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1 /******************************************************************************
2 *
3 * This file is provided under a dual BSD/GPLv2 license. When using or
4 * redistributing this file, you may do so under either license.
5 *
6 * GPL LICENSE SUMMARY
7 *
8 * Copyright(c) 2007 - 2013 Intel Corporation. All rights reserved.
9 *
10 * This program is free software; you can redistribute it and/or modify
11 * it under the terms of version 2 of the GNU General Public License as
12 * published by the Free Software Foundation.
13 *
14 * This program is distributed in the hope that it will be useful, but
15 * WITHOUT ANY WARRANTY; without even the implied warranty of
16 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU
17 * General Public License for more details.
18 *
19 * You should have received a copy of the GNU General Public License
20 * along with this program; if not, write to the Free Software
21 * Foundation, Inc., 51 Franklin Street, Fifth Floor, Boston, MA 02110,
22 * USA
23 *
24 * The full GNU General Public License is included in this distribution
25 * in the file called COPYING.
26 *
27 * Contact Information:
28 * Intel Linux Wireless <ilw@linux.intel.com>
29 * Intel Corporation, 5200 N.E. Elam Young Parkway, Hillsboro, OR 97124-6497
30 *
31 * BSD LICENSE
32 *
33 * Copyright(c) 2005 - 2013 Intel Corporation. All rights reserved.
34 * All rights reserved.
35 *
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37 * modification, are permitted provided that the following conditions
38 * are met:
39 *
40 * * Redistributions of source code must retain the above copyright
41 * notice, this list of conditions and the following disclaimer.
42 * * Redistributions in binary form must reproduce the above copyright
43 * notice, this list of conditions and the following disclaimer in
44 * the documentation and/or other materials provided with the
45 * distribution.
46 * * Neither the name Intel Corporation nor the names of its
47 * contributors may be used to endorse or promote products derived
48 * from this software without specific prior written permission.
49 *
50 * THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS
51 * "AS IS" AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT
52 * LIMITED TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR
53 * A PARTICULAR PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE COPYRIGHT
54 * OWNER OR CONTRIBUTORS BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL,
55 * SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT
56 * LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
57 * DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
58 * THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
59 * (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE
60 * OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
61 *
62 *****************************************************************************/
63 #ifndef __iwl_trans_h__
64 #define __iwl_trans_h__
65
66 #include <linux/ieee80211.h>
67 #include <linux/mm.h> /* for page_address */
68 #include <linux/lockdep.h>
69
70 #include "iwl-debug.h"
71 #include "iwl-config.h"
72 #include "iwl-fw.h"
73
74 /**
75 * DOC: Transport layer - what is it ?
76 *
77 * The tranport layer is the layer that deals with the HW directly. It provides
78 * an abstraction of the underlying HW to the upper layer. The transport layer
79 * doesn't provide any policy, algorithm or anything of this kind, but only
80 * mechanisms to make the HW do something.It is not completely stateless but
81 * close to it.
82 * We will have an implementation for each different supported bus.
83 */
84
85 /**
86 * DOC: Life cycle of the transport layer
87 *
88 * The transport layer has a very precise life cycle.
89 *
90 * 1) A helper function is called during the module initialization and
91 * registers the bus driver's ops with the transport's alloc function.
92 * 2) Bus's probe calls to the transport layer's allocation functions.
93 * Of course this function is bus specific.
94 * 3) This allocation functions will spawn the upper layer which will
95 * register mac80211.
96 *
97 * 4) At some point (i.e. mac80211's start call), the op_mode will call
98 * the following sequence:
99 * start_hw
100 * start_fw
101 *
102 * 5) Then when finished (or reset):
103 * stop_fw (a.k.a. stop device for the moment)
104 * stop_hw
105 *
106 * 6) Eventually, the free function will be called.
107 */
108
109 /**
110 * DOC: Host command section
111 *
112 * A host command is a commaned issued by the upper layer to the fw. There are
113 * several versions of fw that have several APIs. The transport layer is
114 * completely agnostic to these differences.
