4647 notif->size, sizeof(*x));
4648 }
43f66a6c 4649
0edd5b44
JG
4650 priv->status &=
4651 ~(STATUS_SCANNING | STATUS_SCAN_ABORTING);
4652
a0e04ab3 4653 wake_up_interruptible(&priv->wait_state);
0edd5b44
JG
4654 cancel_delayed_work(&priv->scan_check);
4655
b095c381
JK
4656 if (priv->status & STATUS_EXIT_PENDING)
4657 break;
4658
4659 priv->ieee->scans++;
4660
4661#ifdef CONFIG_IPW2200_MONITOR
4662 if (priv->ieee->iw_mode == IW_MODE_MONITOR) {
afbf30a2 4663 priv->status |= STATUS_SCAN_FORCED;
c4028958
DH
4664 queue_delayed_work(priv->workqueue,
4665 &priv->request_scan, 0);
b095c381
JK
4666 break;
4667 }
afbf30a2 4668 priv->status &= ~STATUS_SCAN_FORCED;
b095c381
JK
4669#endif /* CONFIG_IPW2200_MONITOR */
4670
0edd5b44
JG
4671 if (!(priv->status & (STATUS_ASSOCIATED |
4672 STATUS_ASSOCIATING |
4673 STATUS_ROAMING |
4674 STATUS_DISASSOCIATING)))
4675 queue_work(priv->workqueue, &priv->associate);
4676 else if (priv->status & STATUS_ROAMING) {
e7582561
BC
4677 if (x->status == SCAN_COMPLETED_STATUS_COMPLETE)
4678 /* If a scan completed and we are in roam mode, then
4679 * the scan that completed was the one requested as a
4680 * result of entering roam... so, schedule the
4681 * roam work */
4682 queue_work(priv->workqueue,
4683 &priv->roam);
4684 else
4685 /* Don't schedule if we aborted the scan */
4686 priv->status &= ~STATUS_ROAMING;
0edd5b44 4687 } else if (priv->status & STATUS_SCAN_PENDING)
c4028958
DH
4688 queue_delayed_work(priv->workqueue,
4689 &priv->request_scan, 0);
a613bffd
JK
4690 else if (priv->config & CFG_BACKGROUND_SCAN
4691 && priv->status & STATUS_ASSOCIATED)
4692 queue_delayed_work(priv->workqueue,
1c9d5e41
SH
4693 &priv->request_scan,
4694 round_jiffies(HZ));
07f02e46
ZY
4695
4696 /* Send an empty event to user space.
4697 * We don't send the received data on the event because
4698 * it would require us to do complex transcoding, and
4699 * we want to minimise the work done in the irq handler
4700 * Use a request to extract the data.
4701 * Also, we generate this even for any scan, regardless
4702 * on how the scan was initiated. User space can just
4703 * sync on periodic scan to get fresh data...
4704 * Jean II */
4705 if (x->status == SCAN_COMPLETED_STATUS_COMPLETE) {
4706 union iwreq_data wrqu;
4707
4708 wrqu.data.length = 0;
4709 wrqu.data.flags = 0;
4710 wireless_send_event(priv->net_dev, SIOCGIWSCAN,
4711 &wrqu, NULL);
4712 }
0edd5b44 4713 break;
43f66a6c 4714 }
43f66a6c 4715
0edd5b44
JG
4716 case HOST_NOTIFICATION_STATUS_FRAG_LENGTH:{
4717 struct notif_frag_length *x = &notif->u.frag_len;
43f66a6c 4718
a613bffd
JK
4719 if (notif->size == sizeof(*x))
4720 IPW_ERROR("Frag length: %d\n",
4721 le16_to_cpu(x->frag_length));
4722 else
0edd5b44
JG
4723 IPW_ERROR("Frag length of wrong size %d "
4724 "(should be %zd)\n",
4725 notif->size, sizeof(*x));
0edd5b44 4726 break;
43f66a6c 4727 }
43f66a6c 4728
0edd5b44
JG
4729 case HOST_NOTIFICATION_STATUS_LINK_DETERIORATION:{
4730 struct notif_link_deterioration *x =
4731 &notif->u.link_deterioration;
afbf30a2 4732
0edd5b44
JG
4733 if (notif->size == sizeof(*x)) {
4734 IPW_DEBUG(IPW_DL_NOTIF | IPW_DL_STATE,
12977154
BC
4735 "link deterioration: type %d, cnt %d\n",
4736 x->silence_notification_type,
4737 x->silence_count);
0edd5b44
JG
4738 memcpy(&priv->last_link_deterioration, x,
4739 sizeof(*x));
4740 } else {
4741 IPW_ERROR("Link Deterioration of wrong size %d "
4742 "(should be %zd)\n",
4743 notif->size, sizeof(*x));
4744 }
43f66a6c
JK
4745 break;
4746 }
4747
0edd5b44
JG
4748 case HOST_NOTIFICATION_DINO_CONFIG_RESPONSE:{
4749 IPW_ERROR("Dino config\n");
4750 if (priv->hcmd
a613bffd 4751 && priv->hcmd->cmd != HOST_CMD_DINO_CONFIG)
0edd5b44 4752 IPW_ERROR("Unexpected DINO_CONFIG_RESPONSE\n");
a613bffd 4753
0edd5b44
JG
4754 break;
4755 }
43f66a6c 4756
0edd5b44
JG
4757 case HOST_NOTIFICATION_STATUS_BEACON_STATE:{
4758 struct notif_beacon_state *x = &notif->u.beacon_state;
4759 if (notif->size != sizeof(*x)) {
4760 IPW_ERROR
4761 ("Beacon state of wrong size %d (should "
4762 "be %zd)\n", notif->size, sizeof(*x));
4763 break;
43f66a6c
JK
4764 }
4765
a613bffd
JK
4766 if (le32_to_cpu(x->state) ==
4767 HOST_NOTIFICATION_STATUS_BEACON_MISSING)
4768 ipw_handle_missed_beacon(priv,
4769 le32_to_cpu(x->
4770 number));
43f66a6c 4771
0edd5b44
JG
4772 break;
4773 }
43f66a6c 4774
0edd5b44
JG
4775 case HOST_NOTIFICATION_STATUS_TGI_TX_KEY:{
4776 struct notif_tgi_tx_key *x = &notif->u.tgi_tx_key;
4777 if (notif->size == sizeof(*x)) {
4778 IPW_ERROR("TGi Tx Key: state 0x%02x sec type "
4779 "0x%02x station %d\n",
4780 x->key_state, x->security_type,
4781 x->station_index);
4782 break;
4783 }
43f66a6c 4784
0edd5b44
JG
4785 IPW_ERROR
4786 ("TGi Tx Key of wrong size %d (should be %zd)\n",
4787 notif->size, sizeof(*x));
43f66a6c 4788 break;
bf79451e 4789 }
43f66a6c 4790
0edd5b44
JG
4791 case HOST_NOTIFICATION_CALIB_KEEP_RESULTS:{
4792 struct notif_calibration *x = &notif->u.calibration;
43f66a6c 4793
0edd5b44
JG
4794 if (notif->size == sizeof(*x)) {
4795 memcpy(&priv->calib, x, sizeof(*x));
4796 IPW_DEBUG_INFO("TODO: Calibration\n");
4797 break;
4798 }
43f66a6c 4799
0edd5b44
JG
4800 IPW_ERROR
4801 ("Calibration of wrong size %d (should be %zd)\n",
4802 notif->size, sizeof(*x));
43f66a6c 4803 break;
bf79451e
JG
4804 }
4805
0edd5b44
JG
4806 case HOST_NOTIFICATION_NOISE_STATS:{
4807 if (notif->size == sizeof(u32)) {
00d21de5
ZY
4808 priv->exp_avg_noise =
4809 exponential_average(priv->exp_avg_noise,
4810 (u8) (le32_to_cpu(notif->u.noise.value) & 0xff),
4811 DEPTH_NOISE);
0edd5b44
JG
4812 break;
4813 }
43f66a6c 4814
0edd5b44
JG
4815 IPW_ERROR
4816 ("Noise stat is wrong size %d (should be %zd)\n",
4817 notif->size, sizeof(u32));
43f66a6c
JK
4818 break;
4819 }
4820
43f66a6c 4821 default:
1dd31b6c
ZY
4822 IPW_DEBUG_NOTIF("Unknown notification: "
4823 "subtype=%d,flags=0x%2x,size=%d\n",
4824 notif->subtype, notif->flags, notif->size);
43f66a6c
JK
4825 }
4826}
4827
4828/**
4829 * Destroys all DMA structures and initialise them again
bf79451e 4830 *
43f66a6c
JK
4831 * @param priv
4832 * @return error code
4833 */
4834static int ipw_queue_reset(struct ipw_priv *priv)
4835{
4836 int rc = 0;
4837 /** @todo customize queue sizes */
4838 int nTx = 64, nTxCmd = 8;
4839 ipw_tx_queue_free(priv);
4840 /* Tx CMD queue */
4841 rc = ipw_queue_tx_init(priv, &priv->txq_cmd, nTxCmd,
b095c381
JK
4842 IPW_TX_CMD_QUEUE_READ_INDEX,
4843 IPW_TX_CMD_QUEUE_WRITE_INDEX,
4844 IPW_TX_CMD_QUEUE_BD_BASE,
4845 IPW_TX_CMD_QUEUE_BD_SIZE);
43f66a6c
JK
4846 if (rc) {
4847 IPW_ERROR("Tx Cmd queue init failed\n");
4848 goto error;
4849 }
4850 /* Tx queue(s) */
4851 rc = ipw_queue_tx_init(priv, &priv->txq[0], nTx,
b095c381
JK
4852 IPW_TX_QUEUE_0_READ_INDEX,
4853 IPW_TX_QUEUE_0_WRITE_INDEX,
4854 IPW_TX_QUEUE_0_BD_BASE, IPW_TX_QUEUE_0_BD_SIZE);
43f66a6c
JK
4855 if (rc) {
4856 IPW_ERROR("Tx 0 queue init failed\n");
4857 goto error;
4858 }
4859 rc = ipw_queue_tx_init(priv, &priv->txq[1], nTx,
b095c381
JK
4860 IPW_TX_QUEUE_1_READ_INDEX,
4861 IPW_TX_QUEUE_1_WRITE_INDEX,
4862 IPW_TX_QUEUE_1_BD_BASE, IPW_TX_QUEUE_1_BD_SIZE);
43f66a6c
JK
4863 if (rc) {
4864 IPW_ERROR("Tx 1 queue init failed\n");
4865 goto error;
4866 }
4867 rc = ipw_queue_tx_init(priv, &priv->txq[2], nTx,
b095c381
JK
4868 IPW_TX_QUEUE_2_READ_INDEX,
4869 IPW_TX_QUEUE_2_WRITE_INDEX,
4870 IPW_TX_QUEUE_2_BD_BASE, IPW_TX_QUEUE_2_BD_SIZE);
43f66a6c
JK
4871 if (rc) {
4872 IPW_ERROR("Tx 2 queue init failed\n");
4873 goto error;
4874 }
4875 rc = ipw_queue_tx_init(priv, &priv->txq[3], nTx,
b095c381
JK
4876 IPW_TX_QUEUE_3_READ_INDEX,
4877 IPW_TX_QUEUE_3_WRITE_INDEX,
4878 IPW_TX_QUEUE_3_BD_BASE, IPW_TX_QUEUE_3_BD_SIZE);
43f66a6c
JK
4879 if (rc) {
4880 IPW_ERROR("Tx 3 queue init failed\n");
4881 goto error;
4882 }
4883 /* statistics */
4884 priv->rx_bufs_min = 0;
4885 priv->rx_pend_max = 0;
4886 return rc;
4887
0edd5b44 4888 error:
43f66a6c
JK
4889 ipw_tx_queue_free(priv);
4890 return rc;
4891}
4892
4893/**
4894 * Reclaim Tx queue entries no more used by NIC.
bf79451e 4895 *
43f66a6c
JK
4896 * When FW adwances 'R' index, all entries between old and
4897 * new 'R' index need to be reclaimed. As result, some free space
4898 * forms. If there is enough free space (> low mark), wake Tx queue.
bf79451e 4899 *
43f66a6c
JK
4900 * @note Need to protect against garbage in 'R' index
4901 * @param priv
4902 * @param txq
4903 * @param qindex
4904 * @return Number of used entries remains in the queue
4905 */
bf79451e 4906static int ipw_queue_tx_reclaim(struct ipw_priv *priv,
43f66a6c
JK
4907 struct clx2_tx_queue *txq, int qindex)
4908{
4909 u32 hw_tail;
4910 int used;
4911 struct clx2_queue *q = &txq->q;
4912
4913 hw_tail = ipw_read32(priv, q->reg_r);
4914 if (hw_tail >= q->n_bd) {
4915 IPW_ERROR
0edd5b44
JG
4916 ("Read index for DMA queue (%d) is out of range [0-%d)\n",
4917 hw_tail, q->n_bd);
43f66a6c
JK
4918 goto done;
4919 }
4920 for (; q->last_used != hw_tail;
4921 q->last_used = ipw_queue_inc_wrap(q->last_used, q->n_bd)) {
4922 ipw_queue_tx_free_tfd(priv, txq);
4923 priv->tx_packets++;
4924 }
0edd5b44 4925 done:
9ddf84f6
JK
4926 if ((ipw_queue_space(q) > q->low_mark) &&
4927 (qindex >= 0) &&
4928 (priv->status & STATUS_ASSOCIATED) && netif_running(priv->net_dev))
4929 netif_wake_queue(priv->net_dev);
43f66a6c
JK
4930 used = q->first_empty - q->last_used;
4931 if (used < 0)
4932 used += q->n_bd;
4933
4934 return used;
4935}
4936
4937static int ipw_queue_tx_hcmd(struct ipw_priv *priv, int hcmd, void *buf,
4938 int len, int sync)
4939{
4940 struct clx2_tx_queue *txq = &priv->txq_cmd;
4941 struct clx2_queue *q = &txq->q;
4942 struct tfd_frame *tfd;
4943
4944 if (ipw_queue_space(q) < (sync ? 1 : 2)) {
4945 IPW_ERROR("No space for Tx\n");
4946 return -EBUSY;
4947 }
4948
4949 tfd = &txq->bd[q->first_empty];
4950 txq->txb[q->first_empty] = NULL;
4951
4952 memset(tfd, 0, sizeof(*tfd));
4953 tfd->control_flags.message_type = TX_HOST_COMMAND_TYPE;
4954 tfd->control_flags.control_bits = TFD_NEED_IRQ_MASK;
4955 priv->hcmd_seq++;
4956 tfd->u.cmd.index = hcmd;
4957 tfd->u.cmd.length = len;
4958 memcpy(tfd->u.cmd.payload, buf, len);
4959 q->first_empty = ipw_queue_inc_wrap(q->first_empty, q->n_bd);
4960 ipw_write32(priv, q->reg_w, q->first_empty);
4961 _ipw_read32(priv, 0x90);
4962
4963 return 0;
4964}
4965
bf79451e 4966/*
43f66a6c
JK
4967 * Rx theory of operation
4968 *
4969 * The host allocates 32 DMA target addresses and passes the host address
b095c381 4970 * to the firmware at register IPW_RFDS_TABLE_LOWER + N * RFD_SIZE where N is
43f66a6c
JK
4971 * 0 to 31
4972 *
4973 * Rx Queue Indexes
4974 * The host/firmware share two index registers for managing the Rx buffers.
4975 *
bf79451e
JG
4976 * The READ index maps to the first position that the firmware may be writing
4977 * to -- the driver can read up to (but not including) this position and get
4978 * good data.
43f66a6c
JK
4979 * The READ index is managed by the firmware once the card is enabled.
4980 *
4981 * The WRITE index maps to the last position the driver has read from -- the
4982 * position preceding WRITE is the last slot the firmware can place a packet.
4983 *
4984 * The queue is empty (no good data) if WRITE = READ - 1, and is full if
bf79451e 4985 * WRITE = READ.
43f66a6c 4986 *
bf79451e 4987 * During initialization the host sets up the READ queue position to the first
43f66a6c
JK
4988 * INDEX position, and WRITE to the last (READ - 1 wrapped)
4989 *
4990 * When the firmware places a packet in a buffer it will advance the READ index
4991 * and fire the RX interrupt. The driver can then query the READ index and
4992 * process as many packets as possible, moving the WRITE index forward as it
4993 * resets the Rx queue buffers with new memory.
bf79451e 4994 *
43f66a6c 4995 * The management in the driver is as follows:
bf79451e 4996 * + A list of pre-allocated SKBs is stored in ipw->rxq->rx_free. When
43f66a6c 4997 * ipw->rxq->free_count drops to or below RX_LOW_WATERMARK, work is scheduled
bf79451e 4998 * to replensish the ipw->rxq->rx_free.
43f66a6c
JK
4999 * + In ipw_rx_queue_replenish (scheduled) if 'processed' != 'read' then the
5000 * ipw->rxq is replenished and the READ INDEX is updated (updating the
5001 * 'processed' and 'read' driver indexes as well)
5002 * + A received packet is processed and handed to the kernel network stack,
5003 * detached from the ipw->rxq. The driver 'processed' index is updated.
5004 * + The Host/Firmware ipw->rxq is replenished at tasklet time from the rx_free
bf79451e
JG
5005 * list. If there are no allocated buffers in ipw->rxq->rx_free, the READ
5006 * INDEX is not incremented and ipw->status(RX_STALLED) is set. If there
43f66a6c
JK
5007 * were enough free buffers and RX_STALLED is set it is cleared.
5008 *
5009 *
5010 * Driver sequence:
5011 *
bf79451e 5012 * ipw_rx_queue_alloc() Allocates rx_free
43f66a6c
JK
5013 * ipw_rx_queue_replenish() Replenishes rx_free list from rx_used, and calls
5014 * ipw_rx_queue_restock
5015 * ipw_rx_queue_restock() Moves available buffers from rx_free into Rx
5016 * queue, updates firmware pointers, and updates
5017 * the WRITE index. If insufficient rx_free buffers
5018 * are available, schedules ipw_rx_queue_replenish
5019 *
5020 * -- enable interrupts --
5021 * ISR - ipw_rx() Detach ipw_rx_mem_buffers from pool up to the
bf79451e 5022 * READ INDEX, detaching the SKB from the pool.
43f66a6c
JK
5023 * Moves the packet buffer from queue to rx_used.
5024 * Calls ipw_rx_queue_restock to refill any empty
5025 * slots.
5026 * ...
5027 *
5028 */
5029
bf79451e 5030/*
43f66a6c
JK
5031 * If there are slots in the RX queue that need to be restocked,
5032 * and we have free pre-allocated buffers, fill the ranks as much
5033 * as we can pulling from rx_free.
5034 *
5035 * This moves the 'write' index forward to catch up with 'processed', and
5036 * also updates the memory address in the firmware to reference the new
5037 * target buffer.
5038 */
5039static void ipw_rx_queue_restock(struct ipw_priv *priv)
5040{
5041 struct ipw_rx_queue *rxq = priv->rxq;
5042 struct list_head *element;
5043 struct ipw_rx_mem_buffer *rxb;
5044 unsigned long flags;
5045 int write;
5046
5047 spin_lock_irqsave(&rxq->lock, flags);
5048 write = rxq->write;
5049 while ((rxq->write != rxq->processed) && (rxq->free_count)) {
5050 element = rxq->rx_free.next;
5051 rxb = list_entry(element, struct ipw_rx_mem_buffer, list);
5052 list_del(element);
5053
b095c381 5054 ipw_write32(priv, IPW_RFDS_TABLE_LOWER + rxq->write * RFD_SIZE,
43f66a6c
JK
5055 rxb->dma_addr);
5056 rxq->queue[rxq->write] = rxb;
5057 rxq->write = (rxq->write + 1) % RX_QUEUE_SIZE;
5058 rxq->free_count--;
5059 }
5060 spin_unlock_irqrestore(&rxq->lock, flags);
5061
bf79451e 5062 /* If the pre-allocated buffer pool is dropping low, schedule to
43f66a6c
JK
5063 * refill it */
5064 if (rxq->free_count <= RX_LOW_WATERMARK)
5065 queue_work(priv->workqueue, &priv->rx_replenish);
5066
5067 /* If we've added more space for the firmware to place data, tell it */
bf79451e 5068 if (write != rxq->write)
b095c381 5069 ipw_write32(priv, IPW_RX_WRITE_INDEX, rxq->write);
43f66a6c
JK
5070}
5071
5072/*
5073 * Move all used packet from rx_used to rx_free, allocating a new SKB for each.
bf79451e
JG
5074 * Also restock the Rx queue via ipw_rx_queue_restock.
5075 *
43f66a6c
JK
5076 * This is called as a scheduled work item (except for during intialization)
5077 */
5078static void ipw_rx_queue_replenish(void *data)
5079{
5080 struct ipw_priv *priv = data;
5081 struct ipw_rx_queue *rxq = priv->rxq;
5082 struct list_head *element;
5083 struct ipw_rx_mem_buffer *rxb;
5084 unsigned long flags;
5085
5086 spin_lock_irqsave(&rxq->lock, flags);
5087 while (!list_empty(&rxq->rx_used)) {
5088 element = rxq->rx_used.next;
5089 rxb = list_entry(element, struct ipw_rx_mem_buffer, list);
b095c381 5090 rxb->skb = alloc_skb(IPW_RX_BUF_SIZE, GFP_ATOMIC);
43f66a6c
JK
5091 if (!rxb->skb) {
5092 printk(KERN_CRIT "%s: Can not allocate SKB buffers.\n",
5093 priv->net_dev->name);
5094 /* We don't reschedule replenish work here -- we will
5095 * call the restock method and if it still needs
5096 * more buffers it will schedule replenish */
5097 break;
5098 }
5099 list_del(element);
bf79451e 5100
0edd5b44
JG
5101 rxb->dma_addr =
5102 pci_map_single(priv->pci_dev, rxb->skb->data,
b095c381 5103 IPW_RX_BUF_SIZE, PCI_DMA_FROMDEVICE);
bf79451e 5104
43f66a6c
JK
5105 list_add_tail(&rxb->list, &rxq->rx_free);
5106 rxq->free_count++;
5107 }
5108 spin_unlock_irqrestore(&rxq->lock, flags);
5109
5110 ipw_rx_queue_restock(priv);
5111}
5112
c4028958 5113static void ipw_bg_rx_queue_replenish(struct work_struct *work)
c848d0af 5114{
c4028958
DH
5115 struct ipw_priv *priv =
5116 container_of(work, struct ipw_priv, rx_replenish);
4644151b 5117 mutex_lock(&priv->mutex);
c4028958 5118 ipw_rx_queue_replenish(priv);
4644151b 5119 mutex_unlock(&priv->mutex);
c848d0af
JK
5120}
5121
43f66a6c 5122/* Assumes that the skb field of the buffers in 'pool' is kept accurate.
c7b6a674 5123 * If an SKB has been detached, the POOL needs to have its SKB set to NULL
bf79451e 5124 * This free routine walks the list of POOL entries and if SKB is set to
43f66a6c
JK
5125 * non NULL it is unmapped and freed
5126 */
0edd5b44 5127static void ipw_rx_queue_free(struct ipw_priv *priv, struct ipw_rx_queue *rxq)
43f66a6c
JK
5128{
5129 int i;
5130
5131 if (!rxq)
5132 return;
bf79451e 5133
43f66a6c
JK
5134 for (i = 0; i < RX_QUEUE_SIZE + RX_FREE_BUFFERS; i++) {
5135 if (rxq->pool[i].skb != NULL) {
5136 pci_unmap_single(priv->pci_dev, rxq->pool[i].dma_addr,
b095c381 5137 IPW_RX_BUF_SIZE, PCI_DMA_FROMDEVICE);
43f66a6c
JK
5138 dev_kfree_skb(rxq->pool[i].skb);
5139 }
5140 }
5141
5142 kfree(rxq);
5143}
5144
5145static struct ipw_rx_queue *ipw_rx_queue_alloc(struct ipw_priv *priv)
5146{
5147 struct ipw_rx_queue *rxq;
5148 int i;
5149
c75f4742 5150 rxq = kzalloc(sizeof(*rxq), GFP_KERNEL);
ad18b0ea
PI
5151 if (unlikely(!rxq)) {
5152 IPW_ERROR("memory allocation failed\n");
5153 return NULL;
5154 }
43f66a6c
JK
5155 spin_lock_init(&rxq->lock);
5156 INIT_LIST_HEAD(&rxq->rx_free);
5157 INIT_LIST_HEAD(&rxq->rx_used);
5158
5159 /* Fill the rx_used queue with _all_ of the Rx buffers */
bf79451e 5160 for (i = 0; i < RX_FREE_BUFFERS + RX_QUEUE_SIZE; i++)
43f66a6c
JK
5161 list_add_tail(&rxq->pool[i].list, &rxq->rx_used);
5162
5163 /* Set us so that we have processed and used all buffers, but have
5164 * not restocked the Rx queue with fresh buffers */
5165 rxq->read = rxq->write = 0;
5166 rxq->processed = RX_QUEUE_SIZE - 1;
5167 rxq->free_count = 0;
5168
5169 return rxq;
5170}
5171
5172static int ipw_is_rate_in_mask(struct ipw_priv *priv, int ieee_mode, u8 rate)
5173{
5174 rate &= ~IEEE80211_BASIC_RATE_MASK;
5175 if (ieee_mode == IEEE_A) {
5176 switch (rate) {
bf79451e
JG
5177 case IEEE80211_OFDM_RATE_6MB:
5178 return priv->rates_mask & IEEE80211_OFDM_RATE_6MB_MASK ?
0edd5b44 5179 1 : 0;
bf79451e
JG
5180 case IEEE80211_OFDM_RATE_9MB:
5181 return priv->rates_mask & IEEE80211_OFDM_RATE_9MB_MASK ?
0edd5b44 5182 1 : 0;
bf79451e 5183 case IEEE80211_OFDM_RATE_12MB:
0edd5b44
JG
5184 return priv->
5185 rates_mask & IEEE80211_OFDM_RATE_12MB_MASK ? 1 : 0;
bf79451e 5186 case IEEE80211_OFDM_RATE_18MB:
0edd5b44
JG
5187 return priv->
5188 rates_mask & IEEE80211_OFDM_RATE_18MB_MASK ? 1 : 0;
bf79451e 5189 case IEEE80211_OFDM_RATE_24MB:
0edd5b44
JG
5190 return priv->
5191 rates_mask & IEEE80211_OFDM_RATE_24MB_MASK ? 1 : 0;
bf79451e 5192 case IEEE80211_OFDM_RATE_36MB:
0edd5b44
JG
5193 return priv->
5194 rates_mask & IEEE80211_OFDM_RATE_36MB_MASK ? 1 : 0;
bf79451e 5195 case IEEE80211_OFDM_RATE_48MB:
0edd5b44
JG
5196 return priv->
5197 rates_mask & IEEE80211_OFDM_RATE_48MB_MASK ? 1 : 0;
bf79451e 5198 case IEEE80211_OFDM_RATE_54MB:
0edd5b44
JG
5199 return priv->
5200 rates_mask & IEEE80211_OFDM_RATE_54MB_MASK ? 1 : 0;
43f66a6c
JK
5201 default:
5202 return 0;
5203 }
5204 }
bf79451e 5205
43f66a6c
JK
5206 /* B and G mixed */
5207 switch (rate) {
bf79451e 5208 case IEEE80211_CCK_RATE_1MB:
43f66a6c 5209 return priv->rates_mask & IEEE80211_CCK_RATE_1MB_MASK ? 1 : 0;
bf79451e 5210 case IEEE80211_CCK_RATE_2MB:
43f66a6c 5211 return priv->rates_mask & IEEE80211_CCK_RATE_2MB_MASK ? 1 : 0;
bf79451e 5212 case IEEE80211_CCK_RATE_5MB:
43f66a6c 5213 return priv->rates_mask & IEEE80211_CCK_RATE_5MB_MASK ? 1 : 0;
bf79451e 5214 case IEEE80211_CCK_RATE_11MB:
43f66a6c
JK
5215 return priv->rates_mask & IEEE80211_CCK_RATE_11MB_MASK ? 1 : 0;
5216 }
5217
5218 /* If we are limited to B modulations, bail at this point */
5219 if (ieee_mode == IEEE_B)
5220 return 0;
5221
5222 /* G */
5223 switch (rate) {
bf79451e 5224 case IEEE80211_OFDM_RATE_6MB:
43f66a6c 5225 return priv->rates_mask & IEEE80211_OFDM_RATE_6MB_MASK ? 1 : 0;
bf79451e 5226 case IEEE80211_OFDM_RATE_9MB:
43f66a6c 5227 return priv->rates_mask & IEEE80211_OFDM_RATE_9MB_MASK ? 1 : 0;
bf79451e 5228 case IEEE80211_OFDM_RATE_12MB:
43f66a6c 5229 return priv->rates_mask & IEEE80211_OFDM_RATE_12MB_MASK ? 1 : 0;
bf79451e 5230 case IEEE80211_OFDM_RATE_18MB:
43f66a6c 5231 return priv->rates_mask & IEEE80211_OFDM_RATE_18MB_MASK ? 1 : 0;
bf79451e 5232 case IEEE80211_OFDM_RATE_24MB:
43f66a6c 5233 return priv->rates_mask & IEEE80211_OFDM_RATE_24MB_MASK ? 1 : 0;
bf79451e 5234 case IEEE80211_OFDM_RATE_36MB:
43f66a6c 5235 return priv->rates_mask & IEEE80211_OFDM_RATE_36MB_MASK ? 1 : 0;
bf79451e 5236 case IEEE80211_OFDM_RATE_48MB:
43f66a6c 5237 return priv->rates_mask & IEEE80211_OFDM_RATE_48MB_MASK ? 1 : 0;
bf79451e 5238 case IEEE80211_OFDM_RATE_54MB:
43f66a6c
JK
5239 return priv->rates_mask & IEEE80211_OFDM_RATE_54MB_MASK ? 1 : 0;
5240 }
5241
5242 return 0;
5243}
5244
bf79451e 5245static int ipw_compatible_rates(struct ipw_priv *priv,
43f66a6c
JK
5246 const struct ieee80211_network *network,
5247 struct ipw_supported_rates *rates)
5248{
5249 int num_rates, i;
5250
5251 memset(rates, 0, sizeof(*rates));
0edd5b44 5252 num_rates = min(network->rates_len, (u8) IPW_MAX_RATES);
43f66a6c
JK
5253 rates->num_rates = 0;
5254 for (i = 0; i < num_rates; i++) {
a613bffd
JK
5255 if (!ipw_is_rate_in_mask(priv, network->mode,
5256 network->rates[i])) {
5257
ea2b26e0 5258 if (network->rates[i] & IEEE80211_BASIC_RATE_MASK) {
a613bffd
JK
5259 IPW_DEBUG_SCAN("Adding masked mandatory "
5260 "rate %02X\n",
5261 network->rates[i]);
5262 rates->supported_rates[rates->num_rates++] =
5263 network->rates[i];
5264 continue;
ea2b26e0
JK
5265 }
5266
43f66a6c
JK
5267 IPW_DEBUG_SCAN("Rate %02X masked : 0x%08X\n",
5268 network->rates[i], priv->rates_mask);
5269 continue;
5270 }
bf79451e 5271
43f66a6c
JK
5272 rates->supported_rates[rates->num_rates++] = network->rates[i];
5273 }
5274
a613bffd
JK
5275 num_rates = min(network->rates_ex_len,
5276 (u8) (IPW_MAX_RATES - num_rates));
43f66a6c 5277 for (i = 0; i < num_rates; i++) {
a613bffd
JK
5278 if (!ipw_is_rate_in_mask(priv, network->mode,
5279 network->rates_ex[i])) {
ea2b26e0 5280 if (network->rates_ex[i] & IEEE80211_BASIC_RATE_MASK) {
a613bffd
JK
5281 IPW_DEBUG_SCAN("Adding masked mandatory "
5282 "rate %02X\n",
5283 network->rates_ex[i]);
5284 rates->supported_rates[rates->num_rates++] =
5285 network->rates[i];
5286 continue;
ea2b26e0
JK
5287 }
5288
43f66a6c
JK
5289 IPW_DEBUG_SCAN("Rate %02X masked : 0x%08X\n",
5290 network->rates_ex[i], priv->rates_mask);
5291 continue;
5292 }
bf79451e 5293
0edd5b44
JG
5294 rates->supported_rates[rates->num_rates++] =
5295 network->rates_ex[i];
43f66a6c
JK
5296 }
5297
ea2b26e0 5298 return 1;
43f66a6c
JK
5299}
5300
858119e1 5301static void ipw_copy_rates(struct ipw_supported_rates *dest,
43f66a6c
JK
5302 const struct ipw_supported_rates *src)
5303{
5304 u8 i;
5305 for (i = 0; i < src->num_rates; i++)
5306 dest->supported_rates[i] = src->supported_rates[i];
5307 dest->num_rates = src->num_rates;
5308}
5309
5310/* TODO: Look at sniffed packets in the air to determine if the basic rate
5311 * mask should ever be used -- right now all callers to add the scan rates are
5312 * set with the modulation = CCK, so BASIC_RATE_MASK is never set... */
5313static void ipw_add_cck_scan_rates(struct ipw_supported_rates *rates,
0edd5b44 5314 u8 modulation, u32 rate_mask)
43f66a6c 5315{
bf79451e 5316 u8 basic_mask = (IEEE80211_OFDM_MODULATION == modulation) ?
0edd5b44 5317 IEEE80211_BASIC_RATE_MASK : 0;
bf79451e 5318
43f66a6c 5319 if (rate_mask & IEEE80211_CCK_RATE_1MB_MASK)
bf79451e 5320 rates->supported_rates[rates->num_rates++] =
0edd5b44 5321 IEEE80211_BASIC_RATE_MASK | IEEE80211_CCK_RATE_1MB;
43f66a6c
JK
5322
5323 if (rate_mask & IEEE80211_CCK_RATE_2MB_MASK)
bf79451e 5324 rates->supported_rates[rates->num_rates++] =
0edd5b44 5325 IEEE80211_BASIC_RATE_MASK | IEEE80211_CCK_RATE_2MB;
43f66a6c
JK
5326
5327 if (rate_mask & IEEE80211_CCK_RATE_5MB_MASK)
bf79451e 5328 rates->supported_rates[rates->num_rates++] = basic_mask |
0edd5b44 5329 IEEE80211_CCK_RATE_5MB;
43f66a6c
JK
5330
5331 if (rate_mask & IEEE80211_CCK_RATE_11MB_MASK)
bf79451e 5332 rates->supported_rates[rates->num_rates++] = basic_mask |
0edd5b44 5333 IEEE80211_CCK_RATE_11MB;
43f66a6c
JK
5334}
5335
5336static void ipw_add_ofdm_scan_rates(struct ipw_supported_rates *rates,
0edd5b44 5337 u8 modulation, u32 rate_mask)
43f66a6c 5338{
bf79451e 5339 u8 basic_mask = (IEEE80211_OFDM_MODULATION == modulation) ?
