1 // SPDX-License-Identifier: GPL-2.0-only
2 /******************************************************************************
3
4 Copyright(c) 2003 - 2006 Intel Corporation. All rights reserved.
5
6 802.11 status code portion of this file from ethereal-0.10.6:
7 Copyright 2000, Axis Communications AB
8 Ethereal - Network traffic analyzer
9 By Gerald Combs <gerald@ethereal.com>
10 Copyright 1998 Gerald Combs
11
12
13 Contact Information:
14 Intel Linux Wireless <ilw@linux.intel.com>
15 Intel Corporation, 5200 N.E. Elam Young Parkway, Hillsboro, OR 97124-6497
16
17 ******************************************************************************/
18
19 #include <linux/sched.h>
20 #include <linux/slab.h>
21 #include <net/cfg80211-wext.h>
22 #include "ipw2200.h"
23 #include "ipw.h"
24
25
26 #ifndef KBUILD_EXTMOD
27 #define VK "k"
28 #else
29 #define VK
30 #endif
31
32 #ifdef CONFIG_IPW2200_DEBUG
33 #define VD "d"
34 #else
35 #define VD
36 #endif
37
38 #ifdef CONFIG_IPW2200_MONITOR
39 #define VM "m"
40 #else
41 #define VM
42 #endif
43
44 #ifdef CONFIG_IPW2200_PROMISCUOUS
45 #define VP "p"
46 #else
47 #define VP
48 #endif
49
50 #ifdef CONFIG_IPW2200_RADIOTAP
51 #define VR "r"
52 #else
53 #define VR
54 #endif
55
56 #ifdef CONFIG_IPW2200_QOS
57 #define VQ "q"
58 #else
59 #define VQ
60 #endif
61
62 #define IPW2200_VERSION "1.2.2" VK VD VM VP VR VQ
63 #define DRV_DESCRIPTION "Intel(R) PRO/Wireless 2200/2915 Network Driver"
64 #define DRV_COPYRIGHT "Copyright(c) 2003-2006 Intel Corporation"
65 #define DRV_VERSION IPW2200_VERSION
66
67 #define ETH_P_80211_STATS (ETH_P_80211_RAW + 1)
68
69 MODULE_DESCRIPTION(DRV_DESCRIPTION);
70 MODULE_VERSION(DRV_VERSION);
71 MODULE_AUTHOR(DRV_COPYRIGHT);
72 MODULE_LICENSE("GPL");
73 MODULE_FIRMWARE("ipw2200-ibss.fw");
74 #ifdef CONFIG_IPW2200_MONITOR
75 MODULE_FIRMWARE("ipw2200-sniffer.fw");
76 #endif
77 MODULE_FIRMWARE("ipw2200-bss.fw");
78
79 static int cmdlog = 0;
80 static int debug = 0;
81 static int default_channel = 0;
82 static int network_mode = 0;
83
84 static u32 ipw_debug_level;
85 static int associate;
86 static int auto_create = 1;
87 static int led_support = 1;
88 static int disable = 0;
89 static int bt_coexist = 0;
90 static int hwcrypto = 0;
91 static int roaming = 1;
92 static const char ipw_modes[] = {
93 'a', 'b', 'g', '?'
94 };
95 static int antenna = CFG_SYS_ANTENNA_BOTH;
96
97 #ifdef CONFIG_IPW2200_PROMISCUOUS
98 static int rtap_iface = 0; /* def: 0 -- do not create rtap interface */
99 #endif
100
101 static struct ieee80211_rate ipw2200_rates[] = {
102 { .bitrate = 10 },
103 { .bitrate = 20, .flags = IEEE80211_RATE_SHORT_PREAMBLE },
104 { .bitrate = 55, .flags = IEEE80211_RATE_SHORT_PREAMBLE },
105 { .bitrate = 110, .flags = IEEE80211_RATE_SHORT_PREAMBLE },
106 { .bitrate = 60 },
107 { .bitrate = 90 },
108 { .bitrate = 120 },
109 { .bitrate = 180 },
110 { .bitrate = 240 },
111 { .bitrate = 360 },
112 { .bitrate = 480 },
113 { .bitrate = 540 }
114 };
115
116 #define ipw2200_a_rates (ipw2200_rates + 4)
117 #define ipw2200_num_a_rates 8
118 #define ipw2200_bg_rates (ipw2200_rates + 0)
119 #define ipw2200_num_bg_rates 12
120
121 /* Ugly macro to convert literal channel numbers into their mhz equivalents
122 * There are certianly some conditions that will break this (like feeding it '30')
123 * but they shouldn't arise since nothing talks on channel 30. */
124 #define ieee80211chan2mhz(x) \
125 (((x) <= 14) ? \
126 (((x) == 14) ? 2484 : ((x) * 5) + 2407) : \
127 ((x) + 1000) * 5)
128
129 #ifdef CONFIG_IPW2200_QOS
130 static int qos_enable = 0;
131 static int qos_burst_enable = 0;
132 static int qos_no_ack_mask = 0;
133 static int burst_duration_CCK = 0;
134 static int burst_duration_OFDM = 0;
135
136 static struct libipw_qos_parameters def_qos_parameters_OFDM = {
137 {QOS_TX0_CW_MIN_OFDM, QOS_TX1_CW_MIN_OFDM, QOS_TX2_CW_MIN_OFDM,
138 QOS_TX3_CW_MIN_OFDM},
139 {QOS_TX0_CW_MAX_OFDM, QOS_TX1_CW_MAX_OFDM, QOS_TX2_CW_MAX_OFDM,
140 QOS_TX3_CW_MAX_OFDM},
141 {QOS_TX0_AIFS, QOS_TX1_AIFS, QOS_TX2_AIFS, QOS_TX3_AIFS},
142 {QOS_TX0_ACM, QOS_TX1_ACM, QOS_TX2_ACM, QOS_TX3_ACM},
143 {QOS_TX0_TXOP_LIMIT_OFDM, QOS_TX1_TXOP_LIMIT_OFDM,
144 QOS_TX2_TXOP_LIMIT_OFDM, QOS_TX3_TXOP_LIMIT_OFDM}
145 };
146
147 static struct libipw_qos_parameters def_qos_parameters_CCK = {
148 {QOS_TX0_CW_MIN_CCK, QOS_TX1_CW_MIN_CCK, QOS_TX2_CW_MIN_CCK,
149 QOS_TX3_CW_MIN_CCK},
150 {QOS_TX0_CW_MAX_CCK, QOS_TX1_CW_MAX_CCK, QOS_TX2_CW_MAX_CCK,
151 QOS_TX3_CW_MAX_CCK},
152 {QOS_TX0_AIFS, QOS_TX1_AIFS, QOS_TX2_AIFS, QOS_TX3_AIFS},
153 {QOS_TX0_ACM, QOS_TX1_ACM, QOS_TX2_ACM, QOS_TX3_ACM},
154 {QOS_TX0_TXOP_LIMIT_CCK, QOS_TX1_TXOP_LIMIT_CCK, QOS_TX2_TXOP_LIMIT_CCK,
155 QOS_TX3_TXOP_LIMIT_CCK}
156 };
157
158 static struct libipw_qos_parameters def_parameters_OFDM = {
159 {DEF_TX0_CW_MIN_OFDM, DEF_TX1_CW_MIN_OFDM, DEF_TX2_CW_MIN_OFDM,
160 DEF_TX3_CW_MIN_OFDM},
161 {DEF_TX0_CW_MAX_OFDM, DEF_TX1_CW_MAX_OFDM, DEF_TX2_CW_MAX_OFDM,
162 DEF_TX3_CW_MAX_OFDM},
163 {DEF_TX0_AIFS, DEF_TX1_AIFS, DEF_TX2_AIFS, DEF_TX3_AIFS},
164 {DEF_TX0_ACM, DEF_TX1_ACM, DEF_TX2_ACM, DEF_TX3_ACM},
165 {DEF_TX0_TXOP_LIMIT_OFDM, DEF_TX1_TXOP_LIMIT_OFDM,
166 DEF_TX2_TXOP_LIMIT_OFDM, DEF_TX3_TXOP_LIMIT_OFDM}
167 };
168
169 static struct libipw_qos_parameters def_parameters_CCK = {
170 {DEF_TX0_CW_MIN_CCK, DEF_TX1_CW_MIN_CCK, DEF_TX2_CW_MIN_CCK,
171 DEF_TX3_CW_MIN_CCK},
172 {DEF_TX0_CW_MAX_CCK, DEF_TX1_CW_MAX_CCK, DEF_TX2_CW_MAX_CCK,
173 DEF_TX3_CW_MAX_CCK},
174 {DEF_TX0_AIFS, DEF_TX1_AIFS, DEF_TX2_AIFS, DEF_TX3_AIFS},
175 {DEF_TX0_ACM, DEF_TX1_ACM, DEF_TX2_ACM, DEF_TX3_ACM},
176 {DEF_TX0_TXOP_LIMIT_CCK, DEF_TX1_TXOP_LIMIT_CCK, DEF_TX2_TXOP_LIMIT_CCK,
177 DEF_TX3_TXOP_LIMIT_CCK}
178 };
179
180 static u8 qos_oui[QOS_OUI_LEN] = { 0x00, 0x50, 0xF2 };
181
182 static int from_priority_to_tx_queue[] = {
183 IPW_TX_QUEUE_1, IPW_TX_QUEUE_2, IPW_TX_QUEUE_2, IPW_TX_QUEUE_1,
184 IPW_TX_QUEUE_3, IPW_TX_QUEUE_3, IPW_TX_QUEUE_4, IPW_TX_QUEUE_4
185 };
186
187 static u32 ipw_qos_get_burst_duration(struct ipw_priv *priv);
188
189 static int ipw_send_qos_params_command(struct ipw_priv *priv, struct libipw_qos_parameters
190 *qos_param);
191 static int ipw_send_qos_info_command(struct ipw_priv *priv, struct libipw_qos_information_element
192 *qos_param);
193 #endif /* CONFIG_IPW2200_QOS */
194
195 static struct iw_statistics *ipw_get_wireless_stats(struct net_device *dev);
196 static void ipw_remove_current_network(struct ipw_priv *priv);
197 static void ipw_rx(struct ipw_priv *priv);
198 static int ipw_queue_tx_reclaim(struct ipw_priv *priv,
199 struct clx2_tx_queue *txq, int qindex);
200 static int ipw_queue_reset(struct ipw_priv *priv);
201
202 static int ipw_queue_tx_hcmd(struct ipw_priv *priv, int hcmd, const void *buf,
203 int len, int sync);
204
205 static void ipw_tx_queue_free(struct ipw_priv *);
206
207 static struct ipw_rx_queue *ipw_rx_queue_alloc(struct ipw_priv *);
208 static void ipw_rx_queue_free(struct ipw_priv *, struct ipw_rx_queue *);
209 static void ipw_rx_queue_replenish(void *);
210 static int ipw_up(struct ipw_priv *);
211 static void ipw_bg_up(struct work_struct *work);
212 static void ipw_down(struct ipw_priv *);
213 static void ipw_bg_down(struct work_struct *work);
214 static int ipw_config(struct ipw_priv *);
215 static int init_supported_rates(struct ipw_priv *priv,
216 struct ipw_supported_rates *prates);
217 static void ipw_set_hwcrypto_keys(struct ipw_priv *);
218 static void ipw_send_wep_keys(struct ipw_priv *, int);
219
snprint_line(char * buf,size_t count,const u8 * data,u32 len,u32 ofs)220 static int snprint_line(char *buf, size_t count,
221 const u8 * data, u32 len, u32 ofs)
222 {
223 int out, i, j, l;
224 char c;
225
226 out = scnprintf(buf, count, "%08X", ofs);
227
228 for (l = 0, i = 0; i < 2; i++) {
229 out += scnprintf(buf + out, count - out, " ");
230 for (j = 0; j < 8 && l < len; j++, l++)
231 out += scnprintf(buf + out, count - out, "%02X ",
232 data[(i * 8 + j)]);
233 for (; j < 8; j++)
234 out += scnprintf(buf + out, count - out, " ");
235 }
236
237 out += scnprintf(buf + out, count - out, " ");
238 for (l = 0, i = 0; i < 2; i++) {
239 out += scnprintf(buf + out, count - out, " ");
240 for (j = 0; j < 8 && l < len; j++, l++) {
241 c = data[(i * 8 + j)];
242 if (!isascii(c) || !isprint(c))
243 c = '.';
244
245 out += scnprintf(buf + out, count - out, "%c", c);
246 }
247
248 for (; j < 8; j++)
249 out += scnprintf(buf + out, count - out, " ");
250 }
251
252 return out;
253 }
254
printk_buf(int level,const u8 * data,u32 len)255 static void printk_buf(int level, const u8 * data, u32 len)
256 {
257 char line[81];
258 u32 ofs = 0;
259 if (!(ipw_debug_level & level))
260 return;
261
262 while (len) {
263 snprint_line(line, sizeof(line), &data[ofs],
264 min(len, 16U), ofs);
265 printk(KERN_DEBUG "%s\n", line);
266 ofs += 16;
267 len -= min(len, 16U);
268 }
269 }
270
snprintk_buf(u8 * output,size_t size,const u8 * data,size_t len)271 static int snprintk_buf(u8 * output, size_t size, const u8 * data, size_t len)
272 {
273 size_t out = size;
274 u32 ofs = 0;
275 int total = 0;
276
277 while (size && len) {
278 out = snprint_line(output, size, &data[ofs],
279 min_t(size_t, len, 16U), ofs);
280
281 ofs += 16;
282 output += out;
283 size -= out;
284 len -= min_t(size_t, len, 16U);
285 total += out;
286 }
287 return total;
288 }
289
290 /* alias for 32-bit indirect read (for SRAM/reg above 4K), with debug wrapper */
291 static u32 _ipw_read_reg32(struct ipw_priv *priv, u32 reg);
292 #define ipw_read_reg32(a, b) _ipw_read_reg32(a, b)
293
294 /* alias for 8-bit indirect read (for SRAM/reg above 4K), with debug wrapper */
295 static u8 _ipw_read_reg8(struct ipw_priv *ipw, u32 reg);
296 #define ipw_read_reg8(a, b) _ipw_read_reg8(a, b)
297
298 /* 8-bit indirect write (for SRAM/reg above 4K), with debug wrapper */
299 static void _ipw_write_reg8(struct ipw_priv *priv, u32 reg, u8 value);
ipw_write_reg8(struct ipw_priv * a,u32 b,u8 c)300 static inline void ipw_write_reg8(struct ipw_priv *a, u32 b, u8 c)
301 {
302 IPW_DEBUG_IO("%s %d: write_indirect8(0x%08X, 0x%08X)\n", __FILE__,
303 __LINE__, (u32) (b), (u32) (c));
304 _ipw_write_reg8(a, b, c);
305 }
306
307 /* 16-bit indirect write (for SRAM/reg above 4K), with debug wrapper */
308 static void _ipw_write_reg16(struct ipw_priv *priv, u32 reg, u16 value);
ipw_write_reg16(struct ipw_priv * a,u32 b,u16 c)309 static inline void ipw_write_reg16(struct ipw_priv *a, u32 b, u16 c)
310 {
311 IPW_DEBUG_IO("%s %d: write_indirect16(0x%08X, 0x%08X)\n", __FILE__,
312 __LINE__, (u32) (b), (u32) (c));
313 _ipw_write_reg16(a, b, c);
314 }
315
316 /* 32-bit indirect write (for SRAM/reg above 4K), with debug wrapper */
317 static void _ipw_write_reg32(struct ipw_priv *priv, u32 reg, u32 value);
ipw_write_reg32(struct ipw_priv * a,u32 b,u32 c)318 static inline void ipw_write_reg32(struct ipw_priv *a, u32 b, u32 c)
319 {
320 IPW_DEBUG_IO("%s %d: write_indirect32(0x%08X, 0x%08X)\n", __FILE__,
321 __LINE__, (u32) (b), (u32) (c));
322 _ipw_write_reg32(a, b, c);
323 }
324
325 /* 8-bit direct write (low 4K) */
_ipw_write8(struct ipw_priv * ipw,unsigned long ofs,u8 val)326 static inline void _ipw_write8(struct ipw_priv *ipw, unsigned long ofs,
327 u8 val)
328 {
329 writeb(val, ipw->hw_base + ofs);
330 }
331
332 /* 8-bit direct write (for low 4K of SRAM/regs), with debug wrapper */
333 #define ipw_write8(ipw, ofs, val) do { \
334 IPW_DEBUG_IO("%s %d: write_direct8(0x%08X, 0x%08X)\n", __FILE__, \
335 __LINE__, (u32)(ofs), (u32)(val)); \
336 _ipw_write8(ipw, ofs, val); \
337 } while (0)
338
339 /* 16-bit direct write (low 4K) */
_ipw_write16(struct ipw_priv * ipw,unsigned long ofs,u16 val)340 static inline void _ipw_write16(struct ipw_priv *ipw, unsigned long ofs,
341 u16 val)
342 {
343 writew(val, ipw->hw_base + ofs);
344 }
345
346 /* 16-bit direct write (for low 4K of SRAM/regs), with debug wrapper */
347 #define ipw_write16(ipw, ofs, val) do { \
348 IPW_DEBUG_IO("%s %d: write_direct16(0x%08X, 0x%08X)\n", __FILE__, \
349 __LINE__, (u32)(ofs), (u32)(val)); \
350 _ipw_write16(ipw, ofs, val); \
351 } while (0)
352
353 /* 32-bit direct write (low 4K) */
_ipw_write32(struct ipw_priv * ipw,unsigned long ofs,u32 val)354 static inline void _ipw_write32(struct ipw_priv *ipw, unsigned long ofs,
355 u32 val)
356 {
357 writel(val, ipw->hw_base + ofs);
358 }
359
360 /* 32-bit direct write (for low 4K of SRAM/regs), with debug wrapper */
361 #define ipw_write32(ipw, ofs, val) do { \
362 IPW_DEBUG_IO("%s %d: write_direct32(0x%08X, 0x%08X)\n", __FILE__, \
363 __LINE__, (u32)(ofs), (u32)(val)); \
364 _ipw_write32(ipw, ofs, val); \
365 } while (0)
366
367 /* 8-bit direct read (low 4K) */
_ipw_read8(struct ipw_priv * ipw,unsigned long ofs)368 static inline u8 _ipw_read8(struct ipw_priv *ipw, unsigned long ofs)
369 {
370 return readb(ipw->hw_base + ofs);
371 }
372
373 /* alias to 8-bit direct read (low 4K of SRAM/regs), with debug wrapper */
374 #define ipw_read8(ipw, ofs) ({ \
375 IPW_DEBUG_IO("%s %d: read_direct8(0x%08X)\n", __FILE__, __LINE__, \
376 (u32)(ofs)); \
377 _ipw_read8(ipw, ofs); \
378 })
379
380 /* 32-bit direct read (low 4K) */
_ipw_read32(struct ipw_priv * ipw,unsigned long ofs)381 static inline u32 _ipw_read32(struct ipw_priv *ipw, unsigned long ofs)
382 {
383 return readl(ipw->hw_base + ofs);
384 }
385
386 /* alias to 32-bit direct read (low 4K of SRAM/regs), with debug wrapper */
387 #define ipw_read32(ipw, ofs) ({ \
388 IPW_DEBUG_IO("%s %d: read_direct32(0x%08X)\n", __FILE__, __LINE__, \
389 (u32)(ofs)); \
390 _ipw_read32(ipw, ofs); \
391 })
392
393 static void _ipw_read_indirect(struct ipw_priv *, u32, u8 *, int);
394 /* alias to multi-byte read (SRAM/regs above 4K), with debug wrapper */
395 #define ipw_read_indirect(a, b, c, d) ({ \
396 IPW_DEBUG_IO("%s %d: read_indirect(0x%08X) %u bytes\n", __FILE__, \
397 __LINE__, (u32)(b), (u32)(d)); \
398 _ipw_read_indirect(a, b, c, d); \
399 })
400
401 /* alias to multi-byte read (SRAM/regs above 4K), with debug wrapper */
402 static void _ipw_write_indirect(struct ipw_priv *priv, u32 addr, u8 * data,
403 int num);
404 #define ipw_write_indirect(a, b, c, d) do { \
405 IPW_DEBUG_IO("%s %d: write_indirect(0x%08X) %u bytes\n", __FILE__, \
406 __LINE__, (u32)(b), (u32)(d)); \
407 _ipw_write_indirect(a, b, c, d); \
408 } while (0)
409
410 /* 32-bit indirect write (above 4K) */
_ipw_write_reg32(struct ipw_priv * priv,u32 reg,u32 value)411 static void _ipw_write_reg32(struct ipw_priv *priv, u32 reg, u32 value)
412 {
413 IPW_DEBUG_IO(" %p : reg = 0x%8X : value = 0x%8X\n", priv, reg, value);
414 _ipw_write32(priv, IPW_INDIRECT_ADDR, reg);
415 _ipw_write32(priv, IPW_INDIRECT_DATA, value);
416 }
417
418 /* 8-bit indirect write (above 4K) */
_ipw_write_reg8(struct ipw_priv * priv,u32 reg,u8 value)419 static void _ipw_write_reg8(struct ipw_priv *priv, u32 reg, u8 value)
420 {
421 u32 aligned_addr = reg & IPW_INDIRECT_ADDR_MASK; /* dword align */
422 u32 dif_len = reg - aligned_addr;
423
424 IPW_DEBUG_IO(" reg = 0x%8X : value = 0x%8X\n", reg, value);
425 _ipw_write32(priv, IPW_INDIRECT_ADDR, aligned_addr);
426 _ipw_write8(priv, IPW_INDIRECT_DATA + dif_len, value);
427 }
428
429 /* 16-bit indirect write (above 4K) */
_ipw_write_reg16(struct ipw_priv * priv,u32 reg,u16 value)430 static void _ipw_write_reg16(struct ipw_priv *priv, u32 reg, u16 value)
431 {
432 u32 aligned_addr = reg & IPW_INDIRECT_ADDR_MASK; /* dword align */
433 u32 dif_len = (reg - aligned_addr) & (~0x1ul);
434
435 IPW_DEBUG_IO(" reg = 0x%8X : value = 0x%8X\n", reg, value);
436 _ipw_write32(priv, IPW_INDIRECT_ADDR, aligned_addr);
437 _ipw_write16(priv, IPW_INDIRECT_DATA + dif_len, value);
438 }
439
440 /* 8-bit indirect read (above 4K) */
_ipw_read_reg8(struct ipw_priv * priv,u32 reg)441 static u8 _ipw_read_reg8(struct ipw_priv *priv, u32 reg)
442 {
443 u32 word;
444 _ipw_write32(priv, IPW_INDIRECT_ADDR, reg & IPW_INDIRECT_ADDR_MASK);
445 IPW_DEBUG_IO(" reg = 0x%8X :\n", reg);
446 word = _ipw_read32(priv, IPW_INDIRECT_DATA);
447 return (word >> ((reg & 0x3) * 8)) & 0xff;
448 }
449
450 /* 32-bit indirect read (above 4K) */
_ipw_read_reg32(struct ipw_priv * priv,u32 reg)451 static u32 _ipw_read_reg32(struct ipw_priv *priv, u32 reg)
452 {
453 u32 value;
454
455 IPW_DEBUG_IO("%p : reg = 0x%08x\n", priv, reg);
456
457 _ipw_write32(priv, IPW_INDIRECT_ADDR, reg);
458 value = _ipw_read32(priv, IPW_INDIRECT_DATA);
459 IPW_DEBUG_IO(" reg = 0x%4X : value = 0x%4x\n", reg, value);
460 return value;
461 }
462
463 /* General purpose, no alignment requirement, iterative (multi-byte) read, */
464 /* for area above 1st 4K of SRAM/reg space */
_ipw_read_indirect(struct ipw_priv * priv,u32 addr,u8 * buf,int num)465 static void _ipw_read_indirect(struct ipw_priv *priv, u32 addr, u8 * buf,
466 int num)
467 {
468 u32 aligned_addr = addr & IPW_INDIRECT_ADDR_MASK; /* dword align */
469 u32 dif_len = addr - aligned_addr;
470 u32 i;
471
472 IPW_DEBUG_IO("addr = %i, buf = %p, num = %i\n", addr, buf, num);
473
474 if (num <= 0) {
475 return;
476 }
477
478 /* Read the first dword (or portion) byte by byte */
479 if (unlikely(dif_len)) {
480 _ipw_write32(priv, IPW_INDIRECT_ADDR, aligned_addr);
481 /* Start reading at aligned_addr + dif_len */
482 for (i = dif_len; ((i < 4) && (num > 0)); i++, num--)
483 *buf++ = _ipw_read8(priv, IPW_INDIRECT_DATA + i);
484 aligned_addr += 4;
485 }
486
487 /* Read all of the middle dwords as dwords, with auto-increment */
488 _ipw_write32(priv, IPW_AUTOINC_ADDR, aligned_addr);
489 for (; num >= 4; buf += 4, aligned_addr += 4, num -= 4)
490 *(u32 *) buf = _ipw_read32(priv, IPW_AUTOINC_DATA);
491
492 /* Read the last dword (or portion) byte by byte */
493 if (unlikely(num)) {
494 _ipw_write32(priv, IPW_INDIRECT_ADDR, aligned_addr);
495 for (i = 0; num > 0; i++, num--)
496 *buf++ = ipw_read8(priv, IPW_INDIRECT_DATA + i);
497 }
498 }
499
500 /* General purpose, no alignment requirement, iterative (multi-byte) write, */
501 /* for area above 1st 4K of SRAM/reg space */
_ipw_write_indirect(struct ipw_priv * priv,u32 addr,u8 * buf,int num)502 static void _ipw_write_indirect(struct ipw_priv *priv, u32 addr, u8 * buf,
503 int num)
504 {
505 u32 aligned_addr = addr & IPW_INDIRECT_ADDR_MASK; /* dword align */
506 u32 dif_len = addr - aligned_addr;
507 u32 i;
508
509 IPW_DEBUG_IO("addr = %i, buf = %p, num = %i\n", addr, buf, num);
510
511 if (num <= 0) {
512 return;
513 }
514
515 /* Write the first dword (or portion) byte by byte */
516 if (unlikely(dif_len)) {
517 _ipw_write32(priv, IPW_INDIRECT_ADDR, aligned_addr);
518 /* Start writing at aligned_addr + dif_len */
519 for (i = dif_len; ((i < 4) && (num > 0)); i++, num--, buf++)
520 _ipw_write8(priv, IPW_INDIRECT_DATA + i, *buf);
521 aligned_addr += 4;
522 }
523
524 /* Write all of the middle dwords as dwords, with auto-increment */
525 _ipw_write32(priv, IPW_AUTOINC_ADDR, aligned_addr);
526 for (; num >= 4; buf += 4, aligned_addr += 4, num -= 4)
527 _ipw_write32(priv, IPW_AUTOINC_DATA, *(u32 *) buf);
528
529 /* Write the last dword (or portion) byte by byte */
530 if (unlikely(num)) {
531 _ipw_write32(priv, IPW_INDIRECT_ADDR, aligned_addr);
532 for (i = 0; num > 0; i++, num--, buf++)
533 _ipw_write8(priv, IPW_INDIRECT_DATA + i, *buf);
534 }
535 }
536
537 /* General purpose, no alignment requirement, iterative (multi-byte) write, */
538 /* for 1st 4K of SRAM/regs space */
ipw_write_direct(struct ipw_priv * priv,u32 addr,void * buf,int num)539 static void ipw_write_direct(struct ipw_priv *priv, u32 addr, void *buf,
540 int num)
541 {
542 memcpy_toio((priv->hw_base + addr), buf, num);
543 }
544
545 /* Set bit(s) in low 4K of SRAM/regs */
ipw_set_bit(struct ipw_priv * priv,u32 reg,u32 mask)546 static inline void ipw_set_bit(struct ipw_priv *priv, u32 reg, u32 mask)
547 {
548 ipw_write32(priv, reg, ipw_read32(priv, reg) | mask);
549 }
550
551 /* Clear bit(s) in low 4K of SRAM/regs */
ipw_clear_bit(struct ipw_priv * priv,u32 reg,u32 mask)552 static inline void ipw_clear_bit(struct ipw_priv *priv, u32 reg, u32 mask)
553 {
554 ipw_write32(priv, reg, ipw_read32(priv, reg) & ~mask);
555 }
556
__ipw_enable_interrupts(struct ipw_priv * priv)557 static inline void __ipw_enable_interrupts(struct ipw_priv *priv)
558 {
559 if (priv->status & STATUS_INT_ENABLED)
560 return;
561 priv->status |= STATUS_INT_ENABLED;
562 ipw_write32(priv, IPW_INTA_MASK_R, IPW_INTA_MASK_ALL);
563 }
564
__ipw_disable_interrupts(struct ipw_priv * priv)565 static inline void __ipw_disable_interrupts(struct ipw_priv *priv)
566 {
567 if (!(priv->status & STATUS_INT_ENABLED))
568 return;
569 priv->status &= ~STATUS_INT_ENABLED;
570 ipw_write32(priv, IPW_INTA_MASK_R, ~IPW_INTA_MASK_ALL);
571 }
572
ipw_enable_interrupts(struct ipw_priv * priv)573 static inline void ipw_enable_interrupts(struct ipw_priv *priv)
574 {
575 unsigned long flags;
576
577 spin_lock_irqsave(&priv->irq_lock, flags);
578 __ipw_enable_interrupts(priv);
579 spin_unlock_irqrestore(&priv->irq_lock, flags);
580 }
581
ipw_disable_interrupts(struct ipw_priv * priv)582 static inline void ipw_disable_interrupts(struct ipw_priv *priv)
583 {
584 unsigned long flags;
585
586 spin_lock_irqsave(&priv->irq_lock, flags);
587 __ipw_disable_interrupts(priv);
588 spin_unlock_irqrestore(&priv->irq_lock, flags);
589 }
590
ipw_error_desc(u32 val)591 static char *ipw_error_desc(u32 val)
592 {
593 switch (val) {
594 case IPW_FW_ERROR_OK:
595 return "ERROR_OK";
596 case IPW_FW_ERROR_FAIL:
597 return "ERROR_FAIL";
598 case IPW_FW_ERROR_MEMORY_UNDERFLOW:
599 return "MEMORY_UNDERFLOW";
600 case IPW_FW_ERROR_MEMORY_OVERFLOW:
601 return "MEMORY_OVERFLOW";
602 case IPW_FW_ERROR_BAD_PARAM:
603 return "BAD_PARAM";
604 case IPW_FW_ERROR_BAD_CHECKSUM:
605 return "BAD_CHECKSUM";
606 case IPW_FW_ERROR_NMI_INTERRUPT:
607 return "NMI_INTERRUPT";
608 case IPW_FW_ERROR_BAD_DATABASE:
609 return "BAD_DATABASE";
610 case IPW_FW_ERROR_ALLOC_FAIL:
611 return "ALLOC_FAIL";
612 case IPW_FW_ERROR_DMA_UNDERRUN:
613 return "DMA_UNDERRUN";
614 case IPW_FW_ERROR_DMA_STATUS:
615 return "DMA_STATUS";
616 case IPW_FW_ERROR_DINO_ERROR:
617 return "DINO_ERROR";
618 case IPW_FW_ERROR_EEPROM_ERROR:
619 return "EEPROM_ERROR";
620 case IPW_FW_ERROR_SYSASSERT:
621 return "SYSASSERT";
622 case IPW_FW_ERROR_FATAL_ERROR:
623 return "FATAL_ERROR";
624 default:
625 return "UNKNOWN_ERROR";
626 }
627 }
628
ipw_dump_error_log(struct ipw_priv * priv,struct ipw_fw_error * error)629 static void ipw_dump_error_log(struct ipw_priv *priv,
630 struct ipw_fw_error *error)
631 {
632 u32 i;
633
634 if (!error) {
635 IPW_ERROR("Error allocating and capturing error log. "
636 "Nothing to dump.\n");
637 return;
638 }
639
640 IPW_ERROR("Start IPW Error Log Dump:\n");
641 IPW_ERROR("Status: 0x%08X, Config: %08X\n",
642 error->status, error->config);
643
644 for (i = 0; i < error->elem_len; i++)
645 IPW_ERROR("%s %i 0x%08x 0x%08x 0x%08x 0x%08x 0x%08x\n",
646 ipw_error_desc(error->elem[i].desc),
647 error->elem[i].time,
648 error->elem[i].blink1,
649 error->elem[i].blink2,
650 error->elem[i].link1,
651 error->elem[i].link2, error->elem[i].data);
652 for (i = 0; i < error->log_len; i++)
653 IPW_ERROR("%i\t0x%08x\t%i\n",
654 error->log[i].time,
655 error->log[i].data, error->log[i].event);
656 }
657
ipw_is_init(struct ipw_priv * priv)658 static inline int ipw_is_init(struct ipw_priv *priv)
659 {
660 return (priv->status & STATUS_INIT) ? 1 : 0;
661 }
662
ipw_get_ordinal(struct ipw_priv * priv,u32 ord,void * val,u32 * len)663 static int ipw_get_ordinal(struct ipw_priv *priv, u32 ord, void *val, u32 * len)
664 {
665 u32 addr, field_info, field_len, field_count, total_len;
666
667 IPW_DEBUG_ORD("ordinal = %i\n", ord);
668
669 if (!priv || !val || !len) {
670 IPW_DEBUG_ORD("Invalid argument\n");
671 return -EINVAL;
672 }
673
674 /* verify device ordinal tables have been initialized */
675 if (!priv->table0_addr || !priv->table1_addr || !priv->table2_addr) {
676 IPW_DEBUG_ORD("Access ordinals before initialization\n");
677 return -EINVAL;
678 }
679
680 switch (IPW_ORD_TABLE_ID_MASK & ord) {
681 case IPW_ORD_TABLE_0_MASK:
682 /*
683 * TABLE 0: Direct access to a table of 32 bit values
684 *
685 * This is a very simple table with the data directly
686 * read from the table
687 */
688
689 /* remove the table id from the ordinal */
690 ord &= IPW_ORD_TABLE_VALUE_MASK;
691
692 /* boundary check */
693 if (ord > priv->table0_len) {
694 IPW_DEBUG_ORD("ordinal value (%i) longer then "
695 "max (%i)\n", ord, priv->table0_len);
696 return -EINVAL;
697 }
698
699 /* verify we have enough room to store the value */
700 if (*len < sizeof(u32)) {
701 IPW_DEBUG_ORD("ordinal buffer length too small, "
702 "need %zd\n", sizeof(u32));
703 return -EINVAL;
704 }
705
706 IPW_DEBUG_ORD("Reading TABLE0[%i] from offset 0x%08x\n",
707 ord, priv->table0_addr + (ord << 2));
708
709 *len = sizeof(u32);
710 ord <<= 2;
711 *((u32 *) val) = ipw_read32(priv, priv->table0_addr + ord);
712 break;
713
714 case IPW_ORD_TABLE_1_MASK:
715 /*
716 * TABLE 1: Indirect access to a table of 32 bit values
717 *
718 * This is a fairly large table of u32 values each
719 * representing starting addr for the data (which is
720 * also a u32)
721 */
722
723 /* remove the table id from the ordinal */
724 ord &= IPW_ORD_TABLE_VALUE_MASK;
725
726 /* boundary check */
727 if (ord > priv->table1_len) {
728 IPW_DEBUG_ORD("ordinal value too long\n");
729 return -EINVAL;
730 }
731
732 /* verify we have enough room to store the value */
733 if (*len < sizeof(u32)) {
734 IPW_DEBUG_ORD("ordinal buffer length too small, "
735 "need %zd\n", sizeof(u32));
736 return -EINVAL;
737 }
738
739 *((u32 *) val) =
740 ipw_read_reg32(priv, (priv->table1_addr + (ord << 2)));
