2 * drivers/net/wireless/mwl8k.c
3 * Driver for Marvell TOPDOG 802.11 Wireless cards
5 * Copyright (C) 2008, 2009, 2010 Marvell Semiconductor Inc.
7 * This file is licensed under the terms of the GNU General Public
8 * License version 2. This program is licensed "as is" without any
9 * warranty of any kind, whether express or implied.
12 #include <linux/init.h>
13 #include <linux/interrupt.h>
14 #include <linux/module.h>
15 #include <linux/kernel.h>
16 #include <linux/sched.h>
17 #include <linux/spinlock.h>
18 #include <linux/list.h>
19 #include <linux/pci.h>
20 #include <linux/delay.h>
21 #include <linux/completion.h>
22 #include <linux/etherdevice.h>
23 #include <linux/slab.h>
24 #include <net/mac80211.h>
25 #include <linux/moduleparam.h>
26 #include <linux/firmware.h>
27 #include <linux/workqueue.h>
29 #define MWL8K_DESC "Marvell TOPDOG(R) 802.11 Wireless Network Driver"
30 #define MWL8K_NAME KBUILD_MODNAME
31 #define MWL8K_VERSION "0.13"
33 /* Module parameters */
34 static bool ap_mode_default
;
35 module_param(ap_mode_default
, bool, 0);
36 MODULE_PARM_DESC(ap_mode_default
,
37 "Set to 1 to make ap mode the default instead of sta mode");
39 /* Register definitions */
40 #define MWL8K_HIU_GEN_PTR 0x00000c10
41 #define MWL8K_MODE_STA 0x0000005a
42 #define MWL8K_MODE_AP 0x000000a5
43 #define MWL8K_HIU_INT_CODE 0x00000c14
44 #define MWL8K_FWSTA_READY 0xf0f1f2f4
45 #define MWL8K_FWAP_READY 0xf1f2f4a5
46 #define MWL8K_INT_CODE_CMD_FINISHED 0x00000005
47 #define MWL8K_HIU_SCRATCH 0x00000c40
49 /* Host->device communications */
50 #define MWL8K_HIU_H2A_INTERRUPT_EVENTS 0x00000c18
51 #define MWL8K_HIU_H2A_INTERRUPT_STATUS 0x00000c1c
52 #define MWL8K_HIU_H2A_INTERRUPT_MASK 0x00000c20
53 #define MWL8K_HIU_H2A_INTERRUPT_CLEAR_SEL 0x00000c24
54 #define MWL8K_HIU_H2A_INTERRUPT_STATUS_MASK 0x00000c28
55 #define MWL8K_H2A_INT_DUMMY (1 << 20)
56 #define MWL8K_H2A_INT_RESET (1 << 15)
57 #define MWL8K_H2A_INT_DOORBELL (1 << 1)
58 #define MWL8K_H2A_INT_PPA_READY (1 << 0)
60 /* Device->host communications */
61 #define MWL8K_HIU_A2H_INTERRUPT_EVENTS 0x00000c2c
62 #define MWL8K_HIU_A2H_INTERRUPT_STATUS 0x00000c30
63 #define MWL8K_HIU_A2H_INTERRUPT_MASK 0x00000c34
64 #define MWL8K_HIU_A2H_INTERRUPT_CLEAR_SEL 0x00000c38
65 #define MWL8K_HIU_A2H_INTERRUPT_STATUS_MASK 0x00000c3c
66 #define MWL8K_A2H_INT_DUMMY (1 << 20)
67 #define MWL8K_A2H_INT_BA_WATCHDOG (1 << 14)
68 #define MWL8K_A2H_INT_CHNL_SWITCHED (1 << 11)
69 #define MWL8K_A2H_INT_QUEUE_EMPTY (1 << 10)
70 #define MWL8K_A2H_INT_RADAR_DETECT (1 << 7)
71 #define MWL8K_A2H_INT_RADIO_ON (1 << 6)
72 #define MWL8K_A2H_INT_RADIO_OFF (1 << 5)
73 #define MWL8K_A2H_INT_MAC_EVENT (1 << 3)
74 #define MWL8K_A2H_INT_OPC_DONE (1 << 2)
75 #define MWL8K_A2H_INT_RX_READY (1 << 1)
76 #define MWL8K_A2H_INT_TX_DONE (1 << 0)
78 /* HW micro second timer register
79 * located at offset 0xA600. This
80 * will be used to timestamp tx
84 #define MWL8K_HW_TIMER_REGISTER 0x0000a600
86 #define MWL8K_A2H_EVENTS (MWL8K_A2H_INT_DUMMY | \
87 MWL8K_A2H_INT_CHNL_SWITCHED | \
88 MWL8K_A2H_INT_QUEUE_EMPTY | \
89 MWL8K_A2H_INT_RADAR_DETECT | \
90 MWL8K_A2H_INT_RADIO_ON | \
91 MWL8K_A2H_INT_RADIO_OFF | \
92 MWL8K_A2H_INT_MAC_EVENT | \
93 MWL8K_A2H_INT_OPC_DONE | \
94 MWL8K_A2H_INT_RX_READY | \
95 MWL8K_A2H_INT_TX_DONE | \
96 MWL8K_A2H_INT_BA_WATCHDOG)
98 #define MWL8K_RX_QUEUES 1
99 #define MWL8K_TX_WMM_QUEUES 4
100 #define MWL8K_MAX_AMPDU_QUEUES 8
101 #define MWL8K_MAX_TX_QUEUES (MWL8K_TX_WMM_QUEUES + MWL8K_MAX_AMPDU_QUEUES)
102 #define mwl8k_tx_queues(priv) (MWL8K_TX_WMM_QUEUES + (priv)->num_ampdu_queues)
106 void (*rxd_init
)(void *rxd
, dma_addr_t next_dma_addr
);
107 void (*rxd_refill
)(void *rxd
, dma_addr_t addr
, int len
);
108 int (*rxd_process
)(void *rxd
, struct ieee80211_rx_status
*status
,
109 __le16
*qos
, s8
*noise
);
112 struct mwl8k_device_info
{
117 struct rxd_ops
*ap_rxd_ops
;
121 struct mwl8k_rx_queue
{
124 /* hw receives here */
127 /* refill descs here */
134 DEFINE_DMA_UNMAP_ADDR(dma
);
138 struct mwl8k_tx_queue
{
139 /* hw transmits here */
142 /* sw appends here */
146 struct mwl8k_tx_desc
*txd
;
148 struct sk_buff
**skb
;
154 AMPDU_STREAM_IN_PROGRESS
,
158 struct mwl8k_ampdu_stream
{
159 struct ieee80211_sta
*sta
;
163 u8 txq_idx
; /* index of this stream in priv->txq */
167 struct ieee80211_hw
*hw
;
168 struct pci_dev
*pdev
;
171 struct mwl8k_device_info
*device_info
;
177 const struct firmware
*fw_helper
;
178 const struct firmware
*fw_ucode
;
180 /* hardware/firmware parameters */
182 struct rxd_ops
*rxd_ops
;
183 struct ieee80211_supported_band band_24
;
184 struct ieee80211_channel channels_24
[14];
185 struct ieee80211_rate rates_24
[14];
186 struct ieee80211_supported_band band_50
;
187 struct ieee80211_channel channels_50
[4];
188 struct ieee80211_rate rates_50
[9];
189 u32 ap_macids_supported
;
190 u32 sta_macids_supported
;
192 /* Ampdu stream information */
194 spinlock_t stream_lock
;
195 struct mwl8k_ampdu_stream ampdu
[MWL8K_MAX_AMPDU_QUEUES
];
196 struct work_struct watchdog_ba_handle
;
198 /* firmware access */
199 struct mutex fw_mutex
;
200 struct task_struct
*fw_mutex_owner
;
201 struct task_struct
*hw_restart_owner
;
203 struct completion
*hostcmd_wait
;
205 /* lock held over TX and TX reap */
208 /* TX quiesce completion, protected by fw_mutex and tx_lock */
209 struct completion
*tx_wait
;
211 /* List of interfaces. */
213 struct list_head vif_list
;
215 /* power management status cookie from firmware */
217 dma_addr_t cookie_dma
;
224 * Running count of TX packets in flight, to avoid
225 * iterating over the transmit rings each time.
229 struct mwl8k_rx_queue rxq
[MWL8K_RX_QUEUES
];
230 struct mwl8k_tx_queue txq
[MWL8K_MAX_TX_QUEUES
];
231 u32 txq_offset
[MWL8K_MAX_TX_QUEUES
];
234 bool radio_short_preamble
;
235 bool sniffer_enabled
;
238 /* XXX need to convert this to handle multiple interfaces */
240 u8 capture_bssid
[ETH_ALEN
];
241 struct sk_buff
*beacon_skb
;
244 * This FJ worker has to be global as it is scheduled from the
245 * RX handler. At this point we don't know which interface it
246 * belongs to until the list of bssids waiting to complete join
249 struct work_struct finalize_join_worker
;
251 /* Tasklet to perform TX reclaim. */
252 struct tasklet_struct poll_tx_task
;
254 /* Tasklet to perform RX. */
255 struct tasklet_struct poll_rx_task
;
257 /* Most recently reported noise in dBm */
261 * preserve the queue configurations so they can be restored if/when
262 * the firmware image is swapped.
264 struct ieee80211_tx_queue_params wmm_params
[MWL8K_TX_WMM_QUEUES
];
266 /* To perform the task of reloading the firmware */
267 struct work_struct fw_reload
;
268 bool hw_restart_in_progress
;
270 /* async firmware loading state */
274 struct completion firmware_loading_complete
;
277 #define MAX_WEP_KEY_LEN 13
278 #define NUM_WEP_KEYS 4
280 /* Per interface specific private data */
282 struct list_head list
;
283 struct ieee80211_vif
*vif
;
285 /* Firmware macid for this vif. */
288 /* Non AMPDU sequence number assigned by driver. */
294 u8 key
[sizeof(struct ieee80211_key_conf
) + MAX_WEP_KEY_LEN
];
295 } wep_key_conf
[NUM_WEP_KEYS
];
300 /* A flag to indicate is HW crypto is enabled for this bssid */
301 bool is_hw_crypto_enabled
;
303 #define MWL8K_VIF(_vif) ((struct mwl8k_vif *)&((_vif)->drv_priv))
304 #define IEEE80211_KEY_CONF(_u8) ((struct ieee80211_key_conf *)(_u8))
306 struct tx_traffic_info
{
311 #define MWL8K_MAX_TID 8
313 /* Index into station database. Returned by UPDATE_STADB. */
316 struct tx_traffic_info tx_stats
[MWL8K_MAX_TID
];
318 #define MWL8K_STA(_sta) ((struct mwl8k_sta *)&((_sta)->drv_priv))
320 static const struct ieee80211_channel mwl8k_channels_24
[] = {
321 { .center_freq
= 2412, .hw_value
= 1, },
322 { .center_freq
= 2417, .hw_value
= 2, },
323 { .center_freq
= 2422, .hw_value
= 3, },
324 { .center_freq
= 2427, .hw_value
= 4, },
325 { .center_freq
= 2432, .hw_value
= 5, },
326 { .center_freq
= 2437, .hw_value
= 6, },
327 { .center_freq
= 2442, .hw_value
= 7, },
328 { .center_freq
= 2447, .hw_value
= 8, },
329 { .center_freq
= 2452, .hw_value
= 9, },
330 { .center_freq
= 2457, .hw_value
= 10, },
331 { .center_freq
= 2462, .hw_value
= 11, },
332 { .center_freq
= 2467, .hw_value
= 12, },
333 { .center_freq
= 2472, .hw_value
= 13, },
334 { .center_freq
= 2484, .hw_value
= 14, },
337 static const struct ieee80211_rate mwl8k_rates_24
[] = {
338 { .bitrate
= 10, .hw_value
= 2, },
339 { .bitrate
= 20, .hw_value
= 4, },
340 { .bitrate
= 55, .hw_value
= 11, },
341 { .bitrate
= 110, .hw_value
= 22, },
342 { .bitrate
= 220, .hw_value
= 44, },
343 { .bitrate
= 60, .hw_value
= 12, },
344 { .bitrate
= 90, .hw_value
= 18, },
345 { .bitrate
= 120, .hw_value
= 24, },
346 { .bitrate
= 180, .hw_value
= 36, },
347 { .bitrate
= 240, .hw_value
= 48, },
348 { .bitrate
= 360, .hw_value
= 72, },
349 { .bitrate
= 480, .hw_value
= 96, },
350 { .bitrate
= 540, .hw_value
= 108, },
351 { .bitrate
= 720, .hw_value
= 144, },
354 static const struct ieee80211_channel mwl8k_channels_50
[] = {
355 { .center_freq
= 5180, .hw_value
= 36, },
356 { .center_freq
= 5200, .hw_value
= 40, },
357 { .center_freq
= 5220, .hw_value
= 44, },
358 { .center_freq
= 5240, .hw_value
= 48, },
361 static const struct ieee80211_rate mwl8k_rates_50
[] = {
362 { .bitrate
= 60, .hw_value
= 12, },
363 { .bitrate
= 90, .hw_value
= 18, },
364 { .bitrate
= 120, .hw_value
= 24, },
365 { .bitrate
= 180, .hw_value
= 36, },
366 { .bitrate
= 240, .hw_value
= 48, },
367 { .bitrate
= 360, .hw_value
= 72, },
368 { .bitrate
= 480, .hw_value
= 96, },
369 { .bitrate
= 540, .hw_value
= 108, },
370 { .bitrate
= 720, .hw_value
= 144, },
373 /* Set or get info from Firmware */
374 #define MWL8K_CMD_GET 0x0000
375 #define MWL8K_CMD_SET 0x0001
376 #define MWL8K_CMD_SET_LIST 0x0002
378 /* Firmware command codes */
379 #define MWL8K_CMD_CODE_DNLD 0x0001
380 #define MWL8K_CMD_GET_HW_SPEC 0x0003
381 #define MWL8K_CMD_SET_HW_SPEC 0x0004
382 #define MWL8K_CMD_MAC_MULTICAST_ADR 0x0010
383 #define MWL8K_CMD_GET_STAT 0x0014
384 #define MWL8K_CMD_RADIO_CONTROL 0x001c
385 #define MWL8K_CMD_RF_TX_POWER 0x001e
386 #define MWL8K_CMD_TX_POWER 0x001f
387 #define MWL8K_CMD_RF_ANTENNA 0x0020
388 #define MWL8K_CMD_SET_BEACON 0x0100 /* per-vif */
389 #define MWL8K_CMD_SET_PRE_SCAN 0x0107
390 #define MWL8K_CMD_SET_POST_SCAN 0x0108
391 #define MWL8K_CMD_SET_RF_CHANNEL 0x010a
392 #define MWL8K_CMD_SET_AID 0x010d
393 #define MWL8K_CMD_SET_RATE 0x0110
394 #define MWL8K_CMD_SET_FINALIZE_JOIN 0x0111
395 #define MWL8K_CMD_RTS_THRESHOLD 0x0113
396 #define MWL8K_CMD_SET_SLOT 0x0114
397 #define MWL8K_CMD_SET_EDCA_PARAMS 0x0115
398 #define MWL8K_CMD_SET_WMM_MODE 0x0123
399 #define MWL8K_CMD_MIMO_CONFIG 0x0125
400 #define MWL8K_CMD_USE_FIXED_RATE 0x0126
401 #define MWL8K_CMD_ENABLE_SNIFFER 0x0150
402 #define MWL8K_CMD_SET_MAC_ADDR 0x0202 /* per-vif */
403 #define MWL8K_CMD_SET_RATEADAPT_MODE 0x0203
404 #define MWL8K_CMD_GET_WATCHDOG_BITMAP 0x0205
405 #define MWL8K_CMD_BSS_START 0x1100 /* per-vif */
406 #define MWL8K_CMD_SET_NEW_STN 0x1111 /* per-vif */
407 #define MWL8K_CMD_UPDATE_ENCRYPTION 0x1122 /* per-vif */
408 #define MWL8K_CMD_UPDATE_STADB 0x1123
409 #define MWL8K_CMD_BASTREAM 0x1125
411 static const char *mwl8k_cmd_name(__le16 cmd
, char *buf
, int bufsize
)
413 u16 command
= le16_to_cpu(cmd
);
415 #define MWL8K_CMDNAME(x) case MWL8K_CMD_##x: do {\
416 snprintf(buf, bufsize, "%s", #x);\
419 switch (command
& ~0x8000) {
420 MWL8K_CMDNAME(CODE_DNLD
);
421 MWL8K_CMDNAME(GET_HW_SPEC
);
422 MWL8K_CMDNAME(SET_HW_SPEC
);
423 MWL8K_CMDNAME(MAC_MULTICAST_ADR
);
424 MWL8K_CMDNAME(GET_STAT
);
425 MWL8K_CMDNAME(RADIO_CONTROL
);
426 MWL8K_CMDNAME(RF_TX_POWER
);
427 MWL8K_CMDNAME(TX_POWER
);
428 MWL8K_CMDNAME(RF_ANTENNA
);
429 MWL8K_CMDNAME(SET_BEACON
);
430 MWL8K_CMDNAME(SET_PRE_SCAN
);
431 MWL8K_CMDNAME(SET_POST_SCAN
);
432 MWL8K_CMDNAME(SET_RF_CHANNEL
);
433 MWL8K_CMDNAME(SET_AID
);
434 MWL8K_CMDNAME(SET_RATE
);
435 MWL8K_CMDNAME(SET_FINALIZE_JOIN
);
436 MWL8K_CMDNAME(RTS_THRESHOLD
);
437 MWL8K_CMDNAME(SET_SLOT
);
438 MWL8K_CMDNAME(SET_EDCA_PARAMS
);
439 MWL8K_CMDNAME(SET_WMM_MODE
);
440 MWL8K_CMDNAME(MIMO_CONFIG
);
441 MWL8K_CMDNAME(USE_FIXED_RATE
);
442 MWL8K_CMDNAME(ENABLE_SNIFFER
);
443 MWL8K_CMDNAME(SET_MAC_ADDR
);
444 MWL8K_CMDNAME(SET_RATEADAPT_MODE
);
445 MWL8K_CMDNAME(BSS_START
);
446 MWL8K_CMDNAME(SET_NEW_STN
);
447 MWL8K_CMDNAME(UPDATE_ENCRYPTION
);
448 MWL8K_CMDNAME(UPDATE_STADB
);
449 MWL8K_CMDNAME(BASTREAM
);
450 MWL8K_CMDNAME(GET_WATCHDOG_BITMAP
);
452 snprintf(buf
, bufsize
, "0x%x", cmd
);
459 /* Hardware and firmware reset */
460 static void mwl8k_hw_reset(struct mwl8k_priv
*priv
)
462 iowrite32(MWL8K_H2A_INT_RESET
,
463 priv
->regs
+ MWL8K_HIU_H2A_INTERRUPT_EVENTS
);
464 iowrite32(MWL8K_H2A_INT_RESET
,
465 priv
->regs
+ MWL8K_HIU_H2A_INTERRUPT_EVENTS
);
469 /* Release fw image */
470 static void mwl8k_release_fw(const struct firmware
**fw
)
474 release_firmware(*fw
);
478 static void mwl8k_release_firmware(struct mwl8k_priv
*priv
)
480 mwl8k_release_fw(&priv
->fw_ucode
);
481 mwl8k_release_fw(&priv
->fw_helper
);
484 /* states for asynchronous f/w loading */
485 static void mwl8k_fw_state_machine(const struct firmware
*fw
, void *context
);
488 FW_STATE_LOADING_PREF
,
489 FW_STATE_LOADING_ALT
,
493 /* Request fw image */
494 static int mwl8k_request_fw(struct mwl8k_priv
*priv
,
495 const char *fname
, const struct firmware
**fw
,
498 /* release current image */
500 mwl8k_release_fw(fw
);
503 return request_firmware_nowait(THIS_MODULE
, 1, fname
,
504 &priv
->pdev
->dev
, GFP_KERNEL
,
505 priv
, mwl8k_fw_state_machine
);
507 return request_firmware(fw
, fname
, &priv
->pdev
->dev
);
510 static int mwl8k_request_firmware(struct mwl8k_priv
*priv
, char *fw_image
,
513 struct mwl8k_device_info
*di
= priv
->device_info
;
516 if (di
->helper_image
!= NULL
) {
518 rc
= mwl8k_request_fw(priv
, di
->helper_image
,
519 &priv
->fw_helper
, true);
521 rc
= mwl8k_request_fw(priv
, di
->helper_image
,
522 &priv
->fw_helper
, false);
524 printk(KERN_ERR
"%s: Error requesting helper fw %s\n",
525 pci_name(priv
->pdev
), di
->helper_image
);
533 * if we get here, no helper image is needed. Skip the
534 * FW_STATE_INIT state.
536 priv
->fw_state
= FW_STATE_LOADING_PREF
;
537 rc
= mwl8k_request_fw(priv
, fw_image
,
541 rc
= mwl8k_request_fw(priv
, fw_image
,
542 &priv
->fw_ucode
, false);
544 printk(KERN_ERR
"%s: Error requesting firmware file %s\n",
545 pci_name(priv
->pdev
), fw_image
);
546 mwl8k_release_fw(&priv
->fw_helper
);
553 struct mwl8k_cmd_pkt
{
566 mwl8k_send_fw_load_cmd(struct mwl8k_priv
*priv
, void *data
, int length
)
568 void __iomem
*regs
= priv
->regs
;
572 dma_addr
= pci_map_single(priv
->pdev
, data
, length
, PCI_DMA_TODEVICE
);
573 if (pci_dma_mapping_error(priv
->pdev
, dma_addr
))
576 iowrite32(dma_addr
, regs
+ MWL8K_HIU_GEN_PTR
);
577 iowrite32(0, regs
+ MWL8K_HIU_INT_CODE
);
578 iowrite32(MWL8K_H2A_INT_DOORBELL
,
579 regs
+ MWL8K_HIU_H2A_INTERRUPT_EVENTS
);
580 iowrite32(MWL8K_H2A_INT_DUMMY
,
581 regs
+ MWL8K_HIU_H2A_INTERRUPT_EVENTS
);
587 int_code
= ioread32(regs
+ MWL8K_HIU_INT_CODE
);
588 if (int_code
== MWL8K_INT_CODE_CMD_FINISHED
) {
589 iowrite32(0, regs
+ MWL8K_HIU_INT_CODE
);
597 pci_unmap_single(priv
->pdev
, dma_addr
, length
, PCI_DMA_TODEVICE
);
599 return loops
? 0 : -ETIMEDOUT
;
602 static int mwl8k_load_fw_image(struct mwl8k_priv
*priv
,
603 const u8
*data
, size_t length
)
605 struct mwl8k_cmd_pkt
*cmd
;
609 cmd
= kmalloc(sizeof(*cmd
) + 256, GFP_KERNEL
);
613 cmd
->code
= cpu_to_le16(MWL8K_CMD_CODE_DNLD
);
620 int block_size
= length
> 256 ? 256 : length
;
622 memcpy(cmd
->payload
, data
+ done
, block_size
);
623 cmd
->length
= cpu_to_le16(block_size
);
625 rc
= mwl8k_send_fw_load_cmd(priv
, cmd
,
626 sizeof(*cmd
) + block_size
);
631 length
-= block_size
;
636 rc
= mwl8k_send_fw_load_cmd(priv
, cmd
, sizeof(*cmd
));
644 static int mwl8k_feed_fw_image(struct mwl8k_priv
*priv
,
645 const u8
*data
, size_t length
)
647 unsigned char *buffer
;
648 int may_continue
, rc
= 0;
649 u32 done
, prev_block_size
;
651 buffer
= kmalloc(1024, GFP_KERNEL
);
658 while (may_continue
> 0) {
661 block_size
= ioread32(priv
->regs
+ MWL8K_HIU_SCRATCH
);
662 if (block_size
& 1) {
666 done
+= prev_block_size
;
667 length
-= prev_block_size
;
670 if (block_size
> 1024 || block_size
> length
) {
680 if (block_size
== 0) {
687 prev_block_size
= block_size
;
688 memcpy(buffer
, data
+ done
, block_size
);
690 rc
= mwl8k_send_fw_load_cmd(priv
, buffer
, block_size
);
695 if (!rc
&& length
!= 0)
703 static int mwl8k_load_firmware(struct ieee80211_hw
*hw
)
705 struct mwl8k_priv
*priv
= hw
->priv
;
706 const struct firmware
*fw
= priv
->fw_ucode
;
710 if (!memcmp(fw
->data
, "\x01\x00\x00\x00", 4)) {
711 const struct firmware
*helper
= priv
->fw_helper
;
713 if (helper
== NULL
) {
714 printk(KERN_ERR
"%s: helper image needed but none "
715 "given\n", pci_name(priv
->pdev
));
719 rc
= mwl8k_load_fw_image(priv
, helper
->data
, helper
->size
);
721 printk(KERN_ERR
"%s: unable to load firmware "
722 "helper image\n", pci_name(priv
->pdev
));
727 rc
= mwl8k_feed_fw_image(priv
, fw
->data
, fw
->size
);
729 rc
= mwl8k_load_fw_image(priv
, fw
->data
, fw
->size
);
733 printk(KERN_ERR
"%s: unable to load firmware image\n",
734 pci_name(priv
->pdev
));
738 iowrite32(MWL8K_MODE_STA
, priv
->regs
+ MWL8K_HIU_GEN_PTR
);
744 ready_code
= ioread32(priv
->regs
+ MWL8K_HIU_INT_CODE
);
745 if (ready_code
== MWL8K_FWAP_READY
) {
748 } else if (ready_code
== MWL8K_FWSTA_READY
) {
757 return loops
? 0 : -ETIMEDOUT
;
761 /* DMA header used by firmware and hardware. */
762 struct mwl8k_dma_data
{
764 struct ieee80211_hdr wh
;
768 /* Routines to add/remove DMA header from skb. */
769 static inline void mwl8k_remove_dma_header(struct sk_buff
*skb
, __le16 qos
)
771 struct mwl8k_dma_data
*tr
;
774 tr
= (struct mwl8k_dma_data
*)skb
->data
;
775 hdrlen
= ieee80211_hdrlen(tr
->wh
.frame_control
);
777 if (hdrlen
!= sizeof(tr
->wh
)) {
778 if (ieee80211_is_data_qos(tr
->wh
.frame_control
)) {
779 memmove(tr
->data
- hdrlen
, &tr
->wh
, hdrlen
- 2);
780 *((__le16
*)(tr
->data
- 2)) = qos
;
782 memmove(tr
->data
- hdrlen
, &tr
->wh
, hdrlen
);
786 if (hdrlen
!= sizeof(*tr
))
787 skb_pull(skb
, sizeof(*tr
) - hdrlen
);
790 #define REDUCED_TX_HEADROOM 8
793 mwl8k_add_dma_header(struct mwl8k_priv
*priv
, struct sk_buff
*skb
,
794 int head_pad
, int tail_pad
)
796 struct ieee80211_hdr
*wh
;
799 struct mwl8k_dma_data
*tr
;
802 * Add a firmware DMA header; the firmware requires that we
803 * present a 2-byte payload length followed by a 4-address
804 * header (without QoS field), followed (optionally) by any
805 * WEP/ExtIV header (but only filled in for CCMP).