0edd5b44 5340 IEEE80211_BASIC_RATE_MASK : 0;
43f66a6c
JK
5341
5342 if (rate_mask & IEEE80211_OFDM_RATE_6MB_MASK)
bf79451e 5343 rates->supported_rates[rates->num_rates++] = basic_mask |
0edd5b44 5344 IEEE80211_OFDM_RATE_6MB;
43f66a6c
JK
5345
5346 if (rate_mask & IEEE80211_OFDM_RATE_9MB_MASK)
bf79451e 5347 rates->supported_rates[rates->num_rates++] =
0edd5b44 5348 IEEE80211_OFDM_RATE_9MB;
43f66a6c
JK
5349
5350 if (rate_mask & IEEE80211_OFDM_RATE_12MB_MASK)
bf79451e 5351 rates->supported_rates[rates->num_rates++] = basic_mask |
0edd5b44 5352 IEEE80211_OFDM_RATE_12MB;
43f66a6c
JK
5353
5354 if (rate_mask & IEEE80211_OFDM_RATE_18MB_MASK)
bf79451e 5355 rates->supported_rates[rates->num_rates++] =
0edd5b44 5356 IEEE80211_OFDM_RATE_18MB;
43f66a6c
JK
5357
5358 if (rate_mask & IEEE80211_OFDM_RATE_24MB_MASK)
bf79451e 5359 rates->supported_rates[rates->num_rates++] = basic_mask |
0edd5b44 5360 IEEE80211_OFDM_RATE_24MB;
43f66a6c
JK
5361
5362 if (rate_mask & IEEE80211_OFDM_RATE_36MB_MASK)
bf79451e 5363 rates->supported_rates[rates->num_rates++] =
0edd5b44 5364 IEEE80211_OFDM_RATE_36MB;
43f66a6c
JK
5365
5366 if (rate_mask & IEEE80211_OFDM_RATE_48MB_MASK)
bf79451e 5367 rates->supported_rates[rates->num_rates++] =
0edd5b44 5368 IEEE80211_OFDM_RATE_48MB;
43f66a6c
JK
5369
5370 if (rate_mask & IEEE80211_OFDM_RATE_54MB_MASK)
bf79451e 5371 rates->supported_rates[rates->num_rates++] =
0edd5b44 5372 IEEE80211_OFDM_RATE_54MB;
43f66a6c
JK
5373}
5374
5375struct ipw_network_match {
5376 struct ieee80211_network *network;
5377 struct ipw_supported_rates rates;
5378};
5379
c848d0af
JK
5380static int ipw_find_adhoc_network(struct ipw_priv *priv,
5381 struct ipw_network_match *match,
5382 struct ieee80211_network *network,
5383 int roaming)
43f66a6c
JK
5384{
5385 struct ipw_supported_rates rates;
5386
5387 /* Verify that this network's capability is compatible with the
5388 * current mode (AdHoc or Infrastructure) */
c848d0af 5389 if ((priv->ieee->iw_mode == IW_MODE_ADHOC &&
43f66a6c 5390 !(network->capability & WLAN_CAPABILITY_IBSS))) {
c848d0af 5391 IPW_DEBUG_MERGE("Network '%s (" MAC_FMT ")' excluded due to "
bf79451e 5392 "capability mismatch.\n",
43f66a6c
JK
5393 escape_essid(network->ssid, network->ssid_len),
5394 MAC_ARG(network->bssid));
5395 return 0;
5396 }
5397
5398 /* If we do not have an ESSID for this AP, we can not associate with
5399 * it */
5400 if (network->flags & NETWORK_EMPTY_ESSID) {
c848d0af 5401 IPW_DEBUG_MERGE("Network '%s (" MAC_FMT ")' excluded "
43f66a6c
JK
5402 "because of hidden ESSID.\n",
5403 escape_essid(network->ssid, network->ssid_len),
5404 MAC_ARG(network->bssid));
5405 return 0;
5406 }
bf79451e 5407
43f66a6c
JK
5408 if (unlikely(roaming)) {
5409 /* If we are roaming, then ensure check if this is a valid
5410 * network to try and roam to */
5411 if ((network->ssid_len != match->network->ssid_len) ||
bf79451e 5412 memcmp(network->ssid, match->network->ssid,
43f66a6c 5413 network->ssid_len)) {
c848d0af 5414 IPW_DEBUG_MERGE("Netowrk '%s (" MAC_FMT ")' excluded "
43f66a6c 5415 "because of non-network ESSID.\n",
bf79451e 5416 escape_essid(network->ssid,
43f66a6c
JK
5417 network->ssid_len),
5418 MAC_ARG(network->bssid));
5419 return 0;
5420 }
5421 } else {
bf79451e
JG
5422 /* If an ESSID has been configured then compare the broadcast
5423 * ESSID to ours */
5424 if ((priv->config & CFG_STATIC_ESSID) &&
43f66a6c 5425 ((network->ssid_len != priv->essid_len) ||
bf79451e 5426 memcmp(network->ssid, priv->essid,
43f66a6c
JK
5427 min(network->ssid_len, priv->essid_len)))) {
5428 char escaped[IW_ESSID_MAX_SIZE * 2 + 1];
afbf30a2 5429
0edd5b44
JG
5430 strncpy(escaped,
5431 escape_essid(network->ssid, network->ssid_len),
43f66a6c 5432 sizeof(escaped));
c848d0af 5433 IPW_DEBUG_MERGE("Network '%s (" MAC_FMT ")' excluded "
bf79451e 5434 "because of ESSID mismatch: '%s'.\n",
43f66a6c 5435 escaped, MAC_ARG(network->bssid),
0edd5b44
JG
5436 escape_essid(priv->essid,
5437 priv->essid_len));
43f66a6c
JK
5438 return 0;
5439 }
5440 }
5441
5442 /* If the old network rate is better than this one, don't bother
5443 * testing everything else. */
c848d0af
JK
5444
5445 if (network->time_stamp[0] < match->network->time_stamp[0]) {
afbf30a2
JK
5446 IPW_DEBUG_MERGE("Network '%s excluded because newer than "
5447 "current network.\n",
43f66a6c 5448 escape_essid(match->network->ssid,
afbf30a2 5449 match->network->ssid_len));
43f66a6c 5450 return 0;
c848d0af 5451 } else if (network->time_stamp[1] < match->network->time_stamp[1]) {
afbf30a2
JK
5452 IPW_DEBUG_MERGE("Network '%s excluded because newer than "
5453 "current network.\n",
5454 escape_essid(match->network->ssid,
5455 match->network->ssid_len));
43f66a6c
JK
5456 return 0;
5457 }
5458
5459 /* Now go through and see if the requested network is valid... */
bf79451e 5460 if (priv->ieee->scan_age != 0 &&
c848d0af
JK
5461 time_after(jiffies, network->last_scanned + priv->ieee->scan_age)) {
5462 IPW_DEBUG_MERGE("Network '%s (" MAC_FMT ")' excluded "
c7b6a674 5463 "because of age: %ums.\n",
43f66a6c
JK
5464 escape_essid(network->ssid, network->ssid_len),
5465 MAC_ARG(network->bssid),
2638bc39
ZY
5466 jiffies_to_msecs(jiffies -
5467 network->last_scanned));
43f66a6c 5468 return 0;
bf79451e 5469 }
43f66a6c 5470
bf79451e 5471 if ((priv->config & CFG_STATIC_CHANNEL) &&
43f66a6c 5472 (network->channel != priv->channel)) {
c848d0af 5473 IPW_DEBUG_MERGE("Network '%s (" MAC_FMT ")' excluded "
43f66a6c
JK
5474 "because of channel mismatch: %d != %d.\n",
5475 escape_essid(network->ssid, network->ssid_len),
5476 MAC_ARG(network->bssid),
5477 network->channel, priv->channel);
5478 return 0;
5479 }
bf79451e 5480
43f66a6c 5481 /* Verify privacy compatability */
bf79451e 5482 if (((priv->capability & CAP_PRIVACY_ON) ? 1 : 0) !=
43f66a6c 5483 ((network->capability & WLAN_CAPABILITY_PRIVACY) ? 1 : 0)) {
c848d0af 5484 IPW_DEBUG_MERGE("Network '%s (" MAC_FMT ")' excluded "
43f66a6c
JK
5485 "because of privacy mismatch: %s != %s.\n",
5486 escape_essid(network->ssid, network->ssid_len),
5487 MAC_ARG(network->bssid),
afbf30a2
JK
5488 priv->
5489 capability & CAP_PRIVACY_ON ? "on" : "off",
5490 network->
5491 capability & WLAN_CAPABILITY_PRIVACY ? "on" :
5492 "off");
43f66a6c
JK
5493 return 0;
5494 }
bf79451e 5495
c848d0af
JK
5496 if (!memcmp(network->bssid, priv->bssid, ETH_ALEN)) {
5497 IPW_DEBUG_MERGE("Network '%s (" MAC_FMT ")' excluded "
5498 "because of the same BSSID match: " MAC_FMT
5499 ".\n", escape_essid(network->ssid,
5500 network->ssid_len),
0edd5b44 5501 MAC_ARG(network->bssid), MAC_ARG(priv->bssid));
43f66a6c
JK
5502 return 0;
5503 }
bf79451e 5504
43f66a6c
JK
5505 /* Filter out any incompatible freq / mode combinations */
5506 if (!ieee80211_is_valid_mode(priv->ieee, network->mode)) {
c848d0af 5507 IPW_DEBUG_MERGE("Network '%s (" MAC_FMT ")' excluded "
43f66a6c
JK
5508 "because of invalid frequency/mode "
5509 "combination.\n",
5510 escape_essid(network->ssid, network->ssid_len),
5511 MAC_ARG(network->bssid));
5512 return 0;
5513 }
bf79451e 5514
c848d0af
JK
5515 /* Ensure that the rates supported by the driver are compatible with
5516 * this AP, including verification of basic rates (mandatory) */
5517 if (!ipw_compatible_rates(priv, network, &rates)) {
5518 IPW_DEBUG_MERGE("Network '%s (" MAC_FMT ")' excluded "
5519 "because configured rate mask excludes "
5520 "AP mandatory rate.\n",
5521 escape_essid(network->ssid, network->ssid_len),
5522 MAC_ARG(network->bssid));
5523 return 0;
5524 }
5525
43f66a6c 5526 if (rates.num_rates == 0) {
c848d0af 5527 IPW_DEBUG_MERGE("Network '%s (" MAC_FMT ")' excluded "
43f66a6c
JK
5528 "because of no compatible rates.\n",
5529 escape_essid(network->ssid, network->ssid_len),
5530 MAC_ARG(network->bssid));
5531 return 0;
5532 }
bf79451e 5533
43f66a6c
JK
5534 /* TODO: Perform any further minimal comparititive tests. We do not
5535 * want to put too much policy logic here; intelligent scan selection
5536 * should occur within a generic IEEE 802.11 user space tool. */
5537
5538 /* Set up 'new' AP to this network */
5539 ipw_copy_rates(&match->rates, &rates);
5540 match->network = network;
c848d0af 5541 IPW_DEBUG_MERGE("Network '%s (" MAC_FMT ")' is a viable match.\n",
43f66a6c
JK
5542 escape_essid(network->ssid, network->ssid_len),
5543 MAC_ARG(network->bssid));
5544
5545 return 1;
5546}
5547
c4028958 5548static void ipw_merge_adhoc_network(struct work_struct *work)
43f66a6c 5549{
c4028958
DH
5550 struct ipw_priv *priv =
5551 container_of(work, struct ipw_priv, merge_networks);
c848d0af
JK
5552 struct ieee80211_network *network = NULL;
5553 struct ipw_network_match match = {
5554 .network = priv->assoc_network
5555 };
5556
afbf30a2
JK
5557 if ((priv->status & STATUS_ASSOCIATED) &&
5558 (priv->ieee->iw_mode == IW_MODE_ADHOC)) {
c848d0af
JK
5559 /* First pass through ROAM process -- look for a better
5560 * network */
5561 unsigned long flags;
5562
5563 spin_lock_irqsave(&priv->ieee->lock, flags);
5564 list_for_each_entry(network, &priv->ieee->network_list, list) {
5565 if (network != priv->assoc_network)
5566 ipw_find_adhoc_network(priv, &match, network,
5567 1);
5568 }
5569 spin_unlock_irqrestore(&priv->ieee->lock, flags);
5570
5571 if (match.network == priv->assoc_network) {
5572 IPW_DEBUG_MERGE("No better ADHOC in this network to "
5573 "merge to.\n");
5574 return;
5575 }
5576
4644151b 5577 mutex_lock(&priv->mutex);
c848d0af
JK
5578 if ((priv->ieee->iw_mode == IW_MODE_ADHOC)) {
5579 IPW_DEBUG_MERGE("remove network %s\n",
5580 escape_essid(priv->essid,
5581 priv->essid_len));
5582 ipw_remove_current_network(priv);
43f66a6c 5583 }
c848d0af
JK
5584
5585 ipw_disassociate(priv);
5586 priv->assoc_network = match.network;
4644151b 5587 mutex_unlock(&priv->mutex);
c848d0af 5588 return;
43f66a6c 5589 }
c848d0af 5590}
43f66a6c 5591
0edd5b44
JG
5592static int ipw_best_network(struct ipw_priv *priv,
5593 struct ipw_network_match *match,
5594 struct ieee80211_network *network, int roaming)
43f66a6c
JK
5595{
5596 struct ipw_supported_rates rates;
5597
5598 /* Verify that this network's capability is compatible with the
5599 * current mode (AdHoc or Infrastructure) */
5600 if ((priv->ieee->iw_mode == IW_MODE_INFRA &&
2474385e 5601 !(network->capability & WLAN_CAPABILITY_ESS)) ||
43f66a6c
JK
5602 (priv->ieee->iw_mode == IW_MODE_ADHOC &&
5603 !(network->capability & WLAN_CAPABILITY_IBSS))) {
5604 IPW_DEBUG_ASSOC("Network '%s (" MAC_FMT ")' excluded due to "
bf79451e 5605 "capability mismatch.\n",
43f66a6c
JK
5606 escape_essid(network->ssid, network->ssid_len),
5607 MAC_ARG(network->bssid));
5608 return 0;
5609 }
5610
5611 /* If we do not have an ESSID for this AP, we can not associate with
5612 * it */
5613 if (network->flags & NETWORK_EMPTY_ESSID) {
5614 IPW_DEBUG_ASSOC("Network '%s (" MAC_FMT ")' excluded "
5615 "because of hidden ESSID.\n",
5616 escape_essid(network->ssid, network->ssid_len),
5617 MAC_ARG(network->bssid));
5618 return 0;
5619 }
bf79451e 5620
43f66a6c
JK
5621 if (unlikely(roaming)) {
5622 /* If we are roaming, then ensure check if this is a valid
5623 * network to try and roam to */
5624 if ((network->ssid_len != match->network->ssid_len) ||
bf79451e 5625 memcmp(network->ssid, match->network->ssid,
43f66a6c
JK
5626 network->ssid_len)) {
5627 IPW_DEBUG_ASSOC("Netowrk '%s (" MAC_FMT ")' excluded "
5628 "because of non-network ESSID.\n",
bf79451e 5629 escape_essid(network->ssid,
43f66a6c
JK
5630 network->ssid_len),
5631 MAC_ARG(network->bssid));
5632 return 0;
5633 }
5634 } else {
bf79451e
JG
5635 /* If an ESSID has been configured then compare the broadcast
5636 * ESSID to ours */
5637 if ((priv->config & CFG_STATIC_ESSID) &&
43f66a6c 5638 ((network->ssid_len != priv->essid_len) ||
bf79451e 5639 memcmp(network->ssid, priv->essid,
43f66a6c
JK
5640 min(network->ssid_len, priv->essid_len)))) {
5641 char escaped[IW_ESSID_MAX_SIZE * 2 + 1];
0edd5b44
JG
5642 strncpy(escaped,
5643 escape_essid(network->ssid, network->ssid_len),
43f66a6c
JK
5644 sizeof(escaped));
5645 IPW_DEBUG_ASSOC("Network '%s (" MAC_FMT ")' excluded "
bf79451e 5646 "because of ESSID mismatch: '%s'.\n",
43f66a6c 5647 escaped, MAC_ARG(network->bssid),
0edd5b44
JG
5648 escape_essid(priv->essid,
5649 priv->essid_len));
43f66a6c
JK
5650 return 0;
5651 }
5652 }
5653
5654 /* If the old network rate is better than this one, don't bother
5655 * testing everything else. */
0edd5b44 5656 if (match->network && match->network->stats.rssi > network->stats.rssi) {
43f66a6c 5657 char escaped[IW_ESSID_MAX_SIZE * 2 + 1];
bf79451e
JG
5658 strncpy(escaped,
5659 escape_essid(network->ssid, network->ssid_len),
43f66a6c
JK
5660 sizeof(escaped));
5661 IPW_DEBUG_ASSOC("Network '%s (" MAC_FMT ")' excluded because "
5662 "'%s (" MAC_FMT ")' has a stronger signal.\n",
5663 escaped, MAC_ARG(network->bssid),
5664 escape_essid(match->network->ssid,
5665 match->network->ssid_len),
5666 MAC_ARG(match->network->bssid));
5667 return 0;
5668 }
bf79451e 5669
43f66a6c
JK
5670 /* If this network has already had an association attempt within the
5671 * last 3 seconds, do not try and associate again... */
5672 if (network->last_associate &&
ea2b26e0 5673 time_after(network->last_associate + (HZ * 3UL), jiffies)) {
43f66a6c 5674 IPW_DEBUG_ASSOC("Network '%s (" MAC_FMT ")' excluded "
c7b6a674 5675 "because of storming (%ums since last "
43f66a6c
JK
5676 "assoc attempt).\n",
5677 escape_essid(network->ssid, network->ssid_len),
5678 MAC_ARG(network->bssid),
2638bc39
ZY
5679 jiffies_to_msecs(jiffies -
5680 network->last_associate));
43f66a6c
JK
5681 return 0;
5682 }
5683
5684 /* Now go through and see if the requested network is valid... */
bf79451e 5685 if (priv->ieee->scan_age != 0 &&
ea2b26e0 5686 time_after(jiffies, network->last_scanned + priv->ieee->scan_age)) {
43f66a6c 5687 IPW_DEBUG_ASSOC("Network '%s (" MAC_FMT ")' excluded "
c7b6a674 5688 "because of age: %ums.\n",
43f66a6c
JK
5689 escape_essid(network->ssid, network->ssid_len),
5690 MAC_ARG(network->bssid),
2638bc39
ZY
5691 jiffies_to_msecs(jiffies -
5692 network->last_scanned));
43f66a6c 5693 return 0;
bf79451e 5694 }
43f66a6c 5695
bf79451e 5696 if ((priv->config & CFG_STATIC_CHANNEL) &&
43f66a6c
JK
5697 (network->channel != priv->channel)) {
5698 IPW_DEBUG_ASSOC("Network '%s (" MAC_FMT ")' excluded "
5699 "because of channel mismatch: %d != %d.\n",
5700 escape_essid(network->ssid, network->ssid_len),
5701 MAC_ARG(network->bssid),
5702 network->channel, priv->channel);
5703 return 0;
5704 }
bf79451e 5705
43f66a6c 5706 /* Verify privacy compatability */
bf79451e 5707 if (((priv->capability & CAP_PRIVACY_ON) ? 1 : 0) !=
43f66a6c
JK
5708 ((network->capability & WLAN_CAPABILITY_PRIVACY) ? 1 : 0)) {
5709 IPW_DEBUG_ASSOC("Network '%s (" MAC_FMT ")' excluded "
5710 "because of privacy mismatch: %s != %s.\n",
5711 escape_essid(network->ssid, network->ssid_len),
5712 MAC_ARG(network->bssid),
bf79451e 5713 priv->capability & CAP_PRIVACY_ON ? "on" :
43f66a6c 5714 "off",
bf79451e 5715 network->capability &
0edd5b44 5716 WLAN_CAPABILITY_PRIVACY ? "on" : "off");
43f66a6c
JK
5717 return 0;
5718 }
bf79451e
JG
5719
5720 if ((priv->config & CFG_STATIC_BSSID) &&
43f66a6c
JK
5721 memcmp(network->bssid, priv->bssid, ETH_ALEN)) {
5722 IPW_DEBUG_ASSOC("Network '%s (" MAC_FMT ")' excluded "
5723 "because of BSSID mismatch: " MAC_FMT ".\n",
5724 escape_essid(network->ssid, network->ssid_len),
0edd5b44 5725 MAC_ARG(network->bssid), MAC_ARG(priv->bssid));
43f66a6c
JK
5726 return 0;
5727 }
bf79451e 5728
43f66a6c
JK
5729 /* Filter out any incompatible freq / mode combinations */
5730 if (!ieee80211_is_valid_mode(priv->ieee, network->mode)) {
5731 IPW_DEBUG_ASSOC("Network '%s (" MAC_FMT ")' excluded "
5732 "because of invalid frequency/mode "
5733 "combination.\n",
5734 escape_essid(network->ssid, network->ssid_len),
5735 MAC_ARG(network->bssid));
5736 return 0;
5737 }
bf79451e 5738
1fe0adb4 5739 /* Filter out invalid channel in current GEO */
1867b117 5740 if (!ieee80211_is_valid_channel(priv->ieee, network->channel)) {
1fe0adb4
LH
5741 IPW_DEBUG_ASSOC("Network '%s (" MAC_FMT ")' excluded "
5742 "because of invalid channel in current GEO\n",
5743 escape_essid(network->ssid, network->ssid_len),
5744 MAC_ARG(network->bssid));
5745 return 0;
5746 }
5747
ea2b26e0
JK
5748 /* Ensure that the rates supported by the driver are compatible with
5749 * this AP, including verification of basic rates (mandatory) */
5750 if (!ipw_compatible_rates(priv, network, &rates)) {
5751 IPW_DEBUG_ASSOC("Network '%s (" MAC_FMT ")' excluded "
5752 "because configured rate mask excludes "
5753 "AP mandatory rate.\n",
5754 escape_essid(network->ssid, network->ssid_len),
5755 MAC_ARG(network->bssid));
5756 return 0;
5757 }
5758
43f66a6c
JK
5759 if (rates.num_rates == 0) {
5760 IPW_DEBUG_ASSOC("Network '%s (" MAC_FMT ")' excluded "
5761 "because of no compatible rates.\n",
5762 escape_essid(network->ssid, network->ssid_len),
5763 MAC_ARG(network->bssid));
5764 return 0;
5765 }
bf79451e 5766
43f66a6c
JK
5767 /* TODO: Perform any further minimal comparititive tests. We do not
5768 * want to put too much policy logic here; intelligent scan selection
5769 * should occur within a generic IEEE 802.11 user space tool. */
5770
5771 /* Set up 'new' AP to this network */
5772 ipw_copy_rates(&match->rates, &rates);
5773 match->network = network;
5774
5775 IPW_DEBUG_ASSOC("Network '%s (" MAC_FMT ")' is a viable match.\n",
5776 escape_essid(network->ssid, network->ssid_len),
5777 MAC_ARG(network->bssid));
5778
5779 return 1;
5780}
5781
bf79451e 5782static void ipw_adhoc_create(struct ipw_priv *priv,
0edd5b44 5783 struct ieee80211_network *network)
43f66a6c 5784{
1867b117 5785 const struct ieee80211_geo *geo = ieee80211_get_geo(priv->ieee);
afbf30a2
JK
5786 int i;
5787
43f66a6c
JK
5788 /*
5789 * For the purposes of scanning, we can set our wireless mode
5790 * to trigger scans across combinations of bands, but when it
5791 * comes to creating a new ad-hoc network, we have tell the FW
5792 * exactly which band to use.
5793 *
bf79451e 5794 * We also have the possibility of an invalid channel for the
43f66a6c
JK
5795 * chossen band. Attempting to create a new ad-hoc network
5796 * with an invalid channel for wireless mode will trigger a
5797 * FW fatal error.
afbf30a2 5798 *
43f66a6c 5799 */
1867b117 5800 switch (ieee80211_is_valid_channel(priv->ieee, priv->channel)) {
afbf30a2
JK
5801 case IEEE80211_52GHZ_BAND:
5802 network->mode = IEEE_A;
1867b117 5803 i = ieee80211_channel_to_index(priv->ieee, priv->channel);
5d9428de 5804 BUG_ON(i == -1);
afbf30a2
JK
5805 if (geo->a[i].flags & IEEE80211_CH_PASSIVE_ONLY) {
5806 IPW_WARNING("Overriding invalid channel\n");
5807 priv->channel = geo->a[0].channel;
5808 }
5809 break;
5810
5811 case IEEE80211_24GHZ_BAND:
5812 if (priv->ieee->mode & IEEE_G)
5813 network->mode = IEEE_G;
5814 else
5815 network->mode = IEEE_B;
1867b117 5816 i = ieee80211_channel_to_index(priv->ieee, priv->channel);
5d9428de 5817 BUG_ON(i == -1);
1fe0adb4
LH
5818 if (geo->bg[i].flags & IEEE80211_CH_PASSIVE_ONLY) {
5819 IPW_WARNING("Overriding invalid channel\n");
5820 priv->channel = geo->bg[0].channel;
5821 }
afbf30a2
JK
5822 break;
5823
5824 default:
43f66a6c
JK
5825 IPW_WARNING("Overriding invalid channel\n");
5826 if (priv->ieee->mode & IEEE_A) {
5827 network->mode = IEEE_A;
b095c381 5828 priv->channel = geo->a[0].channel;
43f66a6c
JK
5829 } else if (priv->ieee->mode & IEEE_G) {
5830 network->mode = IEEE_G;
b095c381 5831 priv->channel = geo->bg[0].channel;
43f66a6c
JK
5832 } else {
5833 network->mode = IEEE_B;
b095c381 5834 priv->channel = geo->bg[0].channel;
43f66a6c 5835 }
afbf30a2
JK
5836 break;
5837 }
43f66a6c
JK
5838
5839 network->channel = priv->channel;
5840 priv->config |= CFG_ADHOC_PERSIST;
5841 ipw_create_bssid(priv, network->bssid);
5842 network->ssid_len = priv->essid_len;
5843 memcpy(network->ssid, priv->essid, priv->essid_len);
5844 memset(&network->stats, 0, sizeof(network->stats));
5845 network->capability = WLAN_CAPABILITY_IBSS;
ea2b26e0
JK
5846 if (!(priv->config & CFG_PREAMBLE_LONG))
5847 network->capability |= WLAN_CAPABILITY_SHORT_PREAMBLE;
43f66a6c
JK
5848 if (priv->capability & CAP_PRIVACY_ON)
5849 network->capability |= WLAN_CAPABILITY_PRIVACY;
5850 network->rates_len = min(priv->rates.num_rates, MAX_RATES_LENGTH);
0edd5b44 5851 memcpy(network->rates, priv->rates.supported_rates, network->rates_len);
43f66a6c 5852 network->rates_ex_len = priv->rates.num_rates - network->rates_len;
bf79451e 5853 memcpy(network->rates_ex,
43f66a6c
JK
5854 &priv->rates.supported_rates[network->rates_len],
5855 network->rates_ex_len);
5856 network->last_scanned = 0;
5857 network->flags = 0;
5858 network->last_associate = 0;
5859 network->time_stamp[0] = 0;
5860 network->time_stamp[1] = 0;
0edd5b44
JG
5861 network->beacon_interval = 100; /* Default */
5862 network->listen_interval = 10; /* Default */
5863 network->atim_window = 0; /* Default */
43f66a6c
JK
5864 network->wpa_ie_len = 0;
5865 network->rsn_ie_len = 0;
43f66a6c
JK
5866}
5867
b095c381
JK
5868static void ipw_send_tgi_tx_key(struct ipw_priv *priv, int type, int index)
5869{
0a7bcf26 5870 struct ipw_tgi_tx_key key;
b095c381
JK
5871
5872 if (!(priv->ieee->sec.flags & (1 << index)))
5873 return;
5874
0a7bcf26
ZY
5875 key.key_id = index;
5876 memcpy(key.key, priv->ieee->sec.keys[index], SCM_TEMPORAL_KEY_LENGTH);
5877 key.security_type = type;
5878 key.station_index = 0; /* always 0 for BSS */
5879 key.flags = 0;
b095c381 5880 /* 0 for new key; previous value of counter (after fatal error) */
851ca268
ZY
5881 key.tx_counter[0] = cpu_to_le32(0);
5882 key.tx_counter[1] = cpu_to_le32(0);
b095c381 5883
0a7bcf26 5884 ipw_send_cmd_pdu(priv, IPW_CMD_TGI_TX_KEY, sizeof(key), &key);
b095c381
JK
5885}
5886
5887static void ipw_send_wep_keys(struct ipw_priv *priv, int type)
43f66a6c 5888{
0a7bcf26 5889 struct ipw_wep_key key;
43f66a6c 5890 int i;
43f66a6c 5891
0a7bcf26
ZY
5892 key.cmd_id = DINO_CMD_WEP_KEY;
5893 key.seq_num = 0;
43f66a6c 5894
b095c381
JK
5895 /* Note: AES keys cannot be set for multiple times.
5896 * Only set it at the first time. */
bf79451e 5897 for (i = 0; i < 4; i++) {
0a7bcf26 5898 key.key_index = i | type;
b095c381 5899 if (!(priv->ieee->sec.flags & (1 << i))) {
0a7bcf26 5900 key.key_size = 0;
b095c381 5901 continue;
43f66a6c
JK
5902 }
5903
0a7bcf26
ZY
5904 key.key_size = priv->ieee->sec.key_sizes[i];
5905 memcpy(key.key, priv->ieee->sec.keys[i], key.key_size);
b095c381 5906
0a7bcf26 5907 ipw_send_cmd_pdu(priv, IPW_CMD_WEP_KEY, sizeof(key), &key);
bf79451e 5908 }
43f66a6c
JK
5909}
5910
1fbfea54 5911static void ipw_set_hw_decrypt_unicast(struct ipw_priv *priv, int level)
43f66a6c 5912{
1fbfea54 5913 if (priv->ieee->host_encrypt)
43f66a6c 5914 return;
43f66a6c 5915
1fbfea54
ZY
5916 switch (level) {
5917 case SEC_LEVEL_3:
5918 priv->sys_config.disable_unicast_decryption = 0;
5919 priv->ieee->host_decrypt = 0;
5920 break;
5921 case SEC_LEVEL_2:
5922 priv->sys_config.disable_unicast_decryption = 1;
5923 priv->ieee->host_decrypt = 1;
5924 break;
5925 case SEC_LEVEL_1:
5926 priv->sys_config.disable_unicast_decryption = 0;
5927 priv->ieee->host_decrypt = 0;
5928 break;
5929 case SEC_LEVEL_0:
5930 priv->sys_config.disable_unicast_decryption = 1;
5931 break;
5932 default:
5933 break;
5934 }
5935}
5936
5937static void ipw_set_hw_decrypt_multicast(struct ipw_priv *priv, int level)
5938{
5939 if (priv->ieee->host_encrypt)
5940 return;
5941
5942 switch (level) {
5943 case SEC_LEVEL_3:
5944 priv->sys_config.disable_multicast_decryption = 0;
5945 break;
5946 case SEC_LEVEL_2:
5947 priv->sys_config.disable_multicast_decryption = 1;
5948 break;
5949 case SEC_LEVEL_1:
5950 priv->sys_config.disable_multicast_decryption = 0;
5951 break;
5952 case SEC_LEVEL_0:
5953 priv->sys_config.disable_multicast_decryption = 1;
5954 break;
5955 default:
5956 break;
5957 }
5958}
5959
b095c381
JK
5960static void ipw_set_hwcrypto_keys(struct ipw_priv *priv)
5961{
5962 switch (priv->ieee->sec.level) {
5963 case SEC_LEVEL_3:
d8bad6df
ZY
5964 if (priv->ieee->sec.flags & SEC_ACTIVE_KEY)
5965 ipw_send_tgi_tx_key(priv,
5966 DCT_FLAG_EXT_SECURITY_CCM,
5967 priv->ieee->sec.active_key);
afbf30a2 5968
567deaf6
HL
5969 if (!priv->ieee->host_mc_decrypt)
5970 ipw_send_wep_keys(priv, DCW_WEP_KEY_SEC_TYPE_CCM);
b095c381
JK
5971 break;
5972 case SEC_LEVEL_2:
d8bad6df
ZY
5973 if (priv->ieee->sec.flags & SEC_ACTIVE_KEY)
5974 ipw_send_tgi_tx_key(priv,
5975 DCT_FLAG_EXT_SECURITY_TKIP,
5976 priv->ieee->sec.active_key);
b095c381
JK
5977 break;
5978 case SEC_LEVEL_1:
5979 ipw_send_wep_keys(priv, DCW_WEP_KEY_SEC_TYPE_WEP);
29cb843e
HL
5980 ipw_set_hw_decrypt_unicast(priv, priv->ieee->sec.level);
5981 ipw_set_hw_decrypt_multicast(priv, priv->ieee->sec.level);
b095c381
JK
5982 break;
5983 case SEC_LEVEL_0:
5984 default:
5985 break;
5986 }
5987}
5988
43f66a6c
JK
5989static void ipw_adhoc_check(void *data)
5990{
5991 struct ipw_priv *priv = data;
bf79451e 5992
afbf30a2 5993 if (priv->missed_adhoc_beacons++ > priv->disassociate_threshold &&
43f66a6c 5994 !(priv->config & CFG_ADHOC_PERSIST)) {
afbf30a2
JK
5995 IPW_DEBUG(IPW_DL_INFO | IPW_DL_NOTIF |
5996 IPW_DL_STATE | IPW_DL_ASSOC,
5997 "Missed beacon: %d - disassociate\n",
5998 priv->missed_adhoc_beacons);
43f66a6c
JK
5999 ipw_remove_current_network(priv);
6000 ipw_disassociate(priv);
6001 return;
6002 }
6003
bf79451e 6004 queue_delayed_work(priv->workqueue, &priv->adhoc_check,
43f66a6c
JK
6005 priv->assoc_request.beacon_interval);
6006}
6007
c4028958 6008static void ipw_bg_adhoc_check(struct work_struct *work)
c848d0af 6009{
c4028958
DH
6010 struct ipw_priv *priv =
6011 container_of(work, struct ipw_priv, adhoc_check.work);
4644151b 6012 mutex_lock(&priv->mutex);
c4028958 6013 ipw_adhoc_check(priv);
4644151b 6014 mutex_unlock(&priv->mutex);
c848d0af
JK
6015}
6016
43f66a6c
JK
6017static void ipw_debug_config(struct ipw_priv *priv)
6018{
6019 IPW_DEBUG_INFO("Scan completed, no valid APs matched "
6020 "[CFG 0x%08X]\n", priv->config);
6021 if (priv->config & CFG_STATIC_CHANNEL)
0edd5b44 6022 IPW_DEBUG_INFO("Channel locked to %d\n", priv->channel);
43f66a6c
JK
6023 else
6024 IPW_DEBUG_INFO("Channel unlocked.\n");
6025 if (priv->config & CFG_STATIC_ESSID)
bf79451e 6026 IPW_DEBUG_INFO("ESSID locked to '%s'\n",
0edd5b44 6027 escape_essid(priv->essid, priv->essid_len));
43f66a6c
JK
6028 else
6029 IPW_DEBUG_INFO("ESSID unlocked.\n");
6030 if (priv->config & CFG_STATIC_BSSID)
ea2b26e0
JK
6031 IPW_DEBUG_INFO("BSSID locked to " MAC_FMT "\n",
6032 MAC_ARG(priv->bssid));
43f66a6c
JK
6033 else
6034 IPW_DEBUG_INFO("BSSID unlocked.\n");
6035 if (priv->capability & CAP_PRIVACY_ON)
6036 IPW_DEBUG_INFO("PRIVACY on\n");
6037 else
6038 IPW_DEBUG_INFO("PRIVACY off\n");
6039 IPW_DEBUG_INFO("RATE MASK: 0x%08X\n", priv->rates_mask);
6040}
43f66a6c 6041
858119e1 6042static void ipw_set_fixed_rate(struct ipw_priv *priv, int mode)
43f66a6c
JK
6043{
6044 /* TODO: Verify that this works... */
6045 struct ipw_fixed_rate fr = {
6046 .tx_rates = priv->rates_mask
6047 };
6048 u32 reg;
6049 u16 mask = 0;
6050
bf79451e 6051 /* Identify 'current FW band' and match it with the fixed
43f66a6c 6052 * Tx rates */
bf79451e 6053
43f66a6c 6054 switch (priv->ieee->freq_band) {
0edd5b44 6055 case IEEE80211_52GHZ_BAND: /* A only */
43f66a6c
JK
6056 /* IEEE_A */
6057 if (priv->rates_mask & ~IEEE80211_OFDM_RATES_MASK) {
6058 /* Invalid fixed rate mask */
ea2b26e0
JK
6059 IPW_DEBUG_WX
6060 ("invalid fixed rate mask in ipw_set_fixed_rate\n");
43f66a6c
JK
6061 fr.tx_rates = 0;
6062 break;
6063 }
bf79451e 6064
43f66a6c
JK
6065 fr.tx_rates >>= IEEE80211_OFDM_SHIFT_MASK_A;
6066 break;
6067
0edd5b44 6068 default: /* 2.4Ghz or Mixed */
43f66a6c 6069 /* IEEE_B */
b095c381 6070 if (mode == IEEE_B) {
43f66a6c
JK
6071 if (fr.tx_rates & ~IEEE80211_CCK_RATES_MASK) {
6072 /* Invalid fixed rate mask */
ea2b26e0
JK
6073 IPW_DEBUG_WX
6074 ("invalid fixed rate mask in ipw_set_fixed_rate\n");
43f66a6c
JK
6075 fr.tx_rates = 0;
6076 }
6077 break;
bf79451e 6078 }
43f66a6c
JK
6079
6080 /* IEEE_G */
6081 if (fr.tx_rates & ~(IEEE80211_CCK_RATES_MASK |
6082 IEEE80211_OFDM_RATES_MASK)) {
6083 /* Invalid fixed rate mask */
ea2b26e0
JK
6084 IPW_DEBUG_WX
6085 ("invalid fixed rate mask in ipw_set_fixed_rate\n");
43f66a6c
JK
6086 fr.tx_rates = 0;
6087 break;
6088 }
bf79451e 6089
43f66a6c
JK
6090 if (IEEE80211_OFDM_RATE_6MB_MASK & fr.tx_rates) {
6091 mask |= (IEEE80211_OFDM_RATE_6MB_MASK >> 1);
6092 fr.tx_rates &= ~IEEE80211_OFDM_RATE_6MB_MASK;
6093 }
bf79451e 6094
43f66a6c
JK
6095 if (IEEE80211_OFDM_RATE_9MB_MASK & fr.tx_rates) {
6096 mask |= (IEEE80211_OFDM_RATE_9MB_MASK >> 1);
6097 fr.tx_rates &= ~IEEE80211_OFDM_RATE_9MB_MASK;
6098 }
bf79451e 6099
43f66a6c
JK
6100 if (IEEE80211_OFDM_RATE_12MB_MASK & fr.tx_rates) {
6101 mask |= (IEEE80211_OFDM_RATE_12MB_MASK >> 1);
6102 fr.tx_rates &= ~IEEE80211_OFDM_RATE_12MB_MASK;
6103 }
bf79451e 6104
43f66a6c
JK
6105 fr.tx_rates |= mask;
6106 break;
6107 }
6108
6109 reg = ipw_read32(priv, IPW_MEM_FIXED_OVERRIDE);
0edd5b44 6110 ipw_write_reg32(priv, reg, *(u32 *) & fr);
43f66a6c
JK
6111}
6112
ea2b26e0 6113static void ipw_abort_scan(struct ipw_priv *priv)
43f66a6c
JK
6114{
6115 int err;
6116
ea2b26e0
JK
6117 if (priv->status & STATUS_SCAN_ABORTING) {
6118 IPW_DEBUG_HC("Ignoring concurrent scan abort request.\n");
6119 return;
6120 }
6121 priv->status |= STATUS_SCAN_ABORTING;
43f66a6c 6122
ea2b26e0
JK
6123 err = ipw_send_scan_abort(priv);
6124 if (err)
6125 IPW_DEBUG_HC("Request to abort scan failed.\n");
6126}
6127
afbf30a2
JK
6128static void ipw_add_scan_channels(struct ipw_priv *priv,
6129 struct ipw_scan_request_ext *scan,
6130 int scan_type)
ea2b26e0 6131{
ea2b26e0 6132 int channel_index = 0;
b095c381 6133 const struct ieee80211_geo *geo;
afbf30a2 6134 int i;
b095c381 6135
1867b117 6136 geo = ieee80211_get_geo(priv->ieee);
43f66a6c 6137
afbf30a2
JK
6138 if (priv->ieee->freq_band & IEEE80211_52GHZ_BAND) {
6139 int start = channel_index;
6140 for (i = 0; i < geo->a_channels; i++) {
6141 if ((priv->status & STATUS_ASSOCIATED) &&
6142 geo->a[i].channel == priv->channel)
6143 continue;
6144 channel_index++;
6145 scan->channels_list[channel_index] = geo->a[i].channel;
1fe0adb4
LH
6146 ipw_set_scan_type(scan, channel_index,
6147 geo->a[i].
6148 flags & IEEE80211_CH_PASSIVE_ONLY ?
6149 IPW_SCAN_PASSIVE_FULL_DWELL_SCAN :
6150 scan_type);
afbf30a2
JK
6151 }
6152
6153 if (start != channel_index) {
6154 scan->channels_list[start] = (u8) (IPW_A_MODE << 6) |
6155 (channel_index - start);
6156 channel_index++;
6157 }
6158 }
6159
6160 if (priv->ieee->freq_band & IEEE80211_24GHZ_BAND) {
6161 int start = channel_index;
6162 if (priv->config & CFG_SPEED_SCAN) {
1fe0adb4 6163 int index;
afbf30a2
JK
6164 u8 channels[IEEE80211_24GHZ_CHANNELS] = {
6165 /* nop out the list */
6166 [0] = 0
6167 };
6168
6169 u8 channel;
6170 while (channel_index < IPW_SCAN_CHANNELS) {
6171 channel =
6172 priv->speed_scan[priv->speed_scan_pos];
6173 if (channel == 0) {
6174 priv->speed_scan_pos = 0;
6175 channel = priv->speed_scan[0];
6176 }
6177 if ((priv->status & STATUS_ASSOCIATED) &&
6178 channel == priv->channel) {
6179 priv->speed_scan_pos++;
6180 continue;
6181 }
6182
6183 /* If this channel has already been
6184 * added in scan, break from loop
6185 * and this will be the first channel
6186 * in the next scan.
6187 */
6188 if (channels[channel - 1] != 0)
6189 break;
6190
6191 channels[channel - 1] = 1;
6192 priv->speed_scan_pos++;
6193 channel_index++;
6194 scan->channels_list[channel_index] = channel;
1fe0adb4 6195 index =
1867b117 6196 ieee80211_channel_to_index(priv->ieee, channel);
afbf30a2 6197 ipw_set_scan_type(scan, channel_index,
1fe0adb4
LH
6198 geo->bg[index].
6199 flags &
6200 IEEE80211_CH_PASSIVE_ONLY ?
6201 IPW_SCAN_PASSIVE_FULL_DWELL_SCAN
6202 : scan_type);
afbf30a2
JK
6203 }
6204 } else {
6205 for (i = 0; i < geo->bg_channels; i++) {
6206 if ((priv->status & STATUS_ASSOCIATED) &&
6207 geo->bg[i].channel == priv->channel)
6208 continue;
6209 channel_index++;
6210 scan->channels_list[channel_index] =
6211 geo->bg[i].channel;
6212 ipw_set_scan_type(scan, channel_index,
1fe0adb4
LH
6213 geo->bg[i].
6214 flags &
6215 IEEE80211_CH_PASSIVE_ONLY ?
6216 IPW_SCAN_PASSIVE_FULL_DWELL_SCAN
6217 : scan_type);
afbf30a2
JK
6218 }
6219 }
6220
6221 if (start != channel_index) {
6222 scan->channels_list[start] = (u8) (IPW_B_MODE << 6) |
6223 (channel_index - start);
6224 }
6225 }
6226}
6227
094c4d2d 6228static int ipw_request_scan_helper(struct ipw_priv *priv, int type)
afbf30a2
JK
6229{
6230 struct ipw_scan_request_ext scan;
6231 int err = 0, scan_type;
6232
6233 if (!(priv->status & STATUS_INIT) ||
6234 (priv->status & STATUS_EXIT_PENDING))
6235 return 0;
6236
4644151b 6237 mutex_lock(&priv->mutex);
afbf30a2 6238
ea2b26e0 6239 if (priv->status & STATUS_SCANNING) {
a613bffd 6240 IPW_DEBUG_HC("Concurrent scan requested. Ignoring.\n");
ea2b26e0 6241 priv->status |= STATUS_SCAN_PENDING;
b095c381 6242 goto done;
ea2b26e0 6243 }
43f66a6c 6244
afbf30a2
JK
6245 if (!(priv->status & STATUS_SCAN_FORCED) &&
6246 priv->status & STATUS_SCAN_ABORTING) {
ea2b26e0
JK
6247 IPW_DEBUG_HC("Scan request while abort pending. Queuing.\n");
6248 priv->status |= STATUS_SCAN_PENDING;
b095c381 6249 goto done;
43f66a6c
JK
6250 }
6251
ea2b26e0
JK
6252 if (priv->status & STATUS_RF_KILL_MASK) {
6253 IPW_DEBUG_HC("Aborting scan due to RF Kill activation\n");
6254 priv->status |= STATUS_SCAN_PENDING;
b095c381 6255 goto done;
ea2b26e0 6256 }
43f66a6c 6257
ea2b26e0 6258 memset(&scan, 0, sizeof(scan));
094c4d2d 6259 scan.full_scan_index = cpu_to_le32(ieee80211_get_scans(priv->ieee));
43f66a6c 6260
094c4d2d
ZY
6261 if (type == IW_SCAN_TYPE_PASSIVE) {
6262 IPW_DEBUG_WX("use passive scanning\n");
6263 scan_type = IPW_SCAN_PASSIVE_FULL_DWELL_SCAN;
6264 scan.dwell_time[IPW_SCAN_PASSIVE_FULL_DWELL_SCAN] =
6265 cpu_to_le16(120);
6266 ipw_add_scan_channels(priv, &scan, scan_type);
6267 goto send_request;
6268 }
6269
6270 /* Use active scan by default. */
6271 if (priv->config & CFG_SPEED_SCAN)
b095c381 6272 scan.dwell_time[IPW_SCAN_ACTIVE_BROADCAST_SCAN] =
094c4d2d 6273 cpu_to_le16(30);
b095c381
JK
6274 else
6275 scan.dwell_time[IPW_SCAN_ACTIVE_BROADCAST_SCAN] =
094c4d2d 6276 cpu_to_le16(20);
b095c381 6277
a613bffd 6278 scan.dwell_time[IPW_SCAN_ACTIVE_BROADCAST_AND_DIRECT_SCAN] =
094c4d2d 6279 cpu_to_le16(20);
43f66a6c 6280
094c4d2d 6281 scan.dwell_time[IPW_SCAN_PASSIVE_FULL_DWELL_SCAN] = cpu_to_le16(120);
43f66a6c 6282
b095c381 6283#ifdef CONFIG_IPW2200_MONITOR
ea2b26e0 6284 if (priv->ieee->iw_mode == IW_MODE_MONITOR) {
afbf30a2 6285 u8 channel;
b095c381 6286 u8 band = 0;
43f66a6c 6287
1867b117 6288 switch (ieee80211_is_valid_channel(priv->ieee, priv->channel)) {
b095c381 6289 case IEEE80211_52GHZ_BAND:
ea2b26e0 6290 band = (u8) (IPW_A_MODE << 6) | 1;
b095c381
JK
6291 channel = priv->channel;
6292 break;
ea2b26e0 6293
b095c381 6294 case IEEE80211_24GHZ_BAND:
ea2b26e0 6295 band = (u8) (IPW_B_MODE << 6) | 1;
b095c381
JK
6296 channel = priv->channel;
6297 break;
ea2b26e0 6298
b095c381 6299 default:
ea2b26e0
JK
6300 band = (u8) (IPW_B_MODE << 6) | 1;
6301 channel = 9;
b095c381 6302 break;
ea2b26e0
JK
6303 }
6304
b095c381
JK
6305 scan.channels_list[0] = band;
6306 scan.channels_list[1] = channel;
6307 ipw_set_scan_type(&scan, 1, IPW_SCAN_PASSIVE_FULL_DWELL_SCAN);
ea2b26e0 6308
b095c381
JK
6309 /* NOTE: The card will sit on this channel for this time
6310 * period. Scan aborts are timing sensitive and frequently
6311 * result in firmware restarts. As such, it is best to
6312 * set a small dwell_time here and just keep re-issuing
6313 * scans. Otherwise fast channel hopping will not actually
6314 * hop channels.