741 *len = sizeof(u32);
742 break;
743
744 case IPW_ORD_TABLE_2_MASK:
745 /*
746 * TABLE 2: Indirect access to a table of variable sized values
747 *
748 * This table consist of six values, each containing
749 * - dword containing the starting offset of the data
750 * - dword containing the lengh in the first 16bits
751 * and the count in the second 16bits
752 */
753
754 /* remove the table id from the ordinal */
755 ord &= IPW_ORD_TABLE_VALUE_MASK;
756
757 /* boundary check */
758 if (ord > priv->table2_len) {
759 IPW_DEBUG_ORD("ordinal value too long\n");
760 return -EINVAL;
761 }
762
763 /* get the address of statistic */
764 addr = ipw_read_reg32(priv, priv->table2_addr + (ord << 3));
765
766 /* get the second DW of statistics ;
767 * two 16-bit words - first is length, second is count */
768 field_info =
769 ipw_read_reg32(priv,
770 priv->table2_addr + (ord << 3) +
771 sizeof(u32));
772
773 /* get each entry length */
774 field_len = *((u16 *) & field_info);
775
776 /* get number of entries */
777 field_count = *(((u16 *) & field_info) + 1);
778
779 /* abort if not enough memory */
780 total_len = field_len * field_count;
781 if (total_len > *len) {
782 *len = total_len;
783 return -EINVAL;
784 }
785
786 *len = total_len;
787 if (!total_len)
788 return 0;
789
790 IPW_DEBUG_ORD("addr = 0x%08x, total_len = %i, "
791 "field_info = 0x%08x\n",
792 addr, total_len, field_info);
793 ipw_read_indirect(priv, addr, val, total_len);
794 break;
795
796 default:
797 IPW_DEBUG_ORD("Invalid ordinal!\n");
798 return -EINVAL;
799
800 }
801
802 return 0;
803 }
804
ipw_init_ordinals(struct ipw_priv * priv)805 static void ipw_init_ordinals(struct ipw_priv *priv)
806 {
807 priv->table0_addr = IPW_ORDINALS_TABLE_LOWER;
808 priv->table0_len = ipw_read32(priv, priv->table0_addr);
809
810 IPW_DEBUG_ORD("table 0 offset at 0x%08x, len = %i\n",
811 priv->table0_addr, priv->table0_len);
812
813 priv->table1_addr = ipw_read32(priv, IPW_ORDINALS_TABLE_1);
814 priv->table1_len = ipw_read_reg32(priv, priv->table1_addr);
815
816 IPW_DEBUG_ORD("table 1 offset at 0x%08x, len = %i\n",
817 priv->table1_addr, priv->table1_len);
818
819 priv->table2_addr = ipw_read32(priv, IPW_ORDINALS_TABLE_2);
820 priv->table2_len = ipw_read_reg32(priv, priv->table2_addr);
821 priv->table2_len &= 0x0000ffff; /* use first two bytes */
822
823 IPW_DEBUG_ORD("table 2 offset at 0x%08x, len = %i\n",
824 priv->table2_addr, priv->table2_len);
825
826 }
827
ipw_register_toggle(u32 reg)828 static u32 ipw_register_toggle(u32 reg)
829 {
830 reg &= ~IPW_START_STANDBY;
831 if (reg & IPW_GATE_ODMA)
832 reg &= ~IPW_GATE_ODMA;
833 if (reg & IPW_GATE_IDMA)
834 reg &= ~IPW_GATE_IDMA;
835 if (reg & IPW_GATE_ADMA)
836 reg &= ~IPW_GATE_ADMA;
837 return reg;
838 }
839
840 /*
841 * LED behavior:
842 * - On radio ON, turn on any LEDs that require to be on during start
843 * - On initialization, start unassociated blink
844 * - On association, disable unassociated blink
845 * - On disassociation, start unassociated blink
846 * - On radio OFF, turn off any LEDs started during radio on
847 *
848 */
849 #define LD_TIME_LINK_ON msecs_to_jiffies(300)
850 #define LD_TIME_LINK_OFF msecs_to_jiffies(2700)
851 #define LD_TIME_ACT_ON msecs_to_jiffies(250)
852
ipw_led_link_on(struct ipw_priv * priv)853 static void ipw_led_link_on(struct ipw_priv *priv)
854 {
855 unsigned long flags;
856 u32 led;
857
858 /* If configured to not use LEDs, or nic_type is 1,
859 * then we don't toggle a LINK led */
860 if (priv->config & CFG_NO_LED || priv->nic_type == EEPROM_NIC_TYPE_1)
861 return;
862
863 spin_lock_irqsave(&priv->lock, flags);
864
865 if (!(priv->status & STATUS_RF_KILL_MASK) &&
866 !(priv->status & STATUS_LED_LINK_ON)) {
867 IPW_DEBUG_LED("Link LED On\n");
868 led = ipw_read_reg32(priv, IPW_EVENT_REG);
869 led |= priv->led_association_on;
870
871 led = ipw_register_toggle(led);
872
873 IPW_DEBUG_LED("Reg: 0x%08X\n", led);
874 ipw_write_reg32(priv, IPW_EVENT_REG, led);
875
876 priv->status |= STATUS_LED_LINK_ON;
877
878 /* If we aren't associated, schedule turning the LED off */
879 if (!(priv->status & STATUS_ASSOCIATED))
880 schedule_delayed_work(&priv->led_link_off,
881 LD_TIME_LINK_ON);
882 }
883
884 spin_unlock_irqrestore(&priv->lock, flags);
885 }
886
ipw_bg_led_link_on(struct work_struct * work)887 static void ipw_bg_led_link_on(struct work_struct *work)
888 {
889 struct ipw_priv *priv =
890 container_of(work, struct ipw_priv, led_link_on.work);
891 mutex_lock(&priv->mutex);
892 ipw_led_link_on(priv);
893 mutex_unlock(&priv->mutex);
894 }
895
ipw_led_link_off(struct ipw_priv * priv)896 static void ipw_led_link_off(struct ipw_priv *priv)
897 {
898 unsigned long flags;
899 u32 led;
900
901 /* If configured not to use LEDs, or nic type is 1,
902 * then we don't goggle the LINK led. */
903 if (priv->config & CFG_NO_LED || priv->nic_type == EEPROM_NIC_TYPE_1)
904 return;
905
906 spin_lock_irqsave(&priv->lock, flags);
907
908 if (priv->status & STATUS_LED_LINK_ON) {
909 led = ipw_read_reg32(priv, IPW_EVENT_REG);
910 led &= priv->led_association_off;
911 led = ipw_register_toggle(led);
912
913 IPW_DEBUG_LED("Reg: 0x%08X\n", led);
914 ipw_write_reg32(priv, IPW_EVENT_REG, led);
915
916 IPW_DEBUG_LED("Link LED Off\n");
917
918 priv->status &= ~STATUS_LED_LINK_ON;
919
920 /* If we aren't associated and the radio is on, schedule
921 * turning the LED on (blink while unassociated) */
922 if (!(priv->status & STATUS_RF_KILL_MASK) &&
923 !(priv->status & STATUS_ASSOCIATED))
924 schedule_delayed_work(&priv->led_link_on,
925 LD_TIME_LINK_OFF);
926
927 }
928
929 spin_unlock_irqrestore(&priv->lock, flags);
930 }
931
ipw_bg_led_link_off(struct work_struct * work)932 static void ipw_bg_led_link_off(struct work_struct *work)
933 {
934 struct ipw_priv *priv =
935 container_of(work, struct ipw_priv, led_link_off.work);
936 mutex_lock(&priv->mutex);
937 ipw_led_link_off(priv);
938 mutex_unlock(&priv->mutex);
939 }
940
__ipw_led_activity_on(struct ipw_priv * priv)941 static void __ipw_led_activity_on(struct ipw_priv *priv)
942 {
943 u32 led;
944
945 if (priv->config & CFG_NO_LED)
946 return;
947
948 if (priv->status & STATUS_RF_KILL_MASK)
949 return;
950
951 if (!(priv->status & STATUS_LED_ACT_ON)) {
952 led = ipw_read_reg32(priv, IPW_EVENT_REG);
953 led |= priv->led_activity_on;
954
955 led = ipw_register_toggle(led);
956
957 IPW_DEBUG_LED("Reg: 0x%08X\n", led);
958 ipw_write_reg32(priv, IPW_EVENT_REG, led);
959
960 IPW_DEBUG_LED("Activity LED On\n");
961
962 priv->status |= STATUS_LED_ACT_ON;
963
964 cancel_delayed_work(&priv->led_act_off);
965 schedule_delayed_work(&priv->led_act_off, LD_TIME_ACT_ON);
966 } else {
967 /* Reschedule LED off for full time period */
968 cancel_delayed_work(&priv->led_act_off);
969 schedule_delayed_work(&priv->led_act_off, LD_TIME_ACT_ON);
970 }
971 }
972
973 #if 0
974 void ipw_led_activity_on(struct ipw_priv *priv)
975 {
976 unsigned long flags;
977 spin_lock_irqsave(&priv->lock, flags);
978 __ipw_led_activity_on(priv);
979 spin_unlock_irqrestore(&priv->lock, flags);
980 }
981 #endif /* 0 */
982
ipw_led_activity_off(struct ipw_priv * priv)983 static void ipw_led_activity_off(struct ipw_priv *priv)
984 {
985 unsigned long flags;
986 u32 led;
987
988 if (priv->config & CFG_NO_LED)
989 return;
990
991 spin_lock_irqsave(&priv->lock, flags);
992
993 if (priv->status & STATUS_LED_ACT_ON) {
994 led = ipw_read_reg32(priv, IPW_EVENT_REG);
995 led &= priv->led_activity_off;
996
997 led = ipw_register_toggle(led);
998
999 IPW_DEBUG_LED("Reg: 0x%08X\n", led);
1000 ipw_write_reg32(priv, IPW_EVENT_REG, led);
1001
1002 IPW_DEBUG_LED("Activity LED Off\n");
1003
1004 priv->status &= ~STATUS_LED_ACT_ON;
1005 }
1006
1007 spin_unlock_irqrestore(&priv->lock, flags);
1008 }
1009
ipw_bg_led_activity_off(struct work_struct * work)1010 static void ipw_bg_led_activity_off(struct work_struct *work)
1011 {
1012 struct ipw_priv *priv =
1013 container_of(work, struct ipw_priv, led_act_off.work);
1014 mutex_lock(&priv->mutex);
1015 ipw_led_activity_off(priv);
1016 mutex_unlock(&priv->mutex);
1017 }
1018
ipw_led_band_on(struct ipw_priv * priv)1019 static void ipw_led_band_on(struct ipw_priv *priv)
1020 {
1021 unsigned long flags;
1022 u32 led;
1023
1024 /* Only nic type 1 supports mode LEDs */
1025 if (priv->config & CFG_NO_LED ||
1026 priv->nic_type != EEPROM_NIC_TYPE_1 || !priv->assoc_network)
1027 return;
1028
1029 spin_lock_irqsave(&priv->lock, flags);
1030
1031 led = ipw_read_reg32(priv, IPW_EVENT_REG);
1032 if (priv->assoc_network->mode == IEEE_A) {
1033 led |= priv->led_ofdm_on;
1034 led &= priv->led_association_off;
1035 IPW_DEBUG_LED("Mode LED On: 802.11a\n");
1036 } else if (priv->assoc_network->mode == IEEE_G) {
1037 led |= priv->led_ofdm_on;
1038 led |= priv->led_association_on;
1039 IPW_DEBUG_LED("Mode LED On: 802.11g\n");
1040 } else {
1041 led &= priv->led_ofdm_off;
1042 led |= priv->led_association_on;
1043 IPW_DEBUG_LED("Mode LED On: 802.11b\n");
1044 }
1045
1046 led = ipw_register_toggle(led);
1047
1048 IPW_DEBUG_LED("Reg: 0x%08X\n", led);
1049 ipw_write_reg32(priv, IPW_EVENT_REG, led);
1050
1051 spin_unlock_irqrestore(&priv->lock, flags);
1052 }
1053
ipw_led_band_off(struct ipw_priv * priv)1054 static void ipw_led_band_off(struct ipw_priv *priv)
1055 {
1056 unsigned long flags;
1057 u32 led;
1058
1059 /* Only nic type 1 supports mode LEDs */
1060 if (priv->config & CFG_NO_LED || priv->nic_type != EEPROM_NIC_TYPE_1)
1061 return;
1062
1063 spin_lock_irqsave(&priv->lock, flags);
1064
1065 led = ipw_read_reg32(priv, IPW_EVENT_REG);
1066 led &= priv->led_ofdm_off;
1067 led &= priv->led_association_off;
1068
1069 led = ipw_register_toggle(led);
1070
1071 IPW_DEBUG_LED("Reg: 0x%08X\n", led);
1072 ipw_write_reg32(priv, IPW_EVENT_REG, led);
1073
1074 spin_unlock_irqrestore(&priv->lock, flags);
1075 }
1076
ipw_led_radio_on(struct ipw_priv * priv)1077 static void ipw_led_radio_on(struct ipw_priv *priv)
1078 {
1079 ipw_led_link_on(priv);
1080 }
1081
ipw_led_radio_off(struct ipw_priv * priv)1082 static void ipw_led_radio_off(struct ipw_priv *priv)
1083 {
1084 ipw_led_activity_off(priv);
1085 ipw_led_link_off(priv);
1086 }
1087
ipw_led_link_up(struct ipw_priv * priv)1088 static void ipw_led_link_up(struct ipw_priv *priv)
1089 {
1090 /* Set the Link Led on for all nic types */
1091 ipw_led_link_on(priv);
1092 }
1093
ipw_led_link_down(struct ipw_priv * priv)1094 static void ipw_led_link_down(struct ipw_priv *priv)
1095 {
1096 ipw_led_activity_off(priv);
1097 ipw_led_link_off(priv);
1098
1099 if (priv->status & STATUS_RF_KILL_MASK)
1100 ipw_led_radio_off(priv);
1101 }
1102
ipw_led_init(struct ipw_priv * priv)1103 static void ipw_led_init(struct ipw_priv *priv)
1104 {
1105 priv->nic_type = priv->eeprom[EEPROM_NIC_TYPE];
1106
1107 /* Set the default PINs for the link and activity leds */
1108 priv->led_activity_on = IPW_ACTIVITY_LED;
1109 priv->led_activity_off = ~(IPW_ACTIVITY_LED);
1110
1111 priv->led_association_on = IPW_ASSOCIATED_LED;
1112 priv->led_association_off = ~(IPW_ASSOCIATED_LED);
1113
1114 /* Set the default PINs for the OFDM leds */
1115 priv->led_ofdm_on = IPW_OFDM_LED;
1116 priv->led_ofdm_off = ~(IPW_OFDM_LED);
1117
1118 switch (priv->nic_type) {
1119 case EEPROM_NIC_TYPE_1:
1120 /* In this NIC type, the LEDs are reversed.... */
1121 priv->led_activity_on = IPW_ASSOCIATED_LED;
1122 priv->led_activity_off = ~(IPW_ASSOCIATED_LED);
1123 priv->led_association_on = IPW_ACTIVITY_LED;
1124 priv->led_association_off = ~(IPW_ACTIVITY_LED);
1125
1126 if (!(priv->config & CFG_NO_LED))
1127 ipw_led_band_on(priv);
1128
1129 /* And we don't blink link LEDs for this nic, so
1130 * just return here */
1131 return;
1132
1133 case EEPROM_NIC_TYPE_3:
1134 case EEPROM_NIC_TYPE_2:
1135 case EEPROM_NIC_TYPE_4:
1136 case EEPROM_NIC_TYPE_0:
1137 break;
1138
1139 default:
1140 IPW_DEBUG_INFO("Unknown NIC type from EEPROM: %d\n",
1141 priv->nic_type);
1142 priv->nic_type = EEPROM_NIC_TYPE_0;
1143 break;
1144 }
1145
1146 if (!(priv->config & CFG_NO_LED)) {
1147 if (priv->status & STATUS_ASSOCIATED)
1148 ipw_led_link_on(priv);
1149 else
1150 ipw_led_link_off(priv);
1151 }
1152 }
1153
ipw_led_shutdown(struct ipw_priv * priv)1154 static void ipw_led_shutdown(struct ipw_priv *priv)
1155 {
1156 ipw_led_activity_off(priv);
1157 ipw_led_link_off(priv);
1158 ipw_led_band_off(priv);
1159 cancel_delayed_work(&priv->led_link_on);
1160 cancel_delayed_work(&priv->led_link_off);
1161 cancel_delayed_work(&priv->led_act_off);
1162 }
1163
1164 /*
1165 * The following adds a new attribute to the sysfs representation
1166 * of this device driver (i.e. a new file in /sys/bus/pci/drivers/ipw/)
1167 * used for controlling the debug level.
1168 *
1169 * See the level definitions in ipw for details.
1170 */
debug_level_show(struct device_driver * d,char * buf)1171 static ssize_t debug_level_show(struct device_driver *d, char *buf)
1172 {
1173 return sprintf(buf, "0x%08X\n", ipw_debug_level);
1174 }
1175
debug_level_store(struct device_driver * d,const char * buf,size_t count)1176 static ssize_t debug_level_store(struct device_driver *d, const char *buf,
1177 size_t count)
1178 {
1179 unsigned long val;
1180
1181 int result = kstrtoul(buf, 0, &val);
1182
1183 if (result == -EINVAL)
1184 printk(KERN_INFO DRV_NAME
1185 ": %s is not in hex or decimal form.\n", buf);
1186 else if (result == -ERANGE)
1187 printk(KERN_INFO DRV_NAME
1188 ": %s has overflowed.\n", buf);
1189 else
1190 ipw_debug_level = val;
1191
1192 return count;
1193 }
1194 static DRIVER_ATTR_RW(debug_level);
1195
ipw_get_event_log_len(struct ipw_priv * priv)1196 static inline u32 ipw_get_event_log_len(struct ipw_priv *priv)
1197 {
1198 /* length = 1st dword in log */
1199 return ipw_read_reg32(priv, ipw_read32(priv, IPW_EVENT_LOG));
1200 }
1201
ipw_capture_event_log(struct ipw_priv * priv,u32 log_len,struct ipw_event * log)1202 static void ipw_capture_event_log(struct ipw_priv *priv,
1203 u32 log_len, struct ipw_event *log)
1204 {
1205 u32 base;
1206
1207 if (log_len) {
1208 base = ipw_read32(priv, IPW_EVENT_LOG);
1209 ipw_read_indirect(priv, base + sizeof(base) + sizeof(u32),
1210 (u8 *) log, sizeof(*log) * log_len);
1211 }
1212 }
1213
ipw_alloc_error_log(struct ipw_priv * priv)1214 static struct ipw_fw_error *ipw_alloc_error_log(struct ipw_priv *priv)
1215 {
1216 struct ipw_fw_error *error;
1217 u32 log_len = ipw_get_event_log_len(priv);
1218 u32 base = ipw_read32(priv, IPW_ERROR_LOG);
1219 u32 elem_len = ipw_read_reg32(priv, base);
1220
1221 error = kmalloc(size_add(struct_size(error, elem, elem_len),
1222 array_size(sizeof(*error->log), log_len)),
1223 GFP_ATOMIC);
1224 if (!error) {
1225 IPW_ERROR("Memory allocation for firmware error log "
1226 "failed.\n");
1227 return NULL;
1228 }
1229 error->jiffies = jiffies;
1230 error->status = priv->status;
1231 error->config = priv->config;
1232 error->elem_len = elem_len;
1233 error->log_len = log_len;
1234 error->log = (struct ipw_event *)(error->elem + elem_len);
1235
1236 ipw_capture_event_log(priv, log_len, error->log);
1237
1238 if (elem_len)
1239 ipw_read_indirect(priv, base + sizeof(base), (u8 *) error->elem,
1240 sizeof(*error->elem) * elem_len);
1241
1242 return error;
1243 }
1244
event_log_show(struct device * d,struct device_attribute * attr,char * buf)1245 static ssize_t event_log_show(struct device *d,
1246 struct device_attribute *attr, char *buf)
1247 {
1248 struct ipw_priv *priv = dev_get_drvdata(d);
1249 u32 log_len = ipw_get_event_log_len(priv);
1250 u32 log_size;
1251 struct ipw_event *log;
1252 u32 len = 0, i;
1253
1254 /* not using min() because of its strict type checking */
1255 log_size = PAGE_SIZE / sizeof(*log) > log_len ?
1256 sizeof(*log) * log_len : PAGE_SIZE;
1257 log = kzalloc(log_size, GFP_KERNEL);
1258 if (!log) {
1259 IPW_ERROR("Unable to allocate memory for log\n");
1260 return 0;
1261 }
1262 log_len = log_size / sizeof(*log);
1263 ipw_capture_event_log(priv, log_len, log);
1264
1265 len += scnprintf(buf + len, PAGE_SIZE - len, "%08X", log_len);
1266 for (i = 0; i < log_len; i++)
1267 len += scnprintf(buf + len, PAGE_SIZE - len,
1268 "\n%08X%08X%08X",
1269 log[i].time, log[i].event, log[i].data);
1270 len += scnprintf(buf + len, PAGE_SIZE - len, "\n");
1271 kfree(log);
1272 return len;
1273 }
1274
1275 static DEVICE_ATTR_RO(event_log);
1276
error_show(struct device * d,struct device_attribute * attr,char * buf)1277 static ssize_t error_show(struct device *d,
1278 struct device_attribute *attr, char *buf)
1279 {
1280 struct ipw_priv *priv = dev_get_drvdata(d);
1281 u32 len = 0, i;
1282 if (!priv->error)
1283 return 0;
1284 len += scnprintf(buf + len, PAGE_SIZE - len,
1285 "%08lX%08X%08X%08X",
1286 priv->error->jiffies,
1287 priv->error->status,
1288 priv->error->config, priv->error->elem_len);
1289 for (i = 0; i < priv->error->elem_len; i++)
1290 len += scnprintf(buf + len, PAGE_SIZE - len,
1291 "\n%08X%08X%08X%08X%08X%08X%08X",
1292 priv->error->elem[i].time,
1293 priv->error->elem[i].desc,
1294 priv->error->elem[i].blink1,
1295 priv->error->elem[i].blink2,
1296 priv->error->elem[i].link1,
1297 priv->error->elem[i].link2,
1298 priv->error->elem[i].data);
1299
1300 len += scnprintf(buf + len, PAGE_SIZE - len,
1301 "\n%08X", priv->error->log_len);
1302 for (i = 0; i < priv->error->log_len; i++)
1303 len += scnprintf(buf + len, PAGE_SIZE - len,
1304 "\n%08X%08X%08X",
1305 priv->error->log[i].time,
1306 priv->error->log[i].event,
1307 priv->error->log[i].data);
1308 len += scnprintf(buf + len, PAGE_SIZE - len, "\n");
1309 return len;
1310 }
1311
error_store(struct device * d,struct device_attribute * attr,const char * buf,size_t count)1312 static ssize_t error_store(struct device *d,
1313 struct device_attribute *attr,
1314 const char *buf, size_t count)
1315 {
1316 struct ipw_priv *priv = dev_get_drvdata(d);
1317
1318 kfree(priv->error);
1319 priv->error = NULL;
1320 return count;
1321 }
1322
1323 static DEVICE_ATTR_RW(error);
1324
cmd_log_show(struct device * d,struct device_attribute * attr,char * buf)1325 static ssize_t cmd_log_show(struct device *d,
1326 struct device_attribute *attr, char *buf)
1327 {
1328 struct ipw_priv *priv = dev_get_drvdata(d);
1329 u32 len = 0, i;
1330 if (!priv->cmdlog)
1331 return 0;
1332 for (i = (priv->cmdlog_pos + 1) % priv->cmdlog_len;
1333 (i != priv->cmdlog_pos) && (len < PAGE_SIZE);
1334 i = (i + 1) % priv->cmdlog_len) {
1335 len +=
1336 scnprintf(buf + len, PAGE_SIZE - len,
1337 "\n%08lX%08X%08X%08X\n", priv->cmdlog[i].jiffies,
1338 priv->cmdlog[i].retcode, priv->cmdlog[i].cmd.cmd,
1339 priv->cmdlog[i].cmd.len);
1340 len +=
1341 snprintk_buf(buf + len, PAGE_SIZE - len,
1342 (u8 *) priv->cmdlog[i].cmd.param,
1343 priv->cmdlog[i].cmd.len);
1344 len += scnprintf(buf + len, PAGE_SIZE - len, "\n");
1345 }
1346 len += scnprintf(buf + len, PAGE_SIZE - len, "\n");
1347 return len;
1348 }
1349
1350 static DEVICE_ATTR_RO(cmd_log);
1351
1352 #ifdef CONFIG_IPW2200_PROMISCUOUS
1353 static void ipw_prom_free(struct ipw_priv *priv);
1354 static int ipw_prom_alloc(struct ipw_priv *priv);
rtap_iface_store(struct device * d,struct device_attribute * attr,const char * buf,size_t count)1355 static ssize_t rtap_iface_store(struct device *d,
1356 struct device_attribute *attr,
1357 const char *buf, size_t count)
1358 {
1359 struct ipw_priv *priv = dev_get_drvdata(d);
1360 int rc = 0;
1361
1362 if (count < 1)
1363 return -EINVAL;
1364
1365 switch (buf[0]) {
1366 case '0':
1367 if (!rtap_iface)
1368 return count;
1369
1370 if (netif_running(priv->prom_net_dev)) {
1371 IPW_WARNING("Interface is up. Cannot unregister.\n");
1372 return count;
1373 }
1374
1375 ipw_prom_free(priv);
1376 rtap_iface = 0;
1377 break;
1378
1379 case '1':
1380 if (rtap_iface)
1381 return count;
1382
1383 rc = ipw_prom_alloc(priv);
1384 if (!rc)
1385 rtap_iface = 1;
1386 break;
1387
1388 default:
1389 return -EINVAL;
1390 }
1391
1392 if (rc) {
1393 IPW_ERROR("Failed to register promiscuous network "
1394 "device (error %d).\n", rc);
1395 }
1396
1397 return count;
1398 }
1399
rtap_iface_show(struct device * d,struct device_attribute * attr,char * buf)1400 static ssize_t rtap_iface_show(struct device *d,
1401 struct device_attribute *attr,
1402 char *buf)
1403 {
1404 struct ipw_priv *priv = dev_get_drvdata(d);
1405 if (rtap_iface)
1406 return sprintf(buf, "%s", priv->prom_net_dev->name);
1407 else {
1408 buf[0] = '-';
1409 buf[1] = '1';
1410 buf[2] = '\0';
1411 return 3;
1412 }
1413 }
1414
1415 static DEVICE_ATTR_ADMIN_RW(rtap_iface);
1416
rtap_filter_store(struct device * d,struct device_attribute * attr,const char * buf,size_t count)1417 static ssize_t rtap_filter_store(struct device *d,
1418 struct device_attribute *attr,
1419 const char *buf, size_t count)
1420 {
1421 struct ipw_priv *priv = dev_get_drvdata(d);
1422
1423 if (!priv->prom_priv) {
1424 IPW_ERROR("Attempting to set filter without "
1425 "rtap_iface enabled.\n");
1426 return -EPERM;
1427 }
1428
1429 priv->prom_priv->filter = simple_strtol(buf, NULL, 0);
1430
1431 IPW_DEBUG_INFO("Setting rtap filter to " BIT_FMT16 "\n",
1432 BIT_ARG16(priv->prom_priv->filter));
1433
1434 return count;
1435 }
1436
rtap_filter_show(struct device * d,struct device_attribute * attr,char * buf)1437 static ssize_t rtap_filter_show(struct device *d,
1438 struct device_attribute *attr,
1439 char *buf)
1440 {
1441 struct ipw_priv *priv = dev_get_drvdata(d);
1442 return sprintf(buf, "0x%04X",
1443 priv->prom_priv ? priv->prom_priv->filter : 0);
1444 }
1445
1446 static DEVICE_ATTR_ADMIN_RW(rtap_filter);
1447 #endif
1448
scan_age_show(struct device * d,struct device_attribute * attr,char * buf)1449 static ssize_t scan_age_show(struct device *d, struct device_attribute *attr,
1450 char *buf)
1451 {
1452 struct ipw_priv *priv = dev_get_drvdata(d);
1453 return sprintf(buf, "%d\n", priv->ieee->scan_age);
1454 }
1455
scan_age_store(struct device * d,struct device_attribute * attr,const char * buf,size_t count)1456 static ssize_t scan_age_store(struct device *d, struct device_attribute *attr,
1457 const char *buf, size_t count)
1458 {
1459 struct ipw_priv *priv = dev_get_drvdata(d);
1460 struct net_device *dev = priv->net_dev;
1461
1462 IPW_DEBUG_INFO("enter\n");
1463
1464 unsigned long val;
1465 int result = kstrtoul(buf, 0, &val);
1466
1467 if (result == -EINVAL || result == -ERANGE) {
1468 IPW_DEBUG_INFO("%s: user supplied invalid value.\n", dev->name);
1469 } else {
1470 priv->ieee->scan_age = val;
1471 IPW_DEBUG_INFO("set scan_age = %u\n", priv->ieee->scan_age);
1472 }
1473
1474 IPW_DEBUG_INFO("exit\n");
1475 return count;
1476 }
1477
1478 static DEVICE_ATTR_RW(scan_age);
1479
led_show(struct device * d,struct device_attribute * attr,char * buf)1480 static ssize_t led_show(struct device *d, struct device_attribute *attr,
1481 char *buf)
1482 {
1483 struct ipw_priv *priv = dev_get_drvdata(d);
1484 return sprintf(buf, "%d\n", (priv->config & CFG_NO_LED) ? 0 : 1);
1485 }
1486
led_store(struct device * d,struct device_attribute * attr,const char * buf,size_t count)1487 static ssize_t led_store(struct device *d, struct device_attribute *attr,
1488 const char *buf, size_t count)
1489 {
1490 struct ipw_priv *priv = dev_get_drvdata(d);
1491
1492 IPW_DEBUG_INFO("enter\n");
1493
1494 if (count == 0)
1495 return 0;
1496
1497 if (*buf == 0) {
1498 IPW_DEBUG_LED("Disabling LED control.\n");
1499 priv->config |= CFG_NO_LED;
1500 ipw_led_shutdown(priv);
1501 } else {
1502 IPW_DEBUG_LED("Enabling LED control.\n");
1503 priv->config &= ~CFG_NO_LED;
1504 ipw_led_init(priv);
1505 }
1506
1507 IPW_DEBUG_INFO("exit\n");
1508 return count;
1509 }
1510
1511 static DEVICE_ATTR_RW(led);
1512
status_show(struct device * d,struct device_attribute * attr,char * buf)1513 static ssize_t status_show(struct device *d,
1514 struct device_attribute *attr, char *buf)
1515 {
1516 struct ipw_priv *p = dev_get_drvdata(d);
1517 return sprintf(buf, "0x%08x\n", (int)p->status);
1518 }
1519
1520 static DEVICE_ATTR_RO(status);
1521
cfg_show(struct device * d,struct device_attribute * attr,char * buf)1522 static ssize_t cfg_show(struct device *d, struct device_attribute *attr,
1523 char *buf)
1524 {
1525 struct ipw_priv *p = dev_get_drvdata(d);
1526 return sprintf(buf, "0x%08x\n", (int)p->config);
1527 }
1528
1529 static DEVICE_ATTR_RO(cfg);
1530
nic_type_show(struct device * d,struct device_attribute * attr,char * buf)1531 static ssize_t nic_type_show(struct device *d,
1532 struct device_attribute *attr, char *buf)
1533 {
1534 struct ipw_priv *priv = dev_get_drvdata(d);
1535 return sprintf(buf, "TYPE: %d\n", priv->nic_type);
1536 }
1537
1538 static DEVICE_ATTR_RO(nic_type);
1539
ucode_version_show(struct device * d,struct device_attribute * attr,char * buf)1540 static ssize_t ucode_version_show(struct device *d,
1541 struct device_attribute *attr, char *buf)
1542 {
1543 u32 len = sizeof(u32), tmp = 0;
1544 struct ipw_priv *p = dev_get_drvdata(d);
1545
1546 if (ipw_get_ordinal(p, IPW_ORD_STAT_UCODE_VERSION, &tmp, &len))
1547 return 0;
1548
1549 return sprintf(buf, "0x%08x\n", tmp);
1550 }
1551
1552 static DEVICE_ATTR_RO(ucode_version);
1553
rtc_show(struct device * d,struct device_attribute * attr,char * buf)1554 static ssize_t rtc_show(struct device *d, struct device_attribute *attr,
1555 char *buf)
1556 {
1557 u32 len = sizeof(u32), tmp = 0;
1558 struct ipw_priv *p = dev_get_drvdata(d);
1559
1560 if (ipw_get_ordinal(p, IPW_ORD_STAT_RTC, &tmp, &len))
1561 return 0;
1562
1563 return sprintf(buf, "0x%08x\n", tmp);
1564 }
1565
1566 static DEVICE_ATTR_RO(rtc);
1567
1568 /*
1569 * Add a device attribute to view/control the delay between eeprom
1570 * operations.
