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1 /* bnx2.c: QLogic bnx2 network driver.
2 *
3 * Copyright (c) 2004-2014 Broadcom Corporation
4 * Copyright (c) 2014-2015 QLogic Corporation
5 *
6 * This program is free software; you can redistribute it and/or modify
7 * it under the terms of the GNU General Public License as published by
8 * the Free Software Foundation.
9 *
10 * Written by: Michael Chan (mchan@broadcom.com)
11 */
12
13 #define pr_fmt(fmt) KBUILD_MODNAME ": " fmt
14
15 #include <linux/module.h>
16 #include <linux/moduleparam.h>
17
18 #include <linux/stringify.h>
19 #include <linux/kernel.h>
20 #include <linux/timer.h>
21 #include <linux/errno.h>
22 #include <linux/ioport.h>
23 #include <linux/slab.h>
24 #include <linux/vmalloc.h>
25 #include <linux/interrupt.h>
26 #include <linux/pci.h>
27 #include <linux/netdevice.h>
28 #include <linux/etherdevice.h>
29 #include <linux/skbuff.h>
30 #include <linux/dma-mapping.h>
31 #include <linux/bitops.h>
32 #include <asm/io.h>
33 #include <asm/irq.h>
34 #include <linux/delay.h>
35 #include <asm/byteorder.h>
36 #include <asm/page.h>
37 #include <linux/time.h>
38 #include <linux/ethtool.h>
39 #include <linux/mii.h>
40 #include <linux/if.h>
41 #include <linux/if_vlan.h>
42 #include <net/ip.h>
43 #include <net/tcp.h>
44 #include <net/checksum.h>
45 #include <linux/workqueue.h>
46 #include <linux/crc32.h>
47 #include <linux/prefetch.h>
48 #include <linux/cache.h>
49 #include <linux/firmware.h>
50 #include <linux/log2.h>
51 #include <linux/aer.h>
52
53 #if defined(CONFIG_CNIC) || defined(CONFIG_CNIC_MODULE)
54 #define BCM_CNIC 1
55 #include "cnic_if.h"
56 #endif
57 #include "bnx2.h"
58 #include "bnx2_fw.h"
59
60 #define DRV_MODULE_NAME "bnx2"
61 #define DRV_MODULE_VERSION "2.2.6"
62 #define DRV_MODULE_RELDATE "January 29, 2014"
63 #define FW_MIPS_FILE_06 "bnx2/bnx2-mips-06-6.2.3.fw"
64 #define FW_RV2P_FILE_06 "bnx2/bnx2-rv2p-06-6.0.15.fw"
65 #define FW_MIPS_FILE_09 "bnx2/bnx2-mips-09-6.2.1b.fw"
66 #define FW_RV2P_FILE_09_Ax "bnx2/bnx2-rv2p-09ax-6.0.17.fw"
67 #define FW_RV2P_FILE_09 "bnx2/bnx2-rv2p-09-6.0.17.fw"
68
69 #define RUN_AT(x) (jiffies + (x))
70
71 /* Time in jiffies before concluding the transmitter is hung. */
72 #define TX_TIMEOUT (5*HZ)
73
74 static char version[] =
75 "QLogic " DRV_MODULE_NAME " Gigabit Ethernet Driver v" DRV_MODULE_VERSION " (" DRV_MODULE_RELDATE ")\n";
76
77 MODULE_AUTHOR("Michael Chan <mchan@broadcom.com>");
78 MODULE_DESCRIPTION("QLogic BCM5706/5708/5709/5716 Driver");
79 MODULE_LICENSE("GPL");
80 MODULE_VERSION(DRV_MODULE_VERSION);
81 MODULE_FIRMWARE(FW_MIPS_FILE_06);
82 MODULE_FIRMWARE(FW_RV2P_FILE_06);
83 MODULE_FIRMWARE(FW_MIPS_FILE_09);
84 MODULE_FIRMWARE(FW_RV2P_FILE_09);
85 MODULE_FIRMWARE(FW_RV2P_FILE_09_Ax);
86
87 static int disable_msi = 0;
88
89 module_param(disable_msi, int, S_IRUGO);
90 MODULE_PARM_DESC(disable_msi, "Disable Message Signaled Interrupt (MSI)");
91
92 typedef enum {
93 BCM5706 = 0,
94 NC370T,
95 NC370I,
96 BCM5706S,
97 NC370F,
98 BCM5708,
99 BCM5708S,
100 BCM5709,
101 BCM5709S,
102 BCM5716,
103 BCM5716S,
104 } board_t;
105
106 /* indexed by board_t, above */
107 static struct {
108 char *name;
109 } board_info[] = {
110 { "Broadcom NetXtreme II BCM5706 1000Base-T" },
111 { "HP NC370T Multifunction Gigabit Server Adapter" },
112 { "HP NC370i Multifunction Gigabit Server Adapter" },
113 { "Broadcom NetXtreme II BCM5706 1000Base-SX" },
114 { "HP NC370F Multifunction Gigabit Server Adapter" },
115 { "Broadcom NetXtreme II BCM5708 1000Base-T" },
116 { "Broadcom NetXtreme II BCM5708 1000Base-SX" },
117 { "Broadcom NetXtreme II BCM5709 1000Base-T" },
118 { "Broadcom NetXtreme II BCM5709 1000Base-SX" },
119 { "Broadcom NetXtreme II BCM5716 1000Base-T" },
120 { "Broadcom NetXtreme II BCM5716 1000Base-SX" },
121 };
122
123 static const struct pci_device_id bnx2_pci_tbl[] = {
124 { PCI_VENDOR_ID_BROADCOM, PCI_DEVICE_ID_NX2_5706,
125 PCI_VENDOR_ID_HP, 0x3101, 0, 0, NC370T },
126 { PCI_VENDOR_ID_BROADCOM, PCI_DEVICE_ID_NX2_5706,
127 PCI_VENDOR_ID_HP, 0x3106, 0, 0, NC370I },
128 { PCI_VENDOR_ID_BROADCOM, PCI_DEVICE_ID_NX2_5706,
129 PCI_ANY_ID, PCI_ANY_ID, 0, 0, BCM5706 },
130 { PCI_VENDOR_ID_BROADCOM, PCI_DEVICE_ID_NX2_5708,
131 PCI_ANY_ID, PCI_ANY_ID, 0, 0, BCM5708 },
132 { PCI_VENDOR_ID_BROADCOM, PCI_DEVICE_ID_NX2_5706S,
133 PCI_VENDOR_ID_HP, 0x3102, 0, 0, NC370F },
134 { PCI_VENDOR_ID_BROADCOM, PCI_DEVICE_ID_NX2_5706S,
135 PCI_ANY_ID, PCI_ANY_ID, 0, 0, BCM5706S },
136 { PCI_VENDOR_ID_BROADCOM, PCI_DEVICE_ID_NX2_5708S,
137 PCI_ANY_ID, PCI_ANY_ID, 0, 0, BCM5708S },
138 { PCI_VENDOR_ID_BROADCOM, PCI_DEVICE_ID_NX2_5709,
139 PCI_ANY_ID, PCI_ANY_ID, 0, 0, BCM5709 },
140 { PCI_VENDOR_ID_BROADCOM, PCI_DEVICE_ID_NX2_5709S,
141 PCI_ANY_ID, PCI_ANY_ID, 0, 0, BCM5709S },
142 { PCI_VENDOR_ID_BROADCOM, 0x163b,
143 PCI_ANY_ID, PCI_ANY_ID, 0, 0, BCM5716 },
144 { PCI_VENDOR_ID_BROADCOM, 0x163c,
145 PCI_ANY_ID, PCI_ANY_ID, 0, 0, BCM5716S },
146 { 0, }
147 };
148
149 static const struct flash_spec flash_table[] =
150 {
151 #define BUFFERED_FLAGS (BNX2_NV_BUFFERED | BNX2_NV_TRANSLATE)
152 #define NONBUFFERED_FLAGS (BNX2_NV_WREN)
153 /* Slow EEPROM */
154 {0x00000000, 0x40830380, 0x009f0081, 0xa184a053, 0xaf000400,
155 BUFFERED_FLAGS, SEEPROM_PAGE_BITS, SEEPROM_PAGE_SIZE,
156 SEEPROM_BYTE_ADDR_MASK, SEEPROM_TOTAL_SIZE,
157 "EEPROM - slow"},
158 /* Expansion entry 0001 */
159 {0x08000002, 0x4b808201, 0x00050081, 0x03840253, 0xaf020406,
160 NONBUFFERED_FLAGS, SAIFUN_FLASH_PAGE_BITS, SAIFUN_FLASH_PAGE_SIZE,
161 SAIFUN_FLASH_BYTE_ADDR_MASK, 0,
162 "Entry 0001"},
163 /* Saifun SA25F010 (non-buffered flash) */
164 /* strap, cfg1, & write1 need updates */
165 {0x04000001, 0x47808201, 0x00050081, 0x03840253, 0xaf020406,
166 NONBUFFERED_FLAGS, SAIFUN_FLASH_PAGE_BITS, SAIFUN_FLASH_PAGE_SIZE,
167 SAIFUN_FLASH_BYTE_ADDR_MASK, SAIFUN_FLASH_BASE_TOTAL_SIZE*2,
168 "Non-buffered flash (128kB)"},
169 /* Saifun SA25F020 (non-buffered flash) */
170 /* strap, cfg1, & write1 need updates */
171 {0x0c000003, 0x4f808201, 0x00050081, 0x03840253, 0xaf020406,
172 NONBUFFERED_FLAGS, SAIFUN_FLASH_PAGE_BITS, SAIFUN_FLASH_PAGE_SIZE,
173 SAIFUN_FLASH_BYTE_ADDR_MASK, SAIFUN_FLASH_BASE_TOTAL_SIZE*4,
174 "Non-buffered flash (256kB)"},
175 /* Expansion entry 0100 */
176 {0x11000000, 0x53808201, 0x00050081, 0x03840253, 0xaf020406,
177 NONBUFFERED_FLAGS, SAIFUN_FLASH_PAGE_BITS, SAIFUN_FLASH_PAGE_SIZE,
178 SAIFUN_FLASH_BYTE_ADDR_MASK, 0,
179 "Entry 0100"},
180 /* Entry 0101: ST M45PE10 (non-buffered flash, TetonII B0) */
181 {0x19000002, 0x5b808201, 0x000500db, 0x03840253, 0xaf020406,
182 NONBUFFERED_FLAGS, ST_MICRO_FLASH_PAGE_BITS, ST_MICRO_FLASH_PAGE_SIZE,
183 ST_MICRO_FLASH_BYTE_ADDR_MASK, ST_MICRO_FLASH_BASE_TOTAL_SIZE*2,
184 "Entry 0101: ST M45PE10 (128kB non-bufferred)"},
185 /* Entry 0110: ST M45PE20 (non-buffered flash)*/
186 {0x15000001, 0x57808201, 0x000500db, 0x03840253, 0xaf020406,
187 NONBUFFERED_FLAGS, ST_MICRO_FLASH_PAGE_BITS, ST_MICRO_FLASH_PAGE_SIZE,
188 ST_MICRO_FLASH_BYTE_ADDR_MASK, ST_MICRO_FLASH_BASE_TOTAL_SIZE*4,
189 "Entry 0110: ST M45PE20 (256kB non-bufferred)"},
190 /* Saifun SA25F005 (non-buffered flash) */
191 /* strap, cfg1, & write1 need updates */
192 {0x1d000003, 0x5f808201, 0x00050081, 0x03840253, 0xaf020406,
193 NONBUFFERED_FLAGS, SAIFUN_FLASH_PAGE_BITS, SAIFUN_FLASH_PAGE_SIZE,
194 SAIFUN_FLASH_BYTE_ADDR_MASK, SAIFUN_FLASH_BASE_TOTAL_SIZE,
195 "Non-buffered flash (64kB)"},
196 /* Fast EEPROM */
197 {0x22000000, 0x62808380, 0x009f0081, 0xa184a053, 0xaf000400,
198 BUFFERED_FLAGS, SEEPROM_PAGE_BITS, SEEPROM_PAGE_SIZE,
199 SEEPROM_BYTE_ADDR_MASK, SEEPROM_TOTAL_SIZE,
200 "EEPROM - fast"},
201 /* Expansion entry 1001 */
202 {0x2a000002, 0x6b808201, 0x00050081, 0x03840253, 0xaf020406,
203 NONBUFFERED_FLAGS, SAIFUN_FLASH_PAGE_BITS, SAIFUN_FLASH_PAGE_SIZE,
204 SAIFUN_FLASH_BYTE_ADDR_MASK, 0,
205 "Entry 1001"},
206 /* Expansion entry 1010 */
207 {0x26000001, 0x67808201, 0x00050081, 0x03840253, 0xaf020406,
208 NONBUFFERED_FLAGS, SAIFUN_FLASH_PAGE_BITS, SAIFUN_FLASH_PAGE_SIZE,
209 SAIFUN_FLASH_BYTE_ADDR_MASK, 0,
210 "Entry 1010"},
211 /* ATMEL AT45DB011B (buffered flash) */
212 {0x2e000003, 0x6e808273, 0x00570081, 0x68848353, 0xaf000400,
213 BUFFERED_FLAGS, BUFFERED_FLASH_PAGE_BITS, BUFFERED_FLASH_PAGE_SIZE,
214 BUFFERED_FLASH_BYTE_ADDR_MASK, BUFFERED_FLASH_TOTAL_SIZE,
215 "Buffered flash (128kB)"},
216 /* Expansion entry 1100 */
217 {0x33000000, 0x73808201, 0x00050081, 0x03840253, 0xaf020406,
218 NONBUFFERED_FLAGS, SAIFUN_FLASH_PAGE_BITS, SAIFUN_FLASH_PAGE_SIZE,
219 SAIFUN_FLASH_BYTE_ADDR_MASK, 0,
220 "Entry 1100"},
221 /* Expansion entry 1101 */
222 {0x3b000002, 0x7b808201, 0x00050081, 0x03840253, 0xaf020406,
223 NONBUFFERED_FLAGS, SAIFUN_FLASH_PAGE_BITS, SAIFUN_FLASH_PAGE_SIZE,
224 SAIFUN_FLASH_BYTE_ADDR_MASK, 0,
225 "Entry 1101"},
226 /* Ateml Expansion entry 1110 */
227 {0x37000001, 0x76808273, 0x00570081, 0x68848353, 0xaf000400,
228 BUFFERED_FLAGS, BUFFERED_FLASH_PAGE_BITS, BUFFERED_FLASH_PAGE_SIZE,
229 BUFFERED_FLASH_BYTE_ADDR_MASK, 0,
230 "Entry 1110 (Atmel)"},
231 /* ATMEL AT45DB021B (buffered flash) */
232 {0x3f000003, 0x7e808273, 0x00570081, 0x68848353, 0xaf000400,
233 BUFFERED_FLAGS, BUFFERED_FLASH_PAGE_BITS, BUFFERED_FLASH_PAGE_SIZE,
234 BUFFERED_FLASH_BYTE_ADDR_MASK, BUFFERED_FLASH_TOTAL_SIZE*2,
235 "Buffered flash (256kB)"},
236 };
237
238 static const struct flash_spec flash_5709 = {
239 .flags = BNX2_NV_BUFFERED,
240 .page_bits = BCM5709_FLASH_PAGE_BITS,
241 .page_size = BCM5709_FLASH_PAGE_SIZE,
242 .addr_mask = BCM5709_FLASH_BYTE_ADDR_MASK,
243 .total_size = BUFFERED_FLASH_TOTAL_SIZE*2,
244 .name = "5709 Buffered flash (256kB)",
245 };
246
247 MODULE_DEVICE_TABLE(pci, bnx2_pci_tbl);
248
249 static void bnx2_init_napi(struct bnx2 *bp);
250 static void bnx2_del_napi(struct bnx2 *bp);
251
252 static inline u32 bnx2_tx_avail(struct bnx2 *bp, struct bnx2_tx_ring_info *txr)
253 {
254 u32 diff;
255
256 /* Tell compiler to fetch tx_prod and tx_cons from memory. */
257 barrier();
258
259 /* The ring uses 256 indices for 255 entries, one of them
260 * needs to be skipped.
261 */
262 diff = txr->tx_prod - txr->tx_cons;
263 if (unlikely(diff >= BNX2_TX_DESC_CNT)) {
264 diff &= 0xffff;
265 if (diff == BNX2_TX_DESC_CNT)
266 diff = BNX2_MAX_TX_DESC_CNT;
267 }
268 return bp->tx_ring_size - diff;
269 }
270
271 static u32
272 bnx2_reg_rd_ind(struct bnx2 *bp, u32 offset)
273 {
274 u32 val;
275
276 spin_lock_bh(&bp->indirect_lock);
277 BNX2_WR(bp, BNX2_PCICFG_REG_WINDOW_ADDRESS, offset);
278 val = BNX2_RD(bp, BNX2_PCICFG_REG_WINDOW);
279 spin_unlock_bh(&bp->indirect_lock);
280 return val;
281 }
282
283 static void
284 bnx2_reg_wr_ind(struct bnx2 *bp, u32 offset, u32 val)
285 {
286 spin_lock_bh(&bp->indirect_lock);
287 BNX2_WR(bp, BNX2_PCICFG_REG_WINDOW_ADDRESS, offset);
288 BNX2_WR(bp, BNX2_PCICFG_REG_WINDOW, val);
289 spin_unlock_bh(&bp->indirect_lock);
290 }
291
292 static void
293 bnx2_shmem_wr(struct bnx2 *bp, u32 offset, u32 val)
294 {
295 bnx2_reg_wr_ind(bp, bp->shmem_base + offset, val);
296 }
297
298 static u32
299 bnx2_shmem_rd(struct bnx2 *bp, u32 offset)
300 {
301 return bnx2_reg_rd_ind(bp, bp->shmem_base + offset);
302 }
303
304 static void
305 bnx2_ctx_wr(struct bnx2 *bp, u32 cid_addr, u32 offset, u32 val)
306 {
307 offset += cid_addr;
308 spin_lock_bh(&bp->indirect_lock);
309 if (BNX2_CHIP(bp) == BNX2_CHIP_5709) {
310 int i;
311
312 BNX2_WR(bp, BNX2_CTX_CTX_DATA, val);
313 BNX2_WR(bp, BNX2_CTX_CTX_CTRL,
314 offset | BNX2_CTX_CTX_CTRL_WRITE_REQ);
315 for (i = 0; i < 5; i++) {
316 val = BNX2_RD(bp, BNX2_CTX_CTX_CTRL);
317 if ((val & BNX2_CTX_CTX_CTRL_WRITE_REQ) == 0)
318 break;
319 udelay(5);
320 }
321 } else {
322 BNX2_WR(bp, BNX2_CTX_DATA_ADR, offset);
323 BNX2_WR(bp, BNX2_CTX_DATA, val);
324 }
325 spin_unlock_bh(&bp->indirect_lock);
326 }
327
328 #ifdef BCM_CNIC
329 static int
330 bnx2_drv_ctl(struct net_device *dev, struct drv_ctl_info *info)
331 {
332 struct bnx2 *bp = netdev_priv(dev);
333 struct drv_ctl_io *io = &info->data.io;
334
335 switch (info->cmd) {
336 case DRV_CTL_IO_WR_CMD:
337 bnx2_reg_wr_ind(bp, io->offset, io->data);
338 break;
339 case DRV_CTL_IO_RD_CMD:
340 io->data = bnx2_reg_rd_ind(bp, io->offset);
341 break;
342 case DRV_CTL_CTX_WR_CMD:
343 bnx2_ctx_wr(bp, io->cid_addr, io->offset, io->data);
344 break;
345 default:
346 return -EINVAL;
347 }
348 return 0;
349 }
350
351 static void bnx2_setup_cnic_irq_info(struct bnx2 *bp)
352 {
353 struct cnic_eth_dev *cp = &bp->cnic_eth_dev;
354 struct bnx2_napi *bnapi = &bp->bnx2_napi[0];
355 int sb_id;
356
357 if (bp->flags & BNX2_FLAG_USING_MSIX) {
358 cp->drv_state |= CNIC_DRV_STATE_USING_MSIX;
359 bnapi->cnic_present = 0;
360 sb_id = bp->irq_nvecs;
361 cp->irq_arr[0].irq_flags |= CNIC_IRQ_FL_MSIX;
362 } else {
363 cp->drv_state &= ~CNIC_DRV_STATE_USING_MSIX;
364 bnapi->cnic_tag = bnapi->last_status_idx;
365 bnapi->cnic_present = 1;
366 sb_id = 0;
367 cp->irq_arr[0].irq_flags &= ~CNIC_IRQ_FL_MSIX;
368 }
369
370 cp->irq_arr[0].vector = bp->irq_tbl[sb_id].vector;
371 cp->irq_arr[0].status_blk = (void *)
372 ((unsigned long) bnapi->status_blk.msi +
373 (BNX2_SBLK_MSIX_ALIGN_SIZE * sb_id));
374 cp->irq_arr[0].status_blk_num = sb_id;
375 cp->num_irq = 1;
376 }
377
378 static int bnx2_register_cnic(struct net_device *dev, struct cnic_ops *ops,
379 void *data)
380 {
381 struct bnx2 *bp = netdev_priv(dev);
382 struct cnic_eth_dev *cp = &bp->cnic_eth_dev;
383
384 if (ops == NULL)
385 return -EINVAL;
386
387 if (cp->drv_state & CNIC_DRV_STATE_REGD)
388 return -EBUSY;
389
390 if (!bnx2_reg_rd_ind(bp, BNX2_FW_MAX_ISCSI_CONN))
391 return -ENODEV;
392
393 bp->cnic_data = data;
394 rcu_assign_pointer(bp->cnic_ops, ops);
395
396 cp->num_irq = 0;
397 cp->drv_state = CNIC_DRV_STATE_REGD;
398
399 bnx2_setup_cnic_irq_info(bp);
400
401 return 0;
402 }
403
404 static int bnx2_unregister_cnic(struct net_device *dev)
405 {
406 struct bnx2 *bp = netdev_priv(dev);
407 struct bnx2_napi *bnapi = &bp->bnx2_napi[0];
408 struct cnic_eth_dev *cp = &bp->cnic_eth_dev;
409
410 mutex_lock(&bp->cnic_lock);
411 cp->drv_state = 0;
412 bnapi->cnic_present = 0;
413 RCU_INIT_POINTER(bp->cnic_ops, NULL);
414 mutex_unlock(&bp->cnic_lock);
415 synchronize_rcu();
416 return 0;
417 }
418
419 static struct cnic_eth_dev *bnx2_cnic_probe(struct net_device *dev)
420 {
421 struct bnx2 *bp = netdev_priv(dev);
422 struct cnic_eth_dev *cp = &bp->cnic_eth_dev;
423
424 if (!cp->max_iscsi_conn)
425 return NULL;
426
427 cp->drv_owner = THIS_MODULE;
428 cp->chip_id = bp->chip_id;
429 cp->pdev = bp->pdev;
430 cp->io_base = bp->regview;
431 cp->drv_ctl = bnx2_drv_ctl;
432 cp->drv_register_cnic = bnx2_register_cnic;
433 cp->drv_unregister_cnic = bnx2_unregister_cnic;
434
435 return cp;
436 }
437
438 static void
439 bnx2_cnic_stop(struct bnx2 *bp)
440 {
441 struct cnic_ops *c_ops;
442 struct cnic_ctl_info info;
443
444 mutex_lock(&bp->cnic_lock);
445 c_ops = rcu_dereference_protected(bp->cnic_ops,
446 lockdep_is_held(&bp->cnic_lock));
447 if (c_ops) {
448 info.cmd = CNIC_CTL_STOP_CMD;
449 c_ops->cnic_ctl(bp->cnic_data, &info);
450 }
451 mutex_unlock(&bp->cnic_lock);
452 }
453
454 static void
455 bnx2_cnic_start(struct bnx2 *bp)
456 {
457 struct cnic_ops *c_ops;
458 struct cnic_ctl_info info;
459
460 mutex_lock(&bp->cnic_lock);
461 c_ops = rcu_dereference_protected(bp->cnic_ops,
462 lockdep_is_held(&bp->cnic_lock));
463 if (c_ops) {
464 if (!(bp->flags & BNX2_FLAG_USING_MSIX)) {
465 struct bnx2_napi *bnapi = &bp->bnx2_napi[0];
466
467 bnapi->cnic_tag = bnapi->last_status_idx;
468 }
469 info.cmd = CNIC_CTL_START_CMD;
470 c_ops->cnic_ctl(bp->cnic_data, &info);
471 }
472 mutex_unlock(&bp->cnic_lock);
473 }
474
475 #else
476
477 static void
478 bnx2_cnic_stop(struct bnx2 *bp)
479 {
480 }
481
482 static void
483 bnx2_cnic_start(struct bnx2 *bp)
484 {
485 }
486
487 #endif
488
489 static int
490 bnx2_read_phy(struct bnx2 *bp, u32 reg, u32 *val)
491 {
492 u32 val1;
493 int i, ret;
494
495 if (bp->phy_flags & BNX2_PHY_FLAG_INT_MODE_AUTO_POLLING) {
496 val1 = BNX2_RD(bp, BNX2_EMAC_MDIO_MODE);
497 val1 &= ~BNX2_EMAC_MDIO_MODE_AUTO_POLL;
498
499 BNX2_WR(bp, BNX2_EMAC_MDIO_MODE, val1);
500 BNX2_RD(bp, BNX2_EMAC_MDIO_MODE);
501
502 udelay(40);
503 }
504
505 val1 = (bp->phy_addr << 21) | (reg << 16) |
506 BNX2_EMAC_MDIO_COMM_COMMAND_READ | BNX2_EMAC_MDIO_COMM_DISEXT |
507 BNX2_EMAC_MDIO_COMM_START_BUSY;
508 BNX2_WR(bp, BNX2_EMAC_MDIO_COMM, val1);
509
510 for (i = 0; i < 50; i++) {
511 udelay(10);
512
513 val1 = BNX2_RD(bp, BNX2_EMAC_MDIO_COMM);
514 if (!(val1 & BNX2_EMAC_MDIO_COMM_START_BUSY)) {
515 udelay(5);
516
517 val1 = BNX2_RD(bp, BNX2_EMAC_MDIO_COMM);
518 val1 &= BNX2_EMAC_MDIO_COMM_DATA;
519
520 break;
521 }
522 }
523
524 if (val1 & BNX2_EMAC_MDIO_COMM_START_BUSY) {
525 *val = 0x0;
526 ret = -EBUSY;
527 }
528 else {
529 *val = val1;
530 ret = 0;
531 }
532
533 if (bp->phy_flags & BNX2_PHY_FLAG_INT_MODE_AUTO_POLLING) {
534 val1 = BNX2_RD(bp, BNX2_EMAC_MDIO_MODE);
535 val1 |= BNX2_EMAC_MDIO_MODE_AUTO_POLL;
536
537 BNX2_WR(bp, BNX2_EMAC_MDIO_MODE, val1);
538 BNX2_RD(bp, BNX2_EMAC_MDIO_MODE);
539
540 udelay(40);
541 }
542
543 return ret;
544 }
545
546 static int
547 bnx2_write_phy(struct bnx2 *bp, u32 reg, u32 val)
548 {
549 u32 val1;
550 int i, ret;
551
552 if (bp->phy_flags & BNX2_PHY_FLAG_INT_MODE_AUTO_POLLING) {
553 val1 = BNX2_RD(bp, BNX2_EMAC_MDIO_MODE);
554 val1 &= ~BNX2_EMAC_MDIO_MODE_AUTO_POLL;
555
556 BNX2_WR(bp, BNX2_EMAC_MDIO_MODE, val1);
557 BNX2_RD(bp, BNX2_EMAC_MDIO_MODE);
558
559 udelay(40);
560 }
561
562 val1 = (bp->phy_addr << 21) | (reg << 16) | val |
563 BNX2_EMAC_MDIO_COMM_COMMAND_WRITE |
564 BNX2_EMAC_MDIO_COMM_START_BUSY | BNX2_EMAC_MDIO_COMM_DISEXT;
565 BNX2_WR(bp, BNX2_EMAC_MDIO_COMM, val1);
566
567 for (i = 0; i < 50; i++) {
568 udelay(10);
569
570 val1 = BNX2_RD(bp, BNX2_EMAC_MDIO_COMM);
571 if (!(val1 & BNX2_EMAC_MDIO_COMM_START_BUSY)) {
572 udelay(5);
573 break;
574 }
575 }
576
577 if (val1 & BNX2_EMAC_MDIO_COMM_START_BUSY)
578 ret = -EBUSY;
579 else
580 ret = 0;
581
582 if (bp->phy_flags & BNX2_PHY_FLAG_INT_MODE_AUTO_POLLING) {
583 val1 = BNX2_RD(bp, BNX2_EMAC_MDIO_MODE);
584 val1 |= BNX2_EMAC_MDIO_MODE_AUTO_POLL;
585
586 BNX2_WR(bp, BNX2_EMAC_MDIO_MODE, val1);
587 BNX2_RD(bp, BNX2_EMAC_MDIO_MODE);
588
589 udelay(40);
590 }
591
592 return ret;
593 }
594
595 static void
596 bnx2_disable_int(struct bnx2 *bp)
597 {
598 int i;
599 struct bnx2_napi *bnapi;
600
601 for (i = 0; i < bp->irq_nvecs; i++) {
602 bnapi = &bp->bnx2_napi[i];
603 BNX2_WR(bp, BNX2_PCICFG_INT_ACK_CMD, bnapi->int_num |
604 BNX2_PCICFG_INT_ACK_CMD_MASK_INT);
605 }
606 BNX2_RD(bp, BNX2_PCICFG_INT_ACK_CMD);
607 }
608
609 static void
610 bnx2_enable_int(struct bnx2 *bp)
611 {
612 int i;
613 struct bnx2_napi *bnapi;
614
615 for (i = 0; i < bp->irq_nvecs; i++) {
616 bnapi = &bp->bnx2_napi[i];
617
618 BNX2_WR(bp, BNX2_PCICFG_INT_ACK_CMD, bnapi->int_num |
619 BNX2_PCICFG_INT_ACK_CMD_INDEX_VALID |
620 BNX2_PCICFG_INT_ACK_CMD_MASK_INT |
621 bnapi->last_status_idx);
622
623 BNX2_WR(bp, BNX2_PCICFG_INT_ACK_CMD, bnapi->int_num |
624 BNX2_PCICFG_INT_ACK_CMD_INDEX_VALID |
625 bnapi->last_status_idx);
626 }
627 BNX2_WR(bp, BNX2_HC_COMMAND, bp->hc_cmd | BNX2_HC_COMMAND_COAL_NOW);
628 }
629
630 static void
631 bnx2_disable_int_sync(struct bnx2 *bp)
632 {
633 int i;
634
635 atomic_inc(&bp->intr_sem);
636 if (!netif_running(bp->dev))
637 return;
638
639 bnx2_disable_int(bp);
640 for (i = 0; i < bp->irq_nvecs; i++)
641 synchronize_irq(bp->irq_tbl[i].vector);
642 }
643
644 static void
645 bnx2_napi_disable(struct bnx2 *bp)
646 {
647 int i;
648
649 for (i = 0; i < bp->irq_nvecs; i++)
650 napi_disable(&bp->bnx2_napi[i].napi);
651 }
652
653 static void
654 bnx2_napi_enable(struct bnx2 *bp)
655 {
656 int i;
657
658 for (i = 0; i < bp->irq_nvecs; i++)
659 napi_enable(&bp->bnx2_napi[i].napi);
660 }
661
662 static void
663 bnx2_netif_stop(struct bnx2 *bp, bool stop_cnic)
664 {
665 if (stop_cnic)
666 bnx2_cnic_stop(bp);
667 if (netif_running(bp->dev)) {
668 bnx2_napi_disable(bp);
669 netif_tx_disable(bp->dev);
670 }
671 bnx2_disable_int_sync(bp);
672 netif_carrier_off(bp->dev); /* prevent tx timeout */
673 }
674
675 static void
676 bnx2_netif_start(struct bnx2 *bp, bool start_cnic)
677 {
678 if (atomic_dec_and_test(&bp->intr_sem)) {
679 if (netif_running(bp->dev)) {
680 netif_tx_wake_all_queues(bp->dev);
681 spin_lock_bh(&bp->phy_lock);
682 if (bp->link_up)
683 netif_carrier_on(bp->dev);
684 spin_unlock_bh(&bp->phy_lock);
685 bnx2_napi_enable(bp);
686 bnx2_enable_int(bp);
687 if (start_cnic)
688 bnx2_cnic_start(bp);
689 }
690 }
691 }
692
693 static void
694 bnx2_free_tx_mem(struct bnx2 *bp)
695 {
696 int i;
697
698 for (i = 0; i < bp->num_tx_rings; i++) {
699 struct bnx2_napi *bnapi = &bp->bnx2_napi[i];
700 struct bnx2_tx_ring_info *txr = &bnapi->tx_ring;
701
702 if (txr->tx_desc_ring) {
703 dma_free_coherent(&bp->pdev->dev, TXBD_RING_SIZE,
704 txr->tx_desc_ring,
705 txr->tx_desc_mapping);
706 txr->tx_desc_ring = NULL;
707 }
708 kfree(txr->tx_buf_ring);
709 txr->tx_buf_ring = NULL;
710 }
711 }
712
713 static void
714 bnx2_free_rx_mem(struct bnx2 *bp)
715 {
716 int i;
717
718 for (i = 0; i < bp->num_rx_rings; i++) {
719 struct bnx2_napi *bnapi = &bp->bnx2_napi[i];
720 struct bnx2_rx_ring_info *rxr = &bnapi->rx_ring;
721 int j;
722
723 for (j = 0; j < bp->rx_max_ring; j++) {
724 if (rxr->rx_desc_ring[j])
725 dma_free_coherent(&bp->pdev->dev, RXBD_RING_SIZE,
726 rxr->rx_desc_ring[j],
727 rxr->rx_desc_mapping[j]);
728 rxr->rx_desc_ring[j] = NULL;
729 }
730 vfree(rxr->rx_buf_ring);
731 rxr->rx_buf_ring = NULL;
732
733 for (j = 0; j < bp->rx_max_pg_ring; j++) {
734 if (rxr->rx_pg_desc_ring[j])
735 dma_free_coherent(&bp->pdev->dev, RXBD_RING_SIZE,
736 rxr->rx_pg_desc_ring[j],
737 rxr->rx_pg_desc_mapping[j]);
738 rxr->rx_pg_desc_ring[j] = NULL;
739 }
740 vfree(rxr->rx_pg_ring);
741 rxr->rx_pg_ring = NULL;
742 }
743 }
744
745 static int
746 bnx2_alloc_tx_mem(struct bnx2 *bp)
747 {
748 int i;
749
750 for (i = 0; i < bp->num_tx_rings; i++) {
751 struct bnx2_napi *bnapi = &bp->bnx2_napi[i];
752 struct bnx2_tx_ring_info *txr = &bnapi->tx_ring;
753
754 txr->tx_buf_ring = kzalloc(SW_TXBD_RING_SIZE, GFP_KERNEL);
755 if (txr->tx_buf_ring == NULL)
756 return -ENOMEM;
757
758 txr->tx_desc_ring =
759 dma_alloc_coherent(&bp->pdev->dev, TXBD_RING_SIZE,
760 &txr->tx_desc_mapping, GFP_KERNEL);
761 if (txr->tx_desc_ring == NULL)
762 return -ENOMEM;
763 }
764 return 0;
765 }
766
767 static int
768 bnx2_alloc_rx_mem(struct bnx2 *bp)
769 {
770 int i;
771
772 for (i = 0; i < bp->num_rx_rings; i++) {
773 struct bnx2_napi *bnapi = &bp->bnx2_napi[i];
774 struct bnx2_rx_ring_info *rxr = &bnapi->rx_ring;
775 int j;
776
777 rxr->rx_buf_ring =
778 vzalloc(SW_RXBD_RING_SIZE * bp->rx_max_ring);
779 if (rxr->rx_buf_ring == NULL)
780 return -ENOMEM;
781
782 for (j = 0; j < bp->rx_max_ring; j++) {
783 rxr->rx_desc_ring[j] =
784 dma_alloc_coherent(&bp->pdev->dev,
785 RXBD_RING_SIZE,
786 &rxr->rx_desc_mapping[j],
787 GFP_KERNEL);
788 if (rxr->rx_desc_ring[j] == NULL)
789 return -ENOMEM;
790
791 }
792
793 if (bp->rx_pg_ring_size) {
794 rxr->rx_pg_ring = vzalloc(SW_RXPG_RING_SIZE *
795 bp->rx_max_pg_ring);
796 if (rxr->rx_pg_ring == NULL)
797 return -ENOMEM;
798
799 }
800
801 for (j = 0; j < bp->rx_max_pg_ring; j++) {
802 rxr->rx_pg_desc_ring[j] =
803 dma_alloc_coherent(&bp->pdev->dev,
804 RXBD_RING_SIZE,
805 &rxr->rx_pg_desc_mapping[j],
806 GFP_KERNEL);
807 if (rxr->rx_pg_desc_ring[j] == NULL)
808 return -ENOMEM;
809
810 }
811 }
812 return 0;
813 }
814
815 static void
816 bnx2_free_stats_blk(struct net_device *dev)
817 {
818 struct bnx2 *bp = netdev_priv(dev);
819
820 if (bp->status_blk) {
821 dma_free_coherent(&bp->pdev->dev, bp->status_stats_size,
822 bp->status_blk,
823 bp->status_blk_mapping);
824 bp->status_blk = NULL;
825 bp->stats_blk = NULL;
826 }
827 }
828
829 static int
830 bnx2_alloc_stats_blk(struct net_device *dev)
831 {
832 int status_blk_size;
833 void *status_blk;
834 struct bnx2 *bp = netdev_priv(dev);
835
836 /* Combine status and statistics blocks into one allocation. */
837 status_blk_size = L1_CACHE_ALIGN(sizeof(struct status_block));
838 if (bp->flags & BNX2_FLAG_MSIX_CAP)
839 status_blk_size = L1_CACHE_ALIGN(BNX2_MAX_MSIX_HW_VEC *
840 BNX2_SBLK_MSIX_ALIGN_SIZE);
841 bp->status_stats_size = status_blk_size +
842 sizeof(struct statistics_block);
843 status_blk = dma_zalloc_coherent(&bp->pdev->dev, bp->status_stats_size,
844 &bp->status_blk_mapping, GFP_KERNEL);
845 if (status_blk == NULL)
846 return -ENOMEM;
847
848 bp->status_blk = status_blk;
849 bp->stats_blk = status_blk + status_blk_size;
850 bp->stats_blk_mapping = bp->status_blk_mapping + status_blk_size;
851
852 return 0;
853 }
854
855 static void
856 bnx2_free_mem(struct bnx2 *bp)
857 {
858 int i;
859 struct bnx2_napi *bnapi = &bp->bnx2_napi[0];
860
861 bnx2_free_tx_mem(bp);
862 bnx2_free_rx_mem(bp);
863
864 for (i = 0; i < bp->ctx_pages; i++) {
865 if (bp->ctx_blk[i]) {
866 dma_free_coherent(&bp->pdev->dev, BNX2_PAGE_SIZE,
867 bp->ctx_blk[i],
868 bp->ctx_blk_mapping[i]);
869 bp->ctx_blk[i] = NULL;
870 }
871 }
872
873 if (bnapi->status_blk.msi)
874 bnapi->status_blk.msi = NULL;
875 }
876
877 static int
878 bnx2_alloc_mem(struct bnx2 *bp)
879 {
880 int i, err;
881 struct bnx2_napi *bnapi;
882
883 bnapi = &bp->bnx2_napi[0];
884 bnapi->status_blk.msi = bp->status_blk;
885 bnapi->hw_tx_cons_ptr =
886 &bnapi->status_blk.msi->status_tx_quick_consumer_index0;
887 bnapi->hw_rx_cons_ptr =
888 &bnapi->status_blk.msi->status_rx_quick_consumer_index0;
889 if (bp->flags & BNX2_FLAG_MSIX_CAP) {
890 for (i = 1; i < bp->irq_nvecs; i++) {
891 struct status_block_msix *sblk;
892
893 bnapi = &bp->bnx2_napi[i];
894
895 sblk = (bp->status_blk + BNX2_SBLK_MSIX_ALIGN_SIZE * i);
896 bnapi->status_blk.msix = sblk;
897 bnapi->hw_tx_cons_ptr =
898 &sblk->status_tx_quick_consumer_index;
899 bnapi->hw_rx_cons_ptr =
900 &sblk->status_rx_quick_consumer_index;
901 bnapi->int_num = i << 24;
902 }
903 }
904
905 if (BNX2_CHIP(bp) == BNX2_CHIP_5709) {
906 bp->ctx_pages = 0x2000 / BNX2_PAGE_SIZE;
907 if (bp->ctx_pages == 0)
908 bp->ctx_pages = 1;
909 for (i = 0; i < bp->ctx_pages; i++) {
910 bp->ctx_blk[i] = dma_alloc_coherent(&bp->pdev->dev,
911 BNX2_PAGE_SIZE,
912 &bp->ctx_blk_mapping[i],
913 GFP_KERNEL);
914 if (bp->ctx_blk[i] == NULL)
915 goto alloc_mem_err;
916 }
917 }
918
919 err = bnx2_alloc_rx_mem(bp);
920 if (err)
921 goto alloc_mem_err;
922
923 err = bnx2_alloc_tx_mem(bp);
924 if (err)
925 goto alloc_mem_err;
926
927 return 0;
928
929 alloc_mem_err:
930 bnx2_free_mem(bp);
931 return -ENOMEM;
932 }
933
934 static void
935 bnx2_report_fw_link(struct bnx2 *bp)
936 {
937 u32 fw_link_status = 0;
938
939 if (bp->phy_flags & BNX2_PHY_FLAG_REMOTE_PHY_CAP)
940 return;
941
942 if (bp->link_up) {
943 u32 bmsr;
944
945 switch (bp->line_speed) {
946 case SPEED_10:
947 if (bp->duplex == DUPLEX_HALF)
948 fw_link_status = BNX2_LINK_STATUS_10HALF;
949 else
950 fw_link_status = BNX2_LINK_STATUS_10FULL;
951 break;
952 case SPEED_100:
953 if (bp->duplex == DUPLEX_HALF)
954 fw_link_status = BNX2_LINK_STATUS_100HALF;
955 else
956 fw_link_status = BNX2_LINK_STATUS_100FULL;
957 break;
958 case SPEED_1000:
959 if (bp->duplex == DUPLEX_HALF)
960 fw_link_status = BNX2_LINK_STATUS_1000HALF;
961 else
962 fw_link_status = BNX2_LINK_STATUS_1000FULL;
963 break;
964 case SPEED_2500:
965 if (bp->duplex == DUPLEX_HALF)
966 fw_link_status = BNX2_LINK_STATUS_2500HALF;
967 else
968 fw_link_status = BNX2_LINK_STATUS_2500FULL;
969 break;
970 }
971
972 fw_link_status |= BNX2_LINK_STATUS_LINK_UP;
973
974 if (bp->autoneg) {
975 fw_link_status |= BNX2_LINK_STATUS_AN_ENABLED;
976
977 bnx2_read_phy(bp, bp->mii_bmsr, &bmsr);
978 bnx2_read_phy(bp, bp->mii_bmsr, &bmsr);
979
980 if (!(bmsr & BMSR_ANEGCOMPLETE) ||
981 bp->phy_flags & BNX2_PHY_FLAG_PARALLEL_DETECT)
982 fw_link_status |= BNX2_LINK_STATUS_PARALLEL_DET;
983 else
984 fw_link_status |= BNX2_LINK_STATUS_AN_COMPLETE;
985 }
986 }
987 else
988 fw_link_status = BNX2_LINK_STATUS_LINK_DOWN;
989
990 bnx2_shmem_wr(bp, BNX2_LINK_STATUS, fw_link_status);
991 }
992
993 static char *
994 bnx2_xceiver_str(struct bnx2 *bp)
995 {
996 return (bp->phy_port == PORT_FIBRE) ? "SerDes" :
997 ((bp->phy_flags & BNX2_PHY_FLAG_SERDES) ? "Remote Copper" :
998 "Copper");
999 }
1000
1001 static void
1002 bnx2_report_link(struct bnx2 *bp)
1003 {
1004 if (bp->link_up) {
1005 netif_carrier_on(bp->dev);
1006 netdev_info(bp->dev, "NIC %s Link is Up, %d Mbps %s duplex",
1007 bnx2_xceiver_str(bp),
1008 bp->line_speed,
1009 bp->duplex == DUPLEX_FULL ? "full" : "half");
1010
1011 if (bp->flow_ctrl) {
1012 if (bp->flow_ctrl & FLOW_CTRL_RX) {
1013 pr_cont(", receive ");
1014 if (bp->flow_ctrl & FLOW_CTRL_TX)
1015 pr_cont("& transmit ");
1016 }
1017 else {
1018 pr_cont(", transmit ");
1019 }
1020 pr_cont("flow control ON");
1021 }
1022 pr_cont("\n");
1023 } else {
1024 netif_carrier_off(bp->dev);
1025 netdev_err(bp->dev, "NIC %s Link is Down\n",
1026 bnx2_xceiver_str(bp));
1027 }
1028
1029 bnx2_report_fw_link(bp);
1030 }
1031
1032 static void
1033 bnx2_resolve_flow_ctrl(struct bnx2 *bp)
1034 {
1035 u32 local_adv, remote_adv;
1036
1037 bp->flow_ctrl = 0;
1038 if ((bp->autoneg & (AUTONEG_SPEED | AUTONEG_FLOW_CTRL)) !=
1039 (AUTONEG_SPEED | AUTONEG_FLOW_CTRL)) {
1040
1041 if (bp->duplex == DUPLEX_FULL) {
1042 bp->flow_ctrl = bp->req_flow_ctrl;
1043 }
1044 return;
1045 }
1046
1047 if (bp->duplex != DUPLEX_FULL) {
1048 return;
1049 }
1050
1051 if ((bp->phy_flags & BNX2_PHY_FLAG_SERDES) &&
1052 (BNX2_CHIP(bp) == BNX2_CHIP_5708)) {
1053 u32 val;
1054
1055 bnx2_read_phy(bp, BCM5708S_1000X_STAT1, &val);
1056 if (val & BCM5708S_1000X_STAT1_TX_PAUSE)
1057 bp->flow_ctrl |= FLOW_CTRL_TX;
1058 if (val & BCM5708S_1000X_STAT1_RX_PAUSE)
1059 bp->flow_ctrl |= FLOW_CTRL_RX;
1060 return;
1061 }
1062
1063 bnx2_read_phy(bp, bp->mii_adv, &local_adv);
1064 bnx2_read_phy(bp, bp->mii_lpa, &remote_adv);
1065
1066 if (bp->phy_flags & BNX2_PHY_FLAG_SERDES) {
1067 u32 new_local_adv = 0;
1068 u32 new_remote_adv = 0;
1069
1070 if (local_adv & ADVERTISE_1000XPAUSE)