6315 *
6316 * TODO: Move SPEED SCAN support to all modes and bands */
a613bffd 6317 scan.dwell_time[IPW_SCAN_PASSIVE_FULL_DWELL_SCAN] =
094c4d2d 6318 cpu_to_le16(2000);
43f66a6c 6319 } else {
b095c381
JK
6320#endif /* CONFIG_IPW2200_MONITOR */
6321 /* If we are roaming, then make this a directed scan for the
6322 * current network. Otherwise, ensure that every other scan
6323 * is a fast channel hop scan */
6324 if ((priv->status & STATUS_ROAMING)
6325 || (!(priv->status & STATUS_ASSOCIATED)
6326 && (priv->config & CFG_STATIC_ESSID)
6327 && (le32_to_cpu(scan.full_scan_index) % 2))) {
ea2b26e0
JK
6328 err = ipw_send_ssid(priv, priv->essid, priv->essid_len);
6329 if (err) {
b095c381
JK
6330 IPW_DEBUG_HC("Attempt to send SSID command "
6331 "failed.\n");
6332 goto done;
ea2b26e0 6333 }
43f66a6c 6334
ea2b26e0 6335 scan_type = IPW_SCAN_ACTIVE_BROADCAST_AND_DIRECT_SCAN;
afbf30a2 6336 } else
ea2b26e0 6337 scan_type = IPW_SCAN_ACTIVE_BROADCAST_SCAN;
ea2b26e0 6338
afbf30a2 6339 ipw_add_scan_channels(priv, &scan, scan_type);
b095c381 6340#ifdef CONFIG_IPW2200_MONITOR
43f66a6c 6341 }
ea2b26e0 6342#endif
bf79451e 6343
094c4d2d 6344send_request:
ea2b26e0 6345 err = ipw_send_scan_request_ext(priv, &scan);
43f66a6c 6346 if (err) {
ea2b26e0 6347 IPW_DEBUG_HC("Sending scan command failed: %08X\n", err);
b095c381 6348 goto done;
43f66a6c
JK
6349 }
6350
ea2b26e0
JK
6351 priv->status |= STATUS_SCANNING;
6352 priv->status &= ~STATUS_SCAN_PENDING;
afbf30a2
JK
6353 queue_delayed_work(priv->workqueue, &priv->scan_check,
6354 IPW_SCAN_CHECK_WATCHDOG);
094c4d2d 6355done:
4644151b 6356 mutex_unlock(&priv->mutex);
b095c381 6357 return err;
c848d0af
JK
6358}
6359
c4028958
DH
6360static void ipw_request_passive_scan(struct work_struct *work)
6361{
6362 struct ipw_priv *priv =
6363 container_of(work, struct ipw_priv, request_passive_scan);
6364 ipw_request_scan_helper(priv, IW_SCAN_TYPE_PASSIVE);
094c4d2d
ZY
6365}
6366
c4028958
DH
6367static void ipw_request_scan(struct work_struct *work)
6368{
6369 struct ipw_priv *priv =
6370 container_of(work, struct ipw_priv, request_scan.work);
6371 ipw_request_scan_helper(priv, IW_SCAN_TYPE_ACTIVE);
094c4d2d
ZY
6372}
6373
c4028958 6374static void ipw_bg_abort_scan(struct work_struct *work)
c848d0af 6375{
c4028958
DH
6376 struct ipw_priv *priv =
6377 container_of(work, struct ipw_priv, abort_scan);
4644151b 6378 mutex_lock(&priv->mutex);
c4028958 6379 ipw_abort_scan(priv);
4644151b 6380 mutex_unlock(&priv->mutex);
c848d0af
JK
6381}
6382
ea2b26e0
JK
6383static int ipw_wpa_enable(struct ipw_priv *priv, int value)
6384{
b095c381
JK
6385 /* This is called when wpa_supplicant loads and closes the driver
6386 * interface. */
cdd1fa1e 6387 priv->ieee->wpa_enabled = value;
b095c381 6388 return 0;
ea2b26e0
JK
6389}
6390
ea2b26e0
JK
6391static int ipw_wpa_set_auth_algs(struct ipw_priv *priv, int value)
6392{
6393 struct ieee80211_device *ieee = priv->ieee;
6394 struct ieee80211_security sec = {
6395 .flags = SEC_AUTH_MODE,
6396 };
6397 int ret = 0;
6398
afbf30a2 6399 if (value & IW_AUTH_ALG_SHARED_KEY) {
ea2b26e0
JK
6400 sec.auth_mode = WLAN_AUTH_SHARED_KEY;
6401 ieee->open_wep = 0;
afbf30a2 6402 } else if (value & IW_AUTH_ALG_OPEN_SYSTEM) {
ea2b26e0
JK
6403 sec.auth_mode = WLAN_AUTH_OPEN;
6404 ieee->open_wep = 1;
3e234b4e
ZY
6405 } else if (value & IW_AUTH_ALG_LEAP) {
6406 sec.auth_mode = WLAN_AUTH_LEAP;
6407 ieee->open_wep = 1;
afbf30a2
JK
6408 } else
6409 return -EINVAL;
ea2b26e0
JK
6410
6411 if (ieee->set_security)
6412 ieee->set_security(ieee->dev, &sec);
6413 else
6414 ret = -EOPNOTSUPP;
6415
6416 return ret;
6417}
6418
a73e22b2
AB
6419static void ipw_wpa_assoc_frame(struct ipw_priv *priv, char *wpa_ie,
6420 int wpa_ie_len)
afbf30a2
JK
6421{
6422 /* make sure WPA is enabled */
6423 ipw_wpa_enable(priv, 1);
afbf30a2
JK
6424}
6425
6426static int ipw_set_rsn_capa(struct ipw_priv *priv,
6427 char *capabilities, int length)
6428{
afbf30a2
JK
6429 IPW_DEBUG_HC("HOST_CMD_RSN_CAPABILITIES\n");
6430
0a7bcf26 6431 return ipw_send_cmd_pdu(priv, IPW_CMD_RSN_CAPABILITIES, length,
2638bc39 6432 capabilities);
afbf30a2
JK
6433}
6434
b095c381 6435/*
afbf30a2
JK
6436 * WE-18 support
6437 */
6438
6439/* SIOCSIWGENIE */
6440static int ipw_wx_set_genie(struct net_device *dev,
6441 struct iw_request_info *info,
6442 union iwreq_data *wrqu, char *extra)
ea2b26e0 6443{
afbf30a2
JK
6444 struct ipw_priv *priv = ieee80211_priv(dev);
6445 struct ieee80211_device *ieee = priv->ieee;
6446 u8 *buf;
6447 int err = 0;
ea2b26e0 6448
afbf30a2
JK
6449 if (wrqu->data.length > MAX_WPA_IE_LEN ||
6450 (wrqu->data.length && extra == NULL))
6451 return -EINVAL;
ea2b26e0 6452
afbf30a2
JK
6453 if (wrqu->data.length) {
6454 buf = kmalloc(wrqu->data.length, GFP_KERNEL);
6455 if (buf == NULL) {
6456 err = -ENOMEM;
6457 goto out;
6458 }
6459
6460 memcpy(buf, extra, wrqu->data.length);
6461 kfree(ieee->wpa_ie);
6462 ieee->wpa_ie = buf;
6463 ieee->wpa_ie_len = wrqu->data.length;
b095c381 6464 } else {
afbf30a2
JK
6465 kfree(ieee->wpa_ie);
6466 ieee->wpa_ie = NULL;
6467 ieee->wpa_ie_len = 0;
ea2b26e0 6468 }
afbf30a2
JK
6469
6470 ipw_wpa_assoc_frame(priv, ieee->wpa_ie, ieee->wpa_ie_len);
6471 out:
afbf30a2
JK
6472 return err;
6473}
6474
6475/* SIOCGIWGENIE */
6476static int ipw_wx_get_genie(struct net_device *dev,
6477 struct iw_request_info *info,
6478 union iwreq_data *wrqu, char *extra)
6479{
6480 struct ipw_priv *priv = ieee80211_priv(dev);
6481 struct ieee80211_device *ieee = priv->ieee;
6482 int err = 0;
6483
afbf30a2
JK
6484 if (ieee->wpa_ie_len == 0 || ieee->wpa_ie == NULL) {
6485 wrqu->data.length = 0;
6486 goto out;
6487 }
6488
6489 if (wrqu->data.length < ieee->wpa_ie_len) {
6490 err = -E2BIG;
6491 goto out;
6492 }
6493
6494 wrqu->data.length = ieee->wpa_ie_len;
6495 memcpy(extra, ieee->wpa_ie, ieee->wpa_ie_len);
6496
6497 out:
afbf30a2
JK
6498 return err;
6499}
6500
1fbfea54
ZY
6501static int wext_cipher2level(int cipher)
6502{
6503 switch (cipher) {
6504 case IW_AUTH_CIPHER_NONE:
6505 return SEC_LEVEL_0;
6506 case IW_AUTH_CIPHER_WEP40:
6507 case IW_AUTH_CIPHER_WEP104:
6508 return SEC_LEVEL_1;
6509 case IW_AUTH_CIPHER_TKIP:
6510 return SEC_LEVEL_2;
6511 case IW_AUTH_CIPHER_CCMP:
6512 return SEC_LEVEL_3;
6513 default:
6514 return -1;
6515 }
6516}
6517
afbf30a2
JK
6518/* SIOCSIWAUTH */
6519static int ipw_wx_set_auth(struct net_device *dev,
6520 struct iw_request_info *info,
6521 union iwreq_data *wrqu, char *extra)
6522{
6523 struct ipw_priv *priv = ieee80211_priv(dev);
6524 struct ieee80211_device *ieee = priv->ieee;
6525 struct iw_param *param = &wrqu->param;
6526 struct ieee80211_crypt_data *crypt;
6527 unsigned long flags;
6528 int ret = 0;
6529
6530 switch (param->flags & IW_AUTH_INDEX) {
6531 case IW_AUTH_WPA_VERSION:
1fbfea54 6532 break;
afbf30a2 6533 case IW_AUTH_CIPHER_PAIRWISE:
1fbfea54
ZY
6534 ipw_set_hw_decrypt_unicast(priv,
6535 wext_cipher2level(param->value));
6536 break;
afbf30a2 6537 case IW_AUTH_CIPHER_GROUP:
1fbfea54
ZY
6538 ipw_set_hw_decrypt_multicast(priv,
6539 wext_cipher2level(param->value));
6540 break;
afbf30a2
JK
6541 case IW_AUTH_KEY_MGMT:
6542 /*
6543 * ipw2200 does not use these parameters
6544 */
6545 break;
6546
6547 case IW_AUTH_TKIP_COUNTERMEASURES:
6548 crypt = priv->ieee->crypt[priv->ieee->tx_keyidx];
991d1cc5 6549 if (!crypt || !crypt->ops->set_flags || !crypt->ops->get_flags)
afbf30a2 6550 break;
afbf30a2
JK
6551
6552 flags = crypt->ops->get_flags(crypt->priv);
6553
6554 if (param->value)
6555 flags |= IEEE80211_CRYPTO_TKIP_COUNTERMEASURES;
6556 else
6557 flags &= ~IEEE80211_CRYPTO_TKIP_COUNTERMEASURES;
6558
6559 crypt->ops->set_flags(flags, crypt->priv);
6560
6561 break;
6562
6563 case IW_AUTH_DROP_UNENCRYPTED:{
6564 /* HACK:
6565 *
6566 * wpa_supplicant calls set_wpa_enabled when the driver
6567 * is loaded and unloaded, regardless of if WPA is being
6568 * used. No other calls are made which can be used to
6569 * determine if encryption will be used or not prior to
6570 * association being expected. If encryption is not being
6571 * used, drop_unencrypted is set to false, else true -- we
6572 * can use this to determine if the CAP_PRIVACY_ON bit should
6573 * be set.
6574 */
6575 struct ieee80211_security sec = {
6576 .flags = SEC_ENABLED,
6577 .enabled = param->value,
6578 };
6579 priv->ieee->drop_unencrypted = param->value;
6580 /* We only change SEC_LEVEL for open mode. Others
6581 * are set by ipw_wpa_set_encryption.
6582 */
6583 if (!param->value) {
6584 sec.flags |= SEC_LEVEL;
6585 sec.level = SEC_LEVEL_0;
6586 } else {
6587 sec.flags |= SEC_LEVEL;
6588 sec.level = SEC_LEVEL_1;
6589 }
6590 if (priv->ieee->set_security)
6591 priv->ieee->set_security(priv->ieee->dev, &sec);
6592 break;
6593 }
6594
6595 case IW_AUTH_80211_AUTH_ALG:
6596 ret = ipw_wpa_set_auth_algs(priv, param->value);
6597 break;
6598
6599 case IW_AUTH_WPA_ENABLED:
6600 ret = ipw_wpa_enable(priv, param->value);
e3c5a64e 6601 ipw_disassociate(priv);
afbf30a2
JK
6602 break;
6603
6604 case IW_AUTH_RX_UNENCRYPTED_EAPOL:
6605 ieee->ieee802_1x = param->value;
6606 break;
6607
afbf30a2
JK
6608 case IW_AUTH_PRIVACY_INVOKED:
6609 ieee->privacy_invoked = param->value;
6610 break;
6611
6612 default:
6613 return -EOPNOTSUPP;
6614 }
6615 return ret;
6616}
6617
6618/* SIOCGIWAUTH */
6619static int ipw_wx_get_auth(struct net_device *dev,
6620 struct iw_request_info *info,
6621 union iwreq_data *wrqu, char *extra)
6622{
6623 struct ipw_priv *priv = ieee80211_priv(dev);
6624 struct ieee80211_device *ieee = priv->ieee;
6625 struct ieee80211_crypt_data *crypt;
6626 struct iw_param *param = &wrqu->param;
6627 int ret = 0;
6628
6629 switch (param->flags & IW_AUTH_INDEX) {
6630 case IW_AUTH_WPA_VERSION:
6631 case IW_AUTH_CIPHER_PAIRWISE:
6632 case IW_AUTH_CIPHER_GROUP:
6633 case IW_AUTH_KEY_MGMT:
6634 /*
6635 * wpa_supplicant will control these internally
6636 */
6637 ret = -EOPNOTSUPP;
6638 break;
6639
6640 case IW_AUTH_TKIP_COUNTERMEASURES:
6641 crypt = priv->ieee->crypt[priv->ieee->tx_keyidx];
991d1cc5 6642 if (!crypt || !crypt->ops->get_flags)
afbf30a2 6643 break;
afbf30a2
JK
6644
6645 param->value = (crypt->ops->get_flags(crypt->priv) &
6646 IEEE80211_CRYPTO_TKIP_COUNTERMEASURES) ? 1 : 0;
6647
6648 break;
6649
6650 case IW_AUTH_DROP_UNENCRYPTED:
6651 param->value = ieee->drop_unencrypted;
6652 break;
6653
6654 case IW_AUTH_80211_AUTH_ALG:
6655 param->value = ieee->sec.auth_mode;
6656 break;
6657
6658 case IW_AUTH_WPA_ENABLED:
6659 param->value = ieee->wpa_enabled;
6660 break;
6661
6662 case IW_AUTH_RX_UNENCRYPTED_EAPOL:
6663 param->value = ieee->ieee802_1x;
6664 break;
6665
6666 case IW_AUTH_ROAMING_CONTROL:
6667 case IW_AUTH_PRIVACY_INVOKED:
6668 param->value = ieee->privacy_invoked;
6669 break;
6670
6671 default:
6672 return -EOPNOTSUPP;
6673 }
6674 return 0;
6675}
6676
6677/* SIOCSIWENCODEEXT */
6678static int ipw_wx_set_encodeext(struct net_device *dev,
6679 struct iw_request_info *info,
6680 union iwreq_data *wrqu, char *extra)
6681{
6682 struct ipw_priv *priv = ieee80211_priv(dev);
6683 struct iw_encode_ext *ext = (struct iw_encode_ext *)extra;
6684
6685 if (hwcrypto) {
afbf30a2 6686 if (ext->alg == IW_ENCODE_ALG_TKIP) {
567deaf6
HL
6687 /* IPW HW can't build TKIP MIC,
6688 host decryption still needed */
6689 if (ext->ext_flags & IW_ENCODE_EXT_GROUP_KEY)
6690 priv->ieee->host_mc_decrypt = 1;
6691 else {
6692 priv->ieee->host_encrypt = 0;
6693 priv->ieee->host_encrypt_msdu = 1;
6694 priv->ieee->host_decrypt = 1;
6695 }
afbf30a2
JK
6696 } else {
6697 priv->ieee->host_encrypt = 0;
6698 priv->ieee->host_encrypt_msdu = 0;
6699 priv->ieee->host_decrypt = 0;
567deaf6 6700 priv->ieee->host_mc_decrypt = 0;
afbf30a2
JK
6701 }
6702 }
6703
6704 return ieee80211_wx_set_encodeext(priv->ieee, info, wrqu, extra);
6705}
6706
6707/* SIOCGIWENCODEEXT */
6708static int ipw_wx_get_encodeext(struct net_device *dev,
6709 struct iw_request_info *info,
6710 union iwreq_data *wrqu, char *extra)
6711{
6712 struct ipw_priv *priv = ieee80211_priv(dev);
6713 return ieee80211_wx_get_encodeext(priv->ieee, info, wrqu, extra);
6714}
6715
6716/* SIOCSIWMLME */
6717static int ipw_wx_set_mlme(struct net_device *dev,
6718 struct iw_request_info *info,
6719 union iwreq_data *wrqu, char *extra)
6720{
6721 struct ipw_priv *priv = ieee80211_priv(dev);
6722 struct iw_mlme *mlme = (struct iw_mlme *)extra;
6723 u16 reason;
6724
6725 reason = cpu_to_le16(mlme->reason_code);
6726
6727 switch (mlme->cmd) {
6728 case IW_MLME_DEAUTH:
67fd6b45 6729 /* silently ignore */
afbf30a2
JK
6730 break;
6731
6732 case IW_MLME_DISASSOC:
6733 ipw_disassociate(priv);
6734 break;
6735
6736 default:
6737 return -EOPNOTSUPP;
6738 }
6739 return 0;
6740}
afbf30a2 6741
e43e3c1e 6742#ifdef CONFIG_IPW2200_QOS
afbf30a2
JK
6743
6744/* QoS */
6745/*
6746* get the modulation type of the current network or
6747* the card current mode
6748*/
53d0bcf8 6749static u8 ipw_qos_current_mode(struct ipw_priv * priv)
afbf30a2
JK
6750{
6751 u8 mode = 0;
6752
6753 if (priv->status & STATUS_ASSOCIATED) {
6754 unsigned long flags;
6755
6756 spin_lock_irqsave(&priv->ieee->lock, flags);
6757 mode = priv->assoc_network->mode;
6758 spin_unlock_irqrestore(&priv->ieee->lock, flags);
6759 } else {
6760 mode = priv->ieee->mode;
6761 }
6762 IPW_DEBUG_QOS("QoS network/card mode %d \n", mode);
6763 return mode;
b095c381 6764}
ea2b26e0 6765
b095c381
JK
6766/*
6767* Handle management frame beacon and probe response
6768*/
3b9990cb
JK
6769static int ipw_qos_handle_probe_response(struct ipw_priv *priv,
6770 int active_network,
6771 struct ieee80211_network *network)
b095c381
JK
6772{
6773 u32 size = sizeof(struct ieee80211_qos_parameters);
6774
afbf30a2 6775 if (network->capability & WLAN_CAPABILITY_IBSS)
b095c381
JK
6776 network->qos_data.active = network->qos_data.supported;
6777
6778 if (network->flags & NETWORK_HAS_QOS_MASK) {
afbf30a2
JK
6779 if (active_network &&
6780 (network->flags & NETWORK_HAS_QOS_PARAMETERS))
b095c381
JK
6781 network->qos_data.active = network->qos_data.supported;
6782
6783 if ((network->qos_data.active == 1) && (active_network == 1) &&
6784 (network->flags & NETWORK_HAS_QOS_PARAMETERS) &&
6785 (network->qos_data.old_param_count !=
6786 network->qos_data.param_count)) {
6787 network->qos_data.old_param_count =
6788 network->qos_data.param_count;
6789 schedule_work(&priv->qos_activate);
afbf30a2
JK
6790 IPW_DEBUG_QOS("QoS parameters change call "
6791 "qos_activate\n");
b095c381 6792 }
ea2b26e0 6793 } else {
afbf30a2
JK
6794 if ((priv->ieee->mode == IEEE_B) || (network->mode == IEEE_B))
6795 memcpy(&network->qos_data.parameters,
b095c381 6796 &def_parameters_CCK, size);
afbf30a2
JK
6797 else
6798 memcpy(&network->qos_data.parameters,
b095c381 6799 &def_parameters_OFDM, size);
afbf30a2 6800
b095c381
JK
6801 if ((network->qos_data.active == 1) && (active_network == 1)) {
6802 IPW_DEBUG_QOS("QoS was disabled call qos_activate \n");
6803 schedule_work(&priv->qos_activate);
6804 }
6805
6806 network->qos_data.active = 0;
6807 network->qos_data.supported = 0;
ea2b26e0 6808 }
afbf30a2
JK
6809 if ((priv->status & STATUS_ASSOCIATED) &&
6810 (priv->ieee->iw_mode == IW_MODE_ADHOC) && (active_network == 0)) {
6811 if (memcmp(network->bssid, priv->bssid, ETH_ALEN))
6812 if ((network->capability & WLAN_CAPABILITY_IBSS) &&
6813 !(network->flags & NETWORK_EMPTY_ESSID))
b095c381 6814 if ((network->ssid_len ==
afbf30a2
JK
6815 priv->assoc_network->ssid_len) &&
6816 !memcmp(network->ssid,
6817 priv->assoc_network->ssid,
6818 network->ssid_len)) {
b095c381
JK
6819 queue_work(priv->workqueue,
6820 &priv->merge_networks);
6821 }
b095c381 6822 }
ea2b26e0 6823
b095c381
JK
6824 return 0;
6825}
6826
6827/*
6828* This function set up the firmware to support QoS. It sends
6829* IPW_CMD_QOS_PARAMETERS and IPW_CMD_WME_INFO
6830*/
6831static int ipw_qos_activate(struct ipw_priv *priv,
6832 struct ieee80211_qos_data *qos_network_data)
6833{
6834 int err;
6835 struct ieee80211_qos_parameters qos_parameters[QOS_QOS_SETS];
6836 struct ieee80211_qos_parameters *active_one = NULL;
6837 u32 size = sizeof(struct ieee80211_qos_parameters);
6838 u32 burst_duration;
6839 int i;
6840 u8 type;
6841
6842 type = ipw_qos_current_mode(priv);
6843
6844 active_one = &(qos_parameters[QOS_PARAM_SET_DEF_CCK]);
6845 memcpy(active_one, priv->qos_data.def_qos_parm_CCK, size);
6846 active_one = &(qos_parameters[QOS_PARAM_SET_DEF_OFDM]);
6847 memcpy(active_one, priv->qos_data.def_qos_parm_OFDM, size);
6848
6849 if (qos_network_data == NULL) {
6850 if (type == IEEE_B) {
6851 IPW_DEBUG_QOS("QoS activate network mode %d\n", type);
6852 active_one = &def_parameters_CCK;
6853 } else
6854 active_one = &def_parameters_OFDM;
6855
afbf30a2 6856 memcpy(&qos_parameters[QOS_PARAM_SET_ACTIVE], active_one, size);
b095c381
JK
6857 burst_duration = ipw_qos_get_burst_duration(priv);
6858 for (i = 0; i < QOS_QUEUE_NUM; i++)
afbf30a2 6859 qos_parameters[QOS_PARAM_SET_ACTIVE].tx_op_limit[i] =
851ca268 6860 (u16)burst_duration;
afbf30a2 6861 } else if (priv->ieee->iw_mode == IW_MODE_ADHOC) {
b095c381
JK
6862 if (type == IEEE_B) {
6863 IPW_DEBUG_QOS("QoS activate IBSS nework mode %d\n",
6864 type);
6865 if (priv->qos_data.qos_enable == 0)
6866 active_one = &def_parameters_CCK;
6867 else
6868 active_one = priv->qos_data.def_qos_parm_CCK;
6869 } else {
6870 if (priv->qos_data.qos_enable == 0)
6871 active_one = &def_parameters_OFDM;
6872 else
6873 active_one = priv->qos_data.def_qos_parm_OFDM;
6874 }
afbf30a2 6875 memcpy(&qos_parameters[QOS_PARAM_SET_ACTIVE], active_one, size);
b095c381
JK
6876 } else {
6877 unsigned long flags;
6878 int active;
6879
6880 spin_lock_irqsave(&priv->ieee->lock, flags);
6881 active_one = &(qos_network_data->parameters);
6882 qos_network_data->old_param_count =
6883 qos_network_data->param_count;
afbf30a2 6884 memcpy(&qos_parameters[QOS_PARAM_SET_ACTIVE], active_one, size);
b095c381
JK
6885 active = qos_network_data->supported;
6886 spin_unlock_irqrestore(&priv->ieee->lock, flags);
6887
6888 if (active == 0) {
6889 burst_duration = ipw_qos_get_burst_duration(priv);
6890 for (i = 0; i < QOS_QUEUE_NUM; i++)
6891 qos_parameters[QOS_PARAM_SET_ACTIVE].
851ca268 6892 tx_op_limit[i] = (u16)burst_duration;
b095c381
JK
6893 }
6894 }
6895
6896 IPW_DEBUG_QOS("QoS sending IPW_CMD_QOS_PARAMETERS\n");
851ca268
ZY
6897 for (i = 0; i < 3; i++) {
6898 int j;
6899 for (j = 0; j < QOS_QUEUE_NUM; j++) {
6900 qos_parameters[i].cw_min[j] = cpu_to_le16(qos_parameters[i].cw_min[j]);
6901 qos_parameters[i].cw_max[j] = cpu_to_le16(qos_parameters[i].cw_max[j]);
6902 qos_parameters[i].tx_op_limit[j] = cpu_to_le16(qos_parameters[i].tx_op_limit[j]);
6903 }
6904 }
6905
afbf30a2
JK
6906 err = ipw_send_qos_params_command(priv,
6907 (struct ieee80211_qos_parameters *)
6908 &(qos_parameters[0]));
b095c381
JK
6909 if (err)
6910 IPW_DEBUG_QOS("QoS IPW_CMD_QOS_PARAMETERS failed\n");
6911
6912 return err;
6913}
6914
6915/*
6916* send IPW_CMD_WME_INFO to the firmware
6917*/
6918static int ipw_qos_set_info_element(struct ipw_priv *priv)
6919{
6920 int ret = 0;
6921 struct ieee80211_qos_information_element qos_info;
6922
6923 if (priv == NULL)
6924 return -1;
6925
6926 qos_info.elementID = QOS_ELEMENT_ID;
6927 qos_info.length = sizeof(struct ieee80211_qos_information_element) - 2;
6928
6929 qos_info.version = QOS_VERSION_1;
6930 qos_info.ac_info = 0;
6931
6932 memcpy(qos_info.qui, qos_oui, QOS_OUI_LEN);
6933 qos_info.qui_type = QOS_OUI_TYPE;
6934 qos_info.qui_subtype = QOS_OUI_INFO_SUB_TYPE;
6935
6936 ret = ipw_send_qos_info_command(priv, &qos_info);
6937 if (ret != 0) {
6938 IPW_DEBUG_QOS("QoS error calling ipw_send_qos_info_command\n");
6939 }
6940 return ret;
6941}
6942
6943/*
6944* Set the QoS parameter with the association request structure
6945*/
6946static int ipw_qos_association(struct ipw_priv *priv,
6947 struct ieee80211_network *network)
6948{
6949 int err = 0;
6950 struct ieee80211_qos_data *qos_data = NULL;
6951 struct ieee80211_qos_data ibss_data = {
6952 .supported = 1,
6953 .active = 1,
6954 };
6955
6956 switch (priv->ieee->iw_mode) {
6957 case IW_MODE_ADHOC:
5d9428de 6958 BUG_ON(!(network->capability & WLAN_CAPABILITY_IBSS));
b095c381
JK
6959
6960 qos_data = &ibss_data;
6961 break;
6962
6963 case IW_MODE_INFRA:
6964 qos_data = &network->qos_data;
6965 break;
6966
6967 default:
6968 BUG();
6969 break;
6970 }
6971
6972 err = ipw_qos_activate(priv, qos_data);
6973 if (err) {
6974 priv->assoc_request.policy_support &= ~HC_QOS_SUPPORT_ASSOC;
6975 return err;
6976 }
6977
6978 if (priv->qos_data.qos_enable && qos_data->supported) {
6979 IPW_DEBUG_QOS("QoS will be enabled for this association\n");
6980 priv->assoc_request.policy_support |= HC_QOS_SUPPORT_ASSOC;
6981 return ipw_qos_set_info_element(priv);
6982 }
6983
6984 return 0;
6985}
6986
6987/*
0779bf2d
ML
6988* handling the beaconing responses. if we get different QoS setting
6989* off the network from the associated setting, adjust the QoS
b095c381
JK
6990* setting
6991*/
6992static int ipw_qos_association_resp(struct ipw_priv *priv,
6993 struct ieee80211_network *network)
6994{
6995 int ret = 0;
6996 unsigned long flags;
6997 u32 size = sizeof(struct ieee80211_qos_parameters);
6998 int set_qos_param = 0;
6999
afbf30a2
JK
7000 if ((priv == NULL) || (network == NULL) ||
7001 (priv->assoc_network == NULL))
b095c381
JK
7002 return ret;
7003
7004 if (!(priv->status & STATUS_ASSOCIATED))
7005 return ret;
7006
afbf30a2 7007 if ((priv->ieee->iw_mode != IW_MODE_INFRA))
b095c381 7008 return ret;
b095c381
JK
7009
7010 spin_lock_irqsave(&priv->ieee->lock, flags);
7011 if (network->flags & NETWORK_HAS_QOS_PARAMETERS) {
afbf30a2 7012 memcpy(&priv->assoc_network->qos_data, &network->qos_data,
b095c381
JK
7013 sizeof(struct ieee80211_qos_data));
7014 priv->assoc_network->qos_data.active = 1;
7015 if ((network->qos_data.old_param_count !=
7016 network->qos_data.param_count)) {
7017 set_qos_param = 1;
7018 network->qos_data.old_param_count =
7019 network->qos_data.param_count;
7020 }
7021
7022 } else {
afbf30a2
JK
7023 if ((network->mode == IEEE_B) || (priv->ieee->mode == IEEE_B))
7024 memcpy(&priv->assoc_network->qos_data.parameters,
b095c381 7025 &def_parameters_CCK, size);
afbf30a2
JK
7026 else
7027 memcpy(&priv->assoc_network->qos_data.parameters,
b095c381 7028 &def_parameters_OFDM, size);
b095c381
JK
7029 priv->assoc_network->qos_data.active = 0;
7030 priv->assoc_network->qos_data.supported = 0;
7031 set_qos_param = 1;
7032 }
7033
7034 spin_unlock_irqrestore(&priv->ieee->lock, flags);
7035
7036 if (set_qos_param == 1)
7037 schedule_work(&priv->qos_activate);
7038
7039 return ret;
7040}
7041
7042static u32 ipw_qos_get_burst_duration(struct ipw_priv *priv)
7043{
7044 u32 ret = 0;
7045
7046 if ((priv == NULL))
7047 return 0;
7048
afbf30a2 7049 if (!(priv->ieee->modulation & IEEE80211_OFDM_MODULATION))
b095c381 7050 ret = priv->qos_data.burst_duration_CCK;
afbf30a2 7051 else
b095c381 7052 ret = priv->qos_data.burst_duration_OFDM;
afbf30a2 7053
b095c381
JK
7054 return ret;
7055}
7056
7057/*
7058* Initialize the setting of QoS global
7059*/
7060static void ipw_qos_init(struct ipw_priv *priv, int enable,
7061 int burst_enable, u32 burst_duration_CCK,
7062 u32 burst_duration_OFDM)
7063{
7064 priv->qos_data.qos_enable = enable;
7065
7066 if (priv->qos_data.qos_enable) {
7067 priv->qos_data.def_qos_parm_CCK = &def_qos_parameters_CCK;
7068 priv->qos_data.def_qos_parm_OFDM = &def_qos_parameters_OFDM;
7069 IPW_DEBUG_QOS("QoS is enabled\n");
7070 } else {
7071 priv->qos_data.def_qos_parm_CCK = &def_parameters_CCK;
7072 priv->qos_data.def_qos_parm_OFDM = &def_parameters_OFDM;
7073 IPW_DEBUG_QOS("QoS is not enabled\n");
7074 }
7075
7076 priv->qos_data.burst_enable = burst_enable;
7077
7078 if (burst_enable) {
7079 priv->qos_data.burst_duration_CCK = burst_duration_CCK;
7080 priv->qos_data.burst_duration_OFDM = burst_duration_OFDM;
7081 } else {
7082 priv->qos_data.burst_duration_CCK = 0;
7083 priv->qos_data.burst_duration_OFDM = 0;
7084 }
7085}
7086
7087/*
7088* map the packet priority to the right TX Queue
7089*/
7090static int ipw_get_tx_queue_number(struct ipw_priv *priv, u16 priority)
7091{
7092 if (priority > 7 || !priv->qos_data.qos_enable)
7093 priority = 0;
7094
7095 return from_priority_to_tx_queue[priority] - 1;
7096}
7097
a5cf4fe6
ZY
7098static int ipw_is_qos_active(struct net_device *dev,
7099 struct sk_buff *skb)
b095c381 7100{
a5cf4fe6 7101 struct ipw_priv *priv = ieee80211_priv(dev);
b095c381
JK
7102 struct ieee80211_qos_data *qos_data = NULL;
7103 int active, supported;
a5cf4fe6
ZY
7104 u8 *daddr = skb->data + ETH_ALEN;
7105 int unicast = !is_multicast_ether_addr(daddr);
b095c381
JK
7106
7107 if (!(priv->status & STATUS_ASSOCIATED))
7108 return 0;
7109
7110 qos_data = &priv->assoc_network->qos_data;
7111
b095c381
JK
7112 if (priv->ieee->iw_mode == IW_MODE_ADHOC) {
7113 if (unicast == 0)
7114 qos_data->active = 0;
7115 else
7116 qos_data->active = qos_data->supported;
7117 }
b095c381
JK
7118 active = qos_data->active;
7119 supported = qos_data->supported;
afbf30a2
JK
7120 IPW_DEBUG_QOS("QoS %d network is QoS active %d supported %d "
7121 "unicast %d\n",
7122 priv->qos_data.qos_enable, active, supported, unicast);
a5cf4fe6
ZY
7123 if (active && priv->qos_data.qos_enable)
7124 return 1;
b095c381 7125
a5cf4fe6
ZY
7126 return 0;
7127
7128}
7129/*
7130* add QoS parameter to the TX command
7131*/
7132static int ipw_qos_set_tx_queue_command(struct ipw_priv *priv,
7133 u16 priority,
7134 struct tfd_data *tfd)
7135{
7136 int tx_queue_id = 0;
7137
7138
7139 tx_queue_id = from_priority_to_tx_queue[priority] - 1;
7140 tfd->tx_flags_ext |= DCT_FLAG_EXT_QOS_ENABLED;
7141
7142 if (priv->qos_data.qos_no_ack_mask & (1UL << tx_queue_id)) {
7143 tfd->tx_flags &= ~DCT_FLAG_ACK_REQD;
851ca268 7144 tfd->tfd.tfd_26.mchdr.qos_ctrl |= cpu_to_le16(CTRL_QOS_NO_ACK);
a5cf4fe6
ZY
7145 }
7146 return 0;
b095c381
JK
7147}
7148
7149/*
7150* background support to run QoS activate functionality
7151*/
c4028958 7152static void ipw_bg_qos_activate(struct work_struct *work)
b095c381 7153{
c4028958
DH
7154 struct ipw_priv *priv =
7155 container_of(work, struct ipw_priv, qos_activate);
b095c381
JK
7156
7157 if (priv == NULL)
7158 return;
7159
4644151b 7160 mutex_lock(&priv->mutex);
b095c381
JK
7161
7162 if (priv->status & STATUS_ASSOCIATED)
7163 ipw_qos_activate(priv, &(priv->assoc_network->qos_data));
7164
4644151b 7165 mutex_unlock(&priv->mutex);
b095c381
JK
7166}
7167
3b9990cb
JK
7168static int ipw_handle_probe_response(struct net_device *dev,
7169 struct ieee80211_probe_response *resp,
7170 struct ieee80211_network *network)
b095c381
JK
7171{
7172 struct ipw_priv *priv = ieee80211_priv(dev);
3b9990cb
JK
7173 int active_network = ((priv->status & STATUS_ASSOCIATED) &&
7174 (network == priv->assoc_network));
43f66a6c 7175
3b9990cb 7176 ipw_qos_handle_probe_response(priv, active_network, network);
43f66a6c 7177
3b9990cb
JK
7178 return 0;
7179}
43f66a6c 7180
3b9990cb
JK
7181static int ipw_handle_beacon(struct net_device *dev,
7182 struct ieee80211_beacon *resp,
7183 struct ieee80211_network *network)
7184{
7185 struct ipw_priv *priv = ieee80211_priv(dev);
7186 int active_network = ((priv->status & STATUS_ASSOCIATED) &&
7187 (network == priv->assoc_network));
bf79451e 7188
3b9990cb 7189 ipw_qos_handle_probe_response(priv, active_network, network);
bf79451e 7190
b095c381
JK
7191 return 0;
7192}
bf79451e 7193
3b9990cb
JK
7194static int ipw_handle_assoc_response(struct net_device *dev,
7195 struct ieee80211_assoc_response *resp,
7196 struct ieee80211_network *network)
7197{
7198 struct ipw_priv *priv = ieee80211_priv(dev);
7199 ipw_qos_association_resp(priv, network);
7200 return 0;
7201}
43f66a6c 7202
b095c381
JK
7203static int ipw_send_qos_params_command(struct ipw_priv *priv, struct ieee80211_qos_parameters
7204 *qos_param)
7205{
4e22699f
ZY
7206 return ipw_send_cmd_pdu(priv, IPW_CMD_QOS_PARAMETERS,
7207 sizeof(*qos_param) * 3, qos_param);
b095c381
JK
7208}
7209
7210static int ipw_send_qos_info_command(struct ipw_priv *priv, struct ieee80211_qos_information_element
7211 *qos_param)
7212{
4e22699f
ZY
7213 return ipw_send_cmd_pdu(priv, IPW_CMD_WME_INFO, sizeof(*qos_param),
7214 qos_param);
43f66a6c
JK
7215}
7216
e43e3c1e 7217#endif /* CONFIG_IPW2200_QOS */
b095c381 7218
43f66a6c
JK
7219static int ipw_associate_network(struct ipw_priv *priv,
7220 struct ieee80211_network *network,
0edd5b44 7221 struct ipw_supported_rates *rates, int roaming)
43f66a6c
JK
7222{
7223 int err;
7224
7225 if (priv->config & CFG_FIXED_RATE)
b095c381 7226 ipw_set_fixed_rate(priv, network->mode);
43f66a6c
JK
7227
7228 if (!(priv->config & CFG_STATIC_ESSID)) {
bf79451e 7229 priv->essid_len = min(network->ssid_len,
0edd5b44 7230 (u8) IW_ESSID_MAX_SIZE);
43f66a6c
JK
7231 memcpy(priv->essid, network->ssid, priv->essid_len);
7232 }
7233
7234 network->last_associate = jiffies;
7235
7236 memset(&priv->assoc_request, 0, sizeof(priv->assoc_request));
7237 priv->assoc_request.channel = network->channel;
3e234b4e
ZY
7238 priv->assoc_request.auth_key = 0;
7239
43f66a6c 7240 if ((priv->capability & CAP_PRIVACY_ON) &&
3e234b4e 7241 (priv->ieee->sec.auth_mode == WLAN_AUTH_SHARED_KEY)) {
43f66a6c 7242 priv->assoc_request.auth_type = AUTH_SHARED_KEY;
b095c381
JK
7243 priv->assoc_request.auth_key = priv->ieee->sec.active_key;
7244
1ba61e05 7245 if (priv->ieee->sec.level == SEC_LEVEL_1)
b095c381 7246 ipw_send_wep_keys(priv, DCW_WEP_KEY_SEC_TYPE_WEP);
3e234b4e
ZY
7247
7248 } else if ((priv->capability & CAP_PRIVACY_ON) &&
7249 (priv->ieee->sec.auth_mode == WLAN_AUTH_LEAP))
7250 priv->assoc_request.auth_type = AUTH_LEAP;
7251 else
43f66a6c 7252 priv->assoc_request.auth_type = AUTH_OPEN;
43f66a6c 7253
b095c381 7254 if (priv->ieee->wpa_ie_len) {
ea2b26e0
JK
7255 priv->assoc_request.policy_support = 0x02; /* RSN active */
7256 ipw_set_rsn_capa(priv, priv->ieee->wpa_ie,
7257 priv->ieee->wpa_ie_len);
7258 }
43f66a6c 7259
bf79451e
JG
7260 /*
7261 * It is valid for our ieee device to support multiple modes, but
7262 * when it comes to associating to a given network we have to choose
43f66a6c
JK
7263 * just one mode.
7264 */
7265 if (network->mode & priv->ieee->mode & IEEE_A)
7266 priv->assoc_request.ieee_mode = IPW_A_MODE;
7267 else if (network->mode & priv->ieee->mode & IEEE_G)
7268 priv->assoc_request.ieee_mode = IPW_G_MODE;
7269 else if (network->mode & priv->ieee->mode & IEEE_B)
7270 priv->assoc_request.ieee_mode = IPW_B_MODE;
7271
ea2b26e0
JK
7272 priv->assoc_request.capability = network->capability;
7273 if ((network->capability & WLAN_CAPABILITY_SHORT_PREAMBLE)
7274 && !(priv->config & CFG_PREAMBLE_LONG)) {
7275 priv->assoc_request.preamble_length = DCT_FLAG_SHORT_PREAMBLE;
7276 } else {
7277 priv->assoc_request.preamble_length = DCT_FLAG_LONG_PREAMBLE;
7278
7279 /* Clear the short preamble if we won't be supporting it */
7280 priv->assoc_request.capability &=
7281 ~WLAN_CAPABILITY_SHORT_PREAMBLE;
7282 }
7283
afbf30a2
JK
7284 /* Clear capability bits that aren't used in Ad Hoc */
7285 if (priv->ieee->iw_mode == IW_MODE_ADHOC)
7286 priv->assoc_request.capability &=
7287 ~WLAN_CAPABILITY_SHORT_SLOT_TIME;
7288
43f66a6c 7289 IPW_DEBUG_ASSOC("%sssocation attempt: '%s', channel %d, "
ea2b26e0 7290 "802.11%c [%d], %s[:%s], enc=%s%s%s%c%c\n",
43f66a6c 7291 roaming ? "Rea" : "A",
bf79451e
JG
7292 escape_essid(priv->essid, priv->essid_len),
7293 network->channel,
7294 ipw_modes[priv->assoc_request.ieee_mode],
7295 rates->num_rates,
ea2b26e0
JK
7296 (priv->assoc_request.preamble_length ==
7297 DCT_FLAG_LONG_PREAMBLE) ? "long" : "short",
7298 network->capability &
7299 WLAN_CAPABILITY_SHORT_PREAMBLE ? "short" : "long",
43f66a6c 7300 priv->capability & CAP_PRIVACY_ON ? "on " : "off",
bf79451e
JG
7301 priv->capability & CAP_PRIVACY_ON ?
7302 (priv->capability & CAP_SHARED_KEY ? "(shared)" :
43f66a6c
JK
7303 "(open)") : "",
7304 priv->capability & CAP_PRIVACY_ON ? " key=" : "",
bf79451e 7305 priv->capability & CAP_PRIVACY_ON ?
b095c381 7306 '1' + priv->ieee->sec.active_key : '.',
0edd5b44 7307 priv->capability & CAP_PRIVACY_ON ? '.' : ' ');
43f66a6c
JK
7308
7309 priv->assoc_request.beacon_interval = network->beacon_interval;
7310 if ((priv->ieee->iw_mode == IW_MODE_ADHOC) &&
0edd5b44 7311 (network->time_stamp[0] == 0) && (network->time_stamp[1] == 0)) {
43f66a6c
JK
7312 priv->assoc_request.assoc_type = HC_IBSS_START;
7313 priv->assoc_request.assoc_tsf_msw = 0;
7314 priv->assoc_request.assoc_tsf_lsw = 0;
7315 } else {
7316 if (unlikely(roaming))
7317 priv->assoc_request.assoc_type = HC_REASSOCIATE;
7318 else
7319 priv->assoc_request.assoc_type = HC_ASSOCIATE;
7320 priv->assoc_request.assoc_tsf_msw = network->time_stamp[1];
7321 priv->assoc_request.assoc_tsf_lsw = network->time_stamp[0];
7322 }
7323
afbf30a2 7324 memcpy(priv->assoc_request.bssid, network->bssid, ETH_ALEN);
43f66a6c
JK
7325
7326 if (priv->ieee->iw_mode == IW_MODE_ADHOC) {
7327 memset(&priv->assoc_request.dest, 0xFF, ETH_ALEN);
7328 priv->assoc_request.atim_window = network->atim_window;
7329 } else {
afbf30a2 7330 memcpy(priv->assoc_request.dest, network->bssid, ETH_ALEN);
43f66a6c
JK
7331 priv->assoc_request.atim_window = 0;
7332 }
7333
43f66a6c 7334 priv->assoc_request.listen_interval = network->listen_interval;
bf79451e 7335
43f66a6c
JK
7336 err = ipw_send_ssid(priv, priv->essid, priv->essid_len);
7337 if (err) {
7338 IPW_DEBUG_HC("Attempt to send SSID command failed.\n");
7339 return err;
7340 }
7341
7342 rates->ieee_mode = priv->assoc_request.ieee_mode;
7343 rates->purpose = IPW_RATE_CONNECT;
7344 ipw_send_supported_rates(priv, rates);
bf79451e 7345
43f66a6c
JK
7346 if (priv->assoc_request.ieee_mode == IPW_G_MODE)
7347 priv->sys_config.dot11g_auto_detection = 1;
7348 else
7349 priv->sys_config.dot11g_auto_detection = 0;
c848d0af
JK
7350
7351 if (priv->ieee->iw_mode == IW_MODE_ADHOC)
7352 priv->sys_config.answer_broadcast_ssid_probe = 1;
7353 else
7354 priv->sys_config.answer_broadcast_ssid_probe = 0;
7355
d685b8c2 7356 err = ipw_send_system_config(priv);
43f66a6c
JK
7357 if (err) {
7358 IPW_DEBUG_HC("Attempt to send sys config command failed.\n");
7359 return err;
7360 }
bf79451e 7361
43f66a6c 7362 IPW_DEBUG_ASSOC("Association sensitivity: %d\n", network->stats.rssi);
ea2b26e0 7363 err = ipw_set_sensitivity(priv, network->stats.rssi + IPW_RSSI_TO_DBM);
43f66a6c
JK
7364 if (err) {
7365 IPW_DEBUG_HC("Attempt to send associate command failed.\n");
7366 return err;
7367 }
7368
7369 /*
7370 * If preemption is enabled, it is possible for the association
7371 * to complete before we return from ipw_send_associate. Therefore
7372 * we have to be sure and update our priviate data first.
7373 */
7374 priv->channel = network->channel;
7375 memcpy(priv->bssid, network->bssid, ETH_ALEN);
bf79451e 7376 priv->status |= STATUS_ASSOCIATING;
43f66a6c
JK
7377 priv->status &= ~STATUS_SECURITY_UPDATED;
7378
7379 priv->assoc_network = network;
7380
e43e3c1e 7381#ifdef CONFIG_IPW2200_QOS
b095c381
JK
7382 ipw_qos_association(priv, network);
7383#endif
7384
43f66a6c
JK
7385 err = ipw_send_associate(priv, &priv->assoc_request);
7386 if (err) {
7387 IPW_DEBUG_HC("Attempt to send associate command failed.\n");
7388 return err;
7389 }
bf79451e
JG
7390
7391 IPW_DEBUG(IPW_DL_STATE, "associating: '%s' " MAC_FMT " \n",
43f66a6c
JK
7392 escape_essid(priv->essid, priv->essid_len),
7393 MAC_ARG(priv->bssid));
7394
7395 return 0;
7396}
7397
7398static void ipw_roam(void *data)
7399{
7400 struct ipw_priv *priv = data;
7401 struct ieee80211_network *network = NULL;
7402 struct ipw_network_match match = {
7403 .network = priv->assoc_network
7404 };
7405
7406 /* The roaming process is as follows:
bf79451e
JG
7407 *
7408 * 1. Missed beacon threshold triggers the roaming process by
43f66a6c
JK
7409 * setting the status ROAM bit and requesting a scan.
7410 * 2. When the scan completes, it schedules the ROAM work
7411 * 3. The ROAM work looks at all of the known networks for one that
7412 * is a better network than the currently associated. If none
7413 * found, the ROAM process is over (ROAM bit cleared)
7414 * 4. If a better network is found, a disassociation request is
7415 * sent.
7416 * 5. When the disassociation completes, the roam work is again
7417 * scheduled. The second time through, the driver is no longer
7418 * associated, and the newly selected network is sent an
bf79451e 7419 * association request.
43f66a6c
JK
7420 * 6. At this point ,the roaming process is complete and the ROAM
7421 * status bit is cleared.