1571 */
eeprom_delay_show(struct device * d,struct device_attribute * attr,char * buf)1572 static ssize_t eeprom_delay_show(struct device *d,
1573 struct device_attribute *attr, char *buf)
1574 {
1575 struct ipw_priv *p = dev_get_drvdata(d);
1576 int n = p->eeprom_delay;
1577 return sprintf(buf, "%i\n", n);
1578 }
eeprom_delay_store(struct device * d,struct device_attribute * attr,const char * buf,size_t count)1579 static ssize_t eeprom_delay_store(struct device *d,
1580 struct device_attribute *attr,
1581 const char *buf, size_t count)
1582 {
1583 struct ipw_priv *p = dev_get_drvdata(d);
1584 sscanf(buf, "%i", &p->eeprom_delay);
1585 return strnlen(buf, count);
1586 }
1587
1588 static DEVICE_ATTR_RW(eeprom_delay);
1589
command_event_reg_show(struct device * d,struct device_attribute * attr,char * buf)1590 static ssize_t command_event_reg_show(struct device *d,
1591 struct device_attribute *attr, char *buf)
1592 {
1593 u32 reg = 0;
1594 struct ipw_priv *p = dev_get_drvdata(d);
1595
1596 reg = ipw_read_reg32(p, IPW_INTERNAL_CMD_EVENT);
1597 return sprintf(buf, "0x%08x\n", reg);
1598 }
command_event_reg_store(struct device * d,struct device_attribute * attr,const char * buf,size_t count)1599 static ssize_t command_event_reg_store(struct device *d,
1600 struct device_attribute *attr,
1601 const char *buf, size_t count)
1602 {
1603 u32 reg;
1604 struct ipw_priv *p = dev_get_drvdata(d);
1605
1606 sscanf(buf, "%x", ®);
1607 ipw_write_reg32(p, IPW_INTERNAL_CMD_EVENT, reg);
1608 return strnlen(buf, count);
1609 }
1610
1611 static DEVICE_ATTR_RW(command_event_reg);
1612
mem_gpio_reg_show(struct device * d,struct device_attribute * attr,char * buf)1613 static ssize_t mem_gpio_reg_show(struct device *d,
1614 struct device_attribute *attr, char *buf)
1615 {
1616 u32 reg = 0;
1617 struct ipw_priv *p = dev_get_drvdata(d);
1618
1619 reg = ipw_read_reg32(p, 0x301100);
1620 return sprintf(buf, "0x%08x\n", reg);
1621 }
mem_gpio_reg_store(struct device * d,struct device_attribute * attr,const char * buf,size_t count)1622 static ssize_t mem_gpio_reg_store(struct device *d,
1623 struct device_attribute *attr,
1624 const char *buf, size_t count)
1625 {
1626 u32 reg;
1627 struct ipw_priv *p = dev_get_drvdata(d);
1628
1629 sscanf(buf, "%x", ®);
1630 ipw_write_reg32(p, 0x301100, reg);
1631 return strnlen(buf, count);
1632 }
1633
1634 static DEVICE_ATTR_RW(mem_gpio_reg);
1635
indirect_dword_show(struct device * d,struct device_attribute * attr,char * buf)1636 static ssize_t indirect_dword_show(struct device *d,
1637 struct device_attribute *attr, char *buf)
1638 {
1639 u32 reg = 0;
1640 struct ipw_priv *priv = dev_get_drvdata(d);
1641
1642 if (priv->status & STATUS_INDIRECT_DWORD)
1643 reg = ipw_read_reg32(priv, priv->indirect_dword);
1644 else
1645 reg = 0;
1646
1647 return sprintf(buf, "0x%08x\n", reg);
1648 }
indirect_dword_store(struct device * d,struct device_attribute * attr,const char * buf,size_t count)1649 static ssize_t indirect_dword_store(struct device *d,
1650 struct device_attribute *attr,
1651 const char *buf, size_t count)
1652 {
1653 struct ipw_priv *priv = dev_get_drvdata(d);
1654
1655 sscanf(buf, "%x", &priv->indirect_dword);
1656 priv->status |= STATUS_INDIRECT_DWORD;
1657 return strnlen(buf, count);
1658 }
1659
1660 static DEVICE_ATTR_RW(indirect_dword);
1661
indirect_byte_show(struct device * d,struct device_attribute * attr,char * buf)1662 static ssize_t indirect_byte_show(struct device *d,
1663 struct device_attribute *attr, char *buf)
1664 {
1665 u8 reg = 0;
1666 struct ipw_priv *priv = dev_get_drvdata(d);
1667
1668 if (priv->status & STATUS_INDIRECT_BYTE)
1669 reg = ipw_read_reg8(priv, priv->indirect_byte);
1670 else
1671 reg = 0;
1672
1673 return sprintf(buf, "0x%02x\n", reg);
1674 }
indirect_byte_store(struct device * d,struct device_attribute * attr,const char * buf,size_t count)1675 static ssize_t indirect_byte_store(struct device *d,
1676 struct device_attribute *attr,
1677 const char *buf, size_t count)
1678 {
1679 struct ipw_priv *priv = dev_get_drvdata(d);
1680
1681 sscanf(buf, "%x", &priv->indirect_byte);
1682 priv->status |= STATUS_INDIRECT_BYTE;
1683 return strnlen(buf, count);
1684 }
1685
1686 static DEVICE_ATTR_RW(indirect_byte);
1687
direct_dword_show(struct device * d,struct device_attribute * attr,char * buf)1688 static ssize_t direct_dword_show(struct device *d,
1689 struct device_attribute *attr, char *buf)
1690 {
1691 u32 reg = 0;
1692 struct ipw_priv *priv = dev_get_drvdata(d);
1693
1694 if (priv->status & STATUS_DIRECT_DWORD)
1695 reg = ipw_read32(priv, priv->direct_dword);
1696 else
1697 reg = 0;
1698
1699 return sprintf(buf, "0x%08x\n", reg);
1700 }
direct_dword_store(struct device * d,struct device_attribute * attr,const char * buf,size_t count)1701 static ssize_t direct_dword_store(struct device *d,
1702 struct device_attribute *attr,
1703 const char *buf, size_t count)
1704 {
1705 struct ipw_priv *priv = dev_get_drvdata(d);
1706
1707 sscanf(buf, "%x", &priv->direct_dword);
1708 priv->status |= STATUS_DIRECT_DWORD;
1709 return strnlen(buf, count);
1710 }
1711
1712 static DEVICE_ATTR_RW(direct_dword);
1713
rf_kill_active(struct ipw_priv * priv)1714 static int rf_kill_active(struct ipw_priv *priv)
1715 {
1716 if (0 == (ipw_read32(priv, 0x30) & 0x10000)) {
1717 priv->status |= STATUS_RF_KILL_HW;
1718 wiphy_rfkill_set_hw_state(priv->ieee->wdev.wiphy, true);
1719 } else {
1720 priv->status &= ~STATUS_RF_KILL_HW;
1721 wiphy_rfkill_set_hw_state(priv->ieee->wdev.wiphy, false);
1722 }
1723
1724 return (priv->status & STATUS_RF_KILL_HW) ? 1 : 0;
1725 }
1726
rf_kill_show(struct device * d,struct device_attribute * attr,char * buf)1727 static ssize_t rf_kill_show(struct device *d, struct device_attribute *attr,
1728 char *buf)
1729 {
1730 /* 0 - RF kill not enabled
1731 1 - SW based RF kill active (sysfs)
1732 2 - HW based RF kill active
1733 3 - Both HW and SW baed RF kill active */
1734 struct ipw_priv *priv = dev_get_drvdata(d);
1735 int val = ((priv->status & STATUS_RF_KILL_SW) ? 0x1 : 0x0) |
1736 (rf_kill_active(priv) ? 0x2 : 0x0);
1737 return sprintf(buf, "%i\n", val);
1738 }
1739
ipw_radio_kill_sw(struct ipw_priv * priv,int disable_radio)1740 static int ipw_radio_kill_sw(struct ipw_priv *priv, int disable_radio)
1741 {
1742 if ((disable_radio ? 1 : 0) ==
1743 ((priv->status & STATUS_RF_KILL_SW) ? 1 : 0))
1744 return 0;
1745
1746 IPW_DEBUG_RF_KILL("Manual SW RF Kill set to: RADIO %s\n",
1747 disable_radio ? "OFF" : "ON");
1748
1749 if (disable_radio) {
1750 priv->status |= STATUS_RF_KILL_SW;
1751
1752 cancel_delayed_work(&priv->request_scan);
1753 cancel_delayed_work(&priv->request_direct_scan);
1754 cancel_delayed_work(&priv->request_passive_scan);
1755 cancel_delayed_work(&priv->scan_event);
1756 schedule_work(&priv->down);
1757 } else {
1758 priv->status &= ~STATUS_RF_KILL_SW;
1759 if (rf_kill_active(priv)) {
1760 IPW_DEBUG_RF_KILL("Can not turn radio back on - "
1761 "disabled by HW switch\n");
1762 /* Make sure the RF_KILL check timer is running */
1763 cancel_delayed_work(&priv->rf_kill);
1764 schedule_delayed_work(&priv->rf_kill,
1765 round_jiffies_relative(2 * HZ));
1766 } else
1767 schedule_work(&priv->up);
1768 }
1769
1770 return 1;
1771 }
1772
rf_kill_store(struct device * d,struct device_attribute * attr,const char * buf,size_t count)1773 static ssize_t rf_kill_store(struct device *d, struct device_attribute *attr,
1774 const char *buf, size_t count)
1775 {
1776 struct ipw_priv *priv = dev_get_drvdata(d);
1777
1778 ipw_radio_kill_sw(priv, buf[0] == '1');
1779
1780 return count;
1781 }
1782
1783 static DEVICE_ATTR_RW(rf_kill);
1784
speed_scan_show(struct device * d,struct device_attribute * attr,char * buf)1785 static ssize_t speed_scan_show(struct device *d, struct device_attribute *attr,
1786 char *buf)
1787 {
1788 struct ipw_priv *priv = dev_get_drvdata(d);
1789 int pos = 0, len = 0;
1790 if (priv->config & CFG_SPEED_SCAN) {
1791 while (priv->speed_scan[pos] != 0)
1792 len += sprintf(&buf[len], "%d ",
1793 priv->speed_scan[pos++]);
1794 return len + sprintf(&buf[len], "\n");
1795 }
1796
1797 return sprintf(buf, "0\n");
1798 }
1799
speed_scan_store(struct device * d,struct device_attribute * attr,const char * buf,size_t count)1800 static ssize_t speed_scan_store(struct device *d, struct device_attribute *attr,
1801 const char *buf, size_t count)
1802 {
1803 struct ipw_priv *priv = dev_get_drvdata(d);
1804 int channel, pos = 0;
1805 const char *p = buf;
1806
1807 /* list of space separated channels to scan, optionally ending with 0 */
1808 while ((channel = simple_strtol(p, NULL, 0))) {
1809 if (pos == MAX_SPEED_SCAN - 1) {
1810 priv->speed_scan[pos] = 0;
1811 break;
1812 }
1813
1814 if (libipw_is_valid_channel(priv->ieee, channel))
1815 priv->speed_scan[pos++] = channel;
1816 else
1817 IPW_WARNING("Skipping invalid channel request: %d\n",
1818 channel);
1819 p = strchr(p, ' ');
1820 if (!p)
1821 break;
1822 while (*p == ' ' || *p == '\t')
1823 p++;
1824 }
1825
1826 if (pos == 0)
1827 priv->config &= ~CFG_SPEED_SCAN;
1828 else {
1829 priv->speed_scan_pos = 0;
1830 priv->config |= CFG_SPEED_SCAN;
1831 }
1832
1833 return count;
1834 }
1835
1836 static DEVICE_ATTR_RW(speed_scan);
1837
net_stats_show(struct device * d,struct device_attribute * attr,char * buf)1838 static ssize_t net_stats_show(struct device *d, struct device_attribute *attr,
1839 char *buf)
1840 {
1841 struct ipw_priv *priv = dev_get_drvdata(d);
1842 return sprintf(buf, "%c\n", (priv->config & CFG_NET_STATS) ? '1' : '0');
1843 }
1844
net_stats_store(struct device * d,struct device_attribute * attr,const char * buf,size_t count)1845 static ssize_t net_stats_store(struct device *d, struct device_attribute *attr,
1846 const char *buf, size_t count)
1847 {
1848 struct ipw_priv *priv = dev_get_drvdata(d);
1849 if (buf[0] == '1')
1850 priv->config |= CFG_NET_STATS;
1851 else
1852 priv->config &= ~CFG_NET_STATS;
1853
1854 return count;
1855 }
1856
1857 static DEVICE_ATTR_RW(net_stats);
1858
channels_show(struct device * d,struct device_attribute * attr,char * buf)1859 static ssize_t channels_show(struct device *d,
1860 struct device_attribute *attr,
1861 char *buf)
1862 {
1863 struct ipw_priv *priv = dev_get_drvdata(d);
1864 const struct libipw_geo *geo = libipw_get_geo(priv->ieee);
1865 int len = 0, i;
1866
1867 len = sprintf(&buf[len],
1868 "Displaying %d channels in 2.4Ghz band "
1869 "(802.11bg):\n", geo->bg_channels);
1870
1871 for (i = 0; i < geo->bg_channels; i++) {
1872 len += sprintf(&buf[len], "%d: BSS%s%s, %s, Band %s.\n",
1873 geo->bg[i].channel,
1874 geo->bg[i].flags & LIBIPW_CH_RADAR_DETECT ?
1875 " (radar spectrum)" : "",
1876 ((geo->bg[i].flags & LIBIPW_CH_NO_IBSS) ||
1877 (geo->bg[i].flags & LIBIPW_CH_RADAR_DETECT))
1878 ? "" : ", IBSS",
1879 geo->bg[i].flags & LIBIPW_CH_PASSIVE_ONLY ?
1880 "passive only" : "active/passive",
1881 geo->bg[i].flags & LIBIPW_CH_B_ONLY ?
1882 "B" : "B/G");
1883 }
1884
1885 len += sprintf(&buf[len],
1886 "Displaying %d channels in 5.2Ghz band "
1887 "(802.11a):\n", geo->a_channels);
1888 for (i = 0; i < geo->a_channels; i++) {
1889 len += sprintf(&buf[len], "%d: BSS%s%s, %s.\n",
1890 geo->a[i].channel,
1891 geo->a[i].flags & LIBIPW_CH_RADAR_DETECT ?
1892 " (radar spectrum)" : "",
1893 ((geo->a[i].flags & LIBIPW_CH_NO_IBSS) ||
1894 (geo->a[i].flags & LIBIPW_CH_RADAR_DETECT))
1895 ? "" : ", IBSS",
1896 geo->a[i].flags & LIBIPW_CH_PASSIVE_ONLY ?
1897 "passive only" : "active/passive");
1898 }
1899
1900 return len;
1901 }
1902
1903 static DEVICE_ATTR_ADMIN_RO(channels);
1904
notify_wx_assoc_event(struct ipw_priv * priv)1905 static void notify_wx_assoc_event(struct ipw_priv *priv)
1906 {
1907 union iwreq_data wrqu;
1908 wrqu.ap_addr.sa_family = ARPHRD_ETHER;
1909 if (priv->status & STATUS_ASSOCIATED)
1910 memcpy(wrqu.ap_addr.sa_data, priv->bssid, ETH_ALEN);
1911 else
1912 eth_zero_addr(wrqu.ap_addr.sa_data);
1913 wireless_send_event(priv->net_dev, SIOCGIWAP, &wrqu, NULL);
1914 }
1915
ipw_irq_tasklet(struct tasklet_struct * t)1916 static void ipw_irq_tasklet(struct tasklet_struct *t)
1917 {
1918 struct ipw_priv *priv = from_tasklet(priv, t, irq_tasklet);
1919 u32 inta, inta_mask, handled = 0;
1920 unsigned long flags;
1921
1922 spin_lock_irqsave(&priv->irq_lock, flags);
1923
1924 inta = ipw_read32(priv, IPW_INTA_RW);
1925 inta_mask = ipw_read32(priv, IPW_INTA_MASK_R);
1926
1927 if (inta == 0xFFFFFFFF) {
1928 /* Hardware disappeared */
1929 IPW_WARNING("TASKLET INTA == 0xFFFFFFFF\n");
1930 /* Only handle the cached INTA values */
1931 inta = 0;
1932 }
1933 inta &= (IPW_INTA_MASK_ALL & inta_mask);
1934
1935 /* Add any cached INTA values that need to be handled */
1936 inta |= priv->isr_inta;
1937
1938 spin_unlock_irqrestore(&priv->irq_lock, flags);
1939
1940 spin_lock_irqsave(&priv->lock, flags);
1941
1942 /* handle all the justifications for the interrupt */
1943 if (inta & IPW_INTA_BIT_RX_TRANSFER) {
1944 ipw_rx(priv);
1945 handled |= IPW_INTA_BIT_RX_TRANSFER;
1946 }
1947
1948 if (inta & IPW_INTA_BIT_TX_CMD_QUEUE) {
1949 IPW_DEBUG_HC("Command completed.\n");
1950 ipw_queue_tx_reclaim(priv, &priv->txq_cmd, -1);
1951 priv->status &= ~STATUS_HCMD_ACTIVE;
1952 wake_up_interruptible(&priv->wait_command_queue);
1953 handled |= IPW_INTA_BIT_TX_CMD_QUEUE;
1954 }
1955
1956 if (inta & IPW_INTA_BIT_TX_QUEUE_1) {
1957 IPW_DEBUG_TX("TX_QUEUE_1\n");
1958 ipw_queue_tx_reclaim(priv, &priv->txq[0], 0);
1959 handled |= IPW_INTA_BIT_TX_QUEUE_1;
1960 }
1961
1962 if (inta & IPW_INTA_BIT_TX_QUEUE_2) {
1963 IPW_DEBUG_TX("TX_QUEUE_2\n");
1964 ipw_queue_tx_reclaim(priv, &priv->txq[1], 1);
1965 handled |= IPW_INTA_BIT_TX_QUEUE_2;
1966 }
1967
1968 if (inta & IPW_INTA_BIT_TX_QUEUE_3) {
1969 IPW_DEBUG_TX("TX_QUEUE_3\n");
1970 ipw_queue_tx_reclaim(priv, &priv->txq[2], 2);
1971 handled |= IPW_INTA_BIT_TX_QUEUE_3;
1972 }
1973
1974 if (inta & IPW_INTA_BIT_TX_QUEUE_4) {
1975 IPW_DEBUG_TX("TX_QUEUE_4\n");
1976 ipw_queue_tx_reclaim(priv, &priv->txq[3], 3);
1977 handled |= IPW_INTA_BIT_TX_QUEUE_4;
1978 }
1979
1980 if (inta & IPW_INTA_BIT_STATUS_CHANGE) {
1981 IPW_WARNING("STATUS_CHANGE\n");
1982 handled |= IPW_INTA_BIT_STATUS_CHANGE;
1983 }
1984
1985 if (inta & IPW_INTA_BIT_BEACON_PERIOD_EXPIRED) {
1986 IPW_WARNING("TX_PERIOD_EXPIRED\n");
1987 handled |= IPW_INTA_BIT_BEACON_PERIOD_EXPIRED;
1988 }
1989
1990 if (inta & IPW_INTA_BIT_SLAVE_MODE_HOST_CMD_DONE) {
1991 IPW_WARNING("HOST_CMD_DONE\n");
1992 handled |= IPW_INTA_BIT_SLAVE_MODE_HOST_CMD_DONE;
1993 }
1994
1995 if (inta & IPW_INTA_BIT_FW_INITIALIZATION_DONE) {
1996 IPW_WARNING("FW_INITIALIZATION_DONE\n");
1997 handled |= IPW_INTA_BIT_FW_INITIALIZATION_DONE;
1998 }
1999
2000 if (inta & IPW_INTA_BIT_FW_CARD_DISABLE_PHY_OFF_DONE) {
2001 IPW_WARNING("PHY_OFF_DONE\n");
2002 handled |= IPW_INTA_BIT_FW_CARD_DISABLE_PHY_OFF_DONE;
2003 }
2004
2005 if (inta & IPW_INTA_BIT_RF_KILL_DONE) {
2006 IPW_DEBUG_RF_KILL("RF_KILL_DONE\n");
2007 priv->status |= STATUS_RF_KILL_HW;
2008 wiphy_rfkill_set_hw_state(priv->ieee->wdev.wiphy, true);
2009 wake_up_interruptible(&priv->wait_command_queue);
2010 priv->status &= ~(STATUS_ASSOCIATED | STATUS_ASSOCIATING);
2011 cancel_delayed_work(&priv->request_scan);
2012 cancel_delayed_work(&priv->request_direct_scan);
2013 cancel_delayed_work(&priv->request_passive_scan);
2014 cancel_delayed_work(&priv->scan_event);
2015 schedule_work(&priv->link_down);
2016 schedule_delayed_work(&priv->rf_kill, 2 * HZ);
2017 handled |= IPW_INTA_BIT_RF_KILL_DONE;
2018 }
2019
2020 if (inta & IPW_INTA_BIT_FATAL_ERROR) {
2021 IPW_WARNING("Firmware error detected. Restarting.\n");
2022 if (priv->error) {
2023 IPW_DEBUG_FW("Sysfs 'error' log already exists.\n");
2024 if (ipw_debug_level & IPW_DL_FW_ERRORS) {
2025 struct ipw_fw_error *error =
2026 ipw_alloc_error_log(priv);
2027 ipw_dump_error_log(priv, error);
2028 kfree(error);
2029 }
2030 } else {
2031 priv->error = ipw_alloc_error_log(priv);
2032 if (priv->error)
2033 IPW_DEBUG_FW("Sysfs 'error' log captured.\n");
2034 else
2035 IPW_DEBUG_FW("Error allocating sysfs 'error' "
2036 "log.\n");
2037 if (ipw_debug_level & IPW_DL_FW_ERRORS)
2038 ipw_dump_error_log(priv, priv->error);
2039 }
2040
2041 /* XXX: If hardware encryption is for WPA/WPA2,
2042 * we have to notify the supplicant. */
2043 if (priv->ieee->sec.encrypt) {
2044 priv->status &= ~STATUS_ASSOCIATED;
2045 notify_wx_assoc_event(priv);
2046 }
2047
2048 /* Keep the restart process from trying to send host
2049 * commands by clearing the INIT status bit */
2050 priv->status &= ~STATUS_INIT;
2051
2052 /* Cancel currently queued command. */
2053 priv->status &= ~STATUS_HCMD_ACTIVE;
2054 wake_up_interruptible(&priv->wait_command_queue);
2055
2056 schedule_work(&priv->adapter_restart);
2057 handled |= IPW_INTA_BIT_FATAL_ERROR;
2058 }
2059
2060 if (inta & IPW_INTA_BIT_PARITY_ERROR) {
2061 IPW_ERROR("Parity error\n");
2062 handled |= IPW_INTA_BIT_PARITY_ERROR;
2063 }
2064
2065 if (handled != inta) {
2066 IPW_ERROR("Unhandled INTA bits 0x%08x\n", inta & ~handled);
2067 }
2068
2069 spin_unlock_irqrestore(&priv->lock, flags);
2070
2071 /* enable all interrupts */
2072 ipw_enable_interrupts(priv);
2073 }
2074
2075 #define IPW_CMD(x) case IPW_CMD_ ## x : return #x
get_cmd_string(u8 cmd)2076 static char *get_cmd_string(u8 cmd)
2077 {
2078 switch (cmd) {
2079 IPW_CMD(HOST_COMPLETE);
2080 IPW_CMD(POWER_DOWN);
2081 IPW_CMD(SYSTEM_CONFIG);
2082 IPW_CMD(MULTICAST_ADDRESS);
2083 IPW_CMD(SSID);
2084 IPW_CMD(ADAPTER_ADDRESS);
2085 IPW_CMD(PORT_TYPE);
2086 IPW_CMD(RTS_THRESHOLD);
2087 IPW_CMD(FRAG_THRESHOLD);
2088 IPW_CMD(POWER_MODE);
2089 IPW_CMD(WEP_KEY);
2090 IPW_CMD(TGI_TX_KEY);
2091 IPW_CMD(SCAN_REQUEST);
2092 IPW_CMD(SCAN_REQUEST_EXT);
2093 IPW_CMD(ASSOCIATE);
2094 IPW_CMD(SUPPORTED_RATES);
2095 IPW_CMD(SCAN_ABORT);
2096 IPW_CMD(TX_FLUSH);
2097 IPW_CMD(QOS_PARAMETERS);
2098 IPW_CMD(DINO_CONFIG);
2099 IPW_CMD(RSN_CAPABILITIES);
2100 IPW_CMD(RX_KEY);
2101 IPW_CMD(CARD_DISABLE);
2102 IPW_CMD(SEED_NUMBER);
2103 IPW_CMD(TX_POWER);
2104 IPW_CMD(COUNTRY_INFO);
2105 IPW_CMD(AIRONET_INFO);
2106 IPW_CMD(AP_TX_POWER);
2107 IPW_CMD(CCKM_INFO);
2108 IPW_CMD(CCX_VER_INFO);
2109 IPW_CMD(SET_CALIBRATION);
2110 IPW_CMD(SENSITIVITY_CALIB);
2111 IPW_CMD(RETRY_LIMIT);
2112 IPW_CMD(IPW_PRE_POWER_DOWN);
2113 IPW_CMD(VAP_BEACON_TEMPLATE);
2114 IPW_CMD(VAP_DTIM_PERIOD);
2115 IPW_CMD(EXT_SUPPORTED_RATES);
2116 IPW_CMD(VAP_LOCAL_TX_PWR_CONSTRAINT);
2117 IPW_CMD(VAP_QUIET_INTERVALS);
2118 IPW_CMD(VAP_CHANNEL_SWITCH);
2119 IPW_CMD(VAP_MANDATORY_CHANNELS);
2120 IPW_CMD(VAP_CELL_PWR_LIMIT);
2121 IPW_CMD(VAP_CF_PARAM_SET);
2122 IPW_CMD(VAP_SET_BEACONING_STATE);
2123 IPW_CMD(MEASUREMENT);
2124 IPW_CMD(POWER_CAPABILITY);
2125 IPW_CMD(SUPPORTED_CHANNELS);
2126 IPW_CMD(TPC_REPORT);
2127 IPW_CMD(WME_INFO);
2128 IPW_CMD(PRODUCTION_COMMAND);
2129 default:
2130 return "UNKNOWN";
2131 }
2132 }
2133
2134 #define HOST_COMPLETE_TIMEOUT HZ
2135
__ipw_send_cmd(struct ipw_priv * priv,struct host_cmd * cmd)2136 static int __ipw_send_cmd(struct ipw_priv *priv, struct host_cmd *cmd)
2137 {
2138 int rc = 0;
2139 unsigned long flags;
2140 unsigned long now, end;
2141
2142 spin_lock_irqsave(&priv->lock, flags);
2143 if (priv->status & STATUS_HCMD_ACTIVE) {
2144 IPW_ERROR("Failed to send %s: Already sending a command.\n",
2145 get_cmd_string(cmd->cmd));
2146 spin_unlock_irqrestore(&priv->lock, flags);
2147 return -EAGAIN;
2148 }
2149
2150 priv->status |= STATUS_HCMD_ACTIVE;
2151
2152 if (priv->cmdlog) {
2153 priv->cmdlog[priv->cmdlog_pos].jiffies = jiffies;
2154 priv->cmdlog[priv->cmdlog_pos].cmd.cmd = cmd->cmd;
2155 priv->cmdlog[priv->cmdlog_pos].cmd.len = cmd->len;
2156 memcpy(priv->cmdlog[priv->cmdlog_pos].cmd.param, cmd->param,
2157 cmd->len);
2158 priv->cmdlog[priv->cmdlog_pos].retcode = -1;
2159 }
2160
2161 IPW_DEBUG_HC("%s command (#%d) %d bytes: 0x%08X\n",
2162 get_cmd_string(cmd->cmd), cmd->cmd, cmd->len,
2163 priv->status);
2164
2165 #ifndef DEBUG_CMD_WEP_KEY
2166 if (cmd->cmd == IPW_CMD_WEP_KEY)
2167 IPW_DEBUG_HC("WEP_KEY command masked out for secure.\n");
2168 else
2169 #endif
2170 printk_buf(IPW_DL_HOST_COMMAND, (u8 *) cmd->param, cmd->len);
2171
2172 rc = ipw_queue_tx_hcmd(priv, cmd->cmd, cmd->param, cmd->len, 0);
2173 if (rc) {
2174 priv->status &= ~STATUS_HCMD_ACTIVE;
2175 IPW_ERROR("Failed to send %s: Reason %d\n",
2176 get_cmd_string(cmd->cmd), rc);
2177 spin_unlock_irqrestore(&priv->lock, flags);
2178 goto exit;
2179 }
2180 spin_unlock_irqrestore(&priv->lock, flags);
2181
2182 now = jiffies;
2183 end = now + HOST_COMPLETE_TIMEOUT;
2184 again:
2185 rc = wait_event_interruptible_timeout(priv->wait_command_queue,
2186 !(priv->
2187 status & STATUS_HCMD_ACTIVE),
2188 end - now);
2189 if (rc < 0) {
2190 now = jiffies;
2191 if (time_before(now, end))
2192 goto again;
2193 rc = 0;
2194 }
2195
2196 if (rc == 0) {
2197 spin_lock_irqsave(&priv->lock, flags);
2198 if (priv->status & STATUS_HCMD_ACTIVE) {
2199 IPW_ERROR("Failed to send %s: Command timed out.\n",
2200 get_cmd_string(cmd->cmd));
2201 priv->status &= ~STATUS_HCMD_ACTIVE;
2202 spin_unlock_irqrestore(&priv->lock, flags);
2203 rc = -EIO;
2204 goto exit;
2205 }
2206 spin_unlock_irqrestore(&priv->lock, flags);
2207 } else
2208 rc = 0;
2209
2210 if (priv->status & STATUS_RF_KILL_HW) {
2211 IPW_ERROR("Failed to send %s: Aborted due to RF kill switch.\n",
2212 get_cmd_string(cmd->cmd));
2213 rc = -EIO;
2214 goto exit;
2215 }
2216
2217 exit:
2218 if (priv->cmdlog) {
2219 priv->cmdlog[priv->cmdlog_pos++].retcode = rc;
2220 priv->cmdlog_pos %= priv->cmdlog_len;
2221 }
2222 return rc;
2223 }
2224
ipw_send_cmd_simple(struct ipw_priv * priv,u8 command)2225 static int ipw_send_cmd_simple(struct ipw_priv *priv, u8 command)
2226 {
2227 struct host_cmd cmd = {
2228 .cmd = command,
2229 };
2230
2231 return __ipw_send_cmd(priv, &cmd);
2232 }
2233
ipw_send_cmd_pdu(struct ipw_priv * priv,u8 command,u8 len,const void * data)2234 static int ipw_send_cmd_pdu(struct ipw_priv *priv, u8 command, u8 len,
2235 const void *data)
2236 {
2237 struct host_cmd cmd = {
2238 .cmd = command,
2239 .len = len,
2240 .param = data,
2241 };
2242
2243 return __ipw_send_cmd(priv, &cmd);
2244 }
2245
ipw_send_host_complete(struct ipw_priv * priv)2246 static int ipw_send_host_complete(struct ipw_priv *priv)
2247 {
2248 if (!priv) {
2249 IPW_ERROR("Invalid args\n");
2250 return -1;
2251 }
2252
2253 return ipw_send_cmd_simple(priv, IPW_CMD_HOST_COMPLETE);
2254 }
2255
ipw_send_system_config(struct ipw_priv * priv)2256 static int ipw_send_system_config(struct ipw_priv *priv)
2257 {
2258 return ipw_send_cmd_pdu(priv, IPW_CMD_SYSTEM_CONFIG,
2259 sizeof(priv->sys_config),
2260 &priv->sys_config);
2261 }
2262
ipw_send_ssid(struct ipw_priv * priv,u8 * ssid,int len)2263 static int ipw_send_ssid(struct ipw_priv *priv, u8 * ssid, int len)
2264 {
2265 if (!priv || !ssid) {
2266 IPW_ERROR("Invalid args\n");
2267 return -1;
2268 }
2269
2270 return ipw_send_cmd_pdu(priv, IPW_CMD_SSID, min(len, IW_ESSID_MAX_SIZE),
2271 ssid);
2272 }
2273
ipw_send_adapter_address(struct ipw_priv * priv,const u8 * mac)2274 static int ipw_send_adapter_address(struct ipw_priv *priv, const u8 * mac)
2275 {
2276 if (!priv || !mac) {
2277 IPW_ERROR("Invalid args\n");
2278 return -1;
2279 }
2280
2281 IPW_DEBUG_INFO("%s: Setting MAC to %pM\n",
2282 priv->net_dev->name, mac);
2283
2284 return ipw_send_cmd_pdu(priv, IPW_CMD_ADAPTER_ADDRESS, ETH_ALEN, mac);
2285 }
2286
ipw_adapter_restart(void * adapter)2287 static void ipw_adapter_restart(void *adapter)
2288 {
2289 struct ipw_priv *priv = adapter;
2290
2291 if (priv->status & STATUS_RF_KILL_MASK)
2292 return;
2293
2294 ipw_down(priv);
2295
2296 if (priv->assoc_network &&
2297 (priv->assoc_network->capability & WLAN_CAPABILITY_IBSS))
2298 ipw_remove_current_network(priv);
2299
2300 if (ipw_up(priv)) {
2301 IPW_ERROR("Failed to up device\n");
2302 return;
2303 }
2304 }
2305
ipw_bg_adapter_restart(struct work_struct * work)2306 static void ipw_bg_adapter_restart(struct work_struct *work)
2307 {
2308 struct ipw_priv *priv =
2309 container_of(work, struct ipw_priv, adapter_restart);
2310 mutex_lock(&priv->mutex);
2311 ipw_adapter_restart(priv);
2312 mutex_unlock(&priv->mutex);
2313 }
2314
2315 static void ipw_abort_scan(struct ipw_priv *priv);
2316
2317 #define IPW_SCAN_CHECK_WATCHDOG (5 * HZ)
2318
ipw_scan_check(void * data)2319 static void ipw_scan_check(void *data)
2320 {
2321 struct ipw_priv *priv = data;
2322
2323 if (priv->status & STATUS_SCAN_ABORTING) {
2324 IPW_DEBUG_SCAN("Scan completion watchdog resetting "
2325 "adapter after (%dms).\n",
2326 jiffies_to_msecs(IPW_SCAN_CHECK_WATCHDOG));
2327 schedule_work(&priv->adapter_restart);
2328 } else if (priv->status & STATUS_SCANNING) {
2329 IPW_DEBUG_SCAN("Scan completion watchdog aborting scan "
2330 "after (%dms).\n",
2331 jiffies_to_msecs(IPW_SCAN_CHECK_WATCHDOG));
2332 ipw_abort_scan(priv);
2333 schedule_delayed_work(&priv->scan_check, HZ);
2334 }
2335 }
2336
ipw_bg_scan_check(struct work_struct * work)2337 static void ipw_bg_scan_check(struct work_struct *work)
2338 {
2339 struct ipw_priv *priv =
2340 container_of(work, struct ipw_priv, scan_check.work);
2341 mutex_lock(&priv->mutex);
2342 ipw_scan_check(priv);
2343 mutex_unlock(&priv->mutex);
2344 }
2345
ipw_send_scan_request_ext(struct ipw_priv * priv,struct ipw_scan_request_ext * request)2346 static int ipw_send_scan_request_ext(struct ipw_priv *priv,
2347 struct ipw_scan_request_ext *request)
2348 {
2349 return ipw_send_cmd_pdu(priv, IPW_CMD_SCAN_REQUEST_EXT,
2350 sizeof(*request), request);
2351 }
2352
ipw_send_scan_abort(struct ipw_priv * priv)2353 static int ipw_send_scan_abort(struct ipw_priv *priv)
2354 {
2355 if (!priv) {
2356 IPW_ERROR("Invalid args\n");
2357 return -1;
2358 }
2359
2360 return ipw_send_cmd_simple(priv, IPW_CMD_SCAN_ABORT);
2361 }
2362
ipw_set_sensitivity(struct ipw_priv * priv,u16 sens)2363 static int ipw_set_sensitivity(struct ipw_priv *priv, u16 sens)
2364 {
2365 struct ipw_sensitivity_calib calib = {
2366 .beacon_rssi_raw = cpu_to_le16(sens),
2367 };
2368
2369 return ipw_send_cmd_pdu(priv, IPW_CMD_SENSITIVITY_CALIB, sizeof(calib),
2370 &calib);
2371 }
2372
ipw_send_associate(struct ipw_priv * priv,struct ipw_associate * associate)2373 static int ipw_send_associate(struct ipw_priv *priv,
2374 struct ipw_associate *associate)
2375 {
2376 if (!priv || !associate) {
2377 IPW_ERROR("Invalid args\n");
2378 return -1;
2379 }
2380
2381 return ipw_send_cmd_pdu(priv, IPW_CMD_ASSOCIATE, sizeof(*associate),
2382 associate);
2383 }
2384
ipw_send_supported_rates(struct ipw_priv * priv,struct ipw_supported_rates * rates)2385 static int ipw_send_supported_rates(struct ipw_priv *priv,
2386 struct ipw_supported_rates *rates)
2387 {
2388 if (!priv || !rates) {
2389 IPW_ERROR("Invalid args\n");
2390 return -1;
2391 }
2392
2393 return ipw_send_cmd_pdu(priv, IPW_CMD_SUPPORTED_RATES, sizeof(*rates),
2394 rates);
2395 }
2396
ipw_set_random_seed(struct ipw_priv * priv)2397 static int ipw_set_random_seed(struct ipw_priv *priv)
2398 {
2399 u32 val;
2400
2401 if (!priv) {
2402 IPW_ERROR("Invalid args\n");
2403 return -1;
2404 }
2405
2406 get_random_bytes(&val, sizeof(val));
2407
2408 return ipw_send_cmd_pdu(priv, IPW_CMD_SEED_NUMBER, sizeof(val), &val);
2409 }
2410
ipw_send_card_disable(struct ipw_priv * priv,u32 phy_off)2411 static int ipw_send_card_disable(struct ipw_priv *priv, u32 phy_off)
2412 {
2413 __le32 v = cpu_to_le32(phy_off);
2414 if (!priv) {
2415 IPW_ERROR("Invalid args\n");
2416 return -1;
2417 }
2418
2419 return ipw_send_cmd_pdu(priv, IPW_CMD_CARD_DISABLE, sizeof(v), &v);
2420 }
2421
ipw_send_tx_power(struct ipw_priv * priv,struct ipw_tx_power * power)2422 static int ipw_send_tx_power(struct ipw_priv *priv, struct ipw_tx_power *power)
2423 {
2424 if (!priv || !power) {
2425 IPW_ERROR("Invalid args\n");
2426 return -1;
2427 }
2428
2429 return ipw_send_cmd_pdu(priv, IPW_CMD_TX_POWER, sizeof(*power), power);
2430 }
2431
ipw_set_tx_power(struct ipw_priv * priv)2432 static int ipw_set_tx_power(struct ipw_priv *priv)
2433 {
2434 const struct libipw_geo *geo = libipw_get_geo(priv->ieee);
2435 struct ipw_tx_power tx_power;
2436 s8 max_power;
2437 int i;
2438
2439 memset(&tx_power, 0, sizeof(tx_power));
2440
2441 /* configure device for 'G' band */
2442 tx_power.ieee_mode = IPW_G_MODE;
2443 tx_power.num_channels = geo->bg_channels;
2444 for (i = 0; i < geo->bg_channels; i++) {
2445 max_power = geo->bg[i].max_power;
2446 tx_power.channels_tx_power[i].channel_number =
2447 geo->bg[i].channel;
2448 tx_power.channels_tx_power[i].tx_power = max_power ?