115 * The transport does provide helper functionnality (i.e. SYNC / ASYNC mode),
116 */
117 #define SEQ_TO_QUEUE(s) (((s) >> 8) & 0x1f)
118 #define QUEUE_TO_SEQ(q) (((q) & 0x1f) << 8)
119 #define SEQ_TO_INDEX(s) ((s) & 0xff)
120 #define INDEX_TO_SEQ(i) ((i) & 0xff)
121 #define SEQ_RX_FRAME cpu_to_le16(0x8000)
122
123 /**
124 * struct iwl_cmd_header
125 *
126 * This header format appears in the beginning of each command sent from the
127 * driver, and each response/notification received from uCode.
128 */
129 struct iwl_cmd_header {
130 u8 cmd; /* Command ID: REPLY_RXON, etc. */
131 u8 flags; /* 0:5 reserved, 6 abort, 7 internal */
132 /*
133 * The driver sets up the sequence number to values of its choosing.
134 * uCode does not use this value, but passes it back to the driver
135 * when sending the response to each driver-originated command, so
136 * the driver can match the response to the command. Since the values
137 * don't get used by uCode, the driver may set up an arbitrary format.
138 *
139 * There is one exception: uCode sets bit 15 when it originates
140 * the response/notification, i.e. when the response/notification
141 * is not a direct response to a command sent by the driver. For
142 * example, uCode issues REPLY_RX when it sends a received frame
143 * to the driver; it is not a direct response to any driver command.
144 *
145 * The Linux driver uses the following format:
146 *
147 * 0:7 tfd index - position within TX queue
148 * 8:12 TX queue id
149 * 13:14 reserved
150 * 15 unsolicited RX or uCode-originated notification
151 */
152 __le16 sequence;
153 } __packed;
154
155 /* iwl_cmd_header flags value */
156 #define IWL_CMD_FAILED_MSK 0x40
157
158
159 #define FH_RSCSR_FRAME_SIZE_MSK 0x00003FFF /* bits 0-13 */
160 #define FH_RSCSR_FRAME_INVALID 0x55550000
161 #define FH_RSCSR_FRAME_ALIGN 0x40
162
163 struct iwl_rx_packet {
164 /*
165 * The first 4 bytes of the RX frame header contain both the RX frame
166 * size and some flags.
167 * Bit fields:
168 * 31: flag flush RB request
169 * 30: flag ignore TC (terminal counter) request
170 * 29: flag fast IRQ request
171 * 28-14: Reserved
172 * 13-00: RX frame size
173 */
174 __le32 len_n_flags;
175 struct iwl_cmd_header hdr;
176 u8 data[];
177 } __packed;
178
179 /**
180 * enum CMD_MODE - how to send the host commands ?
181 *
182 * @CMD_SYNC: The caller will be stalled until the fw responds to the command
183 * @CMD_ASYNC: Return right away and don't wait for the response
184 * @CMD_WANT_SKB: valid only with CMD_SYNC. The caller needs the buffer of the
185 * response. The caller needs to call iwl_free_resp when done.
186 */
187 enum CMD_MODE {
188 CMD_SYNC = 0,
189 CMD_ASYNC = BIT(0),
190 CMD_WANT_SKB = BIT(1),
191 CMD_SEND_IN_RFKILL = BIT(2),
192 };
193
194 #define DEF_CMD_PAYLOAD_SIZE 320
195
196 /**
197 * struct iwl_device_cmd
198 *
199 * For allocation of the command and tx queues, this establishes the overall
200 * size of the largest command we send to uCode, except for commands that
201 * aren't fully copied and use other TFD space.