807 wh
= (struct ieee80211_hdr
*)skb
->data
;
809 hdrlen
= ieee80211_hdrlen(wh
->frame_control
);
812 * Check if skb_resize is required because of
813 * tx_headroom adjustment.
815 if (priv
->ap_fw
&& (hdrlen
< (sizeof(struct ieee80211_cts
)
816 + REDUCED_TX_HEADROOM
))) {
817 if (pskb_expand_head(skb
, REDUCED_TX_HEADROOM
, 0, GFP_ATOMIC
)) {
819 wiphy_err(priv
->hw
->wiphy
,
820 "Failed to reallocate TX buffer\n");
823 skb
->truesize
+= REDUCED_TX_HEADROOM
;
826 reqd_hdrlen
= sizeof(*tr
) + head_pad
;
828 if (hdrlen
!= reqd_hdrlen
)
829 skb_push(skb
, reqd_hdrlen
- hdrlen
);
831 if (ieee80211_is_data_qos(wh
->frame_control
))
832 hdrlen
-= IEEE80211_QOS_CTL_LEN
;
834 tr
= (struct mwl8k_dma_data
*)skb
->data
;
836 memmove(&tr
->wh
, wh
, hdrlen
);
837 if (hdrlen
!= sizeof(tr
->wh
))
838 memset(((void *)&tr
->wh
) + hdrlen
, 0, sizeof(tr
->wh
) - hdrlen
);
841 * Firmware length is the length of the fully formed "802.11
842 * payload". That is, everything except for the 802.11 header.
843 * This includes all crypto material including the MIC.
845 tr
->fwlen
= cpu_to_le16(skb
->len
- sizeof(*tr
) + tail_pad
);
848 static void mwl8k_encapsulate_tx_frame(struct mwl8k_priv
*priv
,
851 struct ieee80211_hdr
*wh
;
852 struct ieee80211_tx_info
*tx_info
;
853 struct ieee80211_key_conf
*key_conf
;
857 wh
= (struct ieee80211_hdr
*)skb
->data
;
859 tx_info
= IEEE80211_SKB_CB(skb
);
862 if (ieee80211_is_data(wh
->frame_control
))
863 key_conf
= tx_info
->control
.hw_key
;
866 * Make sure the packet header is in the DMA header format (4-address
867 * without QoS), and add head & tail padding when HW crypto is enabled.
869 * We have the following trailer padding requirements:
870 * - WEP: 4 trailer bytes (ICV)
871 * - TKIP: 12 trailer bytes (8 MIC + 4 ICV)
872 * - CCMP: 8 trailer bytes (MIC)
875 if (key_conf
!= NULL
) {
876 head_pad
= key_conf
->iv_len
;
877 switch (key_conf
->cipher
) {
878 case WLAN_CIPHER_SUITE_WEP40
:
879 case WLAN_CIPHER_SUITE_WEP104
:
882 case WLAN_CIPHER_SUITE_TKIP
:
885 case WLAN_CIPHER_SUITE_CCMP
:
890 mwl8k_add_dma_header(priv
, skb
, head_pad
, data_pad
);
894 * Packet reception for 88w8366 AP firmware.
896 struct mwl8k_rxd_8366_ap
{
900 __le32 pkt_phys_addr
;
901 __le32 next_rxd_phys_addr
;
905 __le32 hw_noise_floor_info
;
914 #define MWL8K_8366_AP_RATE_INFO_MCS_FORMAT 0x80
915 #define MWL8K_8366_AP_RATE_INFO_40MHZ 0x40
916 #define MWL8K_8366_AP_RATE_INFO_RATEID(x) ((x) & 0x3f)
918 #define MWL8K_8366_AP_RX_CTRL_OWNED_BY_HOST 0x80
920 /* 8366 AP rx_status bits */
921 #define MWL8K_8366_AP_RXSTAT_DECRYPT_ERR_MASK 0x80
922 #define MWL8K_8366_AP_RXSTAT_GENERAL_DECRYPT_ERR 0xFF
923 #define MWL8K_8366_AP_RXSTAT_TKIP_DECRYPT_MIC_ERR 0x02
924 #define MWL8K_8366_AP_RXSTAT_WEP_DECRYPT_ICV_ERR 0x04
925 #define MWL8K_8366_AP_RXSTAT_TKIP_DECRYPT_ICV_ERR 0x08
927 static void mwl8k_rxd_8366_ap_init(void *_rxd
, dma_addr_t next_dma_addr
)
929 struct mwl8k_rxd_8366_ap
*rxd
= _rxd
;
931 rxd
->next_rxd_phys_addr
= cpu_to_le32(next_dma_addr
);
932 rxd
->rx_ctrl
= MWL8K_8366_AP_RX_CTRL_OWNED_BY_HOST
;
935 static void mwl8k_rxd_8366_ap_refill(void *_rxd
, dma_addr_t addr
, int len
)
937 struct mwl8k_rxd_8366_ap
*rxd
= _rxd
;
939 rxd
->pkt_len
= cpu_to_le16(len
);
940 rxd
->pkt_phys_addr
= cpu_to_le32(addr
);
946 mwl8k_rxd_8366_ap_process(void *_rxd
, struct ieee80211_rx_status
*status
,
947 __le16
*qos
, s8
*noise
)
949 struct mwl8k_rxd_8366_ap
*rxd
= _rxd
;
951 if (!(rxd
->rx_ctrl
& MWL8K_8366_AP_RX_CTRL_OWNED_BY_HOST
))
955 memset(status
, 0, sizeof(*status
));
957 status
->signal
= -rxd
->rssi
;
958 *noise
= -rxd
->noise_floor
;
960 if (rxd
->rate
& MWL8K_8366_AP_RATE_INFO_MCS_FORMAT
) {
961 status
->flag
|= RX_FLAG_HT
;
962 if (rxd
->rate
& MWL8K_8366_AP_RATE_INFO_40MHZ
)
963 status
->flag
|= RX_FLAG_40MHZ
;
964 status
->rate_idx
= MWL8K_8366_AP_RATE_INFO_RATEID(rxd
->rate
);
968 for (i
= 0; i
< ARRAY_SIZE(mwl8k_rates_24
); i
++) {
969 if (mwl8k_rates_24
[i
].hw_value
== rxd
->rate
) {
970 status
->rate_idx
= i
;
976 if (rxd
->channel
> 14) {
977 status
->band
= IEEE80211_BAND_5GHZ
;
978 if (!(status
->flag
& RX_FLAG_HT
))
979 status
->rate_idx
-= 5;
981 status
->band
= IEEE80211_BAND_2GHZ
;
983 status
->freq
= ieee80211_channel_to_frequency(rxd
->channel
,
986 *qos
= rxd
->qos_control
;
988 if ((rxd
->rx_status
!= MWL8K_8366_AP_RXSTAT_GENERAL_DECRYPT_ERR
) &&
989 (rxd
->rx_status
& MWL8K_8366_AP_RXSTAT_DECRYPT_ERR_MASK
) &&
990 (rxd
->rx_status
& MWL8K_8366_AP_RXSTAT_TKIP_DECRYPT_MIC_ERR
))
991 status
->flag
|= RX_FLAG_MMIC_ERROR
;
993 return le16_to_cpu(rxd
->pkt_len
);
996 static struct rxd_ops rxd_8366_ap_ops
= {
997 .rxd_size
= sizeof(struct mwl8k_rxd_8366_ap
),
998 .rxd_init
= mwl8k_rxd_8366_ap_init
,
999 .rxd_refill
= mwl8k_rxd_8366_ap_refill
,
1000 .rxd_process
= mwl8k_rxd_8366_ap_process
,
1004 * Packet reception for STA firmware.
1006 struct mwl8k_rxd_sta
{
1010 __le32 pkt_phys_addr
;
1011 __le32 next_rxd_phys_addr
;
1023 #define MWL8K_STA_RATE_INFO_SHORTPRE 0x8000
1024 #define MWL8K_STA_RATE_INFO_ANTSELECT(x) (((x) >> 11) & 0x3)
1025 #define MWL8K_STA_RATE_INFO_RATEID(x) (((x) >> 3) & 0x3f)
1026 #define MWL8K_STA_RATE_INFO_40MHZ 0x0004
1027 #define MWL8K_STA_RATE_INFO_SHORTGI 0x0002
1028 #define MWL8K_STA_RATE_INFO_MCS_FORMAT 0x0001
1030 #define MWL8K_STA_RX_CTRL_OWNED_BY_HOST 0x02
1031 #define MWL8K_STA_RX_CTRL_DECRYPT_ERROR 0x04
1032 /* ICV=0 or MIC=1 */
1033 #define MWL8K_STA_RX_CTRL_DEC_ERR_TYPE 0x08
1034 /* Key is uploaded only in failure case */
1035 #define MWL8K_STA_RX_CTRL_KEY_INDEX 0x30
1037 static void mwl8k_rxd_sta_init(void *_rxd
, dma_addr_t next_dma_addr
)
1039 struct mwl8k_rxd_sta
*rxd
= _rxd
;
1041 rxd
->next_rxd_phys_addr
= cpu_to_le32(next_dma_addr
);
1042 rxd
->rx_ctrl
= MWL8K_STA_RX_CTRL_OWNED_BY_HOST
;
1045 static void mwl8k_rxd_sta_refill(void *_rxd
, dma_addr_t addr
, int len
)
1047 struct mwl8k_rxd_sta
*rxd
= _rxd
;
1049 rxd
->pkt_len
= cpu_to_le16(len
);
1050 rxd
->pkt_phys_addr
= cpu_to_le32(addr
);
1056 mwl8k_rxd_sta_process(void *_rxd
, struct ieee80211_rx_status
*status
,
1057 __le16
*qos
, s8
*noise
)
1059 struct mwl8k_rxd_sta
*rxd
= _rxd
;
1062 if (!(rxd
->rx_ctrl
& MWL8K_STA_RX_CTRL_OWNED_BY_HOST
))
1066 rate_info
= le16_to_cpu(rxd
->rate_info
);
1068 memset(status
, 0, sizeof(*status
));
1070 status
->signal
= -rxd
->rssi
;
1071 *noise
= -rxd
->noise_level
;
1072 status
->antenna
= MWL8K_STA_RATE_INFO_ANTSELECT(rate_info
);
1073 status
->rate_idx
= MWL8K_STA_RATE_INFO_RATEID(rate_info
);
1075 if (rate_info
& MWL8K_STA_RATE_INFO_SHORTPRE
)
1076 status
->flag
|= RX_FLAG_SHORTPRE
;
1077 if (rate_info
& MWL8K_STA_RATE_INFO_40MHZ
)
1078 status
->flag
|= RX_FLAG_40MHZ
;
1079 if (rate_info
& MWL8K_STA_RATE_INFO_SHORTGI
)
1080 status
->flag
|= RX_FLAG_SHORT_GI
;
1081 if (rate_info
& MWL8K_STA_RATE_INFO_MCS_FORMAT
)
1082 status
->flag
|= RX_FLAG_HT
;
1084 if (rxd
->channel
> 14) {
1085 status
->band
= IEEE80211_BAND_5GHZ
;
1086 if (!(status
->flag
& RX_FLAG_HT
))
1087 status
->rate_idx
-= 5;
1089 status
->band
= IEEE80211_BAND_2GHZ
;
1091 status
->freq
= ieee80211_channel_to_frequency(rxd
->channel
,
1094 *qos
= rxd
->qos_control
;
1095 if ((rxd
->rx_ctrl
& MWL8K_STA_RX_CTRL_DECRYPT_ERROR
) &&
1096 (rxd
->rx_ctrl
& MWL8K_STA_RX_CTRL_DEC_ERR_TYPE
))
1097 status
->flag
|= RX_FLAG_MMIC_ERROR
;
1099 return le16_to_cpu(rxd
->pkt_len
);
1102 static struct rxd_ops rxd_sta_ops
= {
1103 .rxd_size
= sizeof(struct mwl8k_rxd_sta
),
1104 .rxd_init
= mwl8k_rxd_sta_init
,
1105 .rxd_refill
= mwl8k_rxd_sta_refill
,
1106 .rxd_process
= mwl8k_rxd_sta_process
,
1110 #define MWL8K_RX_DESCS 256
1111 #define MWL8K_RX_MAXSZ 3800
1113 static int mwl8k_rxq_init(struct ieee80211_hw
*hw
, int index
)
1115 struct mwl8k_priv
*priv
= hw
->priv
;
1116 struct mwl8k_rx_queue
*rxq
= priv
->rxq
+ index
;
1124 size
= MWL8K_RX_DESCS
* priv
->rxd_ops
->rxd_size
;
1126 rxq
->rxd
= pci_alloc_consistent(priv
->pdev
, size
, &rxq
->rxd_dma
);
1127 if (rxq
->rxd
== NULL
) {
1128 wiphy_err(hw
->wiphy
, "failed to alloc RX descriptors\n");
1131 memset(rxq
->rxd
, 0, size
);
1133 rxq
->buf
= kcalloc(MWL8K_RX_DESCS
, sizeof(*rxq
->buf
), GFP_KERNEL
);
1134 if (rxq
->buf
== NULL
) {
1135 wiphy_err(hw
->wiphy
, "failed to alloc RX skbuff list\n");
1136 pci_free_consistent(priv
->pdev
, size
, rxq
->rxd
, rxq
->rxd_dma
);
1140 for (i
= 0; i
< MWL8K_RX_DESCS
; i
++) {
1144 dma_addr_t next_dma_addr
;
1146 desc_size
= priv
->rxd_ops
->rxd_size
;
1147 rxd
= rxq
->rxd
+ (i
* priv
->rxd_ops
->rxd_size
);
1150 if (nexti
== MWL8K_RX_DESCS
)
1152 next_dma_addr
= rxq
->rxd_dma
+ (nexti
* desc_size
);
1154 priv
->rxd_ops
->rxd_init(rxd
, next_dma_addr
);
1160 static int rxq_refill(struct ieee80211_hw
*hw
, int index
, int limit
)
1162 struct mwl8k_priv
*priv
= hw
->priv
;
1163 struct mwl8k_rx_queue
*rxq
= priv
->rxq
+ index
;
1167 while (rxq
->rxd_count
< MWL8K_RX_DESCS
&& limit
--) {
1168 struct sk_buff
*skb
;
1173 skb
= dev_alloc_skb(MWL8K_RX_MAXSZ
);
1177 addr
= pci_map_single(priv
->pdev
, skb
->data
,
1178 MWL8K_RX_MAXSZ
, DMA_FROM_DEVICE
);
1182 if (rxq
->tail
== MWL8K_RX_DESCS
)
1184 rxq
->buf
[rx
].skb
= skb
;
1185 dma_unmap_addr_set(&rxq
->buf
[rx
], dma
, addr
);
1187 rxd
= rxq
->rxd
+ (rx
* priv
->rxd_ops
->rxd_size
);
1188 priv
->rxd_ops
->rxd_refill(rxd
, addr
, MWL8K_RX_MAXSZ
);
1196 /* Must be called only when the card's reception is completely halted */
1197 static void mwl8k_rxq_deinit(struct ieee80211_hw
*hw
, int index
)
1199 struct mwl8k_priv
*priv
= hw
->priv
;
1200 struct mwl8k_rx_queue
*rxq
= priv
->rxq
+ index
;
1203 if (rxq
->rxd
== NULL
)
1206 for (i
= 0; i
< MWL8K_RX_DESCS
; i
++) {
1207 if (rxq
->buf
[i
].skb
!= NULL
) {
1208 pci_unmap_single(priv
->pdev
,
1209 dma_unmap_addr(&rxq
->buf
[i
], dma
),
1210 MWL8K_RX_MAXSZ
, PCI_DMA_FROMDEVICE
);
1211 dma_unmap_addr_set(&rxq
->buf
[i
], dma
, 0);
1213 kfree_skb(rxq
->buf
[i
].skb
);
1214 rxq
->buf
[i
].skb
= NULL
;
1221 pci_free_consistent(priv
->pdev
,
1222 MWL8K_RX_DESCS
* priv
->rxd_ops
->rxd_size
,
1223 rxq
->rxd
, rxq
->rxd_dma
);
1229 * Scan a list of BSSIDs to process for finalize join.
1230 * Allows for extension to process multiple BSSIDs.
1233 mwl8k_capture_bssid(struct mwl8k_priv
*priv
, struct ieee80211_hdr
*wh
)
1235 return priv
->capture_beacon
&&
1236 ieee80211_is_beacon(wh
->frame_control
) &&
1237 !compare_ether_addr(wh
->addr3
, priv
->capture_bssid
);
1240 static inline void mwl8k_save_beacon(struct ieee80211_hw
*hw
,
1241 struct sk_buff
*skb
)
1243 struct mwl8k_priv
*priv
= hw
->priv
;
1245 priv
->capture_beacon
= false;
1246 memset(priv
->capture_bssid
, 0, ETH_ALEN
);
1249 * Use GFP_ATOMIC as rxq_process is called from
1250 * the primary interrupt handler, memory allocation call
1253 priv
->beacon_skb
= skb_copy(skb
, GFP_ATOMIC
);
1254 if (priv
->beacon_skb
!= NULL
)
1255 ieee80211_queue_work(hw
, &priv
->finalize_join_worker
);
1258 static inline struct mwl8k_vif
*mwl8k_find_vif_bss(struct list_head
*vif_list
,
1261 struct mwl8k_vif
*mwl8k_vif
;
1263 list_for_each_entry(mwl8k_vif
,
1265 if (memcmp(bssid
, mwl8k_vif
->bssid
,
1273 static int rxq_process(struct ieee80211_hw
*hw
, int index
, int limit
)
1275 struct mwl8k_priv
*priv
= hw
->priv
;
1276 struct mwl8k_vif
*mwl8k_vif
= NULL
;
1277 struct mwl8k_rx_queue
*rxq
= priv
->rxq
+ index
;
1281 while (rxq
->rxd_count
&& limit
--) {
1282 struct sk_buff
*skb
;
1285 struct ieee80211_rx_status status
;
1286 struct ieee80211_hdr
*wh
;
1289 skb
= rxq
->buf
[rxq
->head
].skb
;
1293 rxd
= rxq
->rxd
+ (rxq
->head
* priv
->rxd_ops
->rxd_size
);
1295 pkt_len
= priv
->rxd_ops
->rxd_process(rxd
, &status
, &qos
,
1300 rxq
->buf
[rxq
->head
].skb
= NULL
;
1302 pci_unmap_single(priv
->pdev
,
1303 dma_unmap_addr(&rxq
->buf
[rxq
->head
], dma
),
1304 MWL8K_RX_MAXSZ
, PCI_DMA_FROMDEVICE
);
1305 dma_unmap_addr_set(&rxq
->buf
[rxq
->head
], dma
, 0);
1308 if (rxq
->head
== MWL8K_RX_DESCS
)
1313 wh
= &((struct mwl8k_dma_data
*)skb
->data
)->wh
;
1316 * Check for a pending join operation. Save a
1317 * copy of the beacon and schedule a tasklet to
1318 * send a FINALIZE_JOIN command to the firmware.
1320 if (mwl8k_capture_bssid(priv
, (void *)skb
->data
))
1321 mwl8k_save_beacon(hw
, skb
);
1323 if (ieee80211_has_protected(wh
->frame_control
)) {
1325 /* Check if hw crypto has been enabled for
1326 * this bss. If yes, set the status flags
1329 mwl8k_vif
= mwl8k_find_vif_bss(&priv
->vif_list
,
1332 if (mwl8k_vif
!= NULL
&&
1333 mwl8k_vif
->is_hw_crypto_enabled
== true) {
1335 * When MMIC ERROR is encountered
1336 * by the firmware, payload is
1337 * dropped and only 32 bytes of
1338 * mwl8k Firmware header is sent
1341 * We need to add four bytes of
1342 * key information. In it
1343 * MAC80211 expects keyidx set to
1344 * 0 for triggering Counter
1345 * Measure of MMIC failure.
1347 if (status
.flag
& RX_FLAG_MMIC_ERROR
) {
1348 struct mwl8k_dma_data
*tr
;
1349 tr
= (struct mwl8k_dma_data
*)skb
->data
;
1350 memset((void *)&(tr
->data
), 0, 4);
1354 if (!ieee80211_is_auth(wh
->frame_control
))
1355 status
.flag
|= RX_FLAG_IV_STRIPPED
|
1357 RX_FLAG_MMIC_STRIPPED
;
1361 skb_put(skb
, pkt_len
);
1362 mwl8k_remove_dma_header(skb
, qos
);
1363 memcpy(IEEE80211_SKB_RXCB(skb
), &status
, sizeof(status
));
1364 ieee80211_rx_irqsafe(hw
, skb
);
1374 * Packet transmission.
1377 #define MWL8K_TXD_STATUS_OK 0x00000001
1378 #define MWL8K_TXD_STATUS_OK_RETRY 0x00000002
1379 #define MWL8K_TXD_STATUS_OK_MORE_RETRY 0x00000004
1380 #define MWL8K_TXD_STATUS_MULTICAST_TX 0x00000008
1381 #define MWL8K_TXD_STATUS_FW_OWNED 0x80000000
1383 #define MWL8K_QOS_QLEN_UNSPEC 0xff00
1384 #define MWL8K_QOS_ACK_POLICY_MASK 0x0060
1385 #define MWL8K_QOS_ACK_POLICY_NORMAL 0x0000
1386 #define MWL8K_QOS_ACK_POLICY_BLOCKACK 0x0060
1387 #define MWL8K_QOS_EOSP 0x0010
1389 struct mwl8k_tx_desc
{
1394 __le32 pkt_phys_addr
;
1396 __u8 dest_MAC_addr
[ETH_ALEN
];
1397 __le32 next_txd_phys_addr
;
1404 #define MWL8K_TX_DESCS 128
1406 static int mwl8k_txq_init(struct ieee80211_hw
*hw
, int index
)
1408 struct mwl8k_priv
*priv
= hw
->priv
;
1409 struct mwl8k_tx_queue
*txq
= priv
->txq
+ index
;
1417 size
= MWL8K_TX_DESCS
* sizeof(struct mwl8k_tx_desc
);
1419 txq
->txd
= pci_alloc_consistent(priv
->pdev
, size
, &txq
->txd_dma
);
1420 if (txq
->txd
== NULL
) {
1421 wiphy_err(hw
->wiphy
, "failed to alloc TX descriptors\n");
1424 memset(txq
->txd
, 0, size
);
1426 txq
->skb
= kcalloc(MWL8K_TX_DESCS
, sizeof(*txq
->skb
), GFP_KERNEL
);
1427 if (txq
->skb
== NULL
) {
1428 wiphy_err(hw
->wiphy
, "failed to alloc TX skbuff list\n");
1429 pci_free_consistent(priv
->pdev
, size
, txq
->txd
, txq
->txd_dma
);
1433 for (i
= 0; i
< MWL8K_TX_DESCS
; i
++) {
1434 struct mwl8k_tx_desc
*tx_desc
;
1437 tx_desc
= txq
->txd
+ i
;
1438 nexti
= (i
+ 1) % MWL8K_TX_DESCS
;
1440 tx_desc
->status
= 0;
1441 tx_desc
->next_txd_phys_addr
=
1442 cpu_to_le32(txq
->txd_dma
+ nexti
* sizeof(*tx_desc
));
1448 static inline void mwl8k_tx_start(struct mwl8k_priv
*priv
)
1450 iowrite32(MWL8K_H2A_INT_PPA_READY
,
1451 priv
->regs
+ MWL8K_HIU_H2A_INTERRUPT_EVENTS
);
1452 iowrite32(MWL8K_H2A_INT_DUMMY
,
1453 priv
->regs
+ MWL8K_HIU_H2A_INTERRUPT_EVENTS
);
1454 ioread32(priv
->regs
+ MWL8K_HIU_INT_CODE
);
1457 static void mwl8k_dump_tx_rings(struct ieee80211_hw
*hw
)
1459 struct mwl8k_priv
*priv
= hw
->priv
;
1462 for (i
= 0; i
< mwl8k_tx_queues(priv
); i
++) {
1463 struct mwl8k_tx_queue
*txq
= priv
->txq
+ i
;
1469 for (desc
= 0; desc
< MWL8K_TX_DESCS
; desc
++) {
1470 struct mwl8k_tx_desc
*tx_desc
= txq
->txd
+ desc
;
1473 status
= le32_to_cpu(tx_desc
->status
);
1474 if (status
& MWL8K_TXD_STATUS_FW_OWNED
)
1479 if (tx_desc
->pkt_len
== 0)
1483 wiphy_err(hw
->wiphy
,
1484 "txq[%d] len=%d head=%d tail=%d "
1485 "fw_owned=%d drv_owned=%d unused=%d\n",
1487 txq
->len
, txq
->head
, txq
->tail
,
1488 fw_owned
, drv_owned
, unused
);
1493 * Must be called with priv->fw_mutex held and tx queues stopped.