7422 */
7423
7424 /* If we are no longer associated, and the roaming bit is no longer
7425 * set, then we are not actively roaming, so just return */
7426 if (!(priv->status & (STATUS_ASSOCIATED | STATUS_ROAMING)))
7427 return;
bf79451e 7428
43f66a6c 7429 if (priv->status & STATUS_ASSOCIATED) {
bf79451e 7430 /* First pass through ROAM process -- look for a better
43f66a6c 7431 * network */
a613bffd 7432 unsigned long flags;
43f66a6c
JK
7433 u8 rssi = priv->assoc_network->stats.rssi;
7434 priv->assoc_network->stats.rssi = -128;
a613bffd 7435 spin_lock_irqsave(&priv->ieee->lock, flags);
43f66a6c
JK
7436 list_for_each_entry(network, &priv->ieee->network_list, list) {
7437 if (network != priv->assoc_network)
7438 ipw_best_network(priv, &match, network, 1);
7439 }
a613bffd 7440 spin_unlock_irqrestore(&priv->ieee->lock, flags);
43f66a6c 7441 priv->assoc_network->stats.rssi = rssi;
bf79451e 7442
43f66a6c
JK
7443 if (match.network == priv->assoc_network) {
7444 IPW_DEBUG_ASSOC("No better APs in this network to "
7445 "roam to.\n");
7446 priv->status &= ~STATUS_ROAMING;
7447 ipw_debug_config(priv);
7448 return;
7449 }
bf79451e 7450
43f66a6c
JK
7451 ipw_send_disassociate(priv, 1);
7452 priv->assoc_network = match.network;
7453
7454 return;
bf79451e 7455 }
43f66a6c
JK
7456
7457 /* Second pass through ROAM process -- request association */
7458 ipw_compatible_rates(priv, priv->assoc_network, &match.rates);
7459 ipw_associate_network(priv, priv->assoc_network, &match.rates, 1);
7460 priv->status &= ~STATUS_ROAMING;
7461}
7462
c4028958 7463static void ipw_bg_roam(struct work_struct *work)
c848d0af 7464{
c4028958
DH
7465 struct ipw_priv *priv =
7466 container_of(work, struct ipw_priv, roam);
4644151b 7467 mutex_lock(&priv->mutex);
c4028958 7468 ipw_roam(priv);
4644151b 7469 mutex_unlock(&priv->mutex);
c848d0af
JK
7470}
7471
7472static int ipw_associate(void *data)
43f66a6c
JK
7473{
7474 struct ipw_priv *priv = data;
7475
7476 struct ieee80211_network *network = NULL;
7477 struct ipw_network_match match = {
7478 .network = NULL
7479 };
7480 struct ipw_supported_rates *rates;
7481 struct list_head *element;
a613bffd 7482 unsigned long flags;
43f66a6c 7483
b095c381
JK
7484 if (priv->ieee->iw_mode == IW_MODE_MONITOR) {
7485 IPW_DEBUG_ASSOC("Not attempting association (monitor mode)\n");
7486 return 0;
7487 }
7488
c848d0af 7489 if (priv->status & (STATUS_ASSOCIATED | STATUS_ASSOCIATING)) {
afbf30a2
JK
7490 IPW_DEBUG_ASSOC("Not attempting association (already in "
7491 "progress)\n");
c848d0af
JK
7492 return 0;
7493 }
7494
e6324726
HL
7495 if (priv->status & STATUS_DISASSOCIATING) {
7496 IPW_DEBUG_ASSOC("Not attempting association (in "
7497 "disassociating)\n ");
7498 queue_work(priv->workqueue, &priv->associate);
7499 return 0;
7500 }
7501
c848d0af 7502 if (!ipw_is_init(priv) || (priv->status & STATUS_SCANNING)) {
afbf30a2
JK
7503 IPW_DEBUG_ASSOC("Not attempting association (scanning or not "
7504 "initialized)\n");
c848d0af
JK
7505 return 0;
7506 }
43f66a6c
JK
7507
7508 if (!(priv->config & CFG_ASSOCIATE) &&
7509 !(priv->config & (CFG_STATIC_ESSID |
0edd5b44 7510 CFG_STATIC_CHANNEL | CFG_STATIC_BSSID))) {
43f66a6c 7511 IPW_DEBUG_ASSOC("Not attempting association (associate=0)\n");
c848d0af 7512 return 0;
43f66a6c
JK
7513 }
7514
a613bffd
JK
7515 /* Protect our use of the network_list */
7516 spin_lock_irqsave(&priv->ieee->lock, flags);
bf79451e 7517 list_for_each_entry(network, &priv->ieee->network_list, list)
0edd5b44 7518 ipw_best_network(priv, &match, network, 0);
43f66a6c
JK
7519
7520 network = match.network;
7521 rates = &match.rates;
7522
7523 if (network == NULL &&
7524 priv->ieee->iw_mode == IW_MODE_ADHOC &&
7525 priv->config & CFG_ADHOC_CREATE &&
7526 priv->config & CFG_STATIC_ESSID &&
a613bffd 7527 priv->config & CFG_STATIC_CHANNEL &&
43f66a6c
JK
7528 !list_empty(&priv->ieee->network_free_list)) {
7529 element = priv->ieee->network_free_list.next;
0edd5b44 7530 network = list_entry(element, struct ieee80211_network, list);
43f66a6c
JK
7531 ipw_adhoc_create(priv, network);
7532 rates = &priv->rates;
7533 list_del(element);
7534 list_add_tail(&network->list, &priv->ieee->network_list);
7535 }
a613bffd 7536 spin_unlock_irqrestore(&priv->ieee->lock, flags);
bf79451e 7537
43f66a6c
JK
7538 /* If we reached the end of the list, then we don't have any valid
7539 * matching APs */
7540 if (!network) {
7541 ipw_debug_config(priv);
7542
b095c381
JK
7543 if (!(priv->status & STATUS_SCANNING)) {
7544 if (!(priv->config & CFG_SPEED_SCAN))
7545 queue_delayed_work(priv->workqueue,
7546 &priv->request_scan,
7547 SCAN_INTERVAL);
7548 else
c4028958
DH
7549 queue_delayed_work(priv->workqueue,
7550 &priv->request_scan, 0);
b095c381 7551 }
bf79451e 7552
c848d0af 7553 return 0;
43f66a6c
JK
7554 }
7555
7556 ipw_associate_network(priv, network, rates, 0);
c848d0af
JK
7557
7558 return 1;
7559}
7560
c4028958 7561static void ipw_bg_associate(struct work_struct *work)
c848d0af 7562{
c4028958
DH
7563 struct ipw_priv *priv =
7564 container_of(work, struct ipw_priv, associate);
4644151b 7565 mutex_lock(&priv->mutex);
c4028958 7566 ipw_associate(priv);
4644151b 7567 mutex_unlock(&priv->mutex);
43f66a6c 7568}
bf79451e 7569
b095c381
JK
7570static void ipw_rebuild_decrypted_skb(struct ipw_priv *priv,
7571 struct sk_buff *skb)
7572{
7573 struct ieee80211_hdr *hdr;
7574 u16 fc;
7575
7576 hdr = (struct ieee80211_hdr *)skb->data;
7577 fc = le16_to_cpu(hdr->frame_ctl);
7578 if (!(fc & IEEE80211_FCTL_PROTECTED))
7579 return;
7580
7581 fc &= ~IEEE80211_FCTL_PROTECTED;
7582 hdr->frame_ctl = cpu_to_le16(fc);
7583 switch (priv->ieee->sec.level) {
7584 case SEC_LEVEL_3:
7585 /* Remove CCMP HDR */
7586 memmove(skb->data + IEEE80211_3ADDR_LEN,
7587 skb->data + IEEE80211_3ADDR_LEN + 8,
7588 skb->len - IEEE80211_3ADDR_LEN - 8);
f4ff497d 7589 skb_trim(skb, skb->len - 16); /* CCMP_HDR_LEN + CCMP_MIC_LEN */
b095c381
JK
7590 break;
7591 case SEC_LEVEL_2:
7592 break;
7593 case SEC_LEVEL_1:
7594 /* Remove IV */
7595 memmove(skb->data + IEEE80211_3ADDR_LEN,
7596 skb->data + IEEE80211_3ADDR_LEN + 4,
7597 skb->len - IEEE80211_3ADDR_LEN - 4);
f4ff497d 7598 skb_trim(skb, skb->len - 8); /* IV + ICV */
b095c381
JK
7599 break;
7600 case SEC_LEVEL_0:
7601 break;
7602 default:
7603 printk(KERN_ERR "Unknow security level %d\n",
7604 priv->ieee->sec.level);
7605 break;
7606 }
43f66a6c 7607}
bf79451e 7608
b095c381
JK
7609static void ipw_handle_data_packet(struct ipw_priv *priv,
7610 struct ipw_rx_mem_buffer *rxb,
7611 struct ieee80211_rx_stats *stats)
43f66a6c 7612{
567deaf6 7613 struct ieee80211_hdr_4addr *hdr;
43f66a6c
JK
7614 struct ipw_rx_packet *pkt = (struct ipw_rx_packet *)rxb->skb->data;
7615
7616 /* We received data from the HW, so stop the watchdog */
7617 priv->net_dev->trans_start = jiffies;
7618
bf79451e 7619 /* We only process data packets if the
43f66a6c 7620 * interface is open */
a613bffd 7621 if (unlikely((le16_to_cpu(pkt->u.frame.length) + IPW_RX_FRAME_SIZE) >
43f66a6c
JK
7622 skb_tailroom(rxb->skb))) {
7623 priv->ieee->stats.rx_errors++;
7624 priv->wstats.discard.misc++;
7625 IPW_DEBUG_DROP("Corruption detected! Oh no!\n");
7626 return;
7627 } else if (unlikely(!netif_running(priv->net_dev))) {
7628 priv->ieee->stats.rx_dropped++;
7629 priv->wstats.discard.misc++;
7630 IPW_DEBUG_DROP("Dropping packet while interface is not up.\n");
7631 return;
7632 }
7633
7634 /* Advance skb->data to the start of the actual payload */
aaa4d308 7635 skb_reserve(rxb->skb, offsetof(struct ipw_rx_packet, u.frame.data));
43f66a6c
JK
7636
7637 /* Set the size of the skb to the size of the frame */
a613bffd 7638 skb_put(rxb->skb, le16_to_cpu(pkt->u.frame.length));
43f66a6c
JK
7639
7640 IPW_DEBUG_RX("Rx packet of %d bytes.\n", rxb->skb->len);
7641
b095c381 7642 /* HW decrypt will not clear the WEP bit, MIC, PN, etc. */
567deaf6
HL
7643 hdr = (struct ieee80211_hdr_4addr *)rxb->skb->data;
7644 if (priv->ieee->iw_mode != IW_MODE_MONITOR &&
3c19065a 7645 (is_multicast_ether_addr(hdr->addr1) ?
567deaf6 7646 !priv->ieee->host_mc_decrypt : !priv->ieee->host_decrypt))
b095c381
JK
7647 ipw_rebuild_decrypted_skb(priv, rxb->skb);
7648
bf79451e 7649 if (!ieee80211_rx(priv->ieee, rxb->skb, stats))
43f66a6c 7650 priv->ieee->stats.rx_errors++;
a613bffd 7651 else { /* ieee80211_rx succeeded, so it now owns the SKB */
43f66a6c 7652 rxb->skb = NULL;
b095c381 7653 __ipw_led_activity_on(priv);
a613bffd 7654 }
43f66a6c
JK
7655}
7656
459d4087 7657#ifdef CONFIG_IPW2200_RADIOTAP
24a47dbd
MK
7658static void ipw_handle_data_packet_monitor(struct ipw_priv *priv,
7659 struct ipw_rx_mem_buffer *rxb,
7660 struct ieee80211_rx_stats *stats)
7661{
7662 struct ipw_rx_packet *pkt = (struct ipw_rx_packet *)rxb->skb->data;
7663 struct ipw_rx_frame *frame = &pkt->u.frame;
7664
7665 /* initial pull of some data */
7666 u16 received_channel = frame->received_channel;
7667 u8 antennaAndPhy = frame->antennaAndPhy;
7668 s8 antsignal = frame->rssi_dbm - IPW_RSSI_TO_DBM; /* call it signed anyhow */
7669 u16 pktrate = frame->rate;
7670
7671 /* Magic struct that slots into the radiotap header -- no reason
7672 * to build this manually element by element, we can write it much
7673 * more efficiently than we can parse it. ORDER MATTERS HERE */
d685b8c2 7674 struct ipw_rt_hdr *ipw_rt;
24a47dbd
MK
7675
7676 short len = le16_to_cpu(pkt->u.frame.length);
7677
7678 /* We received data from the HW, so stop the watchdog */
7679 priv->net_dev->trans_start = jiffies;
7680
7681 /* We only process data packets if the
7682 * interface is open */
7683 if (unlikely((le16_to_cpu(pkt->u.frame.length) + IPW_RX_FRAME_SIZE) >
7684 skb_tailroom(rxb->skb))) {
7685 priv->ieee->stats.rx_errors++;
7686 priv->wstats.discard.misc++;
7687 IPW_DEBUG_DROP("Corruption detected! Oh no!\n");
7688 return;
7689 } else if (unlikely(!netif_running(priv->net_dev))) {
7690 priv->ieee->stats.rx_dropped++;
7691 priv->wstats.discard.misc++;
7692 IPW_DEBUG_DROP("Dropping packet while interface is not up.\n");
7693 return;
7694 }
7695
7696 /* Libpcap 0.9.3+ can handle variable length radiotap, so we'll use
7697 * that now */
7698 if (len > IPW_RX_BUF_SIZE - sizeof(struct ipw_rt_hdr)) {
7699 /* FIXME: Should alloc bigger skb instead */
7700 priv->ieee->stats.rx_dropped++;
7701 priv->wstats.discard.misc++;
7702 IPW_DEBUG_DROP("Dropping too large packet in monitor\n");
7703 return;
7704 }
7705
7706 /* copy the frame itself */
7707 memmove(rxb->skb->data + sizeof(struct ipw_rt_hdr),
7708 rxb->skb->data + IPW_RX_FRAME_SIZE, len);
7709
7710 /* Zero the radiotap static buffer ... We only need to zero the bytes NOT
7711 * part of our real header, saves a little time.
7712 *
7713 * No longer necessary since we fill in all our data. Purge before merging
7714 * patch officially.
7715 * memset(rxb->skb->data + sizeof(struct ipw_rt_hdr), 0,
7716 * IEEE80211_RADIOTAP_HDRLEN - sizeof(struct ipw_rt_hdr));
7717 */
7718
7719 ipw_rt = (struct ipw_rt_hdr *)rxb->skb->data;
7720
7721 ipw_rt->rt_hdr.it_version = PKTHDR_RADIOTAP_VERSION;
7722 ipw_rt->rt_hdr.it_pad = 0; /* always good to zero */
7723 ipw_rt->rt_hdr.it_len = sizeof(struct ipw_rt_hdr); /* total header+data */
7724
7725 /* Big bitfield of all the fields we provide in radiotap */
7726 ipw_rt->rt_hdr.it_present =
4b1f8a99
ZY
7727 ((1 << IEEE80211_RADIOTAP_TSFT) |
7728 (1 << IEEE80211_RADIOTAP_FLAGS) |
24a47dbd
MK
7729 (1 << IEEE80211_RADIOTAP_RATE) |
7730 (1 << IEEE80211_RADIOTAP_CHANNEL) |
7731 (1 << IEEE80211_RADIOTAP_DBM_ANTSIGNAL) |
d685b8c2 7732 (1 << IEEE80211_RADIOTAP_DBM_ANTNOISE) |
24a47dbd
MK
7733 (1 << IEEE80211_RADIOTAP_ANTENNA));
7734
7735 /* Zero the flags, we'll add to them as we go */
7736 ipw_rt->rt_flags = 0;
4b1f8a99
ZY
7737 ipw_rt->rt_tsf = (u64)(frame->parent_tsf[3] << 24 |
7738 frame->parent_tsf[2] << 16 |
7739 frame->parent_tsf[1] << 8 |
7740 frame->parent_tsf[0]);
24a47dbd
MK
7741
7742 /* Convert signal to DBM */
7743 ipw_rt->rt_dbmsignal = antsignal;
4b1f8a99 7744 ipw_rt->rt_dbmnoise = frame->noise;
24a47dbd
MK
7745
7746 /* Convert the channel data and set the flags */
7747 ipw_rt->rt_channel = cpu_to_le16(ieee80211chan2mhz(received_channel));
7748 if (received_channel > 14) { /* 802.11a */
7749 ipw_rt->rt_chbitmask =
7750 cpu_to_le16((IEEE80211_CHAN_OFDM | IEEE80211_CHAN_5GHZ));
7751 } else if (antennaAndPhy & 32) { /* 802.11b */
7752 ipw_rt->rt_chbitmask =
7753 cpu_to_le16((IEEE80211_CHAN_CCK | IEEE80211_CHAN_2GHZ));
7754 } else { /* 802.11g */
7755 ipw_rt->rt_chbitmask =
7756 (IEEE80211_CHAN_OFDM | IEEE80211_CHAN_2GHZ);
7757 }
7758
7759 /* set the rate in multiples of 500k/s */
7760 switch (pktrate) {
7761 case IPW_TX_RATE_1MB:
7762 ipw_rt->rt_rate = 2;
7763 break;
7764 case IPW_TX_RATE_2MB:
7765 ipw_rt->rt_rate = 4;
7766 break;
7767 case IPW_TX_RATE_5MB:
7768 ipw_rt->rt_rate = 10;
7769 break;
7770 case IPW_TX_RATE_6MB:
7771 ipw_rt->rt_rate = 12;
7772 break;
7773 case IPW_TX_RATE_9MB:
7774 ipw_rt->rt_rate = 18;
7775 break;
7776 case IPW_TX_RATE_11MB:
7777 ipw_rt->rt_rate = 22;
7778 break;
7779 case IPW_TX_RATE_12MB:
7780 ipw_rt->rt_rate = 24;
7781 break;
7782 case IPW_TX_RATE_18MB:
7783 ipw_rt->rt_rate = 36;
7784 break;
7785 case IPW_TX_RATE_24MB:
7786 ipw_rt->rt_rate = 48;
7787 break;
7788 case IPW_TX_RATE_36MB:
7789 ipw_rt->rt_rate = 72;
7790 break;
7791 case IPW_TX_RATE_48MB:
7792 ipw_rt->rt_rate = 96;
7793 break;
7794 case IPW_TX_RATE_54MB:
7795 ipw_rt->rt_rate = 108;
7796 break;
7797 default:
7798 ipw_rt->rt_rate = 0;
7799 break;
7800 }
7801
7802 /* antenna number */
7803 ipw_rt->rt_antenna = (antennaAndPhy & 3); /* Is this right? */
7804
7805 /* set the preamble flag if we have it */
7806 if ((antennaAndPhy & 64))
7807 ipw_rt->rt_flags |= IEEE80211_RADIOTAP_F_SHORTPRE;
7808
7809 /* Set the size of the skb to the size of the frame */
7810 skb_put(rxb->skb, len + sizeof(struct ipw_rt_hdr));
43f66a6c
JK
7811
7812 IPW_DEBUG_RX("Rx packet of %d bytes.\n", rxb->skb->len);
7813
bf79451e 7814 if (!ieee80211_rx(priv->ieee, rxb->skb, stats))
43f66a6c 7815 priv->ieee->stats.rx_errors++;
24a47dbd
MK
7816 else { /* ieee80211_rx succeeded, so it now owns the SKB */
7817 rxb->skb = NULL;
7818 /* no LED during capture */
7819 }
7820}
7821#endif
7822
d685b8c2
ZY
7823#ifdef CONFIG_IPW2200_PROMISCUOUS
7824#define ieee80211_is_probe_response(fc) \
7825 ((fc & IEEE80211_FCTL_FTYPE) == IEEE80211_FTYPE_MGMT && \
7826 (fc & IEEE80211_FCTL_STYPE) == IEEE80211_STYPE_PROBE_RESP )
7827
7828#define ieee80211_is_management(fc) \
7829 ((fc & IEEE80211_FCTL_FTYPE) == IEEE80211_FTYPE_MGMT)
7830
7831#define ieee80211_is_control(fc) \
7832 ((fc & IEEE80211_FCTL_FTYPE) == IEEE80211_FTYPE_CTL)
7833
7834#define ieee80211_is_data(fc) \
7835 ((fc & IEEE80211_FCTL_FTYPE) == IEEE80211_FTYPE_DATA)
7836
7837#define ieee80211_is_assoc_request(fc) \
7838 ((fc & IEEE80211_FCTL_STYPE) == IEEE80211_STYPE_ASSOC_REQ)
7839
7840#define ieee80211_is_reassoc_request(fc) \
7841 ((fc & IEEE80211_FCTL_STYPE) == IEEE80211_STYPE_REASSOC_REQ)
7842
7843static void ipw_handle_promiscuous_rx(struct ipw_priv *priv,
7844 struct ipw_rx_mem_buffer *rxb,
7845 struct ieee80211_rx_stats *stats)
7846{
7847 struct ipw_rx_packet *pkt = (struct ipw_rx_packet *)rxb->skb->data;
7848 struct ipw_rx_frame *frame = &pkt->u.frame;
7849 struct ipw_rt_hdr *ipw_rt;
7850
7851 /* First cache any information we need before we overwrite
7852 * the information provided in the skb from the hardware */
7853 struct ieee80211_hdr *hdr;
7854 u16 channel = frame->received_channel;
7855 u8 phy_flags = frame->antennaAndPhy;
7856 s8 signal = frame->rssi_dbm - IPW_RSSI_TO_DBM;
7857 s8 noise = frame->noise;
7858 u8 rate = frame->rate;
7859 short len = le16_to_cpu(pkt->u.frame.length);
d685b8c2
ZY
7860 struct sk_buff *skb;
7861 int hdr_only = 0;
7862 u16 filter = priv->prom_priv->filter;
7863
7864 /* If the filter is set to not include Rx frames then return */
7865 if (filter & IPW_PROM_NO_RX)
7866 return;
7867
d685b8c2
ZY
7868 /* We received data from the HW, so stop the watchdog */
7869 priv->prom_net_dev->trans_start = jiffies;
7870
7871 if (unlikely((len + IPW_RX_FRAME_SIZE) > skb_tailroom(rxb->skb))) {
7872 priv->prom_priv->ieee->stats.rx_errors++;
7873 IPW_DEBUG_DROP("Corruption detected! Oh no!\n");
7874 return;
7875 }
7876
7877 /* We only process data packets if the interface is open */
7878 if (unlikely(!netif_running(priv->prom_net_dev))) {
7879 priv->prom_priv->ieee->stats.rx_dropped++;
7880 IPW_DEBUG_DROP("Dropping packet while interface is not up.\n");
7881 return;
7882 }
7883
7884 /* Libpcap 0.9.3+ can handle variable length radiotap, so we'll use
7885 * that now */
7886 if (len > IPW_RX_BUF_SIZE - sizeof(struct ipw_rt_hdr)) {
7887 /* FIXME: Should alloc bigger skb instead */
7888 priv->prom_priv->ieee->stats.rx_dropped++;
7889 IPW_DEBUG_DROP("Dropping too large packet in monitor\n");
7890 return;
7891 }
7892
7893 hdr = (void *)rxb->skb->data + IPW_RX_FRAME_SIZE;
851ca268 7894 if (ieee80211_is_management(le16_to_cpu(hdr->frame_ctl))) {
d685b8c2
ZY
7895 if (filter & IPW_PROM_NO_MGMT)
7896 return;
7897 if (filter & IPW_PROM_MGMT_HEADER_ONLY)
7898 hdr_only = 1;
851ca268 7899 } else if (ieee80211_is_control(le16_to_cpu(hdr->frame_ctl))) {
d685b8c2
ZY
7900 if (filter & IPW_PROM_NO_CTL)
7901 return;
7902 if (filter & IPW_PROM_CTL_HEADER_ONLY)
7903 hdr_only = 1;
851ca268 7904 } else if (ieee80211_is_data(le16_to_cpu(hdr->frame_ctl))) {
d685b8c2
ZY
7905 if (filter & IPW_PROM_NO_DATA)
7906 return;
7907 if (filter & IPW_PROM_DATA_HEADER_ONLY)
7908 hdr_only = 1;
7909 }
7910
7911 /* Copy the SKB since this is for the promiscuous side */
7912 skb = skb_copy(rxb->skb, GFP_ATOMIC);
7913 if (skb == NULL) {
7914 IPW_ERROR("skb_clone failed for promiscuous copy.\n");
7915 return;
7916 }
7917
7918 /* copy the frame data to write after where the radiotap header goes */
7919 ipw_rt = (void *)skb->data;
7920
7921 if (hdr_only)
851ca268 7922 len = ieee80211_get_hdrlen(le16_to_cpu(hdr->frame_ctl));
d685b8c2
ZY
7923
7924 memcpy(ipw_rt->payload, hdr, len);
7925
7926 /* Zero the radiotap static buffer ... We only need to zero the bytes
7927 * NOT part of our real header, saves a little time.
7928 *
7929 * No longer necessary since we fill in all our data. Purge before
7930 * merging patch officially.
7931 * memset(rxb->skb->data + sizeof(struct ipw_rt_hdr), 0,
7932 * IEEE80211_RADIOTAP_HDRLEN - sizeof(struct ipw_rt_hdr));
7933 */
7934
7935 ipw_rt->rt_hdr.it_version = PKTHDR_RADIOTAP_VERSION;
7936 ipw_rt->rt_hdr.it_pad = 0; /* always good to zero */
7937 ipw_rt->rt_hdr.it_len = sizeof(*ipw_rt); /* total header+data */
7938
7939 /* Set the size of the skb to the size of the frame */
7940 skb_put(skb, ipw_rt->rt_hdr.it_len + len);
7941
7942 /* Big bitfield of all the fields we provide in radiotap */
7943 ipw_rt->rt_hdr.it_present =
4b1f8a99
ZY
7944 ((1 << IEEE80211_RADIOTAP_TSFT) |
7945 (1 << IEEE80211_RADIOTAP_FLAGS) |
d685b8c2
ZY
7946 (1 << IEEE80211_RADIOTAP_RATE) |
7947 (1 << IEEE80211_RADIOTAP_CHANNEL) |
7948 (1 << IEEE80211_RADIOTAP_DBM_ANTSIGNAL) |
7949 (1 << IEEE80211_RADIOTAP_DBM_ANTNOISE) |
7950 (1 << IEEE80211_RADIOTAP_ANTENNA));
7951
7952 /* Zero the flags, we'll add to them as we go */
7953 ipw_rt->rt_flags = 0;
4b1f8a99
ZY
7954 ipw_rt->rt_tsf = (u64)(frame->parent_tsf[3] << 24 |
7955 frame->parent_tsf[2] << 16 |
7956 frame->parent_tsf[1] << 8 |
7957 frame->parent_tsf[0]);
d685b8c2
ZY
7958
7959 /* Convert to DBM */
7960 ipw_rt->rt_dbmsignal = signal;
7961 ipw_rt->rt_dbmnoise = noise;
7962
7963 /* Convert the channel data and set the flags */
7964 ipw_rt->rt_channel = cpu_to_le16(ieee80211chan2mhz(channel));
7965 if (channel > 14) { /* 802.11a */
7966 ipw_rt->rt_chbitmask =
7967 cpu_to_le16((IEEE80211_CHAN_OFDM | IEEE80211_CHAN_5GHZ));
7968 } else if (phy_flags & (1 << 5)) { /* 802.11b */
7969 ipw_rt->rt_chbitmask =
7970 cpu_to_le16((IEEE80211_CHAN_CCK | IEEE80211_CHAN_2GHZ));
7971 } else { /* 802.11g */
7972 ipw_rt->rt_chbitmask =
7973 (IEEE80211_CHAN_OFDM | IEEE80211_CHAN_2GHZ);
7974 }
7975
7976 /* set the rate in multiples of 500k/s */
7977 switch (rate) {
7978 case IPW_TX_RATE_1MB:
7979 ipw_rt->rt_rate = 2;
7980 break;
7981 case IPW_TX_RATE_2MB:
7982 ipw_rt->rt_rate = 4;
7983 break;
7984 case IPW_TX_RATE_5MB:
7985 ipw_rt->rt_rate = 10;
7986 break;
7987 case IPW_TX_RATE_6MB:
7988 ipw_rt->rt_rate = 12;
7989 break;
7990 case IPW_TX_RATE_9MB:
7991 ipw_rt->rt_rate = 18;
7992 break;
7993 case IPW_TX_RATE_11MB:
7994 ipw_rt->rt_rate = 22;
7995 break;
7996 case IPW_TX_RATE_12MB:
7997 ipw_rt->rt_rate = 24;
7998 break;
7999 case IPW_TX_RATE_18MB:
8000 ipw_rt->rt_rate = 36;
8001 break;
8002 case IPW_TX_RATE_24MB:
8003 ipw_rt->rt_rate = 48;
8004 break;
8005 case IPW_TX_RATE_36MB:
8006 ipw_rt->rt_rate = 72;
8007 break;
8008 case IPW_TX_RATE_48MB:
8009 ipw_rt->rt_rate = 96;
8010 break;
8011 case IPW_TX_RATE_54MB:
8012 ipw_rt->rt_rate = 108;
8013 break;
8014 default:
8015 ipw_rt->rt_rate = 0;
8016 break;
8017 }
8018
8019 /* antenna number */
8020 ipw_rt->rt_antenna = (phy_flags & 3);
8021
8022 /* set the preamble flag if we have it */
8023 if (phy_flags & (1 << 6))
8024 ipw_rt->rt_flags |= IEEE80211_RADIOTAP_F_SHORTPRE;
8025
8026 IPW_DEBUG_RX("Rx packet of %d bytes.\n", skb->len);
8027
8028 if (!ieee80211_rx(priv->prom_priv->ieee, skb, stats)) {
8029 priv->prom_priv->ieee->stats.rx_errors++;
8030 dev_kfree_skb_any(skb);
8031 }
8032}
8033#endif
8034
858119e1 8035static int is_network_packet(struct ipw_priv *priv,
ea2b26e0
JK
8036 struct ieee80211_hdr_4addr *header)
8037{
8038 /* Filter incoming packets to determine if they are targetted toward
8039 * this network, discarding packets coming from ourselves */
8040 switch (priv->ieee->iw_mode) {
a613bffd 8041 case IW_MODE_ADHOC: /* Header: Dest. | Source | BSSID */
c848d0af
JK
8042 /* packets from our adapter are dropped (echo) */
8043 if (!memcmp(header->addr2, priv->net_dev->dev_addr, ETH_ALEN))
8044 return 0;
8045
90700fd9 8046 /* {broad,multi}cast packets to our BSSID go through */
3c19065a 8047 if (is_multicast_ether_addr(header->addr1))
ea2b26e0 8048 return !memcmp(header->addr3, priv->bssid, ETH_ALEN);
a613bffd
JK
8049
8050 /* packets to our adapter go through */
8051 return !memcmp(header->addr1, priv->net_dev->dev_addr,
8052 ETH_ALEN);
a613bffd 8053
90700fd9 8054 case IW_MODE_INFRA: /* Header: Dest. | BSSID | Source */
c848d0af
JK
8055 /* packets from our adapter are dropped (echo) */
8056 if (!memcmp(header->addr3, priv->net_dev->dev_addr, ETH_ALEN))
8057 return 0;
8058
90700fd9 8059 /* {broad,multi}cast packets to our BSS go through */
3c19065a 8060 if (is_multicast_ether_addr(header->addr1))
a613bffd
JK
8061 return !memcmp(header->addr2, priv->bssid, ETH_ALEN);
8062
8063 /* packets to our adapter go through */
8064 return !memcmp(header->addr1, priv->net_dev->dev_addr,
8065 ETH_ALEN);
ea2b26e0 8066 }
a613bffd 8067
ea2b26e0
JK
8068 return 1;
8069}
8070
afbf30a2
JK
8071#define IPW_PACKET_RETRY_TIME HZ
8072
858119e1 8073static int is_duplicate_packet(struct ipw_priv *priv,
afbf30a2
JK
8074 struct ieee80211_hdr_4addr *header)
8075{
afbf30a2
JK
8076 u16 sc = le16_to_cpu(header->seq_ctl);
8077 u16 seq = WLAN_GET_SEQ_SEQ(sc);
8078 u16 frag = WLAN_GET_SEQ_FRAG(sc);
8079 u16 *last_seq, *last_frag;
8080 unsigned long *last_time;
8081
8082 switch (priv->ieee->iw_mode) {
8083 case IW_MODE_ADHOC:
8084 {
8085 struct list_head *p;
8086 struct ipw_ibss_seq *entry = NULL;
8087 u8 *mac = header->addr2;
8088 int index = mac[5] % IPW_IBSS_MAC_HASH_SIZE;
8089
8090 __list_for_each(p, &priv->ibss_mac_hash[index]) {
8091 entry =
8092 list_entry(p, struct ipw_ibss_seq, list);
8093 if (!memcmp(entry->mac, mac, ETH_ALEN))
8094 break;
8095 }
8096 if (p == &priv->ibss_mac_hash[index]) {
8097 entry = kmalloc(sizeof(*entry), GFP_ATOMIC);
8098 if (!entry) {
8099 IPW_ERROR
8100 ("Cannot malloc new mac entry\n");
8101 return 0;
8102 }
8103 memcpy(entry->mac, mac, ETH_ALEN);
8104 entry->seq_num = seq;
8105 entry->frag_num = frag;
8106 entry->packet_time = jiffies;
8107 list_add(&entry->list,
8108 &priv->ibss_mac_hash[index]);
8109 return 0;
8110 }
8111 last_seq = &entry->seq_num;
8112 last_frag = &entry->frag_num;
8113 last_time = &entry->packet_time;
8114 break;
8115 }
8116 case IW_MODE_INFRA:
8117 last_seq = &priv->last_seq_num;
8118 last_frag = &priv->last_frag_num;
8119 last_time = &priv->last_packet_time;
8120 break;
8121 default:
8122 return 0;
8123 }
8124 if ((*last_seq == seq) &&
8125 time_after(*last_time + IPW_PACKET_RETRY_TIME, jiffies)) {
8126 if (*last_frag == frag)
8127 goto drop;
8128 if (*last_frag + 1 != frag)
8129 /* out-of-order fragment */
8130 goto drop;
afbf30a2
JK
8131 } else
8132 *last_seq = seq;
8133
f57ce7ce 8134 *last_frag = frag;
afbf30a2
JK
8135 *last_time = jiffies;
8136 return 0;
8137
8138 drop:
87b016cb
ZY
8139 /* Comment this line now since we observed the card receives
8140 * duplicate packets but the FCTL_RETRY bit is not set in the
8141 * IBSS mode with fragmentation enabled.
8142 BUG_ON(!(le16_to_cpu(header->frame_ctl) & IEEE80211_FCTL_RETRY)); */
afbf30a2
JK
8143 return 1;
8144}
8145
b095c381
JK
8146static void ipw_handle_mgmt_packet(struct ipw_priv *priv,
8147 struct ipw_rx_mem_buffer *rxb,
8148 struct ieee80211_rx_stats *stats)
8149{
8150 struct sk_buff *skb = rxb->skb;
8151 struct ipw_rx_packet *pkt = (struct ipw_rx_packet *)skb->data;
8152 struct ieee80211_hdr_4addr *header = (struct ieee80211_hdr_4addr *)
8153 (skb->data + IPW_RX_FRAME_SIZE);
8154
8155 ieee80211_rx_mgt(priv->ieee, header, stats);
8156
8157 if (priv->ieee->iw_mode == IW_MODE_ADHOC &&
8158 ((WLAN_FC_GET_STYPE(le16_to_cpu(header->frame_ctl)) ==
8159 IEEE80211_STYPE_PROBE_RESP) ||
8160 (WLAN_FC_GET_STYPE(le16_to_cpu(header->frame_ctl)) ==
8161 IEEE80211_STYPE_BEACON))) {
8162 if (!memcmp(header->addr3, priv->bssid, ETH_ALEN))
8163 ipw_add_station(priv, header->addr2);
8164 }
8165
8166 if (priv->config & CFG_NET_STATS) {
8167 IPW_DEBUG_HC("sending stat packet\n");
8168
8169 /* Set the size of the skb to the size of the full
8170 * ipw header and 802.11 frame */
8171 skb_put(skb, le16_to_cpu(pkt->u.frame.length) +
8172 IPW_RX_FRAME_SIZE);
8173
8174 /* Advance past the ipw packet header to the 802.11 frame */
8175 skb_pull(skb, IPW_RX_FRAME_SIZE);
8176
8177 /* Push the ieee80211_rx_stats before the 802.11 frame */
8178 memcpy(skb_push(skb, sizeof(*stats)), stats, sizeof(*stats));
8179
8180 skb->dev = priv->ieee->dev;
8181
8182 /* Point raw at the ieee80211_stats */
459a98ed 8183 skb_reset_mac_header(skb);
b095c381
JK
8184
8185 skb->pkt_type = PACKET_OTHERHOST;
8186 skb->protocol = __constant_htons(ETH_P_80211_STATS);
8187 memset(skb->cb, 0, sizeof(rxb->skb->cb));
8188 netif_rx(skb);
43f66a6c 8189 rxb->skb = NULL;
b095c381 8190 }
43f66a6c
JK
8191}
8192
43f66a6c
JK
8193/*
8194 * Main entry function for recieving a packet with 80211 headers. This
8195 * should be called when ever the FW has notified us that there is a new
8196 * skb in the recieve queue.
8197 */
8198static void ipw_rx(struct ipw_priv *priv)
8199{
8200 struct ipw_rx_mem_buffer *rxb;
8201 struct ipw_rx_packet *pkt;
0dacca1f 8202 struct ieee80211_hdr_4addr *header;
43f66a6c
JK
8203 u32 r, w, i;
8204 u8 network_packet;
8205
b095c381
JK
8206 r = ipw_read32(priv, IPW_RX_READ_INDEX);
8207 w = ipw_read32(priv, IPW_RX_WRITE_INDEX);
43f66a6c
JK
8208 i = (priv->rxq->processed + 1) % RX_QUEUE_SIZE;
8209
8210 while (i != r) {
8211 rxb = priv->rxq->queue[i];
43f66a6c
JK
8212 if (unlikely(rxb == NULL)) {
8213 printk(KERN_CRIT "Queue not allocated!\n");
8214 break;
8215 }
43f66a6c
JK
8216 priv->rxq->queue[i] = NULL;
8217
8218 pci_dma_sync_single_for_cpu(priv->pci_dev, rxb->dma_addr,
b095c381 8219 IPW_RX_BUF_SIZE,
43f66a6c
JK
8220 PCI_DMA_FROMDEVICE);
8221
8222 pkt = (struct ipw_rx_packet *)rxb->skb->data;
8223 IPW_DEBUG_RX("Packet: type=%02X seq=%02X bits=%02X\n",
8224 pkt->header.message_type,
0edd5b44 8225 pkt->header.rx_seq_num, pkt->header.control_bits);
43f66a6c
JK
8226
8227 switch (pkt->header.message_type) {
0edd5b44
JG
8228 case RX_FRAME_TYPE: /* 802.11 frame */ {
8229 struct ieee80211_rx_stats stats = {
851ca268 8230 .rssi = pkt->u.frame.rssi_dbm -
0edd5b44 8231 IPW_RSSI_TO_DBM,
c848d0af 8232 .signal =
b191608a
BM
8233 le16_to_cpu(pkt->u.frame.rssi_dbm) -
8234 IPW_RSSI_TO_DBM + 0x100,
c848d0af
JK
8235 .noise =
8236 le16_to_cpu(pkt->u.frame.noise),
0edd5b44
JG
8237 .rate = pkt->u.frame.rate,
8238 .mac_time = jiffies,
8239 .received_channel =
8240 pkt->u.frame.received_channel,
8241 .freq =
8242 (pkt->u.frame.
8243 control & (1 << 0)) ?