202 */
203 struct iwl_device_cmd {
204 struct iwl_cmd_header hdr; /* uCode API */
205 u8 payload[DEF_CMD_PAYLOAD_SIZE];
206 } __packed;
207
208 #define TFD_MAX_PAYLOAD_SIZE (sizeof(struct iwl_device_cmd))
209
210 /*
211 * number of transfer buffers (fragments) per transmit frame descriptor;
212 * this is just the driver's idea, the hardware supports 20
213 */
214 #define IWL_MAX_CMD_TBS_PER_TFD 2
215
216 /**
217 * struct iwl_hcmd_dataflag - flag for each one of the chunks of the command
218 *
219 * @IWL_HCMD_DFL_NOCOPY: By default, the command is copied to the host command's
220 * ring. The transport layer doesn't map the command's buffer to DMA, but
221 * rather copies it to a previously allocated DMA buffer. This flag tells
222 * the transport layer not to copy the command, but to map the existing
223 * buffer (that is passed in) instead. This saves the memcpy and allows
224 * commands that are bigger than the fixed buffer to be submitted.
225 * Note that a TFD entry after a NOCOPY one cannot be a normal copied one.
226 * @IWL_HCMD_DFL_DUP: Only valid without NOCOPY, duplicate the memory for this
227 * chunk internally and free it again after the command completes. This
228 * can (currently) be used only once per command.
229 * Note that a TFD entry after a DUP one cannot be a normal copied one.
230 */
231 enum iwl_hcmd_dataflag {
232 IWL_HCMD_DFL_NOCOPY = BIT(0),
233 IWL_HCMD_DFL_DUP = BIT(1),
234 };
235
236 /**
237 * struct iwl_host_cmd - Host command to the uCode
238 *
239 * @data: array of chunks that composes the data of the host command
240 * @resp_pkt: response packet, if %CMD_WANT_SKB was set
241 * @_rx_page_order: (internally used to free response packet)
242 * @_rx_page_addr: (internally used to free response packet)
243 * @handler_status: return value of the handler of the command
244 * (put in setup_rx_handlers) - valid for SYNC mode only
245 * @flags: can be CMD_*
246 * @len: array of the lengths of the chunks in data
247 * @dataflags: IWL_HCMD_DFL_*
248 * @id: id of the host command
249 */
250 struct iwl_host_cmd {
251 const void *data[IWL_MAX_CMD_TBS_PER_TFD];
252 struct iwl_rx_packet *resp_pkt;
253 unsigned long _rx_page_addr;
254 u32 _rx_page_order;
255 int handler_status;
256
257 u32 flags;
258 u16 len[IWL_MAX_CMD_TBS_PER_TFD];
259 u8 dataflags[IWL_MAX_CMD_TBS_PER_TFD];
260 u8 id;
261 };
262
263 static inline void iwl_free_resp(struct iwl_host_cmd *cmd)
264 {
265 free_pages(cmd->_rx_page_addr, cmd->_rx_page_order);
266 }
267
268 struct iwl_rx_cmd_buffer {
269 struct page *_page;
270 int _offset;
271 bool _page_stolen;
272 u32 _rx_page_order;
273 unsigned int truesize;
274 };
275
276 static inline void *rxb_addr(struct iwl_rx_cmd_buffer *r)
277 {
278 return (void *)((unsigned long)page_address(r->_page) + r->_offset);
279 }
280
281 static inline int rxb_offset(struct iwl_rx_cmd_buffer *r)
282 {
283 return r->_offset;
284 }
285
286 static inline struct page *rxb_steal_page(struct iwl_rx_cmd_buffer *r)
287 {
288 r->_page_stolen = true;
289 get_page(r->_page);
290 return r->_page;
291 }
292
293 static inline void iwl_free_rxb(struct iwl_rx_cmd_buffer *r)
294 {
295 __free_pages(r->_page, r->_rx_page_order);
296 }
297
298 #define MAX_NO_RECLAIM_CMDS 6
299
300 #define IWL_MASK(lo, hi) ((1 << (hi)) | ((1 << (hi)) - (1 << (lo))))
301
302 /*
303 * Maximum number of HW queues the transport layer
304 * currently supports
305 */
306 #define IWL_MAX_HW_QUEUES 32
307 #define IWL_MAX_TID_COUNT 8
308 #define IWL_FRAME_LIMIT 64
309
310 /**
311 * enum iwl_wowlan_status - WoWLAN image/device status
312 * @IWL_D3_STATUS_ALIVE: firmware is still running after resume
313 * @IWL_D3_STATUS_RESET: device was reset while suspended
314 */
315 enum iwl_d3_status {
316 IWL_D3_STATUS_ALIVE,
317 IWL_D3_STATUS_RESET,
318 };
319
320 /**
321 * struct iwl_trans_config - transport configuration
322 *
323 * @op_mode: pointer to the upper layer.