1495 #define MWL8K_TX_WAIT_TIMEOUT_MS 5000
1497 static int mwl8k_tx_wait_empty(struct ieee80211_hw
*hw
)
1499 struct mwl8k_priv
*priv
= hw
->priv
;
1500 DECLARE_COMPLETION_ONSTACK(tx_wait
);
1506 /* Since fw restart is in progress, allow only the firmware
1507 * commands from the restart code and block the other
1508 * commands since they are going to fail in any case since
1509 * the firmware has crashed
1511 if (priv
->hw_restart_in_progress
) {
1512 if (priv
->hw_restart_owner
== current
)
1519 * The TX queues are stopped at this point, so this test
1520 * doesn't need to take ->tx_lock.
1522 if (!priv
->pending_tx_pkts
)
1528 spin_lock_bh(&priv
->tx_lock
);
1529 priv
->tx_wait
= &tx_wait
;
1532 unsigned long timeout
;
1534 oldcount
= priv
->pending_tx_pkts
;
1536 spin_unlock_bh(&priv
->tx_lock
);
1537 timeout
= wait_for_completion_timeout(&tx_wait
,
1538 msecs_to_jiffies(MWL8K_TX_WAIT_TIMEOUT_MS
));
1539 spin_lock_bh(&priv
->tx_lock
);
1542 WARN_ON(priv
->pending_tx_pkts
);
1544 wiphy_notice(hw
->wiphy
, "tx rings drained\n");
1548 if (priv
->pending_tx_pkts
< oldcount
) {
1549 wiphy_notice(hw
->wiphy
,
1550 "waiting for tx rings to drain (%d -> %d pkts)\n",
1551 oldcount
, priv
->pending_tx_pkts
);
1556 priv
->tx_wait
= NULL
;
1558 wiphy_err(hw
->wiphy
, "tx rings stuck for %d ms\n",
1559 MWL8K_TX_WAIT_TIMEOUT_MS
);
1560 mwl8k_dump_tx_rings(hw
);
1561 priv
->hw_restart_in_progress
= true;
1562 ieee80211_queue_work(hw
, &priv
->fw_reload
);
1566 spin_unlock_bh(&priv
->tx_lock
);
1571 #define MWL8K_TXD_SUCCESS(status) \
1572 ((status) & (MWL8K_TXD_STATUS_OK | \
1573 MWL8K_TXD_STATUS_OK_RETRY | \
1574 MWL8K_TXD_STATUS_OK_MORE_RETRY))
1576 static int mwl8k_tid_queue_mapping(u8 tid
)
1583 return IEEE80211_AC_BE
;
1587 return IEEE80211_AC_BK
;
1591 return IEEE80211_AC_VI
;
1595 return IEEE80211_AC_VO
;
1603 /* The firmware will fill in the rate information
1604 * for each packet that gets queued in the hardware
1605 * and these macros will interpret that info.
1608 #define RI_FORMAT(a) (a & 0x0001)
1609 #define RI_RATE_ID_MCS(a) ((a & 0x01f8) >> 3)
1612 mwl8k_txq_reclaim(struct ieee80211_hw
*hw
, int index
, int limit
, int force
)
1614 struct mwl8k_priv
*priv
= hw
->priv
;
1615 struct mwl8k_tx_queue
*txq
= priv
->txq
+ index
;
1619 while (txq
->len
> 0 && limit
--) {
1621 struct mwl8k_tx_desc
*tx_desc
;
1624 struct sk_buff
*skb
;
1625 struct ieee80211_tx_info
*info
;
1627 struct ieee80211_sta
*sta
;
1628 struct mwl8k_sta
*sta_info
= NULL
;
1630 struct ieee80211_hdr
*wh
;
1633 tx_desc
= txq
->txd
+ tx
;
1635 status
= le32_to_cpu(tx_desc
->status
);
1637 if (status
& MWL8K_TXD_STATUS_FW_OWNED
) {
1641 ~cpu_to_le32(MWL8K_TXD_STATUS_FW_OWNED
);
1644 txq
->head
= (tx
+ 1) % MWL8K_TX_DESCS
;
1645 BUG_ON(txq
->len
== 0);
1647 priv
->pending_tx_pkts
--;
1649 addr
= le32_to_cpu(tx_desc
->pkt_phys_addr
);
1650 size
= le16_to_cpu(tx_desc
->pkt_len
);
1652 txq
->skb
[tx
] = NULL
;
1654 BUG_ON(skb
== NULL
);
1655 pci_unmap_single(priv
->pdev
, addr
, size
, PCI_DMA_TODEVICE
);
1657 mwl8k_remove_dma_header(skb
, tx_desc
->qos_control
);
1659 wh
= (struct ieee80211_hdr
*) skb
->data
;
1661 /* Mark descriptor as unused */
1662 tx_desc
->pkt_phys_addr
= 0;
1663 tx_desc
->pkt_len
= 0;
1665 info
= IEEE80211_SKB_CB(skb
);
1666 if (ieee80211_is_data(wh
->frame_control
)) {
1667 sta
= info
->control
.sta
;
1669 sta_info
= MWL8K_STA(sta
);
1670 BUG_ON(sta_info
== NULL
);
1671 rate_info
= le16_to_cpu(tx_desc
->rate_info
);
1672 /* If rate is < 6.5 Mpbs for an ht station
1673 * do not form an ampdu. If the station is a
1674 * legacy station (format = 0), do not form an
1677 if (RI_RATE_ID_MCS(rate_info
) < 1 ||
1678 RI_FORMAT(rate_info
) == 0) {
1679 sta_info
->is_ampdu_allowed
= false;
1681 sta_info
->is_ampdu_allowed
= true;
1686 ieee80211_tx_info_clear_status(info
);
1688 /* Rate control is happening in the firmware.
1689 * Ensure no tx rate is being reported.
1691 info
->status
.rates
[0].idx
= -1;
1692 info
->status
.rates
[0].count
= 1;
1694 if (MWL8K_TXD_SUCCESS(status
))
1695 info
->flags
|= IEEE80211_TX_STAT_ACK
;
1697 ieee80211_tx_status_irqsafe(hw
, skb
);
1705 /* must be called only when the card's transmit is completely halted */
1706 static void mwl8k_txq_deinit(struct ieee80211_hw
*hw
, int index
)
1708 struct mwl8k_priv
*priv
= hw
->priv
;
1709 struct mwl8k_tx_queue
*txq
= priv
->txq
+ index
;
1711 if (txq
->txd
== NULL
)
1714 mwl8k_txq_reclaim(hw
, index
, INT_MAX
, 1);
1719 pci_free_consistent(priv
->pdev
,
1720 MWL8K_TX_DESCS
* sizeof(struct mwl8k_tx_desc
),
1721 txq
->txd
, txq
->txd_dma
);
1725 /* caller must hold priv->stream_lock when calling the stream functions */
1726 static struct mwl8k_ampdu_stream
*
1727 mwl8k_add_stream(struct ieee80211_hw
*hw
, struct ieee80211_sta
*sta
, u8 tid
)
1729 struct mwl8k_ampdu_stream
*stream
;
1730 struct mwl8k_priv
*priv
= hw
->priv
;
1733 for (i
= 0; i
< priv
->num_ampdu_queues
; i
++) {
1734 stream
= &priv
->ampdu
[i
];
1735 if (stream
->state
== AMPDU_NO_STREAM
) {
1737 stream
->state
= AMPDU_STREAM_NEW
;
1740 stream
->txq_idx
= MWL8K_TX_WMM_QUEUES
+ i
;
1741 wiphy_debug(hw
->wiphy
, "Added a new stream for %pM %d",
1750 mwl8k_start_stream(struct ieee80211_hw
*hw
, struct mwl8k_ampdu_stream
*stream
)
1754 /* if the stream has already been started, don't start it again */
1755 if (stream
->state
!= AMPDU_STREAM_NEW
)
1757 ret
= ieee80211_start_tx_ba_session(stream
->sta
, stream
->tid
, 0);
1759 wiphy_debug(hw
->wiphy
, "Failed to start stream for %pM %d: "
1760 "%d\n", stream
->sta
->addr
, stream
->tid
, ret
);
1762 wiphy_debug(hw
->wiphy
, "Started stream for %pM %d\n",
1763 stream
->sta
->addr
, stream
->tid
);
1768 mwl8k_remove_stream(struct ieee80211_hw
*hw
, struct mwl8k_ampdu_stream
*stream
)
1770 wiphy_debug(hw
->wiphy
, "Remove stream for %pM %d\n", stream
->sta
->addr
,
1772 memset(stream
, 0, sizeof(*stream
));
1775 static struct mwl8k_ampdu_stream
*
1776 mwl8k_lookup_stream(struct ieee80211_hw
*hw
, u8
*addr
, u8 tid
)
1778 struct mwl8k_priv
*priv
= hw
->priv
;
1781 for (i
= 0 ; i
< priv
->num_ampdu_queues
; i
++) {
1782 struct mwl8k_ampdu_stream
*stream
;
1783 stream
= &priv
->ampdu
[i
];
1784 if (stream
->state
== AMPDU_NO_STREAM
)
1786 if (!memcmp(stream
->sta
->addr
, addr
, ETH_ALEN
) &&
1793 #define MWL8K_AMPDU_PACKET_THRESHOLD 64
1794 static inline bool mwl8k_ampdu_allowed(struct ieee80211_sta
*sta
, u8 tid
)
1796 struct mwl8k_sta
*sta_info
= MWL8K_STA(sta
);
1797 struct tx_traffic_info
*tx_stats
;
1799 BUG_ON(tid
>= MWL8K_MAX_TID
);
1800 tx_stats
= &sta_info
->tx_stats
[tid
];
1802 return sta_info
->is_ampdu_allowed
&&
1803 tx_stats
->pkts
> MWL8K_AMPDU_PACKET_THRESHOLD
;
1806 static inline void mwl8k_tx_count_packet(struct ieee80211_sta
*sta
, u8 tid
)
1808 struct mwl8k_sta
*sta_info
= MWL8K_STA(sta
);
1809 struct tx_traffic_info
*tx_stats
;
1811 BUG_ON(tid
>= MWL8K_MAX_TID
);
1812 tx_stats
= &sta_info
->tx_stats
[tid
];
1814 if (tx_stats
->start_time
== 0)
1815 tx_stats
->start_time
= jiffies
;
1817 /* reset the packet count after each second elapses. If the number of
1818 * packets ever exceeds the ampdu_min_traffic threshold, we will allow
1819 * an ampdu stream to be started.
1821 if (jiffies
- tx_stats
->start_time
> HZ
) {
1823 tx_stats
->start_time
= 0;
1829 mwl8k_txq_xmit(struct ieee80211_hw
*hw
, int index
, struct sk_buff
*skb
)
1831 struct mwl8k_priv
*priv
= hw
->priv
;
1832 struct ieee80211_tx_info
*tx_info
;
1833 struct mwl8k_vif
*mwl8k_vif
;
1834 struct ieee80211_sta
*sta
;
1835 struct ieee80211_hdr
*wh
;
1836 struct mwl8k_tx_queue
*txq
;
1837 struct mwl8k_tx_desc
*tx
;
1844 struct mwl8k_ampdu_stream
*stream
= NULL
;
1845 bool start_ba_session
= false;
1846 bool mgmtframe
= false;
1847 struct ieee80211_mgmt
*mgmt
= (struct ieee80211_mgmt
*)skb
->data
;
1849 wh
= (struct ieee80211_hdr
*)skb
->data
;
1850 if (ieee80211_is_data_qos(wh
->frame_control
))
1851 qos
= le16_to_cpu(*((__le16
*)ieee80211_get_qos_ctl(wh
)));
1855 if (ieee80211_is_mgmt(wh
->frame_control
))
1859 mwl8k_encapsulate_tx_frame(priv
, skb
);
1861 mwl8k_add_dma_header(priv
, skb
, 0, 0);
1863 wh
= &((struct mwl8k_dma_data
*)skb
->data
)->wh
;
1865 tx_info
= IEEE80211_SKB_CB(skb
);
1866 sta
= tx_info
->control
.sta
;
1867 mwl8k_vif
= MWL8K_VIF(tx_info
->control
.vif
);
1869 if (tx_info
->flags
& IEEE80211_TX_CTL_ASSIGN_SEQ
) {
1870 wh
->seq_ctrl
&= cpu_to_le16(IEEE80211_SCTL_FRAG
);
1871 wh
->seq_ctrl
|= cpu_to_le16(mwl8k_vif
->seqno
);
1872 mwl8k_vif
->seqno
+= 0x10;
1875 /* Setup firmware control bit fields for each frame type. */
1878 if (ieee80211_is_mgmt(wh
->frame_control
) ||
1879 ieee80211_is_ctl(wh
->frame_control
)) {
1881 qos
|= MWL8K_QOS_QLEN_UNSPEC
| MWL8K_QOS_EOSP
;
1882 } else if (ieee80211_is_data(wh
->frame_control
)) {
1884 if (is_multicast_ether_addr(wh
->addr1
))
1885 txstatus
|= MWL8K_TXD_STATUS_MULTICAST_TX
;
1887 qos
&= ~MWL8K_QOS_ACK_POLICY_MASK
;
1888 if (tx_info
->flags
& IEEE80211_TX_CTL_AMPDU
)
1889 qos
|= MWL8K_QOS_ACK_POLICY_BLOCKACK
;
1891 qos
|= MWL8K_QOS_ACK_POLICY_NORMAL
;
1894 /* Queue ADDBA request in the respective data queue. While setting up
1895 * the ampdu stream, mac80211 queues further packets for that
1896 * particular ra/tid pair. However, packets piled up in the hardware
1897 * for that ra/tid pair will still go out. ADDBA request and the
1898 * related data packets going out from different queues asynchronously
1899 * will cause a shift in the receiver window which might result in
1900 * ampdu packets getting dropped at the receiver after the stream has
1903 if (unlikely(ieee80211_is_action(wh
->frame_control
) &&
1904 mgmt
->u
.action
.category
== WLAN_CATEGORY_BACK
&&
1905 mgmt
->u
.action
.u
.addba_req
.action_code
== WLAN_ACTION_ADDBA_REQ
&&
1907 u16 capab
= le16_to_cpu(mgmt
->u
.action
.u
.addba_req
.capab
);
1908 tid
= (capab
& IEEE80211_ADDBA_PARAM_TID_MASK
) >> 2;
1909 index
= mwl8k_tid_queue_mapping(tid
);
1914 if (priv
->ap_fw
&& sta
&& sta
->ht_cap
.ht_supported
1915 && skb
->protocol
!= cpu_to_be16(ETH_P_PAE
)
1916 && ieee80211_is_data_qos(wh
->frame_control
)) {
1918 mwl8k_tx_count_packet(sta
, tid
);
1919 spin_lock(&priv
->stream_lock
);
1920 stream
= mwl8k_lookup_stream(hw
, sta
->addr
, tid
);
1921 if (stream
!= NULL
) {
1922 if (stream
->state
== AMPDU_STREAM_ACTIVE
) {
1923 txpriority
= stream
->txq_idx
;
1924 index
= stream
->txq_idx
;
1925 } else if (stream
->state
== AMPDU_STREAM_NEW
) {
1926 /* We get here if the driver sends us packets
1927 * after we've initiated a stream, but before
1928 * our ampdu_action routine has been called
1929 * with IEEE80211_AMPDU_TX_START to get the SSN
1930 * for the ADDBA request. So this packet can
1931 * go out with no risk of sequence number
1932 * mismatch. No special handling is required.
1935 /* Drop packets that would go out after the
1936 * ADDBA request was sent but before the ADDBA
1937 * response is received. If we don't do this,
1938 * the recipient would probably receive it
1939 * after the ADDBA request with SSN 0. This
1940 * will cause the recipient's BA receive window
1941 * to shift, which would cause the subsequent
1942 * packets in the BA stream to be discarded.
1943 * mac80211 queues our packets for us in this
1944 * case, so this is really just a safety check.
1946 wiphy_warn(hw
->wiphy
,
1947 "Cannot send packet while ADDBA "
1948 "dialog is underway.\n");
1949 spin_unlock(&priv
->stream_lock
);
1954 /* Defer calling mwl8k_start_stream so that the current
1955 * skb can go out before the ADDBA request. This
1956 * prevents sequence number mismatch at the recepient
1957 * as described above.
1959 if (mwl8k_ampdu_allowed(sta
, tid
)) {
1960 stream
= mwl8k_add_stream(hw
, sta
, tid
);
1962 start_ba_session
= true;
1965 spin_unlock(&priv
->stream_lock
);
1968 dma
= pci_map_single(priv
->pdev
, skb
->data
,
1969 skb
->len
, PCI_DMA_TODEVICE
);
1971 if (pci_dma_mapping_error(priv
->pdev
, dma
)) {
1972 wiphy_debug(hw
->wiphy
,
1973 "failed to dma map skb, dropping TX frame.\n");
1974 if (start_ba_session
) {
1975 spin_lock(&priv
->stream_lock
);
1976 mwl8k_remove_stream(hw
, stream
);
1977 spin_unlock(&priv
->stream_lock
);
1983 spin_lock_bh(&priv
->tx_lock
);
1985 txq
= priv
->txq
+ index
;
1987 /* Mgmt frames that go out frequently are probe
1988 * responses. Other mgmt frames got out relatively
1989 * infrequently. Hence reserve 2 buffers so that
1990 * other mgmt frames do not get dropped due to an
1991 * already queued probe response in one of the
1995 if (txq
->len
>= MWL8K_TX_DESCS
- 2) {
1996 if (mgmtframe
== false ||
1997 txq
->len
== MWL8K_TX_DESCS
) {
1998 if (start_ba_session
) {
1999 spin_lock(&priv
->stream_lock
);
2000 mwl8k_remove_stream(hw
, stream
);
2001 spin_unlock(&priv
->stream_lock
);
2003 spin_unlock_bh(&priv
->tx_lock
);
2009 BUG_ON(txq
->skb
[txq
->tail
] != NULL
);
2010 txq
->skb
[txq
->tail
] = skb
;
2012 tx
= txq
->txd
+ txq
->tail
;
2013 tx
->data_rate
= txdatarate
;
2014 tx
->tx_priority
= txpriority
;
2015 tx
->qos_control
= cpu_to_le16(qos
);
2016 tx
->pkt_phys_addr
= cpu_to_le32(dma
);
2017 tx
->pkt_len
= cpu_to_le16(skb
->len
);
2019 if (!priv
->ap_fw
&& tx_info
->control
.sta
!= NULL
)
2020 tx
->peer_id
= MWL8K_STA(tx_info
->control
.sta
)->peer_id
;
2025 tx
->timestamp
= cpu_to_le32(ioread32(priv
->regs
+
2026 MWL8K_HW_TIMER_REGISTER
));
2029 tx
->status
= cpu_to_le32(MWL8K_TXD_STATUS_FW_OWNED
| txstatus
);
2032 priv
->pending_tx_pkts
++;
2035 if (txq
->tail
== MWL8K_TX_DESCS
)
2038 mwl8k_tx_start(priv
);
2040 spin_unlock_bh(&priv
->tx_lock
);
2042 /* Initiate the ampdu session here */
2043 if (start_ba_session
) {
2044 spin_lock(&priv
->stream_lock
);
2045 if (mwl8k_start_stream(hw
, stream
))
2046 mwl8k_remove_stream(hw
, stream
);
2047 spin_unlock(&priv
->stream_lock
);
2055 * We have the following requirements for issuing firmware commands:
2056 * - Some commands require that the packet transmit path is idle when
2057 * the command is issued. (For simplicity, we'll just quiesce the
2058 * transmit path for every command.)
2059 * - There are certain sequences of commands that need to be issued to
2060 * the hardware sequentially, with no other intervening commands.
2062 * This leads to an implementation of a "firmware lock" as a mutex that
2063 * can be taken recursively, and which is taken by both the low-level
2064 * command submission function (mwl8k_post_cmd) as well as any users of
2065 * that function that require issuing of an atomic sequence of commands,
2066 * and quiesces the transmit path whenever it's taken.
2068 static int mwl8k_fw_lock(struct ieee80211_hw
*hw
)
2070 struct mwl8k_priv
*priv
= hw
->priv
;
2072 if (priv
->fw_mutex_owner
!= current
) {
2075 mutex_lock(&priv
->fw_mutex
);
2076 ieee80211_stop_queues(hw
);
2078 rc
= mwl8k_tx_wait_empty(hw
);
2080 if (!priv
->hw_restart_in_progress
)
2081 ieee80211_wake_queues(hw
);
2083 mutex_unlock(&priv
->fw_mutex
);
2088 priv
->fw_mutex_owner
= current
;
2091 priv
->fw_mutex_depth
++;
2096 static void mwl8k_fw_unlock(struct ieee80211_hw
*hw
)
2098 struct mwl8k_priv
*priv
= hw
->priv
;
2100 if (!--priv
->fw_mutex_depth
) {
2101 if (!priv
->hw_restart_in_progress
)
2102 ieee80211_wake_queues(hw
);
2104 priv
->fw_mutex_owner
= NULL
;
2105 mutex_unlock(&priv
->fw_mutex
);
2111 * Command processing.
2114 /* Timeout firmware commands after 10s */
2115 #define MWL8K_CMD_TIMEOUT_MS 10000
2117 static int mwl8k_post_cmd(struct ieee80211_hw
*hw
, struct mwl8k_cmd_pkt
*cmd
)
2119 DECLARE_COMPLETION_ONSTACK(cmd_wait
);
2120 struct mwl8k_priv
*priv
= hw
->priv
;
2121 void __iomem
*regs
= priv
->regs
;
2122 dma_addr_t dma_addr
;
2123 unsigned int dma_size
;
2125 unsigned long timeout
= 0;
2128 cmd
->result
= (__force __le16
) 0xffff;
2129 dma_size
= le16_to_cpu(cmd
->length
);
2130 dma_addr
= pci_map_single(priv
->pdev
, cmd
, dma_size
,
2131 PCI_DMA_BIDIRECTIONAL
);
2132 if (pci_dma_mapping_error(priv
->pdev
, dma_addr
))
2135 rc
= mwl8k_fw_lock(hw
);
2137 pci_unmap_single(priv
->pdev
, dma_addr
, dma_size
,
2138 PCI_DMA_BIDIRECTIONAL
);
2142 priv
->hostcmd_wait
= &cmd_wait
;
2143 iowrite32(dma_addr
, regs
+ MWL8K_HIU_GEN_PTR
);
2144 iowrite32(MWL8K_H2A_INT_DOORBELL
,
2145 regs
+ MWL8K_HIU_H2A_INTERRUPT_EVENTS
);
2146 iowrite32(MWL8K_H2A_INT_DUMMY
,
2147 regs
+ MWL8K_HIU_H2A_INTERRUPT_EVENTS
);
2149 timeout
= wait_for_completion_timeout(&cmd_wait
,
2150 msecs_to_jiffies(MWL8K_CMD_TIMEOUT_MS
));
2152 priv
->hostcmd_wait
= NULL
;
2154 mwl8k_fw_unlock(hw
);
2156 pci_unmap_single(priv
->pdev
, dma_addr
, dma_size
,
2157 PCI_DMA_BIDIRECTIONAL
);
2160 wiphy_err(hw
->wiphy
, "Command %s timeout after %u ms\n",
2161 mwl8k_cmd_name(cmd
->code
, buf
, sizeof(buf
)),
2162 MWL8K_CMD_TIMEOUT_MS
);
2167 ms
= MWL8K_CMD_TIMEOUT_MS
- jiffies_to_msecs(timeout
);
2169 rc
= cmd
->result
? -EINVAL
: 0;
2171 wiphy_err(hw
->wiphy
, "Command %s error 0x%x\n",
2172 mwl8k_cmd_name(cmd
->code
, buf
, sizeof(buf
)),
2173 le16_to_cpu(cmd
->result
));
2175 wiphy_notice(hw
->wiphy
, "Command %s took %d ms\n",
2176 mwl8k_cmd_name(cmd
->code
,
2184 static int mwl8k_post_pervif_cmd(struct ieee80211_hw
*hw
,
2185 struct ieee80211_vif
*vif
,
2186 struct mwl8k_cmd_pkt
*cmd
)
2189 cmd
->macid
= MWL8K_VIF(vif
)->macid
;
2190 return mwl8k_post_cmd(hw
, cmd
);
2194 * Setup code shared between STA and AP firmware images.