1071 new_local_adv |= ADVERTISE_PAUSE_CAP;
1072 if (local_adv & ADVERTISE_1000XPSE_ASYM)
1073 new_local_adv |= ADVERTISE_PAUSE_ASYM;
1074 if (remote_adv & ADVERTISE_1000XPAUSE)
1075 new_remote_adv |= ADVERTISE_PAUSE_CAP;
1076 if (remote_adv & ADVERTISE_1000XPSE_ASYM)
1077 new_remote_adv |= ADVERTISE_PAUSE_ASYM;
1078
1079 local_adv = new_local_adv;
1080 remote_adv = new_remote_adv;
1081 }
1082
1083 /* See Table 28B-3 of 802.3ab-1999 spec. */
1084 if (local_adv & ADVERTISE_PAUSE_CAP) {
1085 if(local_adv & ADVERTISE_PAUSE_ASYM) {
1086 if (remote_adv & ADVERTISE_PAUSE_CAP) {
1087 bp->flow_ctrl = FLOW_CTRL_TX | FLOW_CTRL_RX;
1088 }
1089 else if (remote_adv & ADVERTISE_PAUSE_ASYM) {
1090 bp->flow_ctrl = FLOW_CTRL_RX;
1091 }
1092 }
1093 else {
1094 if (remote_adv & ADVERTISE_PAUSE_CAP) {
1095 bp->flow_ctrl = FLOW_CTRL_TX | FLOW_CTRL_RX;
1096 }
1097 }
1098 }
1099 else if (local_adv & ADVERTISE_PAUSE_ASYM) {
1100 if ((remote_adv & ADVERTISE_PAUSE_CAP) &&
1101 (remote_adv & ADVERTISE_PAUSE_ASYM)) {
1102
1103 bp->flow_ctrl = FLOW_CTRL_TX;
1104 }
1105 }
1106 }
1107
1108 static int
1109 bnx2_5709s_linkup(struct bnx2 *bp)
1110 {
1111 u32 val, speed;
1112
1113 bp->link_up = 1;
1114
1115 bnx2_write_phy(bp, MII_BNX2_BLK_ADDR, MII_BNX2_BLK_ADDR_GP_STATUS);
1116 bnx2_read_phy(bp, MII_BNX2_GP_TOP_AN_STATUS1, &val);
1117 bnx2_write_phy(bp, MII_BNX2_BLK_ADDR, MII_BNX2_BLK_ADDR_COMBO_IEEEB0);
1118
1119 if ((bp->autoneg & AUTONEG_SPEED) == 0) {
1120 bp->line_speed = bp->req_line_speed;
1121 bp->duplex = bp->req_duplex;
1122 return 0;
1123 }
1124 speed = val & MII_BNX2_GP_TOP_AN_SPEED_MSK;
1125 switch (speed) {
1126 case MII_BNX2_GP_TOP_AN_SPEED_10:
1127 bp->line_speed = SPEED_10;
1128 break;
1129 case MII_BNX2_GP_TOP_AN_SPEED_100:
1130 bp->line_speed = SPEED_100;
1131 break;
1132 case MII_BNX2_GP_TOP_AN_SPEED_1G:
1133 case MII_BNX2_GP_TOP_AN_SPEED_1GKV:
1134 bp->line_speed = SPEED_1000;
1135 break;
1136 case MII_BNX2_GP_TOP_AN_SPEED_2_5G:
1137 bp->line_speed = SPEED_2500;
1138 break;
1139 }
1140 if (val & MII_BNX2_GP_TOP_AN_FD)
1141 bp->duplex = DUPLEX_FULL;
1142 else
1143 bp->duplex = DUPLEX_HALF;
1144 return 0;
1145 }
1146
1147 static int
1148 bnx2_5708s_linkup(struct bnx2 *bp)
1149 {
1150 u32 val;
1151
1152 bp->link_up = 1;
1153 bnx2_read_phy(bp, BCM5708S_1000X_STAT1, &val);
1154 switch (val & BCM5708S_1000X_STAT1_SPEED_MASK) {
1155 case BCM5708S_1000X_STAT1_SPEED_10:
1156 bp->line_speed = SPEED_10;
1157 break;
1158 case BCM5708S_1000X_STAT1_SPEED_100:
1159 bp->line_speed = SPEED_100;
1160 break;
1161 case BCM5708S_1000X_STAT1_SPEED_1G:
1162 bp->line_speed = SPEED_1000;
1163 break;
1164 case BCM5708S_1000X_STAT1_SPEED_2G5:
1165 bp->line_speed = SPEED_2500;
1166 break;
1167 }
1168 if (val & BCM5708S_1000X_STAT1_FD)
1169 bp->duplex = DUPLEX_FULL;
1170 else
1171 bp->duplex = DUPLEX_HALF;
1172
1173 return 0;
1174 }
1175
1176 static int
1177 bnx2_5706s_linkup(struct bnx2 *bp)
1178 {
1179 u32 bmcr, local_adv, remote_adv, common;
1180
1181 bp->link_up = 1;
1182 bp->line_speed = SPEED_1000;
1183
1184 bnx2_read_phy(bp, bp->mii_bmcr, &bmcr);
1185 if (bmcr & BMCR_FULLDPLX) {
1186 bp->duplex = DUPLEX_FULL;
1187 }
1188 else {
1189 bp->duplex = DUPLEX_HALF;
1190 }
1191
1192 if (!(bmcr & BMCR_ANENABLE)) {
1193 return 0;
1194 }
1195
1196 bnx2_read_phy(bp, bp->mii_adv, &local_adv);
1197 bnx2_read_phy(bp, bp->mii_lpa, &remote_adv);
1198
1199 common = local_adv & remote_adv;
1200 if (common & (ADVERTISE_1000XHALF | ADVERTISE_1000XFULL)) {
1201
1202 if (common & ADVERTISE_1000XFULL) {
1203 bp->duplex = DUPLEX_FULL;
1204 }
1205 else {
1206 bp->duplex = DUPLEX_HALF;
1207 }
1208 }
1209
1210 return 0;
1211 }
1212
1213 static int
1214 bnx2_copper_linkup(struct bnx2 *bp)
1215 {
1216 u32 bmcr;
1217
1218 bp->phy_flags &= ~BNX2_PHY_FLAG_MDIX;
1219
1220 bnx2_read_phy(bp, bp->mii_bmcr, &bmcr);
1221 if (bmcr & BMCR_ANENABLE) {
1222 u32 local_adv, remote_adv, common;
1223
1224 bnx2_read_phy(bp, MII_CTRL1000, &local_adv);
1225 bnx2_read_phy(bp, MII_STAT1000, &remote_adv);
1226
1227 common = local_adv & (remote_adv >> 2);
1228 if (common & ADVERTISE_1000FULL) {
1229 bp->line_speed = SPEED_1000;
1230 bp->duplex = DUPLEX_FULL;
1231 }
1232 else if (common & ADVERTISE_1000HALF) {
1233 bp->line_speed = SPEED_1000;
1234 bp->duplex = DUPLEX_HALF;
1235 }
1236 else {
1237 bnx2_read_phy(bp, bp->mii_adv, &local_adv);
1238 bnx2_read_phy(bp, bp->mii_lpa, &remote_adv);
1239
1240 common = local_adv & remote_adv;
1241 if (common & ADVERTISE_100FULL) {
1242 bp->line_speed = SPEED_100;
1243 bp->duplex = DUPLEX_FULL;
1244 }
1245 else if (common & ADVERTISE_100HALF) {
1246 bp->line_speed = SPEED_100;
1247 bp->duplex = DUPLEX_HALF;
1248 }
1249 else if (common & ADVERTISE_10FULL) {
1250 bp->line_speed = SPEED_10;
1251 bp->duplex = DUPLEX_FULL;
1252 }
1253 else if (common & ADVERTISE_10HALF) {
1254 bp->line_speed = SPEED_10;
1255 bp->duplex = DUPLEX_HALF;
1256 }
1257 else {
1258 bp->line_speed = 0;
1259 bp->link_up = 0;
1260 }
1261 }
1262 }
1263 else {
1264 if (bmcr & BMCR_SPEED100) {
1265 bp->line_speed = SPEED_100;
1266 }
1267 else {
1268 bp->line_speed = SPEED_10;
1269 }
1270 if (bmcr & BMCR_FULLDPLX) {
1271 bp->duplex = DUPLEX_FULL;
1272 }
1273 else {
1274 bp->duplex = DUPLEX_HALF;
1275 }
1276 }
1277
1278 if (bp->link_up) {
1279 u32 ext_status;
1280
1281 bnx2_read_phy(bp, MII_BNX2_EXT_STATUS, &ext_status);
1282 if (ext_status & EXT_STATUS_MDIX)
1283 bp->phy_flags |= BNX2_PHY_FLAG_MDIX;
1284 }
1285
1286 return 0;
1287 }
1288
1289 static void
1290 bnx2_init_rx_context(struct bnx2 *bp, u32 cid)
1291 {
1292 u32 val, rx_cid_addr = GET_CID_ADDR(cid);
1293
1294 val = BNX2_L2CTX_CTX_TYPE_CTX_BD_CHN_TYPE_VALUE;
1295 val |= BNX2_L2CTX_CTX_TYPE_SIZE_L2;
1296 val |= 0x02 << 8;
1297
1298 if (bp->flow_ctrl & FLOW_CTRL_TX)
1299 val |= BNX2_L2CTX_FLOW_CTRL_ENABLE;
1300
1301 bnx2_ctx_wr(bp, rx_cid_addr, BNX2_L2CTX_CTX_TYPE, val);
1302 }
1303
1304 static void
1305 bnx2_init_all_rx_contexts(struct bnx2 *bp)
1306 {
1307 int i;
1308 u32 cid;
1309
1310 for (i = 0, cid = RX_CID; i < bp->num_rx_rings; i++, cid++) {
1311 if (i == 1)
1312 cid = RX_RSS_CID;
1313 bnx2_init_rx_context(bp, cid);
1314 }
1315 }
1316
1317 static void
1318 bnx2_set_mac_link(struct bnx2 *bp)
1319 {
1320 u32 val;
1321
1322 BNX2_WR(bp, BNX2_EMAC_TX_LENGTHS, 0x2620);
1323 if (bp->link_up && (bp->line_speed == SPEED_1000) &&
1324 (bp->duplex == DUPLEX_HALF)) {
1325 BNX2_WR(bp, BNX2_EMAC_TX_LENGTHS, 0x26ff);
1326 }
1327
1328 /* Configure the EMAC mode register. */
1329 val = BNX2_RD(bp, BNX2_EMAC_MODE);
1330
1331 val &= ~(BNX2_EMAC_MODE_PORT | BNX2_EMAC_MODE_HALF_DUPLEX |
1332 BNX2_EMAC_MODE_MAC_LOOP | BNX2_EMAC_MODE_FORCE_LINK |
1333 BNX2_EMAC_MODE_25G_MODE);
1334
1335 if (bp->link_up) {
1336 switch (bp->line_speed) {
1337 case SPEED_10:
1338 if (BNX2_CHIP(bp) != BNX2_CHIP_5706) {
1339 val |= BNX2_EMAC_MODE_PORT_MII_10M;
1340 break;
1341 }
1342 /* fall through */
1343 case SPEED_100:
1344 val |= BNX2_EMAC_MODE_PORT_MII;
1345 break;
1346 case SPEED_2500:
1347 val |= BNX2_EMAC_MODE_25G_MODE;
1348 /* fall through */
1349 case SPEED_1000:
1350 val |= BNX2_EMAC_MODE_PORT_GMII;
1351 break;
1352 }
1353 }
1354 else {
1355 val |= BNX2_EMAC_MODE_PORT_GMII;
1356 }
1357
1358 /* Set the MAC to operate in the appropriate duplex mode. */
1359 if (bp->duplex == DUPLEX_HALF)
1360 val |= BNX2_EMAC_MODE_HALF_DUPLEX;
1361 BNX2_WR(bp, BNX2_EMAC_MODE, val);
1362
1363 /* Enable/disable rx PAUSE. */
1364 bp->rx_mode &= ~BNX2_EMAC_RX_MODE_FLOW_EN;
1365
1366 if (bp->flow_ctrl & FLOW_CTRL_RX)
1367 bp->rx_mode |= BNX2_EMAC_RX_MODE_FLOW_EN;
1368 BNX2_WR(bp, BNX2_EMAC_RX_MODE, bp->rx_mode);
1369
1370 /* Enable/disable tx PAUSE. */
1371 val = BNX2_RD(bp, BNX2_EMAC_TX_MODE);
1372 val &= ~BNX2_EMAC_TX_MODE_FLOW_EN;
1373
1374 if (bp->flow_ctrl & FLOW_CTRL_TX)
1375 val |= BNX2_EMAC_TX_MODE_FLOW_EN;
1376 BNX2_WR(bp, BNX2_EMAC_TX_MODE, val);
1377
1378 /* Acknowledge the interrupt. */
1379 BNX2_WR(bp, BNX2_EMAC_STATUS, BNX2_EMAC_STATUS_LINK_CHANGE);
1380
1381 bnx2_init_all_rx_contexts(bp);
1382 }
1383
1384 static void
1385 bnx2_enable_bmsr1(struct bnx2 *bp)
1386 {
1387 if ((bp->phy_flags & BNX2_PHY_FLAG_SERDES) &&
1388 (BNX2_CHIP(bp) == BNX2_CHIP_5709))
1389 bnx2_write_phy(bp, MII_BNX2_BLK_ADDR,
1390 MII_BNX2_BLK_ADDR_GP_STATUS);
1391 }
1392
1393 static void
1394 bnx2_disable_bmsr1(struct bnx2 *bp)
1395 {
1396 if ((bp->phy_flags & BNX2_PHY_FLAG_SERDES) &&
1397 (BNX2_CHIP(bp) == BNX2_CHIP_5709))
1398 bnx2_write_phy(bp, MII_BNX2_BLK_ADDR,
1399 MII_BNX2_BLK_ADDR_COMBO_IEEEB0);
1400 }
1401
1402 static int
1403 bnx2_test_and_enable_2g5(struct bnx2 *bp)
1404 {
1405 u32 up1;
1406 int ret = 1;
1407
1408 if (!(bp->phy_flags & BNX2_PHY_FLAG_2_5G_CAPABLE))
1409 return 0;
1410
1411 if (bp->autoneg & AUTONEG_SPEED)
1412 bp->advertising |= ADVERTISED_2500baseX_Full;
1413
1414 if (BNX2_CHIP(bp) == BNX2_CHIP_5709)
1415 bnx2_write_phy(bp, MII_BNX2_BLK_ADDR, MII_BNX2_BLK_ADDR_OVER1G);
1416
1417 bnx2_read_phy(bp, bp->mii_up1, &up1);
1418 if (!(up1 & BCM5708S_UP1_2G5)) {
1419 up1 |= BCM5708S_UP1_2G5;
1420 bnx2_write_phy(bp, bp->mii_up1, up1);
1421 ret = 0;
1422 }
1423
1424 if (BNX2_CHIP(bp) == BNX2_CHIP_5709)
1425 bnx2_write_phy(bp, MII_BNX2_BLK_ADDR,
1426 MII_BNX2_BLK_ADDR_COMBO_IEEEB0);
1427
1428 return ret;
1429 }
1430
1431 static int
1432 bnx2_test_and_disable_2g5(struct bnx2 *bp)
1433 {
1434 u32 up1;
1435 int ret = 0;
1436
1437 if (!(bp->phy_flags & BNX2_PHY_FLAG_2_5G_CAPABLE))
1438 return 0;
1439
1440 if (BNX2_CHIP(bp) == BNX2_CHIP_5709)
1441 bnx2_write_phy(bp, MII_BNX2_BLK_ADDR, MII_BNX2_BLK_ADDR_OVER1G);
1442
1443 bnx2_read_phy(bp, bp->mii_up1, &up1);
1444 if (up1 & BCM5708S_UP1_2G5) {
1445 up1 &= ~BCM5708S_UP1_2G5;
1446 bnx2_write_phy(bp, bp->mii_up1, up1);
1447 ret = 1;
1448 }
1449
1450 if (BNX2_CHIP(bp) == BNX2_CHIP_5709)
1451 bnx2_write_phy(bp, MII_BNX2_BLK_ADDR,
1452 MII_BNX2_BLK_ADDR_COMBO_IEEEB0);
1453
1454 return ret;
1455 }
1456
1457 static void
1458 bnx2_enable_forced_2g5(struct bnx2 *bp)
1459 {
1460 u32 uninitialized_var(bmcr);
1461 int err;
1462
1463 if (!(bp->phy_flags & BNX2_PHY_FLAG_2_5G_CAPABLE))
1464 return;
1465
1466 if (BNX2_CHIP(bp) == BNX2_CHIP_5709) {
1467 u32 val;
1468
1469 bnx2_write_phy(bp, MII_BNX2_BLK_ADDR,
1470 MII_BNX2_BLK_ADDR_SERDES_DIG);
1471 if (!bnx2_read_phy(bp, MII_BNX2_SERDES_DIG_MISC1, &val)) {
1472 val &= ~MII_BNX2_SD_MISC1_FORCE_MSK;
1473 val |= MII_BNX2_SD_MISC1_FORCE |
1474 MII_BNX2_SD_MISC1_FORCE_2_5G;
1475 bnx2_write_phy(bp, MII_BNX2_SERDES_DIG_MISC1, val);
1476 }
1477
1478 bnx2_write_phy(bp, MII_BNX2_BLK_ADDR,
1479 MII_BNX2_BLK_ADDR_COMBO_IEEEB0);
1480 err = bnx2_read_phy(bp, bp->mii_bmcr, &bmcr);
1481
1482 } else if (BNX2_CHIP(bp) == BNX2_CHIP_5708) {
1483 err = bnx2_read_phy(bp, bp->mii_bmcr, &bmcr);
1484 if (!err)
1485 bmcr |= BCM5708S_BMCR_FORCE_2500;
1486 } else {
1487 return;
1488 }
1489
1490 if (err)
1491 return;
1492
1493 if (bp->autoneg & AUTONEG_SPEED) {
1494 bmcr &= ~BMCR_ANENABLE;
1495 if (bp->req_duplex == DUPLEX_FULL)
1496 bmcr |= BMCR_FULLDPLX;
1497 }
1498 bnx2_write_phy(bp, bp->mii_bmcr, bmcr);
1499 }
1500
1501 static void
1502 bnx2_disable_forced_2g5(struct bnx2 *bp)
1503 {
1504 u32 uninitialized_var(bmcr);
1505 int err;
1506
1507 if (!(bp->phy_flags & BNX2_PHY_FLAG_2_5G_CAPABLE))
1508 return;
1509
1510 if (BNX2_CHIP(bp) == BNX2_CHIP_5709) {
1511 u32 val;
1512
1513 bnx2_write_phy(bp, MII_BNX2_BLK_ADDR,
1514 MII_BNX2_BLK_ADDR_SERDES_DIG);
1515 if (!bnx2_read_phy(bp, MII_BNX2_SERDES_DIG_MISC1, &val)) {
1516 val &= ~MII_BNX2_SD_MISC1_FORCE;
1517 bnx2_write_phy(bp, MII_BNX2_SERDES_DIG_MISC1, val);
1518 }
1519
1520 bnx2_write_phy(bp, MII_BNX2_BLK_ADDR,
1521 MII_BNX2_BLK_ADDR_COMBO_IEEEB0);
1522 err = bnx2_read_phy(bp, bp->mii_bmcr, &bmcr);
1523
1524 } else if (BNX2_CHIP(bp) == BNX2_CHIP_5708) {
1525 err = bnx2_read_phy(bp, bp->mii_bmcr, &bmcr);
1526 if (!err)
1527 bmcr &= ~BCM5708S_BMCR_FORCE_2500;
1528 } else {
1529 return;
1530 }
1531
1532 if (err)
1533 return;
1534
1535 if (bp->autoneg & AUTONEG_SPEED)
1536 bmcr |= BMCR_SPEED1000 | BMCR_ANENABLE | BMCR_ANRESTART;
1537 bnx2_write_phy(bp, bp->mii_bmcr, bmcr);
1538 }
1539
1540 static void
1541 bnx2_5706s_force_link_dn(struct bnx2 *bp, int start)
1542 {
1543 u32 val;
1544
1545 bnx2_write_phy(bp, MII_BNX2_DSP_ADDRESS, MII_EXPAND_SERDES_CTL);
1546 bnx2_read_phy(bp, MII_BNX2_DSP_RW_PORT, &val);
1547 if (start)
1548 bnx2_write_phy(bp, MII_BNX2_DSP_RW_PORT, val & 0xff0f);
1549 else
1550 bnx2_write_phy(bp, MII_BNX2_DSP_RW_PORT, val | 0xc0);
1551 }
1552
1553 static int
1554 bnx2_set_link(struct bnx2 *bp)
1555 {
1556 u32 bmsr;
1557 u8 link_up;
1558
1559 if (bp->loopback == MAC_LOOPBACK || bp->loopback == PHY_LOOPBACK) {
1560 bp->link_up = 1;
1561 return 0;
1562 }
1563
1564 if (bp->phy_flags & BNX2_PHY_FLAG_REMOTE_PHY_CAP)
1565 return 0;
1566
1567 link_up = bp->link_up;
1568
1569 bnx2_enable_bmsr1(bp);
1570 bnx2_read_phy(bp, bp->mii_bmsr1, &bmsr);
1571 bnx2_read_phy(bp, bp->mii_bmsr1, &bmsr);
1572 bnx2_disable_bmsr1(bp);
1573
1574 if ((bp->phy_flags & BNX2_PHY_FLAG_SERDES) &&
1575 (BNX2_CHIP(bp) == BNX2_CHIP_5706)) {
1576 u32 val, an_dbg;
1577
1578 if (bp->phy_flags & BNX2_PHY_FLAG_FORCED_DOWN) {
1579 bnx2_5706s_force_link_dn(bp, 0);
1580 bp->phy_flags &= ~BNX2_PHY_FLAG_FORCED_DOWN;
1581 }
1582 val = BNX2_RD(bp, BNX2_EMAC_STATUS);
1583
1584 bnx2_write_phy(bp, MII_BNX2_MISC_SHADOW, MISC_SHDW_AN_DBG);
1585 bnx2_read_phy(bp, MII_BNX2_MISC_SHADOW, &an_dbg);
1586 bnx2_read_phy(bp, MII_BNX2_MISC_SHADOW, &an_dbg);
1587
1588 if ((val & BNX2_EMAC_STATUS_LINK) &&
1589 !(an_dbg & MISC_SHDW_AN_DBG_NOSYNC))
1590 bmsr |= BMSR_LSTATUS;
1591 else
1592 bmsr &= ~BMSR_LSTATUS;
1593 }
1594
1595 if (bmsr & BMSR_LSTATUS) {
1596 bp->link_up = 1;
1597
1598 if (bp->phy_flags & BNX2_PHY_FLAG_SERDES) {
1599 if (BNX2_CHIP(bp) == BNX2_CHIP_5706)
1600 bnx2_5706s_linkup(bp);
1601 else if (BNX2_CHIP(bp) == BNX2_CHIP_5708)
1602 bnx2_5708s_linkup(bp);
1603 else if (BNX2_CHIP(bp) == BNX2_CHIP_5709)
1604 bnx2_5709s_linkup(bp);
1605 }
1606 else {
1607 bnx2_copper_linkup(bp);
1608 }
1609 bnx2_resolve_flow_ctrl(bp);
1610 }
1611 else {
1612 if ((bp->phy_flags & BNX2_PHY_FLAG_SERDES) &&
1613 (bp->autoneg & AUTONEG_SPEED))
1614 bnx2_disable_forced_2g5(bp);
1615
1616 if (bp->phy_flags & BNX2_PHY_FLAG_PARALLEL_DETECT) {
1617 u32 bmcr;
1618
1619 bnx2_read_phy(bp, bp->mii_bmcr, &bmcr);
1620 bmcr |= BMCR_ANENABLE;
1621 bnx2_write_phy(bp, bp->mii_bmcr, bmcr);
1622
1623 bp->phy_flags &= ~BNX2_PHY_FLAG_PARALLEL_DETECT;
1624 }
1625 bp->link_up = 0;
1626 }
1627
1628 if (bp->link_up != link_up) {
1629 bnx2_report_link(bp);
1630 }
1631
1632 bnx2_set_mac_link(bp);
1633
1634 return 0;
1635 }
1636
1637 static int
1638 bnx2_reset_phy(struct bnx2 *bp)
1639 {
1640 int i;
1641 u32 reg;
1642
1643 bnx2_write_phy(bp, bp->mii_bmcr, BMCR_RESET);
1644
1645 #define PHY_RESET_MAX_WAIT 100
1646 for (i = 0; i < PHY_RESET_MAX_WAIT; i++) {
1647 udelay(10);
1648
1649 bnx2_read_phy(bp, bp->mii_bmcr, &reg);
1650 if (!(reg & BMCR_RESET)) {
1651 udelay(20);
1652 break;
1653 }
1654 }
1655 if (i == PHY_RESET_MAX_WAIT) {
1656 return -EBUSY;
1657 }
1658 return 0;
1659 }
1660
1661 static u32
1662 bnx2_phy_get_pause_adv(struct bnx2 *bp)
1663 {
1664 u32 adv = 0;
1665
1666 if ((bp->req_flow_ctrl & (FLOW_CTRL_RX | FLOW_CTRL_TX)) ==
1667 (FLOW_CTRL_RX | FLOW_CTRL_TX)) {
1668
1669 if (bp->phy_flags & BNX2_PHY_FLAG_SERDES) {
1670 adv = ADVERTISE_1000XPAUSE;
1671 }
1672 else {
1673 adv = ADVERTISE_PAUSE_CAP;
1674 }
1675 }
1676 else if (bp->req_flow_ctrl & FLOW_CTRL_TX) {
1677 if (bp->phy_flags & BNX2_PHY_FLAG_SERDES) {
1678 adv = ADVERTISE_1000XPSE_ASYM;
1679 }
1680 else {
1681 adv = ADVERTISE_PAUSE_ASYM;
1682 }
1683 }
1684 else if (bp->req_flow_ctrl & FLOW_CTRL_RX) {
1685 if (bp->phy_flags & BNX2_PHY_FLAG_SERDES) {
1686 adv = ADVERTISE_1000XPAUSE | ADVERTISE_1000XPSE_ASYM;
1687 }
1688 else {
1689 adv = ADVERTISE_PAUSE_CAP | ADVERTISE_PAUSE_ASYM;
1690 }
1691 }
1692 return adv;
1693 }
1694
1695 static int bnx2_fw_sync(struct bnx2 *, u32, int, int);
1696
1697 static int
1698 bnx2_setup_remote_phy(struct bnx2 *bp, u8 port)
1699 __releases(&bp->phy_lock)
1700 __acquires(&bp->phy_lock)
1701 {
1702 u32 speed_arg = 0, pause_adv;
1703
1704 pause_adv = bnx2_phy_get_pause_adv(bp);
1705
1706 if (bp->autoneg & AUTONEG_SPEED) {
1707 speed_arg |= BNX2_NETLINK_SET_LINK_ENABLE_AUTONEG;
1708 if (bp->advertising & ADVERTISED_10baseT_Half)
1709 speed_arg |= BNX2_NETLINK_SET_LINK_SPEED_10HALF;
1710 if (bp->advertising & ADVERTISED_10baseT_Full)
1711 speed_arg |= BNX2_NETLINK_SET_LINK_SPEED_10FULL;
1712 if (bp->advertising & ADVERTISED_100baseT_Half)
1713 speed_arg |= BNX2_NETLINK_SET_LINK_SPEED_100HALF;
1714 if (bp->advertising & ADVERTISED_100baseT_Full)
1715 speed_arg |= BNX2_NETLINK_SET_LINK_SPEED_100FULL;
1716 if (bp->advertising & ADVERTISED_1000baseT_Full)
1717 speed_arg |= BNX2_NETLINK_SET_LINK_SPEED_1GFULL;
1718 if (bp->advertising & ADVERTISED_2500baseX_Full)
1719 speed_arg |= BNX2_NETLINK_SET_LINK_SPEED_2G5FULL;
1720 } else {
1721 if (bp->req_line_speed == SPEED_2500)
1722 speed_arg = BNX2_NETLINK_SET_LINK_SPEED_2G5FULL;
1723 else if (bp->req_line_speed == SPEED_1000)
1724 speed_arg = BNX2_NETLINK_SET_LINK_SPEED_1GFULL;
1725 else if (bp->req_line_speed == SPEED_100) {
1726 if (bp->req_duplex == DUPLEX_FULL)
1727 speed_arg = BNX2_NETLINK_SET_LINK_SPEED_100FULL;
1728 else
1729 speed_arg = BNX2_NETLINK_SET_LINK_SPEED_100HALF;
1730 } else if (bp->req_line_speed == SPEED_10) {
1731 if (bp->req_duplex == DUPLEX_FULL)
1732 speed_arg = BNX2_NETLINK_SET_LINK_SPEED_10FULL;
1733 else
1734 speed_arg = BNX2_NETLINK_SET_LINK_SPEED_10HALF;
1735 }
1736 }
1737
1738 if (pause_adv & (ADVERTISE_1000XPAUSE | ADVERTISE_PAUSE_CAP))
1739 speed_arg |= BNX2_NETLINK_SET_LINK_FC_SYM_PAUSE;
1740 if (pause_adv & (ADVERTISE_1000XPSE_ASYM | ADVERTISE_PAUSE_ASYM))
1741 speed_arg |= BNX2_NETLINK_SET_LINK_FC_ASYM_PAUSE;
1742
1743 if (port == PORT_TP)
1744 speed_arg |= BNX2_NETLINK_SET_LINK_PHY_APP_REMOTE |
1745 BNX2_NETLINK_SET_LINK_ETH_AT_WIRESPEED;
1746
1747 bnx2_shmem_wr(bp, BNX2_DRV_MB_ARG0, speed_arg);
1748
1749 spin_unlock_bh(&bp->phy_lock);
1750 bnx2_fw_sync(bp, BNX2_DRV_MSG_CODE_CMD_SET_LINK, 1, 0);
1751 spin_lock_bh(&bp->phy_lock);
1752
1753 return 0;
1754 }
1755
1756 static int
1757 bnx2_setup_serdes_phy(struct bnx2 *bp, u8 port)
1758 __releases(&bp->phy_lock)
1759 __acquires(&bp->phy_lock)
1760 {
1761 u32 adv, bmcr;
1762 u32 new_adv = 0;
1763
1764 if (bp->phy_flags & BNX2_PHY_FLAG_REMOTE_PHY_CAP)
1765 return bnx2_setup_remote_phy(bp, port);
1766
1767 if (!(bp->autoneg & AUTONEG_SPEED)) {
1768 u32 new_bmcr;
1769 int force_link_down = 0;
1770
1771 if (bp->req_line_speed == SPEED_2500) {
1772 if (!bnx2_test_and_enable_2g5(bp))
1773 force_link_down = 1;
1774 } else if (bp->req_line_speed == SPEED_1000) {
1775 if (bnx2_test_and_disable_2g5(bp))
1776 force_link_down = 1;
1777 }
1778 bnx2_read_phy(bp, bp->mii_adv, &adv);
1779 adv &= ~(ADVERTISE_1000XFULL | ADVERTISE_1000XHALF);
1780
1781 bnx2_read_phy(bp, bp->mii_bmcr, &bmcr);
1782 new_bmcr = bmcr & ~BMCR_ANENABLE;
1783 new_bmcr |= BMCR_SPEED1000;
1784
1785 if (BNX2_CHIP(bp) == BNX2_CHIP_5709) {
1786 if (bp->req_line_speed == SPEED_2500)
1787 bnx2_enable_forced_2g5(bp);
1788 else if (bp->req_line_speed == SPEED_1000) {
1789 bnx2_disable_forced_2g5(bp);
1790 new_bmcr &= ~0x2000;
1791 }
1792
1793 } else if (BNX2_CHIP(bp) == BNX2_CHIP_5708) {
1794 if (bp->req_line_speed == SPEED_2500)
1795 new_bmcr |= BCM5708S_BMCR_FORCE_2500;
1796 else
1797 new_bmcr = bmcr & ~BCM5708S_BMCR_FORCE_2500;
1798 }
1799
1800 if (bp->req_duplex == DUPLEX_FULL) {
1801 adv |= ADVERTISE_1000XFULL;
1802 new_bmcr |= BMCR_FULLDPLX;
1803 }
1804 else {
1805 adv |= ADVERTISE_1000XHALF;
1806 new_bmcr &= ~BMCR_FULLDPLX;
1807 }
1808 if ((new_bmcr != bmcr) || (force_link_down)) {
1809 /* Force a link down visible on the other side */
1810 if (bp->link_up) {
1811 bnx2_write_phy(bp, bp->mii_adv, adv &
1812 ~(ADVERTISE_1000XFULL |
1813 ADVERTISE_1000XHALF));
1814 bnx2_write_phy(bp, bp->mii_bmcr, bmcr |
1815 BMCR_ANRESTART | BMCR_ANENABLE);
1816
1817 bp->link_up = 0;
1818 netif_carrier_off(bp->dev);
1819 bnx2_write_phy(bp, bp->mii_bmcr, new_bmcr);
1820 bnx2_report_link(bp);
1821 }
1822 bnx2_write_phy(bp, bp->mii_adv, adv);
1823 bnx2_write_phy(bp, bp->mii_bmcr, new_bmcr);
1824 } else {
1825 bnx2_resolve_flow_ctrl(bp);
1826 bnx2_set_mac_link(bp);
1827 }
1828 return 0;
1829 }
1830
1831 bnx2_test_and_enable_2g5(bp);
1832
1833 if (bp->advertising & ADVERTISED_1000baseT_Full)
1834 new_adv |= ADVERTISE_1000XFULL;
1835
1836 new_adv |= bnx2_phy_get_pause_adv(bp);
1837
1838 bnx2_read_phy(bp, bp->mii_adv, &adv);
1839 bnx2_read_phy(bp, bp->mii_bmcr, &bmcr);
1840
1841 bp->serdes_an_pending = 0;
1842 if ((adv != new_adv) || ((bmcr & BMCR_ANENABLE) == 0)) {
1843 /* Force a link down visible on the other side */
1844 if (bp->link_up) {
1845 bnx2_write_phy(bp, bp->mii_bmcr, BMCR_LOOPBACK);
1846 spin_unlock_bh(&bp->phy_lock);
1847 msleep(20);
1848 spin_lock_bh(&bp->phy_lock);
1849 }
1850
1851 bnx2_write_phy(bp, bp->mii_adv, new_adv);
1852 bnx2_write_phy(bp, bp->mii_bmcr, bmcr | BMCR_ANRESTART |
1853 BMCR_ANENABLE);
1854 /* Speed up link-up time when the link partner
1855 * does not autonegotiate which is very common
1856 * in blade servers. Some blade servers use
1857 * IPMI for kerboard input and it's important
1858 * to minimize link disruptions. Autoneg. involves
1859 * exchanging base pages plus 3 next pages and
1860 * normally completes in about 120 msec.
1861 */
1862 bp->current_interval = BNX2_SERDES_AN_TIMEOUT;
1863 bp->serdes_an_pending = 1;
1864 mod_timer(&bp->timer, jiffies + bp->current_interval);
1865 } else {
1866 bnx2_resolve_flow_ctrl(bp);
1867 bnx2_set_mac_link(bp);
1868 }
1869
1870 return 0;
1871 }
1872
1873 #define ETHTOOL_ALL_FIBRE_SPEED \
1874 (bp->phy_flags & BNX2_PHY_FLAG_2_5G_CAPABLE) ? \
1875 (ADVERTISED_2500baseX_Full | ADVERTISED_1000baseT_Full) :\
1876 (ADVERTISED_1000baseT_Full)
1877
1878 #define ETHTOOL_ALL_COPPER_SPEED \
1879 (ADVERTISED_10baseT_Half | ADVERTISED_10baseT_Full | \
1880 ADVERTISED_100baseT_Half | ADVERTISED_100baseT_Full | \
1881 ADVERTISED_1000baseT_Full)
1882
1883 #define PHY_ALL_10_100_SPEED (ADVERTISE_10HALF | ADVERTISE_10FULL | \
1884 ADVERTISE_100HALF | ADVERTISE_100FULL | ADVERTISE_CSMA)
1885
1886 #define PHY_ALL_1000_SPEED (ADVERTISE_1000HALF | ADVERTISE_1000FULL)
1887
1888 static void
1889 bnx2_set_default_remote_link(struct bnx2 *bp)
1890 {
1891 u32 link;
1892
1893 if (bp->phy_port == PORT_TP)
1894 link = bnx2_shmem_rd(bp, BNX2_RPHY_COPPER_LINK);
1895 else
1896 link = bnx2_shmem_rd(bp, BNX2_RPHY_SERDES_LINK);
1897
1898 if (link & BNX2_NETLINK_SET_LINK_ENABLE_AUTONEG) {
1899 bp->req_line_speed = 0;
1900 bp->autoneg |= AUTONEG_SPEED;
1901 bp->advertising = ADVERTISED_Autoneg;
1902 if (link & BNX2_NETLINK_SET_LINK_SPEED_10HALF)
1903 bp->advertising |= ADVERTISED_10baseT_Half;
1904 if (link & BNX2_NETLINK_SET_LINK_SPEED_10FULL)
1905 bp->advertising |= ADVERTISED_10baseT_Full;
1906 if (link & BNX2_NETLINK_SET_LINK_SPEED_100HALF)
1907 bp->advertising |= ADVERTISED_100baseT_Half;
1908 if (link & BNX2_NETLINK_SET_LINK_SPEED_100FULL)
1909 bp->advertising |= ADVERTISED_100baseT_Full;
1910 if (link & BNX2_NETLINK_SET_LINK_SPEED_1GFULL)
1911 bp->advertising |= ADVERTISED_1000baseT_Full;
1912 if (link & BNX2_NETLINK_SET_LINK_SPEED_2G5FULL)
1913 bp->advertising |= ADVERTISED_2500baseX_Full;
1914 } else {
1915 bp->autoneg = 0;
1916 bp->advertising = 0;
1917 bp->req_duplex = DUPLEX_FULL;
1918 if (link & BNX2_NETLINK_SET_LINK_SPEED_10) {
1919 bp->req_line_speed = SPEED_10;
1920 if (link & BNX2_NETLINK_SET_LINK_SPEED_10HALF)
1921 bp->req_duplex = DUPLEX_HALF;
1922 }
1923 if (link & BNX2_NETLINK_SET_LINK_SPEED_100) {
1924 bp->req_line_speed = SPEED_100;
1925 if (link & BNX2_NETLINK_SET_LINK_SPEED_100HALF)
1926 bp->req_duplex = DUPLEX_HALF;
1927 }
1928 if (link & BNX2_NETLINK_SET_LINK_SPEED_1GFULL)
1929 bp->req_line_speed = SPEED_1000;
1930 if (link & BNX2_NETLINK_SET_LINK_SPEED_2G5FULL)
1931 bp->req_line_speed = SPEED_2500;
1932 }
1933 }
1934
1935 static void
1936 bnx2_set_default_link(struct bnx2 *bp)
1937 {
1938 if (bp->phy_flags & BNX2_PHY_FLAG_REMOTE_PHY_CAP) {
1939 bnx2_set_default_remote_link(bp);
1940 return;
1941 }
1942
1943 bp->autoneg = AUTONEG_SPEED | AUTONEG_FLOW_CTRL;
1944 bp->req_line_speed = 0;
1945 if (bp->phy_flags & BNX2_PHY_FLAG_SERDES) {
1946 u32 reg;
1947
1948 bp->advertising = ETHTOOL_ALL_FIBRE_SPEED | ADVERTISED_Autoneg;
1949
1950 reg = bnx2_shmem_rd(bp, BNX2_PORT_HW_CFG_CONFIG);
1951 reg &= BNX2_PORT_HW_CFG_CFG_DFLT_LINK_MASK;
1952 if (reg == BNX2_PORT_HW_CFG_CFG_DFLT_LINK_1G) {
1953 bp->autoneg = 0;
1954 bp->req_line_speed = bp->line_speed = SPEED_1000;
1955 bp->req_duplex = DUPLEX_FULL;
1956 }
1957 } else
1958 bp->advertising = ETHTOOL_ALL_COPPER_SPEED | ADVERTISED_Autoneg;
1959 }
1960
1961 static void
1962 bnx2_send_heart_beat(struct bnx2 *bp)
1963 {
1964 u32 msg;
1965 u32 addr;
1966
1967 spin_lock(&bp->indirect_lock);
1968 msg = (u32) (++bp->fw_drv_pulse_wr_seq & BNX2_DRV_PULSE_SEQ_MASK);
1969 addr = bp->shmem_base + BNX2_DRV_PULSE_MB;
1970 BNX2_WR(bp, BNX2_PCICFG_REG_WINDOW_ADDRESS, addr);
1971 BNX2_WR(bp, BNX2_PCICFG_REG_WINDOW, msg);
1972 spin_unlock(&bp->indirect_lock);
1973 }
1974
1975 static void
1976 bnx2_remote_phy_event(struct bnx2 *bp)
1977 {
1978 u32 msg;
1979 u8 link_up = bp->link_up;
1980 u8 old_port;
1981
1982 msg = bnx2_shmem_rd(bp, BNX2_LINK_STATUS);
1983
1984 if (msg & BNX2_LINK_STATUS_HEART_BEAT_EXPIRED)
1985 bnx2_send_heart_beat(bp);
1986
1987 msg &= ~BNX2_LINK_STATUS_HEART_BEAT_EXPIRED;
1988
1989 if ((msg & BNX2_LINK_STATUS_LINK_UP) == BNX2_LINK_STATUS_LINK_DOWN)
1990 bp->link_up = 0;
1991 else {
1992 u32 speed;
1993
1994 bp->link_up = 1;
1995 speed = msg & BNX2_LINK_STATUS_SPEED_MASK;
1996 bp->duplex = DUPLEX_FULL;
1997 switch (speed) {
1998 case BNX2_LINK_STATUS_10HALF:
1999 bp->duplex = DUPLEX_HALF;
2000 /* fall through */
2001 case BNX2_LINK_STATUS_10FULL:
2002 bp->line_speed = SPEED_10;
2003 break;
2004 case BNX2_LINK_STATUS_100HALF:
2005 bp->duplex = DUPLEX_HALF;
2006 /* fall through */
2007 case BNX2_LINK_STATUS_100BASE_T4:
2008 case BNX2_LINK_STATUS_100FULL:
2009 bp->line_speed = SPEED_100;
2010 break;
2011 case BNX2_LINK_STATUS_1000HALF:
2012 bp->duplex = DUPLEX_HALF;
2013 /* fall through */
2014 case BNX2_LINK_STATUS_1000FULL:
2015 bp->line_speed = SPEED_1000;
2016 break;
2017 case BNX2_LINK_STATUS_2500HALF:
2018 bp->duplex = DUPLEX_HALF;
2019 /* fall through */
2020 case BNX2_LINK_STATUS_2500FULL:
2021 bp->line_speed = SPEED_2500;
2022 break;
2023 default:
2024 bp->line_speed = 0;
2025 break;
2026 }
2027
2028 bp->flow_ctrl = 0;
2029 if ((bp->autoneg & (AUTONEG_SPEED | AUTONEG_FLOW_CTRL)) !=
2030 (AUTONEG_SPEED | AUTONEG_FLOW_CTRL)) {
2031 if (bp->duplex == DUPLEX_FULL)
2032 bp->flow_ctrl = bp->req_flow_ctrl;
2033 } else {
2034 if (msg & BNX2_LINK_STATUS_TX_FC_ENABLED)
2035 bp->flow_ctrl |= FLOW_CTRL_TX;
2036 if (msg & BNX2_LINK_STATUS_RX_FC_ENABLED)
2037 bp->flow_ctrl |= FLOW_CTRL_RX;
2038 }
2039
2040 old_port = bp->phy_port;
2041 if (msg & BNX2_LINK_STATUS_SERDES_LINK)
2042 bp->phy_port = PORT_FIBRE;
2043 else
2044 bp->phy_port = PORT_TP;
2045
2046 if (old_port != bp->phy_port)
2047 bnx2_set_default_link(bp);
2048
2049 }
2050 if (bp->link_up != link_up)
2051 bnx2_report_link(bp);
2052
2053 bnx2_set_mac_link(bp);
2054 }
2055
2056 static int
2057 bnx2_set_remote_link(struct bnx2 *bp)
2058 {
2059 u32 evt_code;
2060
2061 evt_code = bnx2_shmem_rd(bp, BNX2_FW_EVT_CODE_MB);
2062 switch (evt_code) {
2063 case BNX2_FW_EVT_CODE_LINK_EVENT:
2064 bnx2_remote_phy_event(bp);
2065 break;
2066 case BNX2_FW_EVT_CODE_SW_TIMER_EXPIRATION_EVENT:
2067 default:
2068 bnx2_send_heart_beat(bp);
2069 break;
2070 }
2071 return 0;
2072 }
2073
2074 static int
2075 bnx2_setup_copper_phy(struct bnx2 *bp)
2076 __releases(&bp->phy_lock)
2077 __acquires(&bp->phy_lock)
2078 {
2079 u32 bmcr, adv_reg, new_adv = 0;
2080 u32 new_bmcr;
2081
2082 bnx2_read_phy(bp, bp->mii_bmcr, &bmcr);
2083
2084 bnx2_read_phy(bp, bp->mii_adv, &adv_reg);
2085 adv_reg &= (PHY_ALL_10_100_SPEED | ADVERTISE_PAUSE_CAP |
2086 ADVERTISE_PAUSE_ASYM);
2087
2088 new_adv = ADVERTISE_CSMA | ethtool_adv_to_mii_adv_t(bp->advertising);
2089
2090 if (bp->autoneg & AUTONEG_SPEED) {
2091 u32 adv1000_reg;
2092 u32 new_adv1000 = 0;
2093
2094 new_adv |= bnx2_phy_get_pause_adv(bp);
2095
2096 bnx2_read_phy(bp, MII_CTRL1000, &adv1000_reg);
2097 adv1000_reg &= PHY_ALL_1000_SPEED;
2098
2099 new_adv1000 |= ethtool_adv_to_mii_ctrl1000_t(bp->advertising);
2100 if ((adv1000_reg != new_adv1000) ||
2101 (adv_reg != new_adv) ||
2102 ((bmcr & BMCR_ANENABLE) == 0)) {
2103
2104 bnx2_write_phy(bp, bp->mii_adv, new_adv);
2105 bnx2_write_phy(bp, MII_CTRL1000, new_adv1000);
2106 bnx2_write_phy(bp, bp->mii_bmcr, BMCR_ANRESTART |
2107 BMCR_ANENABLE);
2108 }
2109 else if (bp->link_up) {
2110 /* Flow ctrl may have changed from auto to forced */
2111 /* or vice-versa. */
2112
2113 bnx2_resolve_flow_ctrl(bp);
2114 bnx2_set_mac_link(bp);
2115 }
2116 return 0;
2117 }
2118
2119 /* advertise nothing when forcing speed */
2120 if (adv_reg != new_adv)
2121 bnx2_write_phy(bp, bp->mii_adv, new_adv);
2122
2123 new_bmcr = 0;
2124 if (bp->req_line_speed == SPEED_100) {
2125 new_bmcr |= BMCR_SPEED100;
2126 }
2127 if (bp->req_duplex == DUPLEX_FULL) {
2128 new_bmcr |= BMCR_FULLDPLX;
2129 }
2130 if (new_bmcr != bmcr) {
2131 u32 bmsr;
2132
2133 bnx2_read_phy(bp, bp->mii_bmsr, &bmsr);
2134 bnx2_read_phy(bp, bp->mii_bmsr, &bmsr);
2135
2136 if (bmsr & BMSR_LSTATUS) {
2137 /* Force link down */
2138 bnx2_write_phy(bp, bp->mii_bmcr, BMCR_LOOPBACK);
2139 spin_unlock_bh(&bp->phy_lock);
2140 msleep(50);
2141 spin_lock_bh(&bp->phy_lock);
2142
2143 bnx2_read_phy(bp, bp->mii_bmsr, &bmsr);
2144 bnx2_read_phy(bp, bp->mii_bmsr, &bmsr);
2145 }
2146
2147 bnx2_write_phy(bp, bp->mii_bmcr, new_bmcr);
2148
2149 /* Normally, the new speed is setup after the link has
2150 * gone down and up again. In some cases, link will not go
2151 * down so we need to set up the new speed here.