2449 min(max_power, priv->tx_power) : priv->tx_power;
2450 }
2451 if (ipw_send_tx_power(priv, &tx_power))
2452 return -EIO;
2453
2454 /* configure device to also handle 'B' band */
2455 tx_power.ieee_mode = IPW_B_MODE;
2456 if (ipw_send_tx_power(priv, &tx_power))
2457 return -EIO;
2458
2459 /* configure device to also handle 'A' band */
2460 if (priv->ieee->abg_true) {
2461 tx_power.ieee_mode = IPW_A_MODE;
2462 tx_power.num_channels = geo->a_channels;
2463 for (i = 0; i < tx_power.num_channels; i++) {
2464 max_power = geo->a[i].max_power;
2465 tx_power.channels_tx_power[i].channel_number =
2466 geo->a[i].channel;
2467 tx_power.channels_tx_power[i].tx_power = max_power ?
2468 min(max_power, priv->tx_power) : priv->tx_power;
2469 }
2470 if (ipw_send_tx_power(priv, &tx_power))
2471 return -EIO;
2472 }
2473 return 0;
2474 }
2475
ipw_send_rts_threshold(struct ipw_priv * priv,u16 rts)2476 static int ipw_send_rts_threshold(struct ipw_priv *priv, u16 rts)
2477 {
2478 struct ipw_rts_threshold rts_threshold = {
2479 .rts_threshold = cpu_to_le16(rts),
2480 };
2481
2482 if (!priv) {
2483 IPW_ERROR("Invalid args\n");
2484 return -1;
2485 }
2486
2487 return ipw_send_cmd_pdu(priv, IPW_CMD_RTS_THRESHOLD,
2488 sizeof(rts_threshold), &rts_threshold);
2489 }
2490
ipw_send_frag_threshold(struct ipw_priv * priv,u16 frag)2491 static int ipw_send_frag_threshold(struct ipw_priv *priv, u16 frag)
2492 {
2493 struct ipw_frag_threshold frag_threshold = {
2494 .frag_threshold = cpu_to_le16(frag),
2495 };
2496
2497 if (!priv) {
2498 IPW_ERROR("Invalid args\n");
2499 return -1;
2500 }
2501
2502 return ipw_send_cmd_pdu(priv, IPW_CMD_FRAG_THRESHOLD,
2503 sizeof(frag_threshold), &frag_threshold);
2504 }
2505
ipw_send_power_mode(struct ipw_priv * priv,u32 mode)2506 static int ipw_send_power_mode(struct ipw_priv *priv, u32 mode)
2507 {
2508 __le32 param;
2509
2510 if (!priv) {
2511 IPW_ERROR("Invalid args\n");
2512 return -1;
2513 }
2514
2515 /* If on battery, set to 3, if AC set to CAM, else user
2516 * level */
2517 switch (mode) {
2518 case IPW_POWER_BATTERY:
2519 param = cpu_to_le32(IPW_POWER_INDEX_3);
2520 break;
2521 case IPW_POWER_AC:
2522 param = cpu_to_le32(IPW_POWER_MODE_CAM);
2523 break;
2524 default:
2525 param = cpu_to_le32(mode);
2526 break;
2527 }
2528
2529 return ipw_send_cmd_pdu(priv, IPW_CMD_POWER_MODE, sizeof(param),
2530 ¶m);
2531 }
2532
ipw_send_retry_limit(struct ipw_priv * priv,u8 slimit,u8 llimit)2533 static int ipw_send_retry_limit(struct ipw_priv *priv, u8 slimit, u8 llimit)
2534 {
2535 struct ipw_retry_limit retry_limit = {
2536 .short_retry_limit = slimit,
2537 .long_retry_limit = llimit
2538 };
2539
2540 if (!priv) {
2541 IPW_ERROR("Invalid args\n");
2542 return -1;
2543 }
2544
2545 return ipw_send_cmd_pdu(priv, IPW_CMD_RETRY_LIMIT, sizeof(retry_limit),
2546 &retry_limit);
2547 }
2548
2549 /*
2550 * The IPW device contains a Microwire compatible EEPROM that stores
2551 * various data like the MAC address. Usually the firmware has exclusive
2552 * access to the eeprom, but during device initialization (before the
2553 * device driver has sent the HostComplete command to the firmware) the
2554 * device driver has read access to the EEPROM by way of indirect addressing
2555 * through a couple of memory mapped registers.
2556 *
2557 * The following is a simplified implementation for pulling data out of the
2558 * eeprom, along with some helper functions to find information in
2559 * the per device private data's copy of the eeprom.
2560 *
2561 * NOTE: To better understand how these functions work (i.e what is a chip
2562 * select and why do have to keep driving the eeprom clock?), read
2563 * just about any data sheet for a Microwire compatible EEPROM.
2564 */
2565
2566 /* write a 32 bit value into the indirect accessor register */
eeprom_write_reg(struct ipw_priv * p,u32 data)2567 static inline void eeprom_write_reg(struct ipw_priv *p, u32 data)
2568 {
2569 ipw_write_reg32(p, FW_MEM_REG_EEPROM_ACCESS, data);
2570
2571 /* the eeprom requires some time to complete the operation */
2572 udelay(p->eeprom_delay);
2573 }
2574
2575 /* perform a chip select operation */
eeprom_cs(struct ipw_priv * priv)2576 static void eeprom_cs(struct ipw_priv *priv)
2577 {
2578 eeprom_write_reg(priv, 0);
2579 eeprom_write_reg(priv, EEPROM_BIT_CS);
2580 eeprom_write_reg(priv, EEPROM_BIT_CS | EEPROM_BIT_SK);
2581 eeprom_write_reg(priv, EEPROM_BIT_CS);
2582 }
2583
2584 /* perform a chip select operation */
eeprom_disable_cs(struct ipw_priv * priv)2585 static void eeprom_disable_cs(struct ipw_priv *priv)
2586 {
2587 eeprom_write_reg(priv, EEPROM_BIT_CS);
2588 eeprom_write_reg(priv, 0);
2589 eeprom_write_reg(priv, EEPROM_BIT_SK);
2590 }
2591
2592 /* push a single bit down to the eeprom */
eeprom_write_bit(struct ipw_priv * p,u8 bit)2593 static inline void eeprom_write_bit(struct ipw_priv *p, u8 bit)
2594 {
2595 int d = (bit ? EEPROM_BIT_DI : 0);
2596 eeprom_write_reg(p, EEPROM_BIT_CS | d);
2597 eeprom_write_reg(p, EEPROM_BIT_CS | d | EEPROM_BIT_SK);
2598 }
2599
2600 /* push an opcode followed by an address down to the eeprom */
eeprom_op(struct ipw_priv * priv,u8 op,u8 addr)2601 static void eeprom_op(struct ipw_priv *priv, u8 op, u8 addr)
2602 {
2603 int i;
2604
2605 eeprom_cs(priv);
2606 eeprom_write_bit(priv, 1);
2607 eeprom_write_bit(priv, op & 2);
2608 eeprom_write_bit(priv, op & 1);
2609 for (i = 7; i >= 0; i--) {
2610 eeprom_write_bit(priv, addr & (1 << i));
2611 }
2612 }
2613
2614 /* pull 16 bits off the eeprom, one bit at a time */
eeprom_read_u16(struct ipw_priv * priv,u8 addr)2615 static u16 eeprom_read_u16(struct ipw_priv *priv, u8 addr)
2616 {
2617 int i;
2618 u16 r = 0;
2619
2620 /* Send READ Opcode */
2621 eeprom_op(priv, EEPROM_CMD_READ, addr);
2622
2623 /* Send dummy bit */
2624 eeprom_write_reg(priv, EEPROM_BIT_CS);
2625
2626 /* Read the byte off the eeprom one bit at a time */
2627 for (i = 0; i < 16; i++) {
2628 u32 data = 0;
2629 eeprom_write_reg(priv, EEPROM_BIT_CS | EEPROM_BIT_SK);
2630 eeprom_write_reg(priv, EEPROM_BIT_CS);
2631 data = ipw_read_reg32(priv, FW_MEM_REG_EEPROM_ACCESS);
2632 r = (r << 1) | ((data & EEPROM_BIT_DO) ? 1 : 0);
2633 }
2634
2635 /* Send another dummy bit */
2636 eeprom_write_reg(priv, 0);
2637 eeprom_disable_cs(priv);
2638
2639 return r;
2640 }
2641
2642 /* helper function for pulling the mac address out of the private */
2643 /* data's copy of the eeprom data */
eeprom_parse_mac(struct ipw_priv * priv,u8 * mac)2644 static void eeprom_parse_mac(struct ipw_priv *priv, u8 * mac)
2645 {
2646 memcpy(mac, &priv->eeprom[EEPROM_MAC_ADDRESS], ETH_ALEN);
2647 }
2648
ipw_read_eeprom(struct ipw_priv * priv)2649 static void ipw_read_eeprom(struct ipw_priv *priv)
2650 {
2651 int i;
2652 __le16 *eeprom = (__le16 *) priv->eeprom;
2653
2654 IPW_DEBUG_TRACE(">>\n");
2655
2656 /* read entire contents of eeprom into private buffer */
2657 for (i = 0; i < 128; i++)
2658 eeprom[i] = cpu_to_le16(eeprom_read_u16(priv, (u8) i));
2659
2660 IPW_DEBUG_TRACE("<<\n");
2661 }
2662
2663 /*
2664 * Either the device driver (i.e. the host) or the firmware can
2665 * load eeprom data into the designated region in SRAM. If neither
2666 * happens then the FW will shutdown with a fatal error.
2667 *
2668 * In order to signal the FW to load the EEPROM, the EEPROM_LOAD_DISABLE
2669 * bit needs region of shared SRAM needs to be non-zero.
2670 */
ipw_eeprom_init_sram(struct ipw_priv * priv)2671 static void ipw_eeprom_init_sram(struct ipw_priv *priv)
2672 {
2673 int i;
2674
2675 IPW_DEBUG_TRACE(">>\n");
2676
2677 /*
2678 If the data looks correct, then copy it to our private
2679 copy. Otherwise let the firmware know to perform the operation
2680 on its own.
2681 */
2682 if (priv->eeprom[EEPROM_VERSION] != 0) {
2683 IPW_DEBUG_INFO("Writing EEPROM data into SRAM\n");
2684
2685 /* write the eeprom data to sram */
2686 for (i = 0; i < IPW_EEPROM_IMAGE_SIZE; i++)
2687 ipw_write8(priv, IPW_EEPROM_DATA + i, priv->eeprom[i]);
2688
2689 /* Do not load eeprom data on fatal error or suspend */
2690 ipw_write32(priv, IPW_EEPROM_LOAD_DISABLE, 0);
2691 } else {
2692 IPW_DEBUG_INFO("Enabling FW initialization of SRAM\n");
2693
2694 /* Load eeprom data on fatal error or suspend */
2695 ipw_write32(priv, IPW_EEPROM_LOAD_DISABLE, 1);
2696 }
2697
2698 IPW_DEBUG_TRACE("<<\n");
2699 }
2700
ipw_zero_memory(struct ipw_priv * priv,u32 start,u32 count)2701 static void ipw_zero_memory(struct ipw_priv *priv, u32 start, u32 count)
2702 {
2703 count >>= 2;
2704 if (!count)
2705 return;
2706 _ipw_write32(priv, IPW_AUTOINC_ADDR, start);
2707 while (count--)
2708 _ipw_write32(priv, IPW_AUTOINC_DATA, 0);
2709 }
2710
ipw_fw_dma_reset_command_blocks(struct ipw_priv * priv)2711 static inline void ipw_fw_dma_reset_command_blocks(struct ipw_priv *priv)
2712 {
2713 ipw_zero_memory(priv, IPW_SHARED_SRAM_DMA_CONTROL,
2714 CB_NUMBER_OF_ELEMENTS_SMALL *
2715 sizeof(struct command_block));
2716 }
2717
ipw_fw_dma_enable(struct ipw_priv * priv)2718 static int ipw_fw_dma_enable(struct ipw_priv *priv)
2719 { /* start dma engine but no transfers yet */
2720
2721 IPW_DEBUG_FW(">> :\n");
2722
2723 /* Start the dma */
2724 ipw_fw_dma_reset_command_blocks(priv);
2725
2726 /* Write CB base address */
2727 ipw_write_reg32(priv, IPW_DMA_I_CB_BASE, IPW_SHARED_SRAM_DMA_CONTROL);
2728
2729 IPW_DEBUG_FW("<< :\n");
2730 return 0;
2731 }
2732
ipw_fw_dma_abort(struct ipw_priv * priv)2733 static void ipw_fw_dma_abort(struct ipw_priv *priv)
2734 {
2735 u32 control = 0;
2736
2737 IPW_DEBUG_FW(">> :\n");
2738
2739 /* set the Stop and Abort bit */
2740 control = DMA_CONTROL_SMALL_CB_CONST_VALUE | DMA_CB_STOP_AND_ABORT;
2741 ipw_write_reg32(priv, IPW_DMA_I_DMA_CONTROL, control);
2742 priv->sram_desc.last_cb_index = 0;
2743
2744 IPW_DEBUG_FW("<<\n");
2745 }
2746
ipw_fw_dma_write_command_block(struct ipw_priv * priv,int index,struct command_block * cb)2747 static int ipw_fw_dma_write_command_block(struct ipw_priv *priv, int index,
2748 struct command_block *cb)
2749 {
2750 u32 address =
2751 IPW_SHARED_SRAM_DMA_CONTROL +
2752 (sizeof(struct command_block) * index);
2753 IPW_DEBUG_FW(">> :\n");
2754
2755 ipw_write_indirect(priv, address, (u8 *) cb,
2756 (int)sizeof(struct command_block));
2757
2758 IPW_DEBUG_FW("<< :\n");
2759 return 0;
2760
2761 }
2762
ipw_fw_dma_kick(struct ipw_priv * priv)2763 static int ipw_fw_dma_kick(struct ipw_priv *priv)
2764 {
2765 u32 control = 0;
2766 u32 index = 0;
2767
2768 IPW_DEBUG_FW(">> :\n");
2769
2770 for (index = 0; index < priv->sram_desc.last_cb_index; index++)
2771 ipw_fw_dma_write_command_block(priv, index,
2772 &priv->sram_desc.cb_list[index]);
2773
2774 /* Enable the DMA in the CSR register */
2775 ipw_clear_bit(priv, IPW_RESET_REG,
2776 IPW_RESET_REG_MASTER_DISABLED |
2777 IPW_RESET_REG_STOP_MASTER);
2778
2779 /* Set the Start bit. */
2780 control = DMA_CONTROL_SMALL_CB_CONST_VALUE | DMA_CB_START;
2781 ipw_write_reg32(priv, IPW_DMA_I_DMA_CONTROL, control);
2782
2783 IPW_DEBUG_FW("<< :\n");
2784 return 0;
2785 }
2786
ipw_fw_dma_dump_command_block(struct ipw_priv * priv)2787 static void ipw_fw_dma_dump_command_block(struct ipw_priv *priv)
2788 {
2789 u32 address;
2790 u32 register_value = 0;
2791 u32 cb_fields_address = 0;
2792
2793 IPW_DEBUG_FW(">> :\n");
2794 address = ipw_read_reg32(priv, IPW_DMA_I_CURRENT_CB);
2795 IPW_DEBUG_FW_INFO("Current CB is 0x%x\n", address);
2796
2797 /* Read the DMA Controlor register */
2798 register_value = ipw_read_reg32(priv, IPW_DMA_I_DMA_CONTROL);
2799 IPW_DEBUG_FW_INFO("IPW_DMA_I_DMA_CONTROL is 0x%x\n", register_value);
2800
2801 /* Print the CB values */
2802 cb_fields_address = address;
2803 register_value = ipw_read_reg32(priv, cb_fields_address);
2804 IPW_DEBUG_FW_INFO("Current CB Control Field is 0x%x\n", register_value);
2805
2806 cb_fields_address += sizeof(u32);
2807 register_value = ipw_read_reg32(priv, cb_fields_address);
2808 IPW_DEBUG_FW_INFO("Current CB Source Field is 0x%x\n", register_value);
2809
2810 cb_fields_address += sizeof(u32);
2811 register_value = ipw_read_reg32(priv, cb_fields_address);
2812 IPW_DEBUG_FW_INFO("Current CB Destination Field is 0x%x\n",
2813 register_value);
2814
2815 cb_fields_address += sizeof(u32);
2816 register_value = ipw_read_reg32(priv, cb_fields_address);
2817 IPW_DEBUG_FW_INFO("Current CB Status Field is 0x%x\n", register_value);
2818
2819 IPW_DEBUG_FW(">> :\n");
2820 }
2821
ipw_fw_dma_command_block_index(struct ipw_priv * priv)2822 static int ipw_fw_dma_command_block_index(struct ipw_priv *priv)
2823 {
2824 u32 current_cb_address = 0;
2825 u32 current_cb_index = 0;
2826
2827 IPW_DEBUG_FW("<< :\n");
2828 current_cb_address = ipw_read_reg32(priv, IPW_DMA_I_CURRENT_CB);
2829
2830 current_cb_index = (current_cb_address - IPW_SHARED_SRAM_DMA_CONTROL) /
2831 sizeof(struct command_block);
2832
2833 IPW_DEBUG_FW_INFO("Current CB index 0x%x address = 0x%X\n",
2834 current_cb_index, current_cb_address);
2835
2836 IPW_DEBUG_FW(">> :\n");
2837 return current_cb_index;
2838
2839 }
2840
ipw_fw_dma_add_command_block(struct ipw_priv * priv,u32 src_address,u32 dest_address,u32 length,int interrupt_enabled,int is_last)2841 static int ipw_fw_dma_add_command_block(struct ipw_priv *priv,
2842 u32 src_address,
2843 u32 dest_address,
2844 u32 length,
2845 int interrupt_enabled, int is_last)
2846 {
2847
2848 u32 control = CB_VALID | CB_SRC_LE | CB_DEST_LE | CB_SRC_AUTOINC |
2849 CB_SRC_IO_GATED | CB_DEST_AUTOINC | CB_SRC_SIZE_LONG |
2850 CB_DEST_SIZE_LONG;
2851 struct command_block *cb;
2852 u32 last_cb_element = 0;
2853
2854 IPW_DEBUG_FW_INFO("src_address=0x%x dest_address=0x%x length=0x%x\n",
2855 src_address, dest_address, length);
2856
2857 if (priv->sram_desc.last_cb_index >= CB_NUMBER_OF_ELEMENTS_SMALL)
2858 return -1;
2859
2860 last_cb_element = priv->sram_desc.last_cb_index;
2861 cb = &priv->sram_desc.cb_list[last_cb_element];
2862 priv->sram_desc.last_cb_index++;
2863
2864 /* Calculate the new CB control word */
2865 if (interrupt_enabled)
2866 control |= CB_INT_ENABLED;
2867
2868 if (is_last)
2869 control |= CB_LAST_VALID;
2870
2871 control |= length;
2872
2873 /* Calculate the CB Element's checksum value */
2874 cb->status = control ^ src_address ^ dest_address;
2875
2876 /* Copy the Source and Destination addresses */
2877 cb->dest_addr = dest_address;
2878 cb->source_addr = src_address;
2879
2880 /* Copy the Control Word last */
2881 cb->control = control;
2882
2883 return 0;
2884 }
2885
ipw_fw_dma_add_buffer(struct ipw_priv * priv,dma_addr_t * src_address,int nr,u32 dest_address,u32 len)2886 static int ipw_fw_dma_add_buffer(struct ipw_priv *priv, dma_addr_t *src_address,
2887 int nr, u32 dest_address, u32 len)
2888 {
2889 int ret, i;
2890 u32 size;
2891
2892 IPW_DEBUG_FW(">>\n");
2893 IPW_DEBUG_FW_INFO("nr=%d dest_address=0x%x len=0x%x\n",
2894 nr, dest_address, len);
2895
2896 for (i = 0; i < nr; i++) {
2897 size = min_t(u32, len - i * CB_MAX_LENGTH, CB_MAX_LENGTH);
2898 ret = ipw_fw_dma_add_command_block(priv, src_address[i],
2899 dest_address +
2900 i * CB_MAX_LENGTH, size,
2901 0, 0);
2902 if (ret) {
2903 IPW_DEBUG_FW_INFO(": Failed\n");
2904 return -1;
2905 } else
2906 IPW_DEBUG_FW_INFO(": Added new cb\n");
2907 }
2908
2909 IPW_DEBUG_FW("<<\n");
2910 return 0;
2911 }
2912
ipw_fw_dma_wait(struct ipw_priv * priv)2913 static int ipw_fw_dma_wait(struct ipw_priv *priv)
2914 {
2915 u32 current_index = 0, previous_index;
2916 u32 watchdog = 0;
2917
2918 IPW_DEBUG_FW(">> :\n");
2919
2920 current_index = ipw_fw_dma_command_block_index(priv);
2921 IPW_DEBUG_FW_INFO("sram_desc.last_cb_index:0x%08X\n",
2922 (int)priv->sram_desc.last_cb_index);
2923
2924 while (current_index < priv->sram_desc.last_cb_index) {
2925 udelay(50);
2926 previous_index = current_index;
2927 current_index = ipw_fw_dma_command_block_index(priv);
2928
2929 if (previous_index < current_index) {
2930 watchdog = 0;
2931 continue;
2932 }
2933 if (++watchdog > 400) {
2934 IPW_DEBUG_FW_INFO("Timeout\n");
2935 ipw_fw_dma_dump_command_block(priv);
2936 ipw_fw_dma_abort(priv);
2937 return -1;
2938 }
2939 }
2940
2941 ipw_fw_dma_abort(priv);
2942
2943 /*Disable the DMA in the CSR register */
2944 ipw_set_bit(priv, IPW_RESET_REG,
2945 IPW_RESET_REG_MASTER_DISABLED | IPW_RESET_REG_STOP_MASTER);
2946
2947 IPW_DEBUG_FW("<< dmaWaitSync\n");
2948 return 0;
2949 }
2950
ipw_remove_current_network(struct ipw_priv * priv)2951 static void ipw_remove_current_network(struct ipw_priv *priv)
2952 {
2953 struct list_head *element, *safe;
2954 struct libipw_network *network = NULL;
2955 unsigned long flags;
2956
2957 spin_lock_irqsave(&priv->ieee->lock, flags);
2958 list_for_each_safe(element, safe, &priv->ieee->network_list) {
2959 network = list_entry(element, struct libipw_network, list);
2960 if (ether_addr_equal(network->bssid, priv->bssid)) {
2961 list_del(element);
2962 list_add_tail(&network->list,
2963 &priv->ieee->network_free_list);
2964 }
2965 }
2966 spin_unlock_irqrestore(&priv->ieee->lock, flags);
2967 }
2968
2969 /* timeout in msec, attempted in 10-msec quanta */
ipw_poll_bit(struct ipw_priv * priv,u32 addr,u32 mask,int timeout)2970 static int ipw_poll_bit(struct ipw_priv *priv, u32 addr, u32 mask,
2971 int timeout)
2972 {
2973 int i = 0;
2974
2975 do {
2976 if ((ipw_read32(priv, addr) & mask) == mask)
2977 return i;
2978 mdelay(10);
2979 i += 10;
2980 } while (i < timeout);
2981
2982 return -ETIME;
2983 }
2984
2985 /* These functions load the firmware and micro code for the operation of
2986 * the ipw hardware. It assumes the buffer has all the bits for the
2987 * image and the caller is handling the memory allocation and clean up.
2988 */
2989
ipw_stop_master(struct ipw_priv * priv)2990 static int ipw_stop_master(struct ipw_priv *priv)
2991 {
2992 int rc;
2993
2994 IPW_DEBUG_TRACE(">>\n");
2995 /* stop master. typical delay - 0 */
2996 ipw_set_bit(priv, IPW_RESET_REG, IPW_RESET_REG_STOP_MASTER);
2997
2998 /* timeout is in msec, polled in 10-msec quanta */
2999 rc = ipw_poll_bit(priv, IPW_RESET_REG,
3000 IPW_RESET_REG_MASTER_DISABLED, 100);
3001 if (rc < 0) {
3002 IPW_ERROR("wait for stop master failed after 100ms\n");
3003 return -1;
3004 }
3005
3006 IPW_DEBUG_INFO("stop master %dms\n", rc);
3007
3008 return rc;
3009 }
3010
ipw_arc_release(struct ipw_priv * priv)3011 static void ipw_arc_release(struct ipw_priv *priv)
3012 {
3013 IPW_DEBUG_TRACE(">>\n");
3014 mdelay(5);
3015
3016 ipw_clear_bit(priv, IPW_RESET_REG, CBD_RESET_REG_PRINCETON_RESET);
3017
3018 /* no one knows timing, for safety add some delay */
3019 mdelay(5);
3020 }
3021
3022 struct fw_chunk {
3023 __le32 address;
3024 __le32 length;
3025 };
3026
ipw_load_ucode(struct ipw_priv * priv,u8 * data,size_t len)3027 static int ipw_load_ucode(struct ipw_priv *priv, u8 * data, size_t len)
3028 {
3029 int rc = 0, i, addr;
3030 u8 cr = 0;
3031 __le16 *image;
3032
3033 image = (__le16 *) data;
3034
3035 IPW_DEBUG_TRACE(">>\n");
3036
3037 rc = ipw_stop_master(priv);
3038
3039 if (rc < 0)
3040 return rc;
3041
3042 for (addr = IPW_SHARED_LOWER_BOUND;
3043 addr < IPW_REGISTER_DOMAIN1_END; addr += 4) {
3044 ipw_write32(priv, addr, 0);
3045 }
3046
3047 /* no ucode (yet) */
3048 memset(&priv->dino_alive, 0, sizeof(priv->dino_alive));
3049 /* destroy DMA queues */
3050 /* reset sequence */
3051
3052 ipw_write_reg32(priv, IPW_MEM_HALT_AND_RESET, IPW_BIT_HALT_RESET_ON);
3053 ipw_arc_release(priv);
3054 ipw_write_reg32(priv, IPW_MEM_HALT_AND_RESET, IPW_BIT_HALT_RESET_OFF);
3055 mdelay(1);
3056
3057 /* reset PHY */
3058 ipw_write_reg32(priv, IPW_INTERNAL_CMD_EVENT, IPW_BASEBAND_POWER_DOWN);
3059 mdelay(1);
3060
3061 ipw_write_reg32(priv, IPW_INTERNAL_CMD_EVENT, 0);
3062 mdelay(1);
3063
3064 /* enable ucode store */
3065 ipw_write_reg8(priv, IPW_BASEBAND_CONTROL_STATUS, 0x0);
3066 ipw_write_reg8(priv, IPW_BASEBAND_CONTROL_STATUS, DINO_ENABLE_CS);
3067 mdelay(1);
3068
3069 /* write ucode */
3070 /*
3071 * @bug
3072 * Do NOT set indirect address register once and then
3073 * store data to indirect data register in the loop.
3074 * It seems very reasonable, but in this case DINO do not
3075 * accept ucode. It is essential to set address each time.
3076 */
3077 /* load new ipw uCode */
3078 for (i = 0; i < len / 2; i++)
3079 ipw_write_reg16(priv, IPW_BASEBAND_CONTROL_STORE,
3080 le16_to_cpu(image[i]));
3081
3082 /* enable DINO */
3083 ipw_write_reg8(priv, IPW_BASEBAND_CONTROL_STATUS, 0);
3084 ipw_write_reg8(priv, IPW_BASEBAND_CONTROL_STATUS, DINO_ENABLE_SYSTEM);
3085
3086 /* this is where the igx / win driver deveates from the VAP driver. */
3087
3088 /* wait for alive response */
3089 for (i = 0; i < 100; i++) {
3090 /* poll for incoming data */
3091 cr = ipw_read_reg8(priv, IPW_BASEBAND_CONTROL_STATUS);
3092 if (cr & DINO_RXFIFO_DATA)
3093 break;
3094 mdelay(1);
3095 }
3096
3097 if (cr & DINO_RXFIFO_DATA) {
3098 /* alive_command_responce size is NOT multiple of 4 */
3099 __le32 response_buffer[(sizeof(priv->dino_alive) + 3) / 4];
3100
3101 for (i = 0; i < ARRAY_SIZE(response_buffer); i++)
3102 response_buffer[i] =
3103 cpu_to_le32(ipw_read_reg32(priv,
3104 IPW_BASEBAND_RX_FIFO_READ));
3105 memcpy(&priv->dino_alive, response_buffer,
3106 sizeof(priv->dino_alive));
3107 if (priv->dino_alive.alive_command == 1
3108 && priv->dino_alive.ucode_valid == 1) {
3109 rc = 0;
3110 IPW_DEBUG_INFO
3111 ("Microcode OK, rev. %d (0x%x) dev. %d (0x%x) "
3112 "of %02d/%02d/%02d %02d:%02d\n",
3113 priv->dino_alive.software_revision,
3114 priv->dino_alive.software_revision,
3115 priv->dino_alive.device_identifier,
3116 priv->dino_alive.device_identifier,
3117 priv->dino_alive.time_stamp[0],
3118 priv->dino_alive.time_stamp[1],
3119 priv->dino_alive.time_stamp[2],
3120 priv->dino_alive.time_stamp[3],
3121 priv->dino_alive.time_stamp[4]);
3122 } else {
3123 IPW_DEBUG_INFO("Microcode is not alive\n");
3124 rc = -EINVAL;
3125 }
3126 } else {
3127 IPW_DEBUG_INFO("No alive response from DINO\n");
3128 rc = -ETIME;
3129 }
3130
3131 /* disable DINO, otherwise for some reason
3132 firmware have problem getting alive resp. */
3133 ipw_write_reg8(priv, IPW_BASEBAND_CONTROL_STATUS, 0);
3134
3135 return rc;
3136 }
3137
ipw_load_firmware(struct ipw_priv * priv,u8 * data,size_t len)3138 static int ipw_load_firmware(struct ipw_priv *priv, u8 * data, size_t len)
3139 {
3140 int ret = -1;
3141 int offset = 0;
3142 struct fw_chunk *chunk;
3143 int total_nr = 0;
3144 int i;
3145 struct dma_pool *pool;
3146 void **virts;
3147 dma_addr_t *phys;
3148
3149 IPW_DEBUG_TRACE("<< :\n");
3150
3151 virts = kmalloc_array(CB_NUMBER_OF_ELEMENTS_SMALL, sizeof(void *),
3152 GFP_KERNEL);
3153 if (!virts)
3154 return -ENOMEM;
3155
3156 phys = kmalloc_objs(dma_addr_t, CB_NUMBER_OF_ELEMENTS_SMALL);
3157 if (!phys) {
3158 kfree(virts);
3159 return -ENOMEM;
3160 }
3161 pool = dma_pool_create("ipw2200", &priv->pci_dev->dev, CB_MAX_LENGTH, 0,
3162 0);
3163 if (!pool) {
3164 IPW_ERROR("dma_pool_create failed\n");
3165 kfree(phys);
3166 kfree(virts);
3167 return -ENOMEM;
3168 }
3169
3170 /* Start the Dma */
3171 ret = ipw_fw_dma_enable(priv);
3172
3173 /* the DMA is already ready this would be a bug. */
3174 BUG_ON(priv->sram_desc.last_cb_index > 0);
3175
3176 do {
3177 u32 chunk_len;
3178 u8 *start;
3179 int size;
3180 int nr = 0;
3181
3182 chunk = (struct fw_chunk *)(data + offset);
3183 offset += sizeof(struct fw_chunk);
3184 chunk_len = le32_to_cpu(chunk->length);
3185 start = data + offset;
3186
3187 nr = (chunk_len + CB_MAX_LENGTH - 1) / CB_MAX_LENGTH;
3188 for (i = 0; i < nr; i++) {
3189 virts[total_nr] = dma_pool_alloc(pool, GFP_KERNEL,
3190 &phys[total_nr]);
3191 if (!virts[total_nr]) {
3192 ret = -ENOMEM;
3193 goto out;
3194 }
3195 size = min_t(u32, chunk_len - i * CB_MAX_LENGTH,
3196 CB_MAX_LENGTH);
3197 memcpy(virts[total_nr], start, size);
3198 start += size;
3199 total_nr++;
3200 /* We don't support fw chunk larger than 64*8K */
3201 BUG_ON(total_nr > CB_NUMBER_OF_ELEMENTS_SMALL);
3202 }
3203
3204 /* build DMA packet and queue up for sending */
3205 /* dma to chunk->address, the chunk->length bytes from data +
3206 * offeset*/
3207 /* Dma loading */
3208 ret = ipw_fw_dma_add_buffer(priv, &phys[total_nr - nr],
3209 nr, le32_to_cpu(chunk->address),
3210 chunk_len);
3211 if (ret) {
3212 IPW_DEBUG_INFO("dmaAddBuffer Failed\n");
3213 goto out;
3214 }
3215
3216 offset += chunk_len;
3217 } while (offset < len);
3218
3219 /* Run the DMA and wait for the answer */
3220 ret = ipw_fw_dma_kick(priv);
3221 if (ret) {
3222 IPW_ERROR("dmaKick Failed\n");
3223 goto out;
3224 }
3225
3226 ret = ipw_fw_dma_wait(priv);
3227 if (ret) {
3228 IPW_ERROR("dmaWaitSync Failed\n");
3229 goto out;
3230 }
3231 out:
3232 for (i = 0; i < total_nr; i++)
3233 dma_pool_free(pool, virts[i], phys[i]);
3234
3235 dma_pool_destroy(pool);
3236 kfree(phys);
3237 kfree(virts);
3238
3239 return ret;
3240 }
3241
3242 /* stop nic */
ipw_stop_nic(struct ipw_priv * priv)3243 static int ipw_stop_nic(struct ipw_priv *priv)
3244 {
3245 int rc = 0;
3246
3247 /* stop */
3248 ipw_write32(priv, IPW_RESET_REG, IPW_RESET_REG_STOP_MASTER);
3249
3250 rc = ipw_poll_bit(priv, IPW_RESET_REG,
3251 IPW_RESET_REG_MASTER_DISABLED, 500);
3252 if (rc < 0) {
3253 IPW_ERROR("wait for reg master disabled failed after 500ms\n");
3254 return rc;
3255 }
3256
3257 ipw_set_bit(priv, IPW_RESET_REG, CBD_RESET_REG_PRINCETON_RESET);
3258
3259 return rc;
3260 }
3261
ipw_start_nic(struct ipw_priv * priv)3262 static void ipw_start_nic(struct ipw_priv *priv)
3263 {
3264 IPW_DEBUG_TRACE(">>\n");
3265
3266 /* prvHwStartNic release ARC */
3267 ipw_clear_bit(priv, IPW_RESET_REG,
3268 IPW_RESET_REG_MASTER_DISABLED |
3269 IPW_RESET_REG_STOP_MASTER |
3270 CBD_RESET_REG_PRINCETON_RESET);
3271
3272 /* enable power management */
3273 ipw_set_bit(priv, IPW_GP_CNTRL_RW,
3274 IPW_GP_CNTRL_BIT_HOST_ALLOWS_STANDBY);
3275
3276 IPW_DEBUG_TRACE("<<\n");
3277 }
3278
ipw_init_nic(struct ipw_priv * priv)3279 static int ipw_init_nic(struct ipw_priv *priv)
3280 {
3281 int rc;
3282
3283 IPW_DEBUG_TRACE(">>\n");
3284 /* reset */
3285 /*prvHwInitNic */
3286 /* set "initialization complete" bit to move adapter to D0 state */
3287 ipw_set_bit(priv, IPW_GP_CNTRL_RW, IPW_GP_CNTRL_BIT_INIT_DONE);
3288
3289 /* low-level PLL activation */
3290 ipw_write32(priv, IPW_READ_INT_REGISTER,
3291 IPW_BIT_INT_HOST_SRAM_READ_INT_REGISTER);
3292
3293 /* wait for clock stabilization */
3294 rc = ipw_poll_bit(priv, IPW_GP_CNTRL_RW,
3295 IPW_GP_CNTRL_BIT_CLOCK_READY, 250);
3296 if (rc < 0)
3297 IPW_DEBUG_INFO("FAILED wait for clock stabilization\n");
3298
3299 /* assert SW reset */
3300 ipw_set_bit(priv, IPW_RESET_REG, IPW_RESET_REG_SW_RESET);
3301
3302 udelay(10);
3303
3304 /* set "initialization complete" bit to move adapter to D0 state */
3305 ipw_set_bit(priv, IPW_GP_CNTRL_RW, IPW_GP_CNTRL_BIT_INIT_DONE);
3306
3307 IPW_DEBUG_TRACE(">>\n");
3308 return 0;
3309 }
3310
3311 /* Call this function from process context, it will sleep in request_firmware.