2196 static void mwl8k_setup_2ghz_band(struct ieee80211_hw
*hw
)
2198 struct mwl8k_priv
*priv
= hw
->priv
;
2200 BUILD_BUG_ON(sizeof(priv
->channels_24
) != sizeof(mwl8k_channels_24
));
2201 memcpy(priv
->channels_24
, mwl8k_channels_24
, sizeof(mwl8k_channels_24
));
2203 BUILD_BUG_ON(sizeof(priv
->rates_24
) != sizeof(mwl8k_rates_24
));
2204 memcpy(priv
->rates_24
, mwl8k_rates_24
, sizeof(mwl8k_rates_24
));
2206 priv
->band_24
.band
= IEEE80211_BAND_2GHZ
;
2207 priv
->band_24
.channels
= priv
->channels_24
;
2208 priv
->band_24
.n_channels
= ARRAY_SIZE(mwl8k_channels_24
);
2209 priv
->band_24
.bitrates
= priv
->rates_24
;
2210 priv
->band_24
.n_bitrates
= ARRAY_SIZE(mwl8k_rates_24
);
2212 hw
->wiphy
->bands
[IEEE80211_BAND_2GHZ
] = &priv
->band_24
;
2215 static void mwl8k_setup_5ghz_band(struct ieee80211_hw
*hw
)
2217 struct mwl8k_priv
*priv
= hw
->priv
;
2219 BUILD_BUG_ON(sizeof(priv
->channels_50
) != sizeof(mwl8k_channels_50
));
2220 memcpy(priv
->channels_50
, mwl8k_channels_50
, sizeof(mwl8k_channels_50
));
2222 BUILD_BUG_ON(sizeof(priv
->rates_50
) != sizeof(mwl8k_rates_50
));
2223 memcpy(priv
->rates_50
, mwl8k_rates_50
, sizeof(mwl8k_rates_50
));
2225 priv
->band_50
.band
= IEEE80211_BAND_5GHZ
;
2226 priv
->band_50
.channels
= priv
->channels_50
;
2227 priv
->band_50
.n_channels
= ARRAY_SIZE(mwl8k_channels_50
);
2228 priv
->band_50
.bitrates
= priv
->rates_50
;
2229 priv
->band_50
.n_bitrates
= ARRAY_SIZE(mwl8k_rates_50
);
2231 hw
->wiphy
->bands
[IEEE80211_BAND_5GHZ
] = &priv
->band_50
;
2235 * CMD_GET_HW_SPEC (STA version).
2237 struct mwl8k_cmd_get_hw_spec_sta
{
2238 struct mwl8k_cmd_pkt header
;
2240 __u8 host_interface
;
2242 __u8 perm_addr
[ETH_ALEN
];
2247 __u8 mcs_bitmap
[16];
2248 __le32 rx_queue_ptr
;
2249 __le32 num_tx_queues
;
2250 __le32 tx_queue_ptrs
[MWL8K_TX_WMM_QUEUES
];
2252 __le32 num_tx_desc_per_queue
;
2256 #define MWL8K_CAP_MAX_AMSDU 0x20000000
2257 #define MWL8K_CAP_GREENFIELD 0x08000000
2258 #define MWL8K_CAP_AMPDU 0x04000000
2259 #define MWL8K_CAP_RX_STBC 0x01000000
2260 #define MWL8K_CAP_TX_STBC 0x00800000
2261 #define MWL8K_CAP_SHORTGI_40MHZ 0x00400000
2262 #define MWL8K_CAP_SHORTGI_20MHZ 0x00200000
2263 #define MWL8K_CAP_RX_ANTENNA_MASK 0x000e0000
2264 #define MWL8K_CAP_TX_ANTENNA_MASK 0x0001c000
2265 #define MWL8K_CAP_DELAY_BA 0x00003000
2266 #define MWL8K_CAP_MIMO 0x00000200
2267 #define MWL8K_CAP_40MHZ 0x00000100
2268 #define MWL8K_CAP_BAND_MASK 0x00000007
2269 #define MWL8K_CAP_5GHZ 0x00000004
2270 #define MWL8K_CAP_2GHZ4 0x00000001
2273 mwl8k_set_ht_caps(struct ieee80211_hw
*hw
,
2274 struct ieee80211_supported_band
*band
, u32 cap
)
2279 band
->ht_cap
.ht_supported
= 1;
2281 if (cap
& MWL8K_CAP_MAX_AMSDU
)
2282 band
->ht_cap
.cap
|= IEEE80211_HT_CAP_MAX_AMSDU
;
2283 if (cap
& MWL8K_CAP_GREENFIELD
)
2284 band
->ht_cap
.cap
|= IEEE80211_HT_CAP_GRN_FLD
;
2285 if (cap
& MWL8K_CAP_AMPDU
) {
2286 hw
->flags
|= IEEE80211_HW_AMPDU_AGGREGATION
;
2287 band
->ht_cap
.ampdu_factor
= IEEE80211_HT_MAX_AMPDU_64K
;
2288 band
->ht_cap
.ampdu_density
= IEEE80211_HT_MPDU_DENSITY_NONE
;
2290 if (cap
& MWL8K_CAP_RX_STBC
)
2291 band
->ht_cap
.cap
|= IEEE80211_HT_CAP_RX_STBC
;
2292 if (cap
& MWL8K_CAP_TX_STBC
)
2293 band
->ht_cap
.cap
|= IEEE80211_HT_CAP_TX_STBC
;
2294 if (cap
& MWL8K_CAP_SHORTGI_40MHZ
)
2295 band
->ht_cap
.cap
|= IEEE80211_HT_CAP_SGI_40
;
2296 if (cap
& MWL8K_CAP_SHORTGI_20MHZ
)
2297 band
->ht_cap
.cap
|= IEEE80211_HT_CAP_SGI_20
;
2298 if (cap
& MWL8K_CAP_DELAY_BA
)
2299 band
->ht_cap
.cap
|= IEEE80211_HT_CAP_DELAY_BA
;
2300 if (cap
& MWL8K_CAP_40MHZ
)
2301 band
->ht_cap
.cap
|= IEEE80211_HT_CAP_SUP_WIDTH_20_40
;
2303 rx_streams
= hweight32(cap
& MWL8K_CAP_RX_ANTENNA_MASK
);
2304 tx_streams
= hweight32(cap
& MWL8K_CAP_TX_ANTENNA_MASK
);
2306 band
->ht_cap
.mcs
.rx_mask
[0] = 0xff;
2307 if (rx_streams
>= 2)
2308 band
->ht_cap
.mcs
.rx_mask
[1] = 0xff;
2309 if (rx_streams
>= 3)
2310 band
->ht_cap
.mcs
.rx_mask
[2] = 0xff;
2311 band
->ht_cap
.mcs
.rx_mask
[4] = 0x01;
2312 band
->ht_cap
.mcs
.tx_params
= IEEE80211_HT_MCS_TX_DEFINED
;
2314 if (rx_streams
!= tx_streams
) {
2315 band
->ht_cap
.mcs
.tx_params
|= IEEE80211_HT_MCS_TX_RX_DIFF
;
2316 band
->ht_cap
.mcs
.tx_params
|= (tx_streams
- 1) <<
2317 IEEE80211_HT_MCS_TX_MAX_STREAMS_SHIFT
;
2322 mwl8k_set_caps(struct ieee80211_hw
*hw
, u32 caps
)
2324 struct mwl8k_priv
*priv
= hw
->priv
;
2326 if ((caps
& MWL8K_CAP_2GHZ4
) || !(caps
& MWL8K_CAP_BAND_MASK
)) {
2327 mwl8k_setup_2ghz_band(hw
);
2328 if (caps
& MWL8K_CAP_MIMO
)
2329 mwl8k_set_ht_caps(hw
, &priv
->band_24
, caps
);
2332 if (caps
& MWL8K_CAP_5GHZ
) {
2333 mwl8k_setup_5ghz_band(hw
);
2334 if (caps
& MWL8K_CAP_MIMO
)
2335 mwl8k_set_ht_caps(hw
, &priv
->band_50
, caps
);
2339 static int mwl8k_cmd_get_hw_spec_sta(struct ieee80211_hw
*hw
)
2341 struct mwl8k_priv
*priv
= hw
->priv
;
2342 struct mwl8k_cmd_get_hw_spec_sta
*cmd
;
2346 cmd
= kzalloc(sizeof(*cmd
), GFP_KERNEL
);
2350 cmd
->header
.code
= cpu_to_le16(MWL8K_CMD_GET_HW_SPEC
);
2351 cmd
->header
.length
= cpu_to_le16(sizeof(*cmd
));
2353 memset(cmd
->perm_addr
, 0xff, sizeof(cmd
->perm_addr
));
2354 cmd
->ps_cookie
= cpu_to_le32(priv
->cookie_dma
);
2355 cmd
->rx_queue_ptr
= cpu_to_le32(priv
->rxq
[0].rxd_dma
);
2356 cmd
->num_tx_queues
= cpu_to_le32(mwl8k_tx_queues(priv
));
2357 for (i
= 0; i
< mwl8k_tx_queues(priv
); i
++)
2358 cmd
->tx_queue_ptrs
[i
] = cpu_to_le32(priv
->txq
[i
].txd_dma
);
2359 cmd
->num_tx_desc_per_queue
= cpu_to_le32(MWL8K_TX_DESCS
);
2360 cmd
->total_rxd
= cpu_to_le32(MWL8K_RX_DESCS
);
2362 rc
= mwl8k_post_cmd(hw
, &cmd
->header
);
2365 SET_IEEE80211_PERM_ADDR(hw
, cmd
->perm_addr
);
2366 priv
->num_mcaddrs
= le16_to_cpu(cmd
->num_mcaddrs
);
2367 priv
->fw_rev
= le32_to_cpu(cmd
->fw_rev
);
2368 priv
->hw_rev
= cmd
->hw_rev
;
2369 mwl8k_set_caps(hw
, le32_to_cpu(cmd
->caps
));
2370 priv
->ap_macids_supported
= 0x00000000;
2371 priv
->sta_macids_supported
= 0x00000001;
2379 * CMD_GET_HW_SPEC (AP version).
2381 struct mwl8k_cmd_get_hw_spec_ap
{
2382 struct mwl8k_cmd_pkt header
;
2384 __u8 host_interface
;
2387 __u8 perm_addr
[ETH_ALEN
];
2398 __le32 fw_api_version
;
2400 __le32 num_of_ampdu_queues
;
2401 __le32 wcbbase_ampdu
[MWL8K_MAX_AMPDU_QUEUES
];
2404 static int mwl8k_cmd_get_hw_spec_ap(struct ieee80211_hw
*hw
)
2406 struct mwl8k_priv
*priv
= hw
->priv
;
2407 struct mwl8k_cmd_get_hw_spec_ap
*cmd
;
2411 cmd
= kzalloc(sizeof(*cmd
), GFP_KERNEL
);
2415 cmd
->header
.code
= cpu_to_le16(MWL8K_CMD_GET_HW_SPEC
);
2416 cmd
->header
.length
= cpu_to_le16(sizeof(*cmd
));
2418 memset(cmd
->perm_addr
, 0xff, sizeof(cmd
->perm_addr
));
2419 cmd
->ps_cookie
= cpu_to_le32(priv
->cookie_dma
);
2421 rc
= mwl8k_post_cmd(hw
, &cmd
->header
);
2426 api_version
= le32_to_cpu(cmd
->fw_api_version
);
2427 if (priv
->device_info
->fw_api_ap
!= api_version
) {
2428 printk(KERN_ERR
"%s: Unsupported fw API version for %s."
2429 " Expected %d got %d.\n", MWL8K_NAME
,
2430 priv
->device_info
->part_name
,
2431 priv
->device_info
->fw_api_ap
,
2436 SET_IEEE80211_PERM_ADDR(hw
, cmd
->perm_addr
);
2437 priv
->num_mcaddrs
= le16_to_cpu(cmd
->num_mcaddrs
);
2438 priv
->fw_rev
= le32_to_cpu(cmd
->fw_rev
);
2439 priv
->hw_rev
= cmd
->hw_rev
;
2440 mwl8k_set_caps(hw
, le32_to_cpu(cmd
->caps
));
2441 priv
->ap_macids_supported
= 0x000000ff;
2442 priv
->sta_macids_supported
= 0x00000000;
2443 priv
->num_ampdu_queues
= le32_to_cpu(cmd
->num_of_ampdu_queues
);
2444 if (priv
->num_ampdu_queues
> MWL8K_MAX_AMPDU_QUEUES
) {
2445 wiphy_warn(hw
->wiphy
, "fw reported %d ampdu queues"
2446 " but we only support %d.\n",
2447 priv
->num_ampdu_queues
,
2448 MWL8K_MAX_AMPDU_QUEUES
);
2449 priv
->num_ampdu_queues
= MWL8K_MAX_AMPDU_QUEUES
;
2451 off
= le32_to_cpu(cmd
->rxwrptr
) & 0xffff;
2452 iowrite32(priv
->rxq
[0].rxd_dma
, priv
->sram
+ off
);
2454 off
= le32_to_cpu(cmd
->rxrdptr
) & 0xffff;
2455 iowrite32(priv
->rxq
[0].rxd_dma
, priv
->sram
+ off
);
2457 priv
->txq_offset
[0] = le32_to_cpu(cmd
->wcbbase0
) & 0xffff;
2458 priv
->txq_offset
[1] = le32_to_cpu(cmd
->wcbbase1
) & 0xffff;
2459 priv
->txq_offset
[2] = le32_to_cpu(cmd
->wcbbase2
) & 0xffff;
2460 priv
->txq_offset
[3] = le32_to_cpu(cmd
->wcbbase3
) & 0xffff;
2462 for (i
= 0; i
< priv
->num_ampdu_queues
; i
++)
2463 priv
->txq_offset
[i
+ MWL8K_TX_WMM_QUEUES
] =
2464 le32_to_cpu(cmd
->wcbbase_ampdu
[i
]) & 0xffff;
2475 struct mwl8k_cmd_set_hw_spec
{
2476 struct mwl8k_cmd_pkt header
;
2478 __u8 host_interface
;
2480 __u8 perm_addr
[ETH_ALEN
];
2485 __le32 rx_queue_ptr
;
2486 __le32 num_tx_queues
;
2487 __le32 tx_queue_ptrs
[MWL8K_MAX_TX_QUEUES
];
2489 __le32 num_tx_desc_per_queue
;
2493 /* If enabled, MWL8K_SET_HW_SPEC_FLAG_ENABLE_LIFE_TIME_EXPIRY will cause
2494 * packets to expire 500 ms after the timestamp in the tx descriptor. That is,
2495 * the packets that are queued for more than 500ms, will be dropped in the
2496 * hardware. This helps minimizing the issues caused due to head-of-line
2497 * blocking where a slow client can hog the bandwidth and affect traffic to a
2500 #define MWL8K_SET_HW_SPEC_FLAG_ENABLE_LIFE_TIME_EXPIRY 0x00000400
2501 #define MWL8K_SET_HW_SPEC_FLAG_GENERATE_CCMP_HDR 0x00000200
2502 #define MWL8K_SET_HW_SPEC_FLAG_HOST_DECR_MGMT 0x00000080
2503 #define MWL8K_SET_HW_SPEC_FLAG_HOSTFORM_PROBERESP 0x00000020
2504 #define MWL8K_SET_HW_SPEC_FLAG_HOSTFORM_BEACON 0x00000010
2506 static int mwl8k_cmd_set_hw_spec(struct ieee80211_hw
*hw
)
2508 struct mwl8k_priv
*priv
= hw
->priv
;
2509 struct mwl8k_cmd_set_hw_spec
*cmd
;
2513 cmd
= kzalloc(sizeof(*cmd
), GFP_KERNEL
);
2517 cmd
->header
.code
= cpu_to_le16(MWL8K_CMD_SET_HW_SPEC
);
2518 cmd
->header
.length
= cpu_to_le16(sizeof(*cmd
));
2520 cmd
->ps_cookie
= cpu_to_le32(priv
->cookie_dma
);
2521 cmd
->rx_queue_ptr
= cpu_to_le32(priv
->rxq
[0].rxd_dma
);
2522 cmd
->num_tx_queues
= cpu_to_le32(mwl8k_tx_queues(priv
));
2525 * Mac80211 stack has Q0 as highest priority and Q3 as lowest in
2526 * that order. Firmware has Q3 as highest priority and Q0 as lowest
2527 * in that order. Map Q3 of mac80211 to Q0 of firmware so that the
2528 * priority is interpreted the right way in firmware.
2530 for (i
= 0; i
< mwl8k_tx_queues(priv
); i
++) {
2531 int j
= mwl8k_tx_queues(priv
) - 1 - i
;
2532 cmd
->tx_queue_ptrs
[i
] = cpu_to_le32(priv
->txq
[j
].txd_dma
);
2535 cmd
->flags
= cpu_to_le32(MWL8K_SET_HW_SPEC_FLAG_HOST_DECR_MGMT
|
2536 MWL8K_SET_HW_SPEC_FLAG_HOSTFORM_PROBERESP
|
2537 MWL8K_SET_HW_SPEC_FLAG_HOSTFORM_BEACON
|
2538 MWL8K_SET_HW_SPEC_FLAG_ENABLE_LIFE_TIME_EXPIRY
|
2539 MWL8K_SET_HW_SPEC_FLAG_GENERATE_CCMP_HDR
);
2540 cmd
->num_tx_desc_per_queue
= cpu_to_le32(MWL8K_TX_DESCS
);
2541 cmd
->total_rxd
= cpu_to_le32(MWL8K_RX_DESCS
);
2543 rc
= mwl8k_post_cmd(hw
, &cmd
->header
);
2550 * CMD_MAC_MULTICAST_ADR.
2552 struct mwl8k_cmd_mac_multicast_adr
{
2553 struct mwl8k_cmd_pkt header
;
2556 __u8 addr
[0][ETH_ALEN
];
2559 #define MWL8K_ENABLE_RX_DIRECTED 0x0001
2560 #define MWL8K_ENABLE_RX_MULTICAST 0x0002
2561 #define MWL8K_ENABLE_RX_ALL_MULTICAST 0x0004
2562 #define MWL8K_ENABLE_RX_BROADCAST 0x0008
2564 static struct mwl8k_cmd_pkt
*
2565 __mwl8k_cmd_mac_multicast_adr(struct ieee80211_hw
*hw
, int allmulti
,
2566 struct netdev_hw_addr_list
*mc_list
)
2568 struct mwl8k_priv
*priv
= hw
->priv
;
2569 struct mwl8k_cmd_mac_multicast_adr
*cmd
;
2574 mc_count
= netdev_hw_addr_list_count(mc_list
);
2576 if (allmulti
|| mc_count
> priv
->num_mcaddrs
) {
2581 size
= sizeof(*cmd
) + mc_count
* ETH_ALEN
;
2583 cmd
= kzalloc(size
, GFP_ATOMIC
);
2587 cmd
->header
.code
= cpu_to_le16(MWL8K_CMD_MAC_MULTICAST_ADR
);
2588 cmd
->header
.length
= cpu_to_le16(size
);
2589 cmd
->action
= cpu_to_le16(MWL8K_ENABLE_RX_DIRECTED
|
2590 MWL8K_ENABLE_RX_BROADCAST
);
2593 cmd
->action
|= cpu_to_le16(MWL8K_ENABLE_RX_ALL_MULTICAST
);
2594 } else if (mc_count
) {
2595 struct netdev_hw_addr
*ha
;
2598 cmd
->action
|= cpu_to_le16(MWL8K_ENABLE_RX_MULTICAST
);
2599 cmd
->numaddr
= cpu_to_le16(mc_count
);
2600 netdev_hw_addr_list_for_each(ha
, mc_list
) {
2601 memcpy(cmd
->addr
[i
], ha
->addr
, ETH_ALEN
);
2605 return &cmd
->header
;
2611 struct mwl8k_cmd_get_stat
{
2612 struct mwl8k_cmd_pkt header
;
2616 #define MWL8K_STAT_ACK_FAILURE 9
2617 #define MWL8K_STAT_RTS_FAILURE 12
2618 #define MWL8K_STAT_FCS_ERROR 24
2619 #define MWL8K_STAT_RTS_SUCCESS 11
2621 static int mwl8k_cmd_get_stat(struct ieee80211_hw
*hw
,
2622 struct ieee80211_low_level_stats
*stats
)
2624 struct mwl8k_cmd_get_stat
*cmd
;
2627 cmd
= kzalloc(sizeof(*cmd
), GFP_KERNEL
);
2631 cmd
->header
.code
= cpu_to_le16(MWL8K_CMD_GET_STAT
);
2632 cmd
->header
.length
= cpu_to_le16(sizeof(*cmd
));
2634 rc
= mwl8k_post_cmd(hw
, &cmd
->header
);
2636 stats
->dot11ACKFailureCount
=
2637 le32_to_cpu(cmd
->stats
[MWL8K_STAT_ACK_FAILURE
]);
2638 stats
->dot11RTSFailureCount
=
2639 le32_to_cpu(cmd
->stats
[MWL8K_STAT_RTS_FAILURE
]);
2640 stats
->dot11FCSErrorCount
=
2641 le32_to_cpu(cmd
->stats
[MWL8K_STAT_FCS_ERROR
]);
2642 stats
->dot11RTSSuccessCount
=
2643 le32_to_cpu(cmd
->stats
[MWL8K_STAT_RTS_SUCCESS
]);
2651 * CMD_RADIO_CONTROL.
2653 struct mwl8k_cmd_radio_control
{
2654 struct mwl8k_cmd_pkt header
;
2661 mwl8k_cmd_radio_control(struct ieee80211_hw
*hw
, bool enable
, bool force
)
2663 struct mwl8k_priv
*priv
= hw
->priv
;
2664 struct mwl8k_cmd_radio_control
*cmd
;
2667 if (enable
== priv
->radio_on
&& !force
)
2670 cmd
= kzalloc(sizeof(*cmd
), GFP_KERNEL
);
2674 cmd
->header
.code
= cpu_to_le16(MWL8K_CMD_RADIO_CONTROL
);
2675 cmd
->header
.length
= cpu_to_le16(sizeof(*cmd
));
2676 cmd
->action
= cpu_to_le16(MWL8K_CMD_SET
);
2677 cmd
->control
= cpu_to_le16(priv
->radio_short_preamble
? 3 : 1);
2678 cmd
->radio_on
= cpu_to_le16(enable
? 0x0001 : 0x0000);
2680 rc
= mwl8k_post_cmd(hw
, &cmd
->header
);
2684 priv
->radio_on
= enable
;
2689 static int mwl8k_cmd_radio_disable(struct ieee80211_hw
*hw
)
2691 return mwl8k_cmd_radio_control(hw
, 0, 0);
2694 static int mwl8k_cmd_radio_enable(struct ieee80211_hw
*hw
)
2696 return mwl8k_cmd_radio_control(hw
, 1, 0);
2700 mwl8k_set_radio_preamble(struct ieee80211_hw
*hw
, bool short_preamble
)
2702 struct mwl8k_priv
*priv
= hw
->priv
;
2704 priv
->radio_short_preamble
= short_preamble
;
2706 return mwl8k_cmd_radio_control(hw
, 1, 1);
2712 #define MWL8K_RF_TX_POWER_LEVEL_TOTAL 8
2714 struct mwl8k_cmd_rf_tx_power
{
2715 struct mwl8k_cmd_pkt header
;
2717 __le16 support_level
;
2718 __le16 current_level
;
2720 __le16 power_level_list
[MWL8K_RF_TX_POWER_LEVEL_TOTAL
];
2723 static int mwl8k_cmd_rf_tx_power(struct ieee80211_hw
*hw
, int dBm
)
2725 struct mwl8k_cmd_rf_tx_power
*cmd
;
2728 cmd
= kzalloc(sizeof(*cmd
), GFP_KERNEL
);
2732 cmd
->header
.code
= cpu_to_le16(MWL8K_CMD_RF_TX_POWER
);
2733 cmd
->header
.length
= cpu_to_le16(sizeof(*cmd
));
2734 cmd
->action
= cpu_to_le16(MWL8K_CMD_SET
);
2735 cmd
->support_level
= cpu_to_le16(dBm
);
2737 rc
= mwl8k_post_cmd(hw
, &cmd
->header
);
2746 #define MWL8K_TX_POWER_LEVEL_TOTAL 12
2748 struct mwl8k_cmd_tx_power
{
2749 struct mwl8k_cmd_pkt header
;
2755 __le16 power_level_list
[MWL8K_TX_POWER_LEVEL_TOTAL
];
2758 static int mwl8k_cmd_tx_power(struct ieee80211_hw
*hw
,
2759 struct ieee80211_conf
*conf
,
2762 struct ieee80211_channel
*channel
= conf
->channel
;
2763 struct mwl8k_cmd_tx_power
*cmd
;
2767 cmd
= kzalloc(sizeof(*cmd
), GFP_KERNEL
);
2771 cmd
->header
.code
= cpu_to_le16(MWL8K_CMD_TX_POWER
);
2772 cmd
->header
.length
= cpu_to_le16(sizeof(*cmd
));
2773 cmd
->action
= cpu_to_le16(MWL8K_CMD_SET_LIST
);
2775 if (channel
->band
== IEEE80211_BAND_2GHZ
)
2776 cmd
->band
= cpu_to_le16(0x1);
2777 else if (channel
->band
== IEEE80211_BAND_5GHZ
)
2778 cmd
->band
= cpu_to_le16(0x4);
2780 cmd
->channel
= cpu_to_le16(channel
->hw_value
);
2782 if (conf
->channel_type
== NL80211_CHAN_NO_HT
||
2783 conf
->channel_type
== NL80211_CHAN_HT20
) {
2784 cmd
->bw
= cpu_to_le16(0x2);
2786 cmd
->bw
= cpu_to_le16(0x4);
2787 if (conf
->channel_type
== NL80211_CHAN_HT40MINUS
)
2788 cmd
->sub_ch
= cpu_to_le16(0x3);
2789 else if (conf
->channel_type
== NL80211_CHAN_HT40PLUS
)
2790 cmd
->sub_ch
= cpu_to_le16(0x1);
2793 for (i
= 0; i
< MWL8K_TX_POWER_LEVEL_TOTAL
; i
++)
2794 cmd
->power_level_list
[i
] = cpu_to_le16(pwr
);
2796 rc
= mwl8k_post_cmd(hw
, &cmd
->header
);
2805 struct mwl8k_cmd_rf_antenna
{
2806 struct mwl8k_cmd_pkt header
;
2811 #define MWL8K_RF_ANTENNA_RX 1
2812 #define MWL8K_RF_ANTENNA_TX 2
2815 mwl8k_cmd_rf_antenna(struct ieee80211_hw
*hw
, int antenna
, int mask
)
2817 struct mwl8k_cmd_rf_antenna
*cmd
;
2820 cmd
= kzalloc(sizeof(*cmd
), GFP_KERNEL
);
2824 cmd
->header
.code
= cpu_to_le16(MWL8K_CMD_RF_ANTENNA
);
2825 cmd
->header
.length
= cpu_to_le16(sizeof(*cmd
));
2826 cmd
->antenna
= cpu_to_le16(antenna
);
2827 cmd
->mode
= cpu_to_le16(mask
);
2829 rc
= mwl8k_post_cmd(hw
, &cmd
->header
);
2838 struct mwl8k_cmd_set_beacon
{
2839 struct mwl8k_cmd_pkt header
;
2844 static int mwl8k_cmd_set_beacon(struct ieee80211_hw
*hw
,
2845 struct ieee80211_vif
*vif
, u8
*beacon
, int len
)
2847 struct mwl8k_cmd_set_beacon
*cmd
;
2850 cmd
= kzalloc(sizeof(*cmd
) + len
, GFP_KERNEL
);
2854 cmd
->header
.code
= cpu_to_le16(MWL8K_CMD_SET_BEACON
);
2855 cmd
->header
.length
= cpu_to_le16(sizeof(*cmd
) + len
);
2856 cmd
->beacon_len
= cpu_to_le16(len
);
2857 memcpy(cmd
->beacon
, beacon
, len
);
2859 rc
= mwl8k_post_pervif_cmd(hw
, vif
, &cmd
->header
);
2868 struct mwl8k_cmd_set_pre_scan
{
2869 struct mwl8k_cmd_pkt header
;
2872 static int mwl8k_cmd_set_pre_scan(struct ieee80211_hw
*hw
)
2874 struct mwl8k_cmd_set_pre_scan
*cmd
;
2877 cmd
= kzalloc(sizeof(*cmd
), GFP_KERNEL
);
2881 cmd
->header
.code
= cpu_to_le16(MWL8K_CMD_SET_PRE_SCAN
);
2882 cmd
->header
.length
= cpu_to_le16(sizeof(*cmd
));
2884 rc
= mwl8k_post_cmd(hw
, &cmd
->header
);
2891 * CMD_SET_POST_SCAN.