324 * @cmd_queue: the index of the command queue.
325 * Must be set before start_fw.
326 * @cmd_fifo: the fifo for host commands
327 * @no_reclaim_cmds: Some devices erroneously don't set the
328 * SEQ_RX_FRAME bit on some notifications, this is the
329 * list of such notifications to filter. Max length is
330 * %MAX_NO_RECLAIM_CMDS.
331 * @n_no_reclaim_cmds: # of commands in list
332 * @rx_buf_size_8k: 8 kB RX buffer size needed for A-MSDUs,
333 * if unset 4k will be the RX buffer size
334 * @bc_table_dword: set to true if the BC table expects the byte count to be
335 * in DWORD (as opposed to bytes)
336 * @queue_watchdog_timeout: time (in ms) after which queues
337 * are considered stuck and will trigger device restart
338 * @command_names: array of command names, must be 256 entries
339 * (one for each command); for debugging only
340 */
341 struct iwl_trans_config {
342 struct iwl_op_mode *op_mode;
343
344 u8 cmd_queue;
345 u8 cmd_fifo;
346 const u8 *no_reclaim_cmds;
347 unsigned int n_no_reclaim_cmds;
348
349 bool rx_buf_size_8k;
350 bool bc_table_dword;
351 unsigned int queue_watchdog_timeout;
352 const char **command_names;
353 };
354
355 struct iwl_trans;
356
357 /**
358 * struct iwl_trans_ops - transport specific operations
359 *
360 * All the handlers MUST be implemented
361 *
362 * @start_hw: starts the HW- from that point on, the HW can send interrupts
363 * May sleep
364 * @stop_hw: stops the HW- from that point on, the HW will be in low power but
365 * will still issue interrupt if the HW RF kill is triggered unless
366 * op_mode_leaving is true.
367 * May sleep
368 * @start_fw: allocates and inits all the resources for the transport
369 * layer. Also kick a fw image.
370 * May sleep
371 * @fw_alive: called when the fw sends alive notification. If the fw provides
372 * the SCD base address in SRAM, then provide it here, or 0 otherwise.
373 * May sleep
374 * @stop_device:stops the whole device (embedded CPU put to reset)
375 * May sleep
376 * @d3_suspend: put the device into the correct mode for WoWLAN during
377 * suspend. This is optional, if not implemented WoWLAN will not be
378 * supported. This callback may sleep.
379 * @d3_resume: resume the device after WoWLAN, enabling the opmode to
380 * talk to the WoWLAN image to get its status. This is optional, if not
381 * implemented WoWLAN will not be supported. This callback may sleep.
382 * @send_cmd:send a host command. Must return -ERFKILL if RFkill is asserted.
383 * If RFkill is asserted in the middle of a SYNC host command, it must
384 * return -ERFKILL straight away.
385 * May sleep only if CMD_SYNC is set
386 * @tx: send an skb
387 * Must be atomic
388 * @reclaim: free packet until ssn. Returns a list of freed packets.
389 * Must be atomic
390 * @txq_enable: setup a queue. To setup an AC queue, use the
391 * iwl_trans_ac_txq_enable wrapper. fw_alive must have been called before
392 * this one. The op_mode must not configure the HCMD queue. May sleep.
393 * @txq_disable: de-configure a Tx queue to send AMPDUs
394 * Must be atomic
395 * @wait_tx_queue_empty: wait until all tx queues are empty
396 * May sleep
397 * @dbgfs_register: add the dbgfs files under this directory. Files will be
398 * automatically deleted.