2152 */
2153 if (bmsr & BMSR_LSTATUS) {
2154 bp->line_speed = bp->req_line_speed;
2155 bp->duplex = bp->req_duplex;
2156 bnx2_resolve_flow_ctrl(bp);
2157 bnx2_set_mac_link(bp);
2158 }
2159 } else {
2160 bnx2_resolve_flow_ctrl(bp);
2161 bnx2_set_mac_link(bp);
2162 }
2163 return 0;
2164 }
2165
2166 static int
2167 bnx2_setup_phy(struct bnx2 *bp, u8 port)
2168 __releases(&bp->phy_lock)
2169 __acquires(&bp->phy_lock)
2170 {
2171 if (bp->loopback == MAC_LOOPBACK)
2172 return 0;
2173
2174 if (bp->phy_flags & BNX2_PHY_FLAG_SERDES) {
2175 return bnx2_setup_serdes_phy(bp, port);
2176 }
2177 else {
2178 return bnx2_setup_copper_phy(bp);
2179 }
2180 }
2181
2182 static int
2183 bnx2_init_5709s_phy(struct bnx2 *bp, int reset_phy)
2184 {
2185 u32 val;
2186
2187 bp->mii_bmcr = MII_BMCR + 0x10;
2188 bp->mii_bmsr = MII_BMSR + 0x10;
2189 bp->mii_bmsr1 = MII_BNX2_GP_TOP_AN_STATUS1;
2190 bp->mii_adv = MII_ADVERTISE + 0x10;
2191 bp->mii_lpa = MII_LPA + 0x10;
2192 bp->mii_up1 = MII_BNX2_OVER1G_UP1;
2193
2194 bnx2_write_phy(bp, MII_BNX2_BLK_ADDR, MII_BNX2_BLK_ADDR_AER);
2195 bnx2_write_phy(bp, MII_BNX2_AER_AER, MII_BNX2_AER_AER_AN_MMD);
2196
2197 bnx2_write_phy(bp, MII_BNX2_BLK_ADDR, MII_BNX2_BLK_ADDR_COMBO_IEEEB0);
2198 if (reset_phy)
2199 bnx2_reset_phy(bp);
2200
2201 bnx2_write_phy(bp, MII_BNX2_BLK_ADDR, MII_BNX2_BLK_ADDR_SERDES_DIG);
2202
2203 bnx2_read_phy(bp, MII_BNX2_SERDES_DIG_1000XCTL1, &val);
2204 val &= ~MII_BNX2_SD_1000XCTL1_AUTODET;
2205 val |= MII_BNX2_SD_1000XCTL1_FIBER;
2206 bnx2_write_phy(bp, MII_BNX2_SERDES_DIG_1000XCTL1, val);
2207
2208 bnx2_write_phy(bp, MII_BNX2_BLK_ADDR, MII_BNX2_BLK_ADDR_OVER1G);
2209 bnx2_read_phy(bp, MII_BNX2_OVER1G_UP1, &val);
2210 if (bp->phy_flags & BNX2_PHY_FLAG_2_5G_CAPABLE)
2211 val |= BCM5708S_UP1_2G5;
2212 else
2213 val &= ~BCM5708S_UP1_2G5;
2214 bnx2_write_phy(bp, MII_BNX2_OVER1G_UP1, val);
2215
2216 bnx2_write_phy(bp, MII_BNX2_BLK_ADDR, MII_BNX2_BLK_ADDR_BAM_NXTPG);
2217 bnx2_read_phy(bp, MII_BNX2_BAM_NXTPG_CTL, &val);
2218 val |= MII_BNX2_NXTPG_CTL_T2 | MII_BNX2_NXTPG_CTL_BAM;
2219 bnx2_write_phy(bp, MII_BNX2_BAM_NXTPG_CTL, val);
2220
2221 bnx2_write_phy(bp, MII_BNX2_BLK_ADDR, MII_BNX2_BLK_ADDR_CL73_USERB0);
2222
2223 val = MII_BNX2_CL73_BAM_EN | MII_BNX2_CL73_BAM_STA_MGR_EN |
2224 MII_BNX2_CL73_BAM_NP_AFT_BP_EN;
2225 bnx2_write_phy(bp, MII_BNX2_CL73_BAM_CTL1, val);
2226
2227 bnx2_write_phy(bp, MII_BNX2_BLK_ADDR, MII_BNX2_BLK_ADDR_COMBO_IEEEB0);
2228
2229 return 0;
2230 }
2231
2232 static int
2233 bnx2_init_5708s_phy(struct bnx2 *bp, int reset_phy)
2234 {
2235 u32 val;
2236
2237 if (reset_phy)
2238 bnx2_reset_phy(bp);
2239
2240 bp->mii_up1 = BCM5708S_UP1;
2241
2242 bnx2_write_phy(bp, BCM5708S_BLK_ADDR, BCM5708S_BLK_ADDR_DIG3);
2243 bnx2_write_phy(bp, BCM5708S_DIG_3_0, BCM5708S_DIG_3_0_USE_IEEE);
2244 bnx2_write_phy(bp, BCM5708S_BLK_ADDR, BCM5708S_BLK_ADDR_DIG);
2245
2246 bnx2_read_phy(bp, BCM5708S_1000X_CTL1, &val);
2247 val |= BCM5708S_1000X_CTL1_FIBER_MODE | BCM5708S_1000X_CTL1_AUTODET_EN;
2248 bnx2_write_phy(bp, BCM5708S_1000X_CTL1, val);
2249
2250 bnx2_read_phy(bp, BCM5708S_1000X_CTL2, &val);
2251 val |= BCM5708S_1000X_CTL2_PLLEL_DET_EN;
2252 bnx2_write_phy(bp, BCM5708S_1000X_CTL2, val);
2253
2254 if (bp->phy_flags & BNX2_PHY_FLAG_2_5G_CAPABLE) {
2255 bnx2_read_phy(bp, BCM5708S_UP1, &val);
2256 val |= BCM5708S_UP1_2G5;
2257 bnx2_write_phy(bp, BCM5708S_UP1, val);
2258 }
2259
2260 if ((BNX2_CHIP_ID(bp) == BNX2_CHIP_ID_5708_A0) ||
2261 (BNX2_CHIP_ID(bp) == BNX2_CHIP_ID_5708_B0) ||
2262 (BNX2_CHIP_ID(bp) == BNX2_CHIP_ID_5708_B1)) {
2263 /* increase tx signal amplitude */
2264 bnx2_write_phy(bp, BCM5708S_BLK_ADDR,
2265 BCM5708S_BLK_ADDR_TX_MISC);
2266 bnx2_read_phy(bp, BCM5708S_TX_ACTL1, &val);
2267 val &= ~BCM5708S_TX_ACTL1_DRIVER_VCM;
2268 bnx2_write_phy(bp, BCM5708S_TX_ACTL1, val);
2269 bnx2_write_phy(bp, BCM5708S_BLK_ADDR, BCM5708S_BLK_ADDR_DIG);
2270 }
2271
2272 val = bnx2_shmem_rd(bp, BNX2_PORT_HW_CFG_CONFIG) &
2273 BNX2_PORT_HW_CFG_CFG_TXCTL3_MASK;
2274
2275 if (val) {
2276 u32 is_backplane;
2277
2278 is_backplane = bnx2_shmem_rd(bp, BNX2_SHARED_HW_CFG_CONFIG);
2279 if (is_backplane & BNX2_SHARED_HW_CFG_PHY_BACKPLANE) {
2280 bnx2_write_phy(bp, BCM5708S_BLK_ADDR,
2281 BCM5708S_BLK_ADDR_TX_MISC);
2282 bnx2_write_phy(bp, BCM5708S_TX_ACTL3, val);
2283 bnx2_write_phy(bp, BCM5708S_BLK_ADDR,
2284 BCM5708S_BLK_ADDR_DIG);
2285 }
2286 }
2287 return 0;
2288 }
2289
2290 static int
2291 bnx2_init_5706s_phy(struct bnx2 *bp, int reset_phy)
2292 {
2293 if (reset_phy)
2294 bnx2_reset_phy(bp);
2295
2296 bp->phy_flags &= ~BNX2_PHY_FLAG_PARALLEL_DETECT;
2297
2298 if (BNX2_CHIP(bp) == BNX2_CHIP_5706)
2299 BNX2_WR(bp, BNX2_MISC_GP_HW_CTL0, 0x300);
2300
2301 if (bp->dev->mtu > 1500) {
2302 u32 val;
2303
2304 /* Set extended packet length bit */
2305 bnx2_write_phy(bp, 0x18, 0x7);
2306 bnx2_read_phy(bp, 0x18, &val);
2307 bnx2_write_phy(bp, 0x18, (val & 0xfff8) | 0x4000);
2308
2309 bnx2_write_phy(bp, 0x1c, 0x6c00);
2310 bnx2_read_phy(bp, 0x1c, &val);
2311 bnx2_write_phy(bp, 0x1c, (val & 0x3ff) | 0xec02);
2312 }
2313 else {
2314 u32 val;
2315
2316 bnx2_write_phy(bp, 0x18, 0x7);
2317 bnx2_read_phy(bp, 0x18, &val);
2318 bnx2_write_phy(bp, 0x18, val & ~0x4007);
2319
2320 bnx2_write_phy(bp, 0x1c, 0x6c00);
2321 bnx2_read_phy(bp, 0x1c, &val);
2322 bnx2_write_phy(bp, 0x1c, (val & 0x3fd) | 0xec00);
2323 }
2324
2325 return 0;
2326 }
2327
2328 static int
2329 bnx2_init_copper_phy(struct bnx2 *bp, int reset_phy)
2330 {
2331 u32 val;
2332
2333 if (reset_phy)
2334 bnx2_reset_phy(bp);
2335
2336 if (bp->phy_flags & BNX2_PHY_FLAG_CRC_FIX) {
2337 bnx2_write_phy(bp, 0x18, 0x0c00);
2338 bnx2_write_phy(bp, 0x17, 0x000a);
2339 bnx2_write_phy(bp, 0x15, 0x310b);
2340 bnx2_write_phy(bp, 0x17, 0x201f);
2341 bnx2_write_phy(bp, 0x15, 0x9506);
2342 bnx2_write_phy(bp, 0x17, 0x401f);
2343 bnx2_write_phy(bp, 0x15, 0x14e2);
2344 bnx2_write_phy(bp, 0x18, 0x0400);
2345 }
2346
2347 if (bp->phy_flags & BNX2_PHY_FLAG_DIS_EARLY_DAC) {
2348 bnx2_write_phy(bp, MII_BNX2_DSP_ADDRESS,
2349 MII_BNX2_DSP_EXPAND_REG | 0x8);
2350 bnx2_read_phy(bp, MII_BNX2_DSP_RW_PORT, &val);
2351 val &= ~(1 << 8);
2352 bnx2_write_phy(bp, MII_BNX2_DSP_RW_PORT, val);
2353 }
2354
2355 if (bp->dev->mtu > 1500) {
2356 /* Set extended packet length bit */
2357 bnx2_write_phy(bp, 0x18, 0x7);
2358 bnx2_read_phy(bp, 0x18, &val);
2359 bnx2_write_phy(bp, 0x18, val | 0x4000);
2360
2361 bnx2_read_phy(bp, 0x10, &val);
2362 bnx2_write_phy(bp, 0x10, val | 0x1);
2363 }
2364 else {
2365 bnx2_write_phy(bp, 0x18, 0x7);
2366 bnx2_read_phy(bp, 0x18, &val);
2367 bnx2_write_phy(bp, 0x18, val & ~0x4007);
2368
2369 bnx2_read_phy(bp, 0x10, &val);
2370 bnx2_write_phy(bp, 0x10, val & ~0x1);
2371 }
2372
2373 /* ethernet@wirespeed */
2374 bnx2_write_phy(bp, MII_BNX2_AUX_CTL, AUX_CTL_MISC_CTL);
2375 bnx2_read_phy(bp, MII_BNX2_AUX_CTL, &val);
2376 val |= AUX_CTL_MISC_CTL_WR | AUX_CTL_MISC_CTL_WIRESPEED;
2377
2378 /* auto-mdix */
2379 if (BNX2_CHIP(bp) == BNX2_CHIP_5709)
2380 val |= AUX_CTL_MISC_CTL_AUTOMDIX;
2381
2382 bnx2_write_phy(bp, MII_BNX2_AUX_CTL, val);
2383 return 0;
2384 }
2385
2386
2387 static int
2388 bnx2_init_phy(struct bnx2 *bp, int reset_phy)
2389 __releases(&bp->phy_lock)
2390 __acquires(&bp->phy_lock)
2391 {
2392 u32 val;
2393 int rc = 0;
2394
2395 bp->phy_flags &= ~BNX2_PHY_FLAG_INT_MODE_MASK;
2396 bp->phy_flags |= BNX2_PHY_FLAG_INT_MODE_LINK_READY;
2397
2398 bp->mii_bmcr = MII_BMCR;
2399 bp->mii_bmsr = MII_BMSR;
2400 bp->mii_bmsr1 = MII_BMSR;
2401 bp->mii_adv = MII_ADVERTISE;
2402 bp->mii_lpa = MII_LPA;
2403
2404 BNX2_WR(bp, BNX2_EMAC_ATTENTION_ENA, BNX2_EMAC_ATTENTION_ENA_LINK);
2405
2406 if (bp->phy_flags & BNX2_PHY_FLAG_REMOTE_PHY_CAP)
2407 goto setup_phy;
2408
2409 bnx2_read_phy(bp, MII_PHYSID1, &val);
2410 bp->phy_id = val << 16;
2411 bnx2_read_phy(bp, MII_PHYSID2, &val);
2412 bp->phy_id |= val & 0xffff;
2413
2414 if (bp->phy_flags & BNX2_PHY_FLAG_SERDES) {
2415 if (BNX2_CHIP(bp) == BNX2_CHIP_5706)
2416 rc = bnx2_init_5706s_phy(bp, reset_phy);
2417 else if (BNX2_CHIP(bp) == BNX2_CHIP_5708)
2418 rc = bnx2_init_5708s_phy(bp, reset_phy);
2419 else if (BNX2_CHIP(bp) == BNX2_CHIP_5709)
2420 rc = bnx2_init_5709s_phy(bp, reset_phy);
2421 }
2422 else {
2423 rc = bnx2_init_copper_phy(bp, reset_phy);
2424 }
2425
2426 setup_phy:
2427 if (!rc)
2428 rc = bnx2_setup_phy(bp, bp->phy_port);
2429
2430 return rc;
2431 }
2432
2433 static int
2434 bnx2_set_mac_loopback(struct bnx2 *bp)
2435 {
2436 u32 mac_mode;
2437
2438 mac_mode = BNX2_RD(bp, BNX2_EMAC_MODE);
2439 mac_mode &= ~BNX2_EMAC_MODE_PORT;
2440 mac_mode |= BNX2_EMAC_MODE_MAC_LOOP | BNX2_EMAC_MODE_FORCE_LINK;
2441 BNX2_WR(bp, BNX2_EMAC_MODE, mac_mode);
2442 bp->link_up = 1;
2443 return 0;
2444 }
2445
2446 static int bnx2_test_link(struct bnx2 *);
2447
2448 static int
2449 bnx2_set_phy_loopback(struct bnx2 *bp)
2450 {
2451 u32 mac_mode;
2452 int rc, i;
2453
2454 spin_lock_bh(&bp->phy_lock);
2455 rc = bnx2_write_phy(bp, bp->mii_bmcr, BMCR_LOOPBACK | BMCR_FULLDPLX |
2456 BMCR_SPEED1000);
2457 spin_unlock_bh(&bp->phy_lock);
2458 if (rc)
2459 return rc;
2460
2461 for (i = 0; i < 10; i++) {
2462 if (bnx2_test_link(bp) == 0)
2463 break;
2464 msleep(100);
2465 }
2466
2467 mac_mode = BNX2_RD(bp, BNX2_EMAC_MODE);
2468 mac_mode &= ~(BNX2_EMAC_MODE_PORT | BNX2_EMAC_MODE_HALF_DUPLEX |
2469 BNX2_EMAC_MODE_MAC_LOOP | BNX2_EMAC_MODE_FORCE_LINK |
2470 BNX2_EMAC_MODE_25G_MODE);
2471
2472 mac_mode |= BNX2_EMAC_MODE_PORT_GMII;
2473 BNX2_WR(bp, BNX2_EMAC_MODE, mac_mode);
2474 bp->link_up = 1;
2475 return 0;
2476 }
2477
2478 static void
2479 bnx2_dump_mcp_state(struct bnx2 *bp)
2480 {
2481 struct net_device *dev = bp->dev;
2482 u32 mcp_p0, mcp_p1;
2483
2484 netdev_err(dev, "<--- start MCP states dump --->\n");
2485 if (BNX2_CHIP(bp) == BNX2_CHIP_5709) {
2486 mcp_p0 = BNX2_MCP_STATE_P0;
2487 mcp_p1 = BNX2_MCP_STATE_P1;
2488 } else {
2489 mcp_p0 = BNX2_MCP_STATE_P0_5708;
2490 mcp_p1 = BNX2_MCP_STATE_P1_5708;
2491 }
2492 netdev_err(dev, "DEBUG: MCP_STATE_P0[%08x] MCP_STATE_P1[%08x]\n",
2493 bnx2_reg_rd_ind(bp, mcp_p0), bnx2_reg_rd_ind(bp, mcp_p1));
2494 netdev_err(dev, "DEBUG: MCP mode[%08x] state[%08x] evt_mask[%08x]\n",
2495 bnx2_reg_rd_ind(bp, BNX2_MCP_CPU_MODE),
2496 bnx2_reg_rd_ind(bp, BNX2_MCP_CPU_STATE),
2497 bnx2_reg_rd_ind(bp, BNX2_MCP_CPU_EVENT_MASK));
2498 netdev_err(dev, "DEBUG: pc[%08x] pc[%08x] instr[%08x]\n",
2499 bnx2_reg_rd_ind(bp, BNX2_MCP_CPU_PROGRAM_COUNTER),
2500 bnx2_reg_rd_ind(bp, BNX2_MCP_CPU_PROGRAM_COUNTER),
2501 bnx2_reg_rd_ind(bp, BNX2_MCP_CPU_INSTRUCTION));
2502 netdev_err(dev, "DEBUG: shmem states:\n");
2503 netdev_err(dev, "DEBUG: drv_mb[%08x] fw_mb[%08x] link_status[%08x]",
2504 bnx2_shmem_rd(bp, BNX2_DRV_MB),
2505 bnx2_shmem_rd(bp, BNX2_FW_MB),
2506 bnx2_shmem_rd(bp, BNX2_LINK_STATUS));
2507 pr_cont(" drv_pulse_mb[%08x]\n", bnx2_shmem_rd(bp, BNX2_DRV_PULSE_MB));
2508 netdev_err(dev, "DEBUG: dev_info_signature[%08x] reset_type[%08x]",
2509 bnx2_shmem_rd(bp, BNX2_DEV_INFO_SIGNATURE),
2510 bnx2_shmem_rd(bp, BNX2_BC_STATE_RESET_TYPE));
2511 pr_cont(" condition[%08x]\n",
2512 bnx2_shmem_rd(bp, BNX2_BC_STATE_CONDITION));
2513 DP_SHMEM_LINE(bp, BNX2_BC_RESET_TYPE);
2514 DP_SHMEM_LINE(bp, 0x3cc);
2515 DP_SHMEM_LINE(bp, 0x3dc);
2516 DP_SHMEM_LINE(bp, 0x3ec);
2517 netdev_err(dev, "DEBUG: 0x3fc[%08x]\n", bnx2_shmem_rd(bp, 0x3fc));
2518 netdev_err(dev, "<--- end MCP states dump --->\n");
2519 }
2520
2521 static int
2522 bnx2_fw_sync(struct bnx2 *bp, u32 msg_data, int ack, int silent)
2523 {
2524 int i;
2525 u32 val;
2526
2527 bp->fw_wr_seq++;
2528 msg_data |= bp->fw_wr_seq;
2529 bp->fw_last_msg = msg_data;
2530
2531 bnx2_shmem_wr(bp, BNX2_DRV_MB, msg_data);
2532
2533 if (!ack)
2534 return 0;
2535
2536 /* wait for an acknowledgement. */
2537 for (i = 0; i < (BNX2_FW_ACK_TIME_OUT_MS / 10); i++) {
2538 msleep(10);
2539
2540 val = bnx2_shmem_rd(bp, BNX2_FW_MB);
2541
2542 if ((val & BNX2_FW_MSG_ACK) == (msg_data & BNX2_DRV_MSG_SEQ))
2543 break;
2544 }
2545 if ((msg_data & BNX2_DRV_MSG_DATA) == BNX2_DRV_MSG_DATA_WAIT0)
2546 return 0;
2547
2548 /* If we timed out, inform the firmware that this is the case. */
2549 if ((val & BNX2_FW_MSG_ACK) != (msg_data & BNX2_DRV_MSG_SEQ)) {
2550 msg_data &= ~BNX2_DRV_MSG_CODE;
2551 msg_data |= BNX2_DRV_MSG_CODE_FW_TIMEOUT;
2552
2553 bnx2_shmem_wr(bp, BNX2_DRV_MB, msg_data);
2554 if (!silent) {
2555 pr_err("fw sync timeout, reset code = %x\n", msg_data);
2556 bnx2_dump_mcp_state(bp);
2557 }
2558
2559 return -EBUSY;
2560 }
2561
2562 if ((val & BNX2_FW_MSG_STATUS_MASK) != BNX2_FW_MSG_STATUS_OK)
2563 return -EIO;
2564
2565 return 0;
2566 }
2567
2568 static int
2569 bnx2_init_5709_context(struct bnx2 *bp)
2570 {
2571 int i, ret = 0;
2572 u32 val;
2573
2574 val = BNX2_CTX_COMMAND_ENABLED | BNX2_CTX_COMMAND_MEM_INIT | (1 << 12);
2575 val |= (BNX2_PAGE_BITS - 8) << 16;
2576 BNX2_WR(bp, BNX2_CTX_COMMAND, val);
2577 for (i = 0; i < 10; i++) {
2578 val = BNX2_RD(bp, BNX2_CTX_COMMAND);
2579 if (!(val & BNX2_CTX_COMMAND_MEM_INIT))
2580 break;
2581 udelay(2);
2582 }
2583 if (val & BNX2_CTX_COMMAND_MEM_INIT)
2584 return -EBUSY;
2585
2586 for (i = 0; i < bp->ctx_pages; i++) {
2587 int j;
2588
2589 if (bp->ctx_blk[i])
2590 memset(bp->ctx_blk[i], 0, BNX2_PAGE_SIZE);
2591 else
2592 return -ENOMEM;
2593
2594 BNX2_WR(bp, BNX2_CTX_HOST_PAGE_TBL_DATA0,
2595 (bp->ctx_blk_mapping[i] & 0xffffffff) |
2596 BNX2_CTX_HOST_PAGE_TBL_DATA0_VALID);
2597 BNX2_WR(bp, BNX2_CTX_HOST_PAGE_TBL_DATA1,
2598 (u64) bp->ctx_blk_mapping[i] >> 32);
2599 BNX2_WR(bp, BNX2_CTX_HOST_PAGE_TBL_CTRL, i |
2600 BNX2_CTX_HOST_PAGE_TBL_CTRL_WRITE_REQ);
2601 for (j = 0; j < 10; j++) {
2602
2603 val = BNX2_RD(bp, BNX2_CTX_HOST_PAGE_TBL_CTRL);
2604 if (!(val & BNX2_CTX_HOST_PAGE_TBL_CTRL_WRITE_REQ))
2605 break;
2606 udelay(5);
2607 }
2608 if (val & BNX2_CTX_HOST_PAGE_TBL_CTRL_WRITE_REQ) {
2609 ret = -EBUSY;
2610 break;
2611 }
2612 }
2613 return ret;
2614 }
2615
2616 static void
2617 bnx2_init_context(struct bnx2 *bp)
2618 {
2619 u32 vcid;
2620
2621 vcid = 96;
2622 while (vcid) {
2623 u32 vcid_addr, pcid_addr, offset;
2624 int i;
2625
2626 vcid--;
2627
2628 if (BNX2_CHIP_ID(bp) == BNX2_CHIP_ID_5706_A0) {
2629 u32 new_vcid;
2630
2631 vcid_addr = GET_PCID_ADDR(vcid);
2632 if (vcid & 0x8) {
2633 new_vcid = 0x60 + (vcid & 0xf0) + (vcid & 0x7);
2634 }
2635 else {
2636 new_vcid = vcid;
2637 }
2638 pcid_addr = GET_PCID_ADDR(new_vcid);
2639 }
2640 else {
2641 vcid_addr = GET_CID_ADDR(vcid);
2642 pcid_addr = vcid_addr;
2643 }
2644
2645 for (i = 0; i < (CTX_SIZE / PHY_CTX_SIZE); i++) {
2646 vcid_addr += (i << PHY_CTX_SHIFT);
2647 pcid_addr += (i << PHY_CTX_SHIFT);
2648
2649 BNX2_WR(bp, BNX2_CTX_VIRT_ADDR, vcid_addr);
2650 BNX2_WR(bp, BNX2_CTX_PAGE_TBL, pcid_addr);
2651
2652 /* Zero out the context. */
2653 for (offset = 0; offset < PHY_CTX_SIZE; offset += 4)
2654 bnx2_ctx_wr(bp, vcid_addr, offset, 0);
2655 }
2656 }
2657 }
2658
2659 static int
2660 bnx2_alloc_bad_rbuf(struct bnx2 *bp)
2661 {
2662 u16 *good_mbuf;
2663 u32 good_mbuf_cnt;
2664 u32 val;
2665
2666 good_mbuf = kmalloc(512 * sizeof(u16), GFP_KERNEL);
2667 if (good_mbuf == NULL)
2668 return -ENOMEM;
2669
2670 BNX2_WR(bp, BNX2_MISC_ENABLE_SET_BITS,
2671 BNX2_MISC_ENABLE_SET_BITS_RX_MBUF_ENABLE);
2672
2673 good_mbuf_cnt = 0;
2674
2675 /* Allocate a bunch of mbufs and save the good ones in an array. */
2676 val = bnx2_reg_rd_ind(bp, BNX2_RBUF_STATUS1);
2677 while (val & BNX2_RBUF_STATUS1_FREE_COUNT) {
2678 bnx2_reg_wr_ind(bp, BNX2_RBUF_COMMAND,
2679 BNX2_RBUF_COMMAND_ALLOC_REQ);
2680
2681 val = bnx2_reg_rd_ind(bp, BNX2_RBUF_FW_BUF_ALLOC);
2682
2683 val &= BNX2_RBUF_FW_BUF_ALLOC_VALUE;
2684
2685 /* The addresses with Bit 9 set are bad memory blocks. */
2686 if (!(val & (1 << 9))) {
2687 good_mbuf[good_mbuf_cnt] = (u16) val;
2688 good_mbuf_cnt++;
2689 }
2690
2691 val = bnx2_reg_rd_ind(bp, BNX2_RBUF_STATUS1);
2692 }
2693
2694 /* Free the good ones back to the mbuf pool thus discarding
2695 * all the bad ones. */
2696 while (good_mbuf_cnt) {
2697 good_mbuf_cnt--;
2698
2699 val = good_mbuf[good_mbuf_cnt];
2700 val = (val << 9) | val | 1;
2701
2702 bnx2_reg_wr_ind(bp, BNX2_RBUF_FW_BUF_FREE, val);
2703 }
2704 kfree(good_mbuf);
2705 return 0;
2706 }
2707
2708 static void
2709 bnx2_set_mac_addr(struct bnx2 *bp, u8 *mac_addr, u32 pos)
2710 {
2711 u32 val;
2712
2713 val = (mac_addr[0] << 8) | mac_addr[1];
2714
2715 BNX2_WR(bp, BNX2_EMAC_MAC_MATCH0 + (pos * 8), val);
2716
2717 val = (mac_addr[2] << 24) | (mac_addr[3] << 16) |
2718 (mac_addr[4] << 8) | mac_addr[5];
2719
2720 BNX2_WR(bp, BNX2_EMAC_MAC_MATCH1 + (pos * 8), val);
2721 }
2722
2723 static inline int
2724 bnx2_alloc_rx_page(struct bnx2 *bp, struct bnx2_rx_ring_info *rxr, u16 index, gfp_t gfp)
2725 {
2726 dma_addr_t mapping;
2727 struct bnx2_sw_pg *rx_pg = &rxr->rx_pg_ring[index];
2728 struct bnx2_rx_bd *rxbd =
2729 &rxr->rx_pg_desc_ring[BNX2_RX_RING(index)][BNX2_RX_IDX(index)];
2730 struct page *page = alloc_page(gfp);
2731
2732 if (!page)
2733 return -ENOMEM;
2734 mapping = dma_map_page(&bp->pdev->dev, page, 0, PAGE_SIZE,
2735 PCI_DMA_FROMDEVICE);
2736 if (dma_mapping_error(&bp->pdev->dev, mapping)) {
2737 __free_page(page);
2738 return -EIO;
2739 }
2740
2741 rx_pg->page = page;
2742 dma_unmap_addr_set(rx_pg, mapping, mapping);
2743 rxbd->rx_bd_haddr_hi = (u64) mapping >> 32;
2744 rxbd->rx_bd_haddr_lo = (u64) mapping & 0xffffffff;
2745 return 0;
2746 }
2747
2748 static void
2749 bnx2_free_rx_page(struct bnx2 *bp, struct bnx2_rx_ring_info *rxr, u16 index)
2750 {
2751 struct bnx2_sw_pg *rx_pg = &rxr->rx_pg_ring[index];
2752 struct page *page = rx_pg->page;
2753
2754 if (!page)
2755 return;
2756
2757 dma_unmap_page(&bp->pdev->dev, dma_unmap_addr(rx_pg, mapping),
2758 PAGE_SIZE, PCI_DMA_FROMDEVICE);
2759
2760 __free_page(page);
2761 rx_pg->page = NULL;
2762 }
2763
2764 static inline int
2765 bnx2_alloc_rx_data(struct bnx2 *bp, struct bnx2_rx_ring_info *rxr, u16 index, gfp_t gfp)
2766 {
2767 u8 *data;
2768 struct bnx2_sw_bd *rx_buf = &rxr->rx_buf_ring[index];
2769 dma_addr_t mapping;
2770 struct bnx2_rx_bd *rxbd =
2771 &rxr->rx_desc_ring[BNX2_RX_RING(index)][BNX2_RX_IDX(index)];
2772
2773 data = kmalloc(bp->rx_buf_size, gfp);
2774 if (!data)
2775 return -ENOMEM;
2776
2777 mapping = dma_map_single(&bp->pdev->dev,
2778 get_l2_fhdr(data),
2779 bp->rx_buf_use_size,
2780 PCI_DMA_FROMDEVICE);
2781 if (dma_mapping_error(&bp->pdev->dev, mapping)) {
2782 kfree(data);
2783 return -EIO;
2784 }
2785
2786 rx_buf->data = data;
2787 dma_unmap_addr_set(rx_buf, mapping, mapping);
2788
2789 rxbd->rx_bd_haddr_hi = (u64) mapping >> 32;
2790 rxbd->rx_bd_haddr_lo = (u64) mapping & 0xffffffff;
2791
2792 rxr->rx_prod_bseq += bp->rx_buf_use_size;
2793
2794 return 0;
2795 }
2796
2797 static int
2798 bnx2_phy_event_is_set(struct bnx2 *bp, struct bnx2_napi *bnapi, u32 event)
2799 {
2800 struct status_block *sblk = bnapi->status_blk.msi;
2801 u32 new_link_state, old_link_state;
2802 int is_set = 1;
2803
2804 new_link_state = sblk->status_attn_bits & event;
2805 old_link_state = sblk->status_attn_bits_ack & event;
2806 if (new_link_state != old_link_state) {
2807 if (new_link_state)
2808 BNX2_WR(bp, BNX2_PCICFG_STATUS_BIT_SET_CMD, event);
2809 else
2810 BNX2_WR(bp, BNX2_PCICFG_STATUS_BIT_CLEAR_CMD, event);
2811 } else
2812 is_set = 0;
2813
2814 return is_set;
2815 }
2816
2817 static void
2818 bnx2_phy_int(struct bnx2 *bp, struct bnx2_napi *bnapi)
2819 {
2820 spin_lock(&bp->phy_lock);
2821
2822 if (bnx2_phy_event_is_set(bp, bnapi, STATUS_ATTN_BITS_LINK_STATE))
2823 bnx2_set_link(bp);
2824 if (bnx2_phy_event_is_set(bp, bnapi, STATUS_ATTN_BITS_TIMER_ABORT))
2825 bnx2_set_remote_link(bp);
2826
2827 spin_unlock(&bp->phy_lock);
2828
2829 }
2830
2831 static inline u16
2832 bnx2_get_hw_tx_cons(struct bnx2_napi *bnapi)
2833 {
2834 u16 cons;
2835
2836 /* Tell compiler that status block fields can change. */
2837 barrier();
2838 cons = *bnapi->hw_tx_cons_ptr;
2839 barrier();
2840 if (unlikely((cons & BNX2_MAX_TX_DESC_CNT) == BNX2_MAX_TX_DESC_CNT))
2841 cons++;
2842 return cons;
2843 }
2844
2845 static int
2846 bnx2_tx_int(struct bnx2 *bp, struct bnx2_napi *bnapi, int budget)
2847 {
2848 struct bnx2_tx_ring_info *txr = &bnapi->tx_ring;
2849 u16 hw_cons, sw_cons, sw_ring_cons;
2850 int tx_pkt = 0, index;
2851 unsigned int tx_bytes = 0;
2852 struct netdev_queue *txq;
2853
2854 index = (bnapi - bp->bnx2_napi);
2855 txq = netdev_get_tx_queue(bp->dev, index);
2856
2857 hw_cons = bnx2_get_hw_tx_cons(bnapi);
2858 sw_cons = txr->tx_cons;
2859
2860 while (sw_cons != hw_cons) {
2861 struct bnx2_sw_tx_bd *tx_buf;
2862 struct sk_buff *skb;
2863 int i, last;
2864
2865 sw_ring_cons = BNX2_TX_RING_IDX(sw_cons);
2866
2867 tx_buf = &txr->tx_buf_ring[sw_ring_cons];
2868 skb = tx_buf->skb;
2869
2870 /* prefetch skb_end_pointer() to speedup skb_shinfo(skb) */
2871 prefetch(&skb->end);
2872
2873 /* partial BD completions possible with TSO packets */
2874 if (tx_buf->is_gso) {
2875 u16 last_idx, last_ring_idx;
2876
2877 last_idx = sw_cons + tx_buf->nr_frags + 1;
2878 last_ring_idx = sw_ring_cons + tx_buf->nr_frags + 1;
2879 if (unlikely(last_ring_idx >= BNX2_MAX_TX_DESC_CNT)) {
2880 last_idx++;
2881 }
2882 if (((s16) ((s16) last_idx - (s16) hw_cons)) > 0) {
2883 break;
2884 }
2885 }
2886
2887 dma_unmap_single(&bp->pdev->dev, dma_unmap_addr(tx_buf, mapping),
2888 skb_headlen(skb), PCI_DMA_TODEVICE);
2889
2890 tx_buf->skb = NULL;
2891 last = tx_buf->nr_frags;
2892
2893 for (i = 0; i < last; i++) {
2894 struct bnx2_sw_tx_bd *tx_buf;
2895
2896 sw_cons = BNX2_NEXT_TX_BD(sw_cons);
2897
2898 tx_buf = &txr->tx_buf_ring[BNX2_TX_RING_IDX(sw_cons)];
2899 dma_unmap_page(&bp->pdev->dev,
2900 dma_unmap_addr(tx_buf, mapping),
2901 skb_frag_size(&skb_shinfo(skb)->frags[i]),
2902 PCI_DMA_TODEVICE);
2903 }
2904
2905 sw_cons = BNX2_NEXT_TX_BD(sw_cons);
2906
2907 tx_bytes += skb->len;
2908 dev_kfree_skb_any(skb);
2909 tx_pkt++;
2910 if (tx_pkt == budget)
2911 break;
2912
2913 if (hw_cons == sw_cons)
2914 hw_cons = bnx2_get_hw_tx_cons(bnapi);
2915 }
2916
2917 netdev_tx_completed_queue(txq, tx_pkt, tx_bytes);
2918 txr->hw_tx_cons = hw_cons;
2919 txr->tx_cons = sw_cons;
2920
2921 /* Need to make the tx_cons update visible to bnx2_start_xmit()
2922 * before checking for netif_tx_queue_stopped(). Without the
2923 * memory barrier, there is a small possibility that bnx2_start_xmit()
2924 * will miss it and cause the queue to be stopped forever.
2925 */
2926 smp_mb();
2927
2928 if (unlikely(netif_tx_queue_stopped(txq)) &&
2929 (bnx2_tx_avail(bp, txr) > bp->tx_wake_thresh)) {
2930 __netif_tx_lock(txq, smp_processor_id());
2931 if ((netif_tx_queue_stopped(txq)) &&
2932 (bnx2_tx_avail(bp, txr) > bp->tx_wake_thresh))
2933 netif_tx_wake_queue(txq);
2934 __netif_tx_unlock(txq);
2935 }
2936
2937 return tx_pkt;
2938 }
2939
2940 static void
2941 bnx2_reuse_rx_skb_pages(struct bnx2 *bp, struct bnx2_rx_ring_info *rxr,
2942 struct sk_buff *skb, int count)
2943 {
2944 struct bnx2_sw_pg *cons_rx_pg, *prod_rx_pg;
2945 struct bnx2_rx_bd *cons_bd, *prod_bd;
2946 int i;
2947 u16 hw_prod, prod;
2948 u16 cons = rxr->rx_pg_cons;
2949
2950 cons_rx_pg = &rxr->rx_pg_ring[cons];
2951
2952 /* The caller was unable to allocate a new page to replace the
2953 * last one in the frags array, so we need to recycle that page
2954 * and then free the skb.
2955 */
2956 if (skb) {
2957 struct page *page;
2958 struct skb_shared_info *shinfo;
2959
2960 shinfo = skb_shinfo(skb);
2961 shinfo->nr_frags--;
2962 page = skb_frag_page(&shinfo->frags[shinfo->nr_frags]);
2963 __skb_frag_set_page(&shinfo->frags[shinfo->nr_frags], NULL);
2964
2965 cons_rx_pg->page = page;
2966 dev_kfree_skb(skb);
2967 }
2968
2969 hw_prod = rxr->rx_pg_prod;
2970
2971 for (i = 0; i < count; i++) {
2972 prod = BNX2_RX_PG_RING_IDX(hw_prod);
2973
2974 prod_rx_pg = &rxr->rx_pg_ring[prod];
2975 cons_rx_pg = &rxr->rx_pg_ring[cons];
2976 cons_bd = &rxr->rx_pg_desc_ring[BNX2_RX_RING(cons)]
2977 [BNX2_RX_IDX(cons)];
2978 prod_bd = &rxr->rx_pg_desc_ring[BNX2_RX_RING(prod)]
2979 [BNX2_RX_IDX(prod)];
2980
2981 if (prod != cons) {
2982 prod_rx_pg->page = cons_rx_pg->page;
2983 cons_rx_pg->page = NULL;
2984 dma_unmap_addr_set(prod_rx_pg, mapping,
2985 dma_unmap_addr(cons_rx_pg, mapping));
2986
2987 prod_bd->rx_bd_haddr_hi = cons_bd->rx_bd_haddr_hi;
2988 prod_bd->rx_bd_haddr_lo = cons_bd->rx_bd_haddr_lo;
2989
2990 }
2991 cons = BNX2_RX_PG_RING_IDX(BNX2_NEXT_RX_BD(cons));
2992 hw_prod = BNX2_NEXT_RX_BD(hw_prod);
2993 }
2994 rxr->rx_pg_prod = hw_prod;
2995 rxr->rx_pg_cons = cons;
2996 }
2997
2998 static inline void
2999 bnx2_reuse_rx_data(struct bnx2 *bp, struct bnx2_rx_ring_info *rxr,
3000 u8 *data, u16 cons, u16 prod)
3001 {
3002 struct bnx2_sw_bd *cons_rx_buf, *prod_rx_buf;
3003 struct bnx2_rx_bd *cons_bd, *prod_bd;
3004
3005 cons_rx_buf = &rxr->rx_buf_ring[cons];
3006 prod_rx_buf = &rxr->rx_buf_ring[prod];
3007
3008 dma_sync_single_for_device(&bp->pdev->dev,
3009 dma_unmap_addr(cons_rx_buf, mapping),
3010 BNX2_RX_OFFSET + BNX2_RX_COPY_THRESH, PCI_DMA_FROMDEVICE);
3011
3012 rxr->rx_prod_bseq += bp->rx_buf_use_size;
3013
3014 prod_rx_buf->data = data;
3015
3016 if (cons == prod)
3017 return;
3018
3019 dma_unmap_addr_set(prod_rx_buf, mapping,
3020 dma_unmap_addr(cons_rx_buf, mapping));
3021
3022 cons_bd = &rxr->rx_desc_ring[BNX2_RX_RING(cons)][BNX2_RX_IDX(cons)];
3023 prod_bd = &rxr->rx_desc_ring[BNX2_RX_RING(prod)][BNX2_RX_IDX(prod)];
3024 prod_bd->rx_bd_haddr_hi = cons_bd->rx_bd_haddr_hi;
3025 prod_bd->rx_bd_haddr_lo = cons_bd->rx_bd_haddr_lo;
3026 }
3027
3028 static struct sk_buff *
3029 bnx2_rx_skb(struct bnx2 *bp, struct bnx2_rx_ring_info *rxr, u8 *data,
3030 unsigned int len, unsigned int hdr_len, dma_addr_t dma_addr,
3031 u32 ring_idx)
3032 {
3033 int err;
3034 u16 prod = ring_idx & 0xffff;
3035 struct sk_buff *skb;
3036
3037 err = bnx2_alloc_rx_data(bp, rxr, prod, GFP_ATOMIC);
3038 if (unlikely(err)) {
3039 bnx2_reuse_rx_data(bp, rxr, data, (u16) (ring_idx >> 16), prod);
3040 error:
3041 if (hdr_len) {
3042 unsigned int raw_len = len + 4;
3043 int pages = PAGE_ALIGN(raw_len - hdr_len) >> PAGE_SHIFT;
3044
3045 bnx2_reuse_rx_skb_pages(bp, rxr, NULL, pages);
3046 }
3047 return NULL;
3048 }
3049
3050 dma_unmap_single(&bp->pdev->dev, dma_addr, bp->rx_buf_use_size,
3051 PCI_DMA_FROMDEVICE);
3052 skb = build_skb(data, 0);
3053 if (!skb) {
3054 kfree(data);
3055 goto error;
3056 }
3057 skb_reserve(skb, ((u8 *)get_l2_fhdr(data) - data) + BNX2_RX_OFFSET);
3058 if (hdr_len == 0) {
3059 skb_put(skb, len);
3060 return skb;
3061 } else {
3062 unsigned int i, frag_len, frag_size, pages;
3063 struct bnx2_sw_pg *rx_pg;
3064 u16 pg_cons = rxr->rx_pg_cons;
3065 u16 pg_prod = rxr->rx_pg_prod;
3066
3067 frag_size = len + 4 - hdr_len;
3068 pages = PAGE_ALIGN(frag_size) >> PAGE_SHIFT;
3069 skb_put(skb, hdr_len);
3070
3071 for (i = 0; i < pages; i++) {
3072 dma_addr_t mapping_old;
3073
3074 frag_len = min(frag_size, (unsigned int) PAGE_SIZE);
3075 if (unlikely(frag_len <= 4)) {
3076 unsigned int tail = 4 - frag_len;
3077
3078 rxr->rx_pg_cons = pg_cons;
3079 rxr->rx_pg_prod = pg_prod;
3080 bnx2_reuse_rx_skb_pages(bp, rxr, NULL,
3081 pages - i);
3082 skb->len -= tail;
3083 if (i == 0) {
3084 skb->tail -= tail;
3085 } else {
3086 skb_frag_t *frag =
3087 &skb_shinfo(skb)->frags[i - 1];
3088 skb_frag_size_sub(frag, tail);
3089 skb->data_len -= tail;
3090 }
3091 return skb;
3092 }
3093 rx_pg = &rxr->rx_pg_ring[pg_cons];
3094
3095 /* Don't unmap yet. If we're unable to allocate a new
3096 * page, we need to recycle the page and the DMA addr.
3097 */
3098 mapping_old = dma_unmap_addr(rx_pg, mapping);
3099 if (i == pages - 1)
3100 frag_len -= 4;
3101
3102 skb_fill_page_desc(skb, i, rx_pg->page, 0, frag_len);
3103 rx_pg->page = NULL;
3104
3105 err = bnx2_alloc_rx_page(bp, rxr,
3106 BNX2_RX_PG_RING_IDX(pg_prod),
3107 GFP_ATOMIC);
3108 if (unlikely(err)) {
3109 rxr->rx_pg_cons = pg_cons;
3110 rxr->rx_pg_prod = pg_prod;
3111 bnx2_reuse_rx_skb_pages(bp, rxr, skb,
3112 pages - i);
3113 return NULL;
3114 }
3115
3116 dma_unmap_page(&bp->pdev->dev, mapping_old,
3117 PAGE_SIZE, PCI_DMA_FROMDEVICE);
3118
3119 frag_size -= frag_len;
3120 skb->data_len += frag_len;
3121 skb->truesize += PAGE_SIZE;
3122 skb->len += frag_len;
3123
3124 pg_prod = BNX2_NEXT_RX_BD(pg_prod);
3125 pg_cons = BNX2_RX_PG_RING_IDX(BNX2_NEXT_RX_BD(pg_cons));
3126 }
3127 rxr->rx_pg_prod = pg_prod;
3128 rxr->rx_pg_cons = pg_cons;
3129 }
3130 return skb;
3131 }
3132
3133 static inline u16
3134 bnx2_get_hw_rx_cons(struct bnx2_napi *bnapi)
3135 {
3136 u16 cons;
3137
3138 /* Tell compiler that status block fields can change. */
3139 barrier();
3140 cons = *bnapi->hw_rx_cons_ptr;
3141 barrier();
3142 if (unlikely((cons & BNX2_MAX_RX_DESC_CNT) == BNX2_MAX_RX_DESC_CNT))
3143 cons++;
3144 return cons;
3145 }
3146
3147 static int
3148 bnx2_rx_int(struct bnx2 *bp, struct bnx2_napi *bnapi, int budget)
3149 {
3150 struct bnx2_rx_ring_info *rxr = &bnapi->rx_ring;
3151 u16 hw_cons, sw_cons, sw_ring_cons, sw_prod, sw_ring_prod;
3152 struct l2_fhdr *rx_hdr;
3153 int rx_pkt = 0, pg_ring_used = 0;
3154
3155 if (budget <= 0)
3156 return rx_pkt;
3157
3158 hw_cons = bnx2_get_hw_rx_cons(bnapi);
3159 sw_cons = rxr->rx_cons;
3160 sw_prod = rxr->rx_prod;
3161
3162 /* Memory barrier necessary as speculative reads of the rx
3163 * buffer can be ahead of the index in the status block
3164 */
3165 rmb();
3166 while (sw_cons != hw_cons) {
3167 unsigned int len, hdr_len;
3168 u32 status;
3169 struct bnx2_sw_bd *rx_buf, *next_rx_buf;
3170 struct sk_buff *skb;
3171 dma_addr_t dma_addr;
3172 u8 *data;
3173 u16 next_ring_idx;
3174
3175 sw_ring_cons = BNX2_RX_RING_IDX(sw_cons);
3176 sw_ring_prod = BNX2_RX_RING_IDX(sw_prod);
3177
3178 rx_buf = &rxr->rx_buf_ring[sw_ring_cons];
3179 data = rx_buf->data;
3180 rx_buf->data = NULL;
3181
3182 rx_hdr = get_l2_fhdr(data);
3183 prefetch(rx_hdr);
3184
3185 dma_addr = dma_unmap_addr(rx_buf, mapping);
3186
3187 dma_sync_single_for_cpu(&bp->pdev->dev, dma_addr,
3188 BNX2_RX_OFFSET + BNX2_RX_COPY_THRESH,
3189 PCI_DMA_FROMDEVICE);
3190
3191 next_ring_idx = BNX2_RX_RING_IDX(BNX2_NEXT_RX_BD(sw_cons));
3192 next_rx_buf = &rxr->rx_buf_ring[next_ring_idx];
3193 prefetch(get_l2_fhdr(next_rx_buf->data));
3194
3195 len = rx_hdr->l2_fhdr_pkt_len;
3196 status = rx_hdr->l2_fhdr_status;
3197
3198 hdr_len = 0;
3199 if (status & L2_FHDR_STATUS_SPLIT) {
3200 hdr_len = rx_hdr->l2_fhdr_ip_xsum;
3201 pg_ring_used = 1;
3202 } else if (len > bp->rx_jumbo_thresh) {
3203 hdr_len = bp->rx_jumbo_thresh;
3204 pg_ring_used = 1;
3205 }
3206
3207 if (unlikely(status & (L2_FHDR_ERRORS_BAD_CRC |
3208 L2_FHDR_ERRORS_PHY_DECODE |
3209 L2_FHDR_ERRORS_ALIGNMENT |
3210 L2_FHDR_ERRORS_TOO_SHORT |
3211 L2_FHDR_ERRORS_GIANT_FRAME))) {
3212
3213 bnx2_reuse_rx_data(bp, rxr, data, sw_ring_cons,
3214 sw_ring_prod);
3215 if (pg_ring_used) {
3216 int pages;
3217
3218 pages = PAGE_ALIGN(len - hdr_len) >> PAGE_SHIFT;
3219
3220 bnx2_reuse_rx_skb_pages(bp, rxr, NULL, pages);
3221 }
3222 goto next_rx;
3223 }
3224
3225 len -= 4;
3226
3227 if (len <= bp->rx_copy_thresh) {
3228 skb = netdev_alloc_skb(bp->dev, len + 6);
3229 if (skb == NULL) {
3230 bnx2_reuse_rx_data(bp, rxr, data, sw_ring_cons,
3231 sw_ring_prod);
3232 goto next_rx;
3233 }
3234
3235 /* aligned copy */
3236 memcpy(skb->data,
3237 (u8 *)rx_hdr + BNX2_RX_OFFSET - 6,
3238 len + 6);
3239 skb_reserve(skb, 6);
3240 skb_put(skb, len);
3241
3242 bnx2_reuse_rx_data(bp, rxr, data,
3243 sw_ring_cons, sw_ring_prod);
3244
3245 } else {
3246 skb = bnx2_rx_skb(bp, rxr, data, len, hdr_len, dma_addr,
3247 (sw_ring_cons << 16) | sw_ring_prod);
3248 if (!skb)
3249 goto next_rx;
3250 }
3251 if ((status & L2_FHDR_STATUS_L2_VLAN_TAG) &&
3252 !(bp->rx_mode & BNX2_EMAC_RX_MODE_KEEP_VLAN_TAG))
3253 __vlan_hwaccel_put_tag(skb, htons(ETH_P_8021Q), rx_hdr->l2_fhdr_vlan_tag);
3254
3255 skb->protocol = eth_type_trans(skb, bp->dev);
3256
3257 if (len > (bp->dev->mtu + ETH_HLEN) &&
3258 skb->protocol != htons(0x8100) &&
3259 skb->protocol != htons(ETH_P_8021AD)) {
3260
3261 dev_kfree_skb(skb);
3262 goto next_rx;
3263
3264 }
3265
3266 skb_checksum_none_assert(skb);
3267 if ((bp->dev->features & NETIF_F_RXCSUM) &&
3268 (status & (L2_FHDR_STATUS_TCP_SEGMENT |
3269 L2_FHDR_STATUS_UDP_DATAGRAM))) {
3270
3271 if (likely((status & (L2_FHDR_ERRORS_TCP_XSUM |
3272 L2_FHDR_ERRORS_UDP_XSUM)) == 0))
3273 skb->ip_summed = CHECKSUM_UNNECESSARY;
3274 }
3275 if ((bp->dev->features & NETIF_F_RXHASH) &&
3276 ((status & L2_FHDR_STATUS_USE_RXHASH) ==
3277 L2_FHDR_STATUS_USE_RXHASH))
3278 skb_set_hash(skb, rx_hdr->l2_fhdr_hash,
3279 PKT_HASH_TYPE_L3);
3280
3281 skb_record_rx_queue(skb, bnapi - &bp->bnx2_napi[0]);
3282 napi_gro_receive(&bnapi->napi, skb);
3283 rx_pkt++;
3284
3285 next_rx:
3286 sw_cons = BNX2_NEXT_RX_BD(sw_cons);
3287 sw_prod = BNX2_NEXT_RX_BD(sw_prod);
3288
3289 if ((rx_pkt == budget))
3290 break;
3291
3292 /* Refresh hw_cons to see if there is new work */
3293 if (sw_cons == hw_cons) {
3294 hw_cons = bnx2_get_hw_rx_cons(bnapi);
3295 rmb();
3296 }
3297 }
3298 rxr->rx_cons = sw_cons;
3299 rxr->rx_prod = sw_prod;
3300
3301 if (pg_ring_used)
3302 BNX2_WR16(bp, rxr->rx_pg_bidx_addr, rxr->rx_pg_prod);
3303
3304 BNX2_WR16(bp, rxr->rx_bidx_addr, sw_prod);
3305
3306 BNX2_WR(bp, rxr->rx_bseq_addr, rxr->rx_prod_bseq);
3307
3308 mmiowb();
3309
3310 return rx_pkt;
3311
3312 }
3313
3314 /* MSI ISR - The only difference between this and the INTx ISR
3315 * is that the MSI interrupt is always serviced.