2893 struct mwl8k_cmd_set_post_scan
{
2894 struct mwl8k_cmd_pkt header
;
2896 __u8 bssid
[ETH_ALEN
];
2900 mwl8k_cmd_set_post_scan(struct ieee80211_hw
*hw
, const __u8
*mac
)
2902 struct mwl8k_cmd_set_post_scan
*cmd
;
2905 cmd
= kzalloc(sizeof(*cmd
), GFP_KERNEL
);
2909 cmd
->header
.code
= cpu_to_le16(MWL8K_CMD_SET_POST_SCAN
);
2910 cmd
->header
.length
= cpu_to_le16(sizeof(*cmd
));
2912 memcpy(cmd
->bssid
, mac
, ETH_ALEN
);
2914 rc
= mwl8k_post_cmd(hw
, &cmd
->header
);
2921 * CMD_SET_RF_CHANNEL.
2923 struct mwl8k_cmd_set_rf_channel
{
2924 struct mwl8k_cmd_pkt header
;
2926 __u8 current_channel
;
2927 __le32 channel_flags
;
2930 static int mwl8k_cmd_set_rf_channel(struct ieee80211_hw
*hw
,
2931 struct ieee80211_conf
*conf
)
2933 struct ieee80211_channel
*channel
= conf
->channel
;
2934 struct mwl8k_cmd_set_rf_channel
*cmd
;
2937 cmd
= kzalloc(sizeof(*cmd
), GFP_KERNEL
);
2941 cmd
->header
.code
= cpu_to_le16(MWL8K_CMD_SET_RF_CHANNEL
);
2942 cmd
->header
.length
= cpu_to_le16(sizeof(*cmd
));
2943 cmd
->action
= cpu_to_le16(MWL8K_CMD_SET
);
2944 cmd
->current_channel
= channel
->hw_value
;
2946 if (channel
->band
== IEEE80211_BAND_2GHZ
)
2947 cmd
->channel_flags
|= cpu_to_le32(0x00000001);
2948 else if (channel
->band
== IEEE80211_BAND_5GHZ
)
2949 cmd
->channel_flags
|= cpu_to_le32(0x00000004);
2951 if (conf
->channel_type
== NL80211_CHAN_NO_HT
||
2952 conf
->channel_type
== NL80211_CHAN_HT20
)
2953 cmd
->channel_flags
|= cpu_to_le32(0x00000080);
2954 else if (conf
->channel_type
== NL80211_CHAN_HT40MINUS
)
2955 cmd
->channel_flags
|= cpu_to_le32(0x000001900);
2956 else if (conf
->channel_type
== NL80211_CHAN_HT40PLUS
)
2957 cmd
->channel_flags
|= cpu_to_le32(0x000000900);
2959 rc
= mwl8k_post_cmd(hw
, &cmd
->header
);
2968 #define MWL8K_FRAME_PROT_DISABLED 0x00
2969 #define MWL8K_FRAME_PROT_11G 0x07
2970 #define MWL8K_FRAME_PROT_11N_HT_40MHZ_ONLY 0x02
2971 #define MWL8K_FRAME_PROT_11N_HT_ALL 0x06
2973 struct mwl8k_cmd_update_set_aid
{
2974 struct mwl8k_cmd_pkt header
;
2977 /* AP's MAC address (BSSID) */
2978 __u8 bssid
[ETH_ALEN
];
2979 __le16 protection_mode
;
2980 __u8 supp_rates
[14];
2983 static void legacy_rate_mask_to_array(u8
*rates
, u32 mask
)
2989 * Clear nonstandard rates 4 and 13.
2993 for (i
= 0, j
= 0; i
< 14; i
++) {
2994 if (mask
& (1 << i
))
2995 rates
[j
++] = mwl8k_rates_24
[i
].hw_value
;
3000 mwl8k_cmd_set_aid(struct ieee80211_hw
*hw
,
3001 struct ieee80211_vif
*vif
, u32 legacy_rate_mask
)
3003 struct mwl8k_cmd_update_set_aid
*cmd
;
3007 cmd
= kzalloc(sizeof(*cmd
), GFP_KERNEL
);
3011 cmd
->header
.code
= cpu_to_le16(MWL8K_CMD_SET_AID
);
3012 cmd
->header
.length
= cpu_to_le16(sizeof(*cmd
));
3013 cmd
->aid
= cpu_to_le16(vif
->bss_conf
.aid
);
3014 memcpy(cmd
->bssid
, vif
->bss_conf
.bssid
, ETH_ALEN
);
3016 if (vif
->bss_conf
.use_cts_prot
) {
3017 prot_mode
= MWL8K_FRAME_PROT_11G
;
3019 switch (vif
->bss_conf
.ht_operation_mode
&
3020 IEEE80211_HT_OP_MODE_PROTECTION
) {
3021 case IEEE80211_HT_OP_MODE_PROTECTION_20MHZ
:
3022 prot_mode
= MWL8K_FRAME_PROT_11N_HT_40MHZ_ONLY
;
3024 case IEEE80211_HT_OP_MODE_PROTECTION_NONHT_MIXED
:
3025 prot_mode
= MWL8K_FRAME_PROT_11N_HT_ALL
;
3028 prot_mode
= MWL8K_FRAME_PROT_DISABLED
;
3032 cmd
->protection_mode
= cpu_to_le16(prot_mode
);
3034 legacy_rate_mask_to_array(cmd
->supp_rates
, legacy_rate_mask
);
3036 rc
= mwl8k_post_cmd(hw
, &cmd
->header
);
3045 struct mwl8k_cmd_set_rate
{
3046 struct mwl8k_cmd_pkt header
;
3047 __u8 legacy_rates
[14];
3049 /* Bitmap for supported MCS codes. */
3055 mwl8k_cmd_set_rate(struct ieee80211_hw
*hw
, struct ieee80211_vif
*vif
,
3056 u32 legacy_rate_mask
, u8
*mcs_rates
)
3058 struct mwl8k_cmd_set_rate
*cmd
;
3061 cmd
= kzalloc(sizeof(*cmd
), GFP_KERNEL
);
3065 cmd
->header
.code
= cpu_to_le16(MWL8K_CMD_SET_RATE
);
3066 cmd
->header
.length
= cpu_to_le16(sizeof(*cmd
));
3067 legacy_rate_mask_to_array(cmd
->legacy_rates
, legacy_rate_mask
);
3068 memcpy(cmd
->mcs_set
, mcs_rates
, 16);
3070 rc
= mwl8k_post_cmd(hw
, &cmd
->header
);
3077 * CMD_FINALIZE_JOIN.
3079 #define MWL8K_FJ_BEACON_MAXLEN 128
3081 struct mwl8k_cmd_finalize_join
{
3082 struct mwl8k_cmd_pkt header
;
3083 __le32 sleep_interval
; /* Number of beacon periods to sleep */
3084 __u8 beacon_data
[MWL8K_FJ_BEACON_MAXLEN
];
3087 static int mwl8k_cmd_finalize_join(struct ieee80211_hw
*hw
, void *frame
,
3088 int framelen
, int dtim
)
3090 struct mwl8k_cmd_finalize_join
*cmd
;
3091 struct ieee80211_mgmt
*payload
= frame
;
3095 cmd
= kzalloc(sizeof(*cmd
), GFP_KERNEL
);
3099 cmd
->header
.code
= cpu_to_le16(MWL8K_CMD_SET_FINALIZE_JOIN
);
3100 cmd
->header
.length
= cpu_to_le16(sizeof(*cmd
));
3101 cmd
->sleep_interval
= cpu_to_le32(dtim
? dtim
: 1);
3103 payload_len
= framelen
- ieee80211_hdrlen(payload
->frame_control
);
3104 if (payload_len
< 0)
3106 else if (payload_len
> MWL8K_FJ_BEACON_MAXLEN
)
3107 payload_len
= MWL8K_FJ_BEACON_MAXLEN
;
3109 memcpy(cmd
->beacon_data
, &payload
->u
.beacon
, payload_len
);
3111 rc
= mwl8k_post_cmd(hw
, &cmd
->header
);
3118 * CMD_SET_RTS_THRESHOLD.
3120 struct mwl8k_cmd_set_rts_threshold
{
3121 struct mwl8k_cmd_pkt header
;
3127 mwl8k_cmd_set_rts_threshold(struct ieee80211_hw
*hw
, int rts_thresh
)
3129 struct mwl8k_cmd_set_rts_threshold
*cmd
;
3132 cmd
= kzalloc(sizeof(*cmd
), GFP_KERNEL
);
3136 cmd
->header
.code
= cpu_to_le16(MWL8K_CMD_RTS_THRESHOLD
);
3137 cmd
->header
.length
= cpu_to_le16(sizeof(*cmd
));
3138 cmd
->action
= cpu_to_le16(MWL8K_CMD_SET
);
3139 cmd
->threshold
= cpu_to_le16(rts_thresh
);
3141 rc
= mwl8k_post_cmd(hw
, &cmd
->header
);
3150 struct mwl8k_cmd_set_slot
{
3151 struct mwl8k_cmd_pkt header
;
3156 static int mwl8k_cmd_set_slot(struct ieee80211_hw
*hw
, bool short_slot_time
)
3158 struct mwl8k_cmd_set_slot
*cmd
;
3161 cmd
= kzalloc(sizeof(*cmd
), GFP_KERNEL
);
3165 cmd
->header
.code
= cpu_to_le16(MWL8K_CMD_SET_SLOT
);
3166 cmd
->header
.length
= cpu_to_le16(sizeof(*cmd
));
3167 cmd
->action
= cpu_to_le16(MWL8K_CMD_SET
);
3168 cmd
->short_slot
= short_slot_time
;
3170 rc
= mwl8k_post_cmd(hw
, &cmd
->header
);
3177 * CMD_SET_EDCA_PARAMS.
3179 struct mwl8k_cmd_set_edca_params
{
3180 struct mwl8k_cmd_pkt header
;
3182 /* See MWL8K_SET_EDCA_XXX below */
3185 /* TX opportunity in units of 32 us */
3190 /* Log exponent of max contention period: 0...15 */
3193 /* Log exponent of min contention period: 0...15 */
3196 /* Adaptive interframe spacing in units of 32us */
3199 /* TX queue to configure */
3203 /* Log exponent of max contention period: 0...15 */
3206 /* Log exponent of min contention period: 0...15 */
3209 /* Adaptive interframe spacing in units of 32us */
3212 /* TX queue to configure */
3218 #define MWL8K_SET_EDCA_CW 0x01
3219 #define MWL8K_SET_EDCA_TXOP 0x02
3220 #define MWL8K_SET_EDCA_AIFS 0x04
3222 #define MWL8K_SET_EDCA_ALL (MWL8K_SET_EDCA_CW | \
3223 MWL8K_SET_EDCA_TXOP | \
3224 MWL8K_SET_EDCA_AIFS)
3227 mwl8k_cmd_set_edca_params(struct ieee80211_hw
*hw
, __u8 qnum
,
3228 __u16 cw_min
, __u16 cw_max
,
3229 __u8 aifs
, __u16 txop
)
3231 struct mwl8k_priv
*priv
= hw
->priv
;
3232 struct mwl8k_cmd_set_edca_params
*cmd
;
3235 cmd
= kzalloc(sizeof(*cmd
), GFP_KERNEL
);
3239 cmd
->header
.code
= cpu_to_le16(MWL8K_CMD_SET_EDCA_PARAMS
);
3240 cmd
->header
.length
= cpu_to_le16(sizeof(*cmd
));
3241 cmd
->action
= cpu_to_le16(MWL8K_SET_EDCA_ALL
);
3242 cmd
->txop
= cpu_to_le16(txop
);
3244 cmd
->ap
.log_cw_max
= cpu_to_le32(ilog2(cw_max
+ 1));
3245 cmd
->ap
.log_cw_min
= cpu_to_le32(ilog2(cw_min
+ 1));
3246 cmd
->ap
.aifs
= aifs
;
3249 cmd
->sta
.log_cw_max
= (u8
)ilog2(cw_max
+ 1);
3250 cmd
->sta
.log_cw_min
= (u8
)ilog2(cw_min
+ 1);
3251 cmd
->sta
.aifs
= aifs
;
3252 cmd
->sta
.txq
= qnum
;
3255 rc
= mwl8k_post_cmd(hw
, &cmd
->header
);
3264 struct mwl8k_cmd_set_wmm_mode
{
3265 struct mwl8k_cmd_pkt header
;
3269 static int mwl8k_cmd_set_wmm_mode(struct ieee80211_hw
*hw
, bool enable
)
3271 struct mwl8k_priv
*priv
= hw
->priv
;
3272 struct mwl8k_cmd_set_wmm_mode
*cmd
;
3275 cmd
= kzalloc(sizeof(*cmd
), GFP_KERNEL
);
3279 cmd
->header
.code
= cpu_to_le16(MWL8K_CMD_SET_WMM_MODE
);
3280 cmd
->header
.length
= cpu_to_le16(sizeof(*cmd
));
3281 cmd
->action
= cpu_to_le16(!!enable
);
3283 rc
= mwl8k_post_cmd(hw
, &cmd
->header
);
3287 priv
->wmm_enabled
= enable
;
3295 struct mwl8k_cmd_mimo_config
{
3296 struct mwl8k_cmd_pkt header
;
3298 __u8 rx_antenna_map
;
3299 __u8 tx_antenna_map
;
3302 static int mwl8k_cmd_mimo_config(struct ieee80211_hw
*hw
, __u8 rx
, __u8 tx
)
3304 struct mwl8k_cmd_mimo_config
*cmd
;
3307 cmd
= kzalloc(sizeof(*cmd
), GFP_KERNEL
);
3311 cmd
->header
.code
= cpu_to_le16(MWL8K_CMD_MIMO_CONFIG
);
3312 cmd
->header
.length
= cpu_to_le16(sizeof(*cmd
));
3313 cmd
->action
= cpu_to_le32((u32
)MWL8K_CMD_SET
);
3314 cmd
->rx_antenna_map
= rx
;
3315 cmd
->tx_antenna_map
= tx
;
3317 rc
= mwl8k_post_cmd(hw
, &cmd
->header
);
3324 * CMD_USE_FIXED_RATE (STA version).
3326 struct mwl8k_cmd_use_fixed_rate_sta
{
3327 struct mwl8k_cmd_pkt header
;
3329 __le32 allow_rate_drop
;
3333 __le32 enable_retry
;
3342 #define MWL8K_USE_AUTO_RATE 0x0002
3343 #define MWL8K_UCAST_RATE 0
3345 static int mwl8k_cmd_use_fixed_rate_sta(struct ieee80211_hw
*hw
)
3347 struct mwl8k_cmd_use_fixed_rate_sta
*cmd
;
3350 cmd
= kzalloc(sizeof(*cmd
), GFP_KERNEL
);
3354 cmd
->header
.code
= cpu_to_le16(MWL8K_CMD_USE_FIXED_RATE
);
3355 cmd
->header
.length
= cpu_to_le16(sizeof(*cmd
));
3356 cmd
->action
= cpu_to_le32(MWL8K_USE_AUTO_RATE
);
3357 cmd
->rate_type
= cpu_to_le32(MWL8K_UCAST_RATE
);
3359 rc
= mwl8k_post_cmd(hw
, &cmd
->header
);
3366 * CMD_USE_FIXED_RATE (AP version).
3368 struct mwl8k_cmd_use_fixed_rate_ap
{
3369 struct mwl8k_cmd_pkt header
;
3371 __le32 allow_rate_drop
;
3373 struct mwl8k_rate_entry_ap
{
3375 __le32 enable_retry
;
3380 u8 multicast_rate_type
;
3385 mwl8k_cmd_use_fixed_rate_ap(struct ieee80211_hw
*hw
, int mcast
, int mgmt
)
3387 struct mwl8k_cmd_use_fixed_rate_ap
*cmd
;
3390 cmd
= kzalloc(sizeof(*cmd
), GFP_KERNEL
);
3394 cmd
->header
.code
= cpu_to_le16(MWL8K_CMD_USE_FIXED_RATE
);
3395 cmd
->header
.length
= cpu_to_le16(sizeof(*cmd
));
3396 cmd
->action
= cpu_to_le32(MWL8K_USE_AUTO_RATE
);
3397 cmd
->multicast_rate
= mcast
;
3398 cmd
->management_rate
= mgmt
;
3400 rc
= mwl8k_post_cmd(hw
, &cmd
->header
);
3407 * CMD_ENABLE_SNIFFER.
3409 struct mwl8k_cmd_enable_sniffer
{
3410 struct mwl8k_cmd_pkt header
;
3414 static int mwl8k_cmd_enable_sniffer(struct ieee80211_hw
*hw
, bool enable
)
3416 struct mwl8k_cmd_enable_sniffer
*cmd
;
3419 cmd
= kzalloc(sizeof(*cmd
), GFP_KERNEL
);
3423 cmd
->header
.code
= cpu_to_le16(MWL8K_CMD_ENABLE_SNIFFER
);
3424 cmd
->header
.length
= cpu_to_le16(sizeof(*cmd
));
3425 cmd
->action
= cpu_to_le32(!!enable
);
3427 rc
= mwl8k_post_cmd(hw
, &cmd
->header
);
3436 struct mwl8k_cmd_set_mac_addr
{
3437 struct mwl8k_cmd_pkt header
;
3441 __u8 mac_addr
[ETH_ALEN
];
3443 __u8 mac_addr
[ETH_ALEN
];
3447 #define MWL8K_MAC_TYPE_PRIMARY_CLIENT 0
3448 #define MWL8K_MAC_TYPE_SECONDARY_CLIENT 1
3449 #define MWL8K_MAC_TYPE_PRIMARY_AP 2
3450 #define MWL8K_MAC_TYPE_SECONDARY_AP 3
3452 static int mwl8k_cmd_set_mac_addr(struct ieee80211_hw
*hw
,
3453 struct ieee80211_vif
*vif
, u8
*mac
)
3455 struct mwl8k_priv
*priv
= hw
->priv
;
3456 struct mwl8k_vif
*mwl8k_vif
= MWL8K_VIF(vif
);
3457 struct mwl8k_cmd_set_mac_addr
*cmd
;
3461 mac_type
= MWL8K_MAC_TYPE_PRIMARY_AP
;
3462 if (vif
!= NULL
&& vif
->type
== NL80211_IFTYPE_STATION
) {
3463 if (mwl8k_vif
->macid
+ 1 == ffs(priv
->sta_macids_supported
))
3464 mac_type
= MWL8K_MAC_TYPE_PRIMARY_CLIENT
;
3466 mac_type
= MWL8K_MAC_TYPE_SECONDARY_CLIENT
;
3467 } else if (vif
!= NULL
&& vif
->type
== NL80211_IFTYPE_AP
) {
3468 if (mwl8k_vif
->macid
+ 1 == ffs(priv
->ap_macids_supported
))
3469 mac_type
= MWL8K_MAC_TYPE_PRIMARY_AP
;
3471 mac_type
= MWL8K_MAC_TYPE_SECONDARY_AP
;
3474 cmd
= kzalloc(sizeof(*cmd
), GFP_KERNEL
);
3478 cmd
->header
.code
= cpu_to_le16(MWL8K_CMD_SET_MAC_ADDR
);
3479 cmd
->header
.length
= cpu_to_le16(sizeof(*cmd
));
3481 cmd
->mbss
.mac_type
= cpu_to_le16(mac_type
);
3482 memcpy(cmd
->mbss
.mac_addr
, mac
, ETH_ALEN
);
3484 memcpy(cmd
->mac_addr
, mac
, ETH_ALEN
);
3487 rc
= mwl8k_post_pervif_cmd(hw
, vif
, &cmd
->header
);
3494 * CMD_SET_RATEADAPT_MODE.
3496 struct mwl8k_cmd_set_rate_adapt_mode
{
3497 struct mwl8k_cmd_pkt header
;
3502 static int mwl8k_cmd_set_rateadapt_mode(struct ieee80211_hw
*hw
, __u16 mode
)
3504 struct mwl8k_cmd_set_rate_adapt_mode
*cmd
;
3507 cmd
= kzalloc(sizeof(*cmd
), GFP_KERNEL
);
3511 cmd
->header
.code
= cpu_to_le16(MWL8K_CMD_SET_RATEADAPT_MODE
);
3512 cmd
->header
.length
= cpu_to_le16(sizeof(*cmd
));
3513 cmd
->action
= cpu_to_le16(MWL8K_CMD_SET
);
3514 cmd
->mode
= cpu_to_le16(mode
);
3516 rc
= mwl8k_post_cmd(hw
, &cmd
->header
);
3523 * CMD_GET_WATCHDOG_BITMAP.