399 * @write8: write a u8 to a register at offset ofs from the BAR
400 * @write32: write a u32 to a register at offset ofs from the BAR
401 * @read32: read a u32 register at offset ofs from the BAR
402 * @read_prph: read a DWORD from a periphery register
403 * @write_prph: write a DWORD to a periphery register
404 * @read_mem: read device's SRAM in DWORD
405 * @write_mem: write device's SRAM in DWORD. If %buf is %NULL, then the memory
406 * will be zeroed.
407 * @configure: configure parameters required by the transport layer from
408 * the op_mode. May be called several times before start_fw, can't be
409 * called after that.
410 * @set_pmi: set the power pmi state
411 * @grab_nic_access: wake the NIC to be able to access non-HBUS regs.
412 * Sleeping is not allowed between grab_nic_access and
413 * release_nic_access.
414 * @release_nic_access: let the NIC go to sleep. The "flags" parameter
415 * must be the same one that was sent before to the grab_nic_access.
416 * @set_bits_mask - set SRAM register according to value and mask.
417 */
418 struct iwl_trans_ops {
419
420 int (*start_hw)(struct iwl_trans *iwl_trans);
421 void (*stop_hw)(struct iwl_trans *iwl_trans, bool op_mode_leaving);
422 int (*start_fw)(struct iwl_trans *trans, const struct fw_img *fw,
423 bool run_in_rfkill);
424 void (*fw_alive)(struct iwl_trans *trans, u32 scd_addr);
425 void (*stop_device)(struct iwl_trans *trans);
426
427 void (*d3_suspend)(struct iwl_trans *trans, bool test);
428 int (*d3_resume)(struct iwl_trans *trans, enum iwl_d3_status *status,
429 bool test);
430
431 int (*send_cmd)(struct iwl_trans *trans, struct iwl_host_cmd *cmd);
432
433 int (*tx)(struct iwl_trans *trans, struct sk_buff *skb,
434 struct iwl_device_cmd *dev_cmd, int queue);
435 void (*reclaim)(struct iwl_trans *trans, int queue, int ssn,
436 struct sk_buff_head *skbs);
437
438 void (*txq_enable)(struct iwl_trans *trans, int queue, int fifo,
439 int sta_id, int tid, int frame_limit, u16 ssn);
440 void (*txq_disable)(struct iwl_trans *trans, int queue);
441
442 int (*dbgfs_register)(struct iwl_trans *trans, struct dentry* dir);
443 int (*wait_tx_queue_empty)(struct iwl_trans *trans);
444
445 void (*write8)(struct iwl_trans *trans, u32 ofs, u8 val);
446 void (*write32)(struct iwl_trans *trans, u32 ofs, u32 val);
447 u32 (*read32)(struct iwl_trans *trans, u32 ofs);
448 u32 (*read_prph)(struct iwl_trans *trans, u32 ofs);
449 void (*write_prph)(struct iwl_trans *trans, u32 ofs, u32 val);
450 int (*read_mem)(struct iwl_trans *trans, u32 addr,
451 void *buf, int dwords);
452 int (*write_mem)(struct iwl_trans *trans, u32 addr,
453 const void *buf, int dwords);
454 void (*configure)(struct iwl_trans *trans,
455 const struct iwl_trans_config *trans_cfg);
456 void (*set_pmi)(struct iwl_trans *trans, bool state);
457 bool (*grab_nic_access)(struct iwl_trans *trans, bool silent,
458 unsigned long *flags);
459 void (*release_nic_access)(struct iwl_trans *trans,
460 unsigned long *flags);
461 void (*set_bits_mask)(struct iwl_trans *trans, u32 reg, u32 mask,
462 u32 value);
463 };
464
465 /**
466 * enum iwl_trans_state - state of the transport layer
467 *
468 * @IWL_TRANS_NO_FW: no fw has sent an alive response
469 * @IWL_TRANS_FW_ALIVE: a fw has sent an alive response
470 */
471 enum iwl_trans_state {
472 IWL_TRANS_NO_FW = 0,
473 IWL_TRANS_FW_ALIVE = 1,
474 };
475
476 /**
477 * struct iwl_trans - transport common data
478 *
479 * @ops - pointer to iwl_trans_ops
480 * @op_mode - pointer to the op_mode
481 * @cfg - pointer to the configuration
482 * @dev - pointer to struct device * that represents the device
483 * @hw_id: a u32 with the ID of the device / subdevice.