3316 */
3317 static irqreturn_t
3318 bnx2_msi(int irq, void *dev_instance)
3319 {
3320 struct bnx2_napi *bnapi = dev_instance;
3321 struct bnx2 *bp = bnapi->bp;
3322
3323 prefetch(bnapi->status_blk.msi);
3324 BNX2_WR(bp, BNX2_PCICFG_INT_ACK_CMD,
3325 BNX2_PCICFG_INT_ACK_CMD_USE_INT_HC_PARAM |
3326 BNX2_PCICFG_INT_ACK_CMD_MASK_INT);
3327
3328 /* Return here if interrupt is disabled. */
3329 if (unlikely(atomic_read(&bp->intr_sem) != 0))
3330 return IRQ_HANDLED;
3331
3332 napi_schedule(&bnapi->napi);
3333
3334 return IRQ_HANDLED;
3335 }
3336
3337 static irqreturn_t
3338 bnx2_msi_1shot(int irq, void *dev_instance)
3339 {
3340 struct bnx2_napi *bnapi = dev_instance;
3341 struct bnx2 *bp = bnapi->bp;
3342
3343 prefetch(bnapi->status_blk.msi);
3344
3345 /* Return here if interrupt is disabled. */
3346 if (unlikely(atomic_read(&bp->intr_sem) != 0))
3347 return IRQ_HANDLED;
3348
3349 napi_schedule(&bnapi->napi);
3350
3351 return IRQ_HANDLED;
3352 }
3353
3354 static irqreturn_t
3355 bnx2_interrupt(int irq, void *dev_instance)
3356 {
3357 struct bnx2_napi *bnapi = dev_instance;
3358 struct bnx2 *bp = bnapi->bp;
3359 struct status_block *sblk = bnapi->status_blk.msi;
3360
3361 /* When using INTx, it is possible for the interrupt to arrive
3362 * at the CPU before the status block posted prior to the
3363 * interrupt. Reading a register will flush the status block.
3364 * When using MSI, the MSI message will always complete after
3365 * the status block write.
3366 */
3367 if ((sblk->status_idx == bnapi->last_status_idx) &&
3368 (BNX2_RD(bp, BNX2_PCICFG_MISC_STATUS) &
3369 BNX2_PCICFG_MISC_STATUS_INTA_VALUE))
3370 return IRQ_NONE;
3371
3372 BNX2_WR(bp, BNX2_PCICFG_INT_ACK_CMD,
3373 BNX2_PCICFG_INT_ACK_CMD_USE_INT_HC_PARAM |
3374 BNX2_PCICFG_INT_ACK_CMD_MASK_INT);
3375
3376 /* Read back to deassert IRQ immediately to avoid too many
3377 * spurious interrupts.
3378 */
3379 BNX2_RD(bp, BNX2_PCICFG_INT_ACK_CMD);
3380
3381 /* Return here if interrupt is shared and is disabled. */
3382 if (unlikely(atomic_read(&bp->intr_sem) != 0))
3383 return IRQ_HANDLED;
3384
3385 if (napi_schedule_prep(&bnapi->napi)) {
3386 bnapi->last_status_idx = sblk->status_idx;
3387 __napi_schedule(&bnapi->napi);
3388 }
3389
3390 return IRQ_HANDLED;
3391 }
3392
3393 static inline int
3394 bnx2_has_fast_work(struct bnx2_napi *bnapi)
3395 {
3396 struct bnx2_tx_ring_info *txr = &bnapi->tx_ring;
3397 struct bnx2_rx_ring_info *rxr = &bnapi->rx_ring;
3398
3399 if ((bnx2_get_hw_rx_cons(bnapi) != rxr->rx_cons) ||
3400 (bnx2_get_hw_tx_cons(bnapi) != txr->hw_tx_cons))
3401 return 1;
3402 return 0;
3403 }
3404
3405 #define STATUS_ATTN_EVENTS (STATUS_ATTN_BITS_LINK_STATE | \
3406 STATUS_ATTN_BITS_TIMER_ABORT)
3407
3408 static inline int
3409 bnx2_has_work(struct bnx2_napi *bnapi)
3410 {
3411 struct status_block *sblk = bnapi->status_blk.msi;
3412
3413 if (bnx2_has_fast_work(bnapi))
3414 return 1;
3415
3416 #ifdef BCM_CNIC
3417 if (bnapi->cnic_present && (bnapi->cnic_tag != sblk->status_idx))
3418 return 1;
3419 #endif
3420
3421 if ((sblk->status_attn_bits & STATUS_ATTN_EVENTS) !=
3422 (sblk->status_attn_bits_ack & STATUS_ATTN_EVENTS))
3423 return 1;
3424
3425 return 0;
3426 }
3427
3428 static void
3429 bnx2_chk_missed_msi(struct bnx2 *bp)
3430 {
3431 struct bnx2_napi *bnapi = &bp->bnx2_napi[0];
3432 u32 msi_ctrl;
3433
3434 if (bnx2_has_work(bnapi)) {
3435 msi_ctrl = BNX2_RD(bp, BNX2_PCICFG_MSI_CONTROL);
3436 if (!(msi_ctrl & BNX2_PCICFG_MSI_CONTROL_ENABLE))
3437 return;
3438
3439 if (bnapi->last_status_idx == bp->idle_chk_status_idx) {
3440 BNX2_WR(bp, BNX2_PCICFG_MSI_CONTROL, msi_ctrl &
3441 ~BNX2_PCICFG_MSI_CONTROL_ENABLE);
3442 BNX2_WR(bp, BNX2_PCICFG_MSI_CONTROL, msi_ctrl);
3443 bnx2_msi(bp->irq_tbl[0].vector, bnapi);
3444 }
3445 }
3446
3447 bp->idle_chk_status_idx = bnapi->last_status_idx;
3448 }
3449
3450 #ifdef BCM_CNIC
3451 static void bnx2_poll_cnic(struct bnx2 *bp, struct bnx2_napi *bnapi)
3452 {
3453 struct cnic_ops *c_ops;
3454
3455 if (!bnapi->cnic_present)
3456 return;
3457
3458 rcu_read_lock();
3459 c_ops = rcu_dereference(bp->cnic_ops);
3460 if (c_ops)
3461 bnapi->cnic_tag = c_ops->cnic_handler(bp->cnic_data,
3462 bnapi->status_blk.msi);
3463 rcu_read_unlock();
3464 }
3465 #endif
3466
3467 static void bnx2_poll_link(struct bnx2 *bp, struct bnx2_napi *bnapi)
3468 {
3469 struct status_block *sblk = bnapi->status_blk.msi;
3470 u32 status_attn_bits = sblk->status_attn_bits;
3471 u32 status_attn_bits_ack = sblk->status_attn_bits_ack;
3472
3473 if ((status_attn_bits & STATUS_ATTN_EVENTS) !=
3474 (status_attn_bits_ack & STATUS_ATTN_EVENTS)) {
3475
3476 bnx2_phy_int(bp, bnapi);
3477
3478 /* This is needed to take care of transient status
3479 * during link changes.
3480 */
3481 BNX2_WR(bp, BNX2_HC_COMMAND,
3482 bp->hc_cmd | BNX2_HC_COMMAND_COAL_NOW_WO_INT);
3483 BNX2_RD(bp, BNX2_HC_COMMAND);
3484 }
3485 }
3486
3487 static int bnx2_poll_work(struct bnx2 *bp, struct bnx2_napi *bnapi,
3488 int work_done, int budget)
3489 {
3490 struct bnx2_tx_ring_info *txr = &bnapi->tx_ring;
3491 struct bnx2_rx_ring_info *rxr = &bnapi->rx_ring;
3492
3493 if (bnx2_get_hw_tx_cons(bnapi) != txr->hw_tx_cons)
3494 bnx2_tx_int(bp, bnapi, 0);
3495
3496 if (bnx2_get_hw_rx_cons(bnapi) != rxr->rx_cons)
3497 work_done += bnx2_rx_int(bp, bnapi, budget - work_done);
3498
3499 return work_done;
3500 }
3501
3502 static int bnx2_poll_msix(struct napi_struct *napi, int budget)
3503 {
3504 struct bnx2_napi *bnapi = container_of(napi, struct bnx2_napi, napi);
3505 struct bnx2 *bp = bnapi->bp;
3506 int work_done = 0;
3507 struct status_block_msix *sblk = bnapi->status_blk.msix;
3508
3509 while (1) {
3510 work_done = bnx2_poll_work(bp, bnapi, work_done, budget);
3511 if (unlikely(work_done >= budget))
3512 break;
3513
3514 bnapi->last_status_idx = sblk->status_idx;
3515 /* status idx must be read before checking for more work. */
3516 rmb();
3517 if (likely(!bnx2_has_fast_work(bnapi))) {
3518
3519 napi_complete(napi);
3520 BNX2_WR(bp, BNX2_PCICFG_INT_ACK_CMD, bnapi->int_num |
3521 BNX2_PCICFG_INT_ACK_CMD_INDEX_VALID |
3522 bnapi->last_status_idx);
3523 break;
3524 }
3525 }
3526 return work_done;
3527 }
3528
3529 static int bnx2_poll(struct napi_struct *napi, int budget)
3530 {
3531 struct bnx2_napi *bnapi = container_of(napi, struct bnx2_napi, napi);
3532 struct bnx2 *bp = bnapi->bp;
3533 int work_done = 0;
3534 struct status_block *sblk = bnapi->status_blk.msi;
3535
3536 while (1) {
3537 bnx2_poll_link(bp, bnapi);
3538
3539 work_done = bnx2_poll_work(bp, bnapi, work_done, budget);
3540
3541 #ifdef BCM_CNIC
3542 bnx2_poll_cnic(bp, bnapi);
3543 #endif
3544
3545 /* bnapi->last_status_idx is used below to tell the hw how
3546 * much work has been processed, so we must read it before
3547 * checking for more work.
3548 */
3549 bnapi->last_status_idx = sblk->status_idx;
3550
3551 if (unlikely(work_done >= budget))
3552 break;
3553
3554 rmb();
3555 if (likely(!bnx2_has_work(bnapi))) {
3556 napi_complete(napi);
3557 if (likely(bp->flags & BNX2_FLAG_USING_MSI_OR_MSIX)) {
3558 BNX2_WR(bp, BNX2_PCICFG_INT_ACK_CMD,
3559 BNX2_PCICFG_INT_ACK_CMD_INDEX_VALID |
3560 bnapi->last_status_idx);
3561 break;
3562 }
3563 BNX2_WR(bp, BNX2_PCICFG_INT_ACK_CMD,
3564 BNX2_PCICFG_INT_ACK_CMD_INDEX_VALID |
3565 BNX2_PCICFG_INT_ACK_CMD_MASK_INT |
3566 bnapi->last_status_idx);
3567
3568 BNX2_WR(bp, BNX2_PCICFG_INT_ACK_CMD,
3569 BNX2_PCICFG_INT_ACK_CMD_INDEX_VALID |
3570 bnapi->last_status_idx);
3571 break;
3572 }
3573 }
3574
3575 return work_done;
3576 }
3577
3578 /* Called with rtnl_lock from vlan functions and also netif_tx_lock
3579 * from set_multicast.
3580 */
3581 static void
3582 bnx2_set_rx_mode(struct net_device *dev)
3583 {
3584 struct bnx2 *bp = netdev_priv(dev);
3585 u32 rx_mode, sort_mode;
3586 struct netdev_hw_addr *ha;
3587 int i;
3588
3589 if (!netif_running(dev))
3590 return;
3591
3592 spin_lock_bh(&bp->phy_lock);
3593
3594 rx_mode = bp->rx_mode & ~(BNX2_EMAC_RX_MODE_PROMISCUOUS |
3595 BNX2_EMAC_RX_MODE_KEEP_VLAN_TAG);
3596 sort_mode = 1 | BNX2_RPM_SORT_USER0_BC_EN;
3597 if (!(dev->features & NETIF_F_HW_VLAN_CTAG_RX) &&
3598 (bp->flags & BNX2_FLAG_CAN_KEEP_VLAN))
3599 rx_mode |= BNX2_EMAC_RX_MODE_KEEP_VLAN_TAG;
3600 if (dev->flags & IFF_PROMISC) {
3601 /* Promiscuous mode. */
3602 rx_mode |= BNX2_EMAC_RX_MODE_PROMISCUOUS;
3603 sort_mode |= BNX2_RPM_SORT_USER0_PROM_EN |
3604 BNX2_RPM_SORT_USER0_PROM_VLAN;
3605 }
3606 else if (dev->flags & IFF_ALLMULTI) {
3607 for (i = 0; i < NUM_MC_HASH_REGISTERS; i++) {
3608 BNX2_WR(bp, BNX2_EMAC_MULTICAST_HASH0 + (i * 4),
3609 0xffffffff);
3610 }
3611 sort_mode |= BNX2_RPM_SORT_USER0_MC_EN;
3612 }
3613 else {
3614 /* Accept one or more multicast(s). */
3615 u32 mc_filter[NUM_MC_HASH_REGISTERS];
3616 u32 regidx;
3617 u32 bit;
3618 u32 crc;
3619
3620 memset(mc_filter, 0, 4 * NUM_MC_HASH_REGISTERS);
3621
3622 netdev_for_each_mc_addr(ha, dev) {
3623 crc = ether_crc_le(ETH_ALEN, ha->addr);
3624 bit = crc & 0xff;
3625 regidx = (bit & 0xe0) >> 5;
3626 bit &= 0x1f;
3627 mc_filter[regidx] |= (1 << bit);
3628 }
3629
3630 for (i = 0; i < NUM_MC_HASH_REGISTERS; i++) {
3631 BNX2_WR(bp, BNX2_EMAC_MULTICAST_HASH0 + (i * 4),
3632 mc_filter[i]);
3633 }
3634
3635 sort_mode |= BNX2_RPM_SORT_USER0_MC_HSH_EN;
3636 }
3637
3638 if (netdev_uc_count(dev) > BNX2_MAX_UNICAST_ADDRESSES) {
3639 rx_mode |= BNX2_EMAC_RX_MODE_PROMISCUOUS;
3640 sort_mode |= BNX2_RPM_SORT_USER0_PROM_EN |
3641 BNX2_RPM_SORT_USER0_PROM_VLAN;
3642 } else if (!(dev->flags & IFF_PROMISC)) {
3643 /* Add all entries into to the match filter list */
3644 i = 0;
3645 netdev_for_each_uc_addr(ha, dev) {
3646 bnx2_set_mac_addr(bp, ha->addr,
3647 i + BNX2_START_UNICAST_ADDRESS_INDEX);
3648 sort_mode |= (1 <<
3649 (i + BNX2_START_UNICAST_ADDRESS_INDEX));
3650 i++;
3651 }
3652
3653 }
3654
3655 if (rx_mode != bp->rx_mode) {
3656 bp->rx_mode = rx_mode;
3657 BNX2_WR(bp, BNX2_EMAC_RX_MODE, rx_mode);
3658 }
3659
3660 BNX2_WR(bp, BNX2_RPM_SORT_USER0, 0x0);
3661 BNX2_WR(bp, BNX2_RPM_SORT_USER0, sort_mode);
3662 BNX2_WR(bp, BNX2_RPM_SORT_USER0, sort_mode | BNX2_RPM_SORT_USER0_ENA);
3663
3664 spin_unlock_bh(&bp->phy_lock);
3665 }
3666
3667 static int
3668 check_fw_section(const struct firmware *fw,
3669 const struct bnx2_fw_file_section *section,
3670 u32 alignment, bool non_empty)
3671 {
3672 u32 offset = be32_to_cpu(section->offset);
3673 u32 len = be32_to_cpu(section->len);
3674
3675 if ((offset == 0 && len != 0) || offset >= fw->size || offset & 3)
3676 return -EINVAL;
3677 if ((non_empty && len == 0) || len > fw->size - offset ||
3678 len & (alignment - 1))
3679 return -EINVAL;
3680 return 0;
3681 }
3682
3683 static int
3684 check_mips_fw_entry(const struct firmware *fw,
3685 const struct bnx2_mips_fw_file_entry *entry)
3686 {
3687 if (check_fw_section(fw, &entry->text, 4, true) ||
3688 check_fw_section(fw, &entry->data, 4, false) ||
3689 check_fw_section(fw, &entry->rodata, 4, false))
3690 return -EINVAL;
3691 return 0;
3692 }
3693
3694 static void bnx2_release_firmware(struct bnx2 *bp)
3695 {
3696 if (bp->rv2p_firmware) {
3697 release_firmware(bp->mips_firmware);
3698 release_firmware(bp->rv2p_firmware);
3699 bp->rv2p_firmware = NULL;
3700 }
3701 }
3702
3703 static int bnx2_request_uncached_firmware(struct bnx2 *bp)
3704 {
3705 const char *mips_fw_file, *rv2p_fw_file;
3706 const struct bnx2_mips_fw_file *mips_fw;
3707 const struct bnx2_rv2p_fw_file *rv2p_fw;
3708 int rc;
3709
3710 if (BNX2_CHIP(bp) == BNX2_CHIP_5709) {
3711 mips_fw_file = FW_MIPS_FILE_09;
3712 if ((BNX2_CHIP_ID(bp) == BNX2_CHIP_ID_5709_A0) ||
3713 (BNX2_CHIP_ID(bp) == BNX2_CHIP_ID_5709_A1))
3714 rv2p_fw_file = FW_RV2P_FILE_09_Ax;
3715 else
3716 rv2p_fw_file = FW_RV2P_FILE_09;
3717 } else {
3718 mips_fw_file = FW_MIPS_FILE_06;
3719 rv2p_fw_file = FW_RV2P_FILE_06;
3720 }
3721
3722 rc = request_firmware(&bp->mips_firmware, mips_fw_file, &bp->pdev->dev);
3723 if (rc) {
3724 pr_err("Can't load firmware file \"%s\"\n", mips_fw_file);
3725 goto out;
3726 }
3727
3728 rc = request_firmware(&bp->rv2p_firmware, rv2p_fw_file, &bp->pdev->dev);
3729 if (rc) {
3730 pr_err("Can't load firmware file \"%s\"\n", rv2p_fw_file);
3731 goto err_release_mips_firmware;
3732 }
3733 mips_fw = (const struct bnx2_mips_fw_file *) bp->mips_firmware->data;
3734 rv2p_fw = (const struct bnx2_rv2p_fw_file *) bp->rv2p_firmware->data;
3735 if (bp->mips_firmware->size < sizeof(*mips_fw) ||
3736 check_mips_fw_entry(bp->mips_firmware, &mips_fw->com) ||
3737 check_mips_fw_entry(bp->mips_firmware, &mips_fw->cp) ||
3738 check_mips_fw_entry(bp->mips_firmware, &mips_fw->rxp) ||
3739 check_mips_fw_entry(bp->mips_firmware, &mips_fw->tpat) ||
3740 check_mips_fw_entry(bp->mips_firmware, &mips_fw->txp)) {
3741 pr_err("Firmware file \"%s\" is invalid\n", mips_fw_file);
3742 rc = -EINVAL;
3743 goto err_release_firmware;
3744 }
3745 if (bp->rv2p_firmware->size < sizeof(*rv2p_fw) ||
3746 check_fw_section(bp->rv2p_firmware, &rv2p_fw->proc1.rv2p, 8, true) ||
3747 check_fw_section(bp->rv2p_firmware, &rv2p_fw->proc2.rv2p, 8, true)) {
3748 pr_err("Firmware file \"%s\" is invalid\n", rv2p_fw_file);
3749 rc = -EINVAL;
3750 goto err_release_firmware;
3751 }
3752 out:
3753 return rc;
3754
3755 err_release_firmware:
3756 release_firmware(bp->rv2p_firmware);
3757 bp->rv2p_firmware = NULL;
3758 err_release_mips_firmware:
3759 release_firmware(bp->mips_firmware);
3760 goto out;
3761 }
3762
3763 static int bnx2_request_firmware(struct bnx2 *bp)
3764 {
3765 return bp->rv2p_firmware ? 0 : bnx2_request_uncached_firmware(bp);
3766 }
3767
3768 static u32
3769 rv2p_fw_fixup(u32 rv2p_proc, int idx, u32 loc, u32 rv2p_code)
3770 {
3771 switch (idx) {
3772 case RV2P_P1_FIXUP_PAGE_SIZE_IDX:
3773 rv2p_code &= ~RV2P_BD_PAGE_SIZE_MSK;
3774 rv2p_code |= RV2P_BD_PAGE_SIZE;
3775 break;
3776 }
3777 return rv2p_code;
3778 }
3779
3780 static int
3781 load_rv2p_fw(struct bnx2 *bp, u32 rv2p_proc,
3782 const struct bnx2_rv2p_fw_file_entry *fw_entry)
3783 {
3784 u32 rv2p_code_len, file_offset;
3785 __be32 *rv2p_code;
3786 int i;
3787 u32 val, cmd, addr;
3788
3789 rv2p_code_len = be32_to_cpu(fw_entry->rv2p.len);
3790 file_offset = be32_to_cpu(fw_entry->rv2p.offset);
3791
3792 rv2p_code = (__be32 *)(bp->rv2p_firmware->data + file_offset);
3793
3794 if (rv2p_proc == RV2P_PROC1) {
3795 cmd = BNX2_RV2P_PROC1_ADDR_CMD_RDWR;
3796 addr = BNX2_RV2P_PROC1_ADDR_CMD;
3797 } else {
3798 cmd = BNX2_RV2P_PROC2_ADDR_CMD_RDWR;
3799 addr = BNX2_RV2P_PROC2_ADDR_CMD;
3800 }
3801
3802 for (i = 0; i < rv2p_code_len; i += 8) {
3803 BNX2_WR(bp, BNX2_RV2P_INSTR_HIGH, be32_to_cpu(*rv2p_code));
3804 rv2p_code++;
3805 BNX2_WR(bp, BNX2_RV2P_INSTR_LOW, be32_to_cpu(*rv2p_code));
3806 rv2p_code++;
3807
3808 val = (i / 8) | cmd;
3809 BNX2_WR(bp, addr, val);
3810 }
3811
3812 rv2p_code = (__be32 *)(bp->rv2p_firmware->data + file_offset);
3813 for (i = 0; i < 8; i++) {
3814 u32 loc, code;
3815
3816 loc = be32_to_cpu(fw_entry->fixup[i]);
3817 if (loc && ((loc * 4) < rv2p_code_len)) {
3818 code = be32_to_cpu(*(rv2p_code + loc - 1));
3819 BNX2_WR(bp, BNX2_RV2P_INSTR_HIGH, code);
3820 code = be32_to_cpu(*(rv2p_code + loc));
3821 code = rv2p_fw_fixup(rv2p_proc, i, loc, code);
3822 BNX2_WR(bp, BNX2_RV2P_INSTR_LOW, code);
3823
3824 val = (loc / 2) | cmd;
3825 BNX2_WR(bp, addr, val);
3826 }
3827 }
3828
3829 /* Reset the processor, un-stall is done later. */
3830 if (rv2p_proc == RV2P_PROC1) {
3831 BNX2_WR(bp, BNX2_RV2P_COMMAND, BNX2_RV2P_COMMAND_PROC1_RESET);
3832 }
3833 else {
3834 BNX2_WR(bp, BNX2_RV2P_COMMAND, BNX2_RV2P_COMMAND_PROC2_RESET);
3835 }
3836
3837 return 0;
3838 }
3839
3840 static int
3841 load_cpu_fw(struct bnx2 *bp, const struct cpu_reg *cpu_reg,
3842 const struct bnx2_mips_fw_file_entry *fw_entry)
3843 {
3844 u32 addr, len, file_offset;
3845 __be32 *data;
3846 u32 offset;
3847 u32 val;
3848
3849 /* Halt the CPU. */
3850 val = bnx2_reg_rd_ind(bp, cpu_reg->mode);
3851 val |= cpu_reg->mode_value_halt;
3852 bnx2_reg_wr_ind(bp, cpu_reg->mode, val);
3853 bnx2_reg_wr_ind(bp, cpu_reg->state, cpu_reg->state_value_clear);
3854
3855 /* Load the Text area. */
3856 addr = be32_to_cpu(fw_entry->text.addr);
3857 len = be32_to_cpu(fw_entry->text.len);
3858 file_offset = be32_to_cpu(fw_entry->text.offset);
3859 data = (__be32 *)(bp->mips_firmware->data + file_offset);
3860
3861 offset = cpu_reg->spad_base + (addr - cpu_reg->mips_view_base);
3862 if (len) {
3863 int j;
3864
3865 for (j = 0; j < (len / 4); j++, offset += 4)
3866 bnx2_reg_wr_ind(bp, offset, be32_to_cpu(data[j]));
3867 }
3868
3869 /* Load the Data area. */
3870 addr = be32_to_cpu(fw_entry->data.addr);
3871 len = be32_to_cpu(fw_entry->data.len);
3872 file_offset = be32_to_cpu(fw_entry->data.offset);
3873 data = (__be32 *)(bp->mips_firmware->data + file_offset);
3874
3875 offset = cpu_reg->spad_base + (addr - cpu_reg->mips_view_base);
3876 if (len) {
3877 int j;
3878
3879 for (j = 0; j < (len / 4); j++, offset += 4)
3880 bnx2_reg_wr_ind(bp, offset, be32_to_cpu(data[j]));
3881 }
3882
3883 /* Load the Read-Only area. */
3884 addr = be32_to_cpu(fw_entry->rodata.addr);
3885 len = be32_to_cpu(fw_entry->rodata.len);
3886 file_offset = be32_to_cpu(fw_entry->rodata.offset);
3887 data = (__be32 *)(bp->mips_firmware->data + file_offset);
3888
3889 offset = cpu_reg->spad_base + (addr - cpu_reg->mips_view_base);
3890 if (len) {
3891 int j;
3892
3893 for (j = 0; j < (len / 4); j++, offset += 4)
3894 bnx2_reg_wr_ind(bp, offset, be32_to_cpu(data[j]));
3895 }
3896
3897 /* Clear the pre-fetch instruction. */
3898 bnx2_reg_wr_ind(bp, cpu_reg->inst, 0);
3899
3900 val = be32_to_cpu(fw_entry->start_addr);
3901 bnx2_reg_wr_ind(bp, cpu_reg->pc, val);
3902
3903 /* Start the CPU. */
3904 val = bnx2_reg_rd_ind(bp, cpu_reg->mode);
3905 val &= ~cpu_reg->mode_value_halt;
3906 bnx2_reg_wr_ind(bp, cpu_reg->state, cpu_reg->state_value_clear);
3907 bnx2_reg_wr_ind(bp, cpu_reg->mode, val);
3908
3909 return 0;
3910 }
3911
3912 static int
3913 bnx2_init_cpus(struct bnx2 *bp)
3914 {
3915 const struct bnx2_mips_fw_file *mips_fw =
3916 (const struct bnx2_mips_fw_file *) bp->mips_firmware->data;
3917 const struct bnx2_rv2p_fw_file *rv2p_fw =
3918 (const struct bnx2_rv2p_fw_file *) bp->rv2p_firmware->data;
3919 int rc;
3920
3921 /* Initialize the RV2P processor. */
3922 load_rv2p_fw(bp, RV2P_PROC1, &rv2p_fw->proc1);
3923 load_rv2p_fw(bp, RV2P_PROC2, &rv2p_fw->proc2);
3924
3925 /* Initialize the RX Processor. */
3926 rc = load_cpu_fw(bp, &cpu_reg_rxp, &mips_fw->rxp);
3927 if (rc)
3928 goto init_cpu_err;
3929
3930 /* Initialize the TX Processor. */
3931 rc = load_cpu_fw(bp, &cpu_reg_txp, &mips_fw->txp);
3932 if (rc)
3933 goto init_cpu_err;
3934
3935 /* Initialize the TX Patch-up Processor. */
3936 rc = load_cpu_fw(bp, &cpu_reg_tpat, &mips_fw->tpat);
3937 if (rc)
3938 goto init_cpu_err;
3939
3940 /* Initialize the Completion Processor. */
3941 rc = load_cpu_fw(bp, &cpu_reg_com, &mips_fw->com);
3942 if (rc)
3943 goto init_cpu_err;
3944
3945 /* Initialize the Command Processor. */
3946 rc = load_cpu_fw(bp, &cpu_reg_cp, &mips_fw->cp);
3947
3948 init_cpu_err:
3949 return rc;
3950 }
3951
3952 static void
3953 bnx2_setup_wol(struct bnx2 *bp)
3954 {
3955 int i;
3956 u32 val, wol_msg;
3957
3958 if (bp->wol) {
3959 u32 advertising;
3960 u8 autoneg;
3961
3962 autoneg = bp->autoneg;
3963 advertising = bp->advertising;
3964
3965 if (bp->phy_port == PORT_TP) {
3966 bp->autoneg = AUTONEG_SPEED;
3967 bp->advertising = ADVERTISED_10baseT_Half |
3968 ADVERTISED_10baseT_Full |
3969 ADVERTISED_100baseT_Half |
3970 ADVERTISED_100baseT_Full |
3971 ADVERTISED_Autoneg;
3972 }
3973
3974 spin_lock_bh(&bp->phy_lock);
3975 bnx2_setup_phy(bp, bp->phy_port);
3976 spin_unlock_bh(&bp->phy_lock);
3977
3978 bp->autoneg = autoneg;
3979 bp->advertising = advertising;
3980
3981 bnx2_set_mac_addr(bp, bp->dev->dev_addr, 0);
3982
3983 val = BNX2_RD(bp, BNX2_EMAC_MODE);
3984
3985 /* Enable port mode. */
3986 val &= ~BNX2_EMAC_MODE_PORT;
3987 val |= BNX2_EMAC_MODE_MPKT_RCVD |
3988 BNX2_EMAC_MODE_ACPI_RCVD |
3989 BNX2_EMAC_MODE_MPKT;
3990 if (bp->phy_port == PORT_TP) {
3991 val |= BNX2_EMAC_MODE_PORT_MII;
3992 } else {
3993 val |= BNX2_EMAC_MODE_PORT_GMII;
3994 if (bp->line_speed == SPEED_2500)
3995 val |= BNX2_EMAC_MODE_25G_MODE;
3996 }
3997
3998 BNX2_WR(bp, BNX2_EMAC_MODE, val);
3999
4000 /* receive all multicast */
4001 for (i = 0; i < NUM_MC_HASH_REGISTERS; i++) {
4002 BNX2_WR(bp, BNX2_EMAC_MULTICAST_HASH0 + (i * 4),
4003 0xffffffff);
4004 }
4005 BNX2_WR(bp, BNX2_EMAC_RX_MODE, BNX2_EMAC_RX_MODE_SORT_MODE);
4006
4007 val = 1 | BNX2_RPM_SORT_USER0_BC_EN | BNX2_RPM_SORT_USER0_MC_EN;
4008 BNX2_WR(bp, BNX2_RPM_SORT_USER0, 0x0);
4009 BNX2_WR(bp, BNX2_RPM_SORT_USER0, val);
4010 BNX2_WR(bp, BNX2_RPM_SORT_USER0, val | BNX2_RPM_SORT_USER0_ENA);
4011
4012 /* Need to enable EMAC and RPM for WOL. */
4013 BNX2_WR(bp, BNX2_MISC_ENABLE_SET_BITS,
4014 BNX2_MISC_ENABLE_SET_BITS_RX_PARSER_MAC_ENABLE |
4015 BNX2_MISC_ENABLE_SET_BITS_TX_HEADER_Q_ENABLE |
4016 BNX2_MISC_ENABLE_SET_BITS_EMAC_ENABLE);
4017
4018 val = BNX2_RD(bp, BNX2_RPM_CONFIG);
4019 val &= ~BNX2_RPM_CONFIG_ACPI_ENA;
4020 BNX2_WR(bp, BNX2_RPM_CONFIG, val);
4021
4022 wol_msg = BNX2_DRV_MSG_CODE_SUSPEND_WOL;
4023 } else {
4024 wol_msg = BNX2_DRV_MSG_CODE_SUSPEND_NO_WOL;
4025 }
4026
4027 if (!(bp->flags & BNX2_FLAG_NO_WOL)) {
4028 u32 val;
4029
4030 wol_msg |= BNX2_DRV_MSG_DATA_WAIT3;
4031 if (bp->fw_last_msg || BNX2_CHIP(bp) != BNX2_CHIP_5709) {
4032 bnx2_fw_sync(bp, wol_msg, 1, 0);
4033 return;
4034 }
4035 /* Tell firmware not to power down the PHY yet, otherwise
4036 * the chip will take a long time to respond to MMIO reads.
4037 */
4038 val = bnx2_shmem_rd(bp, BNX2_PORT_FEATURE);
4039 bnx2_shmem_wr(bp, BNX2_PORT_FEATURE,
4040 val | BNX2_PORT_FEATURE_ASF_ENABLED);
4041 bnx2_fw_sync(bp, wol_msg, 1, 0);
4042 bnx2_shmem_wr(bp, BNX2_PORT_FEATURE, val);
4043 }
4044
4045 }
4046
4047 static int
4048 bnx2_set_power_state(struct bnx2 *bp, pci_power_t state)
4049 {
4050 switch (state) {
4051 case PCI_D0: {
4052 u32 val;
4053
4054 pci_enable_wake(bp->pdev, PCI_D0, false);
4055 pci_set_power_state(bp->pdev, PCI_D0);
4056
4057 val = BNX2_RD(bp, BNX2_EMAC_MODE);
4058 val |= BNX2_EMAC_MODE_MPKT_RCVD | BNX2_EMAC_MODE_ACPI_RCVD;
4059 val &= ~BNX2_EMAC_MODE_MPKT;
4060 BNX2_WR(bp, BNX2_EMAC_MODE, val);
4061
4062 val = BNX2_RD(bp, BNX2_RPM_CONFIG);
4063 val &= ~BNX2_RPM_CONFIG_ACPI_ENA;
4064 BNX2_WR(bp, BNX2_RPM_CONFIG, val);
4065 break;
4066 }
4067 case PCI_D3hot: {
4068 bnx2_setup_wol(bp);
4069 pci_wake_from_d3(bp->pdev, bp->wol);
4070 if ((BNX2_CHIP_ID(bp) == BNX2_CHIP_ID_5706_A0) ||
4071 (BNX2_CHIP_ID(bp) == BNX2_CHIP_ID_5706_A1)) {
4072
4073 if (bp->wol)
4074 pci_set_power_state(bp->pdev, PCI_D3hot);
4075 break;
4076
4077 }
4078 if (!bp->fw_last_msg && BNX2_CHIP(bp) == BNX2_CHIP_5709) {
4079 u32 val;
4080
4081 /* Tell firmware not to power down the PHY yet,
4082 * otherwise the other port may not respond to
4083 * MMIO reads.
4084 */
4085 val = bnx2_shmem_rd(bp, BNX2_BC_STATE_CONDITION);
4086 val &= ~BNX2_CONDITION_PM_STATE_MASK;
4087 val |= BNX2_CONDITION_PM_STATE_UNPREP;
4088 bnx2_shmem_wr(bp, BNX2_BC_STATE_CONDITION, val);
4089 }
4090 pci_set_power_state(bp->pdev, PCI_D3hot);
4091
4092 /* No more memory access after this point until
4093 * device is brought back to D0.
4094 */
4095 break;
4096 }
4097 default:
4098 return -EINVAL;
4099 }
4100 return 0;
4101 }
4102
4103 static int
4104 bnx2_acquire_nvram_lock(struct bnx2 *bp)
4105 {
4106 u32 val;
4107 int j;
4108
4109 /* Request access to the flash interface. */
4110 BNX2_WR(bp, BNX2_NVM_SW_ARB, BNX2_NVM_SW_ARB_ARB_REQ_SET2);
4111 for (j = 0; j < NVRAM_TIMEOUT_COUNT; j++) {
4112 val = BNX2_RD(bp, BNX2_NVM_SW_ARB);
4113 if (val & BNX2_NVM_SW_ARB_ARB_ARB2)
4114 break;
4115
4116 udelay(5);
4117 }
4118
4119 if (j >= NVRAM_TIMEOUT_COUNT)
4120 return -EBUSY;
4121
4122 return 0;
4123 }
4124
4125 static int
4126 bnx2_release_nvram_lock(struct bnx2 *bp)
4127 {
4128 int j;
4129 u32 val;
4130
4131 /* Relinquish nvram interface. */
4132 BNX2_WR(bp, BNX2_NVM_SW_ARB, BNX2_NVM_SW_ARB_ARB_REQ_CLR2);
4133
4134 for (j = 0; j < NVRAM_TIMEOUT_COUNT; j++) {
4135 val = BNX2_RD(bp, BNX2_NVM_SW_ARB);
4136 if (!(val & BNX2_NVM_SW_ARB_ARB_ARB2))
4137 break;
4138
4139 udelay(5);
4140 }
4141
4142 if (j >= NVRAM_TIMEOUT_COUNT)
4143 return -EBUSY;
4144
4145 return 0;
4146 }
4147
4148
4149 static int
4150 bnx2_enable_nvram_write(struct bnx2 *bp)
4151 {
4152 u32 val;
4153
4154 val = BNX2_RD(bp, BNX2_MISC_CFG);
4155 BNX2_WR(bp, BNX2_MISC_CFG, val | BNX2_MISC_CFG_NVM_WR_EN_PCI);
4156
4157 if (bp->flash_info->flags & BNX2_NV_WREN) {
4158 int j;
4159
4160 BNX2_WR(bp, BNX2_NVM_COMMAND, BNX2_NVM_COMMAND_DONE);
4161 BNX2_WR(bp, BNX2_NVM_COMMAND,
4162 BNX2_NVM_COMMAND_WREN | BNX2_NVM_COMMAND_DOIT);
4163
4164 for (j = 0; j < NVRAM_TIMEOUT_COUNT; j++) {
4165 udelay(5);
4166
4167 val = BNX2_RD(bp, BNX2_NVM_COMMAND);
4168 if (val & BNX2_NVM_COMMAND_DONE)
4169 break;
4170 }
4171
4172 if (j >= NVRAM_TIMEOUT_COUNT)
4173 return -EBUSY;
4174 }
4175 return 0;
4176 }
4177
4178 static void
4179 bnx2_disable_nvram_write(struct bnx2 *bp)
4180 {
4181 u32 val;
4182
4183 val = BNX2_RD(bp, BNX2_MISC_CFG);
4184 BNX2_WR(bp, BNX2_MISC_CFG, val & ~BNX2_MISC_CFG_NVM_WR_EN);
4185 }
4186
4187
4188 static void
4189 bnx2_enable_nvram_access(struct bnx2 *bp)
4190 {
4191 u32 val;
4192
4193 val = BNX2_RD(bp, BNX2_NVM_ACCESS_ENABLE);
4194 /* Enable both bits, even on read. */
4195 BNX2_WR(bp, BNX2_NVM_ACCESS_ENABLE,
4196 val | BNX2_NVM_ACCESS_ENABLE_EN | BNX2_NVM_ACCESS_ENABLE_WR_EN);
4197 }
4198
4199 static void
4200 bnx2_disable_nvram_access(struct bnx2 *bp)
4201 {
4202 u32 val;
4203
4204 val = BNX2_RD(bp, BNX2_NVM_ACCESS_ENABLE);
4205 /* Disable both bits, even after read. */
4206 BNX2_WR(bp, BNX2_NVM_ACCESS_ENABLE,
4207 val & ~(BNX2_NVM_ACCESS_ENABLE_EN |
4208 BNX2_NVM_ACCESS_ENABLE_WR_EN));
4209 }
4210
4211 static int
4212 bnx2_nvram_erase_page(struct bnx2 *bp, u32 offset)
4213 {
4214 u32 cmd;
4215 int j;
4216
4217 if (bp->flash_info->flags & BNX2_NV_BUFFERED)
4218 /* Buffered flash, no erase needed */
4219 return 0;
4220
4221 /* Build an erase command */
4222 cmd = BNX2_NVM_COMMAND_ERASE | BNX2_NVM_COMMAND_WR |
4223 BNX2_NVM_COMMAND_DOIT;
4224
4225 /* Need to clear DONE bit separately. */
4226 BNX2_WR(bp, BNX2_NVM_COMMAND, BNX2_NVM_COMMAND_DONE);
4227
4228 /* Address of the NVRAM to read from. */
4229 BNX2_WR(bp, BNX2_NVM_ADDR, offset & BNX2_NVM_ADDR_NVM_ADDR_VALUE);
4230
4231 /* Issue an erase command. */
4232 BNX2_WR(bp, BNX2_NVM_COMMAND, cmd);
4233
4234 /* Wait for completion. */
4235 for (j = 0; j < NVRAM_TIMEOUT_COUNT; j++) {
4236 u32 val;
4237
4238 udelay(5);
4239
4240 val = BNX2_RD(bp, BNX2_NVM_COMMAND);
4241 if (val & BNX2_NVM_COMMAND_DONE)
4242 break;
4243 }
4244
4245 if (j >= NVRAM_TIMEOUT_COUNT)
4246 return -EBUSY;
4247
4248 return 0;
4249 }
4250
4251 static int
4252 bnx2_nvram_read_dword(struct bnx2 *bp, u32 offset, u8 *ret_val, u32 cmd_flags)
4253 {
4254 u32 cmd;
4255 int j;
4256
4257 /* Build the command word. */
4258 cmd = BNX2_NVM_COMMAND_DOIT | cmd_flags;
4259
4260 /* Calculate an offset of a buffered flash, not needed for 5709. */
4261 if (bp->flash_info->flags & BNX2_NV_TRANSLATE) {
4262 offset = ((offset / bp->flash_info->page_size) <<
4263 bp->flash_info->page_bits) +
4264 (offset % bp->flash_info->page_size);
4265 }
4266
4267 /* Need to clear DONE bit separately. */
4268 BNX2_WR(bp, BNX2_NVM_COMMAND, BNX2_NVM_COMMAND_DONE);
4269
4270 /* Address of the NVRAM to read from. */
4271 BNX2_WR(bp, BNX2_NVM_ADDR, offset & BNX2_NVM_ADDR_NVM_ADDR_VALUE);
4272
4273 /* Issue a read command. */
4274 BNX2_WR(bp, BNX2_NVM_COMMAND, cmd);
4275
4276 /* Wait for completion. */
4277 for (j = 0; j < NVRAM_TIMEOUT_COUNT; j++) {
4278 u32 val;
4279
4280 udelay(5);
4281
4282 val = BNX2_RD(bp, BNX2_NVM_COMMAND);
4283 if (val & BNX2_NVM_COMMAND_DONE) {
4284 __be32 v = cpu_to_be32(BNX2_RD(bp, BNX2_NVM_READ));
4285 memcpy(ret_val, &v, 4);
4286 break;
4287 }
4288 }
4289 if (j >= NVRAM_TIMEOUT_COUNT)
4290 return -EBUSY;
4291
4292 return 0;
4293 }
4294
4295
4296 static int
4297 bnx2_nvram_write_dword(struct bnx2 *bp, u32 offset, u8 *val, u32 cmd_flags)
4298 {
4299 u32 cmd;
4300 __be32 val32;
4301 int j;
4302
4303 /* Build the command word. */
4304 cmd = BNX2_NVM_COMMAND_DOIT | BNX2_NVM_COMMAND_WR | cmd_flags;
4305
4306 /* Calculate an offset of a buffered flash, not needed for 5709. */
4307 if (bp->flash_info->flags & BNX2_NV_TRANSLATE) {
4308 offset = ((offset / bp->flash_info->page_size) <<
4309 bp->flash_info->page_bits) +
4310 (offset % bp->flash_info->page_size);
4311 }
4312
4313 /* Need to clear DONE bit separately. */
4314 BNX2_WR(bp, BNX2_NVM_COMMAND, BNX2_NVM_COMMAND_DONE);
4315
4316 memcpy(&val32, val, 4);
4317
4318 /* Write the data. */
4319 BNX2_WR(bp, BNX2_NVM_WRITE, be32_to_cpu(val32));
4320
4321 /* Address of the NVRAM to write to. */
4322 BNX2_WR(bp, BNX2_NVM_ADDR, offset & BNX2_NVM_ADDR_NVM_ADDR_VALUE);
4323
4324 /* Issue the write command. */
4325 BNX2_WR(bp, BNX2_NVM_COMMAND, cmd);
4326
4327 /* Wait for completion. */
4328 for (j = 0; j < NVRAM_TIMEOUT_COUNT; j++) {
4329 udelay(5);
4330
4331 if (BNX2_RD(bp, BNX2_NVM_COMMAND) & BNX2_NVM_COMMAND_DONE)
4332 break;
4333 }
4334 if (j >= NVRAM_TIMEOUT_COUNT)
4335 return -EBUSY;
4336
4337 return 0;
4338 }
4339
4340 static int
4341 bnx2_init_nvram(struct bnx2 *bp)
4342 {
4343 u32 val;
4344 int j, entry_count, rc = 0;
4345 const struct flash_spec *flash;
4346
4347 if (BNX2_CHIP(bp) == BNX2_CHIP_5709) {
4348 bp->flash_info = &flash_5709;
4349 goto get_flash_size;
4350 }
4351
4352 /* Determine the selected interface. */
4353 val = BNX2_RD(bp, BNX2_NVM_CFG1);
4354
4355 entry_count = ARRAY_SIZE(flash_table);
4356
4357 if (val & 0x40000000) {
4358
4359 /* Flash interface has been reconfigured */
4360 for (j = 0, flash = &flash_table[0]; j < entry_count;
4361 j++, flash++) {
4362 if ((val & FLASH_BACKUP_STRAP_MASK) ==
4363 (flash->config1 & FLASH_BACKUP_STRAP_MASK)) {
4364 bp->flash_info = flash;
4365 break;
4366 }
4367 }
4368 }
4369 else {
4370 u32 mask;
4371 /* Not yet been reconfigured */
4372
4373 if (val & (1 << 23))
4374 mask = FLASH_BACKUP_STRAP_MASK;
4375 else
4376 mask = FLASH_STRAP_MASK;
4377
4378 for (j = 0, flash = &flash_table[0]; j < entry_count;
4379 j++, flash++) {
4380
4381 if ((val & mask) == (flash->strapping & mask)) {
4382 bp->flash_info = flash;
4383
4384 /* Request access to the flash interface. */
4385 if ((rc = bnx2_acquire_nvram_lock(bp)) != 0)
4386 return rc;
4387
4388 /* Enable access to flash interface */
4389 bnx2_enable_nvram_access(bp);
4390
4391 /* Reconfigure the flash interface */
4392 BNX2_WR(bp, BNX2_NVM_CFG1, flash->config1);
4393 BNX2_WR(bp, BNX2_NVM_CFG2, flash->config2);
4394 BNX2_WR(bp, BNX2_NVM_CFG3, flash->config3);
4395 BNX2_WR(bp, BNX2_NVM_WRITE1, flash->write1);
4396
4397 /* Disable access to flash interface */
4398 bnx2_disable_nvram_access(bp);
4399 bnx2_release_nvram_lock(bp);
4400
4401 break;
4402 }
4403 }
4404 } /* if (val & 0x40000000) */
4405
4406 if (j == entry_count) {
4407 bp->flash_info = NULL;
4408 pr_alert("Unknown flash/EEPROM type\n");
4409 return -ENODEV;
4410 }
4411
4412 get_flash_size:
4413 val = bnx2_shmem_rd(bp, BNX2_SHARED_HW_CFG_CONFIG2);
4414 val &= BNX2_SHARED_HW_CFG2_NVM_SIZE_MASK;
4415 if (val)
4416 bp->flash_size = val;
4417 else
4418 bp->flash_size = bp->flash_info->total_size;
4419
4420 return rc;
4421 }
4422
4423 static int
4424 bnx2_nvram_read(struct bnx2 *bp, u32 offset, u8 *ret_buf,
4425 int buf_size)
4426 {
4427 int rc = 0;
4428 u32 cmd_flags, offset32, len32, extra;
4429
4430 if (buf_size == 0)
4431 return 0;
4432
4433 /* Request access to the flash interface. */
4434 if ((rc = bnx2_acquire_nvram_lock(bp)) != 0)
4435 return rc;
4436
4437 /* Enable access to flash interface */
4438 bnx2_enable_nvram_access(bp);
4439
4440 len32 = buf_size;
4441 offset32 = offset;
4442 extra = 0;
4443
4444 cmd_flags = 0;
4445
4446 if (offset32 & 3) {
4447 u8 buf[4];
4448 u32 pre_len;
4449
4450 offset32 &= ~3;
4451 pre_len = 4 - (offset & 3);
4452
4453 if (pre_len >= len32) {
4454 pre_len = len32;
4455 cmd_flags = BNX2_NVM_COMMAND_FIRST |
4456 BNX2_NVM_COMMAND_LAST;
4457 }
4458 else {
4459 cmd_flags = BNX2_NVM_COMMAND_FIRST;
4460 }
4461
4462 rc = bnx2_nvram_read_dword(bp, offset32, buf, cmd_flags);
4463
4464 if (rc)
4465 return rc;
4466
4467 memcpy(ret_buf, buf + (offset & 3), pre_len);
4468
4469 offset32 += 4;
4470 ret_buf += pre_len;
4471 len32 -= pre_len;
4472 }
4473 if (len32 & 3) {
4474 extra = 4 - (len32 & 3);
4475 len32 = (len32 + 4) & ~3;
4476 }
4477
4478 if (len32 == 4) {
4479 u8 buf[4];
4480
4481 if (cmd_flags)
4482 cmd_flags = BNX2_NVM_COMMAND_LAST;
4483 else
4484 cmd_flags = BNX2_NVM_COMMAND_FIRST |
4485 BNX2_NVM_COMMAND_LAST;
4486
4487 rc = bnx2_nvram_read_dword(bp, offset32, buf, cmd_flags);
4488
4489 memcpy(ret_buf, buf, 4 - extra);
4490 }
4491 else if (len32 > 0) {
4492 u8 buf[4];
4493
4494 /* Read the first word. */
4495 if (cmd_flags)
4496 cmd_flags = 0;
4497 else
4498 cmd_flags = BNX2_NVM_COMMAND_FIRST;
4499
4500 rc = bnx2_nvram_read_dword(bp, offset32, ret_buf, cmd_flags);
4501
4502 /* Advance to the next dword. */
4503 offset32 += 4;
4504 ret_buf += 4;
4505 len32 -= 4;
4506
4507 while (len32 > 4 && rc == 0) {
4508 rc = bnx2_nvram_read_dword(bp, offset32, ret_buf, 0);
4509
4510 /* Advance to the next dword. */
4511 offset32 += 4;
4512 ret_buf += 4;
4513 len32 -= 4;
4514 }
4515
4516 if (rc)
4517 return rc;
4518
4519 cmd_flags = BNX2_NVM_COMMAND_LAST;
4520 rc = bnx2_nvram_read_dword(bp, offset32, buf, cmd_flags);
4521
4522 memcpy(ret_buf, buf, 4 - extra);
4523 }
4524
4525 /* Disable access to flash interface */
4526 bnx2_disable_nvram_access(bp);
4527
4528 bnx2_release_nvram_lock(bp);
4529
4530 return rc;
4531 }
4532
4533 static int
4534 bnx2_nvram_write(struct bnx2 *bp, u32 offset, u8 *data_buf,
4535 int buf_size)
4536 {
4537 u32 written, offset32, len32;
4538 u8 *buf, start[4], end[4], *align_buf = NULL, *flash_buffer = NULL;
4539 int rc = 0;
4540 int align_start, align_end;
4541
4542 buf = data_buf;
4543 offset32 = offset;
4544 len32 = buf_size;
4545 align_start = align_end = 0;
4546
4547 if ((align_start = (offset32 & 3))) {
4548 offset32 &= ~3;
4549 len32 += align_start;
4550 if (len32 < 4)
4551 len32 = 4;
4552 if ((rc = bnx2_nvram_read(bp, offset32, start, 4)))
4553 return rc;
4554 }
4555
4556 if (len32 & 3) {
4557 align_end = 4 - (len32 & 3);
4558 len32 += align_end;
4559 if ((rc = bnx2_nvram_read(bp, offset32 + len32 - 4, end, 4)))
4560 return rc;
4561 }
4562
4563 if (align_start || align_end) {
4564 align_buf = kmalloc(len32, GFP_KERNEL);
4565 if (align_buf == NULL)
4566 return -ENOMEM;
4567 if (align_start) {
4568 memcpy(align_buf, start, 4);
4569 }
4570 if (align_end) {
4571 memcpy(align_buf + len32 - 4, end, 4);
4572 }
4573 memcpy(align_buf + align_start, data_buf, buf_size);
4574 buf = align_buf;
4575 }
4576
4577 if (!(bp->flash_info->flags & BNX2_NV_BUFFERED)) {
4578 flash_buffer = kmalloc(264, GFP_KERNEL);
4579 if (flash_buffer == NULL) {
4580 rc = -ENOMEM;
4581 goto nvram_write_end;
4582 }
4583 }
4584
4585 written = 0;
4586 while ((written < len32) && (rc == 0)) {
4587 u32 page_start, page_end, data_start, data_end;
4588 u32 addr, cmd_flags;
4589 int i;
4590
4591 /* Find the page_start addr */
4592 page_start = offset32 + written;
4593 page_start -= (page_start % bp->flash_info->page_size);
4594 /* Find the page_end addr */
4595 page_end = page_start + bp->flash_info->page_size;
4596 /* Find the data_start addr */
4597 data_start = (written == 0) ? offset32 : page_start;
4598 /* Find the data_end addr */
4599 data_end = (page_end > offset32 + len32) ?