8244 IEEE80211_24GHZ_BAND :
8245 IEEE80211_52GHZ_BAND,
a613bffd 8246 .len = le16_to_cpu(pkt->u.frame.length),
0edd5b44
JG
8247 };
8248
8249 if (stats.rssi != 0)
8250 stats.mask |= IEEE80211_STATMASK_RSSI;
8251 if (stats.signal != 0)
8252 stats.mask |= IEEE80211_STATMASK_SIGNAL;
c848d0af
JK
8253 if (stats.noise != 0)
8254 stats.mask |= IEEE80211_STATMASK_NOISE;
0edd5b44
JG
8255 if (stats.rate != 0)
8256 stats.mask |= IEEE80211_STATMASK_RATE;
8257
8258 priv->rx_packets++;
43f66a6c 8259
d685b8c2
ZY
8260#ifdef CONFIG_IPW2200_PROMISCUOUS
8261 if (priv->prom_net_dev && netif_running(priv->prom_net_dev))
8262 ipw_handle_promiscuous_rx(priv, rxb, &stats);
8263#endif
8264
b095c381 8265#ifdef CONFIG_IPW2200_MONITOR
0edd5b44 8266 if (priv->ieee->iw_mode == IW_MODE_MONITOR) {
459d4087 8267#ifdef CONFIG_IPW2200_RADIOTAP
d685b8c2
ZY
8268
8269 ipw_handle_data_packet_monitor(priv,
8270 rxb,
8271 &stats);
24a47dbd 8272#else
d685b8c2
ZY
8273 ipw_handle_data_packet(priv, rxb,
8274 &stats);
24a47dbd 8275#endif
0edd5b44
JG
8276 break;
8277 }
43f66a6c 8278#endif
bf79451e 8279
0edd5b44 8280 header =
0dacca1f
JK
8281 (struct ieee80211_hdr_4addr *)(rxb->skb->
8282 data +
8283 IPW_RX_FRAME_SIZE);
43f66a6c
JK
8284 /* TODO: Check Ad-Hoc dest/source and make sure
8285 * that we are actually parsing these packets
bf79451e 8286 * correctly -- we should probably use the
43f66a6c
JK
8287 * frame control of the packet and disregard
8288 * the current iw_mode */
0edd5b44 8289
ea2b26e0
JK
8290 network_packet =
8291 is_network_packet(priv, header);
0edd5b44
JG
8292 if (network_packet && priv->assoc_network) {
8293 priv->assoc_network->stats.rssi =
8294 stats.rssi;
00d21de5
ZY
8295 priv->exp_avg_rssi =
8296 exponential_average(priv->exp_avg_rssi,
8297 stats.rssi, DEPTH_RSSI);
0edd5b44
JG
8298 }
8299
8300 IPW_DEBUG_RX("Frame: len=%u\n",
a613bffd 8301 le16_to_cpu(pkt->u.frame.length));
0edd5b44 8302
a613bffd 8303 if (le16_to_cpu(pkt->u.frame.length) <
9d0be03a
ZY
8304 ieee80211_get_hdrlen(le16_to_cpu(
8305 header->frame_ctl))) {
0edd5b44
JG
8306 IPW_DEBUG_DROP
8307 ("Received packet is too small. "
8308 "Dropping.\n");
8309 priv->ieee->stats.rx_errors++;
8310 priv->wstats.discard.misc++;
8311 break;
8312 }
8313
a613bffd
JK
8314 switch (WLAN_FC_GET_TYPE
8315 (le16_to_cpu(header->frame_ctl))) {
b095c381 8316
0edd5b44 8317 case IEEE80211_FTYPE_MGMT:
b095c381
JK
8318 ipw_handle_mgmt_packet(priv, rxb,
8319 &stats);
0edd5b44
JG
8320 break;
8321
8322 case IEEE80211_FTYPE_CTL:
8323 break;
8324
8325 case IEEE80211_FTYPE_DATA:
afbf30a2
JK
8326 if (unlikely(!network_packet ||
8327 is_duplicate_packet(priv,
8328 header)))
8329 {
0edd5b44
JG
8330 IPW_DEBUG_DROP("Dropping: "
8331 MAC_FMT ", "
8332 MAC_FMT ", "
8333 MAC_FMT "\n",
8334 MAC_ARG(header->
8335 addr1),
8336 MAC_ARG(header->
8337 addr2),
8338 MAC_ARG(header->
8339 addr3));
b095c381
JK
8340 break;
8341 }
8342
8343 ipw_handle_data_packet(priv, rxb,
8344 &stats);
8345
0edd5b44
JG
8346 break;
8347 }
43f66a6c
JK
8348 break;
8349 }
bf79451e 8350
0edd5b44
JG
8351 case RX_HOST_NOTIFICATION_TYPE:{
8352 IPW_DEBUG_RX
8353 ("Notification: subtype=%02X flags=%02X size=%d\n",
43f66a6c
JK
8354 pkt->u.notification.subtype,
8355 pkt->u.notification.flags,
720eeb43 8356 le16_to_cpu(pkt->u.notification.size));
0edd5b44
JG
8357 ipw_rx_notification(priv, &pkt->u.notification);
8358 break;
8359 }
43f66a6c
JK
8360
8361 default:
8362 IPW_DEBUG_RX("Bad Rx packet of type %d\n",
8363 pkt->header.message_type);
8364 break;
8365 }
bf79451e
JG
8366
8367 /* For now we just don't re-use anything. We can tweak this
8368 * later to try and re-use notification packets and SKBs that
43f66a6c
JK
8369 * fail to Rx correctly */
8370 if (rxb->skb != NULL) {
8371 dev_kfree_skb_any(rxb->skb);
8372 rxb->skb = NULL;
8373 }
bf79451e 8374
43f66a6c 8375 pci_unmap_single(priv->pci_dev, rxb->dma_addr,
b095c381 8376 IPW_RX_BUF_SIZE, PCI_DMA_FROMDEVICE);
43f66a6c 8377 list_add_tail(&rxb->list, &priv->rxq->rx_used);
bf79451e 8378
43f66a6c
JK
8379 i = (i + 1) % RX_QUEUE_SIZE;
8380 }
8381
8382 /* Backtrack one entry */
8383 priv->rxq->processed = (i ? i : RX_QUEUE_SIZE) - 1;
8384
8385 ipw_rx_queue_restock(priv);
8386}
8387
afbf30a2
JK
8388#define DEFAULT_RTS_THRESHOLD 2304U
8389#define MIN_RTS_THRESHOLD 1U
8390#define MAX_RTS_THRESHOLD 2304U
8391#define DEFAULT_BEACON_INTERVAL 100U
8392#define DEFAULT_SHORT_RETRY_LIMIT 7U
8393#define DEFAULT_LONG_RETRY_LIMIT 4U
8394
d6d5b5c1
ZY
8395/**
8396 * ipw_sw_reset
8397 * @option: options to control different reset behaviour
8398 * 0 = reset everything except the 'disable' module_param
8399 * 1 = reset everything and print out driver info (for probe only)
8400 * 2 = reset everything
8401 */
8402static int ipw_sw_reset(struct ipw_priv *priv, int option)
43f66a6c 8403{
afbf30a2
JK
8404 int band, modulation;
8405 int old_mode = priv->ieee->iw_mode;
43f66a6c 8406
afbf30a2
JK
8407 /* Initialize module parameter values here */
8408 priv->config = 0;
43f66a6c 8409
afbf30a2
JK
8410 /* We default to disabling the LED code as right now it causes
8411 * too many systems to lock up... */
8412 if (!led)
8413 priv->config |= CFG_NO_LED;
43f66a6c 8414
afbf30a2
JK
8415 if (associate)
8416 priv->config |= CFG_ASSOCIATE;
8417 else
8418 IPW_DEBUG_INFO("Auto associate disabled.\n");
bf79451e 8419
afbf30a2
JK
8420 if (auto_create)
8421 priv->config |= CFG_ADHOC_CREATE;
8422 else
8423 IPW_DEBUG_INFO("Auto adhoc creation disabled.\n");
43f66a6c 8424
17ed081d
ZY
8425 priv->config &= ~CFG_STATIC_ESSID;
8426 priv->essid_len = 0;
8427 memset(priv->essid, 0, IW_ESSID_MAX_SIZE);
8428
d6d5b5c1 8429 if (disable && option) {
afbf30a2
JK
8430 priv->status |= STATUS_RF_KILL_SW;
8431 IPW_DEBUG_INFO("Radio disabled.\n");
43f66a6c 8432 }
bf79451e 8433
afbf30a2
JK
8434 if (channel != 0) {
8435 priv->config |= CFG_STATIC_CHANNEL;
8436 priv->channel = channel;
8437 IPW_DEBUG_INFO("Bind to static channel %d\n", channel);
8438 /* TODO: Validate that provided channel is in range */
43f66a6c 8439 }
e43e3c1e 8440#ifdef CONFIG_IPW2200_QOS
afbf30a2
JK
8441 ipw_qos_init(priv, qos_enable, qos_burst_enable,
8442 burst_duration_CCK, burst_duration_OFDM);
e43e3c1e 8443#endif /* CONFIG_IPW2200_QOS */
43f66a6c 8444
afbf30a2
JK
8445 switch (mode) {
8446 case 1:
8447 priv->ieee->iw_mode = IW_MODE_ADHOC;
8448 priv->net_dev->type = ARPHRD_ETHER;
8449
8450 break;
8451#ifdef CONFIG_IPW2200_MONITOR
8452 case 2:
8453 priv->ieee->iw_mode = IW_MODE_MONITOR;
459d4087 8454#ifdef CONFIG_IPW2200_RADIOTAP
24a47dbd
MK
8455 priv->net_dev->type = ARPHRD_IEEE80211_RADIOTAP;
8456#else
afbf30a2 8457 priv->net_dev->type = ARPHRD_IEEE80211;
24a47dbd 8458#endif
afbf30a2
JK
8459 break;
8460#endif
8461 default:
8462 case 0:
8463 priv->net_dev->type = ARPHRD_ETHER;
8464 priv->ieee->iw_mode = IW_MODE_INFRA;
8465 break;
43f66a6c
JK
8466 }
8467
afbf30a2
JK
8468 if (hwcrypto) {
8469 priv->ieee->host_encrypt = 0;
8470 priv->ieee->host_encrypt_msdu = 0;
8471 priv->ieee->host_decrypt = 0;
567deaf6 8472 priv->ieee->host_mc_decrypt = 0;
afbf30a2
JK
8473 }
8474 IPW_DEBUG_INFO("Hardware crypto [%s]\n", hwcrypto ? "on" : "off");
43f66a6c 8475
e402c937
ZY
8476 /* IPW2200/2915 is abled to do hardware fragmentation. */
8477 priv->ieee->host_open_frag = 0;
bf79451e 8478
afbf30a2
JK
8479 if ((priv->pci_dev->device == 0x4223) ||
8480 (priv->pci_dev->device == 0x4224)) {
e8c69e27 8481 if (option == 1)
afbf30a2
JK
8482 printk(KERN_INFO DRV_NAME
8483 ": Detected Intel PRO/Wireless 2915ABG Network "
8484 "Connection\n");
8485 priv->ieee->abg_true = 1;
8486 band = IEEE80211_52GHZ_BAND | IEEE80211_24GHZ_BAND;
8487 modulation = IEEE80211_OFDM_MODULATION |
8488 IEEE80211_CCK_MODULATION;
8489 priv->adapter = IPW_2915ABG;
8490 priv->ieee->mode = IEEE_A | IEEE_G | IEEE_B;
43f66a6c 8491 } else {
e8c69e27 8492 if (option == 1)
afbf30a2
JK
8493 printk(KERN_INFO DRV_NAME
8494 ": Detected Intel PRO/Wireless 2200BG Network "
8495 "Connection\n");
bf79451e 8496
afbf30a2
JK
8497 priv->ieee->abg_true = 0;
8498 band = IEEE80211_24GHZ_BAND;
8499 modulation = IEEE80211_OFDM_MODULATION |
8500 IEEE80211_CCK_MODULATION;
8501 priv->adapter = IPW_2200BG;
8502 priv->ieee->mode = IEEE_G | IEEE_B;
43f66a6c
JK
8503 }
8504
afbf30a2
JK
8505 priv->ieee->freq_band = band;
8506 priv->ieee->modulation = modulation;
43f66a6c 8507
afbf30a2 8508 priv->rates_mask = IEEE80211_DEFAULT_RATES_MASK;
bf79451e 8509
afbf30a2
JK
8510 priv->disassociate_threshold = IPW_MB_DISASSOCIATE_THRESHOLD_DEFAULT;
8511 priv->roaming_threshold = IPW_MB_ROAMING_THRESHOLD_DEFAULT;
43f66a6c 8512
afbf30a2
JK
8513 priv->rts_threshold = DEFAULT_RTS_THRESHOLD;
8514 priv->short_retry_limit = DEFAULT_SHORT_RETRY_LIMIT;
8515 priv->long_retry_limit = DEFAULT_LONG_RETRY_LIMIT;
43f66a6c 8516
afbf30a2
JK
8517 /* If power management is turned on, default to AC mode */
8518 priv->power_mode = IPW_POWER_AC;
8519 priv->tx_power = IPW_TX_POWER_DEFAULT;
8520
0ece35b5 8521 return old_mode == priv->ieee->iw_mode;
43f66a6c
JK
8522}
8523
8524/*
8525 * This file defines the Wireless Extension handlers. It does not
8526 * define any methods of hardware manipulation and relies on the
8527 * functions defined in ipw_main to provide the HW interaction.
bf79451e
JG
8528 *
8529 * The exception to this is the use of the ipw_get_ordinal()
43f66a6c
JK
8530 * function used to poll the hardware vs. making unecessary calls.
8531 *
8532 */
8533
bf79451e
JG
8534static int ipw_wx_get_name(struct net_device *dev,
8535 struct iw_request_info *info,
43f66a6c
JK
8536 union iwreq_data *wrqu, char *extra)
8537{
8538 struct ipw_priv *priv = ieee80211_priv(dev);
4644151b 8539 mutex_lock(&priv->mutex);
c848d0af 8540 if (priv->status & STATUS_RF_KILL_MASK)
a613bffd 8541 strcpy(wrqu->name, "radio off");
c848d0af 8542 else if (!(priv->status & STATUS_ASSOCIATED))
43f66a6c 8543 strcpy(wrqu->name, "unassociated");
bf79451e 8544 else
43f66a6c
JK
8545 snprintf(wrqu->name, IFNAMSIZ, "IEEE 802.11%c",
8546 ipw_modes[priv->assoc_request.ieee_mode]);
8547 IPW_DEBUG_WX("Name: %s\n", wrqu->name);
4644151b 8548 mutex_unlock(&priv->mutex);
43f66a6c
JK
8549 return 0;
8550}
8551
8552static int ipw_set_channel(struct ipw_priv *priv, u8 channel)
8553{
8554 if (channel == 0) {
8555 IPW_DEBUG_INFO("Setting channel to ANY (0)\n");
8556 priv->config &= ~CFG_STATIC_CHANNEL;
c848d0af
JK
8557 IPW_DEBUG_ASSOC("Attempting to associate with new "
8558 "parameters.\n");
8559 ipw_associate(priv);
43f66a6c
JK
8560 return 0;
8561 }
8562
8563 priv->config |= CFG_STATIC_CHANNEL;
8564
8565 if (priv->channel == channel) {
0edd5b44
JG
8566 IPW_DEBUG_INFO("Request to set channel to current value (%d)\n",
8567 channel);
43f66a6c
JK
8568 return 0;
8569 }
8570
8571 IPW_DEBUG_INFO("Setting channel to %i\n", (int)channel);
8572 priv->channel = channel;
8573
b095c381
JK
8574#ifdef CONFIG_IPW2200_MONITOR
8575 if (priv->ieee->iw_mode == IW_MODE_MONITOR) {
afbf30a2 8576 int i;
b095c381 8577 if (priv->status & STATUS_SCANNING) {
afbf30a2 8578 IPW_DEBUG_SCAN("Scan abort triggered due to "
b095c381 8579 "channel change.\n");
afbf30a2 8580 ipw_abort_scan(priv);
b095c381
JK
8581 }
8582
8583 for (i = 1000; i && (priv->status & STATUS_SCANNING); i--)
8584 udelay(10);
8585
8586 if (priv->status & STATUS_SCANNING)
8587 IPW_DEBUG_SCAN("Still scanning...\n");
8588 else
8589 IPW_DEBUG_SCAN("Took %dms to abort current scan\n",
8590 1000 - i);
8591
8592 return 0;
43f66a6c 8593 }
b095c381
JK
8594#endif /* CONFIG_IPW2200_MONITOR */
8595
c848d0af
JK
8596 /* Network configuration changed -- force [re]association */
8597 IPW_DEBUG_ASSOC("[re]association triggered due to channel change.\n");
8598 if (!ipw_disassociate(priv))
43f66a6c 8599 ipw_associate(priv);
43f66a6c
JK
8600
8601 return 0;
8602}
8603
bf79451e
JG
8604static int ipw_wx_set_freq(struct net_device *dev,
8605 struct iw_request_info *info,
8606 union iwreq_data *wrqu, char *extra)
43f66a6c
JK
8607{
8608 struct ipw_priv *priv = ieee80211_priv(dev);
1867b117 8609 const struct ieee80211_geo *geo = ieee80211_get_geo(priv->ieee);
43f66a6c 8610 struct iw_freq *fwrq = &wrqu->freq;
afbf30a2 8611 int ret = 0, i;
1fe0adb4
LH
8612 u8 channel, flags;
8613 int band;
b095c381
JK
8614
8615 if (fwrq->m == 0) {
8616 IPW_DEBUG_WX("SET Freq/Channel -> any\n");
4644151b 8617 mutex_lock(&priv->mutex);
b095c381 8618 ret = ipw_set_channel(priv, 0);
4644151b 8619 mutex_unlock(&priv->mutex);
b095c381
JK
8620 return ret;
8621 }
43f66a6c
JK
8622 /* if setting by freq convert to channel */
8623 if (fwrq->e == 1) {
1867b117 8624 channel = ieee80211_freq_to_channel(priv->ieee, fwrq->m);
b095c381
JK
8625 if (channel == 0)
8626 return -EINVAL;
8627 } else
8628 channel = fwrq->m;
bf79451e 8629
1867b117 8630 if (!(band = ieee80211_is_valid_channel(priv->ieee, channel)))
b095c381 8631 return -EINVAL;
43f66a6c 8632
1fe0adb4 8633 if (priv->ieee->iw_mode == IW_MODE_ADHOC) {
1867b117 8634 i = ieee80211_channel_to_index(priv->ieee, channel);
afbf30a2
JK
8635 if (i == -1)
8636 return -EINVAL;
bf79451e 8637
1fe0adb4
LH
8638 flags = (band == IEEE80211_24GHZ_BAND) ?
8639 geo->bg[i].flags : geo->a[i].flags;
8640 if (flags & IEEE80211_CH_PASSIVE_ONLY) {
afbf30a2
JK
8641 IPW_DEBUG_WX("Invalid Ad-Hoc channel for 802.11a\n");
8642 return -EINVAL;
43f66a6c
JK
8643 }
8644 }
bf79451e 8645
43f66a6c 8646 IPW_DEBUG_WX("SET Freq/Channel -> %d \n", fwrq->m);
4644151b 8647 mutex_lock(&priv->mutex);
b095c381 8648 ret = ipw_set_channel(priv, channel);
4644151b 8649 mutex_unlock(&priv->mutex);
c848d0af 8650 return ret;
43f66a6c
JK
8651}
8652
bf79451e
JG
8653static int ipw_wx_get_freq(struct net_device *dev,
8654 struct iw_request_info *info,
43f66a6c
JK
8655 union iwreq_data *wrqu, char *extra)
8656{
8657 struct ipw_priv *priv = ieee80211_priv(dev);
8658
8659 wrqu->freq.e = 0;
8660
8661 /* If we are associated, trying to associate, or have a statically
8662 * configured CHANNEL then return that; otherwise return ANY */
4644151b 8663 mutex_lock(&priv->mutex);
43f66a6c 8664 if (priv->config & CFG_STATIC_CHANNEL ||
c580f67f
ZY
8665 priv->status & (STATUS_ASSOCIATING | STATUS_ASSOCIATED)) {
8666 int i;
8667
8668 i = ieee80211_channel_to_index(priv->ieee, priv->channel);
8669 BUG_ON(i == -1);
8670 wrqu->freq.e = 1;
8671
8672 switch (ieee80211_is_valid_channel(priv->ieee, priv->channel)) {
8673 case IEEE80211_52GHZ_BAND:
8674 wrqu->freq.m = priv->ieee->geo.a[i].freq * 100000;
8675 break;
8676
8677 case IEEE80211_24GHZ_BAND:
8678 wrqu->freq.m = priv->ieee->geo.bg[i].freq * 100000;
8679 break;
8680
8681 default:
8682 BUG();
8683 }
8684 } else
43f66a6c
JK
8685 wrqu->freq.m = 0;
8686
4644151b 8687 mutex_unlock(&priv->mutex);
43f66a6c
JK
8688 IPW_DEBUG_WX("GET Freq/Channel -> %d \n", priv->channel);
8689 return 0;
8690}
8691
bf79451e
JG
8692static int ipw_wx_set_mode(struct net_device *dev,
8693 struct iw_request_info *info,
43f66a6c
JK
8694 union iwreq_data *wrqu, char *extra)
8695{
8696 struct ipw_priv *priv = ieee80211_priv(dev);
8697 int err = 0;
8698
8699 IPW_DEBUG_WX("Set MODE: %d\n", wrqu->mode);
8700
43f66a6c 8701 switch (wrqu->mode) {
b095c381 8702#ifdef CONFIG_IPW2200_MONITOR
43f66a6c
JK
8703 case IW_MODE_MONITOR:
8704#endif
8705 case IW_MODE_ADHOC:
8706 case IW_MODE_INFRA:
8707 break;
8708 case IW_MODE_AUTO:
8709 wrqu->mode = IW_MODE_INFRA;
8710 break;
8711 default:
8712 return -EINVAL;
8713 }
b095c381
JK
8714 if (wrqu->mode == priv->ieee->iw_mode)
8715 return 0;
43f66a6c 8716
4644151b 8717 mutex_lock(&priv->mutex);
43f66a6c 8718
afbf30a2
JK
8719 ipw_sw_reset(priv, 0);
8720
b095c381 8721#ifdef CONFIG_IPW2200_MONITOR
bf79451e 8722 if (priv->ieee->iw_mode == IW_MODE_MONITOR)
43f66a6c 8723 priv->net_dev->type = ARPHRD_ETHER;
bf79451e
JG
8724
8725 if (wrqu->mode == IW_MODE_MONITOR)
459d4087 8726#ifdef CONFIG_IPW2200_RADIOTAP
24a47dbd
MK
8727 priv->net_dev->type = ARPHRD_IEEE80211_RADIOTAP;
8728#else
43f66a6c 8729 priv->net_dev->type = ARPHRD_IEEE80211;
24a47dbd 8730#endif
b095c381 8731#endif /* CONFIG_IPW2200_MONITOR */
bf79451e 8732
bf79451e 8733 /* Free the existing firmware and reset the fw_loaded
43f66a6c 8734 * flag so ipw_load() will bring in the new firmawre */
afbf30a2 8735 free_firmware();
43f66a6c
JK
8736
8737 priv->ieee->iw_mode = wrqu->mode;
bf79451e 8738
c848d0af 8739 queue_work(priv->workqueue, &priv->adapter_restart);
4644151b 8740 mutex_unlock(&priv->mutex);
0edd5b44 8741 return err;
43f66a6c
JK
8742}
8743
bf79451e 8744static int ipw_wx_get_mode(struct net_device *dev,
0edd5b44
JG
8745 struct iw_request_info *info,
8746 union iwreq_data *wrqu, char *extra)
43f66a6c
JK
8747{
8748 struct ipw_priv *priv = ieee80211_priv(dev);
4644151b 8749 mutex_lock(&priv->mutex);
43f66a6c
JK
8750 wrqu->mode = priv->ieee->iw_mode;
8751 IPW_DEBUG_WX("Get MODE -> %d\n", wrqu->mode);
4644151b 8752 mutex_unlock(&priv->mutex);
43f66a6c
JK
8753 return 0;
8754}
8755
43f66a6c
JK
8756/* Values are in microsecond */
8757static const s32 timeout_duration[] = {
8758 350000,
8759 250000,
8760 75000,
8761 37000,
8762 25000,
8763};
8764
8765static const s32 period_duration[] = {
8766 400000,
8767 700000,
8768 1000000,
8769 1000000,
8770 1000000
8771};
8772
bf79451e
JG
8773static int ipw_wx_get_range(struct net_device *dev,
8774 struct iw_request_info *info,
43f66a6c
JK
8775 union iwreq_data *wrqu, char *extra)
8776{
8777 struct ipw_priv *priv = ieee80211_priv(dev);
8778 struct iw_range *range = (struct iw_range *)extra;
1867b117 8779 const struct ieee80211_geo *geo = ieee80211_get_geo(priv->ieee);
b095c381 8780 int i = 0, j;
43f66a6c
JK
8781
8782 wrqu->data.length = sizeof(*range);
8783 memset(range, 0, sizeof(*range));
8784
8785 /* 54Mbs == ~27 Mb/s real (802.11g) */
bf79451e 8786 range->throughput = 27 * 1000 * 1000;
43f66a6c
JK
8787
8788 range->max_qual.qual = 100;
8789 /* TODO: Find real max RSSI and stick here */
8790 range->max_qual.level = 0;
b191608a 8791 range->max_qual.noise = 0;
0edd5b44 8792 range->max_qual.updated = 7; /* Updated all three */
43f66a6c
JK
8793
8794 range->avg_qual.qual = 70;
8795 /* TODO: Find real 'good' to 'bad' threshol value for RSSI */
0edd5b44 8796 range->avg_qual.level = 0; /* FIXME to real average level */
43f66a6c 8797 range->avg_qual.noise = 0;
0edd5b44 8798 range->avg_qual.updated = 7; /* Updated all three */
4644151b 8799 mutex_lock(&priv->mutex);
0edd5b44 8800 range->num_bitrates = min(priv->rates.num_rates, (u8) IW_MAX_BITRATES);
43f66a6c 8801
bf79451e
JG
8802 for (i = 0; i < range->num_bitrates; i++)
8803 range->bitrate[i] = (priv->rates.supported_rates[i] & 0x7F) *
0edd5b44 8804 500000;
bf79451e 8805
43f66a6c
JK
8806 range->max_rts = DEFAULT_RTS_THRESHOLD;
8807 range->min_frag = MIN_FRAG_THRESHOLD;
8808 range->max_frag = MAX_FRAG_THRESHOLD;
8809
8810 range->encoding_size[0] = 5;
bf79451e 8811 range->encoding_size[1] = 13;
43f66a6c
JK
8812 range->num_encoding_sizes = 2;
8813 range->max_encoding_tokens = WEP_KEYS;
8814
8815 /* Set the Wireless Extension versions */
8816 range->we_version_compiled = WIRELESS_EXT;
f1b50863 8817 range->we_version_source = 18;
43f66a6c 8818
b095c381
JK
8819 i = 0;
8820 if (priv->ieee->mode & (IEEE_B | IEEE_G)) {
e815de42
ZY
8821 for (j = 0; j < geo->bg_channels && i < IW_MAX_FREQUENCIES; j++) {
8822 if ((priv->ieee->iw_mode == IW_MODE_ADHOC) &&
8823 (geo->bg[j].flags & IEEE80211_CH_PASSIVE_ONLY))
8824 continue;
8825
b095c381
JK
8826 range->freq[i].i = geo->bg[j].channel;
8827 range->freq[i].m = geo->bg[j].freq * 100000;
8828 range->freq[i].e = 1;
e815de42 8829 i++;
b095c381
JK
8830 }
8831 }
43f66a6c 8832
b095c381 8833 if (priv->ieee->mode & IEEE_A) {
e815de42
ZY
8834 for (j = 0; j < geo->a_channels && i < IW_MAX_FREQUENCIES; j++) {
8835 if ((priv->ieee->iw_mode == IW_MODE_ADHOC) &&
8836 (geo->a[j].flags & IEEE80211_CH_PASSIVE_ONLY))
8837 continue;
8838
b095c381
JK
8839 range->freq[i].i = geo->a[j].channel;
8840 range->freq[i].m = geo->a[j].freq * 100000;
8841 range->freq[i].e = 1;
e815de42 8842 i++;
b095c381 8843 }
43f66a6c 8844 }
b095c381
JK
8845
8846 range->num_channels = i;
8847 range->num_frequency = i;
8848
4644151b 8849 mutex_unlock(&priv->mutex);
97a78ca9
BB
8850
8851 /* Event capability (kernel + driver) */
8852 range->event_capa[0] = (IW_EVENT_CAPA_K_0 |
8853 IW_EVENT_CAPA_MASK(SIOCGIWTHRSPY) |
07f02e46
ZY
8854 IW_EVENT_CAPA_MASK(SIOCGIWAP) |
8855 IW_EVENT_CAPA_MASK(SIOCGIWSCAN));
97a78ca9 8856 range->event_capa[1] = IW_EVENT_CAPA_K_1;
43f66a6c 8857
f1b50863
DW
8858 range->enc_capa = IW_ENC_CAPA_WPA | IW_ENC_CAPA_WPA2 |
8859 IW_ENC_CAPA_CIPHER_TKIP | IW_ENC_CAPA_CIPHER_CCMP;
8860
43f66a6c
JK
8861 IPW_DEBUG_WX("GET Range\n");
8862 return 0;
8863}
8864
bf79451e
JG
8865static int ipw_wx_set_wap(struct net_device *dev,
8866 struct iw_request_info *info,
43f66a6c
JK
8867 union iwreq_data *wrqu, char *extra)
8868{
8869 struct ipw_priv *priv = ieee80211_priv(dev);
8870
8871 static const unsigned char any[] = {
8872 0xff, 0xff, 0xff, 0xff, 0xff, 0xff
8873 };
8874 static const unsigned char off[] = {
8875 0x00, 0x00, 0x00, 0x00, 0x00, 0x00
8876 };
8877
bf79451e 8878 if (wrqu->ap_addr.sa_family != ARPHRD_ETHER)
43f66a6c 8879 return -EINVAL;
4644151b 8880 mutex_lock(&priv->mutex);
43f66a6c
JK
8881 if (!memcmp(any, wrqu->ap_addr.sa_data, ETH_ALEN) ||
8882 !memcmp(off, wrqu->ap_addr.sa_data, ETH_ALEN)) {
8883 /* we disable mandatory BSSID association */
8884 IPW_DEBUG_WX("Setting AP BSSID to ANY\n");
8885 priv->config &= ~CFG_STATIC_BSSID;
c848d0af
JK
8886 IPW_DEBUG_ASSOC("Attempting to associate with new "
8887 "parameters.\n");
8888 ipw_associate(priv);
4644151b 8889 mutex_unlock(&priv->mutex);
43f66a6c
JK
8890 return 0;
8891 }
8892
8893 priv->config |= CFG_STATIC_BSSID;
8894 if (!memcmp(priv->bssid, wrqu->ap_addr.sa_data, ETH_ALEN)) {
8895 IPW_DEBUG_WX("BSSID set to current BSSID.\n");
4644151b 8896 mutex_unlock(&priv->mutex);
43f66a6c
JK
8897 return 0;
8898 }
8899
8900 IPW_DEBUG_WX("Setting mandatory BSSID to " MAC_FMT "\n",
8901 MAC_ARG(wrqu->ap_addr.sa_data));
8902
8903 memcpy(priv->bssid, wrqu->ap_addr.sa_data, ETH_ALEN);
8904
c848d0af
JK
8905 /* Network configuration changed -- force [re]association */
8906 IPW_DEBUG_ASSOC("[re]association triggered due to BSSID change.\n");
8907 if (!ipw_disassociate(priv))
43f66a6c 8908 ipw_associate(priv);
43f66a6c 8909
4644151b 8910 mutex_unlock(&priv->mutex);
43f66a6c
JK
8911 return 0;
8912}
8913
bf79451e
JG
8914static int ipw_wx_get_wap(struct net_device *dev,
8915 struct iw_request_info *info,
43f66a6c
JK
8916 union iwreq_data *wrqu, char *extra)
8917{
8918 struct ipw_priv *priv = ieee80211_priv(dev);
8919 /* If we are associated, trying to associate, or have a statically
8920 * configured BSSID then return that; otherwise return ANY */
4644151b 8921 mutex_lock(&priv->mutex);
bf79451e 8922 if (priv->config & CFG_STATIC_BSSID ||
43f66a6c
JK
8923 priv->status & (STATUS_ASSOCIATED | STATUS_ASSOCIATING)) {
8924 wrqu->ap_addr.sa_family = ARPHRD_ETHER;
afbf30a2 8925 memcpy(wrqu->ap_addr.sa_data, priv->bssid, ETH_ALEN);
43f66a6c
JK
8926 } else
8927 memset(wrqu->ap_addr.sa_data, 0, ETH_ALEN);
8928
8929 IPW_DEBUG_WX("Getting WAP BSSID: " MAC_FMT "\n",
8930 MAC_ARG(wrqu->ap_addr.sa_data));
4644151b 8931 mutex_unlock(&priv->mutex);
43f66a6c
JK
8932 return 0;
8933}
8934
bf79451e
JG
8935static int ipw_wx_set_essid(struct net_device *dev,
8936 struct iw_request_info *info,
43f66a6c
JK
8937 union iwreq_data *wrqu, char *extra)
8938{
8939 struct ipw_priv *priv = ieee80211_priv(dev);
ab644b0b
ZY
8940 int length;
8941
8942 mutex_lock(&priv->mutex);
43f66a6c 8943
ab644b0b
ZY
8944 if (!wrqu->essid.flags)
8945 {
8946 IPW_DEBUG_WX("Setting ESSID to ANY\n");
8947 ipw_disassociate(priv);
8948 priv->config &= ~CFG_STATIC_ESSID;
8949 ipw_associate(priv);
8950 mutex_unlock(&priv->mutex);
8951 return 0;
8952 }
43f66a6c 8953
a9f0d423 8954 length = min((int)wrqu->essid.length, IW_ESSID_MAX_SIZE);
43f66a6c
JK
8955
8956 priv->config |= CFG_STATIC_ESSID;
8957
a9f0d423
ZY
8958 if (priv->essid_len == length && !memcmp(priv->essid, extra, length)
8959 && (priv->status & (STATUS_ASSOCIATED | STATUS_ASSOCIATING))) {
43f66a6c 8960 IPW_DEBUG_WX("ESSID set to current ESSID.\n");
4644151b 8961 mutex_unlock(&priv->mutex);
43f66a6c
JK
8962 return 0;
8963 }
8964
ab644b0b 8965 IPW_DEBUG_WX("Setting ESSID: '%s' (%d)\n", escape_essid(extra, length),
43f66a6c
JK
8966 length);
8967
8968 priv->essid_len = length;
a9f0d423 8969 memcpy(priv->essid, extra, priv->essid_len);
bf79451e 8970
c848d0af
JK
8971 /* Network configuration changed -- force [re]association */
8972 IPW_DEBUG_ASSOC("[re]association triggered due to ESSID change.\n");
8973 if (!ipw_disassociate(priv))
43f66a6c 8974 ipw_associate(priv);
43f66a6c 8975
4644151b 8976 mutex_unlock(&priv->mutex);
43f66a6c
JK
8977 return 0;
8978}
8979
bf79451e
JG
8980static int ipw_wx_get_essid(struct net_device *dev,
8981 struct iw_request_info *info,
43f66a6c
JK
8982 union iwreq_data *wrqu, char *extra)
8983{
8984 struct ipw_priv *priv = ieee80211_priv(dev);
8985
8986 /* If we are associated, trying to associate, or have a statically
8987 * configured ESSID then return that; otherwise return ANY */
4644151b 8988 mutex_lock(&priv->mutex);
43f66a6c 8989 if (priv->config & CFG_STATIC_ESSID ||
bf79451e
JG
8990 priv->status & (STATUS_ASSOCIATED | STATUS_ASSOCIATING)) {
8991 IPW_DEBUG_WX("Getting essid: '%s'\n",
43f66a6c 8992 escape_essid(priv->essid, priv->essid_len));
bf79451e 8993 memcpy(extra, priv->essid, priv->essid_len);
43f66a6c 8994 wrqu->essid.length = priv->essid_len;
0edd5b44 8995 wrqu->essid.flags = 1; /* active */
43f66a6c
JK
8996 } else {
8997 IPW_DEBUG_WX("Getting essid: ANY\n");
8998 wrqu->essid.length = 0;
0edd5b44 8999 wrqu->essid.flags = 0; /* active */
43f66a6c 9000 }
4644151b 9001 mutex_unlock(&priv->mutex);
43f66a6c
JK
9002 return 0;
9003}
9004
bf79451e
JG
9005static int ipw_wx_set_nick(struct net_device *dev,
9006 struct iw_request_info *info,
43f66a6c 9007 union iwreq_data *wrqu, char *extra)
bf79451e 9008{
43f66a6c
JK
9009 struct ipw_priv *priv = ieee80211_priv(dev);
9010
9011 IPW_DEBUG_WX("Setting nick to '%s'\n", extra);
9012 if (wrqu->data.length > IW_ESSID_MAX_SIZE)
9013 return -E2BIG;
4644151b 9014 mutex_lock(&priv->mutex);
0edd5b44 9015 wrqu->data.length = min((size_t) wrqu->data.length, sizeof(priv->nick));
43f66a6c 9016 memset(priv->nick, 0, sizeof(priv->nick));
0edd5b44 9017 memcpy(priv->nick, extra, wrqu->data.length);
43f66a6c 9018 IPW_DEBUG_TRACE("<<\n");
4644151b 9019 mutex_unlock(&priv->mutex);
43f66a6c
JK
9020 return 0;
9021
9022}
9023
bf79451e
JG
9024static int ipw_wx_get_nick(struct net_device *dev,
9025 struct iw_request_info *info,
43f66a6c 9026 union iwreq_data *wrqu, char *extra)
bf79451e 9027{
43f66a6c
JK
9028 struct ipw_priv *priv = ieee80211_priv(dev);
9029 IPW_DEBUG_WX("Getting nick\n");
4644151b 9030 mutex_lock(&priv->mutex);
919ee6dd 9031 wrqu->data.length = strlen(priv->nick);
43f66a6c 9032 memcpy(extra, priv->nick, wrqu->data.length);
0edd5b44 9033 wrqu->data.flags = 1; /* active */
4644151b 9034 mutex_unlock(&priv->mutex);
43f66a6c
JK
9035 return 0;
9036}
9037
651be26f
OH
9038static int ipw_wx_set_sens(struct net_device *dev,
9039 struct iw_request_info *info,
9040 union iwreq_data *wrqu, char *extra)
9041{
9042 struct ipw_priv *priv = ieee80211_priv(dev);
9043 int err = 0;
9044
9045 IPW_DEBUG_WX("Setting roaming threshold to %d\n", wrqu->sens.value);
9046 IPW_DEBUG_WX("Setting disassociate threshold to %d\n", 3*wrqu->sens.value);
9047 mutex_lock(&priv->mutex);
9048
9049 if (wrqu->sens.fixed == 0)
9050 {
9051 priv->roaming_threshold = IPW_MB_ROAMING_THRESHOLD_DEFAULT;
9052 priv->disassociate_threshold = IPW_MB_DISASSOCIATE_THRESHOLD_DEFAULT;
9053 goto out;
9054 }
9055 if ((wrqu->sens.value > IPW_MB_ROAMING_THRESHOLD_MAX) ||
9056 (wrqu->sens.value < IPW_MB_ROAMING_THRESHOLD_MIN)) {
9057 err = -EINVAL;
9058 goto out;
9059 }
9060
9061 priv->roaming_threshold = wrqu->sens.value;
9062 priv->disassociate_threshold = 3*wrqu->sens.value;
9063 out:
9064 mutex_unlock(&priv->mutex);
9065 return err;
9066}
9067
9068static int ipw_wx_get_sens(struct net_device *dev,
9069 struct iw_request_info *info,
9070 union iwreq_data *wrqu, char *extra)
9071{
9072 struct ipw_priv *priv = ieee80211_priv(dev);
9073 mutex_lock(&priv->mutex);
9074 wrqu->sens.fixed = 1;
9075 wrqu->sens.value = priv->roaming_threshold;
9076 mutex_unlock(&priv->mutex);
9077
9078 IPW_DEBUG_WX("GET roaming threshold -> %s %d \n",
9079 wrqu->power.disabled ? "OFF" : "ON", wrqu->power.value);
9080
9081 return 0;
9082}
9083
43f66a6c
JK
9084static int ipw_wx_set_rate(struct net_device *dev,
9085 struct iw_request_info *info,
9086 union iwreq_data *wrqu, char *extra)
bf79451e 9087{
ea2b26e0
JK
9088 /* TODO: We should use semaphores or locks for access to priv */
9089 struct ipw_priv *priv = ieee80211_priv(dev);
9090 u32 target_rate = wrqu->bitrate.value;
9091 u32 fixed, mask;
9092
9093 /* value = -1, fixed = 0 means auto only, so we should use all rates offered by AP */
9094 /* value = X, fixed = 1 means only rate X */
9095 /* value = X, fixed = 0 means all rates lower equal X */
9096
9097 if (target_rate == -1) {
9098 fixed = 0;
9099 mask = IEEE80211_DEFAULT_RATES_MASK;
9100 /* Now we should reassociate */
9101 goto apply;
9102 }
9103
9104 mask = 0;
9105 fixed = wrqu->bitrate.fixed;
9106
9107 if (target_rate == 1000000 || !fixed)
9108 mask |= IEEE80211_CCK_RATE_1MB_MASK;
9109 if (target_rate == 1000000)
9110 goto apply;
9111
9112 if (target_rate == 2000000 || !fixed)
9113 mask |= IEEE80211_CCK_RATE_2MB_MASK;
9114 if (target_rate == 2000000)
9115 goto apply;
9116
9117 if (target_rate == 5500000 || !fixed)
9118 mask |= IEEE80211_CCK_RATE_5MB_MASK;
9119 if (target_rate == 5500000)
9120 goto apply;
9121
9122 if (target_rate == 6000000 || !fixed)
9123 mask |= IEEE80211_OFDM_RATE_6MB_MASK;
9124 if (target_rate == 6000000)
9125 goto apply;
9126
9127 if (target_rate == 9000000 || !fixed)
9128 mask |= IEEE80211_OFDM_RATE_9MB_MASK;
9129 if (target_rate == 9000000)
9130 goto apply;
9131
9132 if (target_rate == 11000000 || !fixed)
9133 mask |= IEEE80211_CCK_RATE_11MB_MASK;
9134 if (target_rate == 11000000)
9135 goto apply;
9136
9137 if (target_rate == 12000000 || !fixed)
9138 mask |= IEEE80211_OFDM_RATE_12MB_MASK;
9139 if (target_rate == 12000000)
9140 goto apply;
9141
9142 if (target_rate == 18000000 || !fixed)
9143 mask |= IEEE80211_OFDM_RATE_18MB_MASK;
9144 if (target_rate == 18000000)
9145 goto apply;
9146
9147 if (target_rate == 24000000 || !fixed)
9148 mask |= IEEE80211_OFDM_RATE_24MB_MASK;
9149 if (target_rate == 24000000)
9150 goto apply;
9151
9152 if (target_rate == 36000000 || !fixed)
9153 mask |= IEEE80211_OFDM_RATE_36MB_MASK;
9154 if (target_rate == 36000000)
9155 goto apply;
9156
9157 if (target_rate == 48000000 || !fixed)
9158 mask |= IEEE80211_OFDM_RATE_48MB_MASK;
9159 if (target_rate == 48000000)
9160 goto apply;
9161
9162 if (target_rate == 54000000 || !fixed)
9163 mask |= IEEE80211_OFDM_RATE_54MB_MASK;
9164 if (target_rate == 54000000)
9165 goto apply;
9166
9167 IPW_DEBUG_WX("invalid rate specified, returning error\n");
9168 return -EINVAL;
9169
9170 apply:
9171 IPW_DEBUG_WX("Setting rate mask to 0x%08X [%s]\n",
9172 mask, fixed ? "fixed" : "sub-rates");
4644151b 9173 mutex_lock(&priv->mutex);
b095c381 9174 if (mask == IEEE80211_DEFAULT_RATES_MASK) {
ea2b26e0 9175 priv->config &= ~CFG_FIXED_RATE;
b095c381
JK
9176 ipw_set_fixed_rate(priv, priv->ieee->mode);
9177 } else
ea2b26e0
JK
9178 priv->config |= CFG_FIXED_RATE;
9179
c848d0af
JK
9180 if (priv->rates_mask == mask) {
9181 IPW_DEBUG_WX("Mask set to current mask.\n");
4644151b 9182 mutex_unlock(&priv->mutex);
c848d0af 9183 return 0;
ea2b26e0
JK
9184 }
9185
c848d0af
JK
9186 priv->rates_mask = mask;
9187
9188 /* Network configuration changed -- force [re]association */
9189 IPW_DEBUG_ASSOC("[re]association triggered due to rates change.\n");
9190 if (!ipw_disassociate(priv))
9191 ipw_associate(priv);
9192
4644151b 9193 mutex_unlock(&priv->mutex);
ea2b26e0 9194 return 0;
43f66a6c
JK
9195}
9196
bf79451e
JG
9197static int ipw_wx_get_rate(struct net_device *dev,
9198 struct iw_request_info *info,
43f66a6c 9199 union iwreq_data *wrqu, char *extra)
bf79451e 9200{
0edd5b44 9201 struct ipw_priv *priv = ieee80211_priv(dev);
4644151b 9202 mutex_lock(&priv->mutex);
43f66a6c 9203 wrqu->bitrate.value = priv->last_rate;
455936c7 9204 wrqu->bitrate.fixed = (priv->config & CFG_FIXED_RATE) ? 1 : 0;
4644151b 9205 mutex_unlock(&priv->mutex);
43f66a6c
JK
9206 IPW_DEBUG_WX("GET Rate -> %d \n", wrqu->bitrate.value);
9207 return 0;
9208}
9209
bf79451e
JG
9210static int ipw_wx_set_rts(struct net_device *dev,
9211 struct iw_request_info *info,
43f66a6c 9212 union iwreq_data *wrqu, char *extra)
bf79451e 9213{
43f66a6c 9214 struct ipw_priv *priv = ieee80211_priv(dev);
4644151b 9215 mutex_lock(&priv->mutex);
ea8862dc 9216 if (wrqu->rts.disabled || !wrqu->rts.fixed)
43f66a6c
JK
9217 priv->rts_threshold = DEFAULT_RTS_THRESHOLD;
9218 else {
9219 if (wrqu->rts.value < MIN_RTS_THRESHOLD ||
c848d0af 9220 wrqu->rts.value > MAX_RTS_THRESHOLD) {
4644151b 9221 mutex_unlock(&priv->mutex);
43f66a6c 9222 return -EINVAL;
c848d0af 9223 }
43f66a6c
JK
9224 priv->rts_threshold = wrqu->rts.value;
9225 }
9226
9227 ipw_send_rts_threshold(priv, priv->rts_threshold);
4644151b 9228 mutex_unlock(&priv->mutex);
43f66a6c
JK
9229 IPW_DEBUG_WX("SET RTS Threshold -> %d \n", priv->rts_threshold);
9230 return 0;
9231}
9232
bf79451e
JG
9233static int ipw_wx_get_rts(struct net_device *dev,
9234 struct iw_request_info *info,
43f66a6c 9235 union iwreq_data *wrqu, char *extra)
bf79451e 9236{
43f66a6c 9237 struct ipw_priv *priv = ieee80211_priv(dev);
4644151b 9238 mutex_lock(&priv->mutex);
43f66a6c
JK
9239 wrqu->rts.value = priv->rts_threshold;
9240 wrqu->rts.fixed = 0; /* no auto select */
0edd5b44 9241 wrqu->rts.disabled = (wrqu->rts.value == DEFAULT_RTS_THRESHOLD);
4644151b 9242 mutex_unlock(&priv->mutex);
43f66a6c
JK
9243 IPW_DEBUG_WX("GET RTS Threshold -> %d \n", wrqu->rts.value);
9244 return 0;
9245}
9246
bf79451e
JG
9247static int ipw_wx_set_txpow(struct net_device *dev,
9248 struct iw_request_info *info,
43f66a6c 9249 union iwreq_data *wrqu, char *extra)
bf79451e 9250{
43f66a6c 9251 struct ipw_priv *priv = ieee80211_priv(dev);
6de9f7f2 9252 int err = 0;
43f66a6c 9253
4644151b 9254 mutex_lock(&priv->mutex);
c848d0af 9255 if (ipw_radio_kill_sw(priv, wrqu->power.disabled)) {
6de9f7f2
ZY
9256 err = -EINPROGRESS;
9257 goto out;
43f66a6c 9258 }
43f66a6c 9259
b095c381
JK
9260 if (!wrqu->power.fixed)
9261 wrqu->power.value = IPW_TX_POWER_DEFAULT;
9262
c848d0af 9263 if (wrqu->power.flags != IW_TXPOW_DBM) {
6de9f7f2
ZY
9264 err = -EINVAL;
9265 goto out;
c848d0af 9266 }
43f66a6c 9267
b095c381 9268 if ((wrqu->power.value > IPW_TX_POWER_MAX) ||
afbf30a2 9269 (wrqu->power.value < IPW_TX_POWER_MIN)) {
6de9f7f2
ZY
9270 err = -EINVAL;
9271 goto out;
c848d0af 9272 }
43f66a6c 9273
43f66a6c 9274 priv->tx_power = wrqu->power.value;
6de9f7f2
ZY
9275 err = ipw_set_tx_power(priv);
9276 out:
4644151b 9277 mutex_unlock(&priv->mutex);
6de9f7f2 9278 return err;
43f66a6c
JK
9279}
9280
bf79451e
JG
9281static int ipw_wx_get_txpow(struct net_device *dev,
9282 struct iw_request_info *info,
43f66a6c 9283 union iwreq_data *wrqu, char *extra)
bf79451e 9284{
43f66a6c 9285 struct ipw_priv *priv = ieee80211_priv(dev);
4644151b 9286 mutex_lock(&priv->mutex);
43f66a6c
JK
9287 wrqu->power.value = priv->tx_power;
9288 wrqu->power.fixed = 1;
9289 wrqu->power.flags = IW_TXPOW_DBM;
9290 wrqu->power.disabled = (priv->status & STATUS_RF_KILL_MASK) ? 1 : 0;
4644151b 9291 mutex_unlock(&priv->mutex);
43f66a6c 9292
bf79451e 9293 IPW_DEBUG_WX("GET TX Power -> %s %d \n",
22501c8e 9294 wrqu->power.disabled ? "OFF" : "ON", wrqu->power.value);
43f66a6c
JK
9295
9296 return 0;
9297}
9298
bf79451e 9299static int ipw_wx_set_frag(struct net_device *dev,
0edd5b44
JG
9300 struct iw_request_info *info,
9301 union iwreq_data *wrqu, char *extra)
43f66a6c
JK
9302{
9303 struct ipw_priv *priv = ieee80211_priv(dev);
4644151b 9304 mutex_lock(&priv->mutex);
ea8862dc 9305 if (wrqu->frag.disabled || !wrqu->frag.fixed)
43f66a6c
JK
9306 priv->ieee->fts = DEFAULT_FTS;
9307 else {
9308 if (wrqu->frag.value < MIN_FRAG_THRESHOLD ||
b095c381 9309 wrqu->frag.value > MAX_FRAG_THRESHOLD) {
4644151b 9310 mutex_unlock(&priv->mutex);
43f66a6c 9311 return -EINVAL;
b095c381 9312 }
bf79451e 9313
43f66a6c
JK
9314 priv->ieee->fts = wrqu->frag.value & ~0x1;
9315 }
9316
9317 ipw_send_frag_threshold(priv, wrqu->frag.value);
4644151b 9318 mutex_unlock(&priv->mutex);
43f66a6c
JK
9319 IPW_DEBUG_WX("SET Frag Threshold -> %d \n", wrqu->frag.value);
9320 return 0;
9321}
9322
bf79451e 9323static int ipw_wx_get_frag(struct net_device *dev,
0edd5b44
JG
9324 struct iw_request_info *info,
9325 union iwreq_data *wrqu, char *extra)
43f66a6c
JK
9326{
9327 struct ipw_priv *priv = ieee80211_priv(dev);
4644151b 9328 mutex_lock(&priv->mutex);
43f66a6c
JK
9329 wrqu->frag.value = priv->ieee->fts;
9330 wrqu->frag.fixed = 0; /* no auto select */
0edd5b44 9331 wrqu->frag.disabled = (wrqu->frag.value == DEFAULT_FTS);
4644151b 9332 mutex_unlock(&priv->mutex);
43f66a6c
JK
9333 IPW_DEBUG_WX("GET Frag Threshold -> %d \n", wrqu->frag.value);
9334
9335 return 0;
9336}
9337
bf79451e
JG
9338static int ipw_wx_set_retry(struct net_device *dev,
9339 struct iw_request_info *info,
43f66a6c 9340 union iwreq_data *wrqu, char *extra)
bf79451e 9341{
afbf30a2
JK
9342 struct ipw_priv *priv = ieee80211_priv(dev);
9343
9344 if (wrqu->retry.flags & IW_RETRY_LIFETIME || wrqu->retry.disabled)
9345 return -EINVAL;
9346
9347 if (!(wrqu->retry.flags & IW_RETRY_LIMIT))
9348 return 0;
9349
d5f7ac20 9350 if (wrqu->retry.value < 0 || wrqu->retry.value >= 255)
afbf30a2
JK
9351 return -EINVAL;
9352
4644151b 9353 mutex_lock(&priv->mutex);
919ee6dd 9354 if (wrqu->retry.flags & IW_RETRY_SHORT)
afbf30a2 9355 priv->short_retry_limit = (u8) wrqu->retry.value;
919ee6dd 9356 else if (wrqu->retry.flags & IW_RETRY_LONG)
afbf30a2
JK
9357 priv->long_retry_limit = (u8) wrqu->retry.value;
9358 else {
9359 priv->short_retry_limit = (u8) wrqu->retry.value;
9360 priv->long_retry_limit = (u8) wrqu->retry.value;
9361 }
9362
9363 ipw_send_retry_limit(priv, priv->short_retry_limit,
9364 priv->long_retry_limit);
4644151b 9365 mutex_unlock(&priv->mutex);
afbf30a2
JK
9366 IPW_DEBUG_WX("SET retry limit -> short:%d long:%d\n",
9367 priv->short_retry_limit, priv->long_retry_limit);
9368 return 0;
43f66a6c
JK
9369}
9370
bf79451e
JG
9371static int ipw_wx_get_retry(struct net_device *dev,
9372 struct iw_request_info *info,
43f66a6c 9373 union iwreq_data *wrqu, char *extra)
bf79451e 9374{
afbf30a2
JK
9375 struct ipw_priv *priv = ieee80211_priv(dev);
9376
4644151b 9377 mutex_lock(&priv->mutex);
afbf30a2
JK
9378 wrqu->retry.disabled = 0;
9379
9380 if ((wrqu->retry.flags & IW_RETRY_TYPE) == IW_RETRY_LIFETIME) {
4644151b 9381 mutex_unlock(&priv->mutex);
afbf30a2
JK
9382 return -EINVAL;
9383 }
9384
919ee6dd
JT
9385 if (wrqu->retry.flags & IW_RETRY_LONG) {
9386 wrqu->retry.flags = IW_RETRY_LIMIT | IW_RETRY_LONG;
afbf30a2 9387 wrqu->retry.value = priv->long_retry_limit;
919ee6dd
JT
9388 } else if (wrqu->retry.flags & IW_RETRY_SHORT) {
9389 wrqu->retry.flags = IW_RETRY_LIMIT | IW_RETRY_SHORT;
afbf30a2
JK
9390 wrqu->retry.value = priv->short_retry_limit;
9391 } else {
9392 wrqu->retry.flags = IW_RETRY_LIMIT;
9393 wrqu->retry.value = priv->short_retry_limit;
9394 }
4644151b 9395 mutex_unlock(&priv->mutex);
afbf30a2
JK
9396
9397 IPW_DEBUG_WX("GET retry -> %d \n", wrqu->retry.value);
9398
9399 return 0;
9400}
9401
afbf30a2
JK
9402static int ipw_request_direct_scan(struct ipw_priv *priv, char *essid,
9403 int essid_len)
9404{
9405 struct ipw_scan_request_ext scan;
9406 int err = 0, scan_type;
9407
efb3442c
PE
9408 if (!(priv->status & STATUS_INIT) ||
9409 (priv->status & STATUS_EXIT_PENDING))
9410 return 0;
9411
4644151b 9412 mutex_lock(&priv->mutex);
afbf30a2
JK
9413
9414 if (priv->status & STATUS_RF_KILL_MASK) {
9415 IPW_DEBUG_HC("Aborting scan due to RF kill activation\n");
9416 priv->status |= STATUS_SCAN_PENDING;
9417 goto done;
9418 }
9419
9420 IPW_DEBUG_HC("starting request direct scan!\n");
9421
9422 if (priv->status & (STATUS_SCANNING | STATUS_SCAN_ABORTING)) {
d834a41c
OK
9423 /* We should not sleep here; otherwise we will block most
9424 * of the system (for instance, we hold rtnl_lock when we
9425 * get here).