3312 * Probe is an ok place to call this from.
3313 */
ipw_reset_nic(struct ipw_priv * priv)3314 static int ipw_reset_nic(struct ipw_priv *priv)
3315 {
3316 int rc = 0;
3317 unsigned long flags;
3318
3319 IPW_DEBUG_TRACE(">>\n");
3320
3321 rc = ipw_init_nic(priv);
3322
3323 spin_lock_irqsave(&priv->lock, flags);
3324 /* Clear the 'host command active' bit... */
3325 priv->status &= ~STATUS_HCMD_ACTIVE;
3326 wake_up_interruptible(&priv->wait_command_queue);
3327 priv->status &= ~(STATUS_SCANNING | STATUS_SCAN_ABORTING);
3328 wake_up_interruptible(&priv->wait_state);
3329 spin_unlock_irqrestore(&priv->lock, flags);
3330
3331 IPW_DEBUG_TRACE("<<\n");
3332 return rc;
3333 }
3334
3335
3336 struct ipw_fw {
3337 __le32 ver;
3338 __le32 boot_size;
3339 __le32 ucode_size;
3340 __le32 fw_size;
3341 u8 data[];
3342 };
3343
ipw_get_fw(struct ipw_priv * priv,const struct firmware ** raw,const char * name)3344 static int ipw_get_fw(struct ipw_priv *priv,
3345 const struct firmware **raw, const char *name)
3346 {
3347 struct ipw_fw *fw;
3348 int rc;
3349
3350 /* ask firmware_class module to get the boot firmware off disk */
3351 rc = request_firmware(raw, name, &priv->pci_dev->dev);
3352 if (rc < 0) {
3353 IPW_ERROR("%s request_firmware failed: Reason %d\n", name, rc);
3354 return rc;
3355 }
3356
3357 if ((*raw)->size < sizeof(*fw)) {
3358 IPW_ERROR("%s is too small (%zd)\n", name, (*raw)->size);
3359 return -EINVAL;
3360 }
3361
3362 fw = (void *)(*raw)->data;
3363
3364 if ((*raw)->size < sizeof(*fw) + le32_to_cpu(fw->boot_size) +
3365 le32_to_cpu(fw->ucode_size) + le32_to_cpu(fw->fw_size)) {
3366 IPW_ERROR("%s is too small or corrupt (%zd)\n",
3367 name, (*raw)->size);
3368 return -EINVAL;
3369 }
3370
3371 IPW_DEBUG_INFO("Read firmware '%s' image v%d.%d (%zd bytes)\n",
3372 name,
3373 le32_to_cpu(fw->ver) >> 16,
3374 le32_to_cpu(fw->ver) & 0xff,
3375 (*raw)->size - sizeof(*fw));
3376 return 0;
3377 }
3378
3379 #define IPW_RX_BUF_SIZE (3000)
3380
ipw_rx_queue_reset(struct ipw_priv * priv,struct ipw_rx_queue * rxq)3381 static void ipw_rx_queue_reset(struct ipw_priv *priv,
3382 struct ipw_rx_queue *rxq)
3383 {
3384 unsigned long flags;
3385 int i;
3386
3387 spin_lock_irqsave(&rxq->lock, flags);
3388
3389 INIT_LIST_HEAD(&rxq->rx_free);
3390 INIT_LIST_HEAD(&rxq->rx_used);
3391
3392 /* Fill the rx_used queue with _all_ of the Rx buffers */
3393 for (i = 0; i < RX_FREE_BUFFERS + RX_QUEUE_SIZE; i++) {
3394 /* In the reset function, these buffers may have been allocated
3395 * to an SKB, so we need to unmap and free potential storage */
3396 if (rxq->pool[i].skb != NULL) {
3397 dma_unmap_single(&priv->pci_dev->dev,
3398 rxq->pool[i].dma_addr,
3399 IPW_RX_BUF_SIZE, DMA_FROM_DEVICE);
3400 dev_kfree_skb_irq(rxq->pool[i].skb);
3401 rxq->pool[i].skb = NULL;
3402 }
3403 list_add_tail(&rxq->pool[i].list, &rxq->rx_used);
3404 }
3405
3406 /* Set us so that we have processed and used all buffers, but have
3407 * not restocked the Rx queue with fresh buffers */
3408 rxq->read = rxq->write = 0;
3409 rxq->free_count = 0;
3410 spin_unlock_irqrestore(&rxq->lock, flags);
3411 }
3412
3413 #ifdef CONFIG_PM
3414 static int fw_loaded = 0;
3415 static const struct firmware *raw = NULL;
3416
free_firmware(void)3417 static void free_firmware(void)
3418 {
3419 if (fw_loaded) {
3420 release_firmware(raw);
3421 raw = NULL;
3422 fw_loaded = 0;
3423 }
3424 }
3425 #else
3426 #define free_firmware() do {} while (0)
3427 #endif
3428
ipw_load(struct ipw_priv * priv)3429 static int ipw_load(struct ipw_priv *priv)
3430 {
3431 #ifndef CONFIG_PM
3432 const struct firmware *raw = NULL;
3433 #endif
3434 struct ipw_fw *fw;
3435 u8 *boot_img, *ucode_img, *fw_img;
3436 u8 *name = NULL;
3437 int rc = 0, retries = 3;
3438
3439 switch (priv->ieee->iw_mode) {
3440 case IW_MODE_ADHOC:
3441 name = "ipw2200-ibss.fw";
3442 break;
3443 #ifdef CONFIG_IPW2200_MONITOR
3444 case IW_MODE_MONITOR:
3445 name = "ipw2200-sniffer.fw";
3446 break;
3447 #endif
3448 case IW_MODE_INFRA:
3449 name = "ipw2200-bss.fw";
3450 break;
3451 }
3452
3453 if (!name) {
3454 rc = -EINVAL;
3455 goto error;
3456 }
3457
3458 #ifdef CONFIG_PM
3459 if (!fw_loaded) {
3460 #endif
3461 rc = ipw_get_fw(priv, &raw, name);
3462 if (rc < 0)
3463 goto error;
3464 #ifdef CONFIG_PM
3465 }
3466 #endif
3467
3468 fw = (void *)raw->data;
3469 boot_img = &fw->data[0];
3470 ucode_img = &fw->data[le32_to_cpu(fw->boot_size)];
3471 fw_img = &fw->data[le32_to_cpu(fw->boot_size) +
3472 le32_to_cpu(fw->ucode_size)];
3473
3474 if (!priv->rxq)
3475 priv->rxq = ipw_rx_queue_alloc(priv);
3476 else
3477 ipw_rx_queue_reset(priv, priv->rxq);
3478 if (!priv->rxq) {
3479 IPW_ERROR("Unable to initialize Rx queue\n");
3480 rc = -ENOMEM;
3481 goto error;
3482 }
3483
3484 retry:
3485 /* Ensure interrupts are disabled */
3486 ipw_write32(priv, IPW_INTA_MASK_R, ~IPW_INTA_MASK_ALL);
3487 priv->status &= ~STATUS_INT_ENABLED;
3488
3489 /* ack pending interrupts */
3490 ipw_write32(priv, IPW_INTA_RW, IPW_INTA_MASK_ALL);
3491
3492 ipw_stop_nic(priv);
3493
3494 rc = ipw_reset_nic(priv);
3495 if (rc < 0) {
3496 IPW_ERROR("Unable to reset NIC\n");
3497 goto error;
3498 }
3499
3500 ipw_zero_memory(priv, IPW_NIC_SRAM_LOWER_BOUND,
3501 IPW_NIC_SRAM_UPPER_BOUND - IPW_NIC_SRAM_LOWER_BOUND);
3502
3503 /* DMA the initial boot firmware into the device */
3504 rc = ipw_load_firmware(priv, boot_img, le32_to_cpu(fw->boot_size));
3505 if (rc < 0) {
3506 IPW_ERROR("Unable to load boot firmware: %d\n", rc);
3507 goto error;
3508 }
3509
3510 /* kick start the device */
3511 ipw_start_nic(priv);
3512
3513 /* wait for the device to finish its initial startup sequence */
3514 rc = ipw_poll_bit(priv, IPW_INTA_RW,
3515 IPW_INTA_BIT_FW_INITIALIZATION_DONE, 500);
3516 if (rc < 0) {
3517 IPW_ERROR("device failed to boot initial fw image\n");
3518 goto error;
3519 }
3520 IPW_DEBUG_INFO("initial device response after %dms\n", rc);
3521
3522 /* ack fw init done interrupt */
3523 ipw_write32(priv, IPW_INTA_RW, IPW_INTA_BIT_FW_INITIALIZATION_DONE);
3524
3525 /* DMA the ucode into the device */
3526 rc = ipw_load_ucode(priv, ucode_img, le32_to_cpu(fw->ucode_size));
3527 if (rc < 0) {
3528 IPW_ERROR("Unable to load ucode: %d\n", rc);
3529 goto error;
3530 }
3531
3532 /* stop nic */
3533 ipw_stop_nic(priv);
3534
3535 /* DMA bss firmware into the device */
3536 rc = ipw_load_firmware(priv, fw_img, le32_to_cpu(fw->fw_size));
3537 if (rc < 0) {
3538 IPW_ERROR("Unable to load firmware: %d\n", rc);
3539 goto error;
3540 }
3541 #ifdef CONFIG_PM
3542 fw_loaded = 1;
3543 #endif
3544
3545 ipw_write32(priv, IPW_EEPROM_LOAD_DISABLE, 0);
3546
3547 rc = ipw_queue_reset(priv);
3548 if (rc < 0) {
3549 IPW_ERROR("Unable to initialize queues\n");
3550 goto error;
3551 }
3552
3553 /* Ensure interrupts are disabled */
3554 ipw_write32(priv, IPW_INTA_MASK_R, ~IPW_INTA_MASK_ALL);
3555 /* ack pending interrupts */
3556 ipw_write32(priv, IPW_INTA_RW, IPW_INTA_MASK_ALL);
3557
3558 /* kick start the device */
3559 ipw_start_nic(priv);
3560
3561 if (ipw_read32(priv, IPW_INTA_RW) & IPW_INTA_BIT_PARITY_ERROR) {
3562 if (retries > 0) {
3563 IPW_WARNING("Parity error. Retrying init.\n");
3564 retries--;
3565 goto retry;
3566 }
3567
3568 IPW_ERROR("TODO: Handle parity error -- schedule restart?\n");
3569 rc = -EIO;
3570 goto error;
3571 }
3572
3573 /* wait for the device */
3574 rc = ipw_poll_bit(priv, IPW_INTA_RW,
3575 IPW_INTA_BIT_FW_INITIALIZATION_DONE, 500);
3576 if (rc < 0) {
3577 IPW_ERROR("device failed to start within 500ms\n");
3578 goto error;
3579 }
3580 IPW_DEBUG_INFO("device response after %dms\n", rc);
3581
3582 /* ack fw init done interrupt */
3583 ipw_write32(priv, IPW_INTA_RW, IPW_INTA_BIT_FW_INITIALIZATION_DONE);
3584
3585 /* read eeprom data */
3586 priv->eeprom_delay = 1;
3587 ipw_read_eeprom(priv);
3588 /* initialize the eeprom region of sram */
3589 ipw_eeprom_init_sram(priv);
3590
3591 /* enable interrupts */
3592 ipw_enable_interrupts(priv);
3593
3594 /* Ensure our queue has valid packets */
3595 ipw_rx_queue_replenish(priv);
3596
3597 ipw_write32(priv, IPW_RX_READ_INDEX, priv->rxq->read);
3598
3599 /* ack pending interrupts */
3600 ipw_write32(priv, IPW_INTA_RW, IPW_INTA_MASK_ALL);
3601
3602 #ifndef CONFIG_PM
3603 release_firmware(raw);
3604 #endif
3605 return 0;
3606
3607 error:
3608 if (priv->rxq) {
3609 ipw_rx_queue_free(priv, priv->rxq);
3610 priv->rxq = NULL;
3611 }
3612 ipw_tx_queue_free(priv);
3613 release_firmware(raw);
3614 #ifdef CONFIG_PM
3615 fw_loaded = 0;
3616 raw = NULL;
3617 #endif
3618
3619 return rc;
3620 }
3621
3622 /*
3623 * DMA services
3624 *
3625 * Theory of operation
3626 *
3627 * A queue is a circular buffers with 'Read' and 'Write' pointers.
3628 * 2 empty entries always kept in the buffer to protect from overflow.
3629 *
3630 * For Tx queue, there are low mark and high mark limits. If, after queuing
3631 * the packet for Tx, free space become < low mark, Tx queue stopped. When
3632 * reclaiming packets (on 'tx done IRQ), if free space become > high mark,
3633 * Tx queue resumed.
3634 *
3635 * The IPW operates with six queues, one receive queue in the device's
3636 * sram, one transmit queue for sending commands to the device firmware,
3637 * and four transmit queues for data.
3638 *
3639 * The four transmit queues allow for performing quality of service (qos)
3640 * transmissions as per the 802.11 protocol. Currently Linux does not
3641 * provide a mechanism to the user for utilizing prioritized queues, so
3642 * we only utilize the first data transmit queue (queue1).
3643 */
3644
3645 /*
3646 * Driver allocates buffers of this size for Rx
3647 */
3648
3649 /*
3650 * ipw_rx_queue_space - Return number of free slots available in queue.
3651 */
ipw_rx_queue_space(const struct ipw_rx_queue * q)3652 static int ipw_rx_queue_space(const struct ipw_rx_queue *q)
3653 {
3654 int s = q->read - q->write;
3655 if (s <= 0)
3656 s += RX_QUEUE_SIZE;
3657 /* keep some buffer to not confuse full and empty queue */
3658 s -= 2;
3659 if (s < 0)
3660 s = 0;
3661 return s;
3662 }
3663
ipw_tx_queue_space(const struct clx2_queue * q)3664 static inline int ipw_tx_queue_space(const struct clx2_queue *q)
3665 {
3666 int s = q->last_used - q->first_empty;
3667 if (s <= 0)
3668 s += q->n_bd;
3669 s -= 2; /* keep some reserve to not confuse empty and full situations */
3670 if (s < 0)
3671 s = 0;
3672 return s;
3673 }
3674
ipw_queue_inc_wrap(int index,int n_bd)3675 static inline int ipw_queue_inc_wrap(int index, int n_bd)
3676 {
3677 return (++index == n_bd) ? 0 : index;
3678 }
3679
3680 /*
3681 * Initialize common DMA queue structure
3682 *
3683 * @param q queue to init
3684 * @param count Number of BD's to allocate. Should be power of 2
3685 * @param read_register Address for 'read' register
3686 * (not offset within BAR, full address)
3687 * @param write_register Address for 'write' register
3688 * (not offset within BAR, full address)
3689 * @param base_register Address for 'base' register
3690 * (not offset within BAR, full address)
3691 * @param size Address for 'size' register
3692 * (not offset within BAR, full address)
3693 */
ipw_queue_init(struct ipw_priv * priv,struct clx2_queue * q,int count,u32 read,u32 write,u32 base,u32 size)3694 static void ipw_queue_init(struct ipw_priv *priv, struct clx2_queue *q,
3695 int count, u32 read, u32 write, u32 base, u32 size)
3696 {
3697 q->n_bd = count;
3698
3699 q->low_mark = q->n_bd / 4;
3700 if (q->low_mark < 4)
3701 q->low_mark = 4;
3702
3703 q->high_mark = q->n_bd / 8;
3704 if (q->high_mark < 2)
3705 q->high_mark = 2;
3706
3707 q->first_empty = q->last_used = 0;
3708 q->reg_r = read;
3709 q->reg_w = write;
3710
3711 ipw_write32(priv, base, q->dma_addr);
3712 ipw_write32(priv, size, count);
3713 ipw_write32(priv, read, 0);
3714 ipw_write32(priv, write, 0);
3715
3716 _ipw_read32(priv, 0x90);
3717 }
3718
ipw_queue_tx_init(struct ipw_priv * priv,struct clx2_tx_queue * q,int count,u32 read,u32 write,u32 base,u32 size)3719 static int ipw_queue_tx_init(struct ipw_priv *priv,
3720 struct clx2_tx_queue *q,
3721 int count, u32 read, u32 write, u32 base, u32 size)
3722 {
3723 struct pci_dev *dev = priv->pci_dev;
3724
3725 q->txb = kmalloc_objs(q->txb[0], count);
3726 if (!q->txb)
3727 return -ENOMEM;
3728
3729 q->bd =
3730 dma_alloc_coherent(&dev->dev, sizeof(q->bd[0]) * count,
3731 &q->q.dma_addr, GFP_KERNEL);
3732 if (!q->bd) {
3733 IPW_ERROR("dma_alloc_coherent(%zd) failed\n",
3734 sizeof(q->bd[0]) * count);
3735 kfree(q->txb);
3736 q->txb = NULL;
3737 return -ENOMEM;
3738 }
3739
3740 ipw_queue_init(priv, &q->q, count, read, write, base, size);
3741 return 0;
3742 }
3743
3744 /*
3745 * Free one TFD, those at index [txq->q.last_used].
3746 * Do NOT advance any indexes
3747 *
3748 * @param dev
3749 * @param txq
3750 */
ipw_queue_tx_free_tfd(struct ipw_priv * priv,struct clx2_tx_queue * txq)3751 static void ipw_queue_tx_free_tfd(struct ipw_priv *priv,
3752 struct clx2_tx_queue *txq)
3753 {
3754 struct tfd_frame *bd = &txq->bd[txq->q.last_used];
3755 struct pci_dev *dev = priv->pci_dev;
3756 int i;
3757
3758 /* classify bd */
3759 if (bd->control_flags.message_type == TX_HOST_COMMAND_TYPE)
3760 /* nothing to cleanup after for host commands */
3761 return;
3762
3763 /* sanity check */
3764 if (le32_to_cpu(bd->u.data.num_chunks) > NUM_TFD_CHUNKS) {
3765 IPW_ERROR("Too many chunks: %i\n",
3766 le32_to_cpu(bd->u.data.num_chunks));
3767 /* @todo issue fatal error, it is quite serious situation */
3768 return;
3769 }
3770
3771 /* unmap chunks if any */
3772 for (i = 0; i < le32_to_cpu(bd->u.data.num_chunks); i++) {
3773 dma_unmap_single(&dev->dev,
3774 le32_to_cpu(bd->u.data.chunk_ptr[i]),
3775 le16_to_cpu(bd->u.data.chunk_len[i]),
3776 DMA_TO_DEVICE);
3777 if (txq->txb[txq->q.last_used]) {
3778 libipw_txb_free(txq->txb[txq->q.last_used]);
3779 txq->txb[txq->q.last_used] = NULL;
3780 }
3781 }
3782 }
3783
3784 /*
3785 * Deallocate DMA queue.
3786 *
3787 * Empty queue by removing and destroying all BD's.
3788 * Free all buffers.
3789 *
3790 * @param dev
3791 * @param q
3792 */
ipw_queue_tx_free(struct ipw_priv * priv,struct clx2_tx_queue * txq)3793 static void ipw_queue_tx_free(struct ipw_priv *priv, struct clx2_tx_queue *txq)
3794 {
3795 struct clx2_queue *q = &txq->q;
3796 struct pci_dev *dev = priv->pci_dev;
3797
3798 if (q->n_bd == 0)
3799 return;
3800
3801 /* first, empty all BD's */
3802 for (; q->first_empty != q->last_used;
3803 q->last_used = ipw_queue_inc_wrap(q->last_used, q->n_bd)) {
3804 ipw_queue_tx_free_tfd(priv, txq);
3805 }
3806
3807 /* free buffers belonging to queue itself */
3808 dma_free_coherent(&dev->dev, sizeof(txq->bd[0]) * q->n_bd, txq->bd,
3809 q->dma_addr);
3810 kfree(txq->txb);
3811
3812 /* 0 fill whole structure */
3813 memset(txq, 0, sizeof(*txq));
3814 }
3815
3816 /*
3817 * Destroy all DMA queues and structures
3818 *
3819 * @param priv
3820 */
ipw_tx_queue_free(struct ipw_priv * priv)3821 static void ipw_tx_queue_free(struct ipw_priv *priv)
3822 {
3823 /* Tx CMD queue */
3824 ipw_queue_tx_free(priv, &priv->txq_cmd);
3825
3826 /* Tx queues */
3827 ipw_queue_tx_free(priv, &priv->txq[0]);
3828 ipw_queue_tx_free(priv, &priv->txq[1]);
3829 ipw_queue_tx_free(priv, &priv->txq[2]);
3830 ipw_queue_tx_free(priv, &priv->txq[3]);
3831 }
3832
ipw_create_bssid(struct ipw_priv * priv,u8 * bssid)3833 static void ipw_create_bssid(struct ipw_priv *priv, u8 * bssid)
3834 {
3835 /* First 3 bytes are manufacturer */
3836 bssid[0] = priv->mac_addr[0];
3837 bssid[1] = priv->mac_addr[1];
3838 bssid[2] = priv->mac_addr[2];
3839
3840 /* Last bytes are random */
3841 get_random_bytes(&bssid[3], ETH_ALEN - 3);
3842
3843 bssid[0] &= 0xfe; /* clear multicast bit */
3844 bssid[0] |= 0x02; /* set local assignment bit (IEEE802) */
3845 }
3846
ipw_add_station(struct ipw_priv * priv,u8 * bssid)3847 static u8 ipw_add_station(struct ipw_priv *priv, u8 * bssid)
3848 {
3849 struct ipw_station_entry entry;
3850 int i;
3851
3852 for (i = 0; i < priv->num_stations; i++) {
3853 if (ether_addr_equal(priv->stations[i], bssid)) {
3854 /* Another node is active in network */
3855 priv->missed_adhoc_beacons = 0;
3856 if (!(priv->config & CFG_STATIC_CHANNEL))
3857 /* when other nodes drop out, we drop out */
3858 priv->config &= ~CFG_ADHOC_PERSIST;
3859
3860 return i;
3861 }
3862 }
3863
3864 if (i == MAX_STATIONS)
3865 return IPW_INVALID_STATION;
3866
3867 IPW_DEBUG_SCAN("Adding AdHoc station: %pM\n", bssid);
3868
3869 entry.reserved = 0;
3870 entry.support_mode = 0;
3871 memcpy(entry.mac_addr, bssid, ETH_ALEN);
3872 memcpy(priv->stations[i], bssid, ETH_ALEN);
3873 ipw_write_direct(priv, IPW_STATION_TABLE_LOWER + i * sizeof(entry),
3874 &entry, sizeof(entry));
3875 priv->num_stations++;
3876
3877 return i;
3878 }
3879
ipw_find_station(struct ipw_priv * priv,u8 * bssid)3880 static u8 ipw_find_station(struct ipw_priv *priv, u8 * bssid)
3881 {
3882 int i;
3883
3884 for (i = 0; i < priv->num_stations; i++)
3885 if (ether_addr_equal(priv->stations[i], bssid))
3886 return i;
3887
3888 return IPW_INVALID_STATION;
3889 }
3890
ipw_send_disassociate(struct ipw_priv * priv,int quiet)3891 static void ipw_send_disassociate(struct ipw_priv *priv, int quiet)
3892 {
3893 int err;
3894
3895 if (priv->status & STATUS_ASSOCIATING) {
3896 IPW_DEBUG_ASSOC("Disassociating while associating.\n");
3897 schedule_work(&priv->disassociate);
3898 return;
3899 }
3900
3901 if (!(priv->status & STATUS_ASSOCIATED)) {
3902 IPW_DEBUG_ASSOC("Disassociating while not associated.\n");
3903 return;
3904 }
3905
3906 IPW_DEBUG_ASSOC("Disassociation attempt from %pM "
3907 "on channel %d.\n",
3908 priv->assoc_request.bssid,
3909 priv->assoc_request.channel);
3910
3911 priv->status &= ~(STATUS_ASSOCIATING | STATUS_ASSOCIATED);
3912 priv->status |= STATUS_DISASSOCIATING;
3913
3914 if (quiet)
3915 priv->assoc_request.assoc_type = HC_DISASSOC_QUIET;
3916 else
3917 priv->assoc_request.assoc_type = HC_DISASSOCIATE;
3918
3919 err = ipw_send_associate(priv, &priv->assoc_request);
3920 if (err) {
3921 IPW_DEBUG_HC("Attempt to send [dis]associate command "
3922 "failed.\n");
3923 return;
3924 }
3925
3926 }
3927
ipw_disassociate(void * data)3928 static int ipw_disassociate(void *data)
3929 {
3930 struct ipw_priv *priv = data;
3931 if (!(priv->status & (STATUS_ASSOCIATED | STATUS_ASSOCIATING)))
3932 return 0;
3933 ipw_send_disassociate(data, 0);
3934 netif_carrier_off(priv->net_dev);
3935 return 1;
3936 }
3937
ipw_bg_disassociate(struct work_struct * work)3938 static void ipw_bg_disassociate(struct work_struct *work)
3939 {
3940 struct ipw_priv *priv =
3941 container_of(work, struct ipw_priv, disassociate);
3942 mutex_lock(&priv->mutex);
3943 ipw_disassociate(priv);
3944 mutex_unlock(&priv->mutex);
3945 }
3946
ipw_system_config(struct work_struct * work)3947 static void ipw_system_config(struct work_struct *work)
3948 {
3949 struct ipw_priv *priv =
3950 container_of(work, struct ipw_priv, system_config);
3951
3952 #ifdef CONFIG_IPW2200_PROMISCUOUS
3953 if (priv->prom_net_dev && netif_running(priv->prom_net_dev)) {
3954 priv->sys_config.accept_all_data_frames = 1;
3955 priv->sys_config.accept_non_directed_frames = 1;
3956 priv->sys_config.accept_all_mgmt_bcpr = 1;
3957 priv->sys_config.accept_all_mgmt_frames = 1;
3958 }
3959 #endif
3960
3961 ipw_send_system_config(priv);
3962 }
3963
3964 struct ipw_status_code {
3965 u16 status;
3966 const char *reason;
3967 };
3968
3969 static const struct ipw_status_code ipw_status_codes[] = {
3970 {0x00, "Successful"},
3971 {0x01, "Unspecified failure"},
3972 {0x0A, "Cannot support all requested capabilities in the "
3973 "Capability information field"},
3974 {0x0B, "Reassociation denied due to inability to confirm that "
3975 "association exists"},
3976 {0x0C, "Association denied due to reason outside the scope of this "
3977 "standard"},
3978 {0x0D,
3979 "Responding station does not support the specified authentication "
3980 "algorithm"},
3981 {0x0E,
3982 "Received an Authentication frame with authentication sequence "
3983 "transaction sequence number out of expected sequence"},
3984 {0x0F, "Authentication rejected because of challenge failure"},
3985 {0x10, "Authentication rejected due to timeout waiting for next "
3986 "frame in sequence"},
3987 {0x11, "Association denied because AP is unable to handle additional "
3988 "associated stations"},
3989 {0x12,
3990 "Association denied due to requesting station not supporting all "
3991 "of the datarates in the BSSBasicServiceSet Parameter"},
3992 {0x13,
3993 "Association denied due to requesting station not supporting "
3994 "short preamble operation"},
3995 {0x14,
3996 "Association denied due to requesting station not supporting "
3997 "PBCC encoding"},
3998 {0x15,
3999 "Association denied due to requesting station not supporting "
4000 "channel agility"},
4001 {0x19,
4002 "Association denied due to requesting station not supporting "
4003 "short slot operation"},
4004 {0x1A,
4005 "Association denied due to requesting station not supporting "
4006 "DSSS-OFDM operation"},
4007 {0x28, "Invalid Information Element"},
4008 {0x29, "Group Cipher is not valid"},
4009 {0x2A, "Pairwise Cipher is not valid"},
4010 {0x2B, "AKMP is not valid"},
4011 {0x2C, "Unsupported RSN IE version"},
4012 {0x2D, "Invalid RSN IE Capabilities"},
4013 {0x2E, "Cipher suite is rejected per security policy"},
4014 };
4015
ipw_get_status_code(u16 status)4016 static const char *ipw_get_status_code(u16 status)
4017 {
4018 int i;
4019 for (i = 0; i < ARRAY_SIZE(ipw_status_codes); i++)
4020 if (ipw_status_codes[i].status == (status & 0xff))
4021 return ipw_status_codes[i].reason;
4022 return "Unknown status value.";
4023 }
4024
average_init(struct average * avg)4025 static inline void average_init(struct average *avg)
4026 {
4027 memset(avg, 0, sizeof(*avg));
4028 }
4029
4030 #define DEPTH_RSSI 8
4031 #define DEPTH_NOISE 16
exponential_average(s16 prev_avg,s16 val,u8 depth)4032 static s16 exponential_average(s16 prev_avg, s16 val, u8 depth)
4033 {
4034 return ((depth-1)*prev_avg + val)/depth;
4035 }
4036
average_add(struct average * avg,s16 val)4037 static void average_add(struct average *avg, s16 val)
4038 {
4039 avg->sum -= avg->entries[avg->pos];
4040 avg->sum += val;
4041 avg->entries[avg->pos++] = val;
4042 if (unlikely(avg->pos == AVG_ENTRIES)) {
4043 avg->init = 1;
4044 avg->pos = 0;
4045 }
4046 }
4047
average_value(struct average * avg)4048 static s16 average_value(struct average *avg)
4049 {
4050 if (!unlikely(avg->init)) {
4051 if (avg->pos)
4052 return avg->sum / avg->pos;
4053 return 0;
4054 }
4055
4056 return avg->sum / AVG_ENTRIES;
4057 }
4058
ipw_reset_stats(struct ipw_priv * priv)4059 static void ipw_reset_stats(struct ipw_priv *priv)
4060 {
4061 u32 len = sizeof(u32);
4062
4063 priv->quality = 0;
4064
4065 average_init(&priv->average_missed_beacons);
4066 priv->exp_avg_rssi = -60;
4067 priv->exp_avg_noise = -85 + 0x100;
4068
4069 priv->last_rate = 0;
4070 priv->last_missed_beacons = 0;
4071 priv->last_rx_packets = 0;
4072 priv->last_tx_packets = 0;
4073 priv->last_tx_failures = 0;
4074
4075 /* Firmware managed, reset only when NIC is restarted, so we have to
4076 * normalize on the current value */
4077 ipw_get_ordinal(priv, IPW_ORD_STAT_RX_ERR_CRC,
4078 &priv->last_rx_err, &len);
4079 ipw_get_ordinal(priv, IPW_ORD_STAT_TX_FAILURE,
4080 &priv->last_tx_failures, &len);
4081
4082 /* Driver managed, reset with each association */
4083 priv->missed_adhoc_beacons = 0;
4084 priv->missed_beacons = 0;
4085 priv->tx_packets = 0;
4086 priv->rx_packets = 0;
4087
4088 }
4089
ipw_get_max_rate(struct ipw_priv * priv)4090 static u32 ipw_get_max_rate(struct ipw_priv *priv)
4091 {
4092 u32 i = 0x80000000;
4093 u32 mask = priv->rates_mask;
4094 /* If currently associated in B mode, restrict the maximum
4095 * rate match to B rates */
4096 if (priv->assoc_request.ieee_mode == IPW_B_MODE)
4097 mask &= LIBIPW_CCK_RATES_MASK;
4098
4099 /* TODO: Verify that the rate is supported by the current rates
4100 * list. */
4101
4102 while (i && !(mask & i))
4103 i >>= 1;
4104 switch (i) {
4105 case LIBIPW_CCK_RATE_1MB_MASK:
4106 return 1000000;
4107 case LIBIPW_CCK_RATE_2MB_MASK:
4108 return 2000000;
4109 case LIBIPW_CCK_RATE_5MB_MASK:
4110 return 5500000;
4111 case LIBIPW_OFDM_RATE_6MB_MASK:
4112 return 6000000;
4113 case LIBIPW_OFDM_RATE_9MB_MASK:
4114 return 9000000;
4115 case LIBIPW_CCK_RATE_11MB_MASK:
4116 return 11000000;
4117 case LIBIPW_OFDM_RATE_12MB_MASK:
4118 return 12000000;
4119 case LIBIPW_OFDM_RATE_18MB_MASK:
4120 return 18000000;
4121 case LIBIPW_OFDM_RATE_24MB_MASK:
4122 return 24000000;
4123 case LIBIPW_OFDM_RATE_36MB_MASK:
4124 return 36000000;
4125 case LIBIPW_OFDM_RATE_48MB_MASK:
4126 return 48000000;
4127 case LIBIPW_OFDM_RATE_54MB_MASK:
4128 return 54000000;
4129 }
4130
4131 if (priv->ieee->mode == IEEE_B)
4132 return 11000000;
4133 else
4134 return 54000000;
4135 }
4136
ipw_get_current_rate(struct ipw_priv * priv)4137 static u32 ipw_get_current_rate(struct ipw_priv *priv)
4138 {
4139 u32 rate, len = sizeof(rate);
4140 int err;
4141
4142 if (!(priv->status & STATUS_ASSOCIATED))
4143 return 0;
4144
4145 if (priv->tx_packets > IPW_REAL_RATE_RX_PACKET_THRESHOLD) {
4146 err = ipw_get_ordinal(priv, IPW_ORD_STAT_TX_CURR_RATE, &rate,
4147 &len);
4148 if (err) {
4149 IPW_DEBUG_INFO("failed querying ordinals.\n");
4150 return 0;
4151 }
4152 } else
4153 return ipw_get_max_rate(priv);
4154
4155 switch (rate) {
4156 case IPW_TX_RATE_1MB:
4157 return 1000000;
4158 case IPW_TX_RATE_2MB:
4159 return 2000000;
4160 case IPW_TX_RATE_5MB:
4161 return 5500000;
4162 case IPW_TX_RATE_6MB:
4163 return 6000000;
4164 case IPW_TX_RATE_9MB:
4165 return 9000000;
4166 case IPW_TX_RATE_11MB:
4167 return 11000000;
4168 case IPW_TX_RATE_12MB:
4169 return 12000000;
4170 case IPW_TX_RATE_18MB:
4171 return 18000000;
4172 case IPW_TX_RATE_24MB:
4173 return 24000000;
4174 case IPW_TX_RATE_36MB:
4175 return 36000000;
4176 case IPW_TX_RATE_48MB:
4177 return 48000000;
4178 case IPW_TX_RATE_54MB:
4179 return 54000000;
4180 }
4181
4182 return 0;
4183 }
4184
4185 #define IPW_STATS_INTERVAL (2 * HZ)
ipw_gather_stats(struct ipw_priv * priv)4186 static void ipw_gather_stats(struct ipw_priv *priv)
4187 {
4188 u32 rx_err, rx_err_delta, rx_packets_delta;
4189 u32 tx_failures, tx_failures_delta, tx_packets_delta;
4190 u32 missed_beacons_percent, missed_beacons_delta;
4191 u32 quality = 0;
4192 u32 len = sizeof(u32);
4193 s16 rssi;
4194 u32 beacon_quality, signal_quality, tx_quality, rx_quality,
4195 rate_quality;
4196 u32 max_rate;
4197
4198 if (!(priv->status & STATUS_ASSOCIATED)) {
4199 priv->quality = 0;
4200 return;
4201 }
4202
4203 /* Update the statistics */
4204 ipw_get_ordinal(priv, IPW_ORD_STAT_MISSED_BEACONS,
4205 &priv->missed_beacons, &len);
4206 missed_beacons_delta = priv->missed_beacons - priv->last_missed_beacons;
4207 priv->last_missed_beacons = priv->missed_beacons;
4208 if (priv->assoc_request.beacon_interval) {
4209 missed_beacons_percent = missed_beacons_delta *
4210 (HZ * le16_to_cpu(priv->assoc_request.beacon_interval)) /
4211 (IPW_STATS_INTERVAL * 10);
4212 } else {
4213 missed_beacons_percent = 0;
4214 }
4215 average_add(&priv->average_missed_beacons, missed_beacons_percent);
4216
4217 ipw_get_ordinal(priv, IPW_ORD_STAT_RX_ERR_CRC, &rx_err, &len);
4218 rx_err_delta = rx_err - priv->last_rx_err;
4219 priv->last_rx_err = rx_err;
4220
4221 ipw_get_ordinal(priv, IPW_ORD_STAT_TX_FAILURE, &tx_failures, &len);
4222 tx_failures_delta = tx_failures - priv->last_tx_failures;
4223 priv->last_tx_failures = tx_failures;
4224
4225 rx_packets_delta = priv->rx_packets - priv->last_rx_packets;
4226 priv->last_rx_packets = priv->rx_packets;
4227
4228 tx_packets_delta = priv->tx_packets - priv->last_tx_packets;
4229 priv->last_tx_packets = priv->tx_packets;
4230
4231 /* Calculate quality based on the following:
4232 *
4233 * Missed beacon: 100% = 0, 0% = 70% missed
4234 * Rate: 60% = 1Mbs, 100% = Max
4235 * Rx and Tx errors represent a straight % of total Rx/Tx
4236 * RSSI: 100% = > -50, 0% = < -80
4237 * Rx errors: 100% = 0, 0% = 50% missed
4238 *
4239 * The lowest computed quality is used.