3525 struct mwl8k_cmd_get_watchdog_bitmap
{
3526 struct mwl8k_cmd_pkt header
;
3530 static int mwl8k_cmd_get_watchdog_bitmap(struct ieee80211_hw
*hw
, u8
*bitmap
)
3532 struct mwl8k_cmd_get_watchdog_bitmap
*cmd
;
3535 cmd
= kzalloc(sizeof(*cmd
), GFP_KERNEL
);
3539 cmd
->header
.code
= cpu_to_le16(MWL8K_CMD_GET_WATCHDOG_BITMAP
);
3540 cmd
->header
.length
= cpu_to_le16(sizeof(*cmd
));
3542 rc
= mwl8k_post_cmd(hw
, &cmd
->header
);
3544 *bitmap
= cmd
->bitmap
;
3551 #define INVALID_BA 0xAA
3552 static void mwl8k_watchdog_ba_events(struct work_struct
*work
)
3555 u8 bitmap
= 0, stream_index
;
3556 struct mwl8k_ampdu_stream
*streams
;
3557 struct mwl8k_priv
*priv
=
3558 container_of(work
, struct mwl8k_priv
, watchdog_ba_handle
);
3560 rc
= mwl8k_cmd_get_watchdog_bitmap(priv
->hw
, &bitmap
);
3564 if (bitmap
== INVALID_BA
)
3567 /* the bitmap is the hw queue number. Map it to the ampdu queue. */
3568 stream_index
= bitmap
- MWL8K_TX_WMM_QUEUES
;
3570 BUG_ON(stream_index
>= priv
->num_ampdu_queues
);
3572 streams
= &priv
->ampdu
[stream_index
];
3574 if (streams
->state
== AMPDU_STREAM_ACTIVE
)
3575 ieee80211_stop_tx_ba_session(streams
->sta
, streams
->tid
);
3584 struct mwl8k_cmd_bss_start
{
3585 struct mwl8k_cmd_pkt header
;
3589 static int mwl8k_cmd_bss_start(struct ieee80211_hw
*hw
,
3590 struct ieee80211_vif
*vif
, int enable
)
3592 struct mwl8k_cmd_bss_start
*cmd
;
3595 cmd
= kzalloc(sizeof(*cmd
), GFP_KERNEL
);
3599 cmd
->header
.code
= cpu_to_le16(MWL8K_CMD_BSS_START
);
3600 cmd
->header
.length
= cpu_to_le16(sizeof(*cmd
));
3601 cmd
->enable
= cpu_to_le32(enable
);
3603 rc
= mwl8k_post_pervif_cmd(hw
, vif
, &cmd
->header
);
3614 * UPSTREAM is tx direction
3616 #define BASTREAM_FLAG_DIRECTION_UPSTREAM 0x00
3617 #define BASTREAM_FLAG_IMMEDIATE_TYPE 0x01
3619 enum ba_stream_action_type
{
3628 struct mwl8k_create_ba_stream
{
3633 u8 peer_mac_addr
[6];
3639 u8 reset_seq_no_flag
;
3641 u8 sta_src_mac_addr
[6];
3644 struct mwl8k_destroy_ba_stream
{
3649 struct mwl8k_cmd_bastream
{
3650 struct mwl8k_cmd_pkt header
;
3653 struct mwl8k_create_ba_stream create_params
;
3654 struct mwl8k_destroy_ba_stream destroy_params
;
3659 mwl8k_check_ba(struct ieee80211_hw
*hw
, struct mwl8k_ampdu_stream
*stream
)
3661 struct mwl8k_cmd_bastream
*cmd
;
3664 cmd
= kzalloc(sizeof(*cmd
), GFP_KERNEL
);
3668 cmd
->header
.code
= cpu_to_le16(MWL8K_CMD_BASTREAM
);
3669 cmd
->header
.length
= cpu_to_le16(sizeof(*cmd
));
3671 cmd
->action
= cpu_to_le32(MWL8K_BA_CHECK
);
3673 cmd
->create_params
.queue_id
= stream
->idx
;
3674 memcpy(&cmd
->create_params
.peer_mac_addr
[0], stream
->sta
->addr
,
3676 cmd
->create_params
.tid
= stream
->tid
;
3678 cmd
->create_params
.flags
=
3679 cpu_to_le32(BASTREAM_FLAG_IMMEDIATE_TYPE
) |
3680 cpu_to_le32(BASTREAM_FLAG_DIRECTION_UPSTREAM
);
3682 rc
= mwl8k_post_cmd(hw
, &cmd
->header
);
3690 mwl8k_create_ba(struct ieee80211_hw
*hw
, struct mwl8k_ampdu_stream
*stream
,
3693 struct mwl8k_cmd_bastream
*cmd
;
3696 cmd
= kzalloc(sizeof(*cmd
), GFP_KERNEL
);
3701 cmd
->header
.code
= cpu_to_le16(MWL8K_CMD_BASTREAM
);
3702 cmd
->header
.length
= cpu_to_le16(sizeof(*cmd
));
3704 cmd
->action
= cpu_to_le32(MWL8K_BA_CREATE
);
3706 cmd
->create_params
.bar_thrs
= cpu_to_le32((u32
)buf_size
);
3707 cmd
->create_params
.window_size
= cpu_to_le32((u32
)buf_size
);
3708 cmd
->create_params
.queue_id
= stream
->idx
;
3710 memcpy(cmd
->create_params
.peer_mac_addr
, stream
->sta
->addr
, ETH_ALEN
);
3711 cmd
->create_params
.tid
= stream
->tid
;
3712 cmd
->create_params
.curr_seq_no
= cpu_to_le16(0);
3713 cmd
->create_params
.reset_seq_no_flag
= 1;
3715 cmd
->create_params
.param_info
=
3716 (stream
->sta
->ht_cap
.ampdu_factor
&
3717 IEEE80211_HT_AMPDU_PARM_FACTOR
) |
3718 ((stream
->sta
->ht_cap
.ampdu_density
<< 2) &
3719 IEEE80211_HT_AMPDU_PARM_DENSITY
);
3721 cmd
->create_params
.flags
=
3722 cpu_to_le32(BASTREAM_FLAG_IMMEDIATE_TYPE
|
3723 BASTREAM_FLAG_DIRECTION_UPSTREAM
);
3725 rc
= mwl8k_post_cmd(hw
, &cmd
->header
);
3727 wiphy_debug(hw
->wiphy
, "Created a BA stream for %pM : tid %d\n",
3728 stream
->sta
->addr
, stream
->tid
);
3734 static void mwl8k_destroy_ba(struct ieee80211_hw
*hw
,
3735 struct mwl8k_ampdu_stream
*stream
)
3737 struct mwl8k_cmd_bastream
*cmd
;
3739 cmd
= kzalloc(sizeof(*cmd
), GFP_KERNEL
);
3743 cmd
->header
.code
= cpu_to_le16(MWL8K_CMD_BASTREAM
);
3744 cmd
->header
.length
= cpu_to_le16(sizeof(*cmd
));
3745 cmd
->action
= cpu_to_le32(MWL8K_BA_DESTROY
);
3747 cmd
->destroy_params
.ba_context
= cpu_to_le32(stream
->idx
);
3748 mwl8k_post_cmd(hw
, &cmd
->header
);
3750 wiphy_debug(hw
->wiphy
, "Deleted BA stream index %d\n", stream
->idx
);
3758 struct mwl8k_cmd_set_new_stn
{
3759 struct mwl8k_cmd_pkt header
;
3765 __le32 legacy_rates
;
3768 __le16 ht_capabilities_info
;
3769 __u8 mac_ht_param_info
;
3771 __u8 control_channel
;
3780 #define MWL8K_STA_ACTION_ADD 0
3781 #define MWL8K_STA_ACTION_REMOVE 2
3783 static int mwl8k_cmd_set_new_stn_add(struct ieee80211_hw
*hw
,
3784 struct ieee80211_vif
*vif
,
3785 struct ieee80211_sta
*sta
)
3787 struct mwl8k_cmd_set_new_stn
*cmd
;
3791 cmd
= kzalloc(sizeof(*cmd
), GFP_KERNEL
);
3795 cmd
->header
.code
= cpu_to_le16(MWL8K_CMD_SET_NEW_STN
);
3796 cmd
->header
.length
= cpu_to_le16(sizeof(*cmd
));
3797 cmd
->aid
= cpu_to_le16(sta
->aid
);
3798 memcpy(cmd
->mac_addr
, sta
->addr
, ETH_ALEN
);
3799 cmd
->stn_id
= cpu_to_le16(sta
->aid
);
3800 cmd
->action
= cpu_to_le16(MWL8K_STA_ACTION_ADD
);
3801 if (hw
->conf
.channel
->band
== IEEE80211_BAND_2GHZ
)
3802 rates
= sta
->supp_rates
[IEEE80211_BAND_2GHZ
];
3804 rates
= sta
->supp_rates
[IEEE80211_BAND_5GHZ
] << 5;
3805 cmd
->legacy_rates
= cpu_to_le32(rates
);
3806 if (sta
->ht_cap
.ht_supported
) {
3807 cmd
->ht_rates
[0] = sta
->ht_cap
.mcs
.rx_mask
[0];
3808 cmd
->ht_rates
[1] = sta
->ht_cap
.mcs
.rx_mask
[1];
3809 cmd
->ht_rates
[2] = sta
->ht_cap
.mcs
.rx_mask
[2];
3810 cmd
->ht_rates
[3] = sta
->ht_cap
.mcs
.rx_mask
[3];
3811 cmd
->ht_capabilities_info
= cpu_to_le16(sta
->ht_cap
.cap
);
3812 cmd
->mac_ht_param_info
= (sta
->ht_cap
.ampdu_factor
& 3) |
3813 ((sta
->ht_cap
.ampdu_density
& 7) << 2);
3814 cmd
->is_qos_sta
= 1;
3817 rc
= mwl8k_post_pervif_cmd(hw
, vif
, &cmd
->header
);
3823 static int mwl8k_cmd_set_new_stn_add_self(struct ieee80211_hw
*hw
,
3824 struct ieee80211_vif
*vif
)
3826 struct mwl8k_cmd_set_new_stn
*cmd
;
3829 cmd
= kzalloc(sizeof(*cmd
), GFP_KERNEL
);
3833 cmd
->header
.code
= cpu_to_le16(MWL8K_CMD_SET_NEW_STN
);
3834 cmd
->header
.length
= cpu_to_le16(sizeof(*cmd
));
3835 memcpy(cmd
->mac_addr
, vif
->addr
, ETH_ALEN
);
3837 rc
= mwl8k_post_pervif_cmd(hw
, vif
, &cmd
->header
);
3843 static int mwl8k_cmd_set_new_stn_del(struct ieee80211_hw
*hw
,
3844 struct ieee80211_vif
*vif
, u8
*addr
)
3846 struct mwl8k_cmd_set_new_stn
*cmd
;
3849 cmd
= kzalloc(sizeof(*cmd
), GFP_KERNEL
);
3853 cmd
->header
.code
= cpu_to_le16(MWL8K_CMD_SET_NEW_STN
);
3854 cmd
->header
.length
= cpu_to_le16(sizeof(*cmd
));
3855 memcpy(cmd
->mac_addr
, addr
, ETH_ALEN
);
3856 cmd
->action
= cpu_to_le16(MWL8K_STA_ACTION_REMOVE
);
3858 rc
= mwl8k_post_pervif_cmd(hw
, vif
, &cmd
->header
);
3865 * CMD_UPDATE_ENCRYPTION.
3868 #define MAX_ENCR_KEY_LENGTH 16
3869 #define MIC_KEY_LENGTH 8
3871 struct mwl8k_cmd_update_encryption
{
3872 struct mwl8k_cmd_pkt header
;
3881 struct mwl8k_cmd_set_key
{
3882 struct mwl8k_cmd_pkt header
;
3891 __u8 key_material
[MAX_ENCR_KEY_LENGTH
];
3892 __u8 tkip_tx_mic_key
[MIC_KEY_LENGTH
];
3893 __u8 tkip_rx_mic_key
[MIC_KEY_LENGTH
];
3894 __le16 tkip_rsc_low
;
3895 __le32 tkip_rsc_high
;
3896 __le16 tkip_tsc_low
;
3897 __le32 tkip_tsc_high
;
3904 MWL8K_ENCR_REMOVE_KEY
,
3905 MWL8K_ENCR_SET_GROUP_KEY
,
3908 #define MWL8K_UPDATE_ENCRYPTION_TYPE_WEP 0
3909 #define MWL8K_UPDATE_ENCRYPTION_TYPE_DISABLE 1
3910 #define MWL8K_UPDATE_ENCRYPTION_TYPE_TKIP 4
3911 #define MWL8K_UPDATE_ENCRYPTION_TYPE_MIXED 7
3912 #define MWL8K_UPDATE_ENCRYPTION_TYPE_AES 8
3920 #define MWL8K_KEY_FLAG_TXGROUPKEY 0x00000004
3921 #define MWL8K_KEY_FLAG_PAIRWISE 0x00000008
3922 #define MWL8K_KEY_FLAG_TSC_VALID 0x00000040
3923 #define MWL8K_KEY_FLAG_WEP_TXKEY 0x01000000
3924 #define MWL8K_KEY_FLAG_MICKEY_VALID 0x02000000
3926 static int mwl8k_cmd_update_encryption_enable(struct ieee80211_hw
*hw
,
3927 struct ieee80211_vif
*vif
,
3931 struct mwl8k_cmd_update_encryption
*cmd
;
3934 cmd
= kzalloc(sizeof(*cmd
), GFP_KERNEL
);
3938 cmd
->header
.code
= cpu_to_le16(MWL8K_CMD_UPDATE_ENCRYPTION
);
3939 cmd
->header
.length
= cpu_to_le16(sizeof(*cmd
));
3940 cmd
->action
= cpu_to_le32(MWL8K_ENCR_ENABLE
);
3941 memcpy(cmd
->mac_addr
, addr
, ETH_ALEN
);
3942 cmd
->encr_type
= encr_type
;
3944 rc
= mwl8k_post_pervif_cmd(hw
, vif
, &cmd
->header
);
3950 static int mwl8k_encryption_set_cmd_info(struct mwl8k_cmd_set_key
*cmd
,
3952 struct ieee80211_key_conf
*key
)
3954 cmd
->header
.code
= cpu_to_le16(MWL8K_CMD_UPDATE_ENCRYPTION
);
3955 cmd
->header
.length
= cpu_to_le16(sizeof(*cmd
));
3956 cmd
->length
= cpu_to_le16(sizeof(*cmd
) -
3957 offsetof(struct mwl8k_cmd_set_key
, length
));
3958 cmd
->key_id
= cpu_to_le32(key
->keyidx
);
3959 cmd
->key_len
= cpu_to_le16(key
->keylen
);
3960 memcpy(cmd
->mac_addr
, addr
, ETH_ALEN
);
3962 switch (key
->cipher
) {
3963 case WLAN_CIPHER_SUITE_WEP40
:
3964 case WLAN_CIPHER_SUITE_WEP104
:
3965 cmd
->key_type_id
= cpu_to_le16(MWL8K_ALG_WEP
);
3966 if (key
->keyidx
== 0)
3967 cmd
->key_info
= cpu_to_le32(MWL8K_KEY_FLAG_WEP_TXKEY
);
3970 case WLAN_CIPHER_SUITE_TKIP
:
3971 cmd
->key_type_id
= cpu_to_le16(MWL8K_ALG_TKIP
);
3972 cmd
->key_info
= (key
->flags
& IEEE80211_KEY_FLAG_PAIRWISE
)
3973 ? cpu_to_le32(MWL8K_KEY_FLAG_PAIRWISE
)
3974 : cpu_to_le32(MWL8K_KEY_FLAG_TXGROUPKEY
);
3975 cmd
->key_info
|= cpu_to_le32(MWL8K_KEY_FLAG_MICKEY_VALID
3976 | MWL8K_KEY_FLAG_TSC_VALID
);
3978 case WLAN_CIPHER_SUITE_CCMP
:
3979 cmd
->key_type_id
= cpu_to_le16(MWL8K_ALG_CCMP
);
3980 cmd
->key_info
= (key
->flags
& IEEE80211_KEY_FLAG_PAIRWISE
)
3981 ? cpu_to_le32(MWL8K_KEY_FLAG_PAIRWISE
)
3982 : cpu_to_le32(MWL8K_KEY_FLAG_TXGROUPKEY
);
3991 static int mwl8k_cmd_encryption_set_key(struct ieee80211_hw
*hw
,
3992 struct ieee80211_vif
*vif
,
3994 struct ieee80211_key_conf
*key
)
3996 struct mwl8k_cmd_set_key
*cmd
;
4001 struct mwl8k_vif
*mwl8k_vif
= MWL8K_VIF(vif
);
4003 cmd
= kzalloc(sizeof(*cmd
), GFP_KERNEL
);
4007 rc
= mwl8k_encryption_set_cmd_info(cmd
, addr
, key
);
4013 if (key
->flags
& IEEE80211_KEY_FLAG_PAIRWISE
)
4014 action
= MWL8K_ENCR_SET_KEY
;
4016 action
= MWL8K_ENCR_SET_GROUP_KEY
;
4018 switch (key
->cipher
) {
4019 case WLAN_CIPHER_SUITE_WEP40
:
4020 case WLAN_CIPHER_SUITE_WEP104
:
4021 if (!mwl8k_vif
->wep_key_conf
[idx
].enabled
) {
4022 memcpy(mwl8k_vif
->wep_key_conf
[idx
].key
, key
,
4023 sizeof(*key
) + key
->keylen
);
4024 mwl8k_vif
->wep_key_conf
[idx
].enabled
= 1;
4027 keymlen
= key
->keylen
;
4028 action
= MWL8K_ENCR_SET_KEY
;
4030 case WLAN_CIPHER_SUITE_TKIP
:
4031 keymlen
= MAX_ENCR_KEY_LENGTH
+ 2 * MIC_KEY_LENGTH
;
4033 case WLAN_CIPHER_SUITE_CCMP
:
4034 keymlen
= key
->keylen
;
4041 memcpy(cmd
->key_material
, key
->key
, keymlen
);
4042 cmd
->action
= cpu_to_le32(action
);
4044 rc
= mwl8k_post_pervif_cmd(hw
, vif
, &cmd
->header
);
4051 static int mwl8k_cmd_encryption_remove_key(struct ieee80211_hw
*hw
,
4052 struct ieee80211_vif
*vif
,
4054 struct ieee80211_key_conf
*key
)
4056 struct mwl8k_cmd_set_key
*cmd
;
4058 struct mwl8k_vif
*mwl8k_vif
= MWL8K_VIF(vif
);
4060 cmd
= kzalloc(sizeof(*cmd
), GFP_KERNEL
);
4064 rc
= mwl8k_encryption_set_cmd_info(cmd
, addr
, key
);
4068 if (key
->cipher
== WLAN_CIPHER_SUITE_WEP40
||
4069 key
->cipher
== WLAN_CIPHER_SUITE_WEP104
)
4070 mwl8k_vif
->wep_key_conf
[key
->keyidx
].enabled
= 0;
4072 cmd
->action
= cpu_to_le32(MWL8K_ENCR_REMOVE_KEY
);
4074 rc
= mwl8k_post_pervif_cmd(hw
, vif
, &cmd
->header
);
4081 static int mwl8k_set_key(struct ieee80211_hw
*hw
,
4082 enum set_key_cmd cmd_param
,
4083 struct ieee80211_vif
*vif
,
4084 struct ieee80211_sta
*sta
,
4085 struct ieee80211_key_conf
*key
)
4090 struct mwl8k_vif
*mwl8k_vif
= MWL8K_VIF(vif
);
4092 if (vif
->type
== NL80211_IFTYPE_STATION
)
4096 addr
= hw
->wiphy
->perm_addr
;
4100 if (cmd_param
== SET_KEY
) {
4101 rc
= mwl8k_cmd_encryption_set_key(hw
, vif
, addr
, key
);
4105 if ((key
->cipher
== WLAN_CIPHER_SUITE_WEP40
)
4106 || (key
->cipher
== WLAN_CIPHER_SUITE_WEP104
))
4107 encr_type
= MWL8K_UPDATE_ENCRYPTION_TYPE_WEP
;
4109 encr_type
= MWL8K_UPDATE_ENCRYPTION_TYPE_MIXED
;
4111 rc
= mwl8k_cmd_update_encryption_enable(hw
, vif
, addr
,
4116 mwl8k_vif
->is_hw_crypto_enabled
= true;
4119 rc
= mwl8k_cmd_encryption_remove_key(hw
, vif
, addr
, key
);
4131 struct ewc_ht_info
{
4137 struct peer_capability_info
{
4138 /* Peer type - AP vs. STA. */
4141 /* Basic 802.11 capabilities from assoc resp. */
4144 /* Set if peer supports 802.11n high throughput (HT). */
4147 /* Valid if HT is supported. */
4149 __u8 extended_ht_caps
;
4150 struct ewc_ht_info ewc_info
;
4152 /* Legacy rate table. Intersection of our rates and peer rates. */
4153 __u8 legacy_rates
[12];
4155 /* HT rate table. Intersection of our rates and peer rates. */
4159 /* If set, interoperability mode, no proprietary extensions. */
4163 __le16 amsdu_enabled
;
4166 struct mwl8k_cmd_update_stadb
{
4167 struct mwl8k_cmd_pkt header
;
4169 /* See STADB_ACTION_TYPE */
4172 /* Peer MAC address */
4173 __u8 peer_addr
[ETH_ALEN
];
4177 /* Peer info - valid during add/update. */
4178 struct peer_capability_info peer_info
;
4181 #define MWL8K_STA_DB_MODIFY_ENTRY 1
4182 #define MWL8K_STA_DB_DEL_ENTRY 2
4184 /* Peer Entry flags - used to define the type of the peer node */
4185 #define MWL8K_PEER_TYPE_ACCESSPOINT 2
4187 static int mwl8k_cmd_update_stadb_add(struct ieee80211_hw
*hw
,
4188 struct ieee80211_vif
*vif
,
4189 struct ieee80211_sta
*sta
)
4191 struct mwl8k_cmd_update_stadb
*cmd
;
4192 struct peer_capability_info
*p
;
4196 cmd
= kzalloc(sizeof(*cmd
), GFP_KERNEL
);
4200 cmd
->header
.code
= cpu_to_le16(MWL8K_CMD_UPDATE_STADB
);
4201 cmd
->header
.length
= cpu_to_le16(sizeof(*cmd
));
4202 cmd
->action
= cpu_to_le32(MWL8K_STA_DB_MODIFY_ENTRY
);
4203 memcpy(cmd
->peer_addr
, sta
->addr
, ETH_ALEN
);
4205 p
= &cmd
->peer_info
;
4206 p
->peer_type
= MWL8K_PEER_TYPE_ACCESSPOINT
;
4207 p
->basic_caps
= cpu_to_le16(vif
->bss_conf
.assoc_capability
);
4208 p
->ht_support
= sta
->ht_cap
.ht_supported
;
4209 p
->ht_caps
= cpu_to_le16(sta
->ht_cap
.cap
);
4210 p
->extended_ht_caps
= (sta
->ht_cap
.ampdu_factor
& 3) |
4211 ((sta
->ht_cap
.ampdu_density
& 7) << 2);
4212 if (hw
->conf
.channel
->band
== IEEE80211_BAND_2GHZ
)
4213 rates
= sta
->supp_rates
[IEEE80211_BAND_2GHZ
];
4215 rates
= sta
->supp_rates
[IEEE80211_BAND_5GHZ
] << 5;
4216 legacy_rate_mask_to_array(p
->legacy_rates
, rates
);
4217 memcpy(p
->ht_rates
, sta
->ht_cap
.mcs
.rx_mask
, 16);
4219 p
->amsdu_enabled
= 0;
4221 rc
= mwl8k_post_cmd(hw
, &cmd
->header
);
4224 return rc
? rc
: p
->station_id
;
4227 static int mwl8k_cmd_update_stadb_del(struct ieee80211_hw
*hw
,
4228 struct ieee80211_vif
*vif
, u8
*addr
)
4230 struct mwl8k_cmd_update_stadb
*cmd
;
4233 cmd
= kzalloc(sizeof(*cmd
), GFP_KERNEL
);
4237 cmd
->header
.code
= cpu_to_le16(MWL8K_CMD_UPDATE_STADB
);
4238 cmd
->header
.length
= cpu_to_le16(sizeof(*cmd
));
4239 cmd
->action
= cpu_to_le32(MWL8K_STA_DB_DEL_ENTRY
);
4240 memcpy(cmd
->peer_addr
, addr
, ETH_ALEN
);
4242 rc
= mwl8k_post_cmd(hw
, &cmd
->header
);
4250 * Interrupt handling.
4252 static irqreturn_t
mwl8k_interrupt(int irq
, void *dev_id
)
4254 struct ieee80211_hw
*hw
= dev_id
;
4255 struct mwl8k_priv
*priv
= hw
->priv
;
4258 status
= ioread32(priv
->regs
+ MWL8K_HIU_A2H_INTERRUPT_STATUS
);
4262 if (status
& MWL8K_A2H_INT_TX_DONE
) {
4263 status
&= ~MWL8K_A2H_INT_TX_DONE
;
4264 tasklet_schedule(&priv
->poll_tx_task
);
4267 if (status
& MWL8K_A2H_INT_RX_READY
) {
4268 status
&= ~MWL8K_A2H_INT_RX_READY
;
4269 tasklet_schedule(&priv
->poll_rx_task
);
4272 if (status
& MWL8K_A2H_INT_BA_WATCHDOG
) {
4273 status
&= ~MWL8K_A2H_INT_BA_WATCHDOG
;
4274 ieee80211_queue_work(hw
, &priv
->watchdog_ba_handle
);
4278 iowrite32(~status
, priv
->regs
+ MWL8K_HIU_A2H_INTERRUPT_STATUS
);
4280 if (status
& MWL8K_A2H_INT_OPC_DONE
) {
4281 if (priv
->hostcmd_wait
!= NULL
)
4282 complete(priv
->hostcmd_wait
);
4285 if (status
& MWL8K_A2H_INT_QUEUE_EMPTY
) {
4286 if (!mutex_is_locked(&priv
->fw_mutex
) &&
4287 priv
->radio_on
&& priv
->pending_tx_pkts
)
4288 mwl8k_tx_start(priv
);
4294 static void mwl8k_tx_poll(unsigned long data
)
4296 struct ieee80211_hw
*hw
= (struct ieee80211_hw
*)data
;
4297 struct mwl8k_priv
*priv
= hw
->priv
;
4303 spin_lock_bh(&priv
->tx_lock
);
4305 for (i
= 0; i
< mwl8k_tx_queues(priv
); i
++)
4306 limit
-= mwl8k_txq_reclaim(hw
, i
, limit
, 0);
4308 if (!priv
->pending_tx_pkts
&& priv
->tx_wait
!= NULL
) {
4309 complete(priv
->tx_wait
);
4310 priv
->tx_wait
= NULL
;
4313 spin_unlock_bh(&priv
->tx_lock
);
4316 writel(~MWL8K_A2H_INT_TX_DONE
,
4317 priv
->regs
+ MWL8K_HIU_A2H_INTERRUPT_STATUS
);
4319 tasklet_schedule(&priv
->poll_tx_task
);
4323 static void mwl8k_rx_poll(unsigned long data
)
4325 struct ieee80211_hw
*hw
= (struct ieee80211_hw
*)data
;
4326 struct mwl8k_priv
*priv
= hw
->priv
;
4330 limit
-= rxq_process(hw
, 0, limit
);
4331 limit
-= rxq_refill(hw
, 0, limit
);
4334 writel(~MWL8K_A2H_INT_RX_READY
,
4335 priv
->regs
+ MWL8K_HIU_A2H_INTERRUPT_STATUS
);
4337 tasklet_schedule(&priv
->poll_rx_task
);
4343 * Core driver operations.