9426 */
9427 err = -EAGAIN;
9428 goto done;
afbf30a2
JK
9429 }
9430 memset(&scan, 0, sizeof(scan));
9431
9432 if (priv->config & CFG_SPEED_SCAN)
9433 scan.dwell_time[IPW_SCAN_ACTIVE_BROADCAST_SCAN] =
9434 cpu_to_le16(30);
9435 else
9436 scan.dwell_time[IPW_SCAN_ACTIVE_BROADCAST_SCAN] =
9437 cpu_to_le16(20);
9438
9439 scan.dwell_time[IPW_SCAN_ACTIVE_BROADCAST_AND_DIRECT_SCAN] =
9440 cpu_to_le16(20);
1fe0adb4 9441 scan.dwell_time[IPW_SCAN_PASSIVE_FULL_DWELL_SCAN] = cpu_to_le16(120);
afbf30a2
JK
9442 scan.dwell_time[IPW_SCAN_ACTIVE_DIRECT_SCAN] = cpu_to_le16(20);
9443
9444 scan.full_scan_index = cpu_to_le32(ieee80211_get_scans(priv->ieee));
9445
9446 err = ipw_send_ssid(priv, essid, essid_len);
9447 if (err) {
9448 IPW_DEBUG_HC("Attempt to send SSID command failed\n");
9449 goto done;
9450 }
9451 scan_type = IPW_SCAN_ACTIVE_BROADCAST_AND_DIRECT_SCAN;
9452
9453 ipw_add_scan_channels(priv, &scan, scan_type);
9454
9455 err = ipw_send_scan_request_ext(priv, &scan);
9456 if (err) {
9457 IPW_DEBUG_HC("Sending scan command failed: %08X\n", err);
9458 goto done;
9459 }
9460
9461 priv->status |= STATUS_SCANNING;
9462
9463 done:
4644151b 9464 mutex_unlock(&priv->mutex);
afbf30a2 9465 return err;
43f66a6c
JK
9466}
9467
bf79451e
JG
9468static int ipw_wx_set_scan(struct net_device *dev,
9469 struct iw_request_info *info,
43f66a6c
JK
9470 union iwreq_data *wrqu, char *extra)
9471{
9472 struct ipw_priv *priv = ieee80211_priv(dev);
094c4d2d
ZY
9473 struct iw_scan_req *req = (struct iw_scan_req *)extra;
9474
9475 if (wrqu->data.length == sizeof(struct iw_scan_req)) {
afbf30a2
JK
9476 if (wrqu->data.flags & IW_SCAN_THIS_ESSID) {
9477 ipw_request_direct_scan(priv, req->essid,
9478 req->essid_len);
9479 return 0;
9480 }
094c4d2d
ZY
9481 if (req->scan_type == IW_SCAN_TYPE_PASSIVE) {
9482 queue_work(priv->workqueue,
9483 &priv->request_passive_scan);
9484 return 0;
9485 }
afbf30a2 9486 }
8935f39e 9487
43f66a6c 9488 IPW_DEBUG_WX("Start scan\n");
b095c381 9489
c4028958 9490 queue_delayed_work(priv->workqueue, &priv->request_scan, 0);
b095c381 9491
43f66a6c
JK
9492 return 0;
9493}
9494
bf79451e
JG
9495static int ipw_wx_get_scan(struct net_device *dev,
9496 struct iw_request_info *info,
43f66a6c 9497 union iwreq_data *wrqu, char *extra)
bf79451e 9498{
43f66a6c
JK
9499 struct ipw_priv *priv = ieee80211_priv(dev);
9500 return ieee80211_wx_get_scan(priv->ieee, info, wrqu, extra);
9501}
9502
bf79451e 9503static int ipw_wx_set_encode(struct net_device *dev,
0edd5b44
JG
9504 struct iw_request_info *info,
9505 union iwreq_data *wrqu, char *key)
43f66a6c
JK
9506{
9507 struct ipw_priv *priv = ieee80211_priv(dev);
afbf30a2 9508 int ret;
caeff81b 9509 u32 cap = priv->capability;
afbf30a2 9510
4644151b 9511 mutex_lock(&priv->mutex);
afbf30a2 9512 ret = ieee80211_wx_set_encode(priv->ieee, info, wrqu, key);
afbf30a2 9513
caeff81b
HL
9514 /* In IBSS mode, we need to notify the firmware to update
9515 * the beacon info after we changed the capability. */
9516 if (cap != priv->capability &&
9517 priv->ieee->iw_mode == IW_MODE_ADHOC &&
9518 priv->status & STATUS_ASSOCIATED)
9519 ipw_disassociate(priv);
9520
4644151b 9521 mutex_unlock(&priv->mutex);
afbf30a2 9522 return ret;
43f66a6c
JK
9523}
9524
bf79451e 9525static int ipw_wx_get_encode(struct net_device *dev,
0edd5b44
JG
9526 struct iw_request_info *info,
9527 union iwreq_data *wrqu, char *key)
43f66a6c
JK
9528{
9529 struct ipw_priv *priv = ieee80211_priv(dev);
9530 return ieee80211_wx_get_encode(priv->ieee, info, wrqu, key);
9531}
9532
bf79451e 9533static int ipw_wx_set_power(struct net_device *dev,
0edd5b44
JG
9534 struct iw_request_info *info,
9535 union iwreq_data *wrqu, char *extra)
43f66a6c
JK
9536{
9537 struct ipw_priv *priv = ieee80211_priv(dev);
9538 int err;
4644151b 9539 mutex_lock(&priv->mutex);
43f66a6c
JK
9540 if (wrqu->power.disabled) {
9541 priv->power_mode = IPW_POWER_LEVEL(priv->power_mode);
9542 err = ipw_send_power_mode(priv, IPW_POWER_MODE_CAM);
9543 if (err) {
9544 IPW_DEBUG_WX("failed setting power mode.\n");
4644151b 9545 mutex_unlock(&priv->mutex);
43f66a6c
JK
9546 return err;
9547 }
43f66a6c 9548 IPW_DEBUG_WX("SET Power Management Mode -> off\n");
4644151b 9549 mutex_unlock(&priv->mutex);
43f66a6c 9550 return 0;
bf79451e 9551 }
43f66a6c
JK
9552
9553 switch (wrqu->power.flags & IW_POWER_MODE) {
0edd5b44
JG
9554 case IW_POWER_ON: /* If not specified */
9555 case IW_POWER_MODE: /* If set all mask */
9556 case IW_POWER_ALL_R: /* If explicitely state all */
43f66a6c 9557 break;
0edd5b44 9558 default: /* Otherwise we don't support it */
43f66a6c
JK
9559 IPW_DEBUG_WX("SET PM Mode: %X not supported.\n",
9560 wrqu->power.flags);
4644151b 9561 mutex_unlock(&priv->mutex);
bf79451e 9562 return -EOPNOTSUPP;
43f66a6c 9563 }
bf79451e 9564
43f66a6c
JK
9565 /* If the user hasn't specified a power management mode yet, default
9566 * to BATTERY */
0edd5b44 9567 if (IPW_POWER_LEVEL(priv->power_mode) == IPW_POWER_AC)
43f66a6c 9568 priv->power_mode = IPW_POWER_ENABLED | IPW_POWER_BATTERY;
bf79451e 9569 else
43f66a6c 9570 priv->power_mode = IPW_POWER_ENABLED | priv->power_mode;
4e157f08 9571
43f66a6c
JK
9572 err = ipw_send_power_mode(priv, IPW_POWER_LEVEL(priv->power_mode));
9573 if (err) {
9574 IPW_DEBUG_WX("failed setting power mode.\n");
4644151b 9575 mutex_unlock(&priv->mutex);
43f66a6c
JK
9576 return err;
9577 }
9578
0edd5b44 9579 IPW_DEBUG_WX("SET Power Management Mode -> 0x%02X\n", priv->power_mode);
4644151b 9580 mutex_unlock(&priv->mutex);
43f66a6c
JK
9581 return 0;
9582}
9583
bf79451e 9584static int ipw_wx_get_power(struct net_device *dev,
0edd5b44
JG
9585 struct iw_request_info *info,
9586 union iwreq_data *wrqu, char *extra)
43f66a6c
JK
9587{
9588 struct ipw_priv *priv = ieee80211_priv(dev);
4644151b 9589 mutex_lock(&priv->mutex);
a613bffd 9590 if (!(priv->power_mode & IPW_POWER_ENABLED))
43f66a6c 9591 wrqu->power.disabled = 1;
a613bffd 9592 else
43f66a6c 9593 wrqu->power.disabled = 0;
43f66a6c 9594
4644151b 9595 mutex_unlock(&priv->mutex);
43f66a6c 9596 IPW_DEBUG_WX("GET Power Management Mode -> %02X\n", priv->power_mode);
bf79451e 9597
43f66a6c
JK
9598 return 0;
9599}
9600
bf79451e 9601static int ipw_wx_set_powermode(struct net_device *dev,
0edd5b44
JG
9602 struct iw_request_info *info,
9603 union iwreq_data *wrqu, char *extra)
43f66a6c
JK
9604{
9605 struct ipw_priv *priv = ieee80211_priv(dev);
9606 int mode = *(int *)extra;
9607 int err;
4e157f08 9608
4644151b 9609 mutex_lock(&priv->mutex);
4e157f08 9610 if ((mode < 1) || (mode > IPW_POWER_LIMIT))
43f66a6c 9611 mode = IPW_POWER_AC;
bf79451e 9612
4e157f08 9613 if (IPW_POWER_LEVEL(priv->power_mode) != mode) {
43f66a6c 9614 err = ipw_send_power_mode(priv, mode);
43f66a6c
JK
9615 if (err) {
9616 IPW_DEBUG_WX("failed setting power mode.\n");
4644151b 9617 mutex_unlock(&priv->mutex);
43f66a6c
JK
9618 return err;
9619 }
4e157f08 9620 priv->power_mode = IPW_POWER_ENABLED | mode;
43f66a6c 9621 }
4644151b 9622 mutex_unlock(&priv->mutex);
43f66a6c
JK
9623 return 0;
9624}
9625
9626#define MAX_WX_STRING 80
bf79451e 9627static int ipw_wx_get_powermode(struct net_device *dev,
0edd5b44
JG
9628 struct iw_request_info *info,
9629 union iwreq_data *wrqu, char *extra)
43f66a6c
JK
9630{
9631 struct ipw_priv *priv = ieee80211_priv(dev);
9632 int level = IPW_POWER_LEVEL(priv->power_mode);
9633 char *p = extra;
9634
9635 p += snprintf(p, MAX_WX_STRING, "Power save level: %d ", level);
9636
9637 switch (level) {
9638 case IPW_POWER_AC:
9639 p += snprintf(p, MAX_WX_STRING - (p - extra), "(AC)");
9640 break;
9641 case IPW_POWER_BATTERY:
9642 p += snprintf(p, MAX_WX_STRING - (p - extra), "(BATTERY)");
9643 break;
9644 default:
9645 p += snprintf(p, MAX_WX_STRING - (p - extra),
bf79451e 9646 "(Timeout %dms, Period %dms)",
43f66a6c
JK
9647 timeout_duration[level - 1] / 1000,
9648 period_duration[level - 1] / 1000);
9649 }
9650
9651 if (!(priv->power_mode & IPW_POWER_ENABLED))
0edd5b44 9652 p += snprintf(p, MAX_WX_STRING - (p - extra), " OFF");
43f66a6c
JK
9653
9654 wrqu->data.length = p - extra + 1;
9655
9656 return 0;
9657}
9658
9659static int ipw_wx_set_wireless_mode(struct net_device *dev,
0edd5b44
JG
9660 struct iw_request_info *info,
9661 union iwreq_data *wrqu, char *extra)
43f66a6c 9662{
0edd5b44 9663 struct ipw_priv *priv = ieee80211_priv(dev);
43f66a6c
JK
9664 int mode = *(int *)extra;
9665 u8 band = 0, modulation = 0;
9666
9667 if (mode == 0 || mode & ~IEEE_MODE_MASK) {
0edd5b44 9668 IPW_WARNING("Attempt to set invalid wireless mode: %d\n", mode);
43f66a6c
JK
9669 return -EINVAL;
9670 }
4644151b 9671 mutex_lock(&priv->mutex);
43f66a6c 9672 if (priv->adapter == IPW_2915ABG) {
a33a1982 9673 priv->ieee->abg_true = 1;
43f66a6c
JK
9674 if (mode & IEEE_A) {
9675 band |= IEEE80211_52GHZ_BAND;
9676 modulation |= IEEE80211_OFDM_MODULATION;
9677 } else
a33a1982 9678 priv->ieee->abg_true = 0;
43f66a6c
JK
9679 } else {
9680 if (mode & IEEE_A) {
9681 IPW_WARNING("Attempt to set 2200BG into "
9682 "802.11a mode\n");
4644151b 9683 mutex_unlock(&priv->mutex);
43f66a6c
JK
9684 return -EINVAL;
9685 }
9686
a33a1982 9687 priv->ieee->abg_true = 0;
43f66a6c
JK
9688 }
9689
9690 if (mode & IEEE_B) {
9691 band |= IEEE80211_24GHZ_BAND;
9692 modulation |= IEEE80211_CCK_MODULATION;
9693 } else
a33a1982 9694 priv->ieee->abg_true = 0;
bf79451e 9695
43f66a6c
JK
9696 if (mode & IEEE_G) {
9697 band |= IEEE80211_24GHZ_BAND;
9698 modulation |= IEEE80211_OFDM_MODULATION;
9699 } else
a33a1982 9700 priv->ieee->abg_true = 0;
43f66a6c
JK
9701
9702 priv->ieee->mode = mode;
9703 priv->ieee->freq_band = band;
9704 priv->ieee->modulation = modulation;
0edd5b44 9705 init_supported_rates(priv, &priv->rates);
43f66a6c 9706
c848d0af
JK
9707 /* Network configuration changed -- force [re]association */
9708 IPW_DEBUG_ASSOC("[re]association triggered due to mode change.\n");
9709 if (!ipw_disassociate(priv)) {
43f66a6c 9710 ipw_send_supported_rates(priv, &priv->rates);
c848d0af
JK
9711 ipw_associate(priv);
9712 }
43f66a6c 9713
a613bffd
JK
9714 /* Update the band LEDs */
9715 ipw_led_band_on(priv);
43f66a6c 9716
bf79451e 9717 IPW_DEBUG_WX("PRIV SET MODE: %c%c%c\n",
43f66a6c 9718 mode & IEEE_A ? 'a' : '.',
0edd5b44 9719 mode & IEEE_B ? 'b' : '.', mode & IEEE_G ? 'g' : '.');
4644151b 9720 mutex_unlock(&priv->mutex);
43f66a6c
JK
9721 return 0;
9722}
9723
9724static int ipw_wx_get_wireless_mode(struct net_device *dev,
0edd5b44
JG
9725 struct iw_request_info *info,
9726 union iwreq_data *wrqu, char *extra)
43f66a6c 9727{
0edd5b44 9728 struct ipw_priv *priv = ieee80211_priv(dev);
4644151b 9729 mutex_lock(&priv->mutex);
ea2b26e0
JK
9730 switch (priv->ieee->mode) {
9731 case IEEE_A:
43f66a6c
JK
9732 strncpy(extra, "802.11a (1)", MAX_WX_STRING);
9733 break;
ea2b26e0
JK
9734 case IEEE_B:
9735 strncpy(extra, "802.11b (2)", MAX_WX_STRING);
9736 break;
9737 case IEEE_A | IEEE_B:
9738 strncpy(extra, "802.11ab (3)", MAX_WX_STRING);
9739 break;
9740 case IEEE_G:
9741 strncpy(extra, "802.11g (4)", MAX_WX_STRING);
9742 break;
9743 case IEEE_A | IEEE_G:
9744 strncpy(extra, "802.11ag (5)", MAX_WX_STRING);
9745 break;
9746 case IEEE_B | IEEE_G:
9747 strncpy(extra, "802.11bg (6)", MAX_WX_STRING);
9748 break;
9749 case IEEE_A | IEEE_B | IEEE_G:
9750 strncpy(extra, "802.11abg (7)", MAX_WX_STRING);
9751 break;
9752 default:
9753 strncpy(extra, "unknown", MAX_WX_STRING);
43f66a6c 9754 break;
bf79451e
JG
9755 }
9756
43f66a6c
JK
9757 IPW_DEBUG_WX("PRIV GET MODE: %s\n", extra);
9758
0edd5b44 9759 wrqu->data.length = strlen(extra) + 1;
4644151b 9760 mutex_unlock(&priv->mutex);
b095c381
JK
9761
9762 return 0;
9763}
9764
9765static int ipw_wx_set_preamble(struct net_device *dev,
9766 struct iw_request_info *info,
9767 union iwreq_data *wrqu, char *extra)
9768{
9769 struct ipw_priv *priv = ieee80211_priv(dev);
9770 int mode = *(int *)extra;
4644151b 9771 mutex_lock(&priv->mutex);
b095c381
JK
9772 /* Switching from SHORT -> LONG requires a disassociation */
9773 if (mode == 1) {
9774 if (!(priv->config & CFG_PREAMBLE_LONG)) {
9775 priv->config |= CFG_PREAMBLE_LONG;
9776
9777 /* Network configuration changed -- force [re]association */
9778 IPW_DEBUG_ASSOC
9779 ("[re]association triggered due to preamble change.\n");
9780 if (!ipw_disassociate(priv))
9781 ipw_associate(priv);
9782 }
9783 goto done;
9784 }
43f66a6c 9785
b095c381
JK
9786 if (mode == 0) {
9787 priv->config &= ~CFG_PREAMBLE_LONG;
9788 goto done;
9789 }
4644151b 9790 mutex_unlock(&priv->mutex);
b095c381
JK
9791 return -EINVAL;
9792
9793 done:
4644151b 9794 mutex_unlock(&priv->mutex);
b095c381
JK
9795 return 0;
9796}
9797
9798static int ipw_wx_get_preamble(struct net_device *dev,
9799 struct iw_request_info *info,
9800 union iwreq_data *wrqu, char *extra)
9801{
9802 struct ipw_priv *priv = ieee80211_priv(dev);
4644151b 9803 mutex_lock(&priv->mutex);
b095c381
JK
9804 if (priv->config & CFG_PREAMBLE_LONG)
9805 snprintf(wrqu->name, IFNAMSIZ, "long (1)");
9806 else
9807 snprintf(wrqu->name, IFNAMSIZ, "auto (0)");
4644151b 9808 mutex_unlock(&priv->mutex);
0edd5b44 9809 return 0;
43f66a6c
JK
9810}
9811
b095c381
JK
9812#ifdef CONFIG_IPW2200_MONITOR
9813static int ipw_wx_set_monitor(struct net_device *dev,
bf79451e 9814 struct iw_request_info *info,
43f66a6c 9815 union iwreq_data *wrqu, char *extra)
bf79451e 9816{
43f66a6c
JK
9817 struct ipw_priv *priv = ieee80211_priv(dev);
9818 int *parms = (int *)extra;
9819 int enable = (parms[0] > 0);
4644151b 9820 mutex_lock(&priv->mutex);
b095c381 9821 IPW_DEBUG_WX("SET MONITOR: %d %d\n", enable, parms[1]);
43f66a6c
JK
9822 if (enable) {
9823 if (priv->ieee->iw_mode != IW_MODE_MONITOR) {
459d4087 9824#ifdef CONFIG_IPW2200_RADIOTAP
24a47dbd
MK
9825 priv->net_dev->type = ARPHRD_IEEE80211_RADIOTAP;
9826#else
43f66a6c 9827 priv->net_dev->type = ARPHRD_IEEE80211;
24a47dbd 9828#endif
b095c381 9829 queue_work(priv->workqueue, &priv->adapter_restart);
43f66a6c 9830 }
bf79451e 9831
43f66a6c
JK
9832 ipw_set_channel(priv, parms[1]);
9833 } else {
b095c381 9834 if (priv->ieee->iw_mode != IW_MODE_MONITOR) {
4644151b 9835 mutex_unlock(&priv->mutex);
43f66a6c 9836 return 0;
b095c381 9837 }
43f66a6c 9838 priv->net_dev->type = ARPHRD_ETHER;
b095c381 9839 queue_work(priv->workqueue, &priv->adapter_restart);
43f66a6c 9840 }
4644151b 9841 mutex_unlock(&priv->mutex);
43f66a6c
JK
9842 return 0;
9843}
9844
67fd6b45 9845#endif /* CONFIG_IPW2200_MONITOR */
b095c381 9846
bf79451e
JG
9847static int ipw_wx_reset(struct net_device *dev,
9848 struct iw_request_info *info,
43f66a6c 9849 union iwreq_data *wrqu, char *extra)
bf79451e 9850{
43f66a6c
JK
9851 struct ipw_priv *priv = ieee80211_priv(dev);
9852 IPW_DEBUG_WX("RESET\n");
b095c381
JK
9853 queue_work(priv->workqueue, &priv->adapter_restart);
9854 return 0;
9855}
9856
b095c381
JK
9857static int ipw_wx_sw_reset(struct net_device *dev,
9858 struct iw_request_info *info,
9859 union iwreq_data *wrqu, char *extra)
ea2b26e0
JK
9860{
9861 struct ipw_priv *priv = ieee80211_priv(dev);
b095c381
JK
9862 union iwreq_data wrqu_sec = {
9863 .encoding = {
9864 .flags = IW_ENCODE_DISABLED,
9865 },
9866 };
afbf30a2 9867 int ret;
c848d0af 9868
b095c381 9869 IPW_DEBUG_WX("SW_RESET\n");
ea2b26e0 9870
4644151b 9871 mutex_lock(&priv->mutex);
ea2b26e0 9872
d6d5b5c1 9873 ret = ipw_sw_reset(priv, 2);
afbf30a2
JK
9874 if (!ret) {
9875 free_firmware();
9876 ipw_adapter_restart(priv);
9877 }
ea2b26e0 9878
b095c381
JK
9879 /* The SW reset bit might have been toggled on by the 'disable'
9880 * module parameter, so take appropriate action */
9881 ipw_radio_kill_sw(priv, priv->status & STATUS_RF_KILL_SW);
ea2b26e0 9882
4644151b 9883 mutex_unlock(&priv->mutex);
b095c381 9884 ieee80211_wx_set_encode(priv->ieee, info, &wrqu_sec, NULL);
4644151b 9885 mutex_lock(&priv->mutex);
bf79451e 9886
b095c381
JK
9887 if (!(priv->status & STATUS_RF_KILL_MASK)) {
9888 /* Configuration likely changed -- force [re]association */
9889 IPW_DEBUG_ASSOC("[re]association triggered due to sw "
9890 "reset.\n");
9891 if (!ipw_disassociate(priv))
9892 ipw_associate(priv);
43f66a6c 9893 }
b095c381 9894
4644151b 9895 mutex_unlock(&priv->mutex);
43f66a6c 9896
43f66a6c
JK
9897 return 0;
9898}
43f66a6c
JK
9899
9900/* Rebase the WE IOCTLs to zero for the handler array */
9901#define IW_IOCTL(x) [(x)-SIOCSIWCOMMIT]
0edd5b44 9902static iw_handler ipw_wx_handlers[] = {
ea2b26e0
JK
9903 IW_IOCTL(SIOCGIWNAME) = ipw_wx_get_name,
9904 IW_IOCTL(SIOCSIWFREQ) = ipw_wx_set_freq,
9905 IW_IOCTL(SIOCGIWFREQ) = ipw_wx_get_freq,
9906 IW_IOCTL(SIOCSIWMODE) = ipw_wx_set_mode,
9907 IW_IOCTL(SIOCGIWMODE) = ipw_wx_get_mode,
651be26f
OH
9908 IW_IOCTL(SIOCSIWSENS) = ipw_wx_set_sens,
9909 IW_IOCTL(SIOCGIWSENS) = ipw_wx_get_sens,
ea2b26e0
JK
9910 IW_IOCTL(SIOCGIWRANGE) = ipw_wx_get_range,
9911 IW_IOCTL(SIOCSIWAP) = ipw_wx_set_wap,
9912 IW_IOCTL(SIOCGIWAP) = ipw_wx_get_wap,
9913 IW_IOCTL(SIOCSIWSCAN) = ipw_wx_set_scan,
9914 IW_IOCTL(SIOCGIWSCAN) = ipw_wx_get_scan,
9915 IW_IOCTL(SIOCSIWESSID) = ipw_wx_set_essid,
9916 IW_IOCTL(SIOCGIWESSID) = ipw_wx_get_essid,
9917 IW_IOCTL(SIOCSIWNICKN) = ipw_wx_set_nick,
9918 IW_IOCTL(SIOCGIWNICKN) = ipw_wx_get_nick,
9919 IW_IOCTL(SIOCSIWRATE) = ipw_wx_set_rate,
9920 IW_IOCTL(SIOCGIWRATE) = ipw_wx_get_rate,
9921 IW_IOCTL(SIOCSIWRTS) = ipw_wx_set_rts,
9922 IW_IOCTL(SIOCGIWRTS) = ipw_wx_get_rts,
9923 IW_IOCTL(SIOCSIWFRAG) = ipw_wx_set_frag,
9924 IW_IOCTL(SIOCGIWFRAG) = ipw_wx_get_frag,
9925 IW_IOCTL(SIOCSIWTXPOW) = ipw_wx_set_txpow,
9926 IW_IOCTL(SIOCGIWTXPOW) = ipw_wx_get_txpow,
9927 IW_IOCTL(SIOCSIWRETRY) = ipw_wx_set_retry,
9928 IW_IOCTL(SIOCGIWRETRY) = ipw_wx_get_retry,
9929 IW_IOCTL(SIOCSIWENCODE) = ipw_wx_set_encode,
9930 IW_IOCTL(SIOCGIWENCODE) = ipw_wx_get_encode,
9931 IW_IOCTL(SIOCSIWPOWER) = ipw_wx_set_power,
9932 IW_IOCTL(SIOCGIWPOWER) = ipw_wx_get_power,
a613bffd
JK
9933 IW_IOCTL(SIOCSIWSPY) = iw_handler_set_spy,
9934 IW_IOCTL(SIOCGIWSPY) = iw_handler_get_spy,
9935 IW_IOCTL(SIOCSIWTHRSPY) = iw_handler_set_thrspy,
9936 IW_IOCTL(SIOCGIWTHRSPY) = iw_handler_get_thrspy,
afbf30a2
JK
9937 IW_IOCTL(SIOCSIWGENIE) = ipw_wx_set_genie,
9938 IW_IOCTL(SIOCGIWGENIE) = ipw_wx_get_genie,
9939 IW_IOCTL(SIOCSIWMLME) = ipw_wx_set_mlme,
9940 IW_IOCTL(SIOCSIWAUTH) = ipw_wx_set_auth,
9941 IW_IOCTL(SIOCGIWAUTH) = ipw_wx_get_auth,
9942 IW_IOCTL(SIOCSIWENCODEEXT) = ipw_wx_set_encodeext,
9943 IW_IOCTL(SIOCGIWENCODEEXT) = ipw_wx_get_encodeext,
43f66a6c
JK
9944};
9945
b095c381
JK
9946enum {
9947 IPW_PRIV_SET_POWER = SIOCIWFIRSTPRIV,
9948 IPW_PRIV_GET_POWER,
9949 IPW_PRIV_SET_MODE,
9950 IPW_PRIV_GET_MODE,
9951 IPW_PRIV_SET_PREAMBLE,
9952 IPW_PRIV_GET_PREAMBLE,
9953 IPW_PRIV_RESET,
9954 IPW_PRIV_SW_RESET,
9955#ifdef CONFIG_IPW2200_MONITOR
9956 IPW_PRIV_SET_MONITOR,
9957#endif
9958};
43f66a6c 9959
bf79451e 9960static struct iw_priv_args ipw_priv_args[] = {
43f66a6c 9961 {
0edd5b44
JG
9962 .cmd = IPW_PRIV_SET_POWER,
9963 .set_args = IW_PRIV_TYPE_INT | IW_PRIV_SIZE_FIXED | 1,
9964 .name = "set_power"},
43f66a6c 9965 {
0edd5b44
JG
9966 .cmd = IPW_PRIV_GET_POWER,
9967 .get_args = IW_PRIV_TYPE_CHAR | IW_PRIV_SIZE_FIXED | MAX_WX_STRING,
9968 .name = "get_power"},
43f66a6c 9969 {
0edd5b44
JG
9970 .cmd = IPW_PRIV_SET_MODE,
9971 .set_args = IW_PRIV_TYPE_INT | IW_PRIV_SIZE_FIXED | 1,
9972 .name = "set_mode"},
43f66a6c 9973 {
0edd5b44
JG
9974 .cmd = IPW_PRIV_GET_MODE,
9975 .get_args = IW_PRIV_TYPE_CHAR | IW_PRIV_SIZE_FIXED | MAX_WX_STRING,
9976 .name = "get_mode"},
43f66a6c 9977 {
ea2b26e0
JK
9978 .cmd = IPW_PRIV_SET_PREAMBLE,
9979 .set_args = IW_PRIV_TYPE_INT | IW_PRIV_SIZE_FIXED | 1,
9980 .name = "set_preamble"},
9981 {
9982 .cmd = IPW_PRIV_GET_PREAMBLE,
9983 .get_args = IW_PRIV_TYPE_CHAR | IW_PRIV_SIZE_FIXED | IFNAMSIZ,
9984 .name = "get_preamble"},
43f66a6c 9985 {
0edd5b44
JG
9986 IPW_PRIV_RESET,
9987 IW_PRIV_TYPE_INT | IW_PRIV_SIZE_FIXED | 0, 0, "reset"},
b095c381
JK
9988 {
9989 IPW_PRIV_SW_RESET,
9990 IW_PRIV_TYPE_INT | IW_PRIV_SIZE_FIXED | 0, 0, "sw_reset"},
9991#ifdef CONFIG_IPW2200_MONITOR
9992 {
9993 IPW_PRIV_SET_MONITOR,
9994 IW_PRIV_TYPE_INT | IW_PRIV_SIZE_FIXED | 2, 0, "monitor"},
9995#endif /* CONFIG_IPW2200_MONITOR */
43f66a6c
JK
9996};
9997
9998static iw_handler ipw_priv_handler[] = {
9999 ipw_wx_set_powermode,
10000 ipw_wx_get_powermode,
10001 ipw_wx_set_wireless_mode,
10002 ipw_wx_get_wireless_mode,
ea2b26e0
JK
10003 ipw_wx_set_preamble,
10004 ipw_wx_get_preamble,
bf79451e 10005 ipw_wx_reset,
b095c381
JK
10006 ipw_wx_sw_reset,
10007#ifdef CONFIG_IPW2200_MONITOR
10008 ipw_wx_set_monitor,
43f66a6c
JK
10009#endif
10010};
10011
0edd5b44 10012static struct iw_handler_def ipw_wx_handler_def = {
ea2b26e0
JK
10013 .standard = ipw_wx_handlers,
10014 .num_standard = ARRAY_SIZE(ipw_wx_handlers),
10015 .num_private = ARRAY_SIZE(ipw_priv_handler),
10016 .num_private_args = ARRAY_SIZE(ipw_priv_args),
10017 .private = ipw_priv_handler,
10018 .private_args = ipw_priv_args,
97a78ca9 10019 .get_wireless_stats = ipw_get_wireless_stats,
43f66a6c
JK
10020};
10021
43f66a6c
JK
10022/*
10023 * Get wireless statistics.
10024 * Called by /proc/net/wireless
10025 * Also called by SIOCGIWSTATS
10026 */
0edd5b44 10027static struct iw_statistics *ipw_get_wireless_stats(struct net_device *dev)
43f66a6c
JK
10028{
10029 struct ipw_priv *priv = ieee80211_priv(dev);
10030 struct iw_statistics *wstats;
bf79451e 10031
43f66a6c
JK
10032 wstats = &priv->wstats;
10033
ea2b26e0 10034 /* if hw is disabled, then ipw_get_ordinal() can't be called.
afbf30a2 10035 * netdev->get_wireless_stats seems to be called before fw is
43f66a6c
JK
10036 * initialized. STATUS_ASSOCIATED will only be set if the hw is up
10037 * and associated; if not associcated, the values are all meaningless
10038 * anyway, so set them all to NULL and INVALID */
10039 if (!(priv->status & STATUS_ASSOCIATED)) {
10040 wstats->miss.beacon = 0;
10041 wstats->discard.retries = 0;
10042 wstats->qual.qual = 0;
10043 wstats->qual.level = 0;
10044 wstats->qual.noise = 0;
10045 wstats->qual.updated = 7;
10046 wstats->qual.updated |= IW_QUAL_NOISE_INVALID |
0edd5b44 10047 IW_QUAL_QUAL_INVALID | IW_QUAL_LEVEL_INVALID;
43f66a6c 10048 return wstats;
bf79451e 10049 }
43f66a6c
JK
10050
10051 wstats->qual.qual = priv->quality;
00d21de5
ZY
10052 wstats->qual.level = priv->exp_avg_rssi;
10053 wstats->qual.noise = priv->exp_avg_noise;
43f66a6c 10054 wstats->qual.updated = IW_QUAL_QUAL_UPDATED | IW_QUAL_LEVEL_UPDATED |
b191608a 10055 IW_QUAL_NOISE_UPDATED | IW_QUAL_DBM;
43f66a6c
JK
10056
10057 wstats->miss.beacon = average_value(&priv->average_missed_beacons);
10058 wstats->discard.retries = priv->last_tx_failures;
10059 wstats->discard.code = priv->ieee->ieee_stats.rx_discards_undecryptable;
bf79451e 10060
43f66a6c
JK
10061/* if (ipw_get_ordinal(priv, IPW_ORD_STAT_TX_RETRY, &tx_retry, &len))
10062 goto fail_get_ordinal;
10063 wstats->discard.retries += tx_retry; */
bf79451e 10064
43f66a6c
JK
10065 return wstats;
10066}
10067
43f66a6c
JK
10068/* net device stuff */
10069
858119e1 10070static void init_sys_config(struct ipw_sys_config *sys_config)
43f66a6c 10071{
0edd5b44 10072 memset(sys_config, 0, sizeof(struct ipw_sys_config));
810dabd4 10073 sys_config->bt_coexistence = 0;
43f66a6c
JK
10074 sys_config->answer_broadcast_ssid_probe = 0;
10075 sys_config->accept_all_data_frames = 0;
10076 sys_config->accept_non_directed_frames = 1;
10077 sys_config->exclude_unicast_unencrypted = 0;
10078 sys_config->disable_unicast_decryption = 1;
10079 sys_config->exclude_multicast_unencrypted = 0;
10080 sys_config->disable_multicast_decryption = 1;
d2b83e12
ZY
10081 if (antenna < CFG_SYS_ANTENNA_BOTH || antenna > CFG_SYS_ANTENNA_B)
10082 antenna = CFG_SYS_ANTENNA_BOTH;
10083 sys_config->antenna_diversity = antenna;
0edd5b44 10084 sys_config->pass_crc_to_host = 0; /* TODO: See if 1 gives us FCS */
43f66a6c 10085 sys_config->dot11g_auto_detection = 0;
bf79451e 10086 sys_config->enable_cts_to_self = 0;
43f66a6c 10087 sys_config->bt_coexist_collision_thr = 0;
67fd6b45 10088 sys_config->pass_noise_stats_to_host = 1; /* 1 -- fix for 256 */
12977154 10089 sys_config->silence_threshold = 0x1e;
43f66a6c
JK
10090}
10091
10092static int ipw_net_open(struct net_device *dev)
10093{
10094 struct ipw_priv *priv = ieee80211_priv(dev);
10095 IPW_DEBUG_INFO("dev->open\n");
10096 /* we should be verifying the device is ready to be opened */
4644151b 10097 mutex_lock(&priv->mutex);
bf79451e
JG
10098 if (!(priv->status & STATUS_RF_KILL_MASK) &&
10099 (priv->status & STATUS_ASSOCIATED))
43f66a6c 10100 netif_start_queue(dev);
4644151b 10101 mutex_unlock(&priv->mutex);
43f66a6c
JK
10102 return 0;
10103}
10104
10105static int ipw_net_stop(struct net_device *dev)
10106{
10107 IPW_DEBUG_INFO("dev->close\n");
10108 netif_stop_queue(dev);
10109 return 0;
10110}
10111
10112/*
10113todo:
10114
10115modify to send one tfd per fragment instead of using chunking. otherwise
10116we need to heavily modify the ieee80211_skb_to_txb.