4240 *
4241 */
4242 #define BEACON_THRESHOLD 5
4243 beacon_quality = 100 - missed_beacons_percent;
4244 if (beacon_quality < BEACON_THRESHOLD)
4245 beacon_quality = 0;
4246 else
4247 beacon_quality = (beacon_quality - BEACON_THRESHOLD) * 100 /
4248 (100 - BEACON_THRESHOLD);
4249 IPW_DEBUG_STATS("Missed beacon: %3d%% (%d%%)\n",
4250 beacon_quality, missed_beacons_percent);
4251
4252 priv->last_rate = ipw_get_current_rate(priv);
4253 max_rate = ipw_get_max_rate(priv);
4254 rate_quality = priv->last_rate * 40 / max_rate + 60;
4255 IPW_DEBUG_STATS("Rate quality : %3d%% (%dMbs)\n",
4256 rate_quality, priv->last_rate / 1000000);
4257
4258 if (rx_packets_delta > 100 && rx_packets_delta + rx_err_delta)
4259 rx_quality = 100 - (rx_err_delta * 100) /
4260 (rx_packets_delta + rx_err_delta);
4261 else
4262 rx_quality = 100;
4263 IPW_DEBUG_STATS("Rx quality : %3d%% (%u errors, %u packets)\n",
4264 rx_quality, rx_err_delta, rx_packets_delta);
4265
4266 if (tx_packets_delta > 100 && tx_packets_delta + tx_failures_delta)
4267 tx_quality = 100 - (tx_failures_delta * 100) /
4268 (tx_packets_delta + tx_failures_delta);
4269 else
4270 tx_quality = 100;
4271 IPW_DEBUG_STATS("Tx quality : %3d%% (%u errors, %u packets)\n",
4272 tx_quality, tx_failures_delta, tx_packets_delta);
4273
4274 rssi = priv->exp_avg_rssi;
4275 signal_quality =
4276 (100 *
4277 (priv->ieee->perfect_rssi - priv->ieee->worst_rssi) *
4278 (priv->ieee->perfect_rssi - priv->ieee->worst_rssi) -
4279 (priv->ieee->perfect_rssi - rssi) *
4280 (15 * (priv->ieee->perfect_rssi - priv->ieee->worst_rssi) +
4281 62 * (priv->ieee->perfect_rssi - rssi))) /
4282 ((priv->ieee->perfect_rssi - priv->ieee->worst_rssi) *
4283 (priv->ieee->perfect_rssi - priv->ieee->worst_rssi));
4284 if (signal_quality > 100)
4285 signal_quality = 100;
4286 else if (signal_quality < 1)
4287 signal_quality = 0;
4288
4289 IPW_DEBUG_STATS("Signal level : %3d%% (%d dBm)\n",
4290 signal_quality, rssi);
4291
4292 quality = min(rx_quality, signal_quality);
4293 quality = min(tx_quality, quality);
4294 quality = min(rate_quality, quality);
4295 quality = min(beacon_quality, quality);
4296 if (quality == beacon_quality)
4297 IPW_DEBUG_STATS("Quality (%d%%): Clamped to missed beacons.\n",
4298 quality);
4299 if (quality == rate_quality)
4300 IPW_DEBUG_STATS("Quality (%d%%): Clamped to rate quality.\n",
4301 quality);
4302 if (quality == tx_quality)
4303 IPW_DEBUG_STATS("Quality (%d%%): Clamped to Tx quality.\n",
4304 quality);
4305 if (quality == rx_quality)
4306 IPW_DEBUG_STATS("Quality (%d%%): Clamped to Rx quality.\n",
4307 quality);
4308 if (quality == signal_quality)
4309 IPW_DEBUG_STATS("Quality (%d%%): Clamped to signal quality.\n",
4310 quality);
4311
4312 priv->quality = quality;
4313
4314 schedule_delayed_work(&priv->gather_stats, IPW_STATS_INTERVAL);
4315 }
4316
ipw_bg_gather_stats(struct work_struct * work)4317 static void ipw_bg_gather_stats(struct work_struct *work)
4318 {
4319 struct ipw_priv *priv =
4320 container_of(work, struct ipw_priv, gather_stats.work);
4321 mutex_lock(&priv->mutex);
4322 ipw_gather_stats(priv);
4323 mutex_unlock(&priv->mutex);
4324 }
4325
4326 /* Missed beacon behavior:
4327 * 1st missed -> roaming_threshold, just wait, don't do any scan/roam.
4328 * roaming_threshold -> disassociate_threshold, scan and roam for better signal.
4329 * Above disassociate threshold, give up and stop scanning.
4330 * Roaming is disabled if disassociate_threshold <= roaming_threshold */
ipw_handle_missed_beacon(struct ipw_priv * priv,int missed_count)4331 static void ipw_handle_missed_beacon(struct ipw_priv *priv,
4332 int missed_count)
4333 {
4334 priv->notif_missed_beacons = missed_count;
4335
4336 if (missed_count > priv->disassociate_threshold &&
4337 priv->status & STATUS_ASSOCIATED) {
4338 /* If associated and we've hit the missed
4339 * beacon threshold, disassociate, turn
4340 * off roaming, and abort any active scans */
4341 IPW_DEBUG(IPW_DL_INFO | IPW_DL_NOTIF |
4342 IPW_DL_STATE | IPW_DL_ASSOC,
4343 "Missed beacon: %d - disassociate\n", missed_count);
4344 priv->status &= ~STATUS_ROAMING;
4345 if (priv->status & STATUS_SCANNING) {
4346 IPW_DEBUG(IPW_DL_INFO | IPW_DL_NOTIF |
4347 IPW_DL_STATE,
4348 "Aborting scan with missed beacon.\n");
4349 schedule_work(&priv->abort_scan);
4350 }
4351
4352 schedule_work(&priv->disassociate);
4353 return;
4354 }
4355
4356 if (priv->status & STATUS_ROAMING) {
4357 /* If we are currently roaming, then just
4358 * print a debug statement... */
4359 IPW_DEBUG(IPW_DL_NOTIF | IPW_DL_STATE,
4360 "Missed beacon: %d - roam in progress\n",
4361 missed_count);
4362 return;
4363 }
4364
4365 if (roaming &&
4366 (missed_count > priv->roaming_threshold &&
4367 missed_count <= priv->disassociate_threshold)) {
4368 /* If we are not already roaming, set the ROAM
4369 * bit in the status and kick off a scan.
4370 * This can happen several times before we reach
4371 * disassociate_threshold. */
4372 IPW_DEBUG(IPW_DL_NOTIF | IPW_DL_STATE,
4373 "Missed beacon: %d - initiate "
4374 "roaming\n", missed_count);
4375 if (!(priv->status & STATUS_ROAMING)) {
4376 priv->status |= STATUS_ROAMING;
4377 if (!(priv->status & STATUS_SCANNING))
4378 schedule_delayed_work(&priv->request_scan, 0);
4379 }
4380 return;
4381 }
4382
4383 if (priv->status & STATUS_SCANNING &&
4384 missed_count > IPW_MB_SCAN_CANCEL_THRESHOLD) {
4385 /* Stop scan to keep fw from getting
4386 * stuck (only if we aren't roaming --
4387 * otherwise we'll never scan more than 2 or 3
4388 * channels..) */
4389 IPW_DEBUG(IPW_DL_INFO | IPW_DL_NOTIF | IPW_DL_STATE,
4390 "Aborting scan with missed beacon.\n");
4391 schedule_work(&priv->abort_scan);
4392 }
4393
4394 IPW_DEBUG_NOTIF("Missed beacon: %d\n", missed_count);
4395 }
4396
ipw_scan_event(struct work_struct * work)4397 static void ipw_scan_event(struct work_struct *work)
4398 {
4399 union iwreq_data wrqu;
4400
4401 struct ipw_priv *priv =
4402 container_of(work, struct ipw_priv, scan_event.work);
4403
4404 wrqu.data.length = 0;
4405 wrqu.data.flags = 0;
4406 wireless_send_event(priv->net_dev, SIOCGIWSCAN, &wrqu, NULL);
4407 }
4408
handle_scan_event(struct ipw_priv * priv)4409 static void handle_scan_event(struct ipw_priv *priv)
4410 {
4411 /* Only userspace-requested scan completion events go out immediately */
4412 if (!priv->user_requested_scan) {
4413 schedule_delayed_work(&priv->scan_event,
4414 round_jiffies_relative(msecs_to_jiffies(4000)));
4415 } else {
4416 priv->user_requested_scan = 0;
4417 mod_delayed_work(system_percpu_wq, &priv->scan_event, 0);
4418 }
4419 }
4420
4421 /*
4422 * Handle host notification packet.
4423 * Called from interrupt routine
4424 */
ipw_rx_notification(struct ipw_priv * priv,struct ipw_rx_notification * notif)4425 static void ipw_rx_notification(struct ipw_priv *priv,
4426 struct ipw_rx_notification *notif)
4427 {
4428 u16 size = le16_to_cpu(notif->size);
4429
4430 IPW_DEBUG_NOTIF("type = %i (%d bytes)\n", notif->subtype, size);
4431
4432 switch (notif->subtype) {
4433 case HOST_NOTIFICATION_STATUS_ASSOCIATED:{
4434 struct notif_association *assoc = ¬if->u.assoc;
4435
4436 switch (assoc->state) {
4437 case CMAS_ASSOCIATED:{
4438 IPW_DEBUG(IPW_DL_NOTIF | IPW_DL_STATE |
4439 IPW_DL_ASSOC,
4440 "associated: '%*pE' %pM\n",
4441 priv->essid_len, priv->essid,
4442 priv->bssid);
4443
4444 switch (priv->ieee->iw_mode) {
4445 case IW_MODE_INFRA:
4446 memcpy(priv->ieee->bssid,
4447 priv->bssid, ETH_ALEN);
4448 break;
4449
4450 case IW_MODE_ADHOC:
4451 memcpy(priv->ieee->bssid,
4452 priv->bssid, ETH_ALEN);
4453
4454 /* clear out the station table */
4455 priv->num_stations = 0;
4456
4457 IPW_DEBUG_ASSOC
4458 ("queueing adhoc check\n");
4459 schedule_delayed_work(
4460 &priv->adhoc_check,
4461 le16_to_cpu(priv->
4462 assoc_request.
4463 beacon_interval));
4464 break;
4465 }
4466
4467 priv->status &= ~STATUS_ASSOCIATING;
4468 priv->status |= STATUS_ASSOCIATED;
4469 schedule_work(&priv->system_config);
4470
4471 #ifdef CONFIG_IPW2200_QOS
4472 #define IPW_GET_PACKET_STYPE(x) WLAN_FC_GET_STYPE( \
4473 le16_to_cpu(((struct ieee80211_hdr *)(x))->frame_control))
4474 if ((priv->status & STATUS_AUTH) &&
4475 (IPW_GET_PACKET_STYPE(¬if->u.raw)
4476 == IEEE80211_STYPE_ASSOC_RESP)) {
4477 if ((sizeof
4478 (struct
4479 libipw_assoc_response)
4480 <= size)
4481 && (size <= 2314)) {
4482 struct
4483 libipw_rx_stats
4484 stats = {
4485 .len = size - 1,
4486 };
4487
4488 IPW_DEBUG_QOS
4489 ("QoS Associate "
4490 "size %d\n", size);
4491 libipw_rx_mgt(priv->
4492 ieee,
4493 (struct
4494 libipw_hdr_4addr
4495 *)
4496 ¬if->u.raw, &stats);
4497 }
4498 }
4499 #endif
4500
4501 schedule_work(&priv->link_up);
4502
4503 break;
4504 }
4505
4506 case CMAS_AUTHENTICATED:{
4507 if (priv->
4508 status & (STATUS_ASSOCIATED |
4509 STATUS_AUTH)) {
4510 struct notif_authenticate *auth
4511 = ¬if->u.auth;
4512 IPW_DEBUG(IPW_DL_NOTIF |
4513 IPW_DL_STATE |
4514 IPW_DL_ASSOC,
4515 "deauthenticated: '%*pE' %pM: (0x%04X) - %s\n",
4516 priv->essid_len,
4517 priv->essid,
4518 priv->bssid,
4519 le16_to_cpu(auth->status),
4520 ipw_get_status_code
4521 (le16_to_cpu
4522 (auth->status)));
4523
4524 priv->status &=
4525 ~(STATUS_ASSOCIATING |
4526 STATUS_AUTH |
4527 STATUS_ASSOCIATED);
4528
4529 schedule_work(&priv->link_down);
4530 break;
4531 }
4532
4533 IPW_DEBUG(IPW_DL_NOTIF | IPW_DL_STATE |
4534 IPW_DL_ASSOC,
4535 "authenticated: '%*pE' %pM\n",
4536 priv->essid_len, priv->essid,
4537 priv->bssid);
4538 break;
4539 }
4540
4541 case CMAS_INIT:{
4542 if (priv->status & STATUS_AUTH) {
4543 struct
4544 libipw_assoc_response
4545 *resp;
4546 resp =
4547 (struct
4548 libipw_assoc_response
4549 *)¬if->u.raw;
4550 IPW_DEBUG(IPW_DL_NOTIF |
4551 IPW_DL_STATE |
4552 IPW_DL_ASSOC,
4553 "association failed (0x%04X): %s\n",
4554 le16_to_cpu(resp->status),
4555 ipw_get_status_code
4556 (le16_to_cpu
4557 (resp->status)));
4558 }
4559
4560 IPW_DEBUG(IPW_DL_NOTIF | IPW_DL_STATE |
4561 IPW_DL_ASSOC,
4562 "disassociated: '%*pE' %pM\n",
4563 priv->essid_len, priv->essid,
4564 priv->bssid);
4565
4566 priv->status &=
4567 ~(STATUS_DISASSOCIATING |
4568 STATUS_ASSOCIATING |
4569 STATUS_ASSOCIATED | STATUS_AUTH);
4570 if (priv->assoc_network
4571 && (priv->assoc_network->
4572 capability &
4573 WLAN_CAPABILITY_IBSS))
4574 ipw_remove_current_network
4575 (priv);
4576
4577 schedule_work(&priv->link_down);
4578
4579 break;
4580 }
4581
4582 case CMAS_RX_ASSOC_RESP:
4583 break;
4584
4585 default:
4586 IPW_ERROR("assoc: unknown (%d)\n",
4587 assoc->state);
4588 break;
4589 }
4590
4591 break;
4592 }
4593
4594 case HOST_NOTIFICATION_STATUS_AUTHENTICATE:{
4595 struct notif_authenticate *auth = ¬if->u.auth;
4596 switch (auth->state) {
4597 case CMAS_AUTHENTICATED:
4598 IPW_DEBUG(IPW_DL_NOTIF | IPW_DL_STATE,
4599 "authenticated: '%*pE' %pM\n",
4600 priv->essid_len, priv->essid,
4601 priv->bssid);
4602 priv->status |= STATUS_AUTH;
4603 break;
4604
4605 case CMAS_INIT:
4606 if (priv->status & STATUS_AUTH) {
4607 IPW_DEBUG(IPW_DL_NOTIF | IPW_DL_STATE |
4608 IPW_DL_ASSOC,
4609 "authentication failed (0x%04X): %s\n",
4610 le16_to_cpu(auth->status),
4611 ipw_get_status_code(le16_to_cpu
4612 (auth->
4613 status)));
4614 }
4615 IPW_DEBUG(IPW_DL_NOTIF | IPW_DL_STATE |
4616 IPW_DL_ASSOC,
4617 "deauthenticated: '%*pE' %pM\n",
4618 priv->essid_len, priv->essid,
4619 priv->bssid);
4620
4621 priv->status &= ~(STATUS_ASSOCIATING |
4622 STATUS_AUTH |
4623 STATUS_ASSOCIATED);
4624
4625 schedule_work(&priv->link_down);
4626 break;
4627
4628 case CMAS_TX_AUTH_SEQ_1:
4629 IPW_DEBUG(IPW_DL_NOTIF | IPW_DL_STATE |
4630 IPW_DL_ASSOC, "AUTH_SEQ_1\n");
4631 break;
4632 case CMAS_RX_AUTH_SEQ_2:
4633 IPW_DEBUG(IPW_DL_NOTIF | IPW_DL_STATE |
4634 IPW_DL_ASSOC, "AUTH_SEQ_2\n");
4635 break;
4636 case CMAS_AUTH_SEQ_1_PASS:
4637 IPW_DEBUG(IPW_DL_NOTIF | IPW_DL_STATE |
4638 IPW_DL_ASSOC, "AUTH_SEQ_1_PASS\n");
4639 break;
4640 case CMAS_AUTH_SEQ_1_FAIL:
4641 IPW_DEBUG(IPW_DL_NOTIF | IPW_DL_STATE |
4642 IPW_DL_ASSOC, "AUTH_SEQ_1_FAIL\n");
4643 break;
4644 case CMAS_TX_AUTH_SEQ_3:
4645 IPW_DEBUG(IPW_DL_NOTIF | IPW_DL_STATE |
4646 IPW_DL_ASSOC, "AUTH_SEQ_3\n");
4647 break;
4648 case CMAS_RX_AUTH_SEQ_4:
4649 IPW_DEBUG(IPW_DL_NOTIF | IPW_DL_STATE |
4650 IPW_DL_ASSOC, "RX_AUTH_SEQ_4\n");
4651 break;
4652 case CMAS_AUTH_SEQ_2_PASS:
4653 IPW_DEBUG(IPW_DL_NOTIF | IPW_DL_STATE |
4654 IPW_DL_ASSOC, "AUTH_SEQ_2_PASS\n");
4655 break;
4656 case CMAS_AUTH_SEQ_2_FAIL:
4657 IPW_DEBUG(IPW_DL_NOTIF | IPW_DL_STATE |
4658 IPW_DL_ASSOC, "AUT_SEQ_2_FAIL\n");
4659 break;
4660 case CMAS_TX_ASSOC:
4661 IPW_DEBUG(IPW_DL_NOTIF | IPW_DL_STATE |
4662 IPW_DL_ASSOC, "TX_ASSOC\n");
4663 break;
4664 case CMAS_RX_ASSOC_RESP:
4665 IPW_DEBUG(IPW_DL_NOTIF | IPW_DL_STATE |
4666 IPW_DL_ASSOC, "RX_ASSOC_RESP\n");
4667
4668 break;
4669 case CMAS_ASSOCIATED:
4670 IPW_DEBUG(IPW_DL_NOTIF | IPW_DL_STATE |
4671 IPW_DL_ASSOC, "ASSOCIATED\n");
4672 break;
4673 default:
4674 IPW_DEBUG_NOTIF("auth: failure - %d\n",
4675 auth->state);
4676 break;
4677 }
4678 break;
4679 }
4680
4681 case HOST_NOTIFICATION_STATUS_SCAN_CHANNEL_RESULT:{
4682 struct notif_channel_result *x =
4683 ¬if->u.channel_result;
4684
4685 if (size == sizeof(*x)) {
4686 IPW_DEBUG_SCAN("Scan result for channel %d\n",
4687 x->channel_num);
4688 } else {
4689 IPW_DEBUG_SCAN("Scan result of wrong size %d "
4690 "(should be %zd)\n",
4691 size, sizeof(*x));
4692 }
4693 break;
4694 }
4695
4696 case HOST_NOTIFICATION_STATUS_SCAN_COMPLETED:{
4697 struct notif_scan_complete *x = ¬if->u.scan_complete;
4698 if (size == sizeof(*x)) {
4699 IPW_DEBUG_SCAN
4700 ("Scan completed: type %d, %d channels, "
4701 "%d status\n", x->scan_type,
4702 x->num_channels, x->status);
4703 } else {
4704 IPW_ERROR("Scan completed of wrong size %d "
4705 "(should be %zd)\n",
4706 size, sizeof(*x));
4707 }
4708
4709 priv->status &=
4710 ~(STATUS_SCANNING | STATUS_SCAN_ABORTING);
4711
4712 wake_up_interruptible(&priv->wait_state);
4713 cancel_delayed_work(&priv->scan_check);
4714
4715 if (priv->status & STATUS_EXIT_PENDING)
4716 break;
4717
4718 priv->ieee->scans++;
4719
4720 #ifdef CONFIG_IPW2200_MONITOR
4721 if (priv->ieee->iw_mode == IW_MODE_MONITOR) {
4722 priv->status |= STATUS_SCAN_FORCED;
4723 schedule_delayed_work(&priv->request_scan, 0);
4724 break;
4725 }
4726 priv->status &= ~STATUS_SCAN_FORCED;
4727 #endif /* CONFIG_IPW2200_MONITOR */
4728
4729 /* Do queued direct scans first */
4730 if (priv->status & STATUS_DIRECT_SCAN_PENDING)
4731 schedule_delayed_work(&priv->request_direct_scan, 0);
4732
4733 if (!(priv->status & (STATUS_ASSOCIATED |
4734 STATUS_ASSOCIATING |
4735 STATUS_ROAMING |
4736 STATUS_DISASSOCIATING)))
4737 schedule_work(&priv->associate);
4738 else if (priv->status & STATUS_ROAMING) {
4739 if (x->status == SCAN_COMPLETED_STATUS_COMPLETE)
4740 /* If a scan completed and we are in roam mode, then
4741 * the scan that completed was the one requested as a
4742 * result of entering roam... so, schedule the
4743 * roam work */
4744 schedule_work(&priv->roam);
4745 else
4746 /* Don't schedule if we aborted the scan */
4747 priv->status &= ~STATUS_ROAMING;
4748 } else if (priv->status & STATUS_SCAN_PENDING)
4749 schedule_delayed_work(&priv->request_scan, 0);
4750 else if (priv->config & CFG_BACKGROUND_SCAN
4751 && priv->status & STATUS_ASSOCIATED)
4752 schedule_delayed_work(&priv->request_scan,
4753 round_jiffies_relative(HZ));
4754
4755 /* Send an empty event to user space.
4756 * We don't send the received data on the event because
4757 * it would require us to do complex transcoding, and
4758 * we want to minimise the work done in the irq handler
4759 * Use a request to extract the data.
4760 * Also, we generate this even for any scan, regardless
4761 * on how the scan was initiated. User space can just
4762 * sync on periodic scan to get fresh data...
4763 * Jean II */
4764 if (x->status == SCAN_COMPLETED_STATUS_COMPLETE)
4765 handle_scan_event(priv);
4766 break;
4767 }
4768
4769 case HOST_NOTIFICATION_STATUS_FRAG_LENGTH:{
4770 struct notif_frag_length *x = ¬if->u.frag_len;
4771
4772 if (size == sizeof(*x))
4773 IPW_ERROR("Frag length: %d\n",
4774 le16_to_cpu(x->frag_length));
4775 else
4776 IPW_ERROR("Frag length of wrong size %d "
4777 "(should be %zd)\n",
4778 size, sizeof(*x));
4779 break;
4780 }
4781
4782 case HOST_NOTIFICATION_STATUS_LINK_DETERIORATION:{
4783 struct notif_link_deterioration *x =
4784 ¬if->u.link_deterioration;
4785
4786 if (size == sizeof(*x)) {
4787 IPW_DEBUG(IPW_DL_NOTIF | IPW_DL_STATE,
4788 "link deterioration: type %d, cnt %d\n",
4789 x->silence_notification_type,
4790 x->silence_count);
4791 memcpy(&priv->last_link_deterioration, x,
4792 sizeof(*x));
4793 } else {
4794 IPW_ERROR("Link Deterioration of wrong size %d "
4795 "(should be %zd)\n",
4796 size, sizeof(*x));
4797 }
4798 break;
4799 }
4800
4801 case HOST_NOTIFICATION_DINO_CONFIG_RESPONSE:{
4802 IPW_ERROR("Dino config\n");
4803 if (priv->hcmd
4804 && priv->hcmd->cmd != HOST_CMD_DINO_CONFIG)
4805 IPW_ERROR("Unexpected DINO_CONFIG_RESPONSE\n");
4806
4807 break;
4808 }
4809
4810 case HOST_NOTIFICATION_STATUS_BEACON_STATE:{
4811 struct notif_beacon_state *x = ¬if->u.beacon_state;
4812 if (size != sizeof(*x)) {
4813 IPW_ERROR
4814 ("Beacon state of wrong size %d (should "
4815 "be %zd)\n", size, sizeof(*x));
4816 break;
4817 }
4818
4819 if (le32_to_cpu(x->state) ==
4820 HOST_NOTIFICATION_STATUS_BEACON_MISSING)
4821 ipw_handle_missed_beacon(priv,
4822 le32_to_cpu(x->
4823 number));
4824
4825 break;
4826 }
4827
4828 case HOST_NOTIFICATION_STATUS_TGI_TX_KEY:{
4829 struct notif_tgi_tx_key *x = ¬if->u.tgi_tx_key;
4830 if (size == sizeof(*x)) {
4831 IPW_ERROR("TGi Tx Key: state 0x%02x sec type "
4832 "0x%02x station %d\n",
4833 x->key_state, x->security_type,
4834 x->station_index);
4835 break;
4836 }
4837
4838 IPW_ERROR
4839 ("TGi Tx Key of wrong size %d (should be %zd)\n",
4840 size, sizeof(*x));
4841 break;
4842 }
4843
4844 case HOST_NOTIFICATION_CALIB_KEEP_RESULTS:{
4845 struct notif_calibration *x = ¬if->u.calibration;
4846
4847 if (size == sizeof(*x)) {
4848 memcpy(&priv->calib, x, sizeof(*x));
4849 IPW_DEBUG_INFO("TODO: Calibration\n");
4850 break;
4851 }
4852
4853 IPW_ERROR
4854 ("Calibration of wrong size %d (should be %zd)\n",
4855 size, sizeof(*x));
4856 break;
4857 }
4858
4859 case HOST_NOTIFICATION_NOISE_STATS:{
4860 if (size == sizeof(u32)) {
4861 priv->exp_avg_noise =
4862 exponential_average(priv->exp_avg_noise,
4863 (u8) (le32_to_cpu(notif->u.noise.value) & 0xff),
4864 DEPTH_NOISE);
4865 break;
4866 }
4867
4868 IPW_ERROR
4869 ("Noise stat is wrong size %d (should be %zd)\n",
4870 size, sizeof(u32));
4871 break;
4872 }
4873
4874 default:
4875 IPW_DEBUG_NOTIF("Unknown notification: "
4876 "subtype=%d,flags=0x%2x,size=%d\n",
4877 notif->subtype, notif->flags, size);
4878 }
4879 }
4880
4881 /*
4882 * Destroys all DMA structures and initialise them again
4883 *
4884 * @param priv
4885 * @return error code
4886 */
ipw_queue_reset(struct ipw_priv * priv)4887 static int ipw_queue_reset(struct ipw_priv *priv)
4888 {
4889 int rc = 0;
4890 /* @todo customize queue sizes */
4891 int nTx = 64, nTxCmd = 8;
4892 ipw_tx_queue_free(priv);
4893 /* Tx CMD queue */
4894 rc = ipw_queue_tx_init(priv, &priv->txq_cmd, nTxCmd,
4895 IPW_TX_CMD_QUEUE_READ_INDEX,
4896 IPW_TX_CMD_QUEUE_WRITE_INDEX,
4897 IPW_TX_CMD_QUEUE_BD_BASE,
4898 IPW_TX_CMD_QUEUE_BD_SIZE);
4899 if (rc) {
4900 IPW_ERROR("Tx Cmd queue init failed\n");
4901 goto error;
4902 }
4903 /* Tx queue(s) */
4904 rc = ipw_queue_tx_init(priv, &priv->txq[0], nTx,
4905 IPW_TX_QUEUE_0_READ_INDEX,
4906 IPW_TX_QUEUE_0_WRITE_INDEX,
4907 IPW_TX_QUEUE_0_BD_BASE, IPW_TX_QUEUE_0_BD_SIZE);
4908 if (rc) {
4909 IPW_ERROR("Tx 0 queue init failed\n");
4910 goto error;
4911 }
4912 rc = ipw_queue_tx_init(priv, &priv->txq[1], nTx,
4913 IPW_TX_QUEUE_1_READ_INDEX,
4914 IPW_TX_QUEUE_1_WRITE_INDEX,
4915 IPW_TX_QUEUE_1_BD_BASE, IPW_TX_QUEUE_1_BD_SIZE);
4916 if (rc) {
4917 IPW_ERROR("Tx 1 queue init failed\n");
4918 goto error;
4919 }
4920 rc = ipw_queue_tx_init(priv, &priv->txq[2], nTx,
4921 IPW_TX_QUEUE_2_READ_INDEX,
4922 IPW_TX_QUEUE_2_WRITE_INDEX,
4923 IPW_TX_QUEUE_2_BD_BASE, IPW_TX_QUEUE_2_BD_SIZE);
4924 if (rc) {
4925 IPW_ERROR("Tx 2 queue init failed\n");
4926 goto error;
4927 }
4928 rc = ipw_queue_tx_init(priv, &priv->txq[3], nTx,
4929 IPW_TX_QUEUE_3_READ_INDEX,
4930 IPW_TX_QUEUE_3_WRITE_INDEX,
4931 IPW_TX_QUEUE_3_BD_BASE, IPW_TX_QUEUE_3_BD_SIZE);
4932 if (rc) {
4933 IPW_ERROR("Tx 3 queue init failed\n");
4934 goto error;
4935 }
4936 /* statistics */
4937 priv->rx_bufs_min = 0;
4938 priv->rx_pend_max = 0;
4939 return rc;
4940
4941 error:
4942 ipw_tx_queue_free(priv);
4943 return rc;
4944 }
4945
4946 /*
4947 * Reclaim Tx queue entries no more used by NIC.