4600 (offset32 + len32) : page_end;
4601
4602 /* Request access to the flash interface. */
4603 if ((rc = bnx2_acquire_nvram_lock(bp)) != 0)
4604 goto nvram_write_end;
4605
4606 /* Enable access to flash interface */
4607 bnx2_enable_nvram_access(bp);
4608
4609 cmd_flags = BNX2_NVM_COMMAND_FIRST;
4610 if (!(bp->flash_info->flags & BNX2_NV_BUFFERED)) {
4611 int j;
4612
4613 /* Read the whole page into the buffer
4614 * (non-buffer flash only) */
4615 for (j = 0; j < bp->flash_info->page_size; j += 4) {
4616 if (j == (bp->flash_info->page_size - 4)) {
4617 cmd_flags |= BNX2_NVM_COMMAND_LAST;
4618 }
4619 rc = bnx2_nvram_read_dword(bp,
4620 page_start + j,
4621 &flash_buffer[j],
4622 cmd_flags);
4623
4624 if (rc)
4625 goto nvram_write_end;
4626
4627 cmd_flags = 0;
4628 }
4629 }
4630
4631 /* Enable writes to flash interface (unlock write-protect) */
4632 if ((rc = bnx2_enable_nvram_write(bp)) != 0)
4633 goto nvram_write_end;
4634
4635 /* Loop to write back the buffer data from page_start to
4636 * data_start */
4637 i = 0;
4638 if (!(bp->flash_info->flags & BNX2_NV_BUFFERED)) {
4639 /* Erase the page */
4640 if ((rc = bnx2_nvram_erase_page(bp, page_start)) != 0)
4641 goto nvram_write_end;
4642
4643 /* Re-enable the write again for the actual write */
4644 bnx2_enable_nvram_write(bp);
4645
4646 for (addr = page_start; addr < data_start;
4647 addr += 4, i += 4) {
4648
4649 rc = bnx2_nvram_write_dword(bp, addr,
4650 &flash_buffer[i], cmd_flags);
4651
4652 if (rc != 0)
4653 goto nvram_write_end;
4654
4655 cmd_flags = 0;
4656 }
4657 }
4658
4659 /* Loop to write the new data from data_start to data_end */
4660 for (addr = data_start; addr < data_end; addr += 4, i += 4) {
4661 if ((addr == page_end - 4) ||
4662 ((bp->flash_info->flags & BNX2_NV_BUFFERED) &&
4663 (addr == data_end - 4))) {
4664
4665 cmd_flags |= BNX2_NVM_COMMAND_LAST;
4666 }
4667 rc = bnx2_nvram_write_dword(bp, addr, buf,
4668 cmd_flags);
4669
4670 if (rc != 0)
4671 goto nvram_write_end;
4672
4673 cmd_flags = 0;
4674 buf += 4;
4675 }
4676
4677 /* Loop to write back the buffer data from data_end
4678 * to page_end */
4679 if (!(bp->flash_info->flags & BNX2_NV_BUFFERED)) {
4680 for (addr = data_end; addr < page_end;
4681 addr += 4, i += 4) {
4682
4683 if (addr == page_end-4) {
4684 cmd_flags = BNX2_NVM_COMMAND_LAST;
4685 }
4686 rc = bnx2_nvram_write_dword(bp, addr,
4687 &flash_buffer[i], cmd_flags);
4688
4689 if (rc != 0)
4690 goto nvram_write_end;
4691
4692 cmd_flags = 0;
4693 }
4694 }
4695
4696 /* Disable writes to flash interface (lock write-protect) */
4697 bnx2_disable_nvram_write(bp);
4698
4699 /* Disable access to flash interface */
4700 bnx2_disable_nvram_access(bp);
4701 bnx2_release_nvram_lock(bp);
4702
4703 /* Increment written */
4704 written += data_end - data_start;
4705 }
4706
4707 nvram_write_end:
4708 kfree(flash_buffer);
4709 kfree(align_buf);
4710 return rc;
4711 }
4712
4713 static void
4714 bnx2_init_fw_cap(struct bnx2 *bp)
4715 {
4716 u32 val, sig = 0;
4717
4718 bp->phy_flags &= ~BNX2_PHY_FLAG_REMOTE_PHY_CAP;
4719 bp->flags &= ~BNX2_FLAG_CAN_KEEP_VLAN;
4720
4721 if (!(bp->flags & BNX2_FLAG_ASF_ENABLE))
4722 bp->flags |= BNX2_FLAG_CAN_KEEP_VLAN;
4723
4724 val = bnx2_shmem_rd(bp, BNX2_FW_CAP_MB);
4725 if ((val & BNX2_FW_CAP_SIGNATURE_MASK) != BNX2_FW_CAP_SIGNATURE)
4726 return;
4727
4728 if ((val & BNX2_FW_CAP_CAN_KEEP_VLAN) == BNX2_FW_CAP_CAN_KEEP_VLAN) {
4729 bp->flags |= BNX2_FLAG_CAN_KEEP_VLAN;
4730 sig |= BNX2_DRV_ACK_CAP_SIGNATURE | BNX2_FW_CAP_CAN_KEEP_VLAN;
4731 }
4732
4733 if ((bp->phy_flags & BNX2_PHY_FLAG_SERDES) &&
4734 (val & BNX2_FW_CAP_REMOTE_PHY_CAPABLE)) {
4735 u32 link;
4736
4737 bp->phy_flags |= BNX2_PHY_FLAG_REMOTE_PHY_CAP;
4738
4739 link = bnx2_shmem_rd(bp, BNX2_LINK_STATUS);
4740 if (link & BNX2_LINK_STATUS_SERDES_LINK)
4741 bp->phy_port = PORT_FIBRE;
4742 else
4743 bp->phy_port = PORT_TP;
4744
4745 sig |= BNX2_DRV_ACK_CAP_SIGNATURE |
4746 BNX2_FW_CAP_REMOTE_PHY_CAPABLE;
4747 }
4748
4749 if (netif_running(bp->dev) && sig)
4750 bnx2_shmem_wr(bp, BNX2_DRV_ACK_CAP_MB, sig);
4751 }
4752
4753 static void
4754 bnx2_setup_msix_tbl(struct bnx2 *bp)
4755 {
4756 BNX2_WR(bp, BNX2_PCI_GRC_WINDOW_ADDR, BNX2_PCI_GRC_WINDOW_ADDR_SEP_WIN);
4757
4758 BNX2_WR(bp, BNX2_PCI_GRC_WINDOW2_ADDR, BNX2_MSIX_TABLE_ADDR);
4759 BNX2_WR(bp, BNX2_PCI_GRC_WINDOW3_ADDR, BNX2_MSIX_PBA_ADDR);
4760 }
4761
4762 static int
4763 bnx2_reset_chip(struct bnx2 *bp, u32 reset_code)
4764 {
4765 u32 val;
4766 int i, rc = 0;
4767 u8 old_port;
4768
4769 /* Wait for the current PCI transaction to complete before
4770 * issuing a reset. */
4771 if ((BNX2_CHIP(bp) == BNX2_CHIP_5706) ||
4772 (BNX2_CHIP(bp) == BNX2_CHIP_5708)) {
4773 BNX2_WR(bp, BNX2_MISC_ENABLE_CLR_BITS,
4774 BNX2_MISC_ENABLE_CLR_BITS_TX_DMA_ENABLE |
4775 BNX2_MISC_ENABLE_CLR_BITS_DMA_ENGINE_ENABLE |
4776 BNX2_MISC_ENABLE_CLR_BITS_RX_DMA_ENABLE |
4777 BNX2_MISC_ENABLE_CLR_BITS_HOST_COALESCE_ENABLE);
4778 val = BNX2_RD(bp, BNX2_MISC_ENABLE_CLR_BITS);
4779 udelay(5);
4780 } else { /* 5709 */
4781 val = BNX2_RD(bp, BNX2_MISC_NEW_CORE_CTL);
4782 val &= ~BNX2_MISC_NEW_CORE_CTL_DMA_ENABLE;
4783 BNX2_WR(bp, BNX2_MISC_NEW_CORE_CTL, val);
4784 val = BNX2_RD(bp, BNX2_MISC_NEW_CORE_CTL);
4785
4786 for (i = 0; i < 100; i++) {
4787 msleep(1);
4788 val = BNX2_RD(bp, BNX2_PCICFG_DEVICE_CONTROL);
4789 if (!(val & BNX2_PCICFG_DEVICE_STATUS_NO_PEND))
4790 break;
4791 }
4792 }
4793
4794 /* Wait for the firmware to tell us it is ok to issue a reset. */
4795 bnx2_fw_sync(bp, BNX2_DRV_MSG_DATA_WAIT0 | reset_code, 1, 1);
4796
4797 /* Deposit a driver reset signature so the firmware knows that
4798 * this is a soft reset. */
4799 bnx2_shmem_wr(bp, BNX2_DRV_RESET_SIGNATURE,
4800 BNX2_DRV_RESET_SIGNATURE_MAGIC);
4801
4802 /* Do a dummy read to force the chip to complete all current transaction
4803 * before we issue a reset. */
4804 val = BNX2_RD(bp, BNX2_MISC_ID);
4805
4806 if (BNX2_CHIP(bp) == BNX2_CHIP_5709) {
4807 BNX2_WR(bp, BNX2_MISC_COMMAND, BNX2_MISC_COMMAND_SW_RESET);
4808 BNX2_RD(bp, BNX2_MISC_COMMAND);
4809 udelay(5);
4810
4811 val = BNX2_PCICFG_MISC_CONFIG_REG_WINDOW_ENA |
4812 BNX2_PCICFG_MISC_CONFIG_TARGET_MB_WORD_SWAP;
4813
4814 BNX2_WR(bp, BNX2_PCICFG_MISC_CONFIG, val);
4815
4816 } else {
4817 val = BNX2_PCICFG_MISC_CONFIG_CORE_RST_REQ |
4818 BNX2_PCICFG_MISC_CONFIG_REG_WINDOW_ENA |
4819 BNX2_PCICFG_MISC_CONFIG_TARGET_MB_WORD_SWAP;
4820
4821 /* Chip reset. */
4822 BNX2_WR(bp, BNX2_PCICFG_MISC_CONFIG, val);
4823
4824 /* Reading back any register after chip reset will hang the
4825 * bus on 5706 A0 and A1. The msleep below provides plenty
4826 * of margin for write posting.
4827 */
4828 if ((BNX2_CHIP_ID(bp) == BNX2_CHIP_ID_5706_A0) ||
4829 (BNX2_CHIP_ID(bp) == BNX2_CHIP_ID_5706_A1))
4830 msleep(20);
4831
4832 /* Reset takes approximate 30 usec */
4833 for (i = 0; i < 10; i++) {
4834 val = BNX2_RD(bp, BNX2_PCICFG_MISC_CONFIG);
4835 if ((val & (BNX2_PCICFG_MISC_CONFIG_CORE_RST_REQ |
4836 BNX2_PCICFG_MISC_CONFIG_CORE_RST_BSY)) == 0)
4837 break;
4838 udelay(10);
4839 }
4840
4841 if (val & (BNX2_PCICFG_MISC_CONFIG_CORE_RST_REQ |
4842 BNX2_PCICFG_MISC_CONFIG_CORE_RST_BSY)) {
4843 pr_err("Chip reset did not complete\n");
4844 return -EBUSY;
4845 }
4846 }
4847
4848 /* Make sure byte swapping is properly configured. */
4849 val = BNX2_RD(bp, BNX2_PCI_SWAP_DIAG0);
4850 if (val != 0x01020304) {
4851 pr_err("Chip not in correct endian mode\n");
4852 return -ENODEV;
4853 }
4854
4855 /* Wait for the firmware to finish its initialization. */
4856 rc = bnx2_fw_sync(bp, BNX2_DRV_MSG_DATA_WAIT1 | reset_code, 1, 0);
4857 if (rc)
4858 return rc;
4859
4860 spin_lock_bh(&bp->phy_lock);
4861 old_port = bp->phy_port;
4862 bnx2_init_fw_cap(bp);
4863 if ((bp->phy_flags & BNX2_PHY_FLAG_REMOTE_PHY_CAP) &&
4864 old_port != bp->phy_port)
4865 bnx2_set_default_remote_link(bp);
4866 spin_unlock_bh(&bp->phy_lock);
4867
4868 if (BNX2_CHIP_ID(bp) == BNX2_CHIP_ID_5706_A0) {
4869 /* Adjust the voltage regular to two steps lower. The default
4870 * of this register is 0x0000000e. */
4871 BNX2_WR(bp, BNX2_MISC_VREG_CONTROL, 0x000000fa);
4872
4873 /* Remove bad rbuf memory from the free pool. */
4874 rc = bnx2_alloc_bad_rbuf(bp);
4875 }
4876
4877 if (bp->flags & BNX2_FLAG_USING_MSIX) {
4878 bnx2_setup_msix_tbl(bp);
4879 /* Prevent MSIX table reads and write from timing out */
4880 BNX2_WR(bp, BNX2_MISC_ECO_HW_CTL,
4881 BNX2_MISC_ECO_HW_CTL_LARGE_GRC_TMOUT_EN);
4882 }
4883
4884 return rc;
4885 }
4886
4887 static int
4888 bnx2_init_chip(struct bnx2 *bp)
4889 {
4890 u32 val, mtu;
4891 int rc, i;
4892
4893 /* Make sure the interrupt is not active. */
4894 BNX2_WR(bp, BNX2_PCICFG_INT_ACK_CMD, BNX2_PCICFG_INT_ACK_CMD_MASK_INT);
4895
4896 val = BNX2_DMA_CONFIG_DATA_BYTE_SWAP |
4897 BNX2_DMA_CONFIG_DATA_WORD_SWAP |
4898 #ifdef __BIG_ENDIAN
4899 BNX2_DMA_CONFIG_CNTL_BYTE_SWAP |
4900 #endif
4901 BNX2_DMA_CONFIG_CNTL_WORD_SWAP |
4902 DMA_READ_CHANS << 12 |
4903 DMA_WRITE_CHANS << 16;
4904
4905 val |= (0x2 << 20) | (1 << 11);
4906
4907 if ((bp->flags & BNX2_FLAG_PCIX) && (bp->bus_speed_mhz == 133))
4908 val |= (1 << 23);
4909
4910 if ((BNX2_CHIP(bp) == BNX2_CHIP_5706) &&
4911 (BNX2_CHIP_ID(bp) != BNX2_CHIP_ID_5706_A0) &&
4912 !(bp->flags & BNX2_FLAG_PCIX))
4913 val |= BNX2_DMA_CONFIG_CNTL_PING_PONG_DMA;
4914
4915 BNX2_WR(bp, BNX2_DMA_CONFIG, val);
4916
4917 if (BNX2_CHIP_ID(bp) == BNX2_CHIP_ID_5706_A0) {
4918 val = BNX2_RD(bp, BNX2_TDMA_CONFIG);
4919 val |= BNX2_TDMA_CONFIG_ONE_DMA;
4920 BNX2_WR(bp, BNX2_TDMA_CONFIG, val);
4921 }
4922
4923 if (bp->flags & BNX2_FLAG_PCIX) {
4924 u16 val16;
4925
4926 pci_read_config_word(bp->pdev, bp->pcix_cap + PCI_X_CMD,
4927 &val16);
4928 pci_write_config_word(bp->pdev, bp->pcix_cap + PCI_X_CMD,
4929 val16 & ~PCI_X_CMD_ERO);
4930 }
4931
4932 BNX2_WR(bp, BNX2_MISC_ENABLE_SET_BITS,
4933 BNX2_MISC_ENABLE_SET_BITS_HOST_COALESCE_ENABLE |
4934 BNX2_MISC_ENABLE_STATUS_BITS_RX_V2P_ENABLE |
4935 BNX2_MISC_ENABLE_STATUS_BITS_CONTEXT_ENABLE);
4936
4937 /* Initialize context mapping and zero out the quick contexts. The
4938 * context block must have already been enabled. */
4939 if (BNX2_CHIP(bp) == BNX2_CHIP_5709) {
4940 rc = bnx2_init_5709_context(bp);
4941 if (rc)
4942 return rc;
4943 } else
4944 bnx2_init_context(bp);
4945
4946 if ((rc = bnx2_init_cpus(bp)) != 0)
4947 return rc;
4948
4949 bnx2_init_nvram(bp);
4950
4951 bnx2_set_mac_addr(bp, bp->dev->dev_addr, 0);
4952
4953 val = BNX2_RD(bp, BNX2_MQ_CONFIG);
4954 val &= ~BNX2_MQ_CONFIG_KNL_BYP_BLK_SIZE;
4955 val |= BNX2_MQ_CONFIG_KNL_BYP_BLK_SIZE_256;
4956 if (BNX2_CHIP(bp) == BNX2_CHIP_5709) {
4957 val |= BNX2_MQ_CONFIG_BIN_MQ_MODE;
4958 if (BNX2_CHIP_REV(bp) == BNX2_CHIP_REV_Ax)
4959 val |= BNX2_MQ_CONFIG_HALT_DIS;
4960 }
4961
4962 BNX2_WR(bp, BNX2_MQ_CONFIG, val);
4963
4964 val = 0x10000 + (MAX_CID_CNT * MB_KERNEL_CTX_SIZE);
4965 BNX2_WR(bp, BNX2_MQ_KNL_BYP_WIND_START, val);
4966 BNX2_WR(bp, BNX2_MQ_KNL_WIND_END, val);
4967
4968 val = (BNX2_PAGE_BITS - 8) << 24;
4969 BNX2_WR(bp, BNX2_RV2P_CONFIG, val);
4970
4971 /* Configure page size. */
4972 val = BNX2_RD(bp, BNX2_TBDR_CONFIG);
4973 val &= ~BNX2_TBDR_CONFIG_PAGE_SIZE;
4974 val |= (BNX2_PAGE_BITS - 8) << 24 | 0x40;
4975 BNX2_WR(bp, BNX2_TBDR_CONFIG, val);
4976
4977 val = bp->mac_addr[0] +
4978 (bp->mac_addr[1] << 8) +
4979 (bp->mac_addr[2] << 16) +
4980 bp->mac_addr[3] +
4981 (bp->mac_addr[4] << 8) +
4982 (bp->mac_addr[5] << 16);
4983 BNX2_WR(bp, BNX2_EMAC_BACKOFF_SEED, val);
4984
4985 /* Program the MTU. Also include 4 bytes for CRC32. */
4986 mtu = bp->dev->mtu;
4987 val = mtu + ETH_HLEN + ETH_FCS_LEN;
4988 if (val > (MAX_ETHERNET_PACKET_SIZE + 4))
4989 val |= BNX2_EMAC_RX_MTU_SIZE_JUMBO_ENA;
4990 BNX2_WR(bp, BNX2_EMAC_RX_MTU_SIZE, val);
4991
4992 if (mtu < 1500)
4993 mtu = 1500;
4994
4995 bnx2_reg_wr_ind(bp, BNX2_RBUF_CONFIG, BNX2_RBUF_CONFIG_VAL(mtu));
4996 bnx2_reg_wr_ind(bp, BNX2_RBUF_CONFIG2, BNX2_RBUF_CONFIG2_VAL(mtu));
4997 bnx2_reg_wr_ind(bp, BNX2_RBUF_CONFIG3, BNX2_RBUF_CONFIG3_VAL(mtu));
4998
4999 memset(bp->bnx2_napi[0].status_blk.msi, 0, bp->status_stats_size);
5000 for (i = 0; i < BNX2_MAX_MSIX_VEC; i++)
5001 bp->bnx2_napi[i].last_status_idx = 0;
5002
5003 bp->idle_chk_status_idx = 0xffff;
5004
5005 /* Set up how to generate a link change interrupt. */
5006 BNX2_WR(bp, BNX2_EMAC_ATTENTION_ENA, BNX2_EMAC_ATTENTION_ENA_LINK);
5007
5008 BNX2_WR(bp, BNX2_HC_STATUS_ADDR_L,
5009 (u64) bp->status_blk_mapping & 0xffffffff);
5010 BNX2_WR(bp, BNX2_HC_STATUS_ADDR_H, (u64) bp->status_blk_mapping >> 32);
5011
5012 BNX2_WR(bp, BNX2_HC_STATISTICS_ADDR_L,
5013 (u64) bp->stats_blk_mapping & 0xffffffff);
5014 BNX2_WR(bp, BNX2_HC_STATISTICS_ADDR_H,
5015 (u64) bp->stats_blk_mapping >> 32);
5016
5017 BNX2_WR(bp, BNX2_HC_TX_QUICK_CONS_TRIP,
5018 (bp->tx_quick_cons_trip_int << 16) | bp->tx_quick_cons_trip);
5019
5020 BNX2_WR(bp, BNX2_HC_RX_QUICK_CONS_TRIP,
5021 (bp->rx_quick_cons_trip_int << 16) | bp->rx_quick_cons_trip);
5022
5023 BNX2_WR(bp, BNX2_HC_COMP_PROD_TRIP,
5024 (bp->comp_prod_trip_int << 16) | bp->comp_prod_trip);
5025
5026 BNX2_WR(bp, BNX2_HC_TX_TICKS, (bp->tx_ticks_int << 16) | bp->tx_ticks);
5027
5028 BNX2_WR(bp, BNX2_HC_RX_TICKS, (bp->rx_ticks_int << 16) | bp->rx_ticks);
5029
5030 BNX2_WR(bp, BNX2_HC_COM_TICKS,
5031 (bp->com_ticks_int << 16) | bp->com_ticks);
5032
5033 BNX2_WR(bp, BNX2_HC_CMD_TICKS,
5034 (bp->cmd_ticks_int << 16) | bp->cmd_ticks);
5035
5036 if (bp->flags & BNX2_FLAG_BROKEN_STATS)
5037 BNX2_WR(bp, BNX2_HC_STATS_TICKS, 0);
5038 else
5039 BNX2_WR(bp, BNX2_HC_STATS_TICKS, bp->stats_ticks);
5040 BNX2_WR(bp, BNX2_HC_STAT_COLLECT_TICKS, 0xbb8); /* 3ms */
5041
5042 if (BNX2_CHIP_ID(bp) == BNX2_CHIP_ID_5706_A1)
5043 val = BNX2_HC_CONFIG_COLLECT_STATS;
5044 else {
5045 val = BNX2_HC_CONFIG_RX_TMR_MODE | BNX2_HC_CONFIG_TX_TMR_MODE |
5046 BNX2_HC_CONFIG_COLLECT_STATS;
5047 }
5048
5049 if (bp->flags & BNX2_FLAG_USING_MSIX) {
5050 BNX2_WR(bp, BNX2_HC_MSIX_BIT_VECTOR,
5051 BNX2_HC_MSIX_BIT_VECTOR_VAL);
5052
5053 val |= BNX2_HC_CONFIG_SB_ADDR_INC_128B;
5054 }
5055
5056 if (bp->flags & BNX2_FLAG_ONE_SHOT_MSI)
5057 val |= BNX2_HC_CONFIG_ONE_SHOT | BNX2_HC_CONFIG_USE_INT_PARAM;
5058
5059 BNX2_WR(bp, BNX2_HC_CONFIG, val);
5060
5061 if (bp->rx_ticks < 25)
5062 bnx2_reg_wr_ind(bp, BNX2_FW_RX_LOW_LATENCY, 1);
5063 else
5064 bnx2_reg_wr_ind(bp, BNX2_FW_RX_LOW_LATENCY, 0);
5065
5066 for (i = 1; i < bp->irq_nvecs; i++) {
5067 u32 base = ((i - 1) * BNX2_HC_SB_CONFIG_SIZE) +
5068 BNX2_HC_SB_CONFIG_1;
5069
5070 BNX2_WR(bp, base,
5071 BNX2_HC_SB_CONFIG_1_TX_TMR_MODE |
5072 BNX2_HC_SB_CONFIG_1_RX_TMR_MODE |
5073 BNX2_HC_SB_CONFIG_1_ONE_SHOT);
5074
5075 BNX2_WR(bp, base + BNX2_HC_TX_QUICK_CONS_TRIP_OFF,
5076 (bp->tx_quick_cons_trip_int << 16) |
5077 bp->tx_quick_cons_trip);
5078
5079 BNX2_WR(bp, base + BNX2_HC_TX_TICKS_OFF,
5080 (bp->tx_ticks_int << 16) | bp->tx_ticks);
5081
5082 BNX2_WR(bp, base + BNX2_HC_RX_QUICK_CONS_TRIP_OFF,
5083 (bp->rx_quick_cons_trip_int << 16) |
5084 bp->rx_quick_cons_trip);
5085
5086 BNX2_WR(bp, base + BNX2_HC_RX_TICKS_OFF,
5087 (bp->rx_ticks_int << 16) | bp->rx_ticks);
5088 }
5089
5090 /* Clear internal stats counters. */
5091 BNX2_WR(bp, BNX2_HC_COMMAND, BNX2_HC_COMMAND_CLR_STAT_NOW);
5092
5093 BNX2_WR(bp, BNX2_HC_ATTN_BITS_ENABLE, STATUS_ATTN_EVENTS);
5094
5095 /* Initialize the receive filter. */
5096 bnx2_set_rx_mode(bp->dev);
5097
5098 if (BNX2_CHIP(bp) == BNX2_CHIP_5709) {
5099 val = BNX2_RD(bp, BNX2_MISC_NEW_CORE_CTL);
5100 val |= BNX2_MISC_NEW_CORE_CTL_DMA_ENABLE;
5101 BNX2_WR(bp, BNX2_MISC_NEW_CORE_CTL, val);
5102 }
5103 rc = bnx2_fw_sync(bp, BNX2_DRV_MSG_DATA_WAIT2 | BNX2_DRV_MSG_CODE_RESET,
5104 1, 0);
5105
5106 BNX2_WR(bp, BNX2_MISC_ENABLE_SET_BITS, BNX2_MISC_ENABLE_DEFAULT);
5107 BNX2_RD(bp, BNX2_MISC_ENABLE_SET_BITS);
5108
5109 udelay(20);
5110
5111 bp->hc_cmd = BNX2_RD(bp, BNX2_HC_COMMAND);
5112
5113 return rc;
5114 }
5115
5116 static void
5117 bnx2_clear_ring_states(struct bnx2 *bp)
5118 {
5119 struct bnx2_napi *bnapi;
5120 struct bnx2_tx_ring_info *txr;
5121 struct bnx2_rx_ring_info *rxr;
5122 int i;
5123
5124 for (i = 0; i < BNX2_MAX_MSIX_VEC; i++) {
5125 bnapi = &bp->bnx2_napi[i];
5126 txr = &bnapi->tx_ring;
5127 rxr = &bnapi->rx_ring;
5128
5129 txr->tx_cons = 0;
5130 txr->hw_tx_cons = 0;
5131 rxr->rx_prod_bseq = 0;
5132 rxr->rx_prod = 0;
5133 rxr->rx_cons = 0;
5134 rxr->rx_pg_prod = 0;
5135 rxr->rx_pg_cons = 0;
5136 }
5137 }
5138
5139 static void
5140 bnx2_init_tx_context(struct bnx2 *bp, u32 cid, struct bnx2_tx_ring_info *txr)
5141 {
5142 u32 val, offset0, offset1, offset2, offset3;
5143 u32 cid_addr = GET_CID_ADDR(cid);
5144
5145 if (BNX2_CHIP(bp) == BNX2_CHIP_5709) {
5146 offset0 = BNX2_L2CTX_TYPE_XI;
5147 offset1 = BNX2_L2CTX_CMD_TYPE_XI;
5148 offset2 = BNX2_L2CTX_TBDR_BHADDR_HI_XI;
5149 offset3 = BNX2_L2CTX_TBDR_BHADDR_LO_XI;
5150 } else {
5151 offset0 = BNX2_L2CTX_TYPE;
5152 offset1 = BNX2_L2CTX_CMD_TYPE;
5153 offset2 = BNX2_L2CTX_TBDR_BHADDR_HI;
5154 offset3 = BNX2_L2CTX_TBDR_BHADDR_LO;
5155 }
5156 val = BNX2_L2CTX_TYPE_TYPE_L2 | BNX2_L2CTX_TYPE_SIZE_L2;
5157 bnx2_ctx_wr(bp, cid_addr, offset0, val);
5158
5159 val = BNX2_L2CTX_CMD_TYPE_TYPE_L2 | (8 << 16);
5160 bnx2_ctx_wr(bp, cid_addr, offset1, val);
5161
5162 val = (u64) txr->tx_desc_mapping >> 32;
5163 bnx2_ctx_wr(bp, cid_addr, offset2, val);
5164
5165 val = (u64) txr->tx_desc_mapping & 0xffffffff;
5166 bnx2_ctx_wr(bp, cid_addr, offset3, val);
5167 }
5168
5169 static void
5170 bnx2_init_tx_ring(struct bnx2 *bp, int ring_num)
5171 {
5172 struct bnx2_tx_bd *txbd;
5173 u32 cid = TX_CID;
5174 struct bnx2_napi *bnapi;
5175 struct bnx2_tx_ring_info *txr;
5176
5177 bnapi = &bp->bnx2_napi[ring_num];
5178 txr = &bnapi->tx_ring;
5179
5180 if (ring_num == 0)
5181 cid = TX_CID;
5182 else
5183 cid = TX_TSS_CID + ring_num - 1;
5184
5185 bp->tx_wake_thresh = bp->tx_ring_size / 2;
5186
5187 txbd = &txr->tx_desc_ring[BNX2_MAX_TX_DESC_CNT];
5188
5189 txbd->tx_bd_haddr_hi = (u64) txr->tx_desc_mapping >> 32;
5190 txbd->tx_bd_haddr_lo = (u64) txr->tx_desc_mapping & 0xffffffff;
5191
5192 txr->tx_prod = 0;
5193 txr->tx_prod_bseq = 0;
5194
5195 txr->tx_bidx_addr = MB_GET_CID_ADDR(cid) + BNX2_L2CTX_TX_HOST_BIDX;
5196 txr->tx_bseq_addr = MB_GET_CID_ADDR(cid) + BNX2_L2CTX_TX_HOST_BSEQ;
5197
5198 bnx2_init_tx_context(bp, cid, txr);
5199 }
5200
5201 static void
5202 bnx2_init_rxbd_rings(struct bnx2_rx_bd *rx_ring[], dma_addr_t dma[],
5203 u32 buf_size, int num_rings)
5204 {
5205 int i;
5206 struct bnx2_rx_bd *rxbd;
5207
5208 for (i = 0; i < num_rings; i++) {
5209 int j;
5210
5211 rxbd = &rx_ring[i][0];
5212 for (j = 0; j < BNX2_MAX_RX_DESC_CNT; j++, rxbd++) {
5213 rxbd->rx_bd_len = buf_size;
5214 rxbd->rx_bd_flags = RX_BD_FLAGS_START | RX_BD_FLAGS_END;
5215 }
5216 if (i == (num_rings - 1))
5217 j = 0;
5218 else
5219 j = i + 1;
5220 rxbd->rx_bd_haddr_hi = (u64) dma[j] >> 32;
5221 rxbd->rx_bd_haddr_lo = (u64) dma[j] & 0xffffffff;
5222 }
5223 }
5224
5225 static void
5226 bnx2_init_rx_ring(struct bnx2 *bp, int ring_num)
5227 {
5228 int i;
5229 u16 prod, ring_prod;
5230 u32 cid, rx_cid_addr, val;
5231 struct bnx2_napi *bnapi = &bp->bnx2_napi[ring_num];
5232 struct bnx2_rx_ring_info *rxr = &bnapi->rx_ring;
5233
5234 if (ring_num == 0)
5235 cid = RX_CID;
5236 else
5237 cid = RX_RSS_CID + ring_num - 1;
5238
5239 rx_cid_addr = GET_CID_ADDR(cid);
5240
5241 bnx2_init_rxbd_rings(rxr->rx_desc_ring, rxr->rx_desc_mapping,
5242 bp->rx_buf_use_size, bp->rx_max_ring);
5243
5244 bnx2_init_rx_context(bp, cid);
5245
5246 if (BNX2_CHIP(bp) == BNX2_CHIP_5709) {
5247 val = BNX2_RD(bp, BNX2_MQ_MAP_L2_5);
5248 BNX2_WR(bp, BNX2_MQ_MAP_L2_5, val | BNX2_MQ_MAP_L2_5_ARM);
5249 }
5250
5251 bnx2_ctx_wr(bp, rx_cid_addr, BNX2_L2CTX_PG_BUF_SIZE, 0);
5252 if (bp->rx_pg_ring_size) {
5253 bnx2_init_rxbd_rings(rxr->rx_pg_desc_ring,
5254 rxr->rx_pg_desc_mapping,
5255 PAGE_SIZE, bp->rx_max_pg_ring);
5256 val = (bp->rx_buf_use_size << 16) | PAGE_SIZE;
5257 bnx2_ctx_wr(bp, rx_cid_addr, BNX2_L2CTX_PG_BUF_SIZE, val);
5258 bnx2_ctx_wr(bp, rx_cid_addr, BNX2_L2CTX_RBDC_KEY,
5259 BNX2_L2CTX_RBDC_JUMBO_KEY - ring_num);
5260
5261 val = (u64) rxr->rx_pg_desc_mapping[0] >> 32;
5262 bnx2_ctx_wr(bp, rx_cid_addr, BNX2_L2CTX_NX_PG_BDHADDR_HI, val);
5263
5264 val = (u64) rxr->rx_pg_desc_mapping[0] & 0xffffffff;
5265 bnx2_ctx_wr(bp, rx_cid_addr, BNX2_L2CTX_NX_PG_BDHADDR_LO, val);
5266
5267 if (BNX2_CHIP(bp) == BNX2_CHIP_5709)
5268 BNX2_WR(bp, BNX2_MQ_MAP_L2_3, BNX2_MQ_MAP_L2_3_DEFAULT);
5269 }
5270
5271 val = (u64) rxr->rx_desc_mapping[0] >> 32;
5272 bnx2_ctx_wr(bp, rx_cid_addr, BNX2_L2CTX_NX_BDHADDR_HI, val);
5273
5274 val = (u64) rxr->rx_desc_mapping[0] & 0xffffffff;
5275 bnx2_ctx_wr(bp, rx_cid_addr, BNX2_L2CTX_NX_BDHADDR_LO, val);
5276
5277 ring_prod = prod = rxr->rx_pg_prod;
5278 for (i = 0; i < bp->rx_pg_ring_size; i++) {
5279 if (bnx2_alloc_rx_page(bp, rxr, ring_prod, GFP_KERNEL) < 0) {
5280 netdev_warn(bp->dev, "init'ed rx page ring %d with %d/%d pages only\n",
5281 ring_num, i, bp->rx_pg_ring_size);
5282 break;
5283 }
5284 prod = BNX2_NEXT_RX_BD(prod);
5285 ring_prod = BNX2_RX_PG_RING_IDX(prod);
5286 }
5287 rxr->rx_pg_prod = prod;
5288
5289 ring_prod = prod = rxr->rx_prod;
5290 for (i = 0; i < bp->rx_ring_size; i++) {
5291 if (bnx2_alloc_rx_data(bp, rxr, ring_prod, GFP_KERNEL) < 0) {
5292 netdev_warn(bp->dev, "init'ed rx ring %d with %d/%d skbs only\n",
5293 ring_num, i, bp->rx_ring_size);
5294 break;
5295 }
5296 prod = BNX2_NEXT_RX_BD(prod);
5297 ring_prod = BNX2_RX_RING_IDX(prod);
5298 }
5299 rxr->rx_prod = prod;
5300
5301 rxr->rx_bidx_addr = MB_GET_CID_ADDR(cid) + BNX2_L2CTX_HOST_BDIDX;
5302 rxr->rx_bseq_addr = MB_GET_CID_ADDR(cid) + BNX2_L2CTX_HOST_BSEQ;
5303 rxr->rx_pg_bidx_addr = MB_GET_CID_ADDR(cid) + BNX2_L2CTX_HOST_PG_BDIDX;
5304
5305 BNX2_WR16(bp, rxr->rx_pg_bidx_addr, rxr->rx_pg_prod);
5306 BNX2_WR16(bp, rxr->rx_bidx_addr, prod);
5307
5308 BNX2_WR(bp, rxr->rx_bseq_addr, rxr->rx_prod_bseq);
5309 }
5310
5311 static void
5312 bnx2_init_all_rings(struct bnx2 *bp)
5313 {
5314 int i;
5315 u32 val;
5316
5317 bnx2_clear_ring_states(bp);
5318
5319 BNX2_WR(bp, BNX2_TSCH_TSS_CFG, 0);
5320 for (i = 0; i < bp->num_tx_rings; i++)
5321 bnx2_init_tx_ring(bp, i);
5322
5323 if (bp->num_tx_rings > 1)
5324 BNX2_WR(bp, BNX2_TSCH_TSS_CFG, ((bp->num_tx_rings - 1) << 24) |
5325 (TX_TSS_CID << 7));
5326
5327 BNX2_WR(bp, BNX2_RLUP_RSS_CONFIG, 0);
5328 bnx2_reg_wr_ind(bp, BNX2_RXP_SCRATCH_RSS_TBL_SZ, 0);
5329
5330 for (i = 0; i < bp->num_rx_rings; i++)
5331 bnx2_init_rx_ring(bp, i);
5332
5333 if (bp->num_rx_rings > 1) {
5334 u32 tbl_32 = 0;
5335
5336 for (i = 0; i < BNX2_RXP_SCRATCH_RSS_TBL_MAX_ENTRIES; i++) {
5337 int shift = (i % 8) << 2;
5338
5339 tbl_32 |= (i % (bp->num_rx_rings - 1)) << shift;
5340 if ((i % 8) == 7) {
5341 BNX2_WR(bp, BNX2_RLUP_RSS_DATA, tbl_32);
5342 BNX2_WR(bp, BNX2_RLUP_RSS_COMMAND, (i >> 3) |
5343 BNX2_RLUP_RSS_COMMAND_RSS_WRITE_MASK |
5344 BNX2_RLUP_RSS_COMMAND_WRITE |
5345 BNX2_RLUP_RSS_COMMAND_HASH_MASK);
5346 tbl_32 = 0;
5347 }
5348 }
5349
5350 val = BNX2_RLUP_RSS_CONFIG_IPV4_RSS_TYPE_ALL_XI |
5351 BNX2_RLUP_RSS_CONFIG_IPV6_RSS_TYPE_ALL_XI;
5352
5353 BNX2_WR(bp, BNX2_RLUP_RSS_CONFIG, val);
5354
5355 }
5356 }
5357
5358 static u32 bnx2_find_max_ring(u32 ring_size, u32 max_size)
5359 {
5360 u32 max, num_rings = 1;
5361
5362 while (ring_size > BNX2_MAX_RX_DESC_CNT) {
5363 ring_size -= BNX2_MAX_RX_DESC_CNT;
5364 num_rings++;
5365 }
5366 /* round to next power of 2 */
5367 max = max_size;
5368 while ((max & num_rings) == 0)
5369 max >>= 1;
5370
5371 if (num_rings != max)
5372 max <<= 1;
5373
5374 return max;
5375 }
5376
5377 static void
5378 bnx2_set_rx_ring_size(struct bnx2 *bp, u32 size)
5379 {
5380 u32 rx_size, rx_space, jumbo_size;
5381
5382 /* 8 for CRC and VLAN */
5383 rx_size = bp->dev->mtu + ETH_HLEN + BNX2_RX_OFFSET + 8;
5384
5385 rx_space = SKB_DATA_ALIGN(rx_size + BNX2_RX_ALIGN) + NET_SKB_PAD +
5386 SKB_DATA_ALIGN(sizeof(struct skb_shared_info));
5387
5388 bp->rx_copy_thresh = BNX2_RX_COPY_THRESH;
5389 bp->rx_pg_ring_size = 0;
5390 bp->rx_max_pg_ring = 0;
5391 bp->rx_max_pg_ring_idx = 0;
5392 if ((rx_space > PAGE_SIZE) && !(bp->flags & BNX2_FLAG_JUMBO_BROKEN)) {
5393 int pages = PAGE_ALIGN(bp->dev->mtu - 40) >> PAGE_SHIFT;
5394
5395 jumbo_size = size * pages;
5396 if (jumbo_size > BNX2_MAX_TOTAL_RX_PG_DESC_CNT)
5397 jumbo_size = BNX2_MAX_TOTAL_RX_PG_DESC_CNT;
5398
5399 bp->rx_pg_ring_size = jumbo_size;
5400 bp->rx_max_pg_ring = bnx2_find_max_ring(jumbo_size,
5401 BNX2_MAX_RX_PG_RINGS);
5402 bp->rx_max_pg_ring_idx =
5403 (bp->rx_max_pg_ring * BNX2_RX_DESC_CNT) - 1;
5404 rx_size = BNX2_RX_COPY_THRESH + BNX2_RX_OFFSET;
5405 bp->rx_copy_thresh = 0;
5406 }
5407
5408 bp->rx_buf_use_size = rx_size;
5409 /* hw alignment + build_skb() overhead*/
5410 bp->rx_buf_size = SKB_DATA_ALIGN(bp->rx_buf_use_size + BNX2_RX_ALIGN) +
5411 NET_SKB_PAD + SKB_DATA_ALIGN(sizeof(struct skb_shared_info));
5412 bp->rx_jumbo_thresh = rx_size - BNX2_RX_OFFSET;
5413 bp->rx_ring_size = size;
5414 bp->rx_max_ring = bnx2_find_max_ring(size, BNX2_MAX_RX_RINGS);
5415 bp->rx_max_ring_idx = (bp->rx_max_ring * BNX2_RX_DESC_CNT) - 1;
5416 }
5417
5418 static void
5419 bnx2_free_tx_skbs(struct bnx2 *bp)
5420 {
5421 int i;
5422
5423 for (i = 0; i < bp->num_tx_rings; i++) {
5424 struct bnx2_napi *bnapi = &bp->bnx2_napi[i];
5425 struct bnx2_tx_ring_info *txr = &bnapi->tx_ring;
5426 int j;
5427
5428 if (txr->tx_buf_ring == NULL)
5429 continue;
5430
5431 for (j = 0; j < BNX2_TX_DESC_CNT; ) {
5432 struct bnx2_sw_tx_bd *tx_buf = &txr->tx_buf_ring[j];
5433 struct sk_buff *skb = tx_buf->skb;
5434 int k, last;
5435
5436 if (skb == NULL) {
5437 j = BNX2_NEXT_TX_BD(j);
5438 continue;
5439 }
5440
5441 dma_unmap_single(&bp->pdev->dev,
5442 dma_unmap_addr(tx_buf, mapping),
5443 skb_headlen(skb),
5444 PCI_DMA_TODEVICE);
5445
5446 tx_buf->skb = NULL;
5447
5448 last = tx_buf->nr_frags;
5449 j = BNX2_NEXT_TX_BD(j);
5450 for (k = 0; k < last; k++, j = BNX2_NEXT_TX_BD(j)) {
5451 tx_buf = &txr->tx_buf_ring[BNX2_TX_RING_IDX(j)];
5452 dma_unmap_page(&bp->pdev->dev,
5453 dma_unmap_addr(tx_buf, mapping),
5454 skb_frag_size(&skb_shinfo(skb)->frags[k]),
5455 PCI_DMA_TODEVICE);
5456 }
5457 dev_kfree_skb(skb);
5458 }
5459 netdev_tx_reset_queue(netdev_get_tx_queue(bp->dev, i));
5460 }
5461 }
5462
5463 static void
5464 bnx2_free_rx_skbs(struct bnx2 *bp)
5465 {
5466 int i;
5467
5468 for (i = 0; i < bp->num_rx_rings; i++) {
5469 struct bnx2_napi *bnapi = &bp->bnx2_napi[i];
5470 struct bnx2_rx_ring_info *rxr = &bnapi->rx_ring;
5471 int j;
5472
5473 if (rxr->rx_buf_ring == NULL)
5474 return;
5475
5476 for (j = 0; j < bp->rx_max_ring_idx; j++) {
5477 struct bnx2_sw_bd *rx_buf = &rxr->rx_buf_ring[j];
5478 u8 *data = rx_buf->data;
5479
5480 if (data == NULL)
5481 continue;
5482
5483 dma_unmap_single(&bp->pdev->dev,
5484 dma_unmap_addr(rx_buf, mapping),
5485 bp->rx_buf_use_size,
5486 PCI_DMA_FROMDEVICE);
5487
5488 rx_buf->data = NULL;
5489
5490 kfree(data);
5491 }
5492 for (j = 0; j < bp->rx_max_pg_ring_idx; j++)
5493 bnx2_free_rx_page(bp, rxr, j);
5494 }
5495 }
5496
5497 static void
5498 bnx2_free_skbs(struct bnx2 *bp)
5499 {
5500 bnx2_free_tx_skbs(bp);
5501 bnx2_free_rx_skbs(bp);
5502 }
5503
5504 static int
5505 bnx2_reset_nic(struct bnx2 *bp, u32 reset_code)
5506 {
5507 int rc;
5508
5509 rc = bnx2_reset_chip(bp, reset_code);
5510 bnx2_free_skbs(bp);
5511 if (rc)
5512 return rc;
5513
5514 if ((rc = bnx2_init_chip(bp)) != 0)
5515 return rc;
5516
5517 bnx2_init_all_rings(bp);
5518 return 0;
5519 }
5520
5521 static int
5522 bnx2_init_nic(struct bnx2 *bp, int reset_phy)
5523 {
5524 int rc;
5525
5526 if ((rc = bnx2_reset_nic(bp, BNX2_DRV_MSG_CODE_RESET)) != 0)
5527 return rc;
5528
5529 spin_lock_bh(&bp->phy_lock);
5530 bnx2_init_phy(bp, reset_phy);
5531 bnx2_set_link(bp);
5532 if (bp->phy_flags & BNX2_PHY_FLAG_REMOTE_PHY_CAP)
5533 bnx2_remote_phy_event(bp);
5534 spin_unlock_bh(&bp->phy_lock);
5535 return 0;
5536 }
5537
5538 static int
5539 bnx2_shutdown_chip(struct bnx2 *bp)
5540 {
5541 u32 reset_code;
5542
5543 if (bp->flags & BNX2_FLAG_NO_WOL)
5544 reset_code = BNX2_DRV_MSG_CODE_UNLOAD_LNK_DN;
5545 else if (bp->wol)
5546 reset_code = BNX2_DRV_MSG_CODE_SUSPEND_WOL;
5547 else
5548 reset_code = BNX2_DRV_MSG_CODE_SUSPEND_NO_WOL;
5549
5550 return bnx2_reset_chip(bp, reset_code);
5551 }
5552
5553 static int
5554 bnx2_test_registers(struct bnx2 *bp)
5555 {
5556 int ret;
5557 int i, is_5709;
5558 static const struct {
5559 u16 offset;
5560 u16 flags;
5561 #define BNX2_FL_NOT_5709 1
5562 u32 rw_mask;
5563 u32 ro_mask;
5564 } reg_tbl[] = {
5565 { 0x006c, 0, 0x00000000, 0x0000003f },
5566 { 0x0090, 0, 0xffffffff, 0x00000000 },
5567 { 0x0094, 0, 0x00000000, 0x00000000 },
5568
5569 { 0x0404, BNX2_FL_NOT_5709, 0x00003f00, 0x00000000 },
5570 { 0x0418, BNX2_FL_NOT_5709, 0x00000000, 0xffffffff },