10117*/
10118
858119e1 10119static int ipw_tx_skb(struct ipw_priv *priv, struct ieee80211_txb *txb,
227d2dc1 10120 int pri)
43f66a6c 10121{
a5cf4fe6 10122 struct ieee80211_hdr_3addrqos *hdr = (struct ieee80211_hdr_3addrqos *)
0edd5b44 10123 txb->fragments[0]->data;
43f66a6c
JK
10124 int i = 0;
10125 struct tfd_frame *tfd;
e43e3c1e 10126#ifdef CONFIG_IPW2200_QOS
b095c381
JK
10127 int tx_id = ipw_get_tx_queue_number(priv, pri);
10128 struct clx2_tx_queue *txq = &priv->txq[tx_id];
10129#else
43f66a6c 10130 struct clx2_tx_queue *txq = &priv->txq[0];
b095c381 10131#endif
43f66a6c
JK
10132 struct clx2_queue *q = &txq->q;
10133 u8 id, hdr_len, unicast;
10134 u16 remaining_bytes;
c848d0af 10135 int fc;
43f66a6c 10136
a5cf4fe6 10137 hdr_len = ieee80211_get_hdrlen(le16_to_cpu(hdr->frame_ctl));
43f66a6c
JK
10138 switch (priv->ieee->iw_mode) {
10139 case IW_MODE_ADHOC:
3c19065a 10140 unicast = !is_multicast_ether_addr(hdr->addr1);
43f66a6c
JK
10141 id = ipw_find_station(priv, hdr->addr1);
10142 if (id == IPW_INVALID_STATION) {
10143 id = ipw_add_station(priv, hdr->addr1);
10144 if (id == IPW_INVALID_STATION) {
10145 IPW_WARNING("Attempt to send data to "
bf79451e 10146 "invalid cell: " MAC_FMT "\n",
43f66a6c
JK
10147 MAC_ARG(hdr->addr1));
10148 goto drop;
10149 }
10150 }
10151 break;
10152
10153 case IW_MODE_INFRA:
10154 default:
3c19065a 10155 unicast = !is_multicast_ether_addr(hdr->addr3);
43f66a6c
JK
10156 id = 0;
10157 break;
10158 }
10159
10160 tfd = &txq->bd[q->first_empty];
10161 txq->txb[q->first_empty] = txb;
10162 memset(tfd, 0, sizeof(*tfd));
10163 tfd->u.data.station_number = id;
10164
10165 tfd->control_flags.message_type = TX_FRAME_TYPE;
10166 tfd->control_flags.control_bits = TFD_NEED_IRQ_MASK;
10167
10168 tfd->u.data.cmd_id = DINO_CMD_TX;
a613bffd 10169 tfd->u.data.len = cpu_to_le16(txb->payload_size);
43f66a6c 10170 remaining_bytes = txb->payload_size;
bf79451e 10171
43f66a6c 10172 if (priv->assoc_request.ieee_mode == IPW_B_MODE)
b095c381 10173 tfd->u.data.tx_flags_ext |= DCT_FLAG_EXT_MODE_CCK;
43f66a6c 10174 else
b095c381 10175 tfd->u.data.tx_flags_ext |= DCT_FLAG_EXT_MODE_OFDM;
43f66a6c 10176
ea2b26e0
JK
10177 if (priv->assoc_request.preamble_length == DCT_FLAG_SHORT_PREAMBLE)
10178 tfd->u.data.tx_flags |= DCT_FLAG_SHORT_PREAMBLE;
43f66a6c 10179
c848d0af
JK
10180 fc = le16_to_cpu(hdr->frame_ctl);
10181 hdr->frame_ctl = cpu_to_le16(fc & ~IEEE80211_FCTL_MOREFRAGS);
43f66a6c
JK
10182
10183 memcpy(&tfd->u.data.tfd.tfd_24.mchdr, hdr, hdr_len);
10184
b095c381
JK
10185 if (likely(unicast))
10186 tfd->u.data.tx_flags |= DCT_FLAG_ACK_REQD;
10187
10188 if (txb->encrypted && !priv->ieee->host_encrypt) {
10189 switch (priv->ieee->sec.level) {
10190 case SEC_LEVEL_3:
10191 tfd->u.data.tfd.tfd_24.mchdr.frame_ctl |=
851ca268 10192 cpu_to_le16(IEEE80211_FCTL_PROTECTED);
b095c381
JK
10193 /* XXX: ACK flag must be set for CCMP even if it
10194 * is a multicast/broadcast packet, because CCMP
10195 * group communication encrypted by GTK is
10196 * actually done by the AP. */
10197 if (!unicast)
10198 tfd->u.data.tx_flags |= DCT_FLAG_ACK_REQD;
10199
10200 tfd->u.data.tx_flags &= ~DCT_FLAG_NO_WEP;
10201 tfd->u.data.tx_flags_ext |= DCT_FLAG_EXT_SECURITY_CCM;
10202 tfd->u.data.key_index = 0;
10203 tfd->u.data.key_index |= DCT_WEP_INDEX_USE_IMMEDIATE;
10204 break;
10205 case SEC_LEVEL_2:
10206 tfd->u.data.tfd.tfd_24.mchdr.frame_ctl |=
851ca268 10207 cpu_to_le16(IEEE80211_FCTL_PROTECTED);
b095c381
JK
10208 tfd->u.data.tx_flags &= ~DCT_FLAG_NO_WEP;
10209 tfd->u.data.tx_flags_ext |= DCT_FLAG_EXT_SECURITY_TKIP;
10210 tfd->u.data.key_index = DCT_WEP_INDEX_USE_IMMEDIATE;
10211 break;
10212 case SEC_LEVEL_1:
10213 tfd->u.data.tfd.tfd_24.mchdr.frame_ctl |=
851ca268 10214 cpu_to_le16(IEEE80211_FCTL_PROTECTED);
b095c381
JK
10215 tfd->u.data.key_index = priv->ieee->tx_keyidx;
10216 if (priv->ieee->sec.key_sizes[priv->ieee->tx_keyidx] <=
10217 40)
10218 tfd->u.data.key_index |= DCT_WEP_KEY_64Bit;
10219 else
10220 tfd->u.data.key_index |= DCT_WEP_KEY_128Bit;
10221 break;
10222 case SEC_LEVEL_0:
10223 break;
10224 default:
10225 printk(KERN_ERR "Unknow security level %d\n",
10226 priv->ieee->sec.level);
10227 break;
10228 }
10229 } else
10230 /* No hardware encryption */
10231 tfd->u.data.tx_flags |= DCT_FLAG_NO_WEP;
10232
e43e3c1e 10233#ifdef CONFIG_IPW2200_QOS
a5cf4fe6
ZY
10234 if (fc & IEEE80211_STYPE_QOS_DATA)
10235 ipw_qos_set_tx_queue_command(priv, pri, &(tfd->u.data));
e43e3c1e 10236#endif /* CONFIG_IPW2200_QOS */
b095c381 10237
43f66a6c 10238 /* payload */
a613bffd
JK
10239 tfd->u.data.num_chunks = cpu_to_le32(min((u8) (NUM_TFD_CHUNKS - 2),
10240 txb->nr_frags));
10241 IPW_DEBUG_FRAG("%i fragments being sent as %i chunks.\n",
10242 txb->nr_frags, le32_to_cpu(tfd->u.data.num_chunks));
10243 for (i = 0; i < le32_to_cpu(tfd->u.data.num_chunks); i++) {
10244 IPW_DEBUG_FRAG("Adding fragment %i of %i (%d bytes).\n",
10245 i, le32_to_cpu(tfd->u.data.num_chunks),
10246 txb->fragments[i]->len - hdr_len);
bf79451e 10247 IPW_DEBUG_TX("Dumping TX packet frag %i of %i (%d bytes):\n",
43f66a6c
JK
10248 i, tfd->u.data.num_chunks,
10249 txb->fragments[i]->len - hdr_len);
bf79451e 10250 printk_buf(IPW_DL_TX, txb->fragments[i]->data + hdr_len,
43f66a6c
JK
10251 txb->fragments[i]->len - hdr_len);
10252
0edd5b44 10253 tfd->u.data.chunk_ptr[i] =
a613bffd
JK
10254 cpu_to_le32(pci_map_single
10255 (priv->pci_dev,
10256 txb->fragments[i]->data + hdr_len,
10257 txb->fragments[i]->len - hdr_len,
10258 PCI_DMA_TODEVICE));
10259 tfd->u.data.chunk_len[i] =
10260 cpu_to_le16(txb->fragments[i]->len - hdr_len);
43f66a6c
JK
10261 }
10262
10263 if (i != txb->nr_frags) {
10264 struct sk_buff *skb;
10265 u16 remaining_bytes = 0;
10266 int j;
10267
10268 for (j = i; j < txb->nr_frags; j++)
10269 remaining_bytes += txb->fragments[j]->len - hdr_len;
10270
10271 printk(KERN_INFO "Trying to reallocate for %d bytes\n",
10272 remaining_bytes);
10273 skb = alloc_skb(remaining_bytes, GFP_ATOMIC);
10274 if (skb != NULL) {
a613bffd 10275 tfd->u.data.chunk_len[i] = cpu_to_le16(remaining_bytes);
43f66a6c
JK
10276 for (j = i; j < txb->nr_frags; j++) {
10277 int size = txb->fragments[j]->len - hdr_len;
afbf30a2 10278
43f66a6c 10279 printk(KERN_INFO "Adding frag %d %d...\n",
0edd5b44 10280 j, size);
43f66a6c 10281 memcpy(skb_put(skb, size),
0edd5b44 10282 txb->fragments[j]->data + hdr_len, size);
43f66a6c
JK
10283 }
10284 dev_kfree_skb_any(txb->fragments[i]);
10285 txb->fragments[i] = skb;
0edd5b44 10286 tfd->u.data.chunk_ptr[i] =
a613bffd
JK
10287 cpu_to_le32(pci_map_single
10288 (priv->pci_dev, skb->data,
10289 tfd->u.data.chunk_len[i],
10290 PCI_DMA_TODEVICE));
10291
10292 tfd->u.data.num_chunks =
10293 cpu_to_le32(le32_to_cpu(tfd->u.data.num_chunks) +
10294 1);
bf79451e 10295 }
43f66a6c
JK
10296 }
10297
10298 /* kick DMA */
10299 q->first_empty = ipw_queue_inc_wrap(q->first_empty, q->n_bd);
10300 ipw_write32(priv, q->reg_w, q->first_empty);
10301
f697014a
JK
10302 if (ipw_queue_space(q) < q->high_mark)
10303 netif_stop_queue(priv->net_dev);
10304
227d2dc1 10305 return NETDEV_TX_OK;
43f66a6c 10306
0edd5b44 10307 drop:
43f66a6c
JK
10308 IPW_DEBUG_DROP("Silently dropping Tx packet.\n");
10309 ieee80211_txb_free(txb);
227d2dc1
JK
10310 return NETDEV_TX_OK;
10311}
10312
10313static int ipw_net_is_queue_full(struct net_device *dev, int pri)
10314{
10315 struct ipw_priv *priv = ieee80211_priv(dev);
e43e3c1e 10316#ifdef CONFIG_IPW2200_QOS
227d2dc1
JK
10317 int tx_id = ipw_get_tx_queue_number(priv, pri);
10318 struct clx2_tx_queue *txq = &priv->txq[tx_id];
10319#else
10320 struct clx2_tx_queue *txq = &priv->txq[0];
e43e3c1e 10321#endif /* CONFIG_IPW2200_QOS */
227d2dc1
JK
10322
10323 if (ipw_queue_space(&txq->q) < txq->q.high_mark)
10324 return 1;
10325
10326 return 0;
43f66a6c
JK
10327}
10328
d685b8c2
ZY
10329#ifdef CONFIG_IPW2200_PROMISCUOUS
10330static void ipw_handle_promiscuous_tx(struct ipw_priv *priv,
10331 struct ieee80211_txb *txb)
10332{
10333 struct ieee80211_rx_stats dummystats;
10334 struct ieee80211_hdr *hdr;
10335 u8 n;
10336 u16 filter = priv->prom_priv->filter;
10337 int hdr_only = 0;
10338
10339 if (filter & IPW_PROM_NO_TX)
10340 return;
10341
10342 memset(&dummystats, 0, sizeof(dummystats));
10343
10344 /* Filtering of fragment chains is done agains the first fragment */
10345 hdr = (void *)txb->fragments[0]->data;
851ca268 10346 if (ieee80211_is_management(le16_to_cpu(hdr->frame_ctl))) {
d685b8c2
ZY
10347 if (filter & IPW_PROM_NO_MGMT)
10348 return;
10349 if (filter & IPW_PROM_MGMT_HEADER_ONLY)
10350 hdr_only = 1;
851ca268 10351 } else if (ieee80211_is_control(le16_to_cpu(hdr->frame_ctl))) {
d685b8c2
ZY
10352 if (filter & IPW_PROM_NO_CTL)
10353 return;
10354 if (filter & IPW_PROM_CTL_HEADER_ONLY)
10355 hdr_only = 1;
851ca268 10356 } else if (ieee80211_is_data(le16_to_cpu(hdr->frame_ctl))) {
d685b8c2
ZY
10357 if (filter & IPW_PROM_NO_DATA)
10358 return;
10359 if (filter & IPW_PROM_DATA_HEADER_ONLY)
10360 hdr_only = 1;
10361 }
10362
10363 for(n=0; n<txb->nr_frags; ++n) {
10364 struct sk_buff *src = txb->fragments[n];
10365 struct sk_buff *dst;
10366 struct ieee80211_radiotap_header *rt_hdr;
10367 int len;
10368
10369 if (hdr_only) {
10370 hdr = (void *)src->data;
851ca268 10371 len = ieee80211_get_hdrlen(le16_to_cpu(hdr->frame_ctl));
d685b8c2
ZY
10372 } else
10373 len = src->len;
10374
10375 dst = alloc_skb(
10376 len + IEEE80211_RADIOTAP_HDRLEN, GFP_ATOMIC);
10377 if (!dst) continue;
10378
10379 rt_hdr = (void *)skb_put(dst, sizeof(*rt_hdr));
10380
10381 rt_hdr->it_version = PKTHDR_RADIOTAP_VERSION;
10382 rt_hdr->it_pad = 0;
10383 rt_hdr->it_present = 0; /* after all, it's just an idea */
10384 rt_hdr->it_present |= (1 << IEEE80211_RADIOTAP_CHANNEL);
10385
10386 *(u16*)skb_put(dst, sizeof(u16)) = cpu_to_le16(
10387 ieee80211chan2mhz(priv->channel));
10388 if (priv->channel > 14) /* 802.11a */
10389 *(u16*)skb_put(dst, sizeof(u16)) =
10390 cpu_to_le16(IEEE80211_CHAN_OFDM |
10391 IEEE80211_CHAN_5GHZ);
10392 else if (priv->ieee->mode == IEEE_B) /* 802.11b */
10393 *(u16*)skb_put(dst, sizeof(u16)) =
10394 cpu_to_le16(IEEE80211_CHAN_CCK |
10395 IEEE80211_CHAN_2GHZ);
10396 else /* 802.11g */
10397 *(u16*)skb_put(dst, sizeof(u16)) =
10398 cpu_to_le16(IEEE80211_CHAN_OFDM |
10399 IEEE80211_CHAN_2GHZ);
10400
10401 rt_hdr->it_len = dst->len;
10402
d626f62b 10403 skb_copy_from_linear_data(src, skb_put(dst, len), len);
d685b8c2
ZY
10404
10405 if (!ieee80211_rx(priv->prom_priv->ieee, dst, &dummystats))
10406 dev_kfree_skb_any(dst);
10407 }
10408}
10409#endif
10410
43f66a6c 10411static int ipw_net_hard_start_xmit(struct ieee80211_txb *txb,
c8d42d1a 10412 struct net_device *dev, int pri)
43f66a6c
JK
10413{
10414 struct ipw_priv *priv = ieee80211_priv(dev);
10415 unsigned long flags;
227d2dc1 10416 int ret;
43f66a6c
JK
10417
10418 IPW_DEBUG_TX("dev->xmit(%d bytes)\n", txb->payload_size);
43f66a6c
JK
10419 spin_lock_irqsave(&priv->lock, flags);
10420
10421 if (!(priv->status & STATUS_ASSOCIATED)) {
10422 IPW_DEBUG_INFO("Tx attempt while not associated.\n");
10423 priv->ieee->stats.tx_carrier_errors++;
10424 netif_stop_queue(dev);
10425 goto fail_unlock;
10426 }
10427
d685b8c2
ZY
10428#ifdef CONFIG_IPW2200_PROMISCUOUS
10429 if (rtap_iface && netif_running(priv->prom_net_dev))
10430 ipw_handle_promiscuous_tx(priv, txb);
10431#endif
10432
227d2dc1
JK
10433 ret = ipw_tx_skb(priv, txb, pri);
10434 if (ret == NETDEV_TX_OK)
10435 __ipw_led_activity_on(priv);
43f66a6c 10436 spin_unlock_irqrestore(&priv->lock, flags);
43f66a6c 10437
227d2dc1 10438 return ret;
43f66a6c 10439
0edd5b44 10440 fail_unlock:
43f66a6c
JK
10441 spin_unlock_irqrestore(&priv->lock, flags);
10442 return 1;
10443}
10444
10445static struct net_device_stats *ipw_net_get_stats(struct net_device *dev)
10446{
10447 struct ipw_priv *priv = ieee80211_priv(dev);
bf79451e 10448
43f66a6c
JK
10449 priv->ieee->stats.tx_packets = priv->tx_packets;
10450 priv->ieee->stats.rx_packets = priv->rx_packets;
10451 return &priv->ieee->stats;
10452}
10453
10454static void ipw_net_set_multicast_list(struct net_device *dev)
10455{
10456
10457}
10458
10459static int ipw_net_set_mac_address(struct net_device *dev, void *p)
10460{
10461 struct ipw_priv *priv = ieee80211_priv(dev);
10462 struct sockaddr *addr = p;
10463 if (!is_valid_ether_addr(addr->sa_data))
10464 return -EADDRNOTAVAIL;
4644151b 10465 mutex_lock(&priv->mutex);
43f66a6c
JK
10466 priv->config |= CFG_CUSTOM_MAC;
10467 memcpy(priv->mac_addr, addr->sa_data, ETH_ALEN);
10468 printk(KERN_INFO "%s: Setting MAC to " MAC_FMT "\n",
10469 priv->net_dev->name, MAC_ARG(priv->mac_addr));
a613bffd 10470 queue_work(priv->workqueue, &priv->adapter_restart);
4644151b 10471 mutex_unlock(&priv->mutex);
43f66a6c
JK
10472 return 0;
10473}
10474
bf79451e 10475static void ipw_ethtool_get_drvinfo(struct net_device *dev,
43f66a6c
JK
10476 struct ethtool_drvinfo *info)
10477{
10478 struct ipw_priv *p = ieee80211_priv(dev);
10479 char vers[64];
10480 char date[32];
10481 u32 len;
10482
10483 strcpy(info->driver, DRV_NAME);
10484 strcpy(info->version, DRV_VERSION);
10485
10486 len = sizeof(vers);
10487 ipw_get_ordinal(p, IPW_ORD_STAT_FW_VERSION, vers, &len);
10488 len = sizeof(date);
10489 ipw_get_ordinal(p, IPW_ORD_STAT_FW_DATE, date, &len);
10490
0edd5b44 10491 snprintf(info->fw_version, sizeof(info->fw_version), "%s (%s)",
43f66a6c
JK
10492 vers, date);
10493 strcpy(info->bus_info, pci_name(p->pci_dev));
b095c381 10494 info->eedump_len = IPW_EEPROM_IMAGE_SIZE;
43f66a6c
JK
10495}
10496
10497static u32 ipw_ethtool_get_link(struct net_device *dev)
10498{
10499 struct ipw_priv *priv = ieee80211_priv(dev);
10500 return (priv->status & STATUS_ASSOCIATED) != 0;
10501}
10502
10503static int ipw_ethtool_get_eeprom_len(struct net_device *dev)
10504{
b095c381 10505 return IPW_EEPROM_IMAGE_SIZE;
43f66a6c
JK
10506}
10507
10508static int ipw_ethtool_get_eeprom(struct net_device *dev,
0edd5b44 10509 struct ethtool_eeprom *eeprom, u8 * bytes)
43f66a6c
JK
10510{
10511 struct ipw_priv *p = ieee80211_priv(dev);
10512
b095c381 10513 if (eeprom->offset + eeprom->len > IPW_EEPROM_IMAGE_SIZE)
43f66a6c 10514 return -EINVAL;
4644151b 10515 mutex_lock(&p->mutex);
afbf30a2 10516 memcpy(bytes, &p->eeprom[eeprom->offset], eeprom->len);
4644151b 10517 mutex_unlock(&p->mutex);
43f66a6c
JK
10518 return 0;
10519}
10520
10521static int ipw_ethtool_set_eeprom(struct net_device *dev,
0edd5b44 10522 struct ethtool_eeprom *eeprom, u8 * bytes)
43f66a6c
JK
10523{
10524 struct ipw_priv *p = ieee80211_priv(dev);
10525 int i;
10526
b095c381 10527 if (eeprom->offset + eeprom->len > IPW_EEPROM_IMAGE_SIZE)
43f66a6c 10528 return -EINVAL;
4644151b 10529 mutex_lock(&p->mutex);
afbf30a2 10530 memcpy(&p->eeprom[eeprom->offset], bytes, eeprom->len);
71e585fc
AB
10531 for (i = 0; i < IPW_EEPROM_IMAGE_SIZE; i++)
10532 ipw_write8(p, i + IPW_EEPROM_DATA, p->eeprom[i]);
4644151b 10533 mutex_unlock(&p->mutex);
43f66a6c
JK
10534 return 0;
10535}
10536
7282d491 10537static const struct ethtool_ops ipw_ethtool_ops = {
ea2b26e0
JK
10538 .get_link = ipw_ethtool_get_link,
10539 .get_drvinfo = ipw_ethtool_get_drvinfo,
10540 .get_eeprom_len = ipw_ethtool_get_eeprom_len,
10541 .get_eeprom = ipw_ethtool_get_eeprom,
10542 .set_eeprom = ipw_ethtool_set_eeprom,
43f66a6c
JK
10543};
10544
7d12e780 10545static irqreturn_t ipw_isr(int irq, void *data)
43f66a6c
JK
10546{
10547 struct ipw_priv *priv = data;
10548 u32 inta, inta_mask;
bf79451e 10549
43f66a6c
JK
10550 if (!priv)
10551 return IRQ_NONE;
10552
89c318ed 10553 spin_lock(&priv->irq_lock);
43f66a6c
JK
10554
10555 if (!(priv->status & STATUS_INT_ENABLED)) {
d00d0121 10556 /* IRQ is disabled */
43f66a6c
JK
10557 goto none;
10558 }
10559
b095c381
JK
10560 inta = ipw_read32(priv, IPW_INTA_RW);
10561 inta_mask = ipw_read32(priv, IPW_INTA_MASK_R);
bf79451e 10562
43f66a6c
JK
10563 if (inta == 0xFFFFFFFF) {
10564 /* Hardware disappeared */
10565 IPW_WARNING("IRQ INTA == 0xFFFFFFFF\n");
10566 goto none;
10567 }
10568
b095c381 10569 if (!(inta & (IPW_INTA_MASK_ALL & inta_mask))) {
43f66a6c
JK
10570 /* Shared interrupt */
10571 goto none;
10572 }
10573
10574 /* tell the device to stop sending interrupts */
89c318ed 10575 __ipw_disable_interrupts(priv);
bf79451e 10576
43f66a6c 10577 /* ack current interrupts */
b095c381
JK
10578 inta &= (IPW_INTA_MASK_ALL & inta_mask);
10579 ipw_write32(priv, IPW_INTA_RW, inta);
bf79451e 10580
43f66a6c
JK
10581 /* Cache INTA value for our tasklet */
10582 priv->isr_inta = inta;
10583
10584 tasklet_schedule(&priv->irq_tasklet);
10585
89c318ed 10586 spin_unlock(&priv->irq_lock);
43f66a6c
JK
10587
10588 return IRQ_HANDLED;
0edd5b44 10589 none:
89c318ed 10590 spin_unlock(&priv->irq_lock);
43f66a6c
JK
10591 return IRQ_NONE;
10592}
10593
10594static void ipw_rf_kill(void *adapter)
10595{
10596 struct ipw_priv *priv = adapter;
10597 unsigned long flags;
bf79451e 10598
43f66a6c
JK
10599 spin_lock_irqsave(&priv->lock, flags);
10600
10601 if (rf_kill_active(priv)) {
10602 IPW_DEBUG_RF_KILL("RF Kill active, rescheduling GPIO check\n");
10603 if (priv->workqueue)
10604 queue_delayed_work(priv->workqueue,
10605 &priv->rf_kill, 2 * HZ);
10606 goto exit_unlock;
10607 }
10608
10609 /* RF Kill is now disabled, so bring the device back up */
10610
10611 if (!(priv->status & STATUS_RF_KILL_MASK)) {
10612 IPW_DEBUG_RF_KILL("HW RF Kill no longer active, restarting "
10613 "device\n");
10614
10615 /* we can not do an adapter restart while inside an irq lock */
10616 queue_work(priv->workqueue, &priv->adapter_restart);
bf79451e 10617 } else
43f66a6c
JK
10618 IPW_DEBUG_RF_KILL("HW RF Kill deactivated. SW RF Kill still "
10619 "enabled\n");
10620
0edd5b44 10621 exit_unlock:
43f66a6c
JK
10622 spin_unlock_irqrestore(&priv->lock, flags);
10623}
10624
c4028958 10625static void ipw_bg_rf_kill(struct work_struct *work)
c848d0af 10626{
c4028958
DH
10627 struct ipw_priv *priv =
10628 container_of(work, struct ipw_priv, rf_kill.work);
4644151b 10629 mutex_lock(&priv->mutex);
c4028958 10630 ipw_rf_kill(priv);
4644151b 10631 mutex_unlock(&priv->mutex);
c848d0af
JK
10632}
10633
a73e22b2 10634static void ipw_link_up(struct ipw_priv *priv)
a613bffd 10635{
afbf30a2
JK
10636 priv->last_seq_num = -1;
10637 priv->last_frag_num = -1;
10638 priv->last_packet_time = 0;
10639
a613bffd
JK
10640 netif_carrier_on(priv->net_dev);
10641 if (netif_queue_stopped(priv->net_dev)) {
10642 IPW_DEBUG_NOTIF("waking queue\n");
10643 netif_wake_queue(priv->net_dev);
10644 } else {
10645 IPW_DEBUG_NOTIF("starting queue\n");
10646 netif_start_queue(priv->net_dev);
10647 }
10648
c848d0af 10649 cancel_delayed_work(&priv->request_scan);
a613bffd
JK
10650 ipw_reset_stats(priv);
10651 /* Ensure the rate is updated immediately */
10652 priv->last_rate = ipw_get_current_rate(priv);
10653 ipw_gather_stats(priv);
10654 ipw_led_link_up(priv);
10655 notify_wx_assoc_event(priv);
10656
10657 if (priv->config & CFG_BACKGROUND_SCAN)
10658 queue_delayed_work(priv->workqueue, &priv->request_scan, HZ);
10659}
10660
c4028958 10661static void ipw_bg_link_up(struct work_struct *work)
c848d0af 10662{
c4028958
DH
10663 struct ipw_priv *priv =
10664 container_of(work, struct ipw_priv, link_up);
4644151b 10665 mutex_lock(&priv->mutex);
c4028958 10666 ipw_link_up(priv);
4644151b 10667 mutex_unlock(&priv->mutex);
c848d0af
JK
10668}
10669
a73e22b2 10670static void ipw_link_down(struct ipw_priv *priv)
a613bffd
JK
10671{
10672 ipw_led_link_down(priv);
10673 netif_carrier_off(priv->net_dev);
10674 netif_stop_queue(priv->net_dev);
10675 notify_wx_assoc_event(priv);
10676
10677 /* Cancel any queued work ... */
10678 cancel_delayed_work(&priv->request_scan);
10679 cancel_delayed_work(&priv->adhoc_check);
10680 cancel_delayed_work(&priv->gather_stats);
10681
10682 ipw_reset_stats(priv);
10683
afbf30a2
JK
10684 if (!(priv->status & STATUS_EXIT_PENDING)) {
10685 /* Queue up another scan... */
c4028958 10686 queue_delayed_work(priv->workqueue, &priv->request_scan, 0);
afbf30a2 10687 }
a613bffd
JK
10688}
10689
c4028958 10690static void ipw_bg_link_down(struct work_struct *work)
c848d0af 10691{
c4028958
DH
10692 struct ipw_priv *priv =
10693 container_of(work, struct ipw_priv, link_down);
4644151b 10694 mutex_lock(&priv->mutex);
c4028958 10695 ipw_link_down(priv);
4644151b 10696 mutex_unlock(&priv->mutex);
43f66a6c
JK
10697}
10698
10699static int ipw_setup_deferred_work(struct ipw_priv *priv)
10700{
10701 int ret = 0;
10702
43f66a6c 10703 priv->workqueue = create_workqueue(DRV_NAME);
43f66a6c 10704 init_waitqueue_head(&priv->wait_command_queue);
afbf30a2 10705 init_waitqueue_head(&priv->wait_state);
43f66a6c 10706
c4028958
DH
10707 INIT_DELAYED_WORK(&priv->adhoc_check, ipw_bg_adhoc_check);
10708 INIT_WORK(&priv->associate, ipw_bg_associate);
10709 INIT_WORK(&priv->disassociate, ipw_bg_disassociate);
10710 INIT_WORK(&priv->system_config, ipw_system_config);
10711 INIT_WORK(&priv->rx_replenish, ipw_bg_rx_queue_replenish);
10712 INIT_WORK(&priv->adapter_restart, ipw_bg_adapter_restart);
10713 INIT_DELAYED_WORK(&priv->rf_kill, ipw_bg_rf_kill);
10714 INIT_WORK(&priv->up, ipw_bg_up);
10715 INIT_WORK(&priv->down, ipw_bg_down);
10716 INIT_DELAYED_WORK(&priv->request_scan, ipw_request_scan);
10717 INIT_WORK(&priv->request_passive_scan, ipw_request_passive_scan);
10718 INIT_DELAYED_WORK(&priv->gather_stats, ipw_bg_gather_stats);
10719 INIT_WORK(&priv->abort_scan, ipw_bg_abort_scan);
10720 INIT_WORK(&priv->roam, ipw_bg_roam);
10721 INIT_DELAYED_WORK(&priv->scan_check, ipw_bg_scan_check);
10722 INIT_WORK(&priv->link_up, ipw_bg_link_up);
10723 INIT_WORK(&priv->link_down, ipw_bg_link_down);
10724 INIT_DELAYED_WORK(&priv->led_link_on, ipw_bg_led_link_on);
10725 INIT_DELAYED_WORK(&priv->led_link_off, ipw_bg_led_link_off);
10726 INIT_DELAYED_WORK(&priv->led_act_off, ipw_bg_led_activity_off);
10727 INIT_WORK(&priv->merge_networks, ipw_merge_adhoc_network);
43f66a6c 10728
e43e3c1e 10729#ifdef CONFIG_IPW2200_QOS
c4028958 10730 INIT_WORK(&priv->qos_activate, ipw_bg_qos_activate);
e43e3c1e 10731#endif /* CONFIG_IPW2200_QOS */
43f66a6c
JK
10732
10733 tasklet_init(&priv->irq_tasklet, (void (*)(unsigned long))
10734 ipw_irq_tasklet, (unsigned long)priv);
10735
10736 return ret;
10737}
10738
43f66a6c
JK
10739static void shim__set_security(struct net_device *dev,
10740 struct ieee80211_security *sec)
10741{
10742 struct ipw_priv *priv = ieee80211_priv(dev);
10743 int i;
bf79451e 10744 for (i = 0; i < 4; i++) {
43f66a6c 10745 if (sec->flags & (1 << i)) {
afbf30a2 10746 priv->ieee->sec.encode_alg[i] = sec->encode_alg[i];
b095c381 10747 priv->ieee->sec.key_sizes[i] = sec->key_sizes[i];
43f66a6c 10748 if (sec->key_sizes[i] == 0)
b095c381
JK
10749 priv->ieee->sec.flags &= ~(1 << i);
10750 else {
10751 memcpy(priv->ieee->sec.keys[i], sec->keys[i],
43f66a6c 10752 sec->key_sizes[i]);
b095c381
JK
10753 priv->ieee->sec.flags |= (1 << i);
10754 }
43f66a6c 10755 priv->status |= STATUS_SECURITY_UPDATED;
b095c381
JK
10756 } else if (sec->level != SEC_LEVEL_1)
10757 priv->ieee->sec.flags &= ~(1 << i);
43f66a6c
JK
10758 }
10759
b095c381 10760 if (sec->flags & SEC_ACTIVE_KEY) {
43f66a6c 10761 if (sec->active_key <= 3) {
b095c381
JK
10762 priv->ieee->sec.active_key = sec->active_key;
10763 priv->ieee->sec.flags |= SEC_ACTIVE_KEY;
bf79451e 10764 } else
b095c381 10765 priv->ieee->sec.flags &= ~SEC_ACTIVE_KEY;
43f66a6c 10766 priv->status |= STATUS_SECURITY_UPDATED;
b095c381
JK
10767 } else
10768 priv->ieee->sec.flags &= ~SEC_ACTIVE_KEY;
43f66a6c
JK
10769
10770 if ((sec->flags & SEC_AUTH_MODE) &&
b095c381
JK
10771 (priv->ieee->sec.auth_mode != sec->auth_mode)) {
10772 priv->ieee->sec.auth_mode = sec->auth_mode;
10773 priv->ieee->sec.flags |= SEC_AUTH_MODE;
43f66a6c
JK
10774 if (sec->auth_mode == WLAN_AUTH_SHARED_KEY)
10775 priv->capability |= CAP_SHARED_KEY;
10776 else
10777 priv->capability &= ~CAP_SHARED_KEY;
10778 priv->status |= STATUS_SECURITY_UPDATED;
10779 }
bf79451e 10780
b095c381
JK
10781 if (sec->flags & SEC_ENABLED && priv->ieee->sec.enabled != sec->enabled) {
10782 priv->ieee->sec.flags |= SEC_ENABLED;
10783 priv->ieee->sec.enabled = sec->enabled;
43f66a6c 10784 priv->status |= STATUS_SECURITY_UPDATED;
bf79451e 10785 if (sec->enabled)
43f66a6c
JK
10786 priv->capability |= CAP_PRIVACY_ON;
10787 else
10788 priv->capability &= ~CAP_PRIVACY_ON;
10789 }
bf79451e 10790
afbf30a2
JK
10791 if (sec->flags & SEC_ENCRYPT)
10792 priv->ieee->sec.encrypt = sec->encrypt;
bf79451e 10793
b095c381
JK
10794 if (sec->flags & SEC_LEVEL && priv->ieee->sec.level != sec->level) {
10795 priv->ieee->sec.level = sec->level;
10796 priv->ieee->sec.flags |= SEC_LEVEL;
43f66a6c
JK
10797 priv->status |= STATUS_SECURITY_UPDATED;
10798 }
10799
1fbfea54
ZY
10800 if (!priv->ieee->host_encrypt && (sec->flags & SEC_ENCRYPT))
10801 ipw_set_hwcrypto_keys(priv);
10802
bf79451e
JG
10803 /* To match current functionality of ipw2100 (which works well w/
10804 * various supplicants, we don't force a disassociate if the
43f66a6c
JK
10805 * privacy capability changes ... */
10806#if 0
10807 if ((priv->status & (STATUS_ASSOCIATED | STATUS_ASSOCIATING)) &&
bf79451e 10808 (((priv->assoc_request.capability &
43f66a6c 10809 WLAN_CAPABILITY_PRIVACY) && !sec->enabled) ||
bf79451e 10810 (!(priv->assoc_request.capability &
0edd5b44 10811 WLAN_CAPABILITY_PRIVACY) && sec->enabled))) {
43f66a6c
JK
10812 IPW_DEBUG_ASSOC("Disassociating due to capability "
10813 "change.\n");
10814 ipw_disassociate(priv);
10815 }
10816#endif
10817}
10818
bf79451e 10819static int init_supported_rates(struct ipw_priv *priv,
43f66a6c
JK
10820 struct ipw_supported_rates *rates)
10821{
10822 /* TODO: Mask out rates based on priv->rates_mask */
10823
10824 memset(rates, 0, sizeof(*rates));
0edd5b44 10825 /* configure supported rates */
43f66a6c
JK
10826 switch (priv->ieee->freq_band) {
10827 case IEEE80211_52GHZ_BAND:
10828 rates->ieee_mode = IPW_A_MODE;
10829 rates->purpose = IPW_RATE_CAPABILITIES;
10830 ipw_add_ofdm_scan_rates(rates, IEEE80211_CCK_MODULATION,
10831 IEEE80211_OFDM_DEFAULT_RATES_MASK);
10832 break;
10833
0edd5b44 10834 default: /* Mixed or 2.4Ghz */
43f66a6c
JK
10835 rates->ieee_mode = IPW_G_MODE;
10836 rates->purpose = IPW_RATE_CAPABILITIES;
10837 ipw_add_cck_scan_rates(rates, IEEE80211_CCK_MODULATION,
10838 IEEE80211_CCK_DEFAULT_RATES_MASK);
10839 if (priv->ieee->modulation & IEEE80211_OFDM_MODULATION) {
10840 ipw_add_ofdm_scan_rates(rates, IEEE80211_CCK_MODULATION,
10841 IEEE80211_OFDM_DEFAULT_RATES_MASK);
10842 }
10843 break;
10844 }
10845
10846 return 0;
10847}
10848
bf79451e 10849static int ipw_config(struct ipw_priv *priv)
43f66a6c 10850{
43f66a6c
JK
10851 /* This is only called from ipw_up, which resets/reloads the firmware
10852 so, we don't need to first disable the card before we configure
10853 it */
6de9f7f2 10854 if (ipw_set_tx_power(priv))
43f66a6c
JK
10855 goto error;
10856
10857 /* initialize adapter address */
10858 if (ipw_send_adapter_address(priv, priv->net_dev->dev_addr))
10859 goto error;
10860
10861 /* set basic system config settings */
10862 init_sys_config(&priv->sys_config);
810dabd4
ZY
10863
10864 /* Support Bluetooth if we have BT h/w on board, and user wants to.
10865 * Does not support BT priority yet (don't abort or defer our Tx) */
10866 if (bt_coexist) {
2638bc39 10867 unsigned char bt_caps = priv->eeprom[EEPROM_SKU_CAPABILITY];
810dabd4
ZY
10868
10869 if (bt_caps & EEPROM_SKU_CAP_BT_CHANNEL_SIG)
10870 priv->sys_config.bt_coexistence
2638bc39 10871 |= CFG_BT_COEXISTENCE_SIGNAL_CHNL;
810dabd4
ZY
10872 if (bt_caps & EEPROM_SKU_CAP_BT_OOB)
10873 priv->sys_config.bt_coexistence
2638bc39 10874 |= CFG_BT_COEXISTENCE_OOB;
810dabd4
ZY
10875 }
10876
d685b8c2
ZY
10877#ifdef CONFIG_IPW2200_PROMISCUOUS
10878 if (priv->prom_net_dev && netif_running(priv->prom_net_dev)) {
10879 priv->sys_config.accept_all_data_frames = 1;
10880 priv->sys_config.accept_non_directed_frames = 1;
10881 priv->sys_config.accept_all_mgmt_bcpr = 1;
10882 priv->sys_config.accept_all_mgmt_frames = 1;
10883 }
10884#endif
10885
c848d0af
JK
10886 if (priv->ieee->iw_mode == IW_MODE_ADHOC)
10887 priv->sys_config.answer_broadcast_ssid_probe = 1;
10888 else
10889 priv->sys_config.answer_broadcast_ssid_probe = 0;
10890
d685b8c2 10891 if (ipw_send_system_config(priv))
43f66a6c
JK
10892 goto error;
10893
0edd5b44
JG
10894 init_supported_rates(priv, &priv->rates);
10895 if (ipw_send_supported_rates(priv, &priv->rates))
43f66a6c
JK
10896 goto error;
10897
10898 /* Set request-to-send threshold */
10899 if (priv->rts_threshold) {
10900 if (ipw_send_rts_threshold(priv, priv->rts_threshold))
10901 goto error;
10902 }
e43e3c1e 10903#ifdef CONFIG_IPW2200_QOS
b095c381
JK
10904 IPW_DEBUG_QOS("QoS: call ipw_qos_activate\n");
10905 ipw_qos_activate(priv, NULL);
e43e3c1e 10906#endif /* CONFIG_IPW2200_QOS */
43f66a6c
JK
10907
10908 if (ipw_set_random_seed(priv))
10909 goto error;
bf79451e 10910
43f66a6c
JK
10911 /* final state transition to the RUN state */
10912 if (ipw_send_host_complete(priv))
10913 goto error;
10914
e666619e
JK
10915 priv->status |= STATUS_INIT;
10916
10917 ipw_led_init(priv);
10918 ipw_led_radio_on(priv);
10919 priv->notif_missed_beacons = 0;
10920
10921 /* Set hardware WEP key if it is configured. */
10922 if ((priv->capability & CAP_PRIVACY_ON) &&
10923 (priv->ieee->sec.level == SEC_LEVEL_1) &&
10924 !(priv->ieee->host_encrypt || priv->ieee->host_decrypt))
10925 ipw_set_hwcrypto_keys(priv);
43f66a6c
JK
10926
10927 return 0;
bf79451e 10928
0edd5b44 10929 error:
43f66a6c
JK
10930 return -EIO;
10931}
10932
4f36f808
JK
10933/*
10934 * NOTE:
10935 *
10936 * These tables have been tested in conjunction with the
10937 * Intel PRO/Wireless 2200BG and 2915ABG Network Connection Adapters.
10938 *
10939 * Altering this values, using it on other hardware, or in geographies
10940 * not intended for resale of the above mentioned Intel adapters has
10941 * not been tested.
10942 *
48a84770
HBA
10943 * Remember to update the table in README.ipw2200 when changing this
10944 * table.