484 * Set during transport allocation.
485 * @hw_id_str: a string with info about HW ID. Set during transport allocation.
486 * @pm_support: set to true in start_hw if link pm is supported
487 * @dev_cmd_pool: pool for Tx cmd allocation - for internal use only.
488 * The user should use iwl_trans_{alloc,free}_tx_cmd.
489 * @dev_cmd_headroom: room needed for the transport's private use before the
490 * device_cmd for Tx - for internal use only
491 * The user should use iwl_trans_{alloc,free}_tx_cmd.
492 * @rx_mpdu_cmd: MPDU RX command ID, must be assigned by opmode before
493 * starting the firmware, used for tracing
494 * @rx_mpdu_cmd_hdr_size: used for tracing, amount of data before the
495 * start of the 802.11 header in the @rx_mpdu_cmd
496 */
497 struct iwl_trans {
498 const struct iwl_trans_ops *ops;
499 struct iwl_op_mode *op_mode;
500 const struct iwl_cfg *cfg;
501 enum iwl_trans_state state;
502
503 struct device *dev;
504 u32 hw_rev;
505 u32 hw_id;
506 char hw_id_str[52];
507
508 u8 rx_mpdu_cmd, rx_mpdu_cmd_hdr_size;
509
510 bool pm_support;
511
512 /* The following fields are internal only */
513 struct kmem_cache *dev_cmd_pool;
514 size_t dev_cmd_headroom;
515 char dev_cmd_pool_name[50];
516
517 struct dentry *dbgfs_dir;
518
519 #ifdef CONFIG_LOCKDEP
520 struct lockdep_map sync_cmd_lockdep_map;
521 #endif
522
523 /* pointer to trans specific struct */
524 /*Ensure that this pointer will always be aligned to sizeof pointer */
525 char trans_specific[0] __aligned(sizeof(void *));
526 };
527
528 static inline void iwl_trans_configure(struct iwl_trans *trans,
529 const struct iwl_trans_config *trans_cfg)
530 {
531 trans->op_mode = trans_cfg->op_mode;
532
533 trans->ops->configure(trans, trans_cfg);
534 }
535
536 static inline int iwl_trans_start_hw(struct iwl_trans *trans)
537 {
538 might_sleep();
539
540 return trans->ops->start_hw(trans);
541 }
542
543 static inline void iwl_trans_stop_hw(struct iwl_trans *trans,
544 bool op_mode_leaving)
545 {
546 might_sleep();
547
548 trans->ops->stop_hw(trans, op_mode_leaving);
549
550 if (op_mode_leaving)
551 trans->op_mode = NULL;
552
553 trans->state = IWL_TRANS_NO_FW;
554 }
555
556 static inline void iwl_trans_fw_alive(struct iwl_trans *trans, u32 scd_addr)
557 {
558 might_sleep();
559
560 trans->state = IWL_TRANS_FW_ALIVE;
561
562 trans->ops->fw_alive(trans, scd_addr);
563 }
564
565 static inline int iwl_trans_start_fw(struct iwl_trans *trans,
566 const struct fw_img *fw,
567 bool run_in_rfkill)
568 {
569 might_sleep();
570
571 WARN_ON_ONCE(!trans->rx_mpdu_cmd);
572
573 return trans->ops->start_fw(trans, fw, run_in_rfkill);
574 }
575
576 static inline void iwl_trans_stop_device(struct iwl_trans *trans)
577 {
578 might_sleep();
579
580 trans->ops->stop_device(trans);
581
582 trans->state = IWL_TRANS_NO_FW;
583 }
584
585 static inline void iwl_trans_d3_suspend(struct iwl_trans *trans, bool test)
586 {
587 might_sleep();
588 trans->ops->d3_suspend(trans, test);
589 }
590
591 static inline int iwl_trans_d3_resume(struct iwl_trans *trans,