5571 { 0x041c, BNX2_FL_NOT_5709, 0x00000000, 0xffffffff },
5572 { 0x0420, BNX2_FL_NOT_5709, 0x00000000, 0x80ffffff },
5573 { 0x0424, BNX2_FL_NOT_5709, 0x00000000, 0x00000000 },
5574 { 0x0428, BNX2_FL_NOT_5709, 0x00000000, 0x00000001 },
5575 { 0x0450, BNX2_FL_NOT_5709, 0x00000000, 0x0000ffff },
5576 { 0x0454, BNX2_FL_NOT_5709, 0x00000000, 0xffffffff },
5577 { 0x0458, BNX2_FL_NOT_5709, 0x00000000, 0xffffffff },
5578
5579 { 0x0808, BNX2_FL_NOT_5709, 0x00000000, 0xffffffff },
5580 { 0x0854, BNX2_FL_NOT_5709, 0x00000000, 0xffffffff },
5581 { 0x0868, BNX2_FL_NOT_5709, 0x00000000, 0x77777777 },
5582 { 0x086c, BNX2_FL_NOT_5709, 0x00000000, 0x77777777 },
5583 { 0x0870, BNX2_FL_NOT_5709, 0x00000000, 0x77777777 },
5584 { 0x0874, BNX2_FL_NOT_5709, 0x00000000, 0x77777777 },
5585
5586 { 0x0c00, BNX2_FL_NOT_5709, 0x00000000, 0x00000001 },
5587 { 0x0c04, BNX2_FL_NOT_5709, 0x00000000, 0x03ff0001 },
5588 { 0x0c08, BNX2_FL_NOT_5709, 0x0f0ff073, 0x00000000 },
5589
5590 { 0x1000, 0, 0x00000000, 0x00000001 },
5591 { 0x1004, BNX2_FL_NOT_5709, 0x00000000, 0x000f0001 },
5592
5593 { 0x1408, 0, 0x01c00800, 0x00000000 },
5594 { 0x149c, 0, 0x8000ffff, 0x00000000 },
5595 { 0x14a8, 0, 0x00000000, 0x000001ff },
5596 { 0x14ac, 0, 0x0fffffff, 0x10000000 },
5597 { 0x14b0, 0, 0x00000002, 0x00000001 },
5598 { 0x14b8, 0, 0x00000000, 0x00000000 },
5599 { 0x14c0, 0, 0x00000000, 0x00000009 },
5600 { 0x14c4, 0, 0x00003fff, 0x00000000 },
5601 { 0x14cc, 0, 0x00000000, 0x00000001 },
5602 { 0x14d0, 0, 0xffffffff, 0x00000000 },
5603
5604 { 0x1800, 0, 0x00000000, 0x00000001 },
5605 { 0x1804, 0, 0x00000000, 0x00000003 },
5606
5607 { 0x2800, 0, 0x00000000, 0x00000001 },
5608 { 0x2804, 0, 0x00000000, 0x00003f01 },
5609 { 0x2808, 0, 0x0f3f3f03, 0x00000000 },
5610 { 0x2810, 0, 0xffff0000, 0x00000000 },
5611 { 0x2814, 0, 0xffff0000, 0x00000000 },
5612 { 0x2818, 0, 0xffff0000, 0x00000000 },
5613 { 0x281c, 0, 0xffff0000, 0x00000000 },
5614 { 0x2834, 0, 0xffffffff, 0x00000000 },
5615 { 0x2840, 0, 0x00000000, 0xffffffff },
5616 { 0x2844, 0, 0x00000000, 0xffffffff },
5617 { 0x2848, 0, 0xffffffff, 0x00000000 },
5618 { 0x284c, 0, 0xf800f800, 0x07ff07ff },
5619
5620 { 0x2c00, 0, 0x00000000, 0x00000011 },
5621 { 0x2c04, 0, 0x00000000, 0x00030007 },
5622
5623 { 0x3c00, 0, 0x00000000, 0x00000001 },
5624 { 0x3c04, 0, 0x00000000, 0x00070000 },
5625 { 0x3c08, 0, 0x00007f71, 0x07f00000 },
5626 { 0x3c0c, 0, 0x1f3ffffc, 0x00000000 },
5627 { 0x3c10, 0, 0xffffffff, 0x00000000 },
5628 { 0x3c14, 0, 0x00000000, 0xffffffff },
5629 { 0x3c18, 0, 0x00000000, 0xffffffff },
5630 { 0x3c1c, 0, 0xfffff000, 0x00000000 },
5631 { 0x3c20, 0, 0xffffff00, 0x00000000 },
5632
5633 { 0x5004, 0, 0x00000000, 0x0000007f },
5634 { 0x5008, 0, 0x0f0007ff, 0x00000000 },
5635
5636 { 0x5c00, 0, 0x00000000, 0x00000001 },
5637 { 0x5c04, 0, 0x00000000, 0x0003000f },
5638 { 0x5c08, 0, 0x00000003, 0x00000000 },
5639 { 0x5c0c, 0, 0x0000fff8, 0x00000000 },
5640 { 0x5c10, 0, 0x00000000, 0xffffffff },
5641 { 0x5c80, 0, 0x00000000, 0x0f7113f1 },
5642 { 0x5c84, 0, 0x00000000, 0x0000f333 },
5643 { 0x5c88, 0, 0x00000000, 0x00077373 },
5644 { 0x5c8c, 0, 0x00000000, 0x0007f737 },
5645
5646 { 0x6808, 0, 0x0000ff7f, 0x00000000 },
5647 { 0x680c, 0, 0xffffffff, 0x00000000 },
5648 { 0x6810, 0, 0xffffffff, 0x00000000 },
5649 { 0x6814, 0, 0xffffffff, 0x00000000 },
5650 { 0x6818, 0, 0xffffffff, 0x00000000 },
5651 { 0x681c, 0, 0xffffffff, 0x00000000 },
5652 { 0x6820, 0, 0x00ff00ff, 0x00000000 },
5653 { 0x6824, 0, 0x00ff00ff, 0x00000000 },
5654 { 0x6828, 0, 0x00ff00ff, 0x00000000 },
5655 { 0x682c, 0, 0x03ff03ff, 0x00000000 },
5656 { 0x6830, 0, 0x03ff03ff, 0x00000000 },
5657 { 0x6834, 0, 0x03ff03ff, 0x00000000 },
5658 { 0x6838, 0, 0x03ff03ff, 0x00000000 },
5659 { 0x683c, 0, 0x0000ffff, 0x00000000 },
5660 { 0x6840, 0, 0x00000ff0, 0x00000000 },
5661 { 0x6844, 0, 0x00ffff00, 0x00000000 },
5662 { 0x684c, 0, 0xffffffff, 0x00000000 },
5663 { 0x6850, 0, 0x7f7f7f7f, 0x00000000 },
5664 { 0x6854, 0, 0x7f7f7f7f, 0x00000000 },
5665 { 0x6858, 0, 0x7f7f7f7f, 0x00000000 },
5666 { 0x685c, 0, 0x7f7f7f7f, 0x00000000 },
5667 { 0x6908, 0, 0x00000000, 0x0001ff0f },
5668 { 0x690c, 0, 0x00000000, 0x0ffe00f0 },
5669
5670 { 0xffff, 0, 0x00000000, 0x00000000 },
5671 };
5672
5673 ret = 0;
5674 is_5709 = 0;
5675 if (BNX2_CHIP(bp) == BNX2_CHIP_5709)
5676 is_5709 = 1;
5677
5678 for (i = 0; reg_tbl[i].offset != 0xffff; i++) {
5679 u32 offset, rw_mask, ro_mask, save_val, val;
5680 u16 flags = reg_tbl[i].flags;
5681
5682 if (is_5709 && (flags & BNX2_FL_NOT_5709))
5683 continue;
5684
5685 offset = (u32) reg_tbl[i].offset;
5686 rw_mask = reg_tbl[i].rw_mask;
5687 ro_mask = reg_tbl[i].ro_mask;
5688
5689 save_val = readl(bp->regview + offset);
5690
5691 writel(0, bp->regview + offset);
5692
5693 val = readl(bp->regview + offset);
5694 if ((val & rw_mask) != 0) {
5695 goto reg_test_err;
5696 }
5697
5698 if ((val & ro_mask) != (save_val & ro_mask)) {
5699 goto reg_test_err;
5700 }
5701
5702 writel(0xffffffff, bp->regview + offset);
5703
5704 val = readl(bp->regview + offset);
5705 if ((val & rw_mask) != rw_mask) {
5706 goto reg_test_err;
5707 }
5708
5709 if ((val & ro_mask) != (save_val & ro_mask)) {
5710 goto reg_test_err;
5711 }
5712
5713 writel(save_val, bp->regview + offset);
5714 continue;
5715
5716 reg_test_err:
5717 writel(save_val, bp->regview + offset);
5718 ret = -ENODEV;
5719 break;
5720 }
5721 return ret;
5722 }
5723
5724 static int
5725 bnx2_do_mem_test(struct bnx2 *bp, u32 start, u32 size)
5726 {
5727 static const u32 test_pattern[] = { 0x00000000, 0xffffffff, 0x55555555,
5728 0xaaaaaaaa , 0xaa55aa55, 0x55aa55aa };
5729 int i;
5730
5731 for (i = 0; i < sizeof(test_pattern) / 4; i++) {
5732 u32 offset;
5733
5734 for (offset = 0; offset < size; offset += 4) {
5735
5736 bnx2_reg_wr_ind(bp, start + offset, test_pattern[i]);
5737
5738 if (bnx2_reg_rd_ind(bp, start + offset) !=
5739 test_pattern[i]) {
5740 return -ENODEV;
5741 }
5742 }
5743 }
5744 return 0;
5745 }
5746
5747 static int
5748 bnx2_test_memory(struct bnx2 *bp)
5749 {
5750 int ret = 0;
5751 int i;
5752 static struct mem_entry {
5753 u32 offset;
5754 u32 len;
5755 } mem_tbl_5706[] = {
5756 { 0x60000, 0x4000 },
5757 { 0xa0000, 0x3000 },
5758 { 0xe0000, 0x4000 },
5759 { 0x120000, 0x4000 },
5760 { 0x1a0000, 0x4000 },
5761 { 0x160000, 0x4000 },
5762 { 0xffffffff, 0 },
5763 },
5764 mem_tbl_5709[] = {
5765 { 0x60000, 0x4000 },
5766 { 0xa0000, 0x3000 },
5767 { 0xe0000, 0x4000 },
5768 { 0x120000, 0x4000 },
5769 { 0x1a0000, 0x4000 },
5770 { 0xffffffff, 0 },
5771 };
5772 struct mem_entry *mem_tbl;
5773
5774 if (BNX2_CHIP(bp) == BNX2_CHIP_5709)
5775 mem_tbl = mem_tbl_5709;
5776 else
5777 mem_tbl = mem_tbl_5706;
5778
5779 for (i = 0; mem_tbl[i].offset != 0xffffffff; i++) {
5780 if ((ret = bnx2_do_mem_test(bp, mem_tbl[i].offset,
5781 mem_tbl[i].len)) != 0) {
5782 return ret;
5783 }
5784 }
5785
5786 return ret;
5787 }
5788
5789 #define BNX2_MAC_LOOPBACK 0
5790 #define BNX2_PHY_LOOPBACK 1
5791
5792 static int
5793 bnx2_run_loopback(struct bnx2 *bp, int loopback_mode)
5794 {
5795 unsigned int pkt_size, num_pkts, i;
5796 struct sk_buff *skb;
5797 u8 *data;
5798 unsigned char *packet;
5799 u16 rx_start_idx, rx_idx;
5800 dma_addr_t map;
5801 struct bnx2_tx_bd *txbd;
5802 struct bnx2_sw_bd *rx_buf;
5803 struct l2_fhdr *rx_hdr;
5804 int ret = -ENODEV;
5805 struct bnx2_napi *bnapi = &bp->bnx2_napi[0], *tx_napi;
5806 struct bnx2_tx_ring_info *txr = &bnapi->tx_ring;
5807 struct bnx2_rx_ring_info *rxr = &bnapi->rx_ring;
5808
5809 tx_napi = bnapi;
5810
5811 txr = &tx_napi->tx_ring;
5812 rxr = &bnapi->rx_ring;
5813 if (loopback_mode == BNX2_MAC_LOOPBACK) {
5814 bp->loopback = MAC_LOOPBACK;
5815 bnx2_set_mac_loopback(bp);
5816 }
5817 else if (loopback_mode == BNX2_PHY_LOOPBACK) {
5818 if (bp->phy_flags & BNX2_PHY_FLAG_REMOTE_PHY_CAP)
5819 return 0;
5820
5821 bp->loopback = PHY_LOOPBACK;
5822 bnx2_set_phy_loopback(bp);
5823 }
5824 else
5825 return -EINVAL;
5826
5827 pkt_size = min(bp->dev->mtu + ETH_HLEN, bp->rx_jumbo_thresh - 4);
5828 skb = netdev_alloc_skb(bp->dev, pkt_size);
5829 if (!skb)
5830 return -ENOMEM;
5831 packet = skb_put(skb, pkt_size);
5832 memcpy(packet, bp->dev->dev_addr, ETH_ALEN);
5833 memset(packet + ETH_ALEN, 0x0, 8);
5834 for (i = 14; i < pkt_size; i++)
5835 packet[i] = (unsigned char) (i & 0xff);
5836
5837 map = dma_map_single(&bp->pdev->dev, skb->data, pkt_size,
5838 PCI_DMA_TODEVICE);
5839 if (dma_mapping_error(&bp->pdev->dev, map)) {
5840 dev_kfree_skb(skb);
5841 return -EIO;
5842 }
5843
5844 BNX2_WR(bp, BNX2_HC_COMMAND,
5845 bp->hc_cmd | BNX2_HC_COMMAND_COAL_NOW_WO_INT);
5846
5847 BNX2_RD(bp, BNX2_HC_COMMAND);
5848
5849 udelay(5);
5850 rx_start_idx = bnx2_get_hw_rx_cons(bnapi);
5851
5852 num_pkts = 0;
5853
5854 txbd = &txr->tx_desc_ring[BNX2_TX_RING_IDX(txr->tx_prod)];
5855
5856 txbd->tx_bd_haddr_hi = (u64) map >> 32;
5857 txbd->tx_bd_haddr_lo = (u64) map & 0xffffffff;
5858 txbd->tx_bd_mss_nbytes = pkt_size;
5859 txbd->tx_bd_vlan_tag_flags = TX_BD_FLAGS_START | TX_BD_FLAGS_END;
5860
5861 num_pkts++;
5862 txr->tx_prod = BNX2_NEXT_TX_BD(txr->tx_prod);
5863 txr->tx_prod_bseq += pkt_size;
5864
5865 BNX2_WR16(bp, txr->tx_bidx_addr, txr->tx_prod);
5866 BNX2_WR(bp, txr->tx_bseq_addr, txr->tx_prod_bseq);
5867
5868 udelay(100);
5869
5870 BNX2_WR(bp, BNX2_HC_COMMAND,
5871 bp->hc_cmd | BNX2_HC_COMMAND_COAL_NOW_WO_INT);
5872
5873 BNX2_RD(bp, BNX2_HC_COMMAND);
5874
5875 udelay(5);
5876
5877 dma_unmap_single(&bp->pdev->dev, map, pkt_size, PCI_DMA_TODEVICE);
5878 dev_kfree_skb(skb);
5879
5880 if (bnx2_get_hw_tx_cons(tx_napi) != txr->tx_prod)
5881 goto loopback_test_done;
5882
5883 rx_idx = bnx2_get_hw_rx_cons(bnapi);
5884 if (rx_idx != rx_start_idx + num_pkts) {
5885 goto loopback_test_done;
5886 }
5887
5888 rx_buf = &rxr->rx_buf_ring[rx_start_idx];
5889 data = rx_buf->data;
5890
5891 rx_hdr = get_l2_fhdr(data);
5892 data = (u8 *)rx_hdr + BNX2_RX_OFFSET;
5893
5894 dma_sync_single_for_cpu(&bp->pdev->dev,
5895 dma_unmap_addr(rx_buf, mapping),
5896 bp->rx_buf_use_size, PCI_DMA_FROMDEVICE);
5897
5898 if (rx_hdr->l2_fhdr_status &
5899 (L2_FHDR_ERRORS_BAD_CRC |
5900 L2_FHDR_ERRORS_PHY_DECODE |
5901 L2_FHDR_ERRORS_ALIGNMENT |
5902 L2_FHDR_ERRORS_TOO_SHORT |
5903 L2_FHDR_ERRORS_GIANT_FRAME)) {
5904
5905 goto loopback_test_done;
5906 }
5907
5908 if ((rx_hdr->l2_fhdr_pkt_len - 4) != pkt_size) {
5909 goto loopback_test_done;
5910 }
5911
5912 for (i = 14; i < pkt_size; i++) {
5913 if (*(data + i) != (unsigned char) (i & 0xff)) {
5914 goto loopback_test_done;
5915 }
5916 }
5917
5918 ret = 0;
5919
5920 loopback_test_done:
5921 bp->loopback = 0;
5922 return ret;
5923 }
5924
5925 #define BNX2_MAC_LOOPBACK_FAILED 1
5926 #define BNX2_PHY_LOOPBACK_FAILED 2
5927 #define BNX2_LOOPBACK_FAILED (BNX2_MAC_LOOPBACK_FAILED | \
5928 BNX2_PHY_LOOPBACK_FAILED)
5929
5930 static int
5931 bnx2_test_loopback(struct bnx2 *bp)
5932 {
5933 int rc = 0;
5934
5935 if (!netif_running(bp->dev))
5936 return BNX2_LOOPBACK_FAILED;
5937
5938 bnx2_reset_nic(bp, BNX2_DRV_MSG_CODE_RESET);
5939 spin_lock_bh(&bp->phy_lock);
5940 bnx2_init_phy(bp, 1);
5941 spin_unlock_bh(&bp->phy_lock);
5942 if (bnx2_run_loopback(bp, BNX2_MAC_LOOPBACK))
5943 rc |= BNX2_MAC_LOOPBACK_FAILED;
5944 if (bnx2_run_loopback(bp, BNX2_PHY_LOOPBACK))
5945 rc |= BNX2_PHY_LOOPBACK_FAILED;
5946 return rc;
5947 }
5948
5949 #define NVRAM_SIZE 0x200
5950 #define CRC32_RESIDUAL 0xdebb20e3
5951
5952 static int
5953 bnx2_test_nvram(struct bnx2 *bp)
5954 {
5955 __be32 buf[NVRAM_SIZE / 4];
5956 u8 *data = (u8 *) buf;
5957 int rc = 0;
5958 u32 magic, csum;
5959
5960 if ((rc = bnx2_nvram_read(bp, 0, data, 4)) != 0)
5961 goto test_nvram_done;
5962
5963 magic = be32_to_cpu(buf[0]);
5964 if (magic != 0x669955aa) {
5965 rc = -ENODEV;
5966 goto test_nvram_done;
5967 }
5968
5969 if ((rc = bnx2_nvram_read(bp, 0x100, data, NVRAM_SIZE)) != 0)
5970 goto test_nvram_done;
5971
5972 csum = ether_crc_le(0x100, data);
5973 if (csum != CRC32_RESIDUAL) {
5974 rc = -ENODEV;
5975 goto test_nvram_done;
5976 }
5977
5978 csum = ether_crc_le(0x100, data + 0x100);
5979 if (csum != CRC32_RESIDUAL) {
5980 rc = -ENODEV;
5981 }
5982
5983 test_nvram_done:
5984 return rc;
5985 }
5986
5987 static int
5988 bnx2_test_link(struct bnx2 *bp)
5989 {
5990 u32 bmsr;
5991
5992 if (!netif_running(bp->dev))
5993 return -ENODEV;
5994
5995 if (bp->phy_flags & BNX2_PHY_FLAG_REMOTE_PHY_CAP) {
5996 if (bp->link_up)
5997 return 0;
5998 return -ENODEV;
5999 }
6000 spin_lock_bh(&bp->phy_lock);
6001 bnx2_enable_bmsr1(bp);
6002 bnx2_read_phy(bp, bp->mii_bmsr1, &bmsr);
6003 bnx2_read_phy(bp, bp->mii_bmsr1, &bmsr);
6004 bnx2_disable_bmsr1(bp);
6005 spin_unlock_bh(&bp->phy_lock);
6006
6007 if (bmsr & BMSR_LSTATUS) {
6008 return 0;
6009 }
6010 return -ENODEV;
6011 }
6012
6013 static int
6014 bnx2_test_intr(struct bnx2 *bp)
6015 {
6016 int i;
6017 u16 status_idx;
6018
6019 if (!netif_running(bp->dev))
6020 return -ENODEV;
6021
6022 status_idx = BNX2_RD(bp, BNX2_PCICFG_INT_ACK_CMD) & 0xffff;
6023
6024 /* This register is not touched during run-time. */
6025 BNX2_WR(bp, BNX2_HC_COMMAND, bp->hc_cmd | BNX2_HC_COMMAND_COAL_NOW);
6026 BNX2_RD(bp, BNX2_HC_COMMAND);
6027
6028 for (i = 0; i < 10; i++) {
6029 if ((BNX2_RD(bp, BNX2_PCICFG_INT_ACK_CMD) & 0xffff) !=
6030 status_idx) {
6031
6032 break;
6033 }
6034
6035 msleep_interruptible(10);
6036 }
6037 if (i < 10)
6038 return 0;
6039
6040 return -ENODEV;
6041 }
6042
6043 /* Determining link for parallel detection. */
6044 static int
6045 bnx2_5706_serdes_has_link(struct bnx2 *bp)
6046 {
6047 u32 mode_ctl, an_dbg, exp;
6048
6049 if (bp->phy_flags & BNX2_PHY_FLAG_NO_PARALLEL)
6050 return 0;
6051
6052 bnx2_write_phy(bp, MII_BNX2_MISC_SHADOW, MISC_SHDW_MODE_CTL);
6053 bnx2_read_phy(bp, MII_BNX2_MISC_SHADOW, &mode_ctl);
6054
6055 if (!(mode_ctl & MISC_SHDW_MODE_CTL_SIG_DET))
6056 return 0;
6057
6058 bnx2_write_phy(bp, MII_BNX2_MISC_SHADOW, MISC_SHDW_AN_DBG);
6059 bnx2_read_phy(bp, MII_BNX2_MISC_SHADOW, &an_dbg);
6060 bnx2_read_phy(bp, MII_BNX2_MISC_SHADOW, &an_dbg);
6061
6062 if (an_dbg & (MISC_SHDW_AN_DBG_NOSYNC | MISC_SHDW_AN_DBG_RUDI_INVALID))
6063 return 0;
6064
6065 bnx2_write_phy(bp, MII_BNX2_DSP_ADDRESS, MII_EXPAND_REG1);
6066 bnx2_read_phy(bp, MII_BNX2_DSP_RW_PORT, &exp);
6067 bnx2_read_phy(bp, MII_BNX2_DSP_RW_PORT, &exp);
6068
6069 if (exp & MII_EXPAND_REG1_RUDI_C) /* receiving CONFIG */
6070 return 0;
6071
6072 return 1;
6073 }
6074
6075 static void
6076 bnx2_5706_serdes_timer(struct bnx2 *bp)
6077 {
6078 int check_link = 1;
6079
6080 spin_lock(&bp->phy_lock);
6081 if (bp->serdes_an_pending) {
6082 bp->serdes_an_pending--;
6083 check_link = 0;
6084 } else if ((bp->link_up == 0) && (bp->autoneg & AUTONEG_SPEED)) {
6085 u32 bmcr;
6086
6087 bp->current_interval = BNX2_TIMER_INTERVAL;
6088
6089 bnx2_read_phy(bp, bp->mii_bmcr, &bmcr);
6090
6091 if (bmcr & BMCR_ANENABLE) {
6092 if (bnx2_5706_serdes_has_link(bp)) {
6093 bmcr &= ~BMCR_ANENABLE;
6094 bmcr |= BMCR_SPEED1000 | BMCR_FULLDPLX;
6095 bnx2_write_phy(bp, bp->mii_bmcr, bmcr);
6096 bp->phy_flags |= BNX2_PHY_FLAG_PARALLEL_DETECT;
6097 }
6098 }
6099 }
6100 else if ((bp->link_up) && (bp->autoneg & AUTONEG_SPEED) &&
6101 (bp->phy_flags & BNX2_PHY_FLAG_PARALLEL_DETECT)) {
6102 u32 phy2;
6103
6104 bnx2_write_phy(bp, 0x17, 0x0f01);
6105 bnx2_read_phy(bp, 0x15, &phy2);
6106 if (phy2 & 0x20) {
6107 u32 bmcr;
6108
6109 bnx2_read_phy(bp, bp->mii_bmcr, &bmcr);
6110 bmcr |= BMCR_ANENABLE;
6111 bnx2_write_phy(bp, bp->mii_bmcr, bmcr);
6112
6113 bp->phy_flags &= ~BNX2_PHY_FLAG_PARALLEL_DETECT;
6114 }
6115 } else
6116 bp->current_interval = BNX2_TIMER_INTERVAL;
6117
6118 if (check_link) {
6119 u32 val;
6120
6121 bnx2_write_phy(bp, MII_BNX2_MISC_SHADOW, MISC_SHDW_AN_DBG);
6122 bnx2_read_phy(bp, MII_BNX2_MISC_SHADOW, &val);
6123 bnx2_read_phy(bp, MII_BNX2_MISC_SHADOW, &val);
6124
6125 if (bp->link_up && (val & MISC_SHDW_AN_DBG_NOSYNC)) {
6126 if (!(bp->phy_flags & BNX2_PHY_FLAG_FORCED_DOWN)) {
6127 bnx2_5706s_force_link_dn(bp, 1);
6128 bp->phy_flags |= BNX2_PHY_FLAG_FORCED_DOWN;
6129 } else
6130 bnx2_set_link(bp);
6131 } else if (!bp->link_up && !(val & MISC_SHDW_AN_DBG_NOSYNC))
6132 bnx2_set_link(bp);
6133 }
6134 spin_unlock(&bp->phy_lock);
6135 }
6136
6137 static void
6138 bnx2_5708_serdes_timer(struct bnx2 *bp)
6139 {
6140 if (bp->phy_flags & BNX2_PHY_FLAG_REMOTE_PHY_CAP)
6141 return;
6142
6143 if ((bp->phy_flags & BNX2_PHY_FLAG_2_5G_CAPABLE) == 0) {
6144 bp->serdes_an_pending = 0;
6145 return;
6146 }
6147
6148 spin_lock(&bp->phy_lock);
6149 if (bp->serdes_an_pending)
6150 bp->serdes_an_pending--;
6151 else if ((bp->link_up == 0) && (bp->autoneg & AUTONEG_SPEED)) {
6152 u32 bmcr;
6153
6154 bnx2_read_phy(bp, bp->mii_bmcr, &bmcr);
6155 if (bmcr & BMCR_ANENABLE) {
6156 bnx2_enable_forced_2g5(bp);
6157 bp->current_interval = BNX2_SERDES_FORCED_TIMEOUT;
6158 } else {
6159 bnx2_disable_forced_2g5(bp);
6160 bp->serdes_an_pending = 2;
6161 bp->current_interval = BNX2_TIMER_INTERVAL;
6162 }
6163
6164 } else
6165 bp->current_interval = BNX2_TIMER_INTERVAL;
6166
6167 spin_unlock(&bp->phy_lock);
6168 }
6169
6170 static void
6171 bnx2_timer(unsigned long data)
6172 {
6173 struct bnx2 *bp = (struct bnx2 *) data;
6174
6175 if (!netif_running(bp->dev))
6176 return;
6177
6178 if (atomic_read(&bp->intr_sem) != 0)
6179 goto bnx2_restart_timer;
6180
6181 if ((bp->flags & (BNX2_FLAG_USING_MSI | BNX2_FLAG_ONE_SHOT_MSI)) ==
6182 BNX2_FLAG_USING_MSI)
6183 bnx2_chk_missed_msi(bp);
6184
6185 bnx2_send_heart_beat(bp);
6186
6187 bp->stats_blk->stat_FwRxDrop =
6188 bnx2_reg_rd_ind(bp, BNX2_FW_RX_DROP_COUNT);
6189
6190 /* workaround occasional corrupted counters */
6191 if ((bp->flags & BNX2_FLAG_BROKEN_STATS) && bp->stats_ticks)
6192 BNX2_WR(bp, BNX2_HC_COMMAND, bp->hc_cmd |
6193 BNX2_HC_COMMAND_STATS_NOW);
6194
6195 if (bp->phy_flags & BNX2_PHY_FLAG_SERDES) {
6196 if (BNX2_CHIP(bp) == BNX2_CHIP_5706)
6197 bnx2_5706_serdes_timer(bp);
6198 else
6199 bnx2_5708_serdes_timer(bp);
6200 }
6201
6202 bnx2_restart_timer:
6203 mod_timer(&bp->timer, jiffies + bp->current_interval);
6204 }
6205
6206 static int
6207 bnx2_request_irq(struct bnx2 *bp)
6208 {
6209 unsigned long flags;
6210 struct bnx2_irq *irq;
6211 int rc = 0, i;
6212
6213 if (bp->flags & BNX2_FLAG_USING_MSI_OR_MSIX)
6214 flags = 0;
6215 else
6216 flags = IRQF_SHARED;
6217
6218 for (i = 0; i < bp->irq_nvecs; i++) {
6219 irq = &bp->irq_tbl[i];
6220 rc = request_irq(irq->vector, irq->handler, flags, irq->name,
6221 &bp->bnx2_napi[i]);
6222 if (rc)
6223 break;
6224 irq->requested = 1;
6225 }
6226 return rc;
6227 }
6228
6229 static void
6230 __bnx2_free_irq(struct bnx2 *bp)
6231 {
6232 struct bnx2_irq *irq;
6233 int i;
6234
6235 for (i = 0; i < bp->irq_nvecs; i++) {
6236 irq = &bp->irq_tbl[i];
6237 if (irq->requested)
6238 free_irq(irq->vector, &bp->bnx2_napi[i]);
6239 irq->requested = 0;
6240 }
6241 }
6242
6243 static void
6244 bnx2_free_irq(struct bnx2 *bp)
6245 {
6246
6247 __bnx2_free_irq(bp);
6248 if (bp->flags & BNX2_FLAG_USING_MSI)
6249 pci_disable_msi(bp->pdev);
6250 else if (bp->flags & BNX2_FLAG_USING_MSIX)
6251 pci_disable_msix(bp->pdev);
6252
6253 bp->flags &= ~(BNX2_FLAG_USING_MSI_OR_MSIX | BNX2_FLAG_ONE_SHOT_MSI);
6254 }
6255
6256 static void
6257 bnx2_enable_msix(struct bnx2 *bp, int msix_vecs)
6258 {
6259 int i, total_vecs;
6260 struct msix_entry msix_ent[BNX2_MAX_MSIX_VEC];
6261 struct net_device *dev = bp->dev;
6262 const int len = sizeof(bp->irq_tbl[0].name);
6263
6264 bnx2_setup_msix_tbl(bp);
6265 BNX2_WR(bp, BNX2_PCI_MSIX_CONTROL, BNX2_MAX_MSIX_HW_VEC - 1);
6266 BNX2_WR(bp, BNX2_PCI_MSIX_TBL_OFF_BIR, BNX2_PCI_GRC_WINDOW2_BASE);
6267 BNX2_WR(bp, BNX2_PCI_MSIX_PBA_OFF_BIT, BNX2_PCI_GRC_WINDOW3_BASE);
6268
6269 /* Need to flush the previous three writes to ensure MSI-X
6270 * is setup properly */
6271 BNX2_RD(bp, BNX2_PCI_MSIX_CONTROL);
6272
6273 for (i = 0; i < BNX2_MAX_MSIX_VEC; i++) {
6274 msix_ent[i].entry = i;
6275 msix_ent[i].vector = 0;
6276 }
6277
6278 total_vecs = msix_vecs;
6279 #ifdef BCM_CNIC
6280 total_vecs++;
6281 #endif
6282 total_vecs = pci_enable_msix_range(bp->pdev, msix_ent,
6283 BNX2_MIN_MSIX_VEC, total_vecs);
6284 if (total_vecs < 0)
6285 return;
6286
6287 msix_vecs = total_vecs;
6288 #ifdef BCM_CNIC
6289 msix_vecs--;
6290 #endif
6291 bp->irq_nvecs = msix_vecs;
6292 bp->flags |= BNX2_FLAG_USING_MSIX | BNX2_FLAG_ONE_SHOT_MSI;
6293 for (i = 0; i < total_vecs; i++) {
6294 bp->irq_tbl[i].vector = msix_ent[i].vector;
6295 snprintf(bp->irq_tbl[i].name, len, "%s-%d", dev->name, i);
6296 bp->irq_tbl[i].handler = bnx2_msi_1shot;
6297 }
6298 }
6299
6300 static int
6301 bnx2_setup_int_mode(struct bnx2 *bp, int dis_msi)
6302 {
6303 int cpus = netif_get_num_default_rss_queues();
6304 int msix_vecs;
6305
6306 if (!bp->num_req_rx_rings)
6307 msix_vecs = max(cpus + 1, bp->num_req_tx_rings);
6308 else if (!bp->num_req_tx_rings)
6309 msix_vecs = max(cpus, bp->num_req_rx_rings);
6310 else
6311 msix_vecs = max(bp->num_req_rx_rings, bp->num_req_tx_rings);
6312
6313 msix_vecs = min(msix_vecs, RX_MAX_RINGS);
6314
6315 bp->irq_tbl[0].handler = bnx2_interrupt;
6316 strcpy(bp->irq_tbl[0].name, bp->dev->name);
6317 bp->irq_nvecs = 1;
6318 bp->irq_tbl[0].vector = bp->pdev->irq;
6319
6320 if ((bp->flags & BNX2_FLAG_MSIX_CAP) && !dis_msi)
6321 bnx2_enable_msix(bp, msix_vecs);
6322
6323 if ((bp->flags & BNX2_FLAG_MSI_CAP) && !dis_msi &&
6324 !(bp->flags & BNX2_FLAG_USING_MSIX)) {
6325 if (pci_enable_msi(bp->pdev) == 0) {
6326 bp->flags |= BNX2_FLAG_USING_MSI;
6327 if (BNX2_CHIP(bp) == BNX2_CHIP_5709) {
6328 bp->flags |= BNX2_FLAG_ONE_SHOT_MSI;
6329 bp->irq_tbl[0].handler = bnx2_msi_1shot;
6330 } else
6331 bp->irq_tbl[0].handler = bnx2_msi;
6332
6333 bp->irq_tbl[0].vector = bp->pdev->irq;
6334 }
6335 }
6336
6337 if (!bp->num_req_tx_rings)
6338 bp->num_tx_rings = rounddown_pow_of_two(bp->irq_nvecs);
6339 else
6340 bp->num_tx_rings = min(bp->irq_nvecs, bp->num_req_tx_rings);
6341
6342 if (!bp->num_req_rx_rings)
6343 bp->num_rx_rings = bp->irq_nvecs;
6344 else
6345 bp->num_rx_rings = min(bp->irq_nvecs, bp->num_req_rx_rings);
6346
6347 netif_set_real_num_tx_queues(bp->dev, bp->num_tx_rings);
6348
6349 return netif_set_real_num_rx_queues(bp->dev, bp->num_rx_rings);
6350 }
6351
6352 /* Called with rtnl_lock */
6353 static int
6354 bnx2_open(struct net_device *dev)
6355 {
6356 struct bnx2 *bp = netdev_priv(dev);
6357 int rc;
6358
6359 rc = bnx2_request_firmware(bp);
6360 if (rc < 0)
6361 goto out;
6362
6363 netif_carrier_off(dev);
6364
6365 bnx2_disable_int(bp);
6366
6367 rc = bnx2_setup_int_mode(bp, disable_msi);
6368 if (rc)
6369 goto open_err;
6370 bnx2_init_napi(bp);
6371 bnx2_napi_enable(bp);
6372 rc = bnx2_alloc_mem(bp);
6373 if (rc)
6374 goto open_err;
6375
6376 rc = bnx2_request_irq(bp);
6377 if (rc)
6378 goto open_err;
6379
6380 rc = bnx2_init_nic(bp, 1);
6381 if (rc)
6382 goto open_err;
6383
6384 mod_timer(&bp->timer, jiffies + bp->current_interval);
6385
6386 atomic_set(&bp->intr_sem, 0);
6387
6388 memset(bp->temp_stats_blk, 0, sizeof(struct statistics_block));
6389
6390 bnx2_enable_int(bp);
6391
6392 if (bp->flags & BNX2_FLAG_USING_MSI) {
6393 /* Test MSI to make sure it is working
6394 * If MSI test fails, go back to INTx mode
6395 */
6396 if (bnx2_test_intr(bp) != 0) {
6397 netdev_warn(bp->dev, "No interrupt was generated using MSI, switching to INTx mode. Please report this failure to the PCI maintainer and include system chipset information.\n");
6398
6399 bnx2_disable_int(bp);
6400 bnx2_free_irq(bp);
6401
6402 bnx2_setup_int_mode(bp, 1);
6403
6404 rc = bnx2_init_nic(bp, 0);
6405
6406 if (!rc)
6407 rc = bnx2_request_irq(bp);
6408
6409 if (rc) {
6410 del_timer_sync(&bp->timer);
6411 goto open_err;
6412 }
6413 bnx2_enable_int(bp);
6414 }
6415 }
6416 if (bp->flags & BNX2_FLAG_USING_MSI)
6417 netdev_info(dev, "using MSI\n");
6418 else if (bp->flags & BNX2_FLAG_USING_MSIX)
6419 netdev_info(dev, "using MSIX\n");
6420
6421 netif_tx_start_all_queues(dev);
6422 out:
6423 return rc;
6424
6425 open_err:
6426 bnx2_napi_disable(bp);
6427 bnx2_free_skbs(bp);
6428 bnx2_free_irq(bp);
6429 bnx2_free_mem(bp);
6430 bnx2_del_napi(bp);
6431 bnx2_release_firmware(bp);
6432 goto out;
6433 }
6434
6435 static void
6436 bnx2_reset_task(struct work_struct *work)
6437 {
6438 struct bnx2 *bp = container_of(work, struct bnx2, reset_task);
6439 int rc;
6440 u16 pcicmd;
6441
6442 rtnl_lock();
6443 if (!netif_running(bp->dev)) {
6444 rtnl_unlock();
6445 return;
6446 }
6447
6448 bnx2_netif_stop(bp, true);
6449
6450 pci_read_config_word(bp->pdev, PCI_COMMAND, &pcicmd);
6451 if (!(pcicmd & PCI_COMMAND_MEMORY)) {
6452 /* in case PCI block has reset */
6453 pci_restore_state(bp->pdev);
6454 pci_save_state(bp->pdev);
6455 }
6456 rc = bnx2_init_nic(bp, 1);
6457 if (rc) {
6458 netdev_err(bp->dev, "failed to reset NIC, closing\n");
6459 bnx2_napi_enable(bp);
6460 dev_close(bp->dev);
6461 rtnl_unlock();
6462 return;
6463 }
6464
6465 atomic_set(&bp->intr_sem, 1);
6466 bnx2_netif_start(bp, true);
6467 rtnl_unlock();
6468 }
6469
6470 #define BNX2_FTQ_ENTRY(ftq) { __stringify(ftq##FTQ_CTL), BNX2_##ftq##FTQ_CTL }
6471
6472 static void
6473 bnx2_dump_ftq(struct bnx2 *bp)
6474 {
6475 int i;
6476 u32 reg, bdidx, cid, valid;
6477 struct net_device *dev = bp->dev;
6478 static const struct ftq_reg {
6479 char *name;
6480 u32 off;
6481 } ftq_arr[] = {
6482 BNX2_FTQ_ENTRY(RV2P_P),
6483 BNX2_FTQ_ENTRY(RV2P_T),
6484 BNX2_FTQ_ENTRY(RV2P_M),
6485 BNX2_FTQ_ENTRY(TBDR_),
6486 BNX2_FTQ_ENTRY(TDMA_),
6487 BNX2_FTQ_ENTRY(TXP_),
6488 BNX2_FTQ_ENTRY(TXP_),
6489 BNX2_FTQ_ENTRY(TPAT_),
6490 BNX2_FTQ_ENTRY(RXP_C),
6491 BNX2_FTQ_ENTRY(RXP_),
6492 BNX2_FTQ_ENTRY(COM_COMXQ_),
6493 BNX2_FTQ_ENTRY(COM_COMTQ_),
6494 BNX2_FTQ_ENTRY(COM_COMQ_),
6495 BNX2_FTQ_ENTRY(CP_CPQ_),
6496 };
6497
6498 netdev_err(dev, "<--- start FTQ dump --->\n");
6499 for (i = 0; i < ARRAY_SIZE(ftq_arr); i++)
6500 netdev_err(dev, "%s %08x\n", ftq_arr[i].name,
6501 bnx2_reg_rd_ind(bp, ftq_arr[i].off));
6502
6503 netdev_err(dev, "CPU states:\n");
6504 for (reg = BNX2_TXP_CPU_MODE; reg <= BNX2_CP_CPU_MODE; reg += 0x40000)
6505 netdev_err(dev, "%06x mode %x state %x evt_mask %x pc %x pc %x instr %x\n",
6506 reg, bnx2_reg_rd_ind(bp, reg),
6507 bnx2_reg_rd_ind(bp, reg + 4),
6508 bnx2_reg_rd_ind(bp, reg + 8),
6509 bnx2_reg_rd_ind(bp, reg + 0x1c),
6510 bnx2_reg_rd_ind(bp, reg + 0x1c),
6511 bnx2_reg_rd_ind(bp, reg + 0x20));
6512
6513 netdev_err(dev, "<--- end FTQ dump --->\n");
6514 netdev_err(dev, "<--- start TBDC dump --->\n");
6515 netdev_err(dev, "TBDC free cnt: %ld\n",
6516 BNX2_RD(bp, BNX2_TBDC_STATUS) & BNX2_TBDC_STATUS_FREE_CNT);
6517 netdev_err(dev, "LINE CID BIDX CMD VALIDS\n");
6518 for (i = 0; i < 0x20; i++) {
6519 int j = 0;
6520
6521 BNX2_WR(bp, BNX2_TBDC_BD_ADDR, i);
6522 BNX2_WR(bp, BNX2_TBDC_CAM_OPCODE,
6523 BNX2_TBDC_CAM_OPCODE_OPCODE_CAM_READ);
6524 BNX2_WR(bp, BNX2_TBDC_COMMAND, BNX2_TBDC_COMMAND_CMD_REG_ARB);
6525 while ((BNX2_RD(bp, BNX2_TBDC_COMMAND) &
6526 BNX2_TBDC_COMMAND_CMD_REG_ARB) && j < 100)
6527 j++;
6528
6529 cid = BNX2_RD(bp, BNX2_TBDC_CID);
6530 bdidx = BNX2_RD(bp, BNX2_TBDC_BIDX);
6531 valid = BNX2_RD(bp, BNX2_TBDC_CAM_OPCODE);
6532 netdev_err(dev, "%02x %06x %04lx %02x [%x]\n",
6533 i, cid, bdidx & BNX2_TBDC_BDIDX_BDIDX,
6534 bdidx >> 24, (valid >> 8) & 0x0ff);
6535 }
6536 netdev_err(dev, "<--- end TBDC dump --->\n");
6537 }
6538
6539 static void
6540 bnx2_dump_state(struct bnx2 *bp)
6541 {
6542 struct net_device *dev = bp->dev;
6543 u32 val1, val2;
6544
6545 pci_read_config_dword(bp->pdev, PCI_COMMAND, &val1);
6546 netdev_err(dev, "DEBUG: intr_sem[%x] PCI_CMD[%08x]\n",
6547 atomic_read(&bp->intr_sem), val1);
6548 pci_read_config_dword(bp->pdev, bp->pm_cap + PCI_PM_CTRL, &val1);
6549 pci_read_config_dword(bp->pdev, BNX2_PCICFG_MISC_CONFIG, &val2);
6550 netdev_err(dev, "DEBUG: PCI_PM[%08x] PCI_MISC_CFG[%08x]\n", val1, val2);
6551 netdev_err(dev, "DEBUG: EMAC_TX_STATUS[%08x] EMAC_RX_STATUS[%08x]\n",
6552 BNX2_RD(bp, BNX2_EMAC_TX_STATUS),
6553 BNX2_RD(bp, BNX2_EMAC_RX_STATUS));
6554 netdev_err(dev, "DEBUG: RPM_MGMT_PKT_CTRL[%08x]\n",
6555 BNX2_RD(bp, BNX2_RPM_MGMT_PKT_CTRL));
6556 netdev_err(dev, "DEBUG: HC_STATS_INTERRUPT_STATUS[%08x]\n",
6557 BNX2_RD(bp, BNX2_HC_STATS_INTERRUPT_STATUS));
6558 if (bp->flags & BNX2_FLAG_USING_MSIX)
6559 netdev_err(dev, "DEBUG: PBA[%08x]\n",
6560 BNX2_RD(bp, BNX2_PCI_GRC_WINDOW3_BASE));
6561 }
6562
6563 static void
6564 bnx2_tx_timeout(struct net_device *dev)
6565 {
6566 struct bnx2 *bp = netdev_priv(dev);
6567
6568 bnx2_dump_ftq(bp);
6569 bnx2_dump_state(bp);
6570 bnx2_dump_mcp_state(bp);
6571
6572 /* This allows the netif to be shutdown gracefully before resetting */
6573 schedule_work(&bp->reset_task);
6574 }
6575
6576 /* Called with netif_tx_lock.