4948 *
4949 * When FW advances 'R' index, all entries between old and
4950 * new 'R' index need to be reclaimed. As result, some free space
4951 * forms. If there is enough free space (> low mark), wake Tx queue.
4952 *
4953 * @note Need to protect against garbage in 'R' index
4954 * @param priv
4955 * @param txq
4956 * @param qindex
4957 * @return Number of used entries remains in the queue
4958 */
ipw_queue_tx_reclaim(struct ipw_priv * priv,struct clx2_tx_queue * txq,int qindex)4959 static int ipw_queue_tx_reclaim(struct ipw_priv *priv,
4960 struct clx2_tx_queue *txq, int qindex)
4961 {
4962 u32 hw_tail;
4963 int used;
4964 struct clx2_queue *q = &txq->q;
4965
4966 hw_tail = ipw_read32(priv, q->reg_r);
4967 if (hw_tail >= q->n_bd) {
4968 IPW_ERROR
4969 ("Read index for DMA queue (%d) is out of range [0-%d)\n",
4970 hw_tail, q->n_bd);
4971 goto done;
4972 }
4973 for (; q->last_used != hw_tail;
4974 q->last_used = ipw_queue_inc_wrap(q->last_used, q->n_bd)) {
4975 ipw_queue_tx_free_tfd(priv, txq);
4976 priv->tx_packets++;
4977 }
4978 done:
4979 if ((ipw_tx_queue_space(q) > q->low_mark) &&
4980 (qindex >= 0))
4981 netif_wake_queue(priv->net_dev);
4982 used = q->first_empty - q->last_used;
4983 if (used < 0)
4984 used += q->n_bd;
4985
4986 return used;
4987 }
4988
ipw_queue_tx_hcmd(struct ipw_priv * priv,int hcmd,const void * buf,int len,int sync)4989 static int ipw_queue_tx_hcmd(struct ipw_priv *priv, int hcmd, const void *buf,
4990 int len, int sync)
4991 {
4992 struct clx2_tx_queue *txq = &priv->txq_cmd;
4993 struct clx2_queue *q = &txq->q;
4994 struct tfd_frame *tfd;
4995
4996 if (ipw_tx_queue_space(q) < (sync ? 1 : 2)) {
4997 IPW_ERROR("No space for Tx\n");
4998 return -EBUSY;
4999 }
5000
5001 tfd = &txq->bd[q->first_empty];
5002 txq->txb[q->first_empty] = NULL;
5003
5004 memset(tfd, 0, sizeof(*tfd));
5005 tfd->control_flags.message_type = TX_HOST_COMMAND_TYPE;
5006 tfd->control_flags.control_bits = TFD_NEED_IRQ_MASK;
5007 priv->hcmd_seq++;
5008 tfd->u.cmd.index = hcmd;
5009 tfd->u.cmd.length = len;
5010 memcpy(tfd->u.cmd.payload, buf, len);
5011 q->first_empty = ipw_queue_inc_wrap(q->first_empty, q->n_bd);
5012 ipw_write32(priv, q->reg_w, q->first_empty);
5013 _ipw_read32(priv, 0x90);
5014
5015 return 0;
5016 }
5017
5018 /*
5019 * Rx theory of operation
5020 *
5021 * The host allocates 32 DMA target addresses and passes the host address
5022 * to the firmware at register IPW_RFDS_TABLE_LOWER + N * RFD_SIZE where N is
5023 * 0 to 31
5024 *
5025 * Rx Queue Indexes
5026 * The host/firmware share two index registers for managing the Rx buffers.
5027 *
5028 * The READ index maps to the first position that the firmware may be writing
5029 * to -- the driver can read up to (but not including) this position and get
5030 * good data.
5031 * The READ index is managed by the firmware once the card is enabled.
5032 *
5033 * The WRITE index maps to the last position the driver has read from -- the
5034 * position preceding WRITE is the last slot the firmware can place a packet.
5035 *
5036 * The queue is empty (no good data) if WRITE = READ - 1, and is full if
5037 * WRITE = READ.
5038 *
5039 * During initialization the host sets up the READ queue position to the first
5040 * INDEX position, and WRITE to the last (READ - 1 wrapped)
5041 *
5042 * When the firmware places a packet in a buffer it will advance the READ index
5043 * and fire the RX interrupt. The driver can then query the READ index and
5044 * process as many packets as possible, moving the WRITE index forward as it
5045 * resets the Rx queue buffers with new memory.
5046 *
5047 * The management in the driver is as follows:
5048 * + A list of pre-allocated SKBs is stored in ipw->rxq->rx_free. When
5049 * ipw->rxq->free_count drops to or below RX_LOW_WATERMARK, work is scheduled
5050 * to replensish the ipw->rxq->rx_free.
5051 * + In ipw_rx_queue_replenish (scheduled) if 'processed' != 'read' then the
5052 * ipw->rxq is replenished and the READ INDEX is updated (updating the
5053 * 'processed' and 'read' driver indexes as well)
5054 * + A received packet is processed and handed to the kernel network stack,
5055 * detached from the ipw->rxq. The driver 'processed' index is updated.
5056 * + The Host/Firmware ipw->rxq is replenished at tasklet time from the rx_free
5057 * list. If there are no allocated buffers in ipw->rxq->rx_free, the READ
5058 * INDEX is not incremented and ipw->status(RX_STALLED) is set. If there
5059 * were enough free buffers and RX_STALLED is set it is cleared.
5060 *
5061 *
5062 * Driver sequence:
5063 *
5064 * ipw_rx_queue_alloc() Allocates rx_free
5065 * ipw_rx_queue_replenish() Replenishes rx_free list from rx_used, and calls
5066 * ipw_rx_queue_restock
5067 * ipw_rx_queue_restock() Moves available buffers from rx_free into Rx
5068 * queue, updates firmware pointers, and updates
5069 * the WRITE index. If insufficient rx_free buffers
5070 * are available, schedules ipw_rx_queue_replenish
5071 *
5072 * -- enable interrupts --
5073 * ISR - ipw_rx() Detach ipw_rx_mem_buffers from pool up to the
5074 * READ INDEX, detaching the SKB from the pool.
5075 * Moves the packet buffer from queue to rx_used.
5076 * Calls ipw_rx_queue_restock to refill any empty
5077 * slots.
5078 * ...
5079 *
5080 */
5081
5082 /*
5083 * If there are slots in the RX queue that need to be restocked,
5084 * and we have free pre-allocated buffers, fill the ranks as much
5085 * as we can pulling from rx_free.
5086 *
5087 * This moves the 'write' index forward to catch up with 'processed', and
5088 * also updates the memory address in the firmware to reference the new
5089 * target buffer.
5090 */
ipw_rx_queue_restock(struct ipw_priv * priv)5091 static void ipw_rx_queue_restock(struct ipw_priv *priv)
5092 {
5093 struct ipw_rx_queue *rxq = priv->rxq;
5094 struct list_head *element;
5095 struct ipw_rx_mem_buffer *rxb;
5096 unsigned long flags;
5097 int write;
5098
5099 spin_lock_irqsave(&rxq->lock, flags);
5100 write = rxq->write;
5101 while ((ipw_rx_queue_space(rxq) > 0) && (rxq->free_count)) {
5102 element = rxq->rx_free.next;
5103 rxb = list_entry(element, struct ipw_rx_mem_buffer, list);
5104 list_del(element);
5105
5106 ipw_write32(priv, IPW_RFDS_TABLE_LOWER + rxq->write * RFD_SIZE,
5107 rxb->dma_addr);
5108 rxq->queue[rxq->write] = rxb;
5109 rxq->write = (rxq->write + 1) % RX_QUEUE_SIZE;
5110 rxq->free_count--;
5111 }
5112 spin_unlock_irqrestore(&rxq->lock, flags);
5113
5114 /* If the pre-allocated buffer pool is dropping low, schedule to
5115 * refill it */
5116 if (rxq->free_count <= RX_LOW_WATERMARK)
5117 schedule_work(&priv->rx_replenish);
5118
5119 /* If we've added more space for the firmware to place data, tell it */
5120 if (write != rxq->write)
5121 ipw_write32(priv, IPW_RX_WRITE_INDEX, rxq->write);
5122 }
5123
5124 /*
5125 * Move all used packet from rx_used to rx_free, allocating a new SKB for each.
5126 * Also restock the Rx queue via ipw_rx_queue_restock.
5127 *
5128 * This is called as a scheduled work item (except for during initialization)
5129 */
ipw_rx_queue_replenish(void * data)5130 static void ipw_rx_queue_replenish(void *data)
5131 {
5132 struct ipw_priv *priv = data;
5133 struct ipw_rx_queue *rxq = priv->rxq;
5134 struct list_head *element;
5135 struct ipw_rx_mem_buffer *rxb;
5136 unsigned long flags;
5137
5138 spin_lock_irqsave(&rxq->lock, flags);
5139 while (!list_empty(&rxq->rx_used)) {
5140 element = rxq->rx_used.next;
5141 rxb = list_entry(element, struct ipw_rx_mem_buffer, list);
5142 rxb->skb = alloc_skb(IPW_RX_BUF_SIZE, GFP_ATOMIC);
5143 if (!rxb->skb) {
5144 printk(KERN_CRIT "%s: Can not allocate SKB buffers.\n",
5145 priv->net_dev->name);
5146 /* We don't reschedule replenish work here -- we will
5147 * call the restock method and if it still needs
5148 * more buffers it will schedule replenish */
5149 break;
5150 }
5151 list_del(element);
5152
5153 rxb->dma_addr =
5154 dma_map_single(&priv->pci_dev->dev, rxb->skb->data,
5155 IPW_RX_BUF_SIZE, DMA_FROM_DEVICE);
5156
5157 list_add_tail(&rxb->list, &rxq->rx_free);
5158 rxq->free_count++;
5159 }
5160 spin_unlock_irqrestore(&rxq->lock, flags);
5161
5162 ipw_rx_queue_restock(priv);
5163 }
5164
ipw_bg_rx_queue_replenish(struct work_struct * work)5165 static void ipw_bg_rx_queue_replenish(struct work_struct *work)
5166 {
5167 struct ipw_priv *priv =
5168 container_of(work, struct ipw_priv, rx_replenish);
5169 mutex_lock(&priv->mutex);
5170 ipw_rx_queue_replenish(priv);
5171 mutex_unlock(&priv->mutex);
5172 }
5173
5174 /* Assumes that the skb field of the buffers in 'pool' is kept accurate.
5175 * If an SKB has been detached, the POOL needs to have its SKB set to NULL
5176 * This free routine walks the list of POOL entries and if SKB is set to
5177 * non NULL it is unmapped and freed
5178 */
ipw_rx_queue_free(struct ipw_priv * priv,struct ipw_rx_queue * rxq)5179 static void ipw_rx_queue_free(struct ipw_priv *priv, struct ipw_rx_queue *rxq)
5180 {
5181 int i;
5182
5183 if (!rxq)
5184 return;
5185
5186 for (i = 0; i < RX_QUEUE_SIZE + RX_FREE_BUFFERS; i++) {
5187 if (rxq->pool[i].skb != NULL) {
5188 dma_unmap_single(&priv->pci_dev->dev,
5189 rxq->pool[i].dma_addr,
5190 IPW_RX_BUF_SIZE, DMA_FROM_DEVICE);
5191 dev_kfree_skb(rxq->pool[i].skb);
5192 }
5193 }
5194
5195 kfree(rxq);
5196 }
5197
ipw_rx_queue_alloc(struct ipw_priv * priv)5198 static struct ipw_rx_queue *ipw_rx_queue_alloc(struct ipw_priv *priv)
5199 {
5200 struct ipw_rx_queue *rxq;
5201 int i;
5202
5203 rxq = kzalloc_obj(*rxq);
5204 if (unlikely(!rxq)) {
5205 IPW_ERROR("memory allocation failed\n");
5206 return NULL;
5207 }
5208 spin_lock_init(&rxq->lock);
5209 INIT_LIST_HEAD(&rxq->rx_free);
5210 INIT_LIST_HEAD(&rxq->rx_used);
5211
5212 /* Fill the rx_used queue with _all_ of the Rx buffers */
5213 for (i = 0; i < RX_FREE_BUFFERS + RX_QUEUE_SIZE; i++)
5214 list_add_tail(&rxq->pool[i].list, &rxq->rx_used);
5215
5216 /* Set us so that we have processed and used all buffers, but have
5217 * not restocked the Rx queue with fresh buffers */
5218 rxq->read = rxq->write = 0;
5219 rxq->free_count = 0;
5220
5221 return rxq;
5222 }
5223
ipw_is_rate_in_mask(struct ipw_priv * priv,int ieee_mode,u8 rate)5224 static int ipw_is_rate_in_mask(struct ipw_priv *priv, int ieee_mode, u8 rate)
5225 {
5226 rate &= ~LIBIPW_BASIC_RATE_MASK;
5227 if (ieee_mode == IEEE_A) {
5228 switch (rate) {
5229 case LIBIPW_OFDM_RATE_6MB:
5230 return priv->rates_mask & LIBIPW_OFDM_RATE_6MB_MASK ?
5231 1 : 0;
5232 case LIBIPW_OFDM_RATE_9MB:
5233 return priv->rates_mask & LIBIPW_OFDM_RATE_9MB_MASK ?
5234 1 : 0;
5235 case LIBIPW_OFDM_RATE_12MB:
5236 return priv->
5237 rates_mask & LIBIPW_OFDM_RATE_12MB_MASK ? 1 : 0;
5238 case LIBIPW_OFDM_RATE_18MB:
5239 return priv->
5240 rates_mask & LIBIPW_OFDM_RATE_18MB_MASK ? 1 : 0;
5241 case LIBIPW_OFDM_RATE_24MB:
5242 return priv->
5243 rates_mask & LIBIPW_OFDM_RATE_24MB_MASK ? 1 : 0;
5244 case LIBIPW_OFDM_RATE_36MB:
5245 return priv->
5246 rates_mask & LIBIPW_OFDM_RATE_36MB_MASK ? 1 : 0;
5247 case LIBIPW_OFDM_RATE_48MB:
5248 return priv->
5249 rates_mask & LIBIPW_OFDM_RATE_48MB_MASK ? 1 : 0;
5250 case LIBIPW_OFDM_RATE_54MB:
5251 return priv->
5252 rates_mask & LIBIPW_OFDM_RATE_54MB_MASK ? 1 : 0;
5253 default:
5254 return 0;
5255 }
5256 }
5257
5258 /* B and G mixed */
5259 switch (rate) {
5260 case LIBIPW_CCK_RATE_1MB:
5261 return priv->rates_mask & LIBIPW_CCK_RATE_1MB_MASK ? 1 : 0;
5262 case LIBIPW_CCK_RATE_2MB:
5263 return priv->rates_mask & LIBIPW_CCK_RATE_2MB_MASK ? 1 : 0;
5264 case LIBIPW_CCK_RATE_5MB:
5265 return priv->rates_mask & LIBIPW_CCK_RATE_5MB_MASK ? 1 : 0;
5266 case LIBIPW_CCK_RATE_11MB:
5267 return priv->rates_mask & LIBIPW_CCK_RATE_11MB_MASK ? 1 : 0;
5268 }
5269
5270 /* If we are limited to B modulations, bail at this point */
5271 if (ieee_mode == IEEE_B)
5272 return 0;
5273
5274 /* G */
5275 switch (rate) {
5276 case LIBIPW_OFDM_RATE_6MB:
5277 return priv->rates_mask & LIBIPW_OFDM_RATE_6MB_MASK ? 1 : 0;
5278 case LIBIPW_OFDM_RATE_9MB:
5279 return priv->rates_mask & LIBIPW_OFDM_RATE_9MB_MASK ? 1 : 0;
5280 case LIBIPW_OFDM_RATE_12MB:
5281 return priv->rates_mask & LIBIPW_OFDM_RATE_12MB_MASK ? 1 : 0;
5282 case LIBIPW_OFDM_RATE_18MB:
5283 return priv->rates_mask & LIBIPW_OFDM_RATE_18MB_MASK ? 1 : 0;
5284 case LIBIPW_OFDM_RATE_24MB:
5285 return priv->rates_mask & LIBIPW_OFDM_RATE_24MB_MASK ? 1 : 0;
5286 case LIBIPW_OFDM_RATE_36MB:
5287 return priv->rates_mask & LIBIPW_OFDM_RATE_36MB_MASK ? 1 : 0;
5288 case LIBIPW_OFDM_RATE_48MB:
5289 return priv->rates_mask & LIBIPW_OFDM_RATE_48MB_MASK ? 1 : 0;
5290 case LIBIPW_OFDM_RATE_54MB:
5291 return priv->rates_mask & LIBIPW_OFDM_RATE_54MB_MASK ? 1 : 0;
5292 }
5293
5294 return 0;
5295 }
5296
ipw_compatible_rates(struct ipw_priv * priv,const struct libipw_network * network,struct ipw_supported_rates * rates)5297 static int ipw_compatible_rates(struct ipw_priv *priv,
5298 const struct libipw_network *network,
5299 struct ipw_supported_rates *rates)
5300 {
5301 int num_rates, i;
5302
5303 memset(rates, 0, sizeof(*rates));
5304 num_rates = min(network->rates_len, (u8) IPW_MAX_RATES);
5305 rates->num_rates = 0;
5306 for (i = 0; i < num_rates; i++) {
5307 if (!ipw_is_rate_in_mask(priv, network->mode,
5308 network->rates[i])) {
5309
5310 if (network->rates[i] & LIBIPW_BASIC_RATE_MASK) {
5311 IPW_DEBUG_SCAN("Adding masked mandatory "
5312 "rate %02X\n",
5313 network->rates[i]);
5314 rates->supported_rates[rates->num_rates++] =
5315 network->rates[i];
5316 continue;
5317 }
5318
5319 IPW_DEBUG_SCAN("Rate %02X masked : 0x%08X\n",
5320 network->rates[i], priv->rates_mask);
5321 continue;
5322 }
5323
5324 rates->supported_rates[rates->num_rates++] = network->rates[i];
5325 }
5326
5327 num_rates = min(network->rates_ex_len,
5328 (u8) (IPW_MAX_RATES - num_rates));
5329 for (i = 0; i < num_rates; i++) {
5330 if (!ipw_is_rate_in_mask(priv, network->mode,
5331 network->rates_ex[i])) {
5332 if (network->rates_ex[i] & LIBIPW_BASIC_RATE_MASK) {
5333 IPW_DEBUG_SCAN("Adding masked mandatory "
5334 "rate %02X\n",
5335 network->rates_ex[i]);
5336 rates->supported_rates[rates->num_rates++] =
5337 network->rates[i];
5338 continue;
5339 }
5340
5341 IPW_DEBUG_SCAN("Rate %02X masked : 0x%08X\n",
5342 network->rates_ex[i], priv->rates_mask);
5343 continue;
5344 }
5345
5346 rates->supported_rates[rates->num_rates++] =
5347 network->rates_ex[i];
5348 }
5349
5350 return 1;
5351 }
5352
ipw_copy_rates(struct ipw_supported_rates * dest,const struct ipw_supported_rates * src)5353 static void ipw_copy_rates(struct ipw_supported_rates *dest,
5354 const struct ipw_supported_rates *src)
5355 {
5356 u8 i;
5357 for (i = 0; i < src->num_rates; i++)
5358 dest->supported_rates[i] = src->supported_rates[i];
5359 dest->num_rates = src->num_rates;
5360 }
5361
5362 /* TODO: Look at sniffed packets in the air to determine if the basic rate
5363 * mask should ever be used -- right now all callers to add the scan rates are
5364 * set with the modulation = CCK, so BASIC_RATE_MASK is never set... */
ipw_add_cck_scan_rates(struct ipw_supported_rates * rates,u8 modulation,u32 rate_mask)5365 static void ipw_add_cck_scan_rates(struct ipw_supported_rates *rates,
5366 u8 modulation, u32 rate_mask)
5367 {
5368 u8 basic_mask = (LIBIPW_OFDM_MODULATION == modulation) ?
5369 LIBIPW_BASIC_RATE_MASK : 0;
5370
5371 if (rate_mask & LIBIPW_CCK_RATE_1MB_MASK)
5372 rates->supported_rates[rates->num_rates++] =
5373 LIBIPW_BASIC_RATE_MASK | LIBIPW_CCK_RATE_1MB;
5374
5375 if (rate_mask & LIBIPW_CCK_RATE_2MB_MASK)
5376 rates->supported_rates[rates->num_rates++] =
5377 LIBIPW_BASIC_RATE_MASK | LIBIPW_CCK_RATE_2MB;
5378
5379 if (rate_mask & LIBIPW_CCK_RATE_5MB_MASK)
5380 rates->supported_rates[rates->num_rates++] = basic_mask |
5381 LIBIPW_CCK_RATE_5MB;
5382
5383 if (rate_mask & LIBIPW_CCK_RATE_11MB_MASK)
5384 rates->supported_rates[rates->num_rates++] = basic_mask |
5385 LIBIPW_CCK_RATE_11MB;
5386 }
5387
ipw_add_ofdm_scan_rates(struct ipw_supported_rates * rates,u8 modulation,u32 rate_mask)5388 static void ipw_add_ofdm_scan_rates(struct ipw_supported_rates *rates,
5389 u8 modulation, u32 rate_mask)
5390 {
5391 u8 basic_mask = (LIBIPW_OFDM_MODULATION == modulation) ?
5392 LIBIPW_BASIC_RATE_MASK : 0;
5393
5394 if (rate_mask & LIBIPW_OFDM_RATE_6MB_MASK)
5395 rates->supported_rates[rates->num_rates++] = basic_mask |
5396 LIBIPW_OFDM_RATE_6MB;
5397
5398 if (rate_mask & LIBIPW_OFDM_RATE_9MB_MASK)
5399 rates->supported_rates[rates->num_rates++] =
5400 LIBIPW_OFDM_RATE_9MB;
5401
5402 if (rate_mask & LIBIPW_OFDM_RATE_12MB_MASK)
5403 rates->supported_rates[rates->num_rates++] = basic_mask |
5404 LIBIPW_OFDM_RATE_12MB;
5405
5406 if (rate_mask & LIBIPW_OFDM_RATE_18MB_MASK)
5407 rates->supported_rates[rates->num_rates++] =
5408 LIBIPW_OFDM_RATE_18MB;
5409
5410 if (rate_mask & LIBIPW_OFDM_RATE_24MB_MASK)
5411 rates->supported_rates[rates->num_rates++] = basic_mask |
5412 LIBIPW_OFDM_RATE_24MB;
5413
5414 if (rate_mask & LIBIPW_OFDM_RATE_36MB_MASK)
5415 rates->supported_rates[rates->num_rates++] =
5416 LIBIPW_OFDM_RATE_36MB;
5417
5418 if (rate_mask & LIBIPW_OFDM_RATE_48MB_MASK)
5419 rates->supported_rates[rates->num_rates++] =
5420 LIBIPW_OFDM_RATE_48MB;
5421
5422 if (rate_mask & LIBIPW_OFDM_RATE_54MB_MASK)
5423 rates->supported_rates[rates->num_rates++] =
5424 LIBIPW_OFDM_RATE_54MB;
5425 }
5426
5427 struct ipw_network_match {
5428 struct libipw_network *network;
5429 struct ipw_supported_rates rates;
5430 };
5431
ipw_find_adhoc_network(struct ipw_priv * priv,struct ipw_network_match * match,struct libipw_network * network,int roaming)5432 static int ipw_find_adhoc_network(struct ipw_priv *priv,
5433 struct ipw_network_match *match,
5434 struct libipw_network *network,
5435 int roaming)
5436 {
5437 struct ipw_supported_rates rates;
5438
5439 /* Verify that this network's capability is compatible with the
5440 * current mode (AdHoc or Infrastructure) */
5441 if ((priv->ieee->iw_mode == IW_MODE_ADHOC &&
5442 !(network->capability & WLAN_CAPABILITY_IBSS))) {
5443 IPW_DEBUG_MERGE("Network '%*pE (%pM)' excluded due to capability mismatch.\n",
5444 network->ssid_len, network->ssid,
5445 network->bssid);
5446 return 0;
5447 }
5448
5449 if (unlikely(roaming)) {
5450 /* If we are roaming, then ensure check if this is a valid
5451 * network to try and roam to */
5452 if ((network->ssid_len != match->network->ssid_len) ||
5453 memcmp(network->ssid, match->network->ssid,
5454 network->ssid_len)) {
5455 IPW_DEBUG_MERGE("Network '%*pE (%pM)' excluded because of non-network ESSID.\n",
5456 network->ssid_len, network->ssid,
5457 network->bssid);
5458 return 0;
5459 }
5460 } else {
5461 /* If an ESSID has been configured then compare the broadcast
5462 * ESSID to ours */
5463 if ((priv->config & CFG_STATIC_ESSID) &&
5464 ((network->ssid_len != priv->essid_len) ||
5465 memcmp(network->ssid, priv->essid,
5466 min(network->ssid_len, priv->essid_len)))) {
5467 IPW_DEBUG_MERGE("Network '%*pE (%pM)' excluded because of ESSID mismatch: '%*pE'.\n",
5468 network->ssid_len, network->ssid,
5469 network->bssid, priv->essid_len,
5470 priv->essid);
5471 return 0;
5472 }
5473 }
5474
5475 /* If the old network rate is better than this one, don't bother
5476 * testing everything else. */
5477
5478 if (network->time_stamp[0] < match->network->time_stamp[0]) {
5479 IPW_DEBUG_MERGE("Network '%*pE excluded because newer than current network.\n",
5480 match->network->ssid_len, match->network->ssid);
5481 return 0;
5482 } else if (network->time_stamp[1] < match->network->time_stamp[1]) {
5483 IPW_DEBUG_MERGE("Network '%*pE excluded because newer than current network.\n",
5484 match->network->ssid_len, match->network->ssid);
5485 return 0;
5486 }
5487
5488 /* Now go through and see if the requested network is valid... */
5489 if (priv->ieee->scan_age != 0 &&
5490 time_after(jiffies, network->last_scanned + priv->ieee->scan_age)) {
5491 IPW_DEBUG_MERGE("Network '%*pE (%pM)' excluded because of age: %ums.\n",
5492 network->ssid_len, network->ssid,
5493 network->bssid,
5494 jiffies_to_msecs(jiffies -
5495 network->last_scanned));
5496 return 0;
5497 }
5498
5499 if ((priv->config & CFG_STATIC_CHANNEL) &&
5500 (network->channel != priv->channel)) {
5501 IPW_DEBUG_MERGE("Network '%*pE (%pM)' excluded because of channel mismatch: %d != %d.\n",
5502 network->ssid_len, network->ssid,
5503 network->bssid,
5504 network->channel, priv->channel);
5505 return 0;
5506 }
5507
5508 /* Verify privacy compatibility */
5509 if (((priv->capability & CAP_PRIVACY_ON) ? 1 : 0) !=
5510 ((network->capability & WLAN_CAPABILITY_PRIVACY) ? 1 : 0)) {
5511 IPW_DEBUG_MERGE("Network '%*pE (%pM)' excluded because of privacy mismatch: %s != %s.\n",
5512 network->ssid_len, network->ssid,
5513 network->bssid,
5514 priv->
5515 capability & CAP_PRIVACY_ON ? "on" : "off",
5516 network->
5517 capability & WLAN_CAPABILITY_PRIVACY ? "on" :
5518 "off");
5519 return 0;
5520 }
5521
5522 if (ether_addr_equal(network->bssid, priv->bssid)) {
5523 IPW_DEBUG_MERGE("Network '%*pE (%pM)' excluded because of the same BSSID match: %pM.\n",
5524 network->ssid_len, network->ssid,
5525 network->bssid, priv->bssid);
5526 return 0;
5527 }
5528
5529 /* Filter out any incompatible freq / mode combinations */
5530 if (!libipw_is_valid_mode(priv->ieee, network->mode)) {
5531 IPW_DEBUG_MERGE("Network '%*pE (%pM)' excluded because of invalid frequency/mode combination.\n",
5532 network->ssid_len, network->ssid,
5533 network->bssid);
5534 return 0;
5535 }
5536
5537 /* Ensure that the rates supported by the driver are compatible with
5538 * this AP, including verification of basic rates (mandatory) */
5539 if (!ipw_compatible_rates(priv, network, &rates)) {
5540 IPW_DEBUG_MERGE("Network '%*pE (%pM)' excluded because configured rate mask excludes AP mandatory rate.\n",
5541 network->ssid_len, network->ssid,
5542 network->bssid);
5543 return 0;
5544 }
5545
5546 if (rates.num_rates == 0) {
5547 IPW_DEBUG_MERGE("Network '%*pE (%pM)' excluded because of no compatible rates.\n",
5548 network->ssid_len, network->ssid,
5549 network->bssid);
5550 return 0;
5551 }
5552
5553 /* TODO: Perform any further minimal comparititive tests. We do not
5554 * want to put too much policy logic here; intelligent scan selection
5555 * should occur within a generic IEEE 802.11 user space tool. */
5556
5557 /* Set up 'new' AP to this network */
5558 ipw_copy_rates(&match->rates, &rates);
5559 match->network = network;
5560 IPW_DEBUG_MERGE("Network '%*pE (%pM)' is a viable match.\n",
5561 network->ssid_len, network->ssid, network->bssid);
5562
5563 return 1;
5564 }
5565
ipw_merge_adhoc_network(struct work_struct * work)5566 static void ipw_merge_adhoc_network(struct work_struct *work)
5567 {
5568 struct ipw_priv *priv =
5569 container_of(work, struct ipw_priv, merge_networks);
5570 struct libipw_network *network = NULL;
5571 struct ipw_network_match match = {
5572 .network = priv->assoc_network
5573 };
5574
5575 if ((priv->status & STATUS_ASSOCIATED) &&
5576 (priv->ieee->iw_mode == IW_MODE_ADHOC)) {
5577 /* First pass through ROAM process -- look for a better
5578 * network */
5579 unsigned long flags;
5580
5581 spin_lock_irqsave(&priv->ieee->lock, flags);
5582 list_for_each_entry(network, &priv->ieee->network_list, list) {
5583 if (network != priv->assoc_network)
5584 ipw_find_adhoc_network(priv, &match, network,
5585 1);
5586 }
5587 spin_unlock_irqrestore(&priv->ieee->lock, flags);
5588
5589 if (match.network == priv->assoc_network) {
5590 IPW_DEBUG_MERGE("No better ADHOC in this network to "
5591 "merge to.\n");
5592 return;
5593 }
5594
5595 mutex_lock(&priv->mutex);
5596 if (priv->ieee->iw_mode == IW_MODE_ADHOC) {
5597 IPW_DEBUG_MERGE("remove network %*pE\n",
5598 priv->essid_len, priv->essid);
5599 ipw_remove_current_network(priv);
5600 }
5601
5602 ipw_disassociate(priv);
5603 priv->assoc_network = match.network;
5604 mutex_unlock(&priv->mutex);
5605 return;
5606 }
5607 }
5608
ipw_best_network(struct ipw_priv * priv,struct ipw_network_match * match,struct libipw_network * network,int roaming)5609 static int ipw_best_network(struct ipw_priv *priv,
5610 struct ipw_network_match *match,
5611 struct libipw_network *network, int roaming)
5612 {
5613 struct ipw_supported_rates rates;
5614
5615 /* Verify that this network's capability is compatible with the
5616 * current mode (AdHoc or Infrastructure) */
5617 if ((priv->ieee->iw_mode == IW_MODE_INFRA &&
5618 !(network->capability & WLAN_CAPABILITY_ESS)) ||
5619 (priv->ieee->iw_mode == IW_MODE_ADHOC &&
5620 !(network->capability & WLAN_CAPABILITY_IBSS))) {
5621 IPW_DEBUG_ASSOC("Network '%*pE (%pM)' excluded due to capability mismatch.\n",
5622 network->ssid_len, network->ssid,
5623 network->bssid);
5624 return 0;
5625 }
5626
5627 if (unlikely(roaming)) {
5628 /* If we are roaming, then ensure check if this is a valid
5629 * network to try and roam to */
5630 if ((network->ssid_len != match->network->ssid_len) ||
5631 memcmp(network->ssid, match->network->ssid,
5632 network->ssid_len)) {
5633 IPW_DEBUG_ASSOC("Network '%*pE (%pM)' excluded because of non-network ESSID.\n",
5634 network->ssid_len, network->ssid,
5635 network->bssid);
5636 return 0;
5637 }
5638 } else {
5639 /* If an ESSID has been configured then compare the broadcast
5640 * ESSID to ours */
5641 if ((priv->config & CFG_STATIC_ESSID) &&
5642 ((network->ssid_len != priv->essid_len) ||
5643 memcmp(network->ssid, priv->essid,
5644 min(network->ssid_len, priv->essid_len)))) {
5645 IPW_DEBUG_ASSOC("Network '%*pE (%pM)' excluded because of ESSID mismatch: '%*pE'.\n",
5646 network->ssid_len, network->ssid,
5647 network->bssid, priv->essid_len,
5648 priv->essid);
5649 return 0;
5650 }
5651 }
5652
5653 /* If the old network rate is better than this one, don't bother
5654 * testing everything else. */
5655 if (match->network && match->network->stats.rssi > network->stats.rssi) {
5656 IPW_DEBUG_ASSOC("Network '%*pE (%pM)' excluded because '%*pE (%pM)' has a stronger signal.\n",
5657 network->ssid_len, network->ssid,
5658 network->bssid, match->network->ssid_len,
5659 match->network->ssid, match->network->bssid);
5660 return 0;
5661 }
5662
5663 /* If this network has already had an association attempt within the
5664 * last 3 seconds, do not try and associate again... */
5665 if (network->last_associate &&
5666 time_after(network->last_associate + (HZ * 3UL), jiffies)) {
5667 IPW_DEBUG_ASSOC("Network '%*pE (%pM)' excluded because of storming (%ums since last assoc attempt).\n",
5668 network->ssid_len, network->ssid,
5669 network->bssid,
5670 jiffies_to_msecs(jiffies -
5671 network->last_associate));
5672 return 0;
5673 }
5674
5675 /* Now go through and see if the requested network is valid... */
5676 if (priv->ieee->scan_age != 0 &&
5677 time_after(jiffies, network->last_scanned + priv->ieee->scan_age)) {
5678 IPW_DEBUG_ASSOC("Network '%*pE (%pM)' excluded because of age: %ums.\n",
5679 network->ssid_len, network->ssid,
5680 network->bssid,
5681 jiffies_to_msecs(jiffies -
5682 network->last_scanned));
5683 return 0;
5684 }
5685
5686 if ((priv->config & CFG_STATIC_CHANNEL) &&
5687 (network->channel != priv->channel)) {
5688 IPW_DEBUG_ASSOC("Network '%*pE (%pM)' excluded because of channel mismatch: %d != %d.\n",
5689 network->ssid_len, network->ssid,
5690 network->bssid,
5691 network->channel, priv->channel);
5692 return 0;
5693 }
5694
5695 /* Verify privacy compatibility */
5696 if (((priv->capability & CAP_PRIVACY_ON) ? 1 : 0) !=
5697 ((network->capability & WLAN_CAPABILITY_PRIVACY) ? 1 : 0)) {
5698 IPW_DEBUG_ASSOC("Network '%*pE (%pM)' excluded because of privacy mismatch: %s != %s.\n",
5699 network->ssid_len, network->ssid,
5700 network->bssid,
5701 priv->capability & CAP_PRIVACY_ON ? "on" :
5702 "off",
5703 network->capability &
5704 WLAN_CAPABILITY_PRIVACY ? "on" : "off");
5705 return 0;
5706 }
5707
5708 if ((priv->config & CFG_STATIC_BSSID) &&
5709 !ether_addr_equal(network->bssid, priv->bssid)) {
5710 IPW_DEBUG_ASSOC("Network '%*pE (%pM)' excluded because of BSSID mismatch: %pM.\n",
5711 network->ssid_len, network->ssid,
5712 network->bssid, priv->bssid);
5713 return 0;
5714 }
5715
5716 /* Filter out any incompatible freq / mode combinations */
5717 if (!libipw_is_valid_mode(priv->ieee, network->mode)) {
5718 IPW_DEBUG_ASSOC("Network '%*pE (%pM)' excluded because of invalid frequency/mode combination.\n",
5719 network->ssid_len, network->ssid,
5720 network->bssid);
5721 return 0;
5722 }
5723
5724 /* Filter out invalid channel in current GEO */
5725 if (!libipw_is_valid_channel(priv->ieee, network->channel)) {
5726 IPW_DEBUG_ASSOC("Network '%*pE (%pM)' excluded because of invalid channel in current GEO\n",
5727 network->ssid_len, network->ssid,
5728 network->bssid);
5729 return 0;
5730 }
5731
5732 /* Ensure that the rates supported by the driver are compatible with
5733 * this AP, including verification of basic rates (mandatory) */
5734 if (!ipw_compatible_rates(priv, network, &rates)) {
5735 IPW_DEBUG_ASSOC("Network '%*pE (%pM)' excluded because configured rate mask excludes AP mandatory rate.\n",
5736 network->ssid_len, network->ssid,
5737 network->bssid);
5738 return 0;
5739 }
5740
5741 if (rates.num_rates == 0) {
5742 IPW_DEBUG_ASSOC("Network '%*pE (%pM)' excluded because of no compatible rates.\n",
5743 network->ssid_len, network->ssid,
5744 network->bssid);
5745 return 0;
5746 }
5747
5748 /* TODO: Perform any further minimal comparititive tests. We do not
5749 * want to put too much policy logic here; intelligent scan selection
5750 * should occur within a generic IEEE 802.11 user space tool. */
5751
5752 /* Set up 'new' AP to this network */
5753 ipw_copy_rates(&match->rates, &rates);
5754 match->network = network;
5755
5756 IPW_DEBUG_ASSOC("Network '%*pE (%pM)' is a viable match.\n",
5757 network->ssid_len, network->ssid, network->bssid);
5758
5759 return 1;
5760 }
5761
ipw_adhoc_create(struct ipw_priv * priv,struct libipw_network * network)5762 static void ipw_adhoc_create(struct ipw_priv *priv,
5763 struct libipw_network *network)
5764 {
5765 const struct libipw_geo *geo = libipw_get_geo(priv->ieee);
5766 int i;
5767
5768 /*
5769 * For the purposes of scanning, we can set our wireless mode
5770 * to trigger scans across combinations of bands, but when it
5771 * comes to creating a new ad-hoc network, we have tell the FW
5772 * exactly which band to use.