4345 static void mwl8k_tx(struct ieee80211_hw
*hw
, struct sk_buff
*skb
)
4347 struct mwl8k_priv
*priv
= hw
->priv
;
4348 int index
= skb_get_queue_mapping(skb
);
4350 if (!priv
->radio_on
) {
4351 wiphy_debug(hw
->wiphy
,
4352 "dropped TX frame since radio disabled\n");
4357 mwl8k_txq_xmit(hw
, index
, skb
);
4360 static int mwl8k_start(struct ieee80211_hw
*hw
)
4362 struct mwl8k_priv
*priv
= hw
->priv
;
4365 rc
= request_irq(priv
->pdev
->irq
, mwl8k_interrupt
,
4366 IRQF_SHARED
, MWL8K_NAME
, hw
);
4369 wiphy_err(hw
->wiphy
, "failed to register IRQ handler\n");
4372 priv
->irq
= priv
->pdev
->irq
;
4374 /* Enable TX reclaim and RX tasklets. */
4375 tasklet_enable(&priv
->poll_tx_task
);
4376 tasklet_enable(&priv
->poll_rx_task
);
4378 /* Enable interrupts */
4379 iowrite32(MWL8K_A2H_EVENTS
, priv
->regs
+ MWL8K_HIU_A2H_INTERRUPT_MASK
);
4380 iowrite32(MWL8K_A2H_EVENTS
,
4381 priv
->regs
+ MWL8K_HIU_A2H_INTERRUPT_STATUS_MASK
);
4383 rc
= mwl8k_fw_lock(hw
);
4385 rc
= mwl8k_cmd_radio_enable(hw
);
4389 rc
= mwl8k_cmd_enable_sniffer(hw
, 0);
4392 rc
= mwl8k_cmd_set_pre_scan(hw
);
4395 rc
= mwl8k_cmd_set_post_scan(hw
,
4396 "\x00\x00\x00\x00\x00\x00");
4400 rc
= mwl8k_cmd_set_rateadapt_mode(hw
, 0);
4403 rc
= mwl8k_cmd_set_wmm_mode(hw
, 0);
4405 mwl8k_fw_unlock(hw
);
4409 iowrite32(0, priv
->regs
+ MWL8K_HIU_A2H_INTERRUPT_MASK
);
4410 free_irq(priv
->pdev
->irq
, hw
);
4412 tasklet_disable(&priv
->poll_tx_task
);
4413 tasklet_disable(&priv
->poll_rx_task
);
4419 static void mwl8k_stop(struct ieee80211_hw
*hw
)
4421 struct mwl8k_priv
*priv
= hw
->priv
;
4424 if (!priv
->hw_restart_in_progress
)
4425 mwl8k_cmd_radio_disable(hw
);
4427 ieee80211_stop_queues(hw
);
4429 /* Disable interrupts */
4430 iowrite32(0, priv
->regs
+ MWL8K_HIU_A2H_INTERRUPT_MASK
);
4431 if (priv
->irq
!= -1) {
4432 free_irq(priv
->pdev
->irq
, hw
);
4436 /* Stop finalize join worker */
4437 cancel_work_sync(&priv
->finalize_join_worker
);
4438 cancel_work_sync(&priv
->watchdog_ba_handle
);
4439 if (priv
->beacon_skb
!= NULL
)
4440 dev_kfree_skb(priv
->beacon_skb
);
4442 /* Stop TX reclaim and RX tasklets. */
4443 tasklet_disable(&priv
->poll_tx_task
);
4444 tasklet_disable(&priv
->poll_rx_task
);
4446 /* Return all skbs to mac80211 */
4447 for (i
= 0; i
< mwl8k_tx_queues(priv
); i
++)
4448 mwl8k_txq_reclaim(hw
, i
, INT_MAX
, 1);
4451 static int mwl8k_reload_firmware(struct ieee80211_hw
*hw
, char *fw_image
);
4453 static int mwl8k_add_interface(struct ieee80211_hw
*hw
,
4454 struct ieee80211_vif
*vif
)
4456 struct mwl8k_priv
*priv
= hw
->priv
;
4457 struct mwl8k_vif
*mwl8k_vif
;
4458 u32 macids_supported
;
4460 struct mwl8k_device_info
*di
;
4463 * Reject interface creation if sniffer mode is active, as
4464 * STA operation is mutually exclusive with hardware sniffer
4465 * mode. (Sniffer mode is only used on STA firmware.)
4467 if (priv
->sniffer_enabled
) {
4468 wiphy_info(hw
->wiphy
,
4469 "unable to create STA interface because sniffer mode is enabled\n");
4473 di
= priv
->device_info
;
4474 switch (vif
->type
) {
4475 case NL80211_IFTYPE_AP
:
4476 if (!priv
->ap_fw
&& di
->fw_image_ap
) {
4477 /* we must load the ap fw to meet this request */
4478 if (!list_empty(&priv
->vif_list
))
4480 rc
= mwl8k_reload_firmware(hw
, di
->fw_image_ap
);
4484 macids_supported
= priv
->ap_macids_supported
;
4486 case NL80211_IFTYPE_STATION
:
4487 if (priv
->ap_fw
&& di
->fw_image_sta
) {
4488 /* we must load the sta fw to meet this request */
4489 if (!list_empty(&priv
->vif_list
))
4491 rc
= mwl8k_reload_firmware(hw
, di
->fw_image_sta
);
4495 macids_supported
= priv
->sta_macids_supported
;
4501 macid
= ffs(macids_supported
& ~priv
->macids_used
);
4505 /* Setup driver private area. */
4506 mwl8k_vif
= MWL8K_VIF(vif
);
4507 memset(mwl8k_vif
, 0, sizeof(*mwl8k_vif
));
4508 mwl8k_vif
->vif
= vif
;
4509 mwl8k_vif
->macid
= macid
;
4510 mwl8k_vif
->seqno
= 0;
4511 memcpy(mwl8k_vif
->bssid
, vif
->addr
, ETH_ALEN
);
4512 mwl8k_vif
->is_hw_crypto_enabled
= false;
4514 /* Set the mac address. */
4515 mwl8k_cmd_set_mac_addr(hw
, vif
, vif
->addr
);
4518 mwl8k_cmd_set_new_stn_add_self(hw
, vif
);
4520 priv
->macids_used
|= 1 << mwl8k_vif
->macid
;
4521 list_add_tail(&mwl8k_vif
->list
, &priv
->vif_list
);
4526 static void mwl8k_remove_vif(struct mwl8k_priv
*priv
, struct mwl8k_vif
*vif
)
4528 /* Has ieee80211_restart_hw re-added the removed interfaces? */
4529 if (!priv
->macids_used
)
4532 priv
->macids_used
&= ~(1 << vif
->macid
);
4533 list_del(&vif
->list
);
4536 static void mwl8k_remove_interface(struct ieee80211_hw
*hw
,
4537 struct ieee80211_vif
*vif
)
4539 struct mwl8k_priv
*priv
= hw
->priv
;
4540 struct mwl8k_vif
*mwl8k_vif
= MWL8K_VIF(vif
);
4543 mwl8k_cmd_set_new_stn_del(hw
, vif
, vif
->addr
);
4545 mwl8k_cmd_set_mac_addr(hw
, vif
, "\x00\x00\x00\x00\x00\x00");
4547 mwl8k_remove_vif(priv
, mwl8k_vif
);
4550 static void mwl8k_hw_restart_work(struct work_struct
*work
)
4552 struct mwl8k_priv
*priv
=
4553 container_of(work
, struct mwl8k_priv
, fw_reload
);
4554 struct ieee80211_hw
*hw
= priv
->hw
;
4555 struct mwl8k_device_info
*di
;
4558 /* If some command is waiting for a response, clear it */
4559 if (priv
->hostcmd_wait
!= NULL
) {
4560 complete(priv
->hostcmd_wait
);
4561 priv
->hostcmd_wait
= NULL
;
4564 priv
->hw_restart_owner
= current
;
4565 di
= priv
->device_info
;
4569 rc
= mwl8k_reload_firmware(hw
, di
->fw_image_ap
);
4571 rc
= mwl8k_reload_firmware(hw
, di
->fw_image_sta
);
4576 priv
->hw_restart_owner
= NULL
;
4577 priv
->hw_restart_in_progress
= false;
4580 * This unlock will wake up the queues and
4581 * also opens the command path for other
4584 mwl8k_fw_unlock(hw
);
4586 ieee80211_restart_hw(hw
);
4588 wiphy_err(hw
->wiphy
, "Firmware restarted successfully\n");
4592 mwl8k_fw_unlock(hw
);
4594 wiphy_err(hw
->wiphy
, "Firmware restart failed\n");
4597 static int mwl8k_config(struct ieee80211_hw
*hw
, u32 changed
)
4599 struct ieee80211_conf
*conf
= &hw
->conf
;
4600 struct mwl8k_priv
*priv
= hw
->priv
;
4603 if (conf
->flags
& IEEE80211_CONF_IDLE
) {
4604 mwl8k_cmd_radio_disable(hw
);
4608 rc
= mwl8k_fw_lock(hw
);
4612 rc
= mwl8k_cmd_radio_enable(hw
);
4616 rc
= mwl8k_cmd_set_rf_channel(hw
, conf
);
4620 if (conf
->power_level
> 18)
4621 conf
->power_level
= 18;
4625 if (conf
->flags
& IEEE80211_CONF_CHANGE_POWER
) {
4626 rc
= mwl8k_cmd_tx_power(hw
, conf
, conf
->power_level
);
4631 rc
= mwl8k_cmd_rf_antenna(hw
, MWL8K_RF_ANTENNA_RX
, 0x3);
4633 wiphy_warn(hw
->wiphy
, "failed to set # of RX antennas");
4634 rc
= mwl8k_cmd_rf_antenna(hw
, MWL8K_RF_ANTENNA_TX
, 0x7);
4636 wiphy_warn(hw
->wiphy
, "failed to set # of TX antennas");
4639 rc
= mwl8k_cmd_rf_tx_power(hw
, conf
->power_level
);
4642 rc
= mwl8k_cmd_mimo_config(hw
, 0x7, 0x7);
4646 mwl8k_fw_unlock(hw
);
4652 mwl8k_bss_info_changed_sta(struct ieee80211_hw
*hw
, struct ieee80211_vif
*vif
,
4653 struct ieee80211_bss_conf
*info
, u32 changed
)
4655 struct mwl8k_priv
*priv
= hw
->priv
;
4656 u32 ap_legacy_rates
= 0;
4657 u8 ap_mcs_rates
[16];
4660 if (mwl8k_fw_lock(hw
))
4664 * No need to capture a beacon if we're no longer associated.
4666 if ((changed
& BSS_CHANGED_ASSOC
) && !vif
->bss_conf
.assoc
)
4667 priv
->capture_beacon
= false;
4670 * Get the AP's legacy and MCS rates.
4672 if (vif
->bss_conf
.assoc
) {
4673 struct ieee80211_sta
*ap
;
4677 ap
= ieee80211_find_sta(vif
, vif
->bss_conf
.bssid
);
4683 if (hw
->conf
.channel
->band
== IEEE80211_BAND_2GHZ
) {
4684 ap_legacy_rates
= ap
->supp_rates
[IEEE80211_BAND_2GHZ
];
4687 ap
->supp_rates
[IEEE80211_BAND_5GHZ
] << 5;
4689 memcpy(ap_mcs_rates
, ap
->ht_cap
.mcs
.rx_mask
, 16);
4694 if ((changed
& BSS_CHANGED_ASSOC
) && vif
->bss_conf
.assoc
) {
4695 rc
= mwl8k_cmd_set_rate(hw
, vif
, ap_legacy_rates
, ap_mcs_rates
);
4699 rc
= mwl8k_cmd_use_fixed_rate_sta(hw
);
4704 if (changed
& BSS_CHANGED_ERP_PREAMBLE
) {
4705 rc
= mwl8k_set_radio_preamble(hw
,
4706 vif
->bss_conf
.use_short_preamble
);
4711 if (changed
& BSS_CHANGED_ERP_SLOT
) {
4712 rc
= mwl8k_cmd_set_slot(hw
, vif
->bss_conf
.use_short_slot
);
4717 if (vif
->bss_conf
.assoc
&&
4718 (changed
& (BSS_CHANGED_ASSOC
| BSS_CHANGED_ERP_CTS_PROT
|
4720 rc
= mwl8k_cmd_set_aid(hw
, vif
, ap_legacy_rates
);
4725 if (vif
->bss_conf
.assoc
&&
4726 (changed
& (BSS_CHANGED_ASSOC
| BSS_CHANGED_BEACON_INT
))) {
4728 * Finalize the join. Tell rx handler to process
4729 * next beacon from our BSSID.
4731 memcpy(priv
->capture_bssid
, vif
->bss_conf
.bssid
, ETH_ALEN
);
4732 priv
->capture_beacon
= true;
4736 mwl8k_fw_unlock(hw
);
4740 mwl8k_bss_info_changed_ap(struct ieee80211_hw
*hw
, struct ieee80211_vif
*vif
,
4741 struct ieee80211_bss_conf
*info
, u32 changed
)
4745 if (mwl8k_fw_lock(hw
))
4748 if (changed
& BSS_CHANGED_ERP_PREAMBLE
) {
4749 rc
= mwl8k_set_radio_preamble(hw
,
4750 vif
->bss_conf
.use_short_preamble
);
4755 if (changed
& BSS_CHANGED_BASIC_RATES
) {
4760 * Use lowest supported basic rate for multicasts
4761 * and management frames (such as probe responses --
4762 * beacons will always go out at 1 Mb/s).
4764 idx
= ffs(vif
->bss_conf
.basic_rates
);
4768 if (hw
->conf
.channel
->band
== IEEE80211_BAND_2GHZ
)
4769 rate
= mwl8k_rates_24
[idx
].hw_value
;
4771 rate
= mwl8k_rates_50
[idx
].hw_value
;
4773 mwl8k_cmd_use_fixed_rate_ap(hw
, rate
, rate
);
4776 if (changed
& (BSS_CHANGED_BEACON_INT
| BSS_CHANGED_BEACON
)) {
4777 struct sk_buff
*skb
;
4779 skb
= ieee80211_beacon_get(hw
, vif
);
4781 mwl8k_cmd_set_beacon(hw
, vif
, skb
->data
, skb
->len
);
4786 if (changed
& BSS_CHANGED_BEACON_ENABLED
)
4787 mwl8k_cmd_bss_start(hw
, vif
, info
->enable_beacon
);
4790 mwl8k_fw_unlock(hw
);
4794 mwl8k_bss_info_changed(struct ieee80211_hw
*hw
, struct ieee80211_vif
*vif
,
4795 struct ieee80211_bss_conf
*info
, u32 changed
)
4797 struct mwl8k_priv
*priv
= hw
->priv
;
4800 mwl8k_bss_info_changed_sta(hw
, vif
, info
, changed
);
4802 mwl8k_bss_info_changed_ap(hw
, vif
, info
, changed
);
4805 static u64
mwl8k_prepare_multicast(struct ieee80211_hw
*hw
,
4806 struct netdev_hw_addr_list
*mc_list
)
4808 struct mwl8k_cmd_pkt
*cmd
;
4811 * Synthesize and return a command packet that programs the
4812 * hardware multicast address filter. At this point we don't
4813 * know whether FIF_ALLMULTI is being requested, but if it is,
4814 * we'll end up throwing this packet away and creating a new
4815 * one in mwl8k_configure_filter().
4817 cmd
= __mwl8k_cmd_mac_multicast_adr(hw
, 0, mc_list
);
4819 return (unsigned long)cmd
;
4823 mwl8k_configure_filter_sniffer(struct ieee80211_hw
*hw
,
4824 unsigned int changed_flags
,
4825 unsigned int *total_flags
)
4827 struct mwl8k_priv
*priv
= hw
->priv
;
4830 * Hardware sniffer mode is mutually exclusive with STA
4831 * operation, so refuse to enable sniffer mode if a STA
4832 * interface is active.
4834 if (!list_empty(&priv
->vif_list
)) {
4835 if (net_ratelimit())
4836 wiphy_info(hw
->wiphy
,
4837 "not enabling sniffer mode because STA interface is active\n");
4841 if (!priv
->sniffer_enabled
) {
4842 if (mwl8k_cmd_enable_sniffer(hw
, 1))
4844 priv
->sniffer_enabled
= true;
4847 *total_flags
&= FIF_PROMISC_IN_BSS
| FIF_ALLMULTI
|
4848 FIF_BCN_PRBRESP_PROMISC
| FIF_CONTROL
|
4854 static struct mwl8k_vif
*mwl8k_first_vif(struct mwl8k_priv
*priv
)
4856 if (!list_empty(&priv
->vif_list
))
4857 return list_entry(priv
->vif_list
.next
, struct mwl8k_vif
, list
);
4862 static void mwl8k_configure_filter(struct ieee80211_hw
*hw
,
4863 unsigned int changed_flags
,
4864 unsigned int *total_flags
,
4867 struct mwl8k_priv
*priv
= hw
->priv
;
4868 struct mwl8k_cmd_pkt
*cmd
= (void *)(unsigned long)multicast
;
4871 * AP firmware doesn't allow fine-grained control over
4872 * the receive filter.
4875 *total_flags
&= FIF_ALLMULTI
| FIF_BCN_PRBRESP_PROMISC
;
4881 * Enable hardware sniffer mode if FIF_CONTROL or
4882 * FIF_OTHER_BSS is requested.
4884 if (*total_flags
& (FIF_CONTROL
| FIF_OTHER_BSS
) &&
4885 mwl8k_configure_filter_sniffer(hw
, changed_flags
, total_flags
)) {
4890 /* Clear unsupported feature flags */
4891 *total_flags
&= FIF_ALLMULTI
| FIF_BCN_PRBRESP_PROMISC
;
4893 if (mwl8k_fw_lock(hw
)) {
4898 if (priv
->sniffer_enabled
) {
4899 mwl8k_cmd_enable_sniffer(hw
, 0);
4900 priv
->sniffer_enabled
= false;
4903 if (changed_flags
& FIF_BCN_PRBRESP_PROMISC
) {
4904 if (*total_flags
& FIF_BCN_PRBRESP_PROMISC
) {
4906 * Disable the BSS filter.
4908 mwl8k_cmd_set_pre_scan(hw
);
4910 struct mwl8k_vif
*mwl8k_vif
;
4914 * Enable the BSS filter.
4916 * If there is an active STA interface, use that
4917 * interface's BSSID, otherwise use a dummy one
4918 * (where the OUI part needs to be nonzero for
4919 * the BSSID to be accepted by POST_SCAN).
4921 mwl8k_vif
= mwl8k_first_vif(priv
);
4922 if (mwl8k_vif
!= NULL
)
4923 bssid
= mwl8k_vif
->vif
->bss_conf
.bssid
;
4925 bssid
= "\x01\x00\x00\x00\x00\x00";
4927 mwl8k_cmd_set_post_scan(hw
, bssid
);
4932 * If FIF_ALLMULTI is being requested, throw away the command
4933 * packet that ->prepare_multicast() built and replace it with
4934 * a command packet that enables reception of all multicast
4937 if (*total_flags
& FIF_ALLMULTI
) {
4939 cmd
= __mwl8k_cmd_mac_multicast_adr(hw
, 1, NULL
);
4943 mwl8k_post_cmd(hw
, cmd
);
4947 mwl8k_fw_unlock(hw
);
4950 static int mwl8k_set_rts_threshold(struct ieee80211_hw
*hw
, u32 value
)
4952 return mwl8k_cmd_set_rts_threshold(hw
, value
);
4955 static int mwl8k_sta_remove(struct ieee80211_hw
*hw
,
4956 struct ieee80211_vif
*vif
,
4957 struct ieee80211_sta
*sta
)
4959 struct mwl8k_priv
*priv
= hw
->priv
;
4962 return mwl8k_cmd_set_new_stn_del(hw
, vif
, sta
->addr
);
4964 return mwl8k_cmd_update_stadb_del(hw
, vif
, sta
->addr
);
4967 static int mwl8k_sta_add(struct ieee80211_hw
*hw
,
4968 struct ieee80211_vif
*vif
,
4969 struct ieee80211_sta
*sta
)
4971 struct mwl8k_priv
*priv
= hw
->priv
;
4974 struct mwl8k_vif
*mwl8k_vif
= MWL8K_VIF(vif
);
4975 struct ieee80211_key_conf
*key
;
4978 ret
= mwl8k_cmd_update_stadb_add(hw
, vif
, sta
);
4980 MWL8K_STA(sta
)->peer_id
= ret
;
4981 if (sta
->ht_cap
.ht_supported
)
4982 MWL8K_STA(sta
)->is_ampdu_allowed
= true;
4987 ret
= mwl8k_cmd_set_new_stn_add(hw
, vif
, sta
);
4990 for (i
= 0; i
< NUM_WEP_KEYS
; i
++) {
4991 key
= IEEE80211_KEY_CONF(mwl8k_vif
->wep_key_conf
[i
].key
);
4992 if (mwl8k_vif
->wep_key_conf
[i
].enabled
)
4993 mwl8k_set_key(hw
, SET_KEY
, vif
, sta
, key
);
4998 static int mwl8k_conf_tx(struct ieee80211_hw
*hw
,
4999 struct ieee80211_vif
*vif
, u16 queue
,
5000 const struct ieee80211_tx_queue_params
*params
)
5002 struct mwl8k_priv
*priv
= hw
->priv
;
5005 rc
= mwl8k_fw_lock(hw
);
5007 BUG_ON(queue
> MWL8K_TX_WMM_QUEUES
- 1);
5008 memcpy(&priv
->wmm_params
[queue
], params
, sizeof(*params
));
5010 if (!priv
->wmm_enabled
)
5011 rc
= mwl8k_cmd_set_wmm_mode(hw
, 1);
5014 int q
= MWL8K_TX_WMM_QUEUES
- 1 - queue
;
5015 rc
= mwl8k_cmd_set_edca_params(hw
, q
,
5022 mwl8k_fw_unlock(hw
);
5028 static int mwl8k_get_stats(struct ieee80211_hw
*hw
,
5029 struct ieee80211_low_level_stats
*stats
)
5031 return mwl8k_cmd_get_stat(hw
, stats
);
5034 static int mwl8k_get_survey(struct ieee80211_hw
*hw
, int idx
,
5035 struct survey_info
*survey
)
5037 struct mwl8k_priv
*priv
= hw
->priv
;
5038 struct ieee80211_conf
*conf
= &hw
->conf
;
5043 survey
->channel
= conf
->channel
;
5044 survey
->filled
= SURVEY_INFO_NOISE_DBM
;
5045 survey
->noise
= priv
->noise
;
5050 #define MAX_AMPDU_ATTEMPTS 5
5053 mwl8k_ampdu_action(struct ieee80211_hw
*hw
, struct ieee80211_vif
*vif
,
5054 enum ieee80211_ampdu_mlme_action action
,
5055 struct ieee80211_sta
*sta
, u16 tid
, u16
*ssn
,
5060 struct mwl8k_priv
*priv
= hw
->priv
;
5061 struct mwl8k_ampdu_stream
*stream
;
5062 u8
*addr
= sta
->addr
;
5064 if (!(hw
->flags
& IEEE80211_HW_AMPDU_AGGREGATION
))
5067 spin_lock(&priv
->stream_lock
);
5068 stream
= mwl8k_lookup_stream(hw
, addr
, tid
);
5071 case IEEE80211_AMPDU_RX_START
:
5072 case IEEE80211_AMPDU_RX_STOP
:
5074 case IEEE80211_AMPDU_TX_START
:
5075 /* By the time we get here the hw queues may contain outgoing
5076 * packets for this RA/TID that are not part of this BA
5077 * session. The hw will assign sequence numbers to these
5078 * packets as they go out. So if we query the hw for its next
5079 * sequence number and use that for the SSN here, it may end up
5080 * being wrong, which will lead to sequence number mismatch at
5081 * the recipient. To avoid this, we reset the sequence number
5082 * to O for the first MPDU in this BA stream.