6577 * bnx2_tx_int() runs without netif_tx_lock unless it needs to call
6578 * netif_wake_queue().
6579 */
6580 static netdev_tx_t
6581 bnx2_start_xmit(struct sk_buff *skb, struct net_device *dev)
6582 {
6583 struct bnx2 *bp = netdev_priv(dev);
6584 dma_addr_t mapping;
6585 struct bnx2_tx_bd *txbd;
6586 struct bnx2_sw_tx_bd *tx_buf;
6587 u32 len, vlan_tag_flags, last_frag, mss;
6588 u16 prod, ring_prod;
6589 int i;
6590 struct bnx2_napi *bnapi;
6591 struct bnx2_tx_ring_info *txr;
6592 struct netdev_queue *txq;
6593
6594 /* Determine which tx ring we will be placed on */
6595 i = skb_get_queue_mapping(skb);
6596 bnapi = &bp->bnx2_napi[i];
6597 txr = &bnapi->tx_ring;
6598 txq = netdev_get_tx_queue(dev, i);
6599
6600 if (unlikely(bnx2_tx_avail(bp, txr) <
6601 (skb_shinfo(skb)->nr_frags + 1))) {
6602 netif_tx_stop_queue(txq);
6603 netdev_err(dev, "BUG! Tx ring full when queue awake!\n");
6604
6605 return NETDEV_TX_BUSY;
6606 }
6607 len = skb_headlen(skb);
6608 prod = txr->tx_prod;
6609 ring_prod = BNX2_TX_RING_IDX(prod);
6610
6611 vlan_tag_flags = 0;
6612 if (skb->ip_summed == CHECKSUM_PARTIAL) {
6613 vlan_tag_flags |= TX_BD_FLAGS_TCP_UDP_CKSUM;
6614 }
6615
6616 if (skb_vlan_tag_present(skb)) {
6617 vlan_tag_flags |=
6618 (TX_BD_FLAGS_VLAN_TAG | (skb_vlan_tag_get(skb) << 16));
6619 }
6620
6621 if ((mss = skb_shinfo(skb)->gso_size)) {
6622 u32 tcp_opt_len;
6623 struct iphdr *iph;
6624
6625 vlan_tag_flags |= TX_BD_FLAGS_SW_LSO;
6626
6627 tcp_opt_len = tcp_optlen(skb);
6628
6629 if (skb_shinfo(skb)->gso_type & SKB_GSO_TCPV6) {
6630 u32 tcp_off = skb_transport_offset(skb) -
6631 sizeof(struct ipv6hdr) - ETH_HLEN;
6632
6633 vlan_tag_flags |= ((tcp_opt_len >> 2) << 8) |
6634 TX_BD_FLAGS_SW_FLAGS;
6635 if (likely(tcp_off == 0))
6636 vlan_tag_flags &= ~TX_BD_FLAGS_TCP6_OFF0_MSK;
6637 else {
6638 tcp_off >>= 3;
6639 vlan_tag_flags |= ((tcp_off & 0x3) <<
6640 TX_BD_FLAGS_TCP6_OFF0_SHL) |
6641 ((tcp_off & 0x10) <<
6642 TX_BD_FLAGS_TCP6_OFF4_SHL);
6643 mss |= (tcp_off & 0xc) << TX_BD_TCP6_OFF2_SHL;
6644 }
6645 } else {
6646 iph = ip_hdr(skb);
6647 if (tcp_opt_len || (iph->ihl > 5)) {
6648 vlan_tag_flags |= ((iph->ihl - 5) +
6649 (tcp_opt_len >> 2)) << 8;
6650 }
6651 }
6652 } else
6653 mss = 0;
6654
6655 mapping = dma_map_single(&bp->pdev->dev, skb->data, len, PCI_DMA_TODEVICE);
6656 if (dma_mapping_error(&bp->pdev->dev, mapping)) {
6657 dev_kfree_skb_any(skb);
6658 return NETDEV_TX_OK;
6659 }
6660
6661 tx_buf = &txr->tx_buf_ring[ring_prod];
6662 tx_buf->skb = skb;
6663 dma_unmap_addr_set(tx_buf, mapping, mapping);
6664
6665 txbd = &txr->tx_desc_ring[ring_prod];
6666
6667 txbd->tx_bd_haddr_hi = (u64) mapping >> 32;
6668 txbd->tx_bd_haddr_lo = (u64) mapping & 0xffffffff;
6669 txbd->tx_bd_mss_nbytes = len | (mss << 16);
6670 txbd->tx_bd_vlan_tag_flags = vlan_tag_flags | TX_BD_FLAGS_START;
6671
6672 last_frag = skb_shinfo(skb)->nr_frags;
6673 tx_buf->nr_frags = last_frag;
6674 tx_buf->is_gso = skb_is_gso(skb);
6675
6676 for (i = 0; i < last_frag; i++) {
6677 const skb_frag_t *frag = &skb_shinfo(skb)->frags[i];
6678
6679 prod = BNX2_NEXT_TX_BD(prod);
6680 ring_prod = BNX2_TX_RING_IDX(prod);
6681 txbd = &txr->tx_desc_ring[ring_prod];
6682
6683 len = skb_frag_size(frag);
6684 mapping = skb_frag_dma_map(&bp->pdev->dev, frag, 0, len,
6685 DMA_TO_DEVICE);
6686 if (dma_mapping_error(&bp->pdev->dev, mapping))
6687 goto dma_error;
6688 dma_unmap_addr_set(&txr->tx_buf_ring[ring_prod], mapping,
6689 mapping);
6690
6691 txbd->tx_bd_haddr_hi = (u64) mapping >> 32;
6692 txbd->tx_bd_haddr_lo = (u64) mapping & 0xffffffff;
6693 txbd->tx_bd_mss_nbytes = len | (mss << 16);
6694 txbd->tx_bd_vlan_tag_flags = vlan_tag_flags;
6695
6696 }
6697 txbd->tx_bd_vlan_tag_flags |= TX_BD_FLAGS_END;
6698
6699 /* Sync BD data before updating TX mailbox */
6700 wmb();
6701
6702 netdev_tx_sent_queue(txq, skb->len);
6703
6704 prod = BNX2_NEXT_TX_BD(prod);
6705 txr->tx_prod_bseq += skb->len;
6706
6707 BNX2_WR16(bp, txr->tx_bidx_addr, prod);
6708 BNX2_WR(bp, txr->tx_bseq_addr, txr->tx_prod_bseq);
6709
6710 mmiowb();
6711
6712 txr->tx_prod = prod;
6713
6714 if (unlikely(bnx2_tx_avail(bp, txr) <= MAX_SKB_FRAGS)) {
6715 netif_tx_stop_queue(txq);
6716
6717 /* netif_tx_stop_queue() must be done before checking
6718 * tx index in bnx2_tx_avail() below, because in
6719 * bnx2_tx_int(), we update tx index before checking for
6720 * netif_tx_queue_stopped().
6721 */
6722 smp_mb();
6723 if (bnx2_tx_avail(bp, txr) > bp->tx_wake_thresh)
6724 netif_tx_wake_queue(txq);
6725 }
6726
6727 return NETDEV_TX_OK;
6728 dma_error:
6729 /* save value of frag that failed */
6730 last_frag = i;
6731
6732 /* start back at beginning and unmap skb */
6733 prod = txr->tx_prod;
6734 ring_prod = BNX2_TX_RING_IDX(prod);
6735 tx_buf = &txr->tx_buf_ring[ring_prod];
6736 tx_buf->skb = NULL;
6737 dma_unmap_single(&bp->pdev->dev, dma_unmap_addr(tx_buf, mapping),
6738 skb_headlen(skb), PCI_DMA_TODEVICE);
6739
6740 /* unmap remaining mapped pages */
6741 for (i = 0; i < last_frag; i++) {
6742 prod = BNX2_NEXT_TX_BD(prod);
6743 ring_prod = BNX2_TX_RING_IDX(prod);
6744 tx_buf = &txr->tx_buf_ring[ring_prod];
6745 dma_unmap_page(&bp->pdev->dev, dma_unmap_addr(tx_buf, mapping),
6746 skb_frag_size(&skb_shinfo(skb)->frags[i]),
6747 PCI_DMA_TODEVICE);
6748 }
6749
6750 dev_kfree_skb_any(skb);
6751 return NETDEV_TX_OK;
6752 }
6753
6754 /* Called with rtnl_lock */
6755 static int
6756 bnx2_close(struct net_device *dev)
6757 {
6758 struct bnx2 *bp = netdev_priv(dev);
6759
6760 bnx2_disable_int_sync(bp);
6761 bnx2_napi_disable(bp);
6762 netif_tx_disable(dev);
6763 del_timer_sync(&bp->timer);
6764 bnx2_shutdown_chip(bp);
6765 bnx2_free_irq(bp);
6766 bnx2_free_skbs(bp);
6767 bnx2_free_mem(bp);
6768 bnx2_del_napi(bp);
6769 bp->link_up = 0;
6770 netif_carrier_off(bp->dev);
6771 return 0;
6772 }
6773
6774 static void
6775 bnx2_save_stats(struct bnx2 *bp)
6776 {
6777 u32 *hw_stats = (u32 *) bp->stats_blk;
6778 u32 *temp_stats = (u32 *) bp->temp_stats_blk;
6779 int i;
6780
6781 /* The 1st 10 counters are 64-bit counters */
6782 for (i = 0; i < 20; i += 2) {
6783 u32 hi;
6784 u64 lo;
6785
6786 hi = temp_stats[i] + hw_stats[i];
6787 lo = (u64) temp_stats[i + 1] + (u64) hw_stats[i + 1];
6788 if (lo > 0xffffffff)
6789 hi++;
6790 temp_stats[i] = hi;
6791 temp_stats[i + 1] = lo & 0xffffffff;
6792 }
6793
6794 for ( ; i < sizeof(struct statistics_block) / 4; i++)
6795 temp_stats[i] += hw_stats[i];
6796 }
6797
6798 #define GET_64BIT_NET_STATS64(ctr) \
6799 (((u64) (ctr##_hi) << 32) + (u64) (ctr##_lo))
6800
6801 #define GET_64BIT_NET_STATS(ctr) \
6802 GET_64BIT_NET_STATS64(bp->stats_blk->ctr) + \
6803 GET_64BIT_NET_STATS64(bp->temp_stats_blk->ctr)
6804
6805 #define GET_32BIT_NET_STATS(ctr) \
6806 (unsigned long) (bp->stats_blk->ctr + \
6807 bp->temp_stats_blk->ctr)
6808
6809 static struct rtnl_link_stats64 *
6810 bnx2_get_stats64(struct net_device *dev, struct rtnl_link_stats64 *net_stats)
6811 {
6812 struct bnx2 *bp = netdev_priv(dev);
6813
6814 if (bp->stats_blk == NULL)
6815 return net_stats;
6816
6817 net_stats->rx_packets =
6818 GET_64BIT_NET_STATS(stat_IfHCInUcastPkts) +
6819 GET_64BIT_NET_STATS(stat_IfHCInMulticastPkts) +
6820 GET_64BIT_NET_STATS(stat_IfHCInBroadcastPkts);
6821
6822 net_stats->tx_packets =
6823 GET_64BIT_NET_STATS(stat_IfHCOutUcastPkts) +
6824 GET_64BIT_NET_STATS(stat_IfHCOutMulticastPkts) +
6825 GET_64BIT_NET_STATS(stat_IfHCOutBroadcastPkts);
6826
6827 net_stats->rx_bytes =
6828 GET_64BIT_NET_STATS(stat_IfHCInOctets);
6829
6830 net_stats->tx_bytes =
6831 GET_64BIT_NET_STATS(stat_IfHCOutOctets);
6832
6833 net_stats->multicast =
6834 GET_64BIT_NET_STATS(stat_IfHCInMulticastPkts);
6835
6836 net_stats->collisions =
6837 GET_32BIT_NET_STATS(stat_EtherStatsCollisions);
6838
6839 net_stats->rx_length_errors =
6840 GET_32BIT_NET_STATS(stat_EtherStatsUndersizePkts) +
6841 GET_32BIT_NET_STATS(stat_EtherStatsOverrsizePkts);
6842
6843 net_stats->rx_over_errors =
6844 GET_32BIT_NET_STATS(stat_IfInFTQDiscards) +
6845 GET_32BIT_NET_STATS(stat_IfInMBUFDiscards);
6846
6847 net_stats->rx_frame_errors =
6848 GET_32BIT_NET_STATS(stat_Dot3StatsAlignmentErrors);
6849
6850 net_stats->rx_crc_errors =
6851 GET_32BIT_NET_STATS(stat_Dot3StatsFCSErrors);
6852
6853 net_stats->rx_errors = net_stats->rx_length_errors +
6854 net_stats->rx_over_errors + net_stats->rx_frame_errors +
6855 net_stats->rx_crc_errors;
6856
6857 net_stats->tx_aborted_errors =
6858 GET_32BIT_NET_STATS(stat_Dot3StatsExcessiveCollisions) +
6859 GET_32BIT_NET_STATS(stat_Dot3StatsLateCollisions);
6860
6861 if ((BNX2_CHIP(bp) == BNX2_CHIP_5706) ||
6862 (BNX2_CHIP_ID(bp) == BNX2_CHIP_ID_5708_A0))
6863 net_stats->tx_carrier_errors = 0;
6864 else {
6865 net_stats->tx_carrier_errors =
6866 GET_32BIT_NET_STATS(stat_Dot3StatsCarrierSenseErrors);
6867 }
6868
6869 net_stats->tx_errors =
6870 GET_32BIT_NET_STATS(stat_emac_tx_stat_dot3statsinternalmactransmiterrors) +
6871 net_stats->tx_aborted_errors +
6872 net_stats->tx_carrier_errors;
6873
6874 net_stats->rx_missed_errors =
6875 GET_32BIT_NET_STATS(stat_IfInFTQDiscards) +
6876 GET_32BIT_NET_STATS(stat_IfInMBUFDiscards) +
6877 GET_32BIT_NET_STATS(stat_FwRxDrop);
6878
6879 return net_stats;
6880 }
6881
6882 /* All ethtool functions called with rtnl_lock */
6883
6884 static int
6885 bnx2_get_settings(struct net_device *dev, struct ethtool_cmd *cmd)
6886 {
6887 struct bnx2 *bp = netdev_priv(dev);
6888 int support_serdes = 0, support_copper = 0;
6889
6890 cmd->supported = SUPPORTED_Autoneg;
6891 if (bp->phy_flags & BNX2_PHY_FLAG_REMOTE_PHY_CAP) {
6892 support_serdes = 1;
6893 support_copper = 1;
6894 } else if (bp->phy_port == PORT_FIBRE)
6895 support_serdes = 1;
6896 else
6897 support_copper = 1;
6898
6899 if (support_serdes) {
6900 cmd->supported |= SUPPORTED_1000baseT_Full |
6901 SUPPORTED_FIBRE;
6902 if (bp->phy_flags & BNX2_PHY_FLAG_2_5G_CAPABLE)
6903 cmd->supported |= SUPPORTED_2500baseX_Full;
6904
6905 }
6906 if (support_copper) {
6907 cmd->supported |= SUPPORTED_10baseT_Half |
6908 SUPPORTED_10baseT_Full |
6909 SUPPORTED_100baseT_Half |
6910 SUPPORTED_100baseT_Full |
6911 SUPPORTED_1000baseT_Full |
6912 SUPPORTED_TP;
6913
6914 }
6915
6916 spin_lock_bh(&bp->phy_lock);
6917 cmd->port = bp->phy_port;
6918 cmd->advertising = bp->advertising;
6919
6920 if (bp->autoneg & AUTONEG_SPEED) {
6921 cmd->autoneg = AUTONEG_ENABLE;
6922 } else {
6923 cmd->autoneg = AUTONEG_DISABLE;
6924 }
6925
6926 if (netif_carrier_ok(dev)) {
6927 ethtool_cmd_speed_set(cmd, bp->line_speed);
6928 cmd->duplex = bp->duplex;
6929 if (!(bp->phy_flags & BNX2_PHY_FLAG_SERDES)) {
6930 if (bp->phy_flags & BNX2_PHY_FLAG_MDIX)
6931 cmd->eth_tp_mdix = ETH_TP_MDI_X;
6932 else
6933 cmd->eth_tp_mdix = ETH_TP_MDI;
6934 }
6935 }
6936 else {
6937 ethtool_cmd_speed_set(cmd, SPEED_UNKNOWN);
6938 cmd->duplex = DUPLEX_UNKNOWN;
6939 }
6940 spin_unlock_bh(&bp->phy_lock);
6941
6942 cmd->transceiver = XCVR_INTERNAL;
6943 cmd->phy_address = bp->phy_addr;
6944
6945 return 0;
6946 }
6947
6948 static int
6949 bnx2_set_settings(struct net_device *dev, struct ethtool_cmd *cmd)
6950 {
6951 struct bnx2 *bp = netdev_priv(dev);
6952 u8 autoneg = bp->autoneg;
6953 u8 req_duplex = bp->req_duplex;
6954 u16 req_line_speed = bp->req_line_speed;
6955 u32 advertising = bp->advertising;
6956 int err = -EINVAL;
6957
6958 spin_lock_bh(&bp->phy_lock);
6959
6960 if (cmd->port != PORT_TP && cmd->port != PORT_FIBRE)
6961 goto err_out_unlock;
6962
6963 if (cmd->port != bp->phy_port &&
6964 !(bp->phy_flags & BNX2_PHY_FLAG_REMOTE_PHY_CAP))
6965 goto err_out_unlock;
6966
6967 /* If device is down, we can store the settings only if the user
6968 * is setting the currently active port.
6969 */
6970 if (!netif_running(dev) && cmd->port != bp->phy_port)
6971 goto err_out_unlock;
6972
6973 if (cmd->autoneg == AUTONEG_ENABLE) {
6974 autoneg |= AUTONEG_SPEED;
6975
6976 advertising = cmd->advertising;
6977 if (cmd->port == PORT_TP) {
6978 advertising &= ETHTOOL_ALL_COPPER_SPEED;
6979 if (!advertising)
6980 advertising = ETHTOOL_ALL_COPPER_SPEED;
6981 } else {
6982 advertising &= ETHTOOL_ALL_FIBRE_SPEED;
6983 if (!advertising)
6984 advertising = ETHTOOL_ALL_FIBRE_SPEED;
6985 }
6986 advertising |= ADVERTISED_Autoneg;
6987 }
6988 else {
6989 u32 speed = ethtool_cmd_speed(cmd);
6990 if (cmd->port == PORT_FIBRE) {
6991 if ((speed != SPEED_1000 &&
6992 speed != SPEED_2500) ||
6993 (cmd->duplex != DUPLEX_FULL))
6994 goto err_out_unlock;
6995
6996 if (speed == SPEED_2500 &&
6997 !(bp->phy_flags & BNX2_PHY_FLAG_2_5G_CAPABLE))
6998 goto err_out_unlock;
6999 } else if (speed == SPEED_1000 || speed == SPEED_2500)
7000 goto err_out_unlock;
7001
7002 autoneg &= ~AUTONEG_SPEED;
7003 req_line_speed = speed;
7004 req_duplex = cmd->duplex;
7005 advertising = 0;
7006 }
7007
7008 bp->autoneg = autoneg;
7009 bp->advertising = advertising;
7010 bp->req_line_speed = req_line_speed;
7011 bp->req_duplex = req_duplex;
7012
7013 err = 0;
7014 /* If device is down, the new settings will be picked up when it is
7015 * brought up.
7016 */
7017 if (netif_running(dev))
7018 err = bnx2_setup_phy(bp, cmd->port);
7019
7020 err_out_unlock:
7021 spin_unlock_bh(&bp->phy_lock);
7022
7023 return err;
7024 }
7025
7026 static void
7027 bnx2_get_drvinfo(struct net_device *dev, struct ethtool_drvinfo *info)
7028 {
7029 struct bnx2 *bp = netdev_priv(dev);
7030
7031 strlcpy(info->driver, DRV_MODULE_NAME, sizeof(info->driver));
7032 strlcpy(info->version, DRV_MODULE_VERSION, sizeof(info->version));
7033 strlcpy(info->bus_info, pci_name(bp->pdev), sizeof(info->bus_info));
7034 strlcpy(info->fw_version, bp->fw_version, sizeof(info->fw_version));
7035 }
7036
7037 #define BNX2_REGDUMP_LEN (32 * 1024)
7038
7039 static int
7040 bnx2_get_regs_len(struct net_device *dev)
7041 {
7042 return BNX2_REGDUMP_LEN;
7043 }
7044
7045 static void
7046 bnx2_get_regs(struct net_device *dev, struct ethtool_regs *regs, void *_p)
7047 {
7048 u32 *p = _p, i, offset;
7049 u8 *orig_p = _p;
7050 struct bnx2 *bp = netdev_priv(dev);
7051 static const u32 reg_boundaries[] = {
7052 0x0000, 0x0098, 0x0400, 0x045c,
7053 0x0800, 0x0880, 0x0c00, 0x0c10,
7054 0x0c30, 0x0d08, 0x1000, 0x101c,
7055 0x1040, 0x1048, 0x1080, 0x10a4,
7056 0x1400, 0x1490, 0x1498, 0x14f0,
7057 0x1500, 0x155c, 0x1580, 0x15dc,
7058 0x1600, 0x1658, 0x1680, 0x16d8,
7059 0x1800, 0x1820, 0x1840, 0x1854,
7060 0x1880, 0x1894, 0x1900, 0x1984,
7061 0x1c00, 0x1c0c, 0x1c40, 0x1c54,
7062 0x1c80, 0x1c94, 0x1d00, 0x1d84,
7063 0x2000, 0x2030, 0x23c0, 0x2400,
7064 0x2800, 0x2820, 0x2830, 0x2850,
7065 0x2b40, 0x2c10, 0x2fc0, 0x3058,
7066 0x3c00, 0x3c94, 0x4000, 0x4010,
7067 0x4080, 0x4090, 0x43c0, 0x4458,
7068 0x4c00, 0x4c18, 0x4c40, 0x4c54,
7069 0x4fc0, 0x5010, 0x53c0, 0x5444,
7070 0x5c00, 0x5c18, 0x5c80, 0x5c90,
7071 0x5fc0, 0x6000, 0x6400, 0x6428,
7072 0x6800, 0x6848, 0x684c, 0x6860,
7073 0x6888, 0x6910, 0x8000
7074 };
7075
7076 regs->version = 0;
7077
7078 memset(p, 0, BNX2_REGDUMP_LEN);
7079
7080 if (!netif_running(bp->dev))
7081 return;
7082
7083 i = 0;
7084 offset = reg_boundaries[0];
7085 p += offset;
7086 while (offset < BNX2_REGDUMP_LEN) {
7087 *p++ = BNX2_RD(bp, offset);
7088 offset += 4;
7089 if (offset == reg_boundaries[i + 1]) {
7090 offset = reg_boundaries[i + 2];
7091 p = (u32 *) (orig_p + offset);
7092 i += 2;
7093 }
7094 }
7095 }
7096
7097 static void
7098 bnx2_get_wol(struct net_device *dev, struct ethtool_wolinfo *wol)
7099 {
7100 struct bnx2 *bp = netdev_priv(dev);
7101
7102 if (bp->flags & BNX2_FLAG_NO_WOL) {
7103 wol->supported = 0;
7104 wol->wolopts = 0;
7105 }
7106 else {
7107 wol->supported = WAKE_MAGIC;
7108 if (bp->wol)
7109 wol->wolopts = WAKE_MAGIC;
7110 else
7111 wol->wolopts = 0;
7112 }
7113 memset(&wol->sopass, 0, sizeof(wol->sopass));
7114 }
7115
7116 static int
7117 bnx2_set_wol(struct net_device *dev, struct ethtool_wolinfo *wol)
7118 {
7119 struct bnx2 *bp = netdev_priv(dev);
7120
7121 if (wol->wolopts & ~WAKE_MAGIC)
7122 return -EINVAL;
7123
7124 if (wol->wolopts & WAKE_MAGIC) {
7125 if (bp->flags & BNX2_FLAG_NO_WOL)
7126 return -EINVAL;
7127
7128 bp->wol = 1;
7129 }
7130 else {
7131 bp->wol = 0;
7132 }
7133
7134 device_set_wakeup_enable(&bp->pdev->dev, bp->wol);
7135
7136 return 0;
7137 }
7138
7139 static int
7140 bnx2_nway_reset(struct net_device *dev)
7141 {
7142 struct bnx2 *bp = netdev_priv(dev);
7143 u32 bmcr;
7144
7145 if (!netif_running(dev))
7146 return -EAGAIN;
7147
7148 if (!(bp->autoneg & AUTONEG_SPEED)) {
7149 return -EINVAL;
7150 }
7151
7152 spin_lock_bh(&bp->phy_lock);
7153
7154 if (bp->phy_flags & BNX2_PHY_FLAG_REMOTE_PHY_CAP) {
7155 int rc;
7156
7157 rc = bnx2_setup_remote_phy(bp, bp->phy_port);
7158 spin_unlock_bh(&bp->phy_lock);
7159 return rc;
7160 }
7161
7162 /* Force a link down visible on the other side */
7163 if (bp->phy_flags & BNX2_PHY_FLAG_SERDES) {
7164 bnx2_write_phy(bp, bp->mii_bmcr, BMCR_LOOPBACK);
7165 spin_unlock_bh(&bp->phy_lock);
7166
7167 msleep(20);
7168
7169 spin_lock_bh(&bp->phy_lock);
7170
7171 bp->current_interval = BNX2_SERDES_AN_TIMEOUT;
7172 bp->serdes_an_pending = 1;
7173 mod_timer(&bp->timer, jiffies + bp->current_interval);
7174 }
7175
7176 bnx2_read_phy(bp, bp->mii_bmcr, &bmcr);
7177 bmcr &= ~BMCR_LOOPBACK;
7178 bnx2_write_phy(bp, bp->mii_bmcr, bmcr | BMCR_ANRESTART | BMCR_ANENABLE);
7179
7180 spin_unlock_bh(&bp->phy_lock);
7181
7182 return 0;
7183 }
7184
7185 static u32
7186 bnx2_get_link(struct net_device *dev)
7187 {
7188 struct bnx2 *bp = netdev_priv(dev);
7189
7190 return bp->link_up;
7191 }
7192
7193 static int
7194 bnx2_get_eeprom_len(struct net_device *dev)
7195 {
7196 struct bnx2 *bp = netdev_priv(dev);
7197
7198 if (bp->flash_info == NULL)
7199 return 0;
7200
7201 return (int) bp->flash_size;
7202 }
7203
7204 static int
7205 bnx2_get_eeprom(struct net_device *dev, struct ethtool_eeprom *eeprom,
7206 u8 *eebuf)
7207 {
7208 struct bnx2 *bp = netdev_priv(dev);
7209 int rc;
7210
7211 /* parameters already validated in ethtool_get_eeprom */
7212
7213 rc = bnx2_nvram_read(bp, eeprom->offset, eebuf, eeprom->len);
7214
7215 return rc;
7216 }
7217
7218 static int
7219 bnx2_set_eeprom(struct net_device *dev, struct ethtool_eeprom *eeprom,
7220 u8 *eebuf)
7221 {
7222 struct bnx2 *bp = netdev_priv(dev);
7223 int rc;
7224
7225 /* parameters already validated in ethtool_set_eeprom */
7226
7227 rc = bnx2_nvram_write(bp, eeprom->offset, eebuf, eeprom->len);
7228
7229 return rc;
7230 }
7231
7232 static int
7233 bnx2_get_coalesce(struct net_device *dev, struct ethtool_coalesce *coal)
7234 {
7235 struct bnx2 *bp = netdev_priv(dev);
7236
7237 memset(coal, 0, sizeof(struct ethtool_coalesce));
7238
7239 coal->rx_coalesce_usecs = bp->rx_ticks;
7240 coal->rx_max_coalesced_frames = bp->rx_quick_cons_trip;
7241 coal->rx_coalesce_usecs_irq = bp->rx_ticks_int;
7242 coal->rx_max_coalesced_frames_irq = bp->rx_quick_cons_trip_int;
7243
7244 coal->tx_coalesce_usecs = bp->tx_ticks;
7245 coal->tx_max_coalesced_frames = bp->tx_quick_cons_trip;
7246 coal->tx_coalesce_usecs_irq = bp->tx_ticks_int;
7247 coal->tx_max_coalesced_frames_irq = bp->tx_quick_cons_trip_int;
7248
7249 coal->stats_block_coalesce_usecs = bp->stats_ticks;
7250
7251 return 0;
7252 }
7253
7254 static int
7255 bnx2_set_coalesce(struct net_device *dev, struct ethtool_coalesce *coal)
7256 {
7257 struct bnx2 *bp = netdev_priv(dev);
7258
7259 bp->rx_ticks = (u16) coal->rx_coalesce_usecs;
7260 if (bp->rx_ticks > 0x3ff) bp->rx_ticks = 0x3ff;
7261
7262 bp->rx_quick_cons_trip = (u16) coal->rx_max_coalesced_frames;
7263 if (bp->rx_quick_cons_trip > 0xff) bp->rx_quick_cons_trip = 0xff;
7264
7265 bp->rx_ticks_int = (u16) coal->rx_coalesce_usecs_irq;
7266 if (bp->rx_ticks_int > 0x3ff) bp->rx_ticks_int = 0x3ff;
7267
7268 bp->rx_quick_cons_trip_int = (u16) coal->rx_max_coalesced_frames_irq;
7269 if (bp->rx_quick_cons_trip_int > 0xff)
7270 bp->rx_quick_cons_trip_int = 0xff;
7271
7272 bp->tx_ticks = (u16) coal->tx_coalesce_usecs;
7273 if (bp->tx_ticks > 0x3ff) bp->tx_ticks = 0x3ff;
7274
7275 bp->tx_quick_cons_trip = (u16) coal->tx_max_coalesced_frames;
7276 if (bp->tx_quick_cons_trip > 0xff) bp->tx_quick_cons_trip = 0xff;
7277
7278 bp->tx_ticks_int = (u16) coal->tx_coalesce_usecs_irq;
7279 if (bp->tx_ticks_int > 0x3ff) bp->tx_ticks_int = 0x3ff;
7280
7281 bp->tx_quick_cons_trip_int = (u16) coal->tx_max_coalesced_frames_irq;
7282 if (bp->tx_quick_cons_trip_int > 0xff) bp->tx_quick_cons_trip_int =
7283 0xff;
7284
7285 bp->stats_ticks = coal->stats_block_coalesce_usecs;
7286 if (bp->flags & BNX2_FLAG_BROKEN_STATS) {
7287 if (bp->stats_ticks != 0 && bp->stats_ticks != USEC_PER_SEC)
7288 bp->stats_ticks = USEC_PER_SEC;
7289 }
7290 if (bp->stats_ticks > BNX2_HC_STATS_TICKS_HC_STAT_TICKS)
7291 bp->stats_ticks = BNX2_HC_STATS_TICKS_HC_STAT_TICKS;
7292 bp->stats_ticks &= BNX2_HC_STATS_TICKS_HC_STAT_TICKS;
7293
7294 if (netif_running(bp->dev)) {
7295 bnx2_netif_stop(bp, true);
7296 bnx2_init_nic(bp, 0);
7297 bnx2_netif_start(bp, true);
7298 }
7299
7300 return 0;
7301 }
7302
7303 static void
7304 bnx2_get_ringparam(struct net_device *dev, struct ethtool_ringparam *ering)
7305 {
7306 struct bnx2 *bp = netdev_priv(dev);
7307
7308 ering->rx_max_pending = BNX2_MAX_TOTAL_RX_DESC_CNT;
7309 ering->rx_jumbo_max_pending = BNX2_MAX_TOTAL_RX_PG_DESC_CNT;
7310
7311 ering->rx_pending = bp->rx_ring_size;
7312 ering->rx_jumbo_pending = bp->rx_pg_ring_size;
7313
7314 ering->tx_max_pending = BNX2_MAX_TX_DESC_CNT;
7315 ering->tx_pending = bp->tx_ring_size;
7316 }
7317
7318 static int
7319 bnx2_change_ring_size(struct bnx2 *bp, u32 rx, u32 tx, bool reset_irq)
7320 {
7321 if (netif_running(bp->dev)) {
7322 /* Reset will erase chipset stats; save them */
7323 bnx2_save_stats(bp);
7324
7325 bnx2_netif_stop(bp, true);
7326 bnx2_reset_chip(bp, BNX2_DRV_MSG_CODE_RESET);
7327 if (reset_irq) {
7328 bnx2_free_irq(bp);
7329 bnx2_del_napi(bp);
7330 } else {
7331 __bnx2_free_irq(bp);
7332 }
7333 bnx2_free_skbs(bp);
7334 bnx2_free_mem(bp);
7335 }
7336
7337 bnx2_set_rx_ring_size(bp, rx);
7338 bp->tx_ring_size = tx;
7339
7340 if (netif_running(bp->dev)) {
7341 int rc = 0;
7342
7343 if (reset_irq) {
7344 rc = bnx2_setup_int_mode(bp, disable_msi);
7345 bnx2_init_napi(bp);
7346 }
7347
7348 if (!rc)
7349 rc = bnx2_alloc_mem(bp);
7350
7351 if (!rc)
7352 rc = bnx2_request_irq(bp);
7353
7354 if (!rc)
7355 rc = bnx2_init_nic(bp, 0);
7356
7357 if (rc) {
7358 bnx2_napi_enable(bp);
7359 dev_close(bp->dev);
7360 return rc;
7361 }
7362 #ifdef BCM_CNIC
7363 mutex_lock(&bp->cnic_lock);
7364 /* Let cnic know about the new status block. */
7365 if (bp->cnic_eth_dev.drv_state & CNIC_DRV_STATE_REGD)
7366 bnx2_setup_cnic_irq_info(bp);
7367 mutex_unlock(&bp->cnic_lock);
7368 #endif
7369 bnx2_netif_start(bp, true);
7370 }
7371 return 0;
7372 }
7373
7374 static int
7375 bnx2_set_ringparam(struct net_device *dev, struct ethtool_ringparam *ering)
7376 {
7377 struct bnx2 *bp = netdev_priv(dev);
7378 int rc;
7379
7380 if ((ering->rx_pending > BNX2_MAX_TOTAL_RX_DESC_CNT) ||
7381 (ering->tx_pending > BNX2_MAX_TX_DESC_CNT) ||
7382 (ering->tx_pending <= MAX_SKB_FRAGS)) {
7383
7384 return -EINVAL;
7385 }
7386 rc = bnx2_change_ring_size(bp, ering->rx_pending, ering->tx_pending,
7387 false);
7388 return rc;
7389 }
7390
7391 static void
7392 bnx2_get_pauseparam(struct net_device *dev, struct ethtool_pauseparam *epause)
7393 {
7394 struct bnx2 *bp = netdev_priv(dev);
7395
7396 epause->autoneg = ((bp->autoneg & AUTONEG_FLOW_CTRL) != 0);
7397 epause->rx_pause = ((bp->flow_ctrl & FLOW_CTRL_RX) != 0);
7398 epause->tx_pause = ((bp->flow_ctrl & FLOW_CTRL_TX) != 0);
7399 }
7400
7401 static int
7402 bnx2_set_pauseparam(struct net_device *dev, struct ethtool_pauseparam *epause)
7403 {
7404 struct bnx2 *bp = netdev_priv(dev);
7405
7406 bp->req_flow_ctrl = 0;
7407 if (epause->rx_pause)
7408 bp->req_flow_ctrl |= FLOW_CTRL_RX;
7409 if (epause->tx_pause)
7410 bp->req_flow_ctrl |= FLOW_CTRL_TX;
7411
7412 if (epause->autoneg) {
7413 bp->autoneg |= AUTONEG_FLOW_CTRL;
7414 }
7415 else {
7416 bp->autoneg &= ~AUTONEG_FLOW_CTRL;
7417 }
7418
7419 if (netif_running(dev)) {
7420 spin_lock_bh(&bp->phy_lock);
7421 bnx2_setup_phy(bp, bp->phy_port);
7422 spin_unlock_bh(&bp->phy_lock);
7423 }
7424
7425 return 0;
7426 }
7427
7428 static struct {
7429 char string[ETH_GSTRING_LEN];
7430 } bnx2_stats_str_arr[] = {
7431 { "rx_bytes" },
7432 { "rx_error_bytes" },
7433 { "tx_bytes" },
7434 { "tx_error_bytes" },
7435 { "rx_ucast_packets" },
7436 { "rx_mcast_packets" },
7437 { "rx_bcast_packets" },
7438 { "tx_ucast_packets" },
7439 { "tx_mcast_packets" },
7440 { "tx_bcast_packets" },
7441 { "tx_mac_errors" },
7442 { "tx_carrier_errors" },
7443 { "rx_crc_errors" },
7444 { "rx_align_errors" },
7445 { "tx_single_collisions" },
7446 { "tx_multi_collisions" },
7447 { "tx_deferred" },
7448 { "tx_excess_collisions" },
7449 { "tx_late_collisions" },
7450 { "tx_total_collisions" },
7451 { "rx_fragments" },
7452 { "rx_jabbers" },
7453 { "rx_undersize_packets" },
7454 { "rx_oversize_packets" },
7455 { "rx_64_byte_packets" },
7456 { "rx_65_to_127_byte_packets" },
7457 { "rx_128_to_255_byte_packets" },
7458 { "rx_256_to_511_byte_packets" },
7459 { "rx_512_to_1023_byte_packets" },
7460 { "rx_1024_to_1522_byte_packets" },
7461 { "rx_1523_to_9022_byte_packets" },
7462 { "tx_64_byte_packets" },
7463 { "tx_65_to_127_byte_packets" },
7464 { "tx_128_to_255_byte_packets" },
7465 { "tx_256_to_511_byte_packets" },
7466 { "tx_512_to_1023_byte_packets" },
7467 { "tx_1024_to_1522_byte_packets" },
7468 { "tx_1523_to_9022_byte_packets" },
7469 { "rx_xon_frames" },
7470 { "rx_xoff_frames" },
7471 { "tx_xon_frames" },
7472 { "tx_xoff_frames" },
7473 { "rx_mac_ctrl_frames" },
7474 { "rx_filtered_packets" },
7475 { "rx_ftq_discards" },
7476 { "rx_discards" },
7477 { "rx_fw_discards" },
7478 };
7479
7480 #define BNX2_NUM_STATS ARRAY_SIZE(bnx2_stats_str_arr)
7481
7482 #define STATS_OFFSET32(offset_name) (offsetof(struct statistics_block, offset_name) / 4)
7483
7484 static const unsigned long bnx2_stats_offset_arr[BNX2_NUM_STATS] = {
7485 STATS_OFFSET32(stat_IfHCInOctets_hi),
7486 STATS_OFFSET32(stat_IfHCInBadOctets_hi),
7487 STATS_OFFSET32(stat_IfHCOutOctets_hi),
7488 STATS_OFFSET32(stat_IfHCOutBadOctets_hi),
7489 STATS_OFFSET32(stat_IfHCInUcastPkts_hi),
7490 STATS_OFFSET32(stat_IfHCInMulticastPkts_hi),
7491 STATS_OFFSET32(stat_IfHCInBroadcastPkts_hi),
7492 STATS_OFFSET32(stat_IfHCOutUcastPkts_hi),
7493 STATS_OFFSET32(stat_IfHCOutMulticastPkts_hi),
7494 STATS_OFFSET32(stat_IfHCOutBroadcastPkts_hi),
7495 STATS_OFFSET32(stat_emac_tx_stat_dot3statsinternalmactransmiterrors),
7496 STATS_OFFSET32(stat_Dot3StatsCarrierSenseErrors),
7497 STATS_OFFSET32(stat_Dot3StatsFCSErrors),
7498 STATS_OFFSET32(stat_Dot3StatsAlignmentErrors),
7499 STATS_OFFSET32(stat_Dot3StatsSingleCollisionFrames),
7500 STATS_OFFSET32(stat_Dot3StatsMultipleCollisionFrames),
7501 STATS_OFFSET32(stat_Dot3StatsDeferredTransmissions),
7502 STATS_OFFSET32(stat_Dot3StatsExcessiveCollisions),
7503 STATS_OFFSET32(stat_Dot3StatsLateCollisions),
7504 STATS_OFFSET32(stat_EtherStatsCollisions),
7505 STATS_OFFSET32(stat_EtherStatsFragments),
7506 STATS_OFFSET32(stat_EtherStatsJabbers),
7507 STATS_OFFSET32(stat_EtherStatsUndersizePkts),
7508 STATS_OFFSET32(stat_EtherStatsOverrsizePkts),
7509 STATS_OFFSET32(stat_EtherStatsPktsRx64Octets),
7510 STATS_OFFSET32(stat_EtherStatsPktsRx65Octetsto127Octets),
7511 STATS_OFFSET32(stat_EtherStatsPktsRx128Octetsto255Octets),
7512 STATS_OFFSET32(stat_EtherStatsPktsRx256Octetsto511Octets),
7513 STATS_OFFSET32(stat_EtherStatsPktsRx512Octetsto1023Octets),
7514 STATS_OFFSET32(stat_EtherStatsPktsRx1024Octetsto1522Octets),
7515 STATS_OFFSET32(stat_EtherStatsPktsRx1523Octetsto9022Octets),
7516 STATS_OFFSET32(stat_EtherStatsPktsTx64Octets),
7517 STATS_OFFSET32(stat_EtherStatsPktsTx65Octetsto127Octets),
7518 STATS_OFFSET32(stat_EtherStatsPktsTx128Octetsto255Octets),
7519 STATS_OFFSET32(stat_EtherStatsPktsTx256Octetsto511Octets),
7520 STATS_OFFSET32(stat_EtherStatsPktsTx512Octetsto1023Octets),
7521 STATS_OFFSET32(stat_EtherStatsPktsTx1024Octetsto1522Octets),
7522 STATS_OFFSET32(stat_EtherStatsPktsTx1523Octetsto9022Octets),
7523 STATS_OFFSET32(stat_XonPauseFramesReceived),
7524 STATS_OFFSET32(stat_XoffPauseFramesReceived),
7525 STATS_OFFSET32(stat_OutXonSent),
7526 STATS_OFFSET32(stat_OutXoffSent),
7527 STATS_OFFSET32(stat_MacControlFramesReceived),
7528 STATS_OFFSET32(stat_IfInFramesL2FilterDiscards),
7529 STATS_OFFSET32(stat_IfInFTQDiscards),
7530 STATS_OFFSET32(stat_IfInMBUFDiscards),
7531 STATS_OFFSET32(stat_FwRxDrop),
7532 };
7533
7534 /* stat_IfHCInBadOctets and stat_Dot3StatsCarrierSenseErrors are
7535 * skipped because of errata.