5773 *
5774 * We also have the possibility of an invalid channel for the
5775 * chossen band. Attempting to create a new ad-hoc network
5776 * with an invalid channel for wireless mode will trigger a
5777 * FW fatal error.
5778 *
5779 */
5780 switch (libipw_is_valid_channel(priv->ieee, priv->channel)) {
5781 case LIBIPW_52GHZ_BAND:
5782 network->mode = IEEE_A;
5783 i = libipw_channel_to_index(priv->ieee, priv->channel);
5784 BUG_ON(i == -1);
5785 if (geo->a[i].flags & LIBIPW_CH_PASSIVE_ONLY) {
5786 IPW_WARNING("Overriding invalid channel\n");
5787 priv->channel = geo->a[0].channel;
5788 }
5789 break;
5790
5791 case LIBIPW_24GHZ_BAND:
5792 if (priv->ieee->mode & IEEE_G)
5793 network->mode = IEEE_G;
5794 else
5795 network->mode = IEEE_B;
5796 i = libipw_channel_to_index(priv->ieee, priv->channel);
5797 BUG_ON(i == -1);
5798 if (geo->bg[i].flags & LIBIPW_CH_PASSIVE_ONLY) {
5799 IPW_WARNING("Overriding invalid channel\n");
5800 priv->channel = geo->bg[0].channel;
5801 }
5802 break;
5803
5804 default:
5805 IPW_WARNING("Overriding invalid channel\n");
5806 if (priv->ieee->mode & IEEE_A) {
5807 network->mode = IEEE_A;
5808 priv->channel = geo->a[0].channel;
5809 } else if (priv->ieee->mode & IEEE_G) {
5810 network->mode = IEEE_G;
5811 priv->channel = geo->bg[0].channel;
5812 } else {
5813 network->mode = IEEE_B;
5814 priv->channel = geo->bg[0].channel;
5815 }
5816 break;
5817 }
5818
5819 network->channel = priv->channel;
5820 priv->config |= CFG_ADHOC_PERSIST;
5821 ipw_create_bssid(priv, network->bssid);
5822 network->ssid_len = priv->essid_len;
5823 memcpy(network->ssid, priv->essid, priv->essid_len);
5824 memset(&network->stats, 0, sizeof(network->stats));
5825 network->capability = WLAN_CAPABILITY_IBSS;
5826 if (!(priv->config & CFG_PREAMBLE_LONG))
5827 network->capability |= WLAN_CAPABILITY_SHORT_PREAMBLE;
5828 if (priv->capability & CAP_PRIVACY_ON)
5829 network->capability |= WLAN_CAPABILITY_PRIVACY;
5830 network->rates_len = min(priv->rates.num_rates, MAX_RATES_LENGTH);
5831 memcpy(network->rates, priv->rates.supported_rates, network->rates_len);
5832 network->rates_ex_len = priv->rates.num_rates - network->rates_len;
5833 memcpy(network->rates_ex,
5834 &priv->rates.supported_rates[network->rates_len],
5835 network->rates_ex_len);
5836 network->last_scanned = 0;
5837 network->flags = 0;
5838 network->last_associate = 0;
5839 network->time_stamp[0] = 0;
5840 network->time_stamp[1] = 0;
5841 network->beacon_interval = 100; /* Default */
5842 network->listen_interval = 10; /* Default */
5843 network->atim_window = 0; /* Default */
5844 network->wpa_ie_len = 0;
5845 network->rsn_ie_len = 0;
5846 }
5847
ipw_send_tgi_tx_key(struct ipw_priv * priv,int type,int index)5848 static void ipw_send_tgi_tx_key(struct ipw_priv *priv, int type, int index)
5849 {
5850 struct ipw_tgi_tx_key key;
5851
5852 if (!(priv->ieee->sec.flags & (1 << index)))
5853 return;
5854
5855 key.key_id = index;
5856 memcpy(key.key, priv->ieee->sec.keys[index], SCM_TEMPORAL_KEY_LENGTH);
5857 key.security_type = type;
5858 key.station_index = 0; /* always 0 for BSS */
5859 key.flags = 0;
5860 /* 0 for new key; previous value of counter (after fatal error) */
5861 key.tx_counter[0] = cpu_to_le32(0);
5862 key.tx_counter[1] = cpu_to_le32(0);
5863
5864 ipw_send_cmd_pdu(priv, IPW_CMD_TGI_TX_KEY, sizeof(key), &key);
5865 }
5866
ipw_send_wep_keys(struct ipw_priv * priv,int type)5867 static void ipw_send_wep_keys(struct ipw_priv *priv, int type)
5868 {
5869 struct ipw_wep_key key;
5870 int i;
5871
5872 key.cmd_id = DINO_CMD_WEP_KEY;
5873 key.seq_num = 0;
5874
5875 /* Note: AES keys cannot be set for multiple times.
5876 * Only set it at the first time. */
5877 for (i = 0; i < 4; i++) {
5878 key.key_index = i | type;
5879 if (!(priv->ieee->sec.flags & (1 << i))) {
5880 key.key_size = 0;
5881 continue;
5882 }
5883
5884 key.key_size = priv->ieee->sec.key_sizes[i];
5885 memcpy(key.key, priv->ieee->sec.keys[i], key.key_size);
5886
5887 ipw_send_cmd_pdu(priv, IPW_CMD_WEP_KEY, sizeof(key), &key);
5888 }
5889 }
5890
ipw_set_hw_decrypt_unicast(struct ipw_priv * priv,int level)5891 static void ipw_set_hw_decrypt_unicast(struct ipw_priv *priv, int level)
5892 {
5893 if (priv->ieee->host_encrypt)
5894 return;
5895
5896 switch (level) {
5897 case SEC_LEVEL_3:
5898 priv->sys_config.disable_unicast_decryption = 0;
5899 priv->ieee->host_decrypt = 0;
5900 break;
5901 case SEC_LEVEL_2:
5902 priv->sys_config.disable_unicast_decryption = 1;
5903 priv->ieee->host_decrypt = 1;
5904 break;
5905 case SEC_LEVEL_1:
5906 priv->sys_config.disable_unicast_decryption = 0;
5907 priv->ieee->host_decrypt = 0;
5908 break;
5909 case SEC_LEVEL_0:
5910 priv->sys_config.disable_unicast_decryption = 1;
5911 break;
5912 default:
5913 break;
5914 }
5915 }
5916
ipw_set_hw_decrypt_multicast(struct ipw_priv * priv,int level)5917 static void ipw_set_hw_decrypt_multicast(struct ipw_priv *priv, int level)
5918 {
5919 if (priv->ieee->host_encrypt)
5920 return;
5921
5922 switch (level) {
5923 case SEC_LEVEL_3:
5924 priv->sys_config.disable_multicast_decryption = 0;
5925 break;
5926 case SEC_LEVEL_2:
5927 priv->sys_config.disable_multicast_decryption = 1;
5928 break;
5929 case SEC_LEVEL_1:
5930 priv->sys_config.disable_multicast_decryption = 0;
5931 break;
5932 case SEC_LEVEL_0:
5933 priv->sys_config.disable_multicast_decryption = 1;
5934 break;
5935 default:
5936 break;
5937 }
5938 }
5939
ipw_set_hwcrypto_keys(struct ipw_priv * priv)5940 static void ipw_set_hwcrypto_keys(struct ipw_priv *priv)
5941 {
5942 switch (priv->ieee->sec.level) {
5943 case SEC_LEVEL_3:
5944 if (priv->ieee->sec.flags & SEC_ACTIVE_KEY)
5945 ipw_send_tgi_tx_key(priv,
5946 DCT_FLAG_EXT_SECURITY_CCM,
5947 priv->ieee->sec.active_key);
5948
5949 if (!priv->ieee->host_mc_decrypt)
5950 ipw_send_wep_keys(priv, DCW_WEP_KEY_SEC_TYPE_CCM);
5951 break;
5952 case SEC_LEVEL_2:
5953 if (priv->ieee->sec.flags & SEC_ACTIVE_KEY)
5954 ipw_send_tgi_tx_key(priv,
5955 DCT_FLAG_EXT_SECURITY_TKIP,
5956 priv->ieee->sec.active_key);
5957 break;
5958 case SEC_LEVEL_1:
5959 ipw_send_wep_keys(priv, DCW_WEP_KEY_SEC_TYPE_WEP);
5960 ipw_set_hw_decrypt_unicast(priv, priv->ieee->sec.level);
5961 ipw_set_hw_decrypt_multicast(priv, priv->ieee->sec.level);
5962 break;
5963 case SEC_LEVEL_0:
5964 default:
5965 break;
5966 }
5967 }
5968
ipw_adhoc_check(void * data)5969 static void ipw_adhoc_check(void *data)
5970 {
5971 struct ipw_priv *priv = data;
5972
5973 if (priv->missed_adhoc_beacons++ > priv->disassociate_threshold &&
5974 !(priv->config & CFG_ADHOC_PERSIST)) {
5975 IPW_DEBUG(IPW_DL_INFO | IPW_DL_NOTIF |
5976 IPW_DL_STATE | IPW_DL_ASSOC,
5977 "Missed beacon: %d - disassociate\n",
5978 priv->missed_adhoc_beacons);
5979 ipw_remove_current_network(priv);
5980 ipw_disassociate(priv);
5981 return;
5982 }
5983
5984 schedule_delayed_work(&priv->adhoc_check,
5985 le16_to_cpu(priv->assoc_request.beacon_interval));
5986 }
5987
ipw_bg_adhoc_check(struct work_struct * work)5988 static void ipw_bg_adhoc_check(struct work_struct *work)
5989 {
5990 struct ipw_priv *priv =
5991 container_of(work, struct ipw_priv, adhoc_check.work);
5992 mutex_lock(&priv->mutex);
5993 ipw_adhoc_check(priv);
5994 mutex_unlock(&priv->mutex);
5995 }
5996
ipw_debug_config(struct ipw_priv * priv)5997 static void ipw_debug_config(struct ipw_priv *priv)
5998 {
5999 IPW_DEBUG_INFO("Scan completed, no valid APs matched "
6000 "[CFG 0x%08X]\n", priv->config);
6001 if (priv->config & CFG_STATIC_CHANNEL)
6002 IPW_DEBUG_INFO("Channel locked to %d\n", priv->channel);
6003 else
6004 IPW_DEBUG_INFO("Channel unlocked.\n");
6005 if (priv->config & CFG_STATIC_ESSID)
6006 IPW_DEBUG_INFO("ESSID locked to '%*pE'\n",
6007 priv->essid_len, priv->essid);
6008 else
6009 IPW_DEBUG_INFO("ESSID unlocked.\n");
6010 if (priv->config & CFG_STATIC_BSSID)
6011 IPW_DEBUG_INFO("BSSID locked to %pM\n", priv->bssid);
6012 else
6013 IPW_DEBUG_INFO("BSSID unlocked.\n");
6014 if (priv->capability & CAP_PRIVACY_ON)
6015 IPW_DEBUG_INFO("PRIVACY on\n");
6016 else
6017 IPW_DEBUG_INFO("PRIVACY off\n");
6018 IPW_DEBUG_INFO("RATE MASK: 0x%08X\n", priv->rates_mask);
6019 }
6020
ipw_set_fixed_rate(struct ipw_priv * priv,int mode)6021 static void ipw_set_fixed_rate(struct ipw_priv *priv, int mode)
6022 {
6023 /* TODO: Verify that this works... */
6024 struct ipw_fixed_rate fr;
6025 u32 reg;
6026 u16 mask = 0;
6027 u16 new_tx_rates = priv->rates_mask;
6028
6029 /* Identify 'current FW band' and match it with the fixed
6030 * Tx rates */
6031
6032 switch (priv->ieee->freq_band) {
6033 case LIBIPW_52GHZ_BAND: /* A only */
6034 /* IEEE_A */
6035 if (priv->rates_mask & ~LIBIPW_OFDM_RATES_MASK) {
6036 /* Invalid fixed rate mask */
6037 IPW_DEBUG_WX
6038 ("invalid fixed rate mask in ipw_set_fixed_rate\n");
6039 new_tx_rates = 0;
6040 break;
6041 }
6042
6043 new_tx_rates >>= LIBIPW_OFDM_SHIFT_MASK_A;
6044 break;
6045
6046 default: /* 2.4Ghz or Mixed */
6047 /* IEEE_B */
6048 if (mode == IEEE_B) {
6049 if (new_tx_rates & ~LIBIPW_CCK_RATES_MASK) {
6050 /* Invalid fixed rate mask */
6051 IPW_DEBUG_WX
6052 ("invalid fixed rate mask in ipw_set_fixed_rate\n");
6053 new_tx_rates = 0;
6054 }
6055 break;
6056 }
6057
6058 /* IEEE_G */
6059 if (new_tx_rates & ~(LIBIPW_CCK_RATES_MASK |
6060 LIBIPW_OFDM_RATES_MASK)) {
6061 /* Invalid fixed rate mask */
6062 IPW_DEBUG_WX
6063 ("invalid fixed rate mask in ipw_set_fixed_rate\n");
6064 new_tx_rates = 0;
6065 break;
6066 }
6067
6068 if (LIBIPW_OFDM_RATE_6MB_MASK & new_tx_rates) {
6069 mask |= (LIBIPW_OFDM_RATE_6MB_MASK >> 1);
6070 new_tx_rates &= ~LIBIPW_OFDM_RATE_6MB_MASK;
6071 }
6072
6073 if (LIBIPW_OFDM_RATE_9MB_MASK & new_tx_rates) {
6074 mask |= (LIBIPW_OFDM_RATE_9MB_MASK >> 1);
6075 new_tx_rates &= ~LIBIPW_OFDM_RATE_9MB_MASK;
6076 }
6077
6078 if (LIBIPW_OFDM_RATE_12MB_MASK & new_tx_rates) {
6079 mask |= (LIBIPW_OFDM_RATE_12MB_MASK >> 1);
6080 new_tx_rates &= ~LIBIPW_OFDM_RATE_12MB_MASK;
6081 }
6082
6083 new_tx_rates |= mask;
6084 break;
6085 }
6086
6087 fr.tx_rates = cpu_to_le16(new_tx_rates);
6088
6089 reg = ipw_read32(priv, IPW_MEM_FIXED_OVERRIDE);
6090 ipw_write_reg32(priv, reg, *(u32 *) & fr);
6091 }
6092
ipw_abort_scan(struct ipw_priv * priv)6093 static void ipw_abort_scan(struct ipw_priv *priv)
6094 {
6095 int err;
6096
6097 if (priv->status & STATUS_SCAN_ABORTING) {
6098 IPW_DEBUG_HC("Ignoring concurrent scan abort request.\n");
6099 return;
6100 }
6101 priv->status |= STATUS_SCAN_ABORTING;
6102
6103 err = ipw_send_scan_abort(priv);
6104 if (err)
6105 IPW_DEBUG_HC("Request to abort scan failed.\n");
6106 }
6107
ipw_add_scan_channels(struct ipw_priv * priv,struct ipw_scan_request_ext * scan,int scan_type)6108 static void ipw_add_scan_channels(struct ipw_priv *priv,
6109 struct ipw_scan_request_ext *scan,
6110 int scan_type)
6111 {
6112 int channel_index = 0;
6113 const struct libipw_geo *geo;
6114 int i;
6115
6116 geo = libipw_get_geo(priv->ieee);
6117
6118 if (priv->ieee->freq_band & LIBIPW_52GHZ_BAND) {
6119 int start = channel_index;
6120 for (i = 0; i < geo->a_channels; i++) {
6121 if ((priv->status & STATUS_ASSOCIATED) &&
6122 geo->a[i].channel == priv->channel)
6123 continue;
6124 channel_index++;
6125 scan->channels_list[channel_index] = geo->a[i].channel;
6126 ipw_set_scan_type(scan, channel_index,
6127 geo->a[i].
6128 flags & LIBIPW_CH_PASSIVE_ONLY ?
6129 IPW_SCAN_PASSIVE_FULL_DWELL_SCAN :
6130 scan_type);
6131 }
6132
6133 if (start != channel_index) {
6134 scan->channels_list[start] = (u8) (IPW_A_MODE << 6) |
6135 (channel_index - start);
6136 channel_index++;
6137 }
6138 }
6139
6140 if (priv->ieee->freq_band & LIBIPW_24GHZ_BAND) {
6141 int start = channel_index;
6142 if (priv->config & CFG_SPEED_SCAN) {
6143 int index;
6144 u8 channels[LIBIPW_24GHZ_CHANNELS] = {
6145 /* nop out the list */
6146 [0] = 0
6147 };
6148
6149 u8 channel;
6150 while (channel_index < IPW_SCAN_CHANNELS - 1) {
6151 channel =
6152 priv->speed_scan[priv->speed_scan_pos];
6153 if (channel == 0) {
6154 priv->speed_scan_pos = 0;
6155 channel = priv->speed_scan[0];
6156 }
6157 if ((priv->status & STATUS_ASSOCIATED) &&
6158 channel == priv->channel) {
6159 priv->speed_scan_pos++;
6160 continue;
6161 }
6162
6163 /* If this channel has already been
6164 * added in scan, break from loop
6165 * and this will be the first channel
6166 * in the next scan.
6167 */
6168 if (channels[channel - 1] != 0)
6169 break;
6170
6171 channels[channel - 1] = 1;
6172 priv->speed_scan_pos++;
6173 channel_index++;
6174 scan->channels_list[channel_index] = channel;
6175 index =
6176 libipw_channel_to_index(priv->ieee, channel);
6177 ipw_set_scan_type(scan, channel_index,
6178 geo->bg[index].
6179 flags &
6180 LIBIPW_CH_PASSIVE_ONLY ?
6181 IPW_SCAN_PASSIVE_FULL_DWELL_SCAN
6182 : scan_type);
6183 }
6184 } else {
6185 for (i = 0; i < geo->bg_channels; i++) {
6186 if ((priv->status & STATUS_ASSOCIATED) &&
6187 geo->bg[i].channel == priv->channel)
6188 continue;
6189 channel_index++;
6190 scan->channels_list[channel_index] =
6191 geo->bg[i].channel;
6192 ipw_set_scan_type(scan, channel_index,
6193 geo->bg[i].
6194 flags &
6195 LIBIPW_CH_PASSIVE_ONLY ?
6196 IPW_SCAN_PASSIVE_FULL_DWELL_SCAN
6197 : scan_type);
6198 }
6199 }
6200
6201 if (start != channel_index) {
6202 scan->channels_list[start] = (u8) (IPW_B_MODE << 6) |
6203 (channel_index - start);
6204 }
6205 }
6206 }
6207
ipw_passive_dwell_time(struct ipw_priv * priv)6208 static int ipw_passive_dwell_time(struct ipw_priv *priv)
6209 {
6210 /* staying on passive channels longer than the DTIM interval during a
6211 * scan, while associated, causes the firmware to cancel the scan
6212 * without notification. Hence, don't stay on passive channels longer
6213 * than the beacon interval.
6214 */
6215 if (priv->status & STATUS_ASSOCIATED
6216 && priv->assoc_network->beacon_interval > 10)
6217 return priv->assoc_network->beacon_interval - 10;
6218 else
6219 return 120;
6220 }
6221
ipw_request_scan_helper(struct ipw_priv * priv,int type,int direct)6222 static int ipw_request_scan_helper(struct ipw_priv *priv, int type, int direct)
6223 {
6224 struct ipw_scan_request_ext scan;
6225 int err = 0, scan_type;
6226
6227 if (!(priv->status & STATUS_INIT) ||
6228 (priv->status & STATUS_EXIT_PENDING))
6229 return 0;
6230
6231 mutex_lock(&priv->mutex);
6232
6233 if (direct && (priv->direct_scan_ssid_len == 0)) {
6234 IPW_DEBUG_HC("Direct scan requested but no SSID to scan for\n");
6235 priv->status &= ~STATUS_DIRECT_SCAN_PENDING;
6236 goto done;
6237 }
6238
6239 if (priv->status & STATUS_SCANNING) {
6240 IPW_DEBUG_HC("Concurrent scan requested. Queuing.\n");
6241 priv->status |= direct ? STATUS_DIRECT_SCAN_PENDING :
6242 STATUS_SCAN_PENDING;
6243 goto done;
6244 }
6245
6246 if (!(priv->status & STATUS_SCAN_FORCED) &&
6247 priv->status & STATUS_SCAN_ABORTING) {
6248 IPW_DEBUG_HC("Scan request while abort pending. Queuing.\n");
6249 priv->status |= direct ? STATUS_DIRECT_SCAN_PENDING :
6250 STATUS_SCAN_PENDING;
6251 goto done;
6252 }
6253
6254 if (priv->status & STATUS_RF_KILL_MASK) {
6255 IPW_DEBUG_HC("Queuing scan due to RF Kill activation\n");
6256 priv->status |= direct ? STATUS_DIRECT_SCAN_PENDING :
6257 STATUS_SCAN_PENDING;
6258 goto done;
6259 }
6260
6261 memset(&scan, 0, sizeof(scan));
6262 scan.full_scan_index = cpu_to_le32(libipw_get_scans(priv->ieee));
6263
6264 if (type == IW_SCAN_TYPE_PASSIVE) {
6265 IPW_DEBUG_WX("use passive scanning\n");
6266 scan_type = IPW_SCAN_PASSIVE_FULL_DWELL_SCAN;
6267 scan.dwell_time[IPW_SCAN_PASSIVE_FULL_DWELL_SCAN] =
6268 cpu_to_le16(ipw_passive_dwell_time(priv));
6269 ipw_add_scan_channels(priv, &scan, scan_type);
6270 goto send_request;
6271 }
6272
6273 /* Use active scan by default. */
6274 if (priv->config & CFG_SPEED_SCAN)
6275 scan.dwell_time[IPW_SCAN_ACTIVE_BROADCAST_SCAN] =
6276 cpu_to_le16(30);
6277 else
6278 scan.dwell_time[IPW_SCAN_ACTIVE_BROADCAST_SCAN] =
6279 cpu_to_le16(20);
6280
6281 scan.dwell_time[IPW_SCAN_ACTIVE_BROADCAST_AND_DIRECT_SCAN] =
6282 cpu_to_le16(20);
6283
6284 scan.dwell_time[IPW_SCAN_PASSIVE_FULL_DWELL_SCAN] =
6285 cpu_to_le16(ipw_passive_dwell_time(priv));
6286 scan.dwell_time[IPW_SCAN_ACTIVE_DIRECT_SCAN] = cpu_to_le16(20);
6287
6288 #ifdef CONFIG_IPW2200_MONITOR
6289 if (priv->ieee->iw_mode == IW_MODE_MONITOR) {
6290 u8 channel;
6291 u8 band = 0;
6292
6293 switch (libipw_is_valid_channel(priv->ieee, priv->channel)) {
6294 case LIBIPW_52GHZ_BAND:
6295 band = (u8) (IPW_A_MODE << 6) | 1;
6296 channel = priv->channel;
6297 break;
6298
6299 case LIBIPW_24GHZ_BAND:
6300 band = (u8) (IPW_B_MODE << 6) | 1;
6301 channel = priv->channel;
6302 break;
6303
6304 default:
6305 band = (u8) (IPW_B_MODE << 6) | 1;
6306 channel = 9;
6307 break;
6308 }
6309
6310 scan.channels_list[0] = band;
6311 scan.channels_list[1] = channel;
6312 ipw_set_scan_type(&scan, 1, IPW_SCAN_PASSIVE_FULL_DWELL_SCAN);
6313
6314 /* NOTE: The card will sit on this channel for this time
6315 * period. Scan aborts are timing sensitive and frequently
6316 * result in firmware restarts. As such, it is best to
6317 * set a small dwell_time here and just keep re-issuing
6318 * scans. Otherwise fast channel hopping will not actually
6319 * hop channels.
6320 *
6321 * TODO: Move SPEED SCAN support to all modes and bands */
6322 scan.dwell_time[IPW_SCAN_PASSIVE_FULL_DWELL_SCAN] =
6323 cpu_to_le16(2000);
6324 } else {
6325 #endif /* CONFIG_IPW2200_MONITOR */
6326 /* Honor direct scans first, otherwise if we are roaming make
6327 * this a direct scan for the current network. Finally,
6328 * ensure that every other scan is a fast channel hop scan */
6329 if (direct) {
6330 err = ipw_send_ssid(priv, priv->direct_scan_ssid,
6331 priv->direct_scan_ssid_len);
6332 if (err) {
6333 IPW_DEBUG_HC("Attempt to send SSID command "
6334 "failed\n");
6335 goto done;
6336 }
6337
6338 scan_type = IPW_SCAN_ACTIVE_BROADCAST_AND_DIRECT_SCAN;
6339 } else if ((priv->status & STATUS_ROAMING)
6340 || (!(priv->status & STATUS_ASSOCIATED)
6341 && (priv->config & CFG_STATIC_ESSID)
6342 && (le32_to_cpu(scan.full_scan_index) % 2))) {
6343 err = ipw_send_ssid(priv, priv->essid, priv->essid_len);
6344 if (err) {
6345 IPW_DEBUG_HC("Attempt to send SSID command "
6346 "failed.\n");
6347 goto done;
6348 }
6349
6350 scan_type = IPW_SCAN_ACTIVE_BROADCAST_AND_DIRECT_SCAN;
6351 } else
6352 scan_type = IPW_SCAN_ACTIVE_BROADCAST_SCAN;
6353
6354 ipw_add_scan_channels(priv, &scan, scan_type);
6355 #ifdef CONFIG_IPW2200_MONITOR
6356 }
6357 #endif
6358
6359 send_request:
6360 err = ipw_send_scan_request_ext(priv, &scan);
6361 if (err) {
6362 IPW_DEBUG_HC("Sending scan command failed: %08X\n", err);
6363 goto done;
6364 }
6365
6366 priv->status |= STATUS_SCANNING;
6367 if (direct) {
6368 priv->status &= ~STATUS_DIRECT_SCAN_PENDING;
6369 priv->direct_scan_ssid_len = 0;
6370 } else
6371 priv->status &= ~STATUS_SCAN_PENDING;
6372
6373 schedule_delayed_work(&priv->scan_check, IPW_SCAN_CHECK_WATCHDOG);
6374 done:
6375 mutex_unlock(&priv->mutex);
6376 return err;
6377 }
6378
ipw_request_passive_scan(struct work_struct * work)6379 static void ipw_request_passive_scan(struct work_struct *work)
6380 {
6381 struct ipw_priv *priv =
6382 container_of(work, struct ipw_priv, request_passive_scan.work);
6383 ipw_request_scan_helper(priv, IW_SCAN_TYPE_PASSIVE, 0);
6384 }
6385
ipw_request_scan(struct work_struct * work)6386 static void ipw_request_scan(struct work_struct *work)
6387 {
6388 struct ipw_priv *priv =
6389 container_of(work, struct ipw_priv, request_scan.work);
6390 ipw_request_scan_helper(priv, IW_SCAN_TYPE_ACTIVE, 0);
6391 }
6392
ipw_request_direct_scan(struct work_struct * work)6393 static void ipw_request_direct_scan(struct work_struct *work)
6394 {
6395 struct ipw_priv *priv =
6396 container_of(work, struct ipw_priv, request_direct_scan.work);
6397 ipw_request_scan_helper(priv, IW_SCAN_TYPE_ACTIVE, 1);
6398 }
6399
ipw_bg_abort_scan(struct work_struct * work)6400 static void ipw_bg_abort_scan(struct work_struct *work)
6401 {
6402 struct ipw_priv *priv =
6403 container_of(work, struct ipw_priv, abort_scan);
6404 mutex_lock(&priv->mutex);
6405 ipw_abort_scan(priv);
6406 mutex_unlock(&priv->mutex);
6407 }
6408
ipw_wpa_enable(struct ipw_priv * priv,int value)6409 static int ipw_wpa_enable(struct ipw_priv *priv, int value)
6410 {
6411 /* This is called when wpa_supplicant loads and closes the driver
6412 * interface. */
6413 priv->ieee->wpa_enabled = value;
6414 return 0;
6415 }
6416
ipw_wpa_set_auth_algs(struct ipw_priv * priv,int value)6417 static int ipw_wpa_set_auth_algs(struct ipw_priv *priv, int value)
6418 {
6419 struct libipw_device *ieee = priv->ieee;
6420 struct libipw_security sec = {
6421 .flags = SEC_AUTH_MODE,
6422 };
6423 int ret = 0;
6424
6425 if (value & IW_AUTH_ALG_SHARED_KEY) {
6426 sec.auth_mode = WLAN_AUTH_SHARED_KEY;
6427 ieee->open_wep = 0;
6428 } else if (value & IW_AUTH_ALG_OPEN_SYSTEM) {
6429 sec.auth_mode = WLAN_AUTH_OPEN;
6430 ieee->open_wep = 1;
6431 } else if (value & IW_AUTH_ALG_LEAP) {
6432 sec.auth_mode = WLAN_AUTH_LEAP;
6433 ieee->open_wep = 1;
6434 } else
6435 return -EINVAL;
6436
6437 if (ieee->set_security)
6438 ieee->set_security(ieee->dev, &sec);
6439 else
6440 ret = -EOPNOTSUPP;
6441
6442 return ret;
6443 }
6444
ipw_wpa_assoc_frame(struct ipw_priv * priv,char * wpa_ie,int wpa_ie_len)6445 static void ipw_wpa_assoc_frame(struct ipw_priv *priv, char *wpa_ie,
6446 int wpa_ie_len)
6447 {
6448 /* make sure WPA is enabled */
6449 ipw_wpa_enable(priv, 1);
6450 }
6451
ipw_set_rsn_capa(struct ipw_priv * priv,char * capabilities,int length)6452 static int ipw_set_rsn_capa(struct ipw_priv *priv,
6453 char *capabilities, int length)
6454 {
6455 IPW_DEBUG_HC("HOST_CMD_RSN_CAPABILITIES\n");
6456
6457 return ipw_send_cmd_pdu(priv, IPW_CMD_RSN_CAPABILITIES, length,
6458 capabilities);
6459 }
6460
6461 /*
6462 * WE-18 support
6463 */
6464
ipw_wx_get_name(struct net_device * dev,struct iw_request_info * info,union iwreq_data * wrqu,char * extra)6465 static int ipw_wx_get_name(struct net_device *dev,
6466 struct iw_request_info *info,
6467 union iwreq_data *wrqu, char *extra)
6468 {
6469 strcpy(wrqu->name, "IEEE 802.11");
6470 return 0;
6471 }
6472
6473 /* SIOCSIWGENIE */
ipw_wx_set_genie(struct net_device * dev,struct iw_request_info * info,union iwreq_data * wrqu,char * extra)6474 static int ipw_wx_set_genie(struct net_device *dev,
6475 struct iw_request_info *info,
6476 union iwreq_data *wrqu, char *extra)
6477 {
6478 struct ipw_priv *priv = libipw_priv(dev);
6479 struct libipw_device *ieee = priv->ieee;
6480 u8 *buf;
6481 int err = 0;
6482
6483 if (wrqu->data.length > MAX_WPA_IE_LEN ||
6484 (wrqu->data.length && extra == NULL))
6485 return -EINVAL;
6486
6487 if (wrqu->data.length) {
6488 buf = kmemdup(extra, wrqu->data.length, GFP_KERNEL);
6489 if (buf == NULL) {
6490 err = -ENOMEM;
6491 goto out;
6492 }
6493
6494 kfree(ieee->wpa_ie);
6495 ieee->wpa_ie = buf;
6496 ieee->wpa_ie_len = wrqu