592 enum iwl_d3_status *status,
593 bool test)
594 {
595 might_sleep();
596 return trans->ops->d3_resume(trans, status, test);
597 }
598
599 static inline int iwl_trans_send_cmd(struct iwl_trans *trans,
600 struct iwl_host_cmd *cmd)
601 {
602 int ret;
603
604 if (unlikely(trans->state != IWL_TRANS_FW_ALIVE)) {
605 IWL_ERR(trans, "%s bad state = %d", __func__, trans->state);
606 return -EIO;
607 }
608
609 if (!(cmd->flags & CMD_ASYNC))
610 lock_map_acquire_read(&trans->sync_cmd_lockdep_map);
611
612 ret = trans->ops->send_cmd(trans, cmd);
613
614 if (!(cmd->flags & CMD_ASYNC))
615 lock_map_release(&trans->sync_cmd_lockdep_map);
616
617 return ret;
618 }
619
620 static inline struct iwl_device_cmd *
621 iwl_trans_alloc_tx_cmd(struct iwl_trans *trans)
622 {
623 u8 *dev_cmd_ptr = kmem_cache_alloc(trans->dev_cmd_pool, GFP_ATOMIC);
624
625 if (unlikely(dev_cmd_ptr == NULL))
626 return NULL;
627
628 return (struct iwl_device_cmd *)
629 (dev_cmd_ptr + trans->dev_cmd_headroom);
630 }
631
632 static inline void iwl_trans_free_tx_cmd(struct iwl_trans *trans,
633 struct iwl_device_cmd *dev_cmd)
634 {
635 u8 *dev_cmd_ptr = (u8 *)dev_cmd - trans->dev_cmd_headroom;
636
637 kmem_cache_free(trans->dev_cmd_pool, dev_cmd_ptr);
638 }
639
640 static inline int iwl_trans_tx(struct iwl_trans *trans, struct sk_buff *skb,
641 struct iwl_device_cmd *dev_cmd, int queue)
642 {
643 if (unlikely(trans->state != IWL_TRANS_FW_ALIVE))
644 IWL_ERR(trans, "%s bad state = %d", __func__, trans->state);
645
646 return trans->ops->tx(trans, skb, dev_cmd, queue);
647 }
648
649 static inline void iwl_trans_reclaim(struct iwl_trans *trans, int queue,
650 int ssn, struct sk_buff_head *skbs)
651 {
652 if (unlikely(trans->state != IWL_TRANS_FW_ALIVE))
653 IWL_ERR(trans, "%s bad state = %d", __func__, trans->state);
654
655 trans->ops->reclaim(trans, queue, ssn, skbs);
656 }
657
658 static inline void iwl_trans_txq_disable(struct iwl_trans *trans, int queue)
659 {
660 if (unlikely(trans->state != IWL_TRANS_FW_ALIVE))
661 IWL_ERR(trans, "%s bad state = %d", __func__, trans->state);
662
663 trans->ops->txq_disable(trans, queue);
664 }
665
666 static inline void iwl_trans_txq_enable(struct iwl_trans *trans, int queue,
667 int fifo, int sta_id, int tid,
668 int frame_limit, u16 ssn)
669 {
670 might_sleep();
671
672 if (unlikely((trans->state != IWL_TRANS_FW_ALIVE)))
673 IWL_ERR(trans, "%s bad state = %d", __func__, trans->state);
674
675 trans->ops->txq_enable(trans, queue, fifo, sta_id, tid,
676 frame_limit, ssn);
677 }
678
679 static inline void iwl_trans_ac_txq_enable(struct iwl_trans *trans, int queue,
680 int fifo)
681 {
682 iwl_trans_txq_enable(trans, queue, fifo, -1,
683 IWL_MAX_TID_COUNT, IWL_FRAME_LIMIT, 0);
684 }
685
686 static inline int iwl_trans_wait_tx_queue_empty(struct iwl_trans *trans)
687 {
688 if (unlikely(trans->state != IWL_TRANS_FW_ALIVE))
689 IWL_ERR(trans, "%s bad state = %d", __func__, trans->state);
690
691 return trans->ops->wait_tx_queue_empty(trans);
692 }
693
694 static inline int iwl_trans_dbgfs_register(struct iwl_trans *trans,