10945 *
4f36f808
JK
10946 */
10947static const struct ieee80211_geo ipw_geos[] = {
10948 { /* Restricted */
10949 "---",
10950 .bg_channels = 11,
10951 .bg = {{2412, 1}, {2417, 2}, {2422, 3},
10952 {2427, 4}, {2432, 5}, {2437, 6},
10953 {2442, 7}, {2447, 8}, {2452, 9},
10954 {2457, 10}, {2462, 11}},
10955 },
10956
10957 { /* Custom US/Canada */
10958 "ZZF",
10959 .bg_channels = 11,
10960 .bg = {{2412, 1}, {2417, 2}, {2422, 3},
10961 {2427, 4}, {2432, 5}, {2437, 6},
10962 {2442, 7}, {2447, 8}, {2452, 9},
10963 {2457, 10}, {2462, 11}},
10964 .a_channels = 8,
10965 .a = {{5180, 36},
10966 {5200, 40},
10967 {5220, 44},
10968 {5240, 48},
10969 {5260, 52, IEEE80211_CH_PASSIVE_ONLY},
10970 {5280, 56, IEEE80211_CH_PASSIVE_ONLY},
10971 {5300, 60, IEEE80211_CH_PASSIVE_ONLY},
10972 {5320, 64, IEEE80211_CH_PASSIVE_ONLY}},
10973 },
10974
10975 { /* Rest of World */
10976 "ZZD",
10977 .bg_channels = 13,
10978 .bg = {{2412, 1}, {2417, 2}, {2422, 3},
10979 {2427, 4}, {2432, 5}, {2437, 6},
10980 {2442, 7}, {2447, 8}, {2452, 9},
10981 {2457, 10}, {2462, 11}, {2467, 12},
10982 {2472, 13}},
10983 },
10984
10985 { /* Custom USA & Europe & High */
10986 "ZZA",
10987 .bg_channels = 11,
10988 .bg = {{2412, 1}, {2417, 2}, {2422, 3},
10989 {2427, 4}, {2432, 5}, {2437, 6},
10990 {2442, 7}, {2447, 8}, {2452, 9},
10991 {2457, 10}, {2462, 11}},
10992 .a_channels = 13,
10993 .a = {{5180, 36},
10994 {5200, 40},
10995 {5220, 44},
10996 {5240, 48},
10997 {5260, 52, IEEE80211_CH_PASSIVE_ONLY},
10998 {5280, 56, IEEE80211_CH_PASSIVE_ONLY},
10999 {5300, 60, IEEE80211_CH_PASSIVE_ONLY},
11000 {5320, 64, IEEE80211_CH_PASSIVE_ONLY},
11001 {5745, 149},
11002 {5765, 153},
11003 {5785, 157},
11004 {5805, 161},
11005 {5825, 165}},
11006 },
11007
11008 { /* Custom NA & Europe */
11009 "ZZB",
11010 .bg_channels = 11,
11011 .bg = {{2412, 1}, {2417, 2}, {2422, 3},
11012 {2427, 4}, {2432, 5}, {2437, 6},
11013 {2442, 7}, {2447, 8}, {2452, 9},
11014 {2457, 10}, {2462, 11}},
11015 .a_channels = 13,
11016 .a = {{5180, 36},
11017 {5200, 40},
11018 {5220, 44},
11019 {5240, 48},
11020 {5260, 52, IEEE80211_CH_PASSIVE_ONLY},
11021 {5280, 56, IEEE80211_CH_PASSIVE_ONLY},
11022 {5300, 60, IEEE80211_CH_PASSIVE_ONLY},
11023 {5320, 64, IEEE80211_CH_PASSIVE_ONLY},
11024 {5745, 149, IEEE80211_CH_PASSIVE_ONLY},
11025 {5765, 153, IEEE80211_CH_PASSIVE_ONLY},
11026 {5785, 157, IEEE80211_CH_PASSIVE_ONLY},
11027 {5805, 161, IEEE80211_CH_PASSIVE_ONLY},
11028 {5825, 165, IEEE80211_CH_PASSIVE_ONLY}},
11029 },
11030
11031 { /* Custom Japan */
11032 "ZZC",
11033 .bg_channels = 11,
11034 .bg = {{2412, 1}, {2417, 2}, {2422, 3},
11035 {2427, 4}, {2432, 5}, {2437, 6},
11036 {2442, 7}, {2447, 8}, {2452, 9},
11037 {2457, 10}, {2462, 11}},
11038 .a_channels = 4,
11039 .a = {{5170, 34}, {5190, 38},
11040 {5210, 42}, {5230, 46}},
11041 },
11042
11043 { /* Custom */
11044 "ZZM",
11045 .bg_channels = 11,
11046 .bg = {{2412, 1}, {2417, 2}, {2422, 3},
11047 {2427, 4}, {2432, 5}, {2437, 6},
11048 {2442, 7}, {2447, 8}, {2452, 9},
11049 {2457, 10}, {2462, 11}},
11050 },
11051
11052 { /* Europe */
11053 "ZZE",
11054 .bg_channels = 13,
11055 .bg = {{2412, 1}, {2417, 2}, {2422, 3},
11056 {2427, 4}, {2432, 5}, {2437, 6},
11057 {2442, 7}, {2447, 8}, {2452, 9},
11058 {2457, 10}, {2462, 11}, {2467, 12},
11059 {2472, 13}},
11060 .a_channels = 19,
11061 .a = {{5180, 36},
11062 {5200, 40},
11063 {5220, 44},
11064 {5240, 48},
11065 {5260, 52, IEEE80211_CH_PASSIVE_ONLY},
11066 {5280, 56, IEEE80211_CH_PASSIVE_ONLY},
11067 {5300, 60, IEEE80211_CH_PASSIVE_ONLY},
11068 {5320, 64, IEEE80211_CH_PASSIVE_ONLY},
11069 {5500, 100, IEEE80211_CH_PASSIVE_ONLY},
11070 {5520, 104, IEEE80211_CH_PASSIVE_ONLY},
11071 {5540, 108, IEEE80211_CH_PASSIVE_ONLY},
11072 {5560, 112, IEEE80211_CH_PASSIVE_ONLY},
11073 {5580, 116, IEEE80211_CH_PASSIVE_ONLY},
11074 {5600, 120, IEEE80211_CH_PASSIVE_ONLY},
11075 {5620, 124, IEEE80211_CH_PASSIVE_ONLY},
11076 {5640, 128, IEEE80211_CH_PASSIVE_ONLY},
11077 {5660, 132, IEEE80211_CH_PASSIVE_ONLY},
11078 {5680, 136, IEEE80211_CH_PASSIVE_ONLY},
11079 {5700, 140, IEEE80211_CH_PASSIVE_ONLY}},
11080 },
11081
11082 { /* Custom Japan */
11083 "ZZJ",
11084 .bg_channels = 14,
11085 .bg = {{2412, 1}, {2417, 2}, {2422, 3},
11086 {2427, 4}, {2432, 5}, {2437, 6},
11087 {2442, 7}, {2447, 8}, {2452, 9},
11088 {2457, 10}, {2462, 11}, {2467, 12},
11089 {2472, 13}, {2484, 14, IEEE80211_CH_B_ONLY}},
11090 .a_channels = 4,
11091 .a = {{5170, 34}, {5190, 38},
11092 {5210, 42}, {5230, 46}},
11093 },
11094
03520576
JK
11095 { /* Rest of World */
11096 "ZZR",
11097 .bg_channels = 14,
11098 .bg = {{2412, 1}, {2417, 2}, {2422, 3},
11099 {2427, 4}, {2432, 5}, {2437, 6},
11100 {2442, 7}, {2447, 8}, {2452, 9},
11101 {2457, 10}, {2462, 11}, {2467, 12},
11102 {2472, 13}, {2484, 14, IEEE80211_CH_B_ONLY |
11103 IEEE80211_CH_PASSIVE_ONLY}},
11104 },
11105
4f36f808
JK
11106 { /* High Band */
11107 "ZZH",
11108 .bg_channels = 13,
11109 .bg = {{2412, 1}, {2417, 2}, {2422, 3},
11110 {2427, 4}, {2432, 5}, {2437, 6},
11111 {2442, 7}, {2447, 8}, {2452, 9},
11112 {2457, 10}, {2462, 11},
11113 {2467, 12, IEEE80211_CH_PASSIVE_ONLY},
11114 {2472, 13, IEEE80211_CH_PASSIVE_ONLY}},
11115 .a_channels = 4,
11116 .a = {{5745, 149}, {5765, 153},
11117 {5785, 157}, {5805, 161}},
11118 },
11119
11120 { /* Custom Europe */
11121 "ZZG",
11122 .bg_channels = 13,
11123 .bg = {{2412, 1}, {2417, 2}, {2422, 3},
11124 {2427, 4}, {2432, 5}, {2437, 6},
11125 {2442, 7}, {2447, 8}, {2452, 9},
11126 {2457, 10}, {2462, 11},
11127 {2467, 12}, {2472, 13}},
11128 .a_channels = 4,
11129 .a = {{5180, 36}, {5200, 40},
11130 {5220, 44}, {5240, 48}},
11131 },
11132
11133 { /* Europe */
11134 "ZZK",
11135 .bg_channels = 13,
11136 .bg = {{2412, 1}, {2417, 2}, {2422, 3},
11137 {2427, 4}, {2432, 5}, {2437, 6},
11138 {2442, 7}, {2447, 8}, {2452, 9},
11139 {2457, 10}, {2462, 11},
11140 {2467, 12, IEEE80211_CH_PASSIVE_ONLY},
11141 {2472, 13, IEEE80211_CH_PASSIVE_ONLY}},
11142 .a_channels = 24,
11143 .a = {{5180, 36, IEEE80211_CH_PASSIVE_ONLY},
11144 {5200, 40, IEEE80211_CH_PASSIVE_ONLY},
11145 {5220, 44, IEEE80211_CH_PASSIVE_ONLY},
11146 {5240, 48, IEEE80211_CH_PASSIVE_ONLY},
11147 {5260, 52, IEEE80211_CH_PASSIVE_ONLY},
11148 {5280, 56, IEEE80211_CH_PASSIVE_ONLY},
11149 {5300, 60, IEEE80211_CH_PASSIVE_ONLY},
11150 {5320, 64, IEEE80211_CH_PASSIVE_ONLY},
11151 {5500, 100, IEEE80211_CH_PASSIVE_ONLY},
11152 {5520, 104, IEEE80211_CH_PASSIVE_ONLY},
11153 {5540, 108, IEEE80211_CH_PASSIVE_ONLY},
11154 {5560, 112, IEEE80211_CH_PASSIVE_ONLY},
11155 {5580, 116, IEEE80211_CH_PASSIVE_ONLY},
11156 {5600, 120, IEEE80211_CH_PASSIVE_ONLY},
11157 {5620, 124, IEEE80211_CH_PASSIVE_ONLY},
11158 {5640, 128, IEEE80211_CH_PASSIVE_ONLY},
11159 {5660, 132, IEEE80211_CH_PASSIVE_ONLY},
11160 {5680, 136, IEEE80211_CH_PASSIVE_ONLY},
11161 {5700, 140, IEEE80211_CH_PASSIVE_ONLY},
11162 {5745, 149, IEEE80211_CH_PASSIVE_ONLY},
11163 {5765, 153, IEEE80211_CH_PASSIVE_ONLY},
11164 {5785, 157, IEEE80211_CH_PASSIVE_ONLY},
11165 {5805, 161, IEEE80211_CH_PASSIVE_ONLY},
11166 {5825, 165, IEEE80211_CH_PASSIVE_ONLY}},
11167 },
11168
11169 { /* Europe */
11170 "ZZL",
11171 .bg_channels = 11,
11172 .bg = {{2412, 1}, {2417, 2}, {2422, 3},
11173 {2427, 4}, {2432, 5}, {2437, 6},
11174 {2442, 7}, {2447, 8}, {2452, 9},
11175 {2457, 10}, {2462, 11}},
11176 .a_channels = 13,
11177 .a = {{5180, 36, IEEE80211_CH_PASSIVE_ONLY},
11178 {5200, 40, IEEE80211_CH_PASSIVE_ONLY},
11179 {5220, 44, IEEE80211_CH_PASSIVE_ONLY},
11180 {5240, 48, IEEE80211_CH_PASSIVE_ONLY},
11181 {5260, 52, IEEE80211_CH_PASSIVE_ONLY},
11182 {5280, 56, IEEE80211_CH_PASSIVE_ONLY},
11183 {5300, 60, IEEE80211_CH_PASSIVE_ONLY},
11184 {5320, 64, IEEE80211_CH_PASSIVE_ONLY},
11185 {5745, 149, IEEE80211_CH_PASSIVE_ONLY},
11186 {5765, 153, IEEE80211_CH_PASSIVE_ONLY},
11187 {5785, 157, IEEE80211_CH_PASSIVE_ONLY},
11188 {5805, 161, IEEE80211_CH_PASSIVE_ONLY},
11189 {5825, 165, IEEE80211_CH_PASSIVE_ONLY}},
11190 }
afbf30a2
JK
11191};
11192
43f66a6c
JK
11193#define MAX_HW_RESTARTS 5
11194static int ipw_up(struct ipw_priv *priv)
11195{
4f36f808 11196 int rc, i, j;
43f66a6c
JK
11197
11198 if (priv->status & STATUS_EXIT_PENDING)
11199 return -EIO;
11200
f6c5cb7c 11201 if (cmdlog && !priv->cmdlog) {
e6e3f12a 11202 priv->cmdlog = kcalloc(cmdlog, sizeof(*priv->cmdlog),
f6c5cb7c
JK
11203 GFP_KERNEL);
11204 if (priv->cmdlog == NULL) {
11205 IPW_ERROR("Error allocating %d command log entries.\n",
11206 cmdlog);
d0b526b7 11207 return -ENOMEM;
f6c5cb7c 11208 } else {
f6c5cb7c
JK
11209 priv->cmdlog_len = cmdlog;
11210 }
11211 }
11212
0edd5b44 11213 for (i = 0; i < MAX_HW_RESTARTS; i++) {
bf79451e 11214 /* Load the microcode, firmware, and eeprom.
43f66a6c
JK
11215 * Also start the clocks. */
11216 rc = ipw_load(priv);
11217 if (rc) {
a4f6bbb3 11218 IPW_ERROR("Unable to load firmware: %d\n", rc);
43f66a6c
JK
11219 return rc;
11220 }
11221
11222 ipw_init_ordinals(priv);
11223 if (!(priv->config & CFG_CUSTOM_MAC))
11224 eeprom_parse_mac(priv, priv->mac_addr);
11225 memcpy(priv->net_dev->dev_addr, priv->mac_addr, ETH_ALEN);
11226
4f36f808
JK
11227 for (j = 0; j < ARRAY_SIZE(ipw_geos); j++) {
11228 if (!memcmp(&priv->eeprom[EEPROM_COUNTRY_CODE],
11229 ipw_geos[j].name, 3))
11230 break;
11231 }
03520576
JK
11232 if (j == ARRAY_SIZE(ipw_geos)) {
11233 IPW_WARNING("SKU [%c%c%c] not recognized.\n",
11234 priv->eeprom[EEPROM_COUNTRY_CODE + 0],
11235 priv->eeprom[EEPROM_COUNTRY_CODE + 1],
11236 priv->eeprom[EEPROM_COUNTRY_CODE + 2]);
4f36f808 11237 j = 0;
03520576 11238 }
1867b117 11239 if (ieee80211_set_geo(priv->ieee, &ipw_geos[j])) {
4f36f808
JK
11240 IPW_WARNING("Could not set geography.");
11241 return 0;
11242 }
11243
b095c381
JK
11244 if (priv->status & STATUS_RF_KILL_SW) {
11245 IPW_WARNING("Radio disabled by module parameter.\n");
11246 return 0;
11247 } else if (rf_kill_active(priv)) {
11248 IPW_WARNING("Radio Frequency Kill Switch is On:\n"
11249 "Kill switch must be turned off for "
11250 "wireless networking to work.\n");
11251 queue_delayed_work(priv->workqueue, &priv->rf_kill,
11252 2 * HZ);
43f66a6c 11253 return 0;
c848d0af 11254 }
43f66a6c
JK
11255
11256 rc = ipw_config(priv);
11257 if (!rc) {
11258 IPW_DEBUG_INFO("Configured device on count %i\n", i);
e666619e
JK
11259
11260 /* If configure to try and auto-associate, kick
11261 * off a scan. */
c4028958
DH
11262 queue_delayed_work(priv->workqueue,
11263 &priv->request_scan, 0);
afbf30a2 11264
43f66a6c 11265 return 0;
43f66a6c 11266 }
bf79451e 11267
c848d0af 11268 IPW_DEBUG_INFO("Device configuration failed: 0x%08X\n", rc);
43f66a6c
JK
11269 IPW_DEBUG_INFO("Failed to config device on retry %d of %d\n",
11270 i, MAX_HW_RESTARTS);
11271
11272 /* We had an error bringing up the hardware, so take it
11273 * all the way back down so we can try again */
11274 ipw_down(priv);
11275 }
11276
bf79451e 11277 /* tried to restart and config the device for as long as our
43f66a6c 11278 * patience could withstand */
0edd5b44 11279 IPW_ERROR("Unable to initialize device after %d attempts.\n", i);
c848d0af 11280
43f66a6c
JK
11281 return -EIO;
11282}
11283
c4028958 11284static void ipw_bg_up(struct work_struct *work)
c848d0af 11285{
c4028958
DH
11286 struct ipw_priv *priv =
11287 container_of(work, struct ipw_priv, up);
4644151b 11288 mutex_lock(&priv->mutex);
c4028958 11289 ipw_up(priv);
4644151b 11290 mutex_unlock(&priv->mutex);
c848d0af
JK
11291}
11292
b095c381 11293static void ipw_deinit(struct ipw_priv *priv)
43f66a6c 11294{
b095c381
JK
11295 int i;
11296
11297 if (priv->status & STATUS_SCANNING) {
11298 IPW_DEBUG_INFO("Aborting scan during shutdown.\n");
11299 ipw_abort_scan(priv);
11300 }
11301
11302 if (priv->status & STATUS_ASSOCIATED) {
11303 IPW_DEBUG_INFO("Disassociating during shutdown.\n");
11304 ipw_disassociate(priv);
11305 }
11306
11307 ipw_led_shutdown(priv);
11308
11309 /* Wait up to 1s for status to change to not scanning and not
11310 * associated (disassociation can take a while for a ful 802.11
11311 * exchange */
11312 for (i = 1000; i && (priv->status &
11313 (STATUS_DISASSOCIATING |
11314 STATUS_ASSOCIATED | STATUS_SCANNING)); i--)
11315 udelay(10);
11316
11317 if (priv->status & (STATUS_DISASSOCIATING |
11318 STATUS_ASSOCIATED | STATUS_SCANNING))
11319 IPW_DEBUG_INFO("Still associated or scanning...\n");
11320 else
11321 IPW_DEBUG_INFO("Took %dms to de-init\n", 1000 - i);
11322
43f66a6c 11323 /* Attempt to disable the card */
43f66a6c 11324 ipw_send_card_disable(priv, 0);
b095c381
JK
11325
11326 priv->status &= ~STATUS_INIT;
11327}
11328
11329static void ipw_down(struct ipw_priv *priv)
11330{
11331 int exit_pending = priv->status & STATUS_EXIT_PENDING;
11332
11333 priv->status |= STATUS_EXIT_PENDING;
11334
11335 if (ipw_is_init(priv))
11336 ipw_deinit(priv);
11337
11338 /* Wipe out the EXIT_PENDING status bit if we are not actually
11339 * exiting the module */
11340 if (!exit_pending)
11341 priv->status &= ~STATUS_EXIT_PENDING;
43f66a6c
JK
11342
11343 /* tell the device to stop sending interrupts */
11344 ipw_disable_interrupts(priv);
11345
11346 /* Clear all bits but the RF Kill */
b095c381 11347 priv->status &= STATUS_RF_KILL_MASK | STATUS_EXIT_PENDING;
43f66a6c
JK
11348 netif_carrier_off(priv->net_dev);
11349 netif_stop_queue(priv->net_dev);
11350
11351 ipw_stop_nic(priv);
a613bffd
JK
11352
11353 ipw_led_radio_off(priv);
43f66a6c
JK
11354}
11355
c4028958 11356static void ipw_bg_down(struct work_struct *work)
c848d0af 11357{
c4028958
DH
11358 struct ipw_priv *priv =
11359 container_of(work, struct ipw_priv, down);
4644151b 11360 mutex_lock(&priv->mutex);
c4028958 11361 ipw_down(priv);
4644151b 11362 mutex_unlock(&priv->mutex);
43f66a6c
JK
11363}
11364
11365/* Called by register_netdev() */
11366static int ipw_net_init(struct net_device *dev)
11367{
11368 struct ipw_priv *priv = ieee80211_priv(dev);
4644151b 11369 mutex_lock(&priv->mutex);
43f66a6c 11370
c848d0af 11371 if (ipw_up(priv)) {
4644151b 11372 mutex_unlock(&priv->mutex);
43f66a6c 11373 return -EIO;
c848d0af 11374 }
43f66a6c 11375
4644151b 11376 mutex_unlock(&priv->mutex);
43f66a6c
JK
11377 return 0;
11378}
11379
11380/* PCI driver stuff */
11381static struct pci_device_id card_ids[] = {
11382 {PCI_VENDOR_ID_INTEL, 0x1043, 0x8086, 0x2701, 0, 0, 0},
11383 {PCI_VENDOR_ID_INTEL, 0x1043, 0x8086, 0x2702, 0, 0, 0},
11384 {PCI_VENDOR_ID_INTEL, 0x1043, 0x8086, 0x2711, 0, 0, 0},
11385 {PCI_VENDOR_ID_INTEL, 0x1043, 0x8086, 0x2712, 0, 0, 0},
11386 {PCI_VENDOR_ID_INTEL, 0x1043, 0x8086, 0x2721, 0, 0, 0},
11387 {PCI_VENDOR_ID_INTEL, 0x1043, 0x8086, 0x2722, 0, 0, 0},
11388 {PCI_VENDOR_ID_INTEL, 0x1043, 0x8086, 0x2731, 0, 0, 0},
11389 {PCI_VENDOR_ID_INTEL, 0x1043, 0x8086, 0x2732, 0, 0, 0},
11390 {PCI_VENDOR_ID_INTEL, 0x1043, 0x8086, 0x2741, 0, 0, 0},
11391 {PCI_VENDOR_ID_INTEL, 0x1043, 0x103c, 0x2741, 0, 0, 0},
11392 {PCI_VENDOR_ID_INTEL, 0x1043, 0x8086, 0x2742, 0, 0, 0},
11393 {PCI_VENDOR_ID_INTEL, 0x1043, 0x8086, 0x2751, 0, 0, 0},
11394 {PCI_VENDOR_ID_INTEL, 0x1043, 0x8086, 0x2752, 0, 0, 0},
11395 {PCI_VENDOR_ID_INTEL, 0x1043, 0x8086, 0x2753, 0, 0, 0},
11396 {PCI_VENDOR_ID_INTEL, 0x1043, 0x8086, 0x2754, 0, 0, 0},
11397 {PCI_VENDOR_ID_INTEL, 0x1043, 0x8086, 0x2761, 0, 0, 0},
11398 {PCI_VENDOR_ID_INTEL, 0x1043, 0x8086, 0x2762, 0, 0, 0},
11399 {PCI_VENDOR_ID_INTEL, 0x104f, PCI_ANY_ID, PCI_ANY_ID, 0, 0, 0},
0edd5b44 11400 {PCI_VENDOR_ID_INTEL, 0x4220, PCI_ANY_ID, PCI_ANY_ID, 0, 0, 0}, /* BG */
a613bffd 11401 {PCI_VENDOR_ID_INTEL, 0x4221, PCI_ANY_ID, PCI_ANY_ID, 0, 0, 0}, /* BG */
0edd5b44
JG
11402 {PCI_VENDOR_ID_INTEL, 0x4223, PCI_ANY_ID, PCI_ANY_ID, 0, 0, 0}, /* ABG */
11403 {PCI_VENDOR_ID_INTEL, 0x4224, PCI_ANY_ID, PCI_ANY_ID, 0, 0, 0}, /* ABG */
bf79451e 11404
43f66a6c
JK
11405 /* required last entry */
11406 {0,}
11407};
11408
11409MODULE_DEVICE_TABLE(pci, card_ids);
11410
11411static struct attribute *ipw_sysfs_entries[] = {
11412 &dev_attr_rf_kill.attr,
11413 &dev_attr_direct_dword.attr,
11414 &dev_attr_indirect_byte.attr,
11415 &dev_attr_indirect_dword.attr,
11416 &dev_attr_mem_gpio_reg.attr,
11417 &dev_attr_command_event_reg.attr,
11418 &dev_attr_nic_type.attr,
11419 &dev_attr_status.attr,
11420 &dev_attr_cfg.attr,
b39860c6
JK
11421 &dev_attr_error.attr,
11422 &dev_attr_event_log.attr,
f6c5cb7c 11423 &dev_attr_cmd_log.attr,
43f66a6c
JK
11424 &dev_attr_eeprom_delay.attr,
11425 &dev_attr_ucode_version.attr,
11426 &dev_attr_rtc.attr,
a613bffd
JK
11427 &dev_attr_scan_age.attr,
11428 &dev_attr_led.attr,
b095c381
JK
11429 &dev_attr_speed_scan.attr,
11430 &dev_attr_net_stats.attr,
375dd244 11431 &dev_attr_channels.attr,
d685b8c2
ZY
11432#ifdef CONFIG_IPW2200_PROMISCUOUS
11433 &dev_attr_rtap_iface.attr,
11434 &dev_attr_rtap_filter.attr,
11435#endif
43f66a6c
JK
11436 NULL
11437};
11438
11439static struct attribute_group ipw_attribute_group = {
11440 .name = NULL, /* put in device directory */
0edd5b44 11441 .attrs = ipw_sysfs_entries,
43f66a6c
JK
11442};
11443
d685b8c2
ZY
11444#ifdef CONFIG_IPW2200_PROMISCUOUS
11445static int ipw_prom_open(struct net_device *dev)
11446{
11447 struct ipw_prom_priv *prom_priv = ieee80211_priv(dev);
11448 struct ipw_priv *priv = prom_priv->priv;
11449
11450 IPW_DEBUG_INFO("prom dev->open\n");
11451 netif_carrier_off(dev);
11452 netif_stop_queue(dev);
11453
11454 if (priv->ieee->iw_mode != IW_MODE_MONITOR) {
11455 priv->sys_config.accept_all_data_frames = 1;
11456 priv->sys_config.accept_non_directed_frames = 1;
11457 priv->sys_config.accept_all_mgmt_bcpr = 1;
11458 priv->sys_config.accept_all_mgmt_frames = 1;
11459
11460 ipw_send_system_config(priv);
11461 }
11462
11463 return 0;
11464}
11465
11466static int ipw_prom_stop(struct net_device *dev)
11467{
11468 struct ipw_prom_priv *prom_priv = ieee80211_priv(dev);
11469 struct ipw_priv *priv = prom_priv->priv;
11470
11471 IPW_DEBUG_INFO("prom dev->stop\n");
11472
11473 if (priv->ieee->iw_mode != IW_MODE_MONITOR) {
11474 priv->sys_config.accept_all_data_frames = 0;
11475 priv->sys_config.accept_non_directed_frames = 0;
11476 priv->sys_config.accept_all_mgmt_bcpr = 0;
11477 priv->sys_config.accept_all_mgmt_frames = 0;
11478
11479 ipw_send_system_config(priv);
11480 }
11481
11482 return 0;
11483}
11484
11485static int ipw_prom_hard_start_xmit(struct sk_buff *skb, struct net_device *dev)
11486{
11487 IPW_DEBUG_INFO("prom dev->xmit\n");
11488 netif_stop_queue(dev);
11489 return -EOPNOTSUPP;
11490}
11491
11492static struct net_device_stats *ipw_prom_get_stats(struct net_device *dev)
11493{
11494 struct ipw_prom_priv *prom_priv = ieee80211_priv(dev);
11495 return &prom_priv->ieee->stats;
11496}
11497
11498static int ipw_prom_alloc(struct ipw_priv *priv)
11499{
11500 int rc = 0;
11501
11502 if (priv->prom_net_dev)
11503 return -EPERM;
11504
11505 priv->prom_net_dev = alloc_ieee80211(sizeof(struct ipw_prom_priv));
11506 if (priv->prom_net_dev == NULL)
11507 return -ENOMEM;
11508
11509 priv->prom_priv = ieee80211_priv(priv->prom_net_dev);
11510 priv->prom_priv->ieee = netdev_priv(priv->prom_net_dev);
11511 priv->prom_priv->priv = priv;
11512
11513 strcpy(priv->prom_net_dev->name, "rtap%d");
11514
11515 priv->prom_net_dev->type = ARPHRD_IEEE80211_RADIOTAP;
11516 priv->prom_net_dev->open = ipw_prom_open;
11517 priv->prom_net_dev->stop = ipw_prom_stop;
11518 priv->prom_net_dev->get_stats = ipw_prom_get_stats;
11519 priv->prom_net_dev->hard_start_xmit = ipw_prom_hard_start_xmit;
11520
11521 priv->prom_priv->ieee->iw_mode = IW_MODE_MONITOR;
11522
11523 rc = register_netdev(priv->prom_net_dev);
11524 if (rc) {
11525 free_ieee80211(priv->prom_net_dev);
11526 priv->prom_net_dev = NULL;
11527 return rc;
11528 }
11529
11530 return 0;
11531}
11532
11533static void ipw_prom_free(struct ipw_priv *priv)
11534{
11535 if (!priv->prom_net_dev)
11536 return;
11537
11538 unregister_netdev(priv->prom_net_dev);
11539 free_ieee80211(priv->prom_net_dev);
11540
11541 priv->prom_net_dev = NULL;
11542}
11543
11544#endif
11545
11546
0edd5b44 11547static int ipw_pci_probe(struct pci_dev *pdev, const struct pci_device_id *ent)
43f66a6c
JK
11548{
11549 int err = 0;
11550 struct net_device *net_dev;
11551 void __iomem *base;
11552 u32 length, val;
11553 struct ipw_priv *priv;
afbf30a2 11554 int i;
43f66a6c
JK
11555
11556 net_dev = alloc_ieee80211(sizeof(struct ipw_priv));
11557 if (net_dev == NULL) {
11558 err = -ENOMEM;
11559 goto out;
11560 }
11561
11562 priv = ieee80211_priv(net_dev);
11563 priv->ieee = netdev_priv(net_dev);
a613bffd 11564
43f66a6c
JK
11565 priv->net_dev = net_dev;
11566 priv->pci_dev = pdev;
43f66a6c 11567 ipw_debug_level = debug;
89c318ed 11568 spin_lock_init(&priv->irq_lock);
43f66a6c 11569 spin_lock_init(&priv->lock);
afbf30a2
JK
11570 for (i = 0; i < IPW_IBSS_MAC_HASH_SIZE; i++)
11571 INIT_LIST_HEAD(&priv->ibss_mac_hash[i]);
43f66a6c 11572
4644151b 11573 mutex_init(&priv->mutex);
43f66a6c
JK
11574 if (pci_enable_device(pdev)) {
11575 err = -ENODEV;
11576 goto out_free_ieee80211;
11577 }
11578
11579 pci_set_master(pdev);
11580
0e08b44e 11581 err = pci_set_dma_mask(pdev, DMA_32BIT_MASK);
bf79451e 11582 if (!err)
0e08b44e 11583 err = pci_set_consistent_dma_mask(pdev, DMA_32BIT_MASK);
43f66a6c
JK
11584 if (err) {
11585 printk(KERN_WARNING DRV_NAME ": No suitable DMA available.\n");
11586 goto out_pci_disable_device;
11587 }
11588
11589 pci_set_drvdata(pdev, priv);
11590
11591 err = pci_request_regions(pdev, DRV_NAME);
bf79451e 11592 if (err)
43f66a6c
JK
11593 goto out_pci_disable_device;
11594
bf79451e 11595 /* We disable the RETRY_TIMEOUT register (0x41) to keep
43f66a6c 11596 * PCI Tx retries from interfering with C3 CPU state */
bf79451e
JG
11597 pci_read_config_dword(pdev, 0x40, &val);
11598 if ((val & 0x0000ff00) != 0)
43f66a6c 11599 pci_write_config_dword(pdev, 0x40, val & 0xffff00ff);
bf79451e 11600
43f66a6c
JK
11601 length = pci_resource_len(pdev, 0);
11602 priv->hw_len = length;
bf79451e 11603
43f66a6c
JK
11604 base = ioremap_nocache(pci_resource_start(pdev, 0), length);
11605 if (!base) {
11606 err = -ENODEV;
11607 goto out_pci_release_regions;
11608 }
11609
11610 priv->hw_base = base;
11611 IPW_DEBUG_INFO("pci_resource_len = 0x%08x\n", length);
11612 IPW_DEBUG_INFO("pci_resource_base = %p\n", base);
11613
11614 err = ipw_setup_deferred_work(priv);
11615 if (err) {
11616 IPW_ERROR("Unable to setup deferred work\n");
11617 goto out_iounmap;
11618 }
11619
b095c381 11620 ipw_sw_reset(priv, 1);
43f66a6c 11621
1fb9df5d 11622 err = request_irq(pdev->irq, ipw_isr, IRQF_SHARED, DRV_NAME, priv);
43f66a6c
JK
11623 if (err) {
11624 IPW_ERROR("Error allocating IRQ %d\n", pdev->irq);
11625 goto out_destroy_workqueue;
11626 }
11627
43f66a6c
JK
11628 SET_NETDEV_DEV(net_dev, &pdev->dev);
11629
4644151b 11630 mutex_lock(&priv->mutex);
c848d0af 11631
43f66a6c
JK
11632 priv->ieee->hard_start_xmit = ipw_net_hard_start_xmit;
11633 priv->ieee->set_security = shim__set_security;
227d2dc1 11634 priv->ieee->is_queue_full = ipw_net_is_queue_full;
43f66a6c 11635
e43e3c1e 11636#ifdef CONFIG_IPW2200_QOS
a5cf4fe6 11637 priv->ieee->is_qos_active = ipw_is_qos_active;
3b9990cb
JK
11638 priv->ieee->handle_probe_response = ipw_handle_beacon;
11639 priv->ieee->handle_beacon = ipw_handle_probe_response;
11640 priv->ieee->handle_assoc_response = ipw_handle_assoc_response;
e43e3c1e 11641#endif /* CONFIG_IPW2200_QOS */
b095c381 11642
c848d0af
JK
11643 priv->ieee->perfect_rssi = -20;
11644 priv->ieee->worst_rssi = -85;
43f66a6c
JK
11645
11646 net_dev->open = ipw_net_open;
11647 net_dev->stop = ipw_net_stop;
11648 net_dev->init = ipw_net_init;
11649 net_dev->get_stats = ipw_net_get_stats;
11650 net_dev->set_multicast_list = ipw_net_set_multicast_list;
11651 net_dev->set_mac_address = ipw_net_set_mac_address;
97a78ca9 11652 priv->wireless_data.spy_data = &priv->ieee->spy_data;
97a78ca9 11653 net_dev->wireless_data = &priv->wireless_data;
43f66a6c
JK
11654 net_dev->wireless_handlers = &ipw_wx_handler_def;
11655 net_dev->ethtool_ops = &ipw_ethtool_ops;
11656 net_dev->irq = pdev->irq;
0edd5b44 11657 net_dev->base_addr = (unsigned long)priv->hw_base;
43f66a6c
JK
11658 net_dev->mem_start = pci_resource_start(pdev, 0);
11659 net_dev->mem_end = net_dev->mem_start + pci_resource_len(pdev, 0) - 1;
11660
11661 err = sysfs_create_group(&pdev->dev.kobj, &ipw_attribute_group);
11662 if (err) {
11663 IPW_ERROR("failed to create sysfs device attributes\n");
4644151b 11664 mutex_unlock(&priv->mutex);
43f66a6c
JK
11665 goto out_release_irq;
11666 }
11667
4644151b 11668 mutex_unlock(&priv->mutex);
43f66a6c
JK
11669 err = register_netdev(net_dev);
11670 if (err) {
11671 IPW_ERROR("failed to register network device\n");
a613bffd 11672 goto out_remove_sysfs;
43f66a6c 11673 }
48a84770 11674
d685b8c2
ZY
11675#ifdef CONFIG_IPW2200_PROMISCUOUS
11676 if (rtap_iface) {
11677 err = ipw_prom_alloc(priv);
11678 if (err) {
11679 IPW_ERROR("Failed to register promiscuous network "
11680 "device (error %d).\n", err);
11681 unregister_netdev(priv->net_dev);
11682 goto out_remove_sysfs;
11683 }
11684 }
11685#endif
11686
48a84770
HBA
11687 printk(KERN_INFO DRV_NAME ": Detected geography %s (%d 802.11bg "
11688 "channels, %d 802.11a channels)\n",
11689 priv->ieee->geo.name, priv->ieee->geo.bg_channels,
11690 priv->ieee->geo.a_channels);
11691
43f66a6c
JK
11692 return 0;
11693
a613bffd 11694 out_remove_sysfs:
43f66a6c 11695 sysfs_remove_group(&pdev->dev.kobj, &ipw_attribute_group);
0edd5b44 11696 out_release_irq:
43f66a6c 11697 free_irq(pdev->irq, priv);
0edd5b44 11698 out_destroy_workqueue:
43f66a6c
JK
11699 destroy_workqueue(priv->workqueue);
11700 priv->workqueue = NULL;
0edd5b44 11701 out_iounmap:
43f66a6c 11702 iounmap(priv->hw_base);
0edd5b44 11703 out_pci_release_regions:
43f66a6c 11704 pci_release_regions(pdev);
0edd5b44 11705 out_pci_disable_device:
43f66a6c
JK
11706 pci_disable_device(pdev);
11707 pci_set_drvdata(pdev, NULL);
0edd5b44 11708 out_free_ieee80211:
43f66a6c 11709 free_ieee80211(priv->net_dev);
0edd5b44 11710 out:
43f66a6c
JK
11711 return err;
11712}
11713
11714static void ipw_pci_remove(struct pci_dev *pdev)
11715{
11716 struct ipw_priv *priv = pci_get_drvdata(pdev);
afbf30a2
JK
11717 struct list_head *p, *q;
11718 int i;
b095c381 11719
43f66a6c
JK
11720 if (!priv)
11721 return;
11722
4644151b 11723 mutex_lock(&priv->mutex);
43f66a6c 11724
afbf30a2 11725 priv->status |= STATUS_EXIT_PENDING;
43f66a6c 11726 ipw_down(priv);
43f66a6c
JK
11727 sysfs_remove_group(&pdev->dev.kobj, &ipw_attribute_group);
11728
4644151b 11729 mutex_unlock(&priv->mutex);
43f66a6c
JK
11730
11731 unregister_netdev(priv->net_dev);
11732
11733 if (priv->rxq) {
11734 ipw_rx_queue_free(priv, priv->rxq);
11735 priv->rxq = NULL;
11736 }
11737 ipw_tx_queue_free(priv);
11738
f6c5cb7c
JK
11739 if (priv->cmdlog) {
11740 kfree(priv->cmdlog);
11741 priv->cmdlog = NULL;
11742 }
43f66a6c
JK
11743 /* ipw_down will ensure that there is no more pending work
11744 * in the workqueue's, so we can safely remove them now. */
a613bffd
JK
11745 cancel_delayed_work(&priv->adhoc_check);
11746 cancel_delayed_work(&priv->gather_stats);
11747 cancel_delayed_work(&priv->request_scan);
11748 cancel_delayed_work(&priv->rf_kill);
11749 cancel_delayed_work(&priv->scan_check);
11750 destroy_workqueue(priv->workqueue);
11751 priv->workqueue = NULL;
43f66a6c 11752
afbf30a2
JK
11753 /* Free MAC hash list for ADHOC */
11754 for (i = 0; i < IPW_IBSS_MAC_HASH_SIZE; i++) {
11755 list_for_each_safe(p, q, &priv->ibss_mac_hash[i]) {
afbf30a2 11756 list_del(p);
489f4458 11757 kfree(list_entry(p, struct ipw_ibss_seq, list));
afbf30a2
JK
11758 }
11759 }
11760
8f760780
JJ
11761 kfree(priv->error);
11762 priv->error = NULL;
43f66a6c 11763
d685b8c2
ZY
11764#ifdef CONFIG_IPW2200_PROMISCUOUS
11765 ipw_prom_free(priv);
11766#endif
11767
43f66a6c
JK
11768 free_irq(pdev->irq, priv);
11769 iounmap(priv->hw_base);
11770 pci_release_regions(pdev);
11771 pci_disable_device(pdev);
11772 pci_set_drvdata(pdev, NULL);
11773 free_ieee80211(priv->net_dev);
afbf30a2 11774 free_firmware();
43f66a6c
JK
11775}
11776
43f66a6c 11777#ifdef CONFIG_PM
583a4e88 11778static int ipw_pci_suspend(struct pci_dev *pdev, pm_message_t state)
43f66a6c
JK
11779{
11780 struct ipw_priv *priv = pci_get_drvdata(pdev);
11781 struct net_device *dev = priv->net_dev;
11782
11783 printk(KERN_INFO "%s: Going into suspend...\n", dev->name);
11784
0edd5b44 11785 /* Take down the device; powers it off, etc. */
43f66a6c
JK
11786 ipw_down(priv);
11787
11788 /* Remove the PRESENT state of the device */
11789 netif_device_detach(dev);
11790
43f66a6c 11791 pci_save_state(pdev);
43f66a6c 11792 pci_disable_device(pdev);
583a4e88 11793 pci_set_power_state(pdev, pci_choose_state(pdev, state));
bf79451e 11794
43f66a6c
JK
11795 return 0;
11796}
11797
11798static int ipw_pci_resume(struct pci_dev *pdev)
11799{
11800 struct ipw_priv *priv = pci_get_drvdata(pdev);
11801 struct net_device *dev = priv->net_dev;
02e0e5e9 11802 int err;
43f66a6c 11803 u32 val;
bf79451e 11804
43f66a6c
JK
11805 printk(KERN_INFO "%s: Coming out of suspend...\n", dev->name);
11806
ea2b26e0 11807 pci_set_power_state(pdev, PCI_D0);
02e0e5e9
JL
11808 err = pci_enable_device(pdev);
11809 if (err) {
11810 printk(KERN_ERR "%s: pci_enable_device failed on resume\n",
11811 dev->name);
11812 return err;
11813 }
43f66a6c 11814 pci_restore_state(pdev);
ea2b26e0 11815
43f66a6c
JK
11816 /*
11817 * Suspend/Resume resets the PCI configuration space, so we have to
11818 * re-disable the RETRY_TIMEOUT register (0x41) to keep PCI Tx retries
11819 * from interfering with C3 CPU state. pci_restore_state won't help
11820 * here since it only restores the first 64 bytes pci config header.
11821 */
bf79451e
JG
11822 pci_read_config_dword(pdev, 0x40, &val);
11823 if ((val & 0x0000ff00) != 0)
43f66a6c
JK
11824 pci_write_config_dword(pdev, 0x40, val & 0xffff00ff);
11825
11826 /* Set the device back into the PRESENT state; this will also wake
11827 * the queue of needed */
11828 netif_device_attach(dev);
11829
11830 /* Bring the device back up */
11831 queue_work(priv->workqueue, &priv->up);
bf79451e 11832
43f66a6c
JK
11833 return 0;
11834}
11835#endif
11836
c8c22c94
ZY
11837static void ipw_pci_shutdown(struct pci_dev *pdev)
11838{
11839 struct ipw_priv *priv = pci_get_drvdata(pdev);
11840
11841 /* Take down the device; powers it off, etc. */
11842 ipw_down(priv);
11843
11844 pci_disable_device(pdev);
11845}
11846
43f66a6c
JK
11847/* driver initialization stuff */
11848static struct pci_driver ipw_driver = {
11849 .name = DRV_NAME,
11850 .id_table = card_ids,
11851 .probe = ipw_pci_probe,
11852 .remove = __devexit_p(ipw_pci_remove),
11853#ifdef CONFIG_PM
11854 .suspend = ipw_pci_suspend,
11855 .resume = ipw_pci_resume,
11856#endif
c8c22c94 11857 .shutdown = ipw_pci_shutdown,
43f66a6c
JK
11858};
11859
11860static int __init ipw_init(void)
11861{
11862 int ret;
11863
11864 printk(KERN_INFO DRV_NAME ": " DRV_DESCRIPTION ", " DRV_VERSION "\n");
11865 printk(KERN_INFO DRV_NAME ": " DRV_COPYRIGHT "\n");
11866
29917620 11867 ret = pci_register_driver(&ipw_driver);
43f66a6c
JK
11868 if (ret) {
11869 IPW_ERROR("Unable to initialize PCI module\n");
11870 return ret;
11871 }
11872
0edd5b44 11873 ret = driver_create_file(&ipw_driver.driver, &driver_attr_debug_level);
43f66a6c
JK
11874 if (ret) {
11875 IPW_ERROR("Unable to create driver sysfs file\n");
11876 pci_unregister_driver(&ipw_driver);
11877 return ret;
11878 }
11879
11880 return ret;
11881}
11882
11883static void __exit ipw_exit(void)
11884{
11885 driver_remove_file(&ipw_driver.driver, &driver_attr_debug_level);
11886 pci_unregister_driver(&ipw_driver);
11887}
11888
11889module_param(disable, int, 0444);
11890MODULE_PARM_DESC(disable, "manually disable the radio (default 0 [radio on])");
11891
11892module_param(associate, int, 0444);
11893MODULE_PARM_DESC(associate, "auto associate when scanning (default on)");
11894
11895module_param(auto_create, int, 0444);
11896MODULE_PARM_DESC(auto_create, "auto create adhoc network (default on)");
11897
a613bffd 11898module_param(led, int, 0444);
c848d0af 11899MODULE_PARM_DESC(led, "enable led control on some systems (default 0 off)\n");
a613bffd 11900
43f66a6c
JK
11901module_param(debug, int, 0444);
11902MODULE_PARM_DESC(debug, "debug output mask");
11903
11904module_param(channel, int, 0444);
bf79451e 11905MODULE_PARM_DESC(channel, "channel to limit associate to (default 0 [ANY])");
43f66a6c 11906
d685b8c2
ZY
11907#ifdef CONFIG_IPW2200_PROMISCUOUS
11908module_param(rtap_iface, int, 0444);
11909MODULE_PARM_DESC(rtap_iface, "create the rtap interface (1 - create, default 0)");
11910#endif
11911
e43e3c1e 11912#ifdef CONFIG_IPW2200_QOS
b095c381
JK
11913module_param(qos_enable, int, 0444);
11914MODULE_PARM_DESC(qos_enable, "enable all QoS functionalitis");
11915
11916module_param(qos_burst_enable, int, 0444);
11917MODULE_PARM_DESC(qos_burst_enable, "enable QoS burst mode");
11918
11919module_param(qos_no_ack_mask, int, 0444);
11920MODULE_PARM_DESC(qos_no_ack_mask, "mask Tx_Queue to no ack");
43f66a6c 11921
b095c381
JK
11922module_param(burst_duration_CCK, int, 0444);
11923MODULE_PARM_DESC(burst_duration_CCK, "set CCK burst value");
11924
11925module_param(burst_duration_OFDM, int, 0444);
11926MODULE_PARM_DESC(burst_duration_OFDM, "set OFDM burst value");
e43e3c1e 11927#endif /* CONFIG_IPW2200_QOS */
b095c381
JK
11928
11929#ifdef CONFIG_IPW2200_MONITOR
43f66a6c
JK
11930module_param(mode, int, 0444);
11931MODULE_PARM_DESC(mode, "network mode (0=BSS,1=IBSS,2=Monitor)");
11932#else
11933module_param(mode, int, 0444);
11934MODULE_PARM_DESC(mode, "network mode (0=BSS,1=IBSS)");
11935#endif
11936
810dabd4
ZY
11937module_param(bt_coexist, int, 0444);
11938MODULE_PARM_DESC(bt_coexist, "enable bluetooth coexistence (default off)");
11939
b095c381 11940module_param(hwcrypto, int, 0444);
bde37d03 11941MODULE_PARM_DESC(hwcrypto, "enable hardware crypto (default off)");
b095c381 11942
f6c5cb7c
JK
11943module_param(cmdlog, int, 0444);
11944MODULE_PARM_DESC(cmdlog,
11945 "allocate a ring buffer for logging firmware commands");
11946
4bfdb91d
ZY
11947module_param(roaming, int, 0444);
11948MODULE_PARM_DESC(roaming, "enable roaming support (default on)");
11949
d2b83e12
ZY
11950module_param(antenna, int, 0444);
11951MODULE_PARM_DESC(antenna, "select antenna 1=Main, 3=Aux, default 0 [both], 2=slow_diversity (choose the one with lower background noise)");
11952
43f66a6c
JK
11953module_exit(ipw_exit);
11954module_init(ipw_init);