5085 if (stream
== NULL
) {
5086 /* This means that somebody outside this driver called
5087 * ieee80211_start_tx_ba_session. This is unexpected
5088 * because we do our own rate control. Just warn and
5091 wiphy_warn(hw
->wiphy
, "Unexpected call to %s. "
5092 "Proceeding anyway.\n", __func__
);
5093 stream
= mwl8k_add_stream(hw
, sta
, tid
);
5095 if (stream
== NULL
) {
5096 wiphy_debug(hw
->wiphy
, "no free AMPDU streams\n");
5100 stream
->state
= AMPDU_STREAM_IN_PROGRESS
;
5102 /* Release the lock before we do the time consuming stuff */
5103 spin_unlock(&priv
->stream_lock
);
5104 for (i
= 0; i
< MAX_AMPDU_ATTEMPTS
; i
++) {
5105 rc
= mwl8k_check_ba(hw
, stream
);
5107 /* If HW restart is in progress mwl8k_post_cmd will
5108 * return -EBUSY. Avoid retrying mwl8k_check_ba in
5111 if (!rc
|| rc
== -EBUSY
)
5114 * HW queues take time to be flushed, give them
5120 spin_lock(&priv
->stream_lock
);
5122 wiphy_err(hw
->wiphy
, "Stream for tid %d busy after %d"
5123 " attempts\n", tid
, MAX_AMPDU_ATTEMPTS
);
5124 mwl8k_remove_stream(hw
, stream
);
5128 ieee80211_start_tx_ba_cb_irqsafe(vif
, addr
, tid
);
5130 case IEEE80211_AMPDU_TX_STOP
:
5132 if (stream
->state
== AMPDU_STREAM_ACTIVE
) {
5133 spin_unlock(&priv
->stream_lock
);
5134 mwl8k_destroy_ba(hw
, stream
);
5135 spin_lock(&priv
->stream_lock
);
5137 mwl8k_remove_stream(hw
, stream
);
5139 ieee80211_stop_tx_ba_cb_irqsafe(vif
, addr
, tid
);
5141 case IEEE80211_AMPDU_TX_OPERATIONAL
:
5142 BUG_ON(stream
== NULL
);
5143 BUG_ON(stream
->state
!= AMPDU_STREAM_IN_PROGRESS
);
5144 spin_unlock(&priv
->stream_lock
);
5145 rc
= mwl8k_create_ba(hw
, stream
, buf_size
);
5146 spin_lock(&priv
->stream_lock
);
5148 stream
->state
= AMPDU_STREAM_ACTIVE
;
5150 spin_unlock(&priv
->stream_lock
);
5151 mwl8k_destroy_ba(hw
, stream
);
5152 spin_lock(&priv
->stream_lock
);
5153 wiphy_debug(hw
->wiphy
,
5154 "Failed adding stream for sta %pM tid %d\n",
5156 mwl8k_remove_stream(hw
, stream
);
5164 spin_unlock(&priv
->stream_lock
);
5168 static const struct ieee80211_ops mwl8k_ops
= {
5170 .start
= mwl8k_start
,
5172 .add_interface
= mwl8k_add_interface
,
5173 .remove_interface
= mwl8k_remove_interface
,
5174 .config
= mwl8k_config
,
5175 .bss_info_changed
= mwl8k_bss_info_changed
,
5176 .prepare_multicast
= mwl8k_prepare_multicast
,
5177 .configure_filter
= mwl8k_configure_filter
,
5178 .set_key
= mwl8k_set_key
,
5179 .set_rts_threshold
= mwl8k_set_rts_threshold
,
5180 .sta_add
= mwl8k_sta_add
,
5181 .sta_remove
= mwl8k_sta_remove
,
5182 .conf_tx
= mwl8k_conf_tx
,
5183 .get_stats
= mwl8k_get_stats
,
5184 .get_survey
= mwl8k_get_survey
,
5185 .ampdu_action
= mwl8k_ampdu_action
,
5188 static void mwl8k_finalize_join_worker(struct work_struct
*work
)
5190 struct mwl8k_priv
*priv
=
5191 container_of(work
, struct mwl8k_priv
, finalize_join_worker
);
5192 struct sk_buff
*skb
= priv
->beacon_skb
;
5193 struct ieee80211_mgmt
*mgmt
= (void *)skb
->data
;
5194 int len
= skb
->len
- offsetof(struct ieee80211_mgmt
, u
.beacon
.variable
);
5195 const u8
*tim
= cfg80211_find_ie(WLAN_EID_TIM
,
5196 mgmt
->u
.beacon
.variable
, len
);
5197 int dtim_period
= 1;
5199 if (tim
&& tim
[1] >= 2)
5200 dtim_period
= tim
[3];
5202 mwl8k_cmd_finalize_join(priv
->hw
, skb
->data
, skb
->len
, dtim_period
);
5205 priv
->beacon_skb
= NULL
;
5214 #define MWL8K_8366_AP_FW_API 2
5215 #define _MWL8K_8366_AP_FW(api) "mwl8k/fmimage_8366_ap-" #api ".fw"
5216 #define MWL8K_8366_AP_FW(api) _MWL8K_8366_AP_FW(api)
5218 static struct mwl8k_device_info mwl8k_info_tbl
[] __devinitdata
= {
5220 .part_name
= "88w8363",
5221 .helper_image
= "mwl8k/helper_8363.fw",
5222 .fw_image_sta
= "mwl8k/fmimage_8363.fw",
5225 .part_name
= "88w8687",
5226 .helper_image
= "mwl8k/helper_8687.fw",
5227 .fw_image_sta
= "mwl8k/fmimage_8687.fw",
5230 .part_name
= "88w8366",
5231 .helper_image
= "mwl8k/helper_8366.fw",
5232 .fw_image_sta
= "mwl8k/fmimage_8366.fw",
5233 .fw_image_ap
= MWL8K_8366_AP_FW(MWL8K_8366_AP_FW_API
),
5234 .fw_api_ap
= MWL8K_8366_AP_FW_API
,
5235 .ap_rxd_ops
= &rxd_8366_ap_ops
,
5239 MODULE_FIRMWARE("mwl8k/helper_8363.fw");
5240 MODULE_FIRMWARE("mwl8k/fmimage_8363.fw");
5241 MODULE_FIRMWARE("mwl8k/helper_8687.fw");
5242 MODULE_FIRMWARE("mwl8k/fmimage_8687.fw");
5243 MODULE_FIRMWARE("mwl8k/helper_8366.fw");
5244 MODULE_FIRMWARE("mwl8k/fmimage_8366.fw");
5245 MODULE_FIRMWARE(MWL8K_8366_AP_FW(MWL8K_8366_AP_FW_API
));
5247 static DEFINE_PCI_DEVICE_TABLE(mwl8k_pci_id_table
) = {
5248 { PCI_VDEVICE(MARVELL
, 0x2a0a), .driver_data
= MWL8363
, },
5249 { PCI_VDEVICE(MARVELL
, 0x2a0c), .driver_data
= MWL8363
, },
5250 { PCI_VDEVICE(MARVELL
, 0x2a24), .driver_data
= MWL8363
, },
5251 { PCI_VDEVICE(MARVELL
, 0x2a2b), .driver_data
= MWL8687
, },
5252 { PCI_VDEVICE(MARVELL
, 0x2a30), .driver_data
= MWL8687
, },
5253 { PCI_VDEVICE(MARVELL
, 0x2a40), .driver_data
= MWL8366
, },
5254 { PCI_VDEVICE(MARVELL
, 0x2a43), .driver_data
= MWL8366
, },
5257 MODULE_DEVICE_TABLE(pci
, mwl8k_pci_id_table
);
5259 static int mwl8k_request_alt_fw(struct mwl8k_priv
*priv
)
5262 printk(KERN_ERR
"%s: Error requesting preferred fw %s.\n"
5263 "Trying alternative firmware %s\n", pci_name(priv
->pdev
),
5264 priv
->fw_pref
, priv
->fw_alt
);
5265 rc
= mwl8k_request_fw(priv
, priv
->fw_alt
, &priv
->fw_ucode
, true);
5267 printk(KERN_ERR
"%s: Error requesting alt fw %s\n",
5268 pci_name(priv
->pdev
), priv
->fw_alt
);
5274 static int mwl8k_firmware_load_success(struct mwl8k_priv
*priv
);
5275 static void mwl8k_fw_state_machine(const struct firmware
*fw
, void *context
)
5277 struct mwl8k_priv
*priv
= context
;
5278 struct mwl8k_device_info
*di
= priv
->device_info
;
5281 switch (priv
->fw_state
) {
5284 printk(KERN_ERR
"%s: Error requesting helper fw %s\n",
5285 pci_name(priv
->pdev
), di
->helper_image
);
5288 priv
->fw_helper
= fw
;
5289 rc
= mwl8k_request_fw(priv
, priv
->fw_pref
, &priv
->fw_ucode
,
5291 if (rc
&& priv
->fw_alt
) {
5292 rc
= mwl8k_request_alt_fw(priv
);
5295 priv
->fw_state
= FW_STATE_LOADING_ALT
;
5299 priv
->fw_state
= FW_STATE_LOADING_PREF
;
5302 case FW_STATE_LOADING_PREF
:
5305 rc
= mwl8k_request_alt_fw(priv
);
5308 priv
->fw_state
= FW_STATE_LOADING_ALT
;
5312 priv
->fw_ucode
= fw
;
5313 rc
= mwl8k_firmware_load_success(priv
);
5317 complete(&priv
->firmware_loading_complete
);
5321 case FW_STATE_LOADING_ALT
:
5323 printk(KERN_ERR
"%s: Error requesting alt fw %s\n",
5324 pci_name(priv
->pdev
), di
->helper_image
);
5327 priv
->fw_ucode
= fw
;
5328 rc
= mwl8k_firmware_load_success(priv
);
5332 complete(&priv
->firmware_loading_complete
);
5336 printk(KERN_ERR
"%s: Unexpected firmware loading state: %d\n",
5337 MWL8K_NAME
, priv
->fw_state
);
5344 priv
->fw_state
= FW_STATE_ERROR
;
5345 complete(&priv
->firmware_loading_complete
);
5346 device_release_driver(&priv
->pdev
->dev
);
5347 mwl8k_release_firmware(priv
);
5350 #define MAX_RESTART_ATTEMPTS 1
5351 static int mwl8k_init_firmware(struct ieee80211_hw
*hw
, char *fw_image
,
5354 struct mwl8k_priv
*priv
= hw
->priv
;
5356 int count
= MAX_RESTART_ATTEMPTS
;
5359 /* Reset firmware and hardware */
5360 mwl8k_hw_reset(priv
);
5362 /* Ask userland hotplug daemon for the device firmware */
5363 rc
= mwl8k_request_firmware(priv
, fw_image
, nowait
);
5365 wiphy_err(hw
->wiphy
, "Firmware files not found\n");
5372 /* Load firmware into hardware */
5373 rc
= mwl8k_load_firmware(hw
);
5375 wiphy_err(hw
->wiphy
, "Cannot start firmware\n");
5377 /* Reclaim memory once firmware is successfully loaded */
5378 mwl8k_release_firmware(priv
);
5381 /* FW did not start successfully;
5382 * lets try one more time
5385 wiphy_err(hw
->wiphy
, "Trying to reload the firmware again\n");
5393 static int mwl8k_init_txqs(struct ieee80211_hw
*hw
)
5395 struct mwl8k_priv
*priv
= hw
->priv
;
5399 for (i
= 0; i
< mwl8k_tx_queues(priv
); i
++) {
5400 rc
= mwl8k_txq_init(hw
, i
);
5404 iowrite32(priv
->txq
[i
].txd_dma
,
5405 priv
->sram
+ priv
->txq_offset
[i
]);
5410 /* initialize hw after successfully loading a firmware image */
5411 static int mwl8k_probe_hw(struct ieee80211_hw
*hw
)
5413 struct mwl8k_priv
*priv
= hw
->priv
;
5418 priv
->rxd_ops
= priv
->device_info
->ap_rxd_ops
;
5419 if (priv
->rxd_ops
== NULL
) {
5420 wiphy_err(hw
->wiphy
,
5421 "Driver does not have AP firmware image support for this hardware\n");
5422 goto err_stop_firmware
;
5425 priv
->rxd_ops
= &rxd_sta_ops
;
5428 priv
->sniffer_enabled
= false;
5429 priv
->wmm_enabled
= false;
5430 priv
->pending_tx_pkts
= 0;
5432 rc
= mwl8k_rxq_init(hw
, 0);
5434 goto err_stop_firmware
;
5435 rxq_refill(hw
, 0, INT_MAX
);
5437 /* For the sta firmware, we need to know the dma addresses of tx queues
5438 * before sending MWL8K_CMD_GET_HW_SPEC. So we must initialize them
5439 * prior to issuing this command. But for the AP case, we learn the
5440 * total number of queues from the result CMD_GET_HW_SPEC, so for this
5441 * case we must initialize the tx queues after.
5443 priv
->num_ampdu_queues
= 0;
5445 rc
= mwl8k_init_txqs(hw
);
5447 goto err_free_queues
;
5450 iowrite32(0, priv
->regs
+ MWL8K_HIU_A2H_INTERRUPT_STATUS
);
5451 iowrite32(0, priv
->regs
+ MWL8K_HIU_A2H_INTERRUPT_MASK
);
5452 iowrite32(MWL8K_A2H_INT_TX_DONE
|MWL8K_A2H_INT_RX_READY
|
5453 MWL8K_A2H_INT_BA_WATCHDOG
,
5454 priv
->regs
+ MWL8K_HIU_A2H_INTERRUPT_CLEAR_SEL
);
5455 iowrite32(MWL8K_A2H_INT_OPC_DONE
,
5456 priv
->regs
+ MWL8K_HIU_A2H_INTERRUPT_STATUS_MASK
);
5458 rc
= request_irq(priv
->pdev
->irq
, mwl8k_interrupt
,
5459 IRQF_SHARED
, MWL8K_NAME
, hw
);
5461 wiphy_err(hw
->wiphy
, "failed to register IRQ handler\n");
5462 goto err_free_queues
;
5466 * When hw restart is requested,
5467 * mac80211 will take care of clearing
5468 * the ampdu streams, so do not clear
5469 * the ampdu state here
5471 if (!priv
->hw_restart_in_progress
)
5472 memset(priv
->ampdu
, 0, sizeof(priv
->ampdu
));
5475 * Temporarily enable interrupts. Initial firmware host
5476 * commands use interrupts and avoid polling. Disable
5477 * interrupts when done.
5479 iowrite32(MWL8K_A2H_EVENTS
, priv
->regs
+ MWL8K_HIU_A2H_INTERRUPT_MASK
);
5481 /* Get config data, mac addrs etc */
5483 rc
= mwl8k_cmd_get_hw_spec_ap(hw
);
5485 rc
= mwl8k_init_txqs(hw
);
5487 rc
= mwl8k_cmd_set_hw_spec(hw
);
5489 rc
= mwl8k_cmd_get_hw_spec_sta(hw
);
5492 wiphy_err(hw
->wiphy
, "Cannot initialise firmware\n");
5496 /* Turn radio off */
5497 rc
= mwl8k_cmd_radio_disable(hw
);
5499 wiphy_err(hw
->wiphy
, "Cannot disable\n");
5503 /* Clear MAC address */
5504 rc
= mwl8k_cmd_set_mac_addr(hw
, NULL
, "\x00\x00\x00\x00\x00\x00");
5506 wiphy_err(hw
->wiphy
, "Cannot clear MAC address\n");
5510 /* Disable interrupts */
5511 iowrite32(0, priv
->regs
+ MWL8K_HIU_A2H_INTERRUPT_MASK
);
5512 free_irq(priv
->pdev
->irq
, hw
);
5514 wiphy_info(hw
->wiphy
, "%s v%d, %pm, %s firmware %u.%u.%u.%u\n",
5515 priv
->device_info
->part_name
,
5516 priv
->hw_rev
, hw
->wiphy
->perm_addr
,
5517 priv
->ap_fw
? "AP" : "STA",
5518 (priv
->fw_rev
>> 24) & 0xff, (priv
->fw_rev
>> 16) & 0xff,
5519 (priv
->fw_rev
>> 8) & 0xff, priv
->fw_rev
& 0xff);
5524 iowrite32(0, priv
->regs
+ MWL8K_HIU_A2H_INTERRUPT_MASK
);
5525 free_irq(priv
->pdev
->irq
, hw
);
5528 for (i
= 0; i
< mwl8k_tx_queues(priv
); i
++)
5529 mwl8k_txq_deinit(hw
, i
);
5530 mwl8k_rxq_deinit(hw
, 0);
5533 mwl8k_hw_reset(priv
);
5539 * invoke mwl8k_reload_firmware to change the firmware image after the device
5540 * has already been registered
5542 static int mwl8k_reload_firmware(struct ieee80211_hw
*hw
, char *fw_image
)
5545 struct mwl8k_priv
*priv
= hw
->priv
;
5546 struct mwl8k_vif
*vif
, *tmp_vif
;
5549 mwl8k_rxq_deinit(hw
, 0);
5552 * All the existing interfaces are re-added by the ieee80211_reconfig;
5553 * which means driver should remove existing interfaces before calling
5554 * ieee80211_restart_hw
5556 if (priv
->hw_restart_in_progress
)
5557 list_for_each_entry_safe(vif
, tmp_vif
, &priv
->vif_list
, list
)
5558 mwl8k_remove_vif(priv
, vif
);
5560 for (i
= 0; i
< mwl8k_tx_queues(priv
); i
++)
5561 mwl8k_txq_deinit(hw
, i
);
5563 rc
= mwl8k_init_firmware(hw
, fw_image
, false);
5567 rc
= mwl8k_probe_hw(hw
);
5571 if (priv
->hw_restart_in_progress
)
5574 rc
= mwl8k_start(hw
);
5578 rc
= mwl8k_config(hw
, ~0);
5582 for (i
= 0; i
< MWL8K_TX_WMM_QUEUES
; i
++) {
5583 rc
= mwl8k_conf_tx(hw
, NULL
, i
, &priv
->wmm_params
[i
]);
5591 printk(KERN_WARNING
"mwl8k: Failed to reload firmware image.\n");
5595 static int mwl8k_firmware_load_success(struct mwl8k_priv
*priv
)
5597 struct ieee80211_hw
*hw
= priv
->hw
;
5600 rc
= mwl8k_load_firmware(hw
);
5601 mwl8k_release_firmware(priv
);
5603 wiphy_err(hw
->wiphy
, "Cannot start firmware\n");
5608 * Extra headroom is the size of the required DMA header
5609 * minus the size of the smallest 802.11 frame (CTS frame).
5611 hw
->extra_tx_headroom
=
5612 sizeof(struct mwl8k_dma_data
) - sizeof(struct ieee80211_cts
);
5614 hw
->extra_tx_headroom
-= priv
->ap_fw
? REDUCED_TX_HEADROOM
: 0;
5616 hw
->channel_change_time
= 10;
5618 hw
->queues
= MWL8K_TX_WMM_QUEUES
;
5620 /* Set rssi values to dBm */
5621 hw
->flags
|= IEEE80211_HW_SIGNAL_DBM
| IEEE80211_HW_HAS_RATE_CONTROL
;
5624 * Ask mac80211 to not to trigger PS mode
5625 * based on PM bit of incoming frames.
5628 hw
->flags
|= IEEE80211_HW_AP_LINK_PS
;
5630 hw
->vif_data_size
= sizeof(struct mwl8k_vif
);
5631 hw
->sta_data_size
= sizeof(struct mwl8k_sta
);
5633 priv
->macids_used
= 0;
5634 INIT_LIST_HEAD(&priv
->vif_list
);
5636 /* Set default radio state and preamble */
5637 priv
->radio_on
= false;
5638 priv
->radio_short_preamble
= false;
5640 /* Finalize join worker */
5641 INIT_WORK(&priv
->finalize_join_worker
, mwl8k_finalize_join_worker
);
5642 /* Handle watchdog ba events */
5643 INIT_WORK(&priv
->watchdog_ba_handle
, mwl8k_watchdog_ba_events
);
5644 /* To reload the firmware if it crashes */
5645 INIT_WORK(&priv
->fw_reload
, mwl8k_hw_restart_work
);
5647 /* TX reclaim and RX tasklets. */
5648 tasklet_init(&priv
->poll_tx_task
, mwl8k_tx_poll
, (unsigned long)hw
);
5649 tasklet_disable(&priv
->poll_tx_task
);
5650 tasklet_init(&priv
->poll_rx_task
, mwl8k_rx_poll
, (unsigned long)hw
);
5651 tasklet_disable(&priv
->poll_rx_task
);
5653 /* Power management cookie */
5654 priv
->cookie
= pci_alloc_consistent(priv
->pdev
, 4, &priv
->cookie_dma
);
5655 if (priv
->cookie
== NULL
)
5658 mutex_init(&priv
->fw_mutex
);
5659 priv
->fw_mutex_owner
= NULL
;
5660 priv
->fw_mutex_depth
= 0;
5661 priv
->hostcmd_wait
= NULL
;
5663 spin_lock_init(&priv
->tx_lock
);
5665 spin_lock_init(&priv
->stream_lock
);
5667 priv
->tx_wait
= NULL
;
5669 rc
= mwl8k_probe_hw(hw
);
5671 goto err_free_cookie
;
5673 hw
->wiphy
->interface_modes
= 0;
5674 if (priv
->ap_macids_supported
|| priv
->device_info
->fw_image_ap
)
5675 hw
->wiphy
->interface_modes
|= BIT(NL80211_IFTYPE_AP
);
5676 if (priv
->sta_macids_supported
|| priv
->device_info
->fw_image_sta
)
5677 hw
->wiphy
->interface_modes
|= BIT(NL80211_IFTYPE_STATION
);
5679 rc
= ieee80211_register_hw(hw
);
5681 wiphy_err(hw
->wiphy
, "Cannot register device\n");
5682 goto err_unprobe_hw
;
5688 for (i
= 0; i
< mwl8k_tx_queues(priv
); i
++)
5689 mwl8k_txq_deinit(hw
, i
);
5690 mwl8k_rxq_deinit(hw
, 0);
5693 if (priv
->cookie
!= NULL
)
5694 pci_free_consistent(priv
->pdev
, 4,
5695 priv
->cookie
, priv
->cookie_dma
);
5699 static int __devinit
mwl8k_probe(struct pci_dev
*pdev
,
5700 const struct pci_device_id
*id
)
5702 static int printed_version
;
5703 struct ieee80211_hw
*hw
;
5704 struct mwl8k_priv
*priv
;
5705 struct mwl8k_device_info
*di
;
5708 if (!printed_version
) {
5709 printk(KERN_INFO
"%s version %s\n", MWL8K_DESC
, MWL8K_VERSION
);
5710 printed_version
= 1;
5714 rc
= pci_enable_device(pdev
);
5716 printk(KERN_ERR
"%s: Cannot enable new PCI device\n",
5721 rc
= pci_request_regions(pdev
, MWL8K_NAME
);
5723 printk(KERN_ERR
"%s: Cannot obtain PCI resources\n",
5725 goto err_disable_device
;
5728 pci_set_master(pdev
);
5731 hw
= ieee80211_alloc_hw(sizeof(*priv
), &mwl8k_ops
);
5733 printk(KERN_ERR
"%s: ieee80211 alloc failed\n", MWL8K_NAME
);
5738 SET_IEEE80211_DEV(hw
, &pdev
->dev
);
5739 pci_set_drvdata(pdev
, hw
);
5744 priv
->device_info
= &mwl8k_info_tbl
[id
->driver_data
];
5747 priv
->sram
= pci_iomap(pdev
, 0, 0x10000);
5748 if (priv
->sram
== NULL
) {
5749 wiphy_err(hw
->wiphy
, "Cannot map device SRAM\n");
5754 * If BAR0 is a 32 bit BAR, the register BAR will be BAR1.
5755 * If BAR0 is a 64 bit BAR, the register BAR will be BAR2.
5757 priv
->regs
= pci_iomap(pdev
, 1, 0x10000);
5758 if (priv
->regs
== NULL
) {
5759 priv
->regs
= pci_iomap(pdev
, 2, 0x10000);
5760 if (priv
->regs
== NULL
) {
5761 wiphy_err(hw
->wiphy
, "Cannot map device registers\n");
5767 * Choose the initial fw image depending on user input. If a second
5768 * image is available, make it the alternative image that will be
5769 * loaded if the first one fails.
5771 init_completion(&priv
->firmware_loading_complete
);
5772 di
= priv
->device_info
;
5773 if (ap_mode_default
&& di
->fw_image_ap
) {
5774 priv
->fw_pref
= di
->fw_image_ap
;
5775 priv
->fw_alt
= di
->fw_image_sta
;
5776 } else if (!ap_mode_default
&& di
->fw_image_sta
) {
5777 priv
->fw_pref
= di
->fw_image_sta
;
5778 priv
->fw_alt
= di
->fw_image_ap
;
5779 } else if (ap_mode_default
&& !di
->fw_image_ap
&& di
->fw_image_sta
) {
5780 printk(KERN_WARNING
"AP fw is unavailable. Using STA fw.");
5781 priv
->fw_pref
= di
->fw_image_sta
;
5782 } else if (!ap_mode_default
&& !di
->fw_image_sta
&& di
->fw_image_ap
) {
5783 printk(KERN_WARNING
"STA fw is unavailable. Using AP fw.");
5784 priv
->fw_pref
= di
->fw_image_ap
;
5786 rc
= mwl8k_init_firmware(hw
, priv
->fw_pref
, true);
5788 goto err_stop_firmware
;
5790 priv
->hw_restart_in_progress
= false;
5795 mwl8k_hw_reset(priv
);
5798 if (priv
->regs
!= NULL
)
5799 pci_iounmap(pdev
, priv
->regs
);
5801 if (priv
->sram
!= NULL
)
5802 pci_iounmap(pdev
, priv
->sram
);
5804 pci_set_drvdata(pdev
, NULL
);
5805 ieee80211_free_hw(hw
);
5808 pci_release_regions(pdev
);
5811 pci_disable_device(pdev
);
5816 static void __devexit
mwl8k_shutdown(struct pci_dev
*pdev
)
5818 printk(KERN_ERR
"===>%s(%u)\n", __func__
, __LINE__
);
5821 static void __devexit
mwl8k_remove(struct pci_dev
*pdev
)
5823 struct ieee80211_hw
*hw
= pci_get_drvdata(pdev
);
5824 struct mwl8k_priv
*priv
;
5831 wait_for_completion(&priv
->firmware_loading_complete
);
5833 if (priv
->fw_state
== FW_STATE_ERROR
) {
5834 mwl8k_hw_reset(priv
);
5838 ieee80211_stop_queues(hw
);
5840 ieee80211_unregister_hw(hw
);
5842 /* Remove TX reclaim and RX tasklets. */
5843 tasklet_kill(&priv
->poll_tx_task
);
5844 tasklet_kill(&priv
->poll_rx_task
);
5847 mwl8k_hw_reset(priv
);
5849 /* Return all skbs to mac80211 */
5850 for (i
= 0; i
< mwl8k_tx_queues(priv
); i
++)
5851 mwl8k_txq_reclaim(hw
, i
, INT_MAX
, 1);
5853 for (i
= 0; i
< mwl8k_tx_queues(priv
); i
++)
5854 mwl8k_txq_deinit(hw
, i
);
5856 mwl8k_rxq_deinit(hw
, 0);
5858 pci_free_consistent(priv
->pdev
, 4, priv
->cookie
, priv
->cookie_dma
);
5861 pci_iounmap(pdev
, priv
->regs
);
5862 pci_iounmap(pdev
, priv
->sram
);
5863 pci_set_drvdata(pdev
, NULL
);
5864 ieee80211_free_hw(hw
);
5865 pci_release_regions(pdev
);
5866 pci_disable_device(pdev
);
5869 static struct pci_driver mwl8k_driver
= {
5871 .id_table
= mwl8k_pci_id_table
,
5872 .probe
= mwl8k_probe
,
5873 .remove
= __devexit_p(mwl8k_remove
),
5874 .shutdown
= __devexit_p(mwl8k_shutdown
),
5877 static int __init
mwl8k_init(void)
5879 return pci_register_driver(&mwl8k_driver
);
5882 static void __exit
mwl8k_exit(void)
5884 pci_unregister_driver(&mwl8k_driver
);
5887 module_init(mwl8k_init
);
5888 module_exit(mwl8k_exit
);
5890 MODULE_DESCRIPTION(MWL8K_DESC
);
5891 MODULE_VERSION(MWL8K_VERSION
);
5892 MODULE_AUTHOR("Lennert Buytenhek <buytenh@marvell.com>");
5893 MODULE_LICENSE("GPL");