7536 */
7537 static u8 bnx2_5706_stats_len_arr[BNX2_NUM_STATS] = {
7538 8,0,8,8,8,8,8,8,8,8,
7539 4,0,4,4,4,4,4,4,4,4,
7540 4,4,4,4,4,4,4,4,4,4,
7541 4,4,4,4,4,4,4,4,4,4,
7542 4,4,4,4,4,4,4,
7543 };
7544
7545 static u8 bnx2_5708_stats_len_arr[BNX2_NUM_STATS] = {
7546 8,0,8,8,8,8,8,8,8,8,
7547 4,4,4,4,4,4,4,4,4,4,
7548 4,4,4,4,4,4,4,4,4,4,
7549 4,4,4,4,4,4,4,4,4,4,
7550 4,4,4,4,4,4,4,
7551 };
7552
7553 #define BNX2_NUM_TESTS 6
7554
7555 static struct {
7556 char string[ETH_GSTRING_LEN];
7557 } bnx2_tests_str_arr[BNX2_NUM_TESTS] = {
7558 { "register_test (offline)" },
7559 { "memory_test (offline)" },
7560 { "loopback_test (offline)" },
7561 { "nvram_test (online)" },
7562 { "interrupt_test (online)" },
7563 { "link_test (online)" },
7564 };
7565
7566 static int
7567 bnx2_get_sset_count(struct net_device *dev, int sset)
7568 {
7569 switch (sset) {
7570 case ETH_SS_TEST:
7571 return BNX2_NUM_TESTS;
7572 case ETH_SS_STATS:
7573 return BNX2_NUM_STATS;
7574 default:
7575 return -EOPNOTSUPP;
7576 }
7577 }
7578
7579 static void
7580 bnx2_self_test(struct net_device *dev, struct ethtool_test *etest, u64 *buf)
7581 {
7582 struct bnx2 *bp = netdev_priv(dev);
7583
7584 memset(buf, 0, sizeof(u64) * BNX2_NUM_TESTS);
7585 if (etest->flags & ETH_TEST_FL_OFFLINE) {
7586 int i;
7587
7588 bnx2_netif_stop(bp, true);
7589 bnx2_reset_chip(bp, BNX2_DRV_MSG_CODE_DIAG);
7590 bnx2_free_skbs(bp);
7591
7592 if (bnx2_test_registers(bp) != 0) {
7593 buf[0] = 1;
7594 etest->flags |= ETH_TEST_FL_FAILED;
7595 }
7596 if (bnx2_test_memory(bp) != 0) {
7597 buf[1] = 1;
7598 etest->flags |= ETH_TEST_FL_FAILED;
7599 }
7600 if ((buf[2] = bnx2_test_loopback(bp)) != 0)
7601 etest->flags |= ETH_TEST_FL_FAILED;
7602
7603 if (!netif_running(bp->dev))
7604 bnx2_shutdown_chip(bp);
7605 else {
7606 bnx2_init_nic(bp, 1);
7607 bnx2_netif_start(bp, true);
7608 }
7609
7610 /* wait for link up */
7611 for (i = 0; i < 7; i++) {
7612 if (bp->link_up)
7613 break;
7614 msleep_interruptible(1000);
7615 }
7616 }
7617
7618 if (bnx2_test_nvram(bp) != 0) {
7619 buf[3] = 1;
7620 etest->flags |= ETH_TEST_FL_FAILED;
7621 }
7622 if (bnx2_test_intr(bp) != 0) {
7623 buf[4] = 1;
7624 etest->flags |= ETH_TEST_FL_FAILED;
7625 }
7626
7627 if (bnx2_test_link(bp) != 0) {
7628 buf[5] = 1;
7629 etest->flags |= ETH_TEST_FL_FAILED;
7630
7631 }
7632 }
7633
7634 static void
7635 bnx2_get_strings(struct net_device *dev, u32 stringset, u8 *buf)
7636 {
7637 switch (stringset) {
7638 case ETH_SS_STATS:
7639 memcpy(buf, bnx2_stats_str_arr,
7640 sizeof(bnx2_stats_str_arr));
7641 break;
7642 case ETH_SS_TEST:
7643 memcpy(buf, bnx2_tests_str_arr,
7644 sizeof(bnx2_tests_str_arr));
7645 break;
7646 }
7647 }
7648
7649 static void
7650 bnx2_get_ethtool_stats(struct net_device *dev,
7651 struct ethtool_stats *stats, u64 *buf)
7652 {
7653 struct bnx2 *bp = netdev_priv(dev);
7654 int i;
7655 u32 *hw_stats = (u32 *) bp->stats_blk;
7656 u32 *temp_stats = (u32 *) bp->temp_stats_blk;
7657 u8 *stats_len_arr = NULL;
7658
7659 if (hw_stats == NULL) {
7660 memset(buf, 0, sizeof(u64) * BNX2_NUM_STATS);
7661 return;
7662 }
7663
7664 if ((BNX2_CHIP_ID(bp) == BNX2_CHIP_ID_5706_A0) ||
7665 (BNX2_CHIP_ID(bp) == BNX2_CHIP_ID_5706_A1) ||
7666 (BNX2_CHIP_ID(bp) == BNX2_CHIP_ID_5706_A2) ||
7667 (BNX2_CHIP_ID(bp) == BNX2_CHIP_ID_5708_A0))
7668 stats_len_arr = bnx2_5706_stats_len_arr;
7669 else
7670 stats_len_arr = bnx2_5708_stats_len_arr;
7671
7672 for (i = 0; i < BNX2_NUM_STATS; i++) {
7673 unsigned long offset;
7674
7675 if (stats_len_arr[i] == 0) {
7676 /* skip this counter */
7677 buf[i] = 0;
7678 continue;
7679 }
7680
7681 offset = bnx2_stats_offset_arr[i];
7682 if (stats_len_arr[i] == 4) {
7683 /* 4-byte counter */
7684 buf[i] = (u64) *(hw_stats + offset) +
7685 *(temp_stats + offset);
7686 continue;
7687 }
7688 /* 8-byte counter */
7689 buf[i] = (((u64) *(hw_stats + offset)) << 32) +
7690 *(hw_stats + offset + 1) +
7691 (((u64) *(temp_stats + offset)) << 32) +
7692 *(temp_stats + offset + 1);
7693 }
7694 }
7695
7696 static int
7697 bnx2_set_phys_id(struct net_device *dev, enum ethtool_phys_id_state state)
7698 {
7699 struct bnx2 *bp = netdev_priv(dev);
7700
7701 switch (state) {
7702 case ETHTOOL_ID_ACTIVE:
7703 bp->leds_save = BNX2_RD(bp, BNX2_MISC_CFG);
7704 BNX2_WR(bp, BNX2_MISC_CFG, BNX2_MISC_CFG_LEDMODE_MAC);
7705 return 1; /* cycle on/off once per second */
7706
7707 case ETHTOOL_ID_ON:
7708 BNX2_WR(bp, BNX2_EMAC_LED, BNX2_EMAC_LED_OVERRIDE |
7709 BNX2_EMAC_LED_1000MB_OVERRIDE |
7710 BNX2_EMAC_LED_100MB_OVERRIDE |
7711 BNX2_EMAC_LED_10MB_OVERRIDE |
7712 BNX2_EMAC_LED_TRAFFIC_OVERRIDE |
7713 BNX2_EMAC_LED_TRAFFIC);
7714 break;
7715
7716 case ETHTOOL_ID_OFF:
7717 BNX2_WR(bp, BNX2_EMAC_LED, BNX2_EMAC_LED_OVERRIDE);
7718 break;
7719
7720 case ETHTOOL_ID_INACTIVE:
7721 BNX2_WR(bp, BNX2_EMAC_LED, 0);
7722 BNX2_WR(bp, BNX2_MISC_CFG, bp->leds_save);
7723 break;
7724 }
7725
7726 return 0;
7727 }
7728
7729 static int
7730 bnx2_set_features(struct net_device *dev, netdev_features_t features)
7731 {
7732 struct bnx2 *bp = netdev_priv(dev);
7733
7734 /* TSO with VLAN tag won't work with current firmware */
7735 if (features & NETIF_F_HW_VLAN_CTAG_TX)
7736 dev->vlan_features |= (dev->hw_features & NETIF_F_ALL_TSO);
7737 else
7738 dev->vlan_features &= ~NETIF_F_ALL_TSO;
7739
7740 if ((!!(features & NETIF_F_HW_VLAN_CTAG_RX) !=
7741 !!(bp->rx_mode & BNX2_EMAC_RX_MODE_KEEP_VLAN_TAG)) &&
7742 netif_running(dev)) {
7743 bnx2_netif_stop(bp, false);
7744 dev->features = features;
7745 bnx2_set_rx_mode(dev);
7746 bnx2_fw_sync(bp, BNX2_DRV_MSG_CODE_KEEP_VLAN_UPDATE, 0, 1);
7747 bnx2_netif_start(bp, false);
7748 return 1;
7749 }
7750
7751 return 0;
7752 }
7753
7754 static void bnx2_get_channels(struct net_device *dev,
7755 struct ethtool_channels *channels)
7756 {
7757 struct bnx2 *bp = netdev_priv(dev);
7758 u32 max_rx_rings = 1;
7759 u32 max_tx_rings = 1;
7760
7761 if ((bp->flags & BNX2_FLAG_MSIX_CAP) && !disable_msi) {
7762 max_rx_rings = RX_MAX_RINGS;
7763 max_tx_rings = TX_MAX_RINGS;
7764 }
7765
7766 channels->max_rx = max_rx_rings;
7767 channels->max_tx = max_tx_rings;
7768 channels->max_other = 0;
7769 channels->max_combined = 0;
7770 channels->rx_count = bp->num_rx_rings;
7771 channels->tx_count = bp->num_tx_rings;
7772 channels->other_count = 0;
7773 channels->combined_count = 0;
7774 }
7775
7776 static int bnx2_set_channels(struct net_device *dev,
7777 struct ethtool_channels *channels)
7778 {
7779 struct bnx2 *bp = netdev_priv(dev);
7780 u32 max_rx_rings = 1;
7781 u32 max_tx_rings = 1;
7782 int rc = 0;
7783
7784 if ((bp->flags & BNX2_FLAG_MSIX_CAP) && !disable_msi) {
7785 max_rx_rings = RX_MAX_RINGS;
7786 max_tx_rings = TX_MAX_RINGS;
7787 }
7788 if (channels->rx_count > max_rx_rings ||
7789 channels->tx_count > max_tx_rings)
7790 return -EINVAL;
7791
7792 bp->num_req_rx_rings = channels->rx_count;
7793 bp->num_req_tx_rings = channels->tx_count;
7794
7795 if (netif_running(dev))
7796 rc = bnx2_change_ring_size(bp, bp->rx_ring_size,
7797 bp->tx_ring_size, true);
7798
7799 return rc;
7800 }
7801
7802 static const struct ethtool_ops bnx2_ethtool_ops = {
7803 .get_settings = bnx2_get_settings,
7804 .set_settings = bnx2_set_settings,
7805 .get_drvinfo = bnx2_get_drvinfo,
7806 .get_regs_len = bnx2_get_regs_len,
7807 .get_regs = bnx2_get_regs,
7808 .get_wol = bnx2_get_wol,
7809 .set_wol = bnx2_set_wol,
7810 .nway_reset = bnx2_nway_reset,
7811 .get_link = bnx2_get_link,
7812 .get_eeprom_len = bnx2_get_eeprom_len,
7813 .get_eeprom = bnx2_get_eeprom,
7814 .set_eeprom = bnx2_set_eeprom,
7815 .get_coalesce = bnx2_get_coalesce,
7816 .set_coalesce = bnx2_set_coalesce,
7817 .get_ringparam = bnx2_get_ringparam,
7818 .set_ringparam = bnx2_set_ringparam,
7819 .get_pauseparam = bnx2_get_pauseparam,
7820 .set_pauseparam = bnx2_set_pauseparam,
7821 .self_test = bnx2_self_test,
7822 .get_strings = bnx2_get_strings,
7823 .set_phys_id = bnx2_set_phys_id,
7824 .get_ethtool_stats = bnx2_get_ethtool_stats,
7825 .get_sset_count = bnx2_get_sset_count,
7826 .get_channels = bnx2_get_channels,
7827 .set_channels = bnx2_set_channels,
7828 };
7829
7830 /* Called with rtnl_lock */
7831 static int
7832 bnx2_ioctl(struct net_device *dev, struct ifreq *ifr, int cmd)
7833 {
7834 struct mii_ioctl_data *data = if_mii(ifr);
7835 struct bnx2 *bp = netdev_priv(dev);
7836 int err;
7837
7838 switch(cmd) {
7839 case SIOCGMIIPHY:
7840 data->phy_id = bp->phy_addr;
7841
7842 /* fallthru */
7843 case SIOCGMIIREG: {
7844 u32 mii_regval;
7845
7846 if (bp->phy_flags & BNX2_PHY_FLAG_REMOTE_PHY_CAP)
7847 return -EOPNOTSUPP;
7848
7849 if (!netif_running(dev))
7850 return -EAGAIN;
7851
7852 spin_lock_bh(&bp->phy_lock);
7853 err = bnx2_read_phy(bp, data->reg_num & 0x1f, &mii_regval);
7854 spin_unlock_bh(&bp->phy_lock);
7855
7856 data->val_out = mii_regval;
7857
7858 return err;
7859 }
7860
7861 case SIOCSMIIREG:
7862 if (bp->phy_flags & BNX2_PHY_FLAG_REMOTE_PHY_CAP)
7863 return -EOPNOTSUPP;
7864
7865 if (!netif_running(dev))
7866 return -EAGAIN;
7867
7868 spin_lock_bh(&bp->phy_lock);
7869 err = bnx2_write_phy(bp, data->reg_num & 0x1f, data->val_in);
7870 spin_unlock_bh(&bp->phy_lock);
7871
7872 return err;
7873
7874 default:
7875 /* do nothing */
7876 break;
7877 }
7878 return -EOPNOTSUPP;
7879 }
7880
7881 /* Called with rtnl_lock */
7882 static int
7883 bnx2_change_mac_addr(struct net_device *dev, void *p)
7884 {
7885 struct sockaddr *addr = p;
7886 struct bnx2 *bp = netdev_priv(dev);
7887
7888 if (!is_valid_ether_addr(addr->sa_data))
7889 return -EADDRNOTAVAIL;
7890
7891 memcpy(dev->dev_addr, addr->sa_data, dev->addr_len);
7892 if (netif_running(dev))
7893 bnx2_set_mac_addr(bp, bp->dev->dev_addr, 0);
7894
7895 return 0;
7896 }
7897
7898 /* Called with rtnl_lock */
7899 static int
7900 bnx2_change_mtu(struct net_device *dev, int new_mtu)
7901 {
7902 struct bnx2 *bp = netdev_priv(dev);
7903
7904 if (((new_mtu + ETH_HLEN) > MAX_ETHERNET_JUMBO_PACKET_SIZE) ||
7905 ((new_mtu + ETH_HLEN) < MIN_ETHERNET_PACKET_SIZE))
7906 return -EINVAL;
7907
7908 dev->mtu = new_mtu;
7909 return bnx2_change_ring_size(bp, bp->rx_ring_size, bp->tx_ring_size,
7910 false);
7911 }
7912
7913 #ifdef CONFIG_NET_POLL_CONTROLLER
7914 static void
7915 poll_bnx2(struct net_device *dev)
7916 {
7917 struct bnx2 *bp = netdev_priv(dev);
7918 int i;
7919
7920 for (i = 0; i < bp->irq_nvecs; i++) {
7921 struct bnx2_irq *irq = &bp->irq_tbl[i];
7922
7923 disable_irq(irq->vector);
7924 irq->handler(irq->vector, &bp->bnx2_napi[i]);
7925 enable_irq(irq->vector);
7926 }
7927 }
7928 #endif
7929
7930 static void
7931 bnx2_get_5709_media(struct bnx2 *bp)
7932 {
7933 u32 val = BNX2_RD(bp, BNX2_MISC_DUAL_MEDIA_CTRL);
7934 u32 bond_id = val & BNX2_MISC_DUAL_MEDIA_CTRL_BOND_ID;
7935 u32 strap;
7936
7937 if (bond_id == BNX2_MISC_DUAL_MEDIA_CTRL_BOND_ID_C)
7938 return;
7939 else if (bond_id == BNX2_MISC_DUAL_MEDIA_CTRL_BOND_ID_S) {
7940 bp->phy_flags |= BNX2_PHY_FLAG_SERDES;
7941 return;
7942 }
7943
7944 if (val & BNX2_MISC_DUAL_MEDIA_CTRL_STRAP_OVERRIDE)
7945 strap = (val & BNX2_MISC_DUAL_MEDIA_CTRL_PHY_CTRL) >> 21;
7946 else
7947 strap = (val & BNX2_MISC_DUAL_MEDIA_CTRL_PHY_CTRL_STRAP) >> 8;
7948
7949 if (bp->func == 0) {
7950 switch (strap) {
7951 case 0x4:
7952 case 0x5:
7953 case 0x6:
7954 bp->phy_flags |= BNX2_PHY_FLAG_SERDES;
7955 return;
7956 }
7957 } else {
7958 switch (strap) {
7959 case 0x1:
7960 case 0x2:
7961 case 0x4:
7962 bp->phy_flags |= BNX2_PHY_FLAG_SERDES;
7963 return;
7964 }
7965 }
7966 }
7967
7968 static void
7969 bnx2_get_pci_speed(struct bnx2 *bp)
7970 {
7971 u32 reg;
7972
7973 reg = BNX2_RD(bp, BNX2_PCICFG_MISC_STATUS);
7974 if (reg & BNX2_PCICFG_MISC_STATUS_PCIX_DET) {
7975 u32 clkreg;
7976
7977 bp->flags |= BNX2_FLAG_PCIX;
7978
7979 clkreg = BNX2_RD(bp, BNX2_PCICFG_PCI_CLOCK_CONTROL_BITS);
7980
7981 clkreg &= BNX2_PCICFG_PCI_CLOCK_CONTROL_BITS_PCI_CLK_SPD_DET;
7982 switch (clkreg) {
7983 case BNX2_PCICFG_PCI_CLOCK_CONTROL_BITS_PCI_CLK_SPD_DET_133MHZ:
7984 bp->bus_speed_mhz = 133;
7985 break;
7986
7987 case BNX2_PCICFG_PCI_CLOCK_CONTROL_BITS_PCI_CLK_SPD_DET_95MHZ:
7988 bp->bus_speed_mhz = 100;
7989 break;
7990
7991 case BNX2_PCICFG_PCI_CLOCK_CONTROL_BITS_PCI_CLK_SPD_DET_66MHZ:
7992 case BNX2_PCICFG_PCI_CLOCK_CONTROL_BITS_PCI_CLK_SPD_DET_80MHZ:
7993 bp->bus_speed_mhz = 66;
7994 break;
7995
7996 case BNX2_PCICFG_PCI_CLOCK_CONTROL_BITS_PCI_CLK_SPD_DET_48MHZ:
7997 case BNX2_PCICFG_PCI_CLOCK_CONTROL_BITS_PCI_CLK_SPD_DET_55MHZ:
7998 bp->bus_speed_mhz = 50;
7999 break;
8000
8001 case BNX2_PCICFG_PCI_CLOCK_CONTROL_BITS_PCI_CLK_SPD_DET_LOW:
8002 case BNX2_PCICFG_PCI_CLOCK_CONTROL_BITS_PCI_CLK_SPD_DET_32MHZ:
8003 case BNX2_PCICFG_PCI_CLOCK_CONTROL_BITS_PCI_CLK_SPD_DET_38MHZ:
8004 bp->bus_speed_mhz = 33;
8005 break;
8006 }
8007 }
8008 else {
8009 if (reg & BNX2_PCICFG_MISC_STATUS_M66EN)
8010 bp->bus_speed_mhz = 66;
8011 else
8012 bp->bus_speed_mhz = 33;
8013 }
8014
8015 if (reg & BNX2_PCICFG_MISC_STATUS_32BIT_DET)
8016 bp->flags |= BNX2_FLAG_PCI_32BIT;
8017
8018 }
8019
8020 static void
8021 bnx2_read_vpd_fw_ver(struct bnx2 *bp)
8022 {
8023 int rc, i, j;
8024 u8 *data;
8025 unsigned int block_end, rosize, len;
8026
8027 #define BNX2_VPD_NVRAM_OFFSET 0x300
8028 #define BNX2_VPD_LEN 128
8029 #define BNX2_MAX_VER_SLEN 30
8030
8031 data = kmalloc(256, GFP_KERNEL);
8032 if (!data)
8033 return;
8034
8035 rc = bnx2_nvram_read(bp, BNX2_VPD_NVRAM_OFFSET, data + BNX2_VPD_LEN,
8036 BNX2_VPD_LEN);
8037 if (rc)
8038 goto vpd_done;
8039
8040 for (i = 0; i < BNX2_VPD_LEN; i += 4) {
8041 data[i] = data[i + BNX2_VPD_LEN + 3];
8042 data[i + 1] = data[i + BNX2_VPD_LEN + 2];
8043 data[i + 2] = data[i + BNX2_VPD_LEN + 1];
8044 data[i + 3] = data[i + BNX2_VPD_LEN];
8045 }
8046
8047 i = pci_vpd_find_tag(data, 0, BNX2_VPD_LEN, PCI_VPD_LRDT_RO_DATA);
8048 if (i < 0)
8049 goto vpd_done;
8050
8051 rosize = pci_vpd_lrdt_size(&data[i]);
8052 i += PCI_VPD_LRDT_TAG_SIZE;
8053 block_end = i + rosize;
8054
8055 if (block_end > BNX2_VPD_LEN)
8056 goto vpd_done;
8057
8058 j = pci_vpd_find_info_keyword(data, i, rosize,
8059 PCI_VPD_RO_KEYWORD_MFR_ID);
8060 if (j < 0)
8061 goto vpd_done;
8062
8063 len = pci_vpd_info_field_size(&data[j]);
8064
8065 j += PCI_VPD_INFO_FLD_HDR_SIZE;
8066 if (j + len > block_end || len != 4 ||
8067 memcmp(&data[j], "1028", 4))
8068 goto vpd_done;
8069
8070 j = pci_vpd_find_info_keyword(data, i, rosize,
8071 PCI_VPD_RO_KEYWORD_VENDOR0);
8072 if (j < 0)
8073 goto vpd_done;
8074
8075 len = pci_vpd_info_field_size(&data[j]);
8076
8077 j += PCI_VPD_INFO_FLD_HDR_SIZE;
8078 if (j + len > block_end || len > BNX2_MAX_VER_SLEN)
8079 goto vpd_done;
8080
8081 memcpy(bp->fw_version, &data[j], len);
8082 bp->fw_version[len] = ' ';
8083
8084 vpd_done:
8085 kfree(data);
8086 }
8087
8088 static int
8089 bnx2_init_board(struct pci_dev *pdev, struct net_device *dev)
8090 {
8091 struct bnx2 *bp;
8092 int rc, i, j;
8093 u32 reg;
8094 u64 dma_mask, persist_dma_mask;
8095 int err;
8096
8097 SET_NETDEV_DEV(dev, &pdev->dev);
8098 bp = netdev_priv(dev);
8099
8100 bp->flags = 0;
8101 bp->phy_flags = 0;
8102
8103 bp->temp_stats_blk =
8104 kzalloc(sizeof(struct statistics_block), GFP_KERNEL);
8105
8106 if (bp->temp_stats_blk == NULL) {
8107 rc = -ENOMEM;
8108 goto err_out;
8109 }
8110
8111 /* enable device (incl. PCI PM wakeup), and bus-mastering */
8112 rc = pci_enable_device(pdev);
8113 if (rc) {
8114 dev_err(&pdev->dev, "Cannot enable PCI device, aborting\n");
8115 goto err_out;
8116 }
8117
8118 if (!(pci_resource_flags(pdev, 0) & IORESOURCE_MEM)) {
8119 dev_err(&pdev->dev,
8120 "Cannot find PCI device base address, aborting\n");
8121 rc = -ENODEV;
8122 goto err_out_disable;
8123 }
8124
8125 rc = pci_request_regions(pdev, DRV_MODULE_NAME);
8126 if (rc) {
8127 dev_err(&pdev->dev, "Cannot obtain PCI resources, aborting\n");
8128 goto err_out_disable;
8129 }
8130
8131 pci_set_master(pdev);
8132
8133 bp->pm_cap = pdev->pm_cap;
8134 if (bp->pm_cap == 0) {
8135 dev_err(&pdev->dev,
8136 "Cannot find power management capability, aborting\n");
8137 rc = -EIO;
8138 goto err_out_release;
8139 }
8140
8141 bp->dev = dev;
8142 bp->pdev = pdev;
8143
8144 spin_lock_init(&bp->phy_lock);
8145 spin_lock_init(&bp->indirect_lock);
8146 #ifdef BCM_CNIC
8147 mutex_init(&bp->cnic_lock);
8148 #endif
8149 INIT_WORK(&bp->reset_task, bnx2_reset_task);
8150
8151 bp->regview = pci_iomap(pdev, 0, MB_GET_CID_ADDR(TX_TSS_CID +
8152 TX_MAX_TSS_RINGS + 1));
8153 if (!bp->regview) {
8154 dev_err(&pdev->dev, "Cannot map register space, aborting\n");
8155 rc = -ENOMEM;
8156 goto err_out_release;
8157 }
8158
8159 /* Configure byte swap and enable write to the reg_window registers.
8160 * Rely on CPU to do target byte swapping on big endian systems
8161 * The chip's target access swapping will not swap all accesses
8162 */
8163 BNX2_WR(bp, BNX2_PCICFG_MISC_CONFIG,
8164 BNX2_PCICFG_MISC_CONFIG_REG_WINDOW_ENA |
8165 BNX2_PCICFG_MISC_CONFIG_TARGET_MB_WORD_SWAP);
8166
8167 bp->chip_id = BNX2_RD(bp, BNX2_MISC_ID);
8168
8169 if (BNX2_CHIP(bp) == BNX2_CHIP_5709) {
8170 if (!pci_is_pcie(pdev)) {
8171 dev_err(&pdev->dev, "Not PCIE, aborting\n");
8172 rc = -EIO;
8173 goto err_out_unmap;
8174 }
8175 bp->flags |= BNX2_FLAG_PCIE;
8176 if (BNX2_CHIP_REV(bp) == BNX2_CHIP_REV_Ax)
8177 bp->flags |= BNX2_FLAG_JUMBO_BROKEN;
8178
8179 /* AER (Advanced Error Reporting) hooks */
8180 err = pci_enable_pcie_error_reporting(pdev);
8181 if (!err)
8182 bp->flags |= BNX2_FLAG_AER_ENABLED;
8183
8184 } else {
8185 bp->pcix_cap = pci_find_capability(pdev, PCI_CAP_ID_PCIX);
8186 if (bp->pcix_cap == 0) {
8187 dev_err(&pdev->dev,
8188 "Cannot find PCIX capability, aborting\n");
8189 rc = -EIO;
8190 goto err_out_unmap;
8191 }
8192 bp->flags |= BNX2_FLAG_BROKEN_STATS;
8193 }
8194
8195 if (BNX2_CHIP(bp) == BNX2_CHIP_5709 &&
8196 BNX2_CHIP_REV(bp) != BNX2_CHIP_REV_Ax) {
8197 if (pdev->msix_cap)
8198 bp->flags |= BNX2_FLAG_MSIX_CAP;
8199 }
8200
8201 if (BNX2_CHIP_ID(bp) != BNX2_CHIP_ID_5706_A0 &&
8202 BNX2_CHIP_ID(bp) != BNX2_CHIP_ID_5706_A1) {
8203 if (pdev->msi_cap)
8204 bp->flags |= BNX2_FLAG_MSI_CAP;
8205 }
8206
8207 /* 5708 cannot support DMA addresses > 40-bit. */
8208 if (BNX2_CHIP(bp) == BNX2_CHIP_5708)
8209 persist_dma_mask = dma_mask = DMA_BIT_MASK(40);
8210 else
8211 persist_dma_mask = dma_mask = DMA_BIT_MASK(64);
8212
8213 /* Configure DMA attributes. */
8214 if (pci_set_dma_mask(pdev, dma_mask) == 0) {
8215 dev->features |= NETIF_F_HIGHDMA;
8216 rc = pci_set_consistent_dma_mask(pdev, persist_dma_mask);
8217 if (rc) {
8218 dev_err(&pdev->dev,
8219 "pci_set_consistent_dma_mask failed, aborting\n");
8220 goto err_out_unmap;
8221 }
8222 } else if ((rc = pci_set_dma_mask(pdev, DMA_BIT_MASK(32))) != 0) {
8223 dev_err(&pdev->dev, "System does not support DMA, aborting\n");
8224 goto err_out_unmap;
8225 }
8226
8227 if (!(bp->flags & BNX2_FLAG_PCIE))
8228 bnx2_get_pci_speed(bp);
8229
8230 /* 5706A0 may falsely detect SERR and PERR. */
8231 if (BNX2_CHIP_ID(bp) == BNX2_CHIP_ID_5706_A0) {
8232 reg = BNX2_RD(bp, PCI_COMMAND);
8233 reg &= ~(PCI_COMMAND_SERR | PCI_COMMAND_PARITY);
8234 BNX2_WR(bp, PCI_COMMAND, reg);
8235 } else if ((BNX2_CHIP_ID(bp) == BNX2_CHIP_ID_5706_A1) &&
8236 !(bp->flags & BNX2_FLAG_PCIX)) {
8237
8238 dev_err(&pdev->dev,
8239 "5706 A1 can only be used in a PCIX bus, aborting\n");
8240 goto err_out_unmap;
8241 }
8242
8243 bnx2_init_nvram(bp);
8244
8245 reg = bnx2_reg_rd_ind(bp, BNX2_SHM_HDR_SIGNATURE);
8246
8247 if (bnx2_reg_rd_ind(bp, BNX2_MCP_TOE_ID) & BNX2_MCP_TOE_ID_FUNCTION_ID)
8248 bp->func = 1;
8249
8250 if ((reg & BNX2_SHM_HDR_SIGNATURE_SIG_MASK) ==
8251 BNX2_SHM_HDR_SIGNATURE_SIG) {
8252 u32 off = bp->func << 2;
8253
8254 bp->shmem_base = bnx2_reg_rd_ind(bp, BNX2_SHM_HDR_ADDR_0 + off);
8255 } else
8256 bp->shmem_base = HOST_VIEW_SHMEM_BASE;
8257
8258 /* Get the permanent MAC address. First we need to make sure the
8259 * firmware is actually running.
8260 */
8261 reg = bnx2_shmem_rd(bp, BNX2_DEV_INFO_SIGNATURE);
8262
8263 if ((reg & BNX2_DEV_INFO_SIGNATURE_MAGIC_MASK) !=
8264 BNX2_DEV_INFO_SIGNATURE_MAGIC) {
8265 dev_err(&pdev->dev, "Firmware not running, aborting\n");
8266 rc = -ENODEV;
8267 goto err_out_unmap;
8268 }
8269
8270 bnx2_read_vpd_fw_ver(bp);
8271
8272 j = strlen(bp->fw_version);
8273 reg = bnx2_shmem_rd(bp, BNX2_DEV_INFO_BC_REV);
8274 for (i = 0; i < 3 && j < 24; i++) {
8275 u8 num, k, skip0;
8276
8277 if (i == 0) {
8278 bp->fw_version[j++] = 'b';
8279 bp->fw_version[j++] = 'c';
8280 bp->fw_version[j++] = ' ';
8281 }
8282 num = (u8) (reg >> (24 - (i * 8)));
8283 for (k = 100, skip0 = 1; k >= 1; num %= k, k /= 10) {
8284 if (num >= k || !skip0 || k == 1) {
8285 bp->fw_version[j++] = (num / k) + '0';
8286 skip0 = 0;
8287 }
8288 }
8289 if (i != 2)
8290 bp->fw_version[j++] = '.';
8291 }
8292 reg = bnx2_shmem_rd(bp, BNX2_PORT_FEATURE);
8293 if (reg & BNX2_PORT_FEATURE_WOL_ENABLED)
8294 bp->wol = 1;
8295
8296 if (reg & BNX2_PORT_FEATURE_ASF_ENABLED) {
8297 bp->flags |= BNX2_FLAG_ASF_ENABLE;
8298
8299 for (i = 0; i < 30; i++) {
8300 reg = bnx2_shmem_rd(bp, BNX2_BC_STATE_CONDITION);
8301 if (reg & BNX2_CONDITION_MFW_RUN_MASK)
8302 break;
8303 msleep(10);
8304 }
8305 }
8306 reg = bnx2_shmem_rd(bp, BNX2_BC_STATE_CONDITION);
8307 reg &= BNX2_CONDITION_MFW_RUN_MASK;
8308 if (reg != BNX2_CONDITION_MFW_RUN_UNKNOWN &&
8309 reg != BNX2_CONDITION_MFW_RUN_NONE) {
8310 u32 addr = bnx2_shmem_rd(bp, BNX2_MFW_VER_PTR);
8311
8312 if (j < 32)
8313 bp->fw_version[j++] = ' ';
8314 for (i = 0; i < 3 && j < 28; i++) {
8315 reg = bnx2_reg_rd_ind(bp, addr + i * 4);
8316 reg = be32_to_cpu(reg);
8317 memcpy(&bp->fw_version[j], &reg, 4);
8318 j += 4;
8319 }
8320 }
8321
8322 reg = bnx2_shmem_rd(bp, BNX2_PORT_HW_CFG_MAC_UPPER);
8323 bp->mac_addr[0] = (u8) (reg >> 8);
8324 bp->mac_addr[1] = (u8) reg;
8325
8326 reg = bnx2_shmem_rd(bp, BNX2_PORT_HW_CFG_MAC_LOWER);
8327 bp->mac_addr[2] = (u8) (reg >> 24);
8328 bp->mac_addr[3] = (u8) (reg >> 16);
8329 bp->mac_addr[4] = (u8) (reg >> 8);
8330 bp->mac_addr[5] = (u8) reg;
8331
8332 bp->tx_ring_size = BNX2_MAX_TX_DESC_CNT;
8333 bnx2_set_rx_ring_size(bp, 255);
8334
8335 bp->tx_quick_cons_trip_int = 2;
8336 bp->tx_quick_cons_trip = 20;
8337 bp->tx_ticks_int = 18;
8338 bp->tx_ticks = 80;
8339
8340 bp->rx_quick_cons_trip_int = 2;
8341 bp->rx_quick_cons_trip = 12;
8342 bp->rx_ticks_int = 18;
8343 bp->rx_ticks = 18;
8344
8345 bp->stats_ticks = USEC_PER_SEC & BNX2_HC_STATS_TICKS_HC_STAT_TICKS;
8346
8347 bp->current_interval = BNX2_TIMER_INTERVAL;
8348
8349 bp->phy_addr = 1;
8350
8351 /* allocate stats_blk */
8352 rc = bnx2_alloc_stats_blk(dev);
8353 if (rc)
8354 goto err_out_unmap;
8355
8356 /* Disable WOL support if we are running on a SERDES chip. */
8357 if (BNX2_CHIP(bp) == BNX2_CHIP_5709)
8358 bnx2_get_5709_media(bp);
8359 else if (BNX2_CHIP_BOND(bp) & BNX2_CHIP_BOND_SERDES_BIT)
8360 bp->phy_flags |= BNX2_PHY_FLAG_SERDES;
8361
8362 bp->phy_port = PORT_TP;
8363 if (bp->phy_flags & BNX2_PHY_FLAG_SERDES) {
8364 bp->phy_port = PORT_FIBRE;
8365 reg = bnx2_shmem_rd(bp, BNX2_SHARED_HW_CFG_CONFIG);
8366 if (!(reg & BNX2_SHARED_HW_CFG_GIG_LINK_ON_VAUX)) {
8367 bp->flags |= BNX2_FLAG_NO_WOL;
8368 bp->wol = 0;
8369 }
8370 if (BNX2_CHIP(bp) == BNX2_CHIP_5706) {
8371 /* Don't do parallel detect on this board because of
8372 * some board problems. The link will not go down
8373 * if we do parallel detect.
8374 */
8375 if (pdev->subsystem_vendor == PCI_VENDOR_ID_HP &&
8376 pdev->subsystem_device == 0x310c)
8377 bp->phy_flags |= BNX2_PHY_FLAG_NO_PARALLEL;
8378 } else {
8379 bp->phy_addr = 2;
8380 if (reg & BNX2_SHARED_HW_CFG_PHY_2_5G)
8381 bp->phy_flags |= BNX2_PHY_FLAG_2_5G_CAPABLE;
8382 }
8383 } else if (BNX2_CHIP(bp) == BNX2_CHIP_5706 ||
8384 BNX2_CHIP(bp) == BNX2_CHIP_5708)
8385 bp->phy_flags |= BNX2_PHY_FLAG_CRC_FIX;
8386 else if (BNX2_CHIP(bp) == BNX2_CHIP_5709 &&
8387 (BNX2_CHIP_REV(bp) == BNX2_CHIP_REV_Ax ||
8388 BNX2_CHIP_REV(bp) == BNX2_CHIP_REV_Bx))
8389 bp->phy_flags |= BNX2_PHY_FLAG_DIS_EARLY_DAC;
8390
8391 bnx2_init_fw_cap(bp);
8392
8393 if ((BNX2_CHIP_ID(bp) == BNX2_CHIP_ID_5708_A0) ||
8394 (BNX2_CHIP_ID(bp) == BNX2_CHIP_ID_5708_B0) ||
8395 (BNX2_CHIP_ID(bp) == BNX2_CHIP_ID_5708_B1) ||
8396 !(BNX2_RD(bp, BNX2_PCI_CONFIG_3) & BNX2_PCI_CONFIG_3_VAUX_PRESET)) {
8397 bp->flags |= BNX2_FLAG_NO_WOL;
8398 bp->wol = 0;
8399 }
8400
8401 if (bp->flags & BNX2_FLAG_NO_WOL)
8402 device_set_wakeup_capable(&bp->pdev->dev, false);
8403 else
8404 device_set_wakeup_enable(&bp->pdev->dev, bp->wol);
8405
8406 if (BNX2_CHIP_ID(bp) == BNX2_CHIP_ID_5706_A0) {
8407 bp->tx_quick_cons_trip_int =
8408 bp->tx_quick_cons_trip;
8409 bp->tx_ticks_int = bp->tx_ticks;
8410 bp->rx_quick_cons_trip_int =
8411 bp->rx_quick_cons_trip;
8412 bp->rx_ticks_int = bp->rx_ticks;
8413 bp->comp_prod_trip_int = bp->comp_prod_trip;
8414 bp->com_ticks_int = bp->com_ticks;
8415 bp->cmd_ticks_int = bp->cmd_ticks;
8416 }
8417
8418 /* Disable MSI on 5706 if AMD 8132 bridge is found.
8419 *
8420 * MSI is defined to be 32-bit write. The 5706 does 64-bit MSI writes
8421 * with byte enables disabled on the unused 32-bit word. This is legal
8422 * but causes problems on the AMD 8132 which will eventually stop
8423 * responding after a while.
8424 *
8425 * AMD believes this incompatibility is unique to the 5706, and
8426 * prefers to locally disable MSI rather than globally disabling it.
8427 */
8428 if (BNX2_CHIP(bp) == BNX2_CHIP_5706 && disable_msi == 0) {
8429 struct pci_dev *amd_8132 = NULL;
8430
8431 while ((amd_8132 = pci_get_device(PCI_VENDOR_ID_AMD,
8432 PCI_DEVICE_ID_AMD_8132_BRIDGE,
8433 amd_8132))) {
8434
8435 if (amd_8132->revision >= 0x10 &&
8436 amd_8132->revision <= 0x13) {
8437 disable_msi = 1;
8438 pci_dev_put(amd_8132);
8439 break;
8440 }
8441 }
8442 }
8443
8444 bnx2_set_default_link(bp);
8445 bp->req_flow_ctrl = FLOW_CTRL_RX | FLOW_CTRL_TX;
8446
8447 init_timer(&bp->timer);
8448 bp->timer.expires = RUN_AT(BNX2_TIMER_INTERVAL);
8449 bp->timer.data = (unsigned long) bp;
8450 bp->timer.function = bnx2_timer;
8451
8452 #ifdef BCM_CNIC
8453 if (bnx2_shmem_rd(bp, BNX2_ISCSI_INITIATOR) & BNX2_ISCSI_INITIATOR_EN)
8454 bp->cnic_eth_dev.max_iscsi_conn =
8455 (bnx2_shmem_rd(bp, BNX2_ISCSI_MAX_CONN) &
8456 BNX2_ISCSI_MAX_CONN_MASK) >> BNX2_ISCSI_MAX_CONN_SHIFT;
8457 bp->cnic_probe = bnx2_cnic_probe;
8458 #endif
8459 pci_save_state(pdev);
8460
8461 return 0;
8462
8463 err_out_unmap:
8464 if (bp->flags & BNX2_FLAG_AER_ENABLED) {
8465 pci_disable_pcie_error_reporting(pdev);
8466 bp->flags &= ~BNX2_FLAG_AER_ENABLED;
8467 }
8468
8469 pci_iounmap(pdev, bp->regview);
8470 bp->regview = NULL;
8471
8472 err_out_release:
8473 pci_release_regions(pdev);
8474
8475 err_out_disable:
8476 pci_disable_device(pdev);
8477
8478 err_out:
8479 kfree(bp->temp_stats_blk);
8480
8481 return rc;
8482 }
8483
8484 static char *
8485 bnx2_bus_string(struct bnx2 *bp, char *str)
8486 {
8487 char *s = str;
8488
8489 if (bp->flags & BNX2_FLAG_PCIE) {
8490 s += sprintf(s, "PCI Express");
8491 } else {
8492 s += sprintf(s, "PCI");
8493 if (bp->flags & BNX2_FLAG_PCIX)
8494 s += sprintf(s, "-X");
8495 if (bp->flags & BNX2_FLAG_PCI_32BIT)
8496 s += sprintf(s, " 32-bit");
8497 else
8498 s += sprintf(s, " 64-bit");
8499 s += sprintf(s, " %dMHz", bp->bus_speed_mhz);
8500 }
8501 return str;
8502 }
8503
8504 static void
8505 bnx2_del_napi(struct bnx2 *bp)
8506 {
8507 int i;
8508
8509 for (i = 0; i < bp->irq_nvecs; i++)
8510 netif_napi_del(&bp->bnx2_napi[i].napi);
8511 }
8512
8513 static void
8514 bnx2_init_napi(struct bnx2 *bp)
8515 {
8516 int i;
8517
8518 for (i = 0; i < bp->irq_nvecs; i++) {
8519 struct bnx2_napi *bnapi = &bp->bnx2_napi[i];
8520 int (*poll)(struct napi_struct *, int);
8521
8522 if (i == 0)
8523 poll = bnx2_poll;
8524 else
8525 poll = bnx2_poll_msix;
8526
8527 netif_napi_add(bp->dev, &bp->bnx2_napi[i].napi, poll, 64);
8528 bnapi->bp = bp;
8529 }
8530 }
8531
8532 static const struct net_device_ops bnx2_netdev_ops = {
8533 .ndo_open = bnx2_open,
8534 .ndo_start_xmit = bnx2_start_xmit,
8535 .ndo_stop = bnx2_close,
8536 .ndo_get_stats64 = bnx2_get_stats64,
8537 .ndo_set_rx_mode = bnx2_set_rx_mode,
8538 .ndo_do_ioctl = bnx2_ioctl,
8539 .ndo_validate_addr = eth_validate_addr,
8540 .ndo_set_mac_address = bnx2_change_mac_addr,
8541 .ndo_change_mtu = bnx2_change_mtu,
8542 .ndo_set_features = bnx2_set_features,
8543 .ndo_tx_timeout = bnx2_tx_timeout,
8544 #ifdef CONFIG_NET_POLL_CONTROLLER
8545 .ndo_poll_controller = poll_bnx2,
8546 #endif
8547 };
8548
8549 static int
8550 bnx2_init_one(struct pci_dev *pdev, const struct pci_device_id *ent)
8551 {
8552 static int version_printed = 0;
8553 struct net_device *dev;
8554 struct bnx2 *bp;
8555 int rc;
8556 char str[40];
8557
8558 if (version_printed++ == 0)
8559 pr_info("%s", version);
8560
8561 /* dev zeroed in init_etherdev */
8562 dev = alloc_etherdev_mq(sizeof(*bp), TX_MAX_RINGS);
8563 if (!dev)
8564 return -ENOMEM;
8565
8566 rc = bnx2_init_board(pdev, dev);
8567 if (rc < 0)
8568 goto err_free;
8569
8570 dev->netdev_ops = &bnx2_netdev_ops;
8571 dev->watchdog_timeo = TX_TIMEOUT;
8572 dev->ethtool_ops = &bnx2_ethtool_ops;
8573
8574 bp = netdev_priv(dev);
8575
8576 pci_set_drvdata(pdev, dev);
8577
8578 memcpy(dev->dev_addr, bp->mac_addr, ETH_ALEN);
8579
8580 dev->hw_features = NETIF_F_IP_CSUM | NETIF_F_SG |
8581 NETIF_F_TSO | NETIF_F_TSO_ECN |
8582 NETIF_F_RXHASH | NETIF_F_RXCSUM;
8583
8584 if (BNX2_CHIP(bp) == BNX2_CHIP_5709)
8585 dev->hw_features |= NETIF_F_IPV6_CSUM | NETIF_F_TSO6;
8586
8587 dev->vlan_features = dev->hw_features;
8588 dev->hw_features |= NETIF_F_HW_VLAN_CTAG_TX | NETIF_F_HW_VLAN_CTAG_RX;
8589 dev->features |= dev->hw_features;
8590 dev->priv_flags |= IFF_UNICAST_FLT;
8591
8592 if (!(bp->flags & BNX2_FLAG_CAN_KEEP_VLAN))
8593 dev->hw_features &= ~NETIF_F_HW_VLAN_CTAG_RX;
8594
8595 if ((rc = register_netdev(dev))) {
8596 dev_err(&pdev->dev, "Cannot register net device\n");
8597 goto error;
8598 }
8599
8600 netdev_info(dev, "%s (%c%d) %s found at mem %lx, IRQ %d, "
8601 "node addr %pM\n", board_info[ent->driver_data].name,
8602 ((BNX2_CHIP_ID(bp) & 0xf000) >> 12) + 'A',
8603 ((BNX2_CHIP_ID(bp) & 0x0ff0) >> 4),
8604 bnx2_bus_string(bp, str), (long)pci_resource_start(pdev, 0),
8605 pdev->irq, dev->dev_addr);
8606
8607 return 0;
8608
8609 error:
8610 pci_iounmap(pdev, bp->regview);
8611 pci_release_regions(pdev);
8612 pci_disable_device(pdev);
8613 err_free:
8614 bnx2_free_stats_blk(dev);
8615 free_netdev(dev);
8616 return rc;
8617 }
8618
8619 static void
8620 bnx2_remove_one(struct pci_dev *pdev)
8621 {
8622 struct net_device *dev = pci_get_drvdata(pdev);
8623 struct bnx2 *bp = netdev_priv(dev);
8624
8625 unregister_netdev(dev);
8626
8627 del_timer_sync(&bp->timer);
8628 cancel_work_sync(&bp->reset_task);
8629
8630 pci_iounmap(bp->pdev, bp->regview);
8631
8632 bnx2_free_stats_blk(dev);
8633 kfree(bp->temp_stats_blk);
8634
8635 if (bp->flags & BNX2_FLAG_AER_ENABLED) {
8636 pci_disable_pcie_error_reporting(pdev);
8637 bp->flags &= ~BNX2_FLAG_AER_ENABLED;
8638 }
8639
8640 bnx2_release_firmware(bp);
8641
8642 free_netdev(dev);
8643
8644 pci_release_regions(pdev);
8645 pci_disable_device(pdev);
8646 }
8647
8648 #ifdef CONFIG_PM_SLEEP
8649 static int
8650 bnx2_suspend(struct device *device)
8651 {
8652 struct pci_dev *pdev = to_pci_dev(device);
8653 struct net_device *dev = pci_get_drvdata(pdev);
8654 struct bnx2 *bp = netdev_priv(dev);
8655
8656 if (netif_running(dev)) {
8657 cancel_work_sync(&bp->reset_task);
8658 bnx2_netif_stop(bp, true);
8659 netif_device_detach(dev);
8660 del_timer_sync(&bp->timer);
8661 bnx2_shutdown_chip(bp);
8662 __bnx2_free_irq(bp);
8663 bnx2_free_skbs(bp);
8664 }
8665 bnx2_setup_wol(bp);
8666 return 0;
8667 }
8668
8669 static int
8670 bnx2_resume(struct device *device)
8671 {
8672 struct pci_dev *pdev = to_pci_dev(device);
8673 struct net_device *dev = pci_get_drvdata(pdev);
8674 struct bnx2 *bp = netdev_priv(dev);
8675
8676 if (!netif_running(dev))
8677 return 0;
8678
8679 bnx2_set_power_state(bp, PCI_D0);
8680 netif_device_attach(dev);
8681 bnx2_request_irq(bp);
8682 bnx2_init_nic(bp, 1);
8683 bnx2_netif_start(bp, true);
8684 return 0;
8685 }
8686
8687 static SIMPLE_DEV_PM_OPS(bnx2_pm_ops, bnx2_suspend, bnx2_resume);
8688 #define BNX2_PM_OPS (&bnx2_pm_ops)
8689
8690 #else
8691
8692 #define BNX2_PM_OPS NULL
8693
8694 #endif /* CONFIG_PM_SLEEP */
8695 /**
8696 * bnx2_io_error_detected - called when PCI error is detected
8697 * @pdev: Pointer to PCI device
8698 * @state: The current pci connection state
8699 *
8700 * This function is called after a PCI bus error affecting
8701 * this device has been detected.
8702 */
8703 static pci_ers_result_t bnx2_io_error_detected(struct pci_dev *pdev,
8704 pci_channel_state_t state)
8705 {
8706 struct net_device *dev = pci_get_drvdata(pdev);
8707 struct bnx2 *bp = netdev_priv(dev);
8708
8709 rtnl_lock();
8710 netif_device_detach(dev);
8711
8712 if (state == pci_channel_io_perm_failure) {
8713 rtnl_unlock();
8714 return PCI_ERS_RESULT_DISCONNECT;
8715 }
8716
8717 if (netif_running(dev)) {
8718 bnx2_netif_stop(bp, true);
8719 del_timer_sync(&bp->timer);
8720 bnx2_reset_nic(bp, BNX2_DRV_MSG_CODE_RESET);
8721 }
8722
8723 pci_disable_device(pdev);
8724 rtnl_unlock();
8725
8726 /* Request a slot slot reset. */
8727 return PCI_ERS_RESULT_NEED_RESET;
8728 }
8729
8730 /**
8731 * bnx2_io_slot_reset - called after the pci bus has been reset.
8732 * @pdev: Pointer to PCI device
8733 *
8734 * Restart the card from scratch, as if from a cold-boot.
8735 */
8736 static pci_ers_result_t bnx2_io_slot_reset(struct pci_dev *pdev)
8737 {
8738 struct net_device *dev = pci_get_drvdata(pdev);
8739 struct bnx2 *bp = netdev_priv(dev);
8740 pci_ers_result_t result = PCI_ERS_RESULT_DISCONNECT;
8741 int err = 0;
8742
8743 rtnl_lock();
8744 if (pci_enable_device(pdev)) {
8745 dev_err(&pdev->dev,
8746 "Cannot re-enable PCI device after reset\n");
8747 } else {
8748 pci_set_master(pdev);
8749 pci_restore_state(pdev);
8750 pci_save_state(pdev);
8751
8752 if (netif_running(dev))
8753 err = bnx2_init_nic(bp, 1);
8754
8755 if (!err)
8756 result = PCI_ERS_RESULT_RECOVERED;
8757 }
8758
8759 if (result != PCI_ERS_RESULT_RECOVERED && netif_running(dev)) {
8760 bnx2_napi_enable(bp);
8761 dev_close(dev);
8762 }
8763 rtnl_unlock();
8764
8765 if (!(bp->flags & BNX2_FLAG_AER_ENABLED))
8766 return result;
8767
8768 err = pci_cleanup_aer_uncorrect_error_status(pdev);
8769 if (err) {
8770 dev_err(&pdev->dev,
8771 "pci_cleanup_aer_uncorrect_error_status failed 0x%0x\n",
8772 err); /* non-fatal, continue */
8773 }
8774
8775 return result;
8776 }
8777
8778 /**
8779 * bnx2_io_resume - called when traffic can start flowing again.
8780 * @pdev: Pointer to PCI device
8781 *
8782 * This callback is called when the error recovery driver tells us that
8783 * its OK to resume normal operation.
8784 */
8785 static void bnx2_io_resume(struct pci_dev *pdev)
8786 {
8787 struct net_device *dev = pci_get_drvdata(pdev);
8788 struct bnx2 *bp = netdev_priv(dev);
8789
8790 rtnl_lock();
8791 if (netif_running(dev))
8792 bnx2_netif_start(bp, true);
8793
8794 netif_device_attach(dev);
8795 rtnl_unlock();
8796 }
8797
8798 static void bnx2_shutdown(struct pci_dev *pdev)
8799 {
8800 struct net_device *dev = pci_get_drvdata(pdev);
8801 struct bnx2 *bp;
8802
8803 if (!dev)
8804 return;
8805
8806 bp = netdev_priv(dev);
8807 if (!bp)
8808 return;
8809
8810 rtnl_lock();
8811 if (netif_running(dev))
8812 dev_close(bp->dev);
8813
8814 if (system_state == SYSTEM_POWER_OFF)
8815 bnx2_set_power_state(bp, PCI_D3hot);
8816
8817 rtnl_unlock();
8818 }
8819
8820 static const struct pci_error_handlers bnx2_err_handler = {
8821 .error_detected = bnx2_io_error_detected,
8822 .slot_reset = bnx2_io_slot_reset,
8823 .resume = bnx2_io_resume,
8824 };
8825
8826 static struct pci_driver bnx2_pci_driver = {
8827 .name = DRV_MODULE_NAME,
8828 .id_table = bnx2_pci_tbl,
8829 .probe = bnx2_init_one,
8830 .remove = bnx2_remove_one,
8831 .driver.pm = BNX2_PM_OPS,
8832 .err_handler = &bnx2_err_handler,
8833 .shutdown = bnx2_shutdown,
8834 };
8835
8836 module_pci_driver(bnx2_pci_driver);