695 struct dentry *dir)
696 {
697 return trans->ops->dbgfs_register(trans, dir);
698 }
699
700 static inline void iwl_trans_write8(struct iwl_trans *trans, u32 ofs, u8 val)
701 {
702 trans->ops->write8(trans, ofs, val);
703 }
704
705 static inline void iwl_trans_write32(struct iwl_trans *trans, u32 ofs, u32 val)
706 {
707 trans->ops->write32(trans, ofs, val);
708 }
709
710 static inline u32 iwl_trans_read32(struct iwl_trans *trans, u32 ofs)
711 {
712 return trans->ops->read32(trans, ofs);
713 }
714
715 static inline u32 iwl_trans_read_prph(struct iwl_trans *trans, u32 ofs)
716 {
717 return trans->ops->read_prph(trans, ofs);
718 }
719
720 static inline void iwl_trans_write_prph(struct iwl_trans *trans, u32 ofs,
721 u32 val)
722 {
723 return trans->ops->write_prph(trans, ofs, val);
724 }
725
726 static inline int iwl_trans_read_mem(struct iwl_trans *trans, u32 addr,
727 void *buf, int dwords)
728 {
729 return trans->ops->read_mem(trans, addr, buf, dwords);
730 }
731
732 #define iwl_trans_read_mem_bytes(trans, addr, buf, bufsize) \
733 do { \
734 if (__builtin_constant_p(bufsize)) \
735 BUILD_BUG_ON((bufsize) % sizeof(u32)); \
736 iwl_trans_read_mem(trans, addr, buf, (bufsize) / sizeof(u32));\
737 } while (0)
738
739 static inline u32 iwl_trans_read_mem32(struct iwl_trans *trans, u32 addr)
740 {
741 u32 value;
742
743 if (WARN_ON(iwl_trans_read_mem(trans, addr, &value, 1)))
744 return 0xa5a5a5a5;
745
746 return value;
747 }
748
749 static inline int iwl_trans_write_mem(struct iwl_trans *trans, u32 addr,
750 const void *buf, int dwords)
751 {
752 return trans->ops->write_mem(trans, addr, buf, dwords);
753 }
754
755 static inline u32 iwl_trans_write_mem32(struct iwl_trans *trans, u32 addr,
756 u32 val)
757 {
758 return iwl_trans_write_mem(trans, addr, &val, 1);
759 }
760
761 static inline void iwl_trans_set_pmi(struct iwl_trans *trans, bool state)
762 {
763 trans->ops->set_pmi(trans, state);
764 }
765
766 static inline void
767 iwl_trans_set_bits_mask(struct iwl_trans *trans, u32 reg, u32 mask, u32 value)
768 {
769 trans->ops->set_bits_mask(trans, reg, mask, value);
770 }
771
772 #define iwl_trans_grab_nic_access(trans, silent, flags) \
773 __cond_lock(nic_access, \
774 likely((trans)->ops->grab_nic_access(trans, silent, flags)))
775
776 static inline void __releases(nic_access)
777 iwl_trans_release_nic_access(struct iwl_trans *trans, unsigned long *flags)
778 {
779 trans->ops->release_nic_access(trans, flags);
780 __release(nic_access);
781 }
782
783 /*****************************************************
784 * driver (transport) register/unregister functions
785 ******************************************************/
786 int __must_check iwl_pci_register_driver(void);
787 void iwl_pci_unregister_driver(void);
788
789 static inline void trans_lockdep_init(struct iwl_trans *trans)
790 {
791 #ifdef CONFIG_LOCKDEP
792 static struct lock_class_key __key;
793
794 lockdep_init_map(&trans->sync_cmd_lockdep_map, "sync_cmd_lockdep_map",
795 &__key, 0);
796 #endif
797 }
798
799 #endif /* __iwl_trans_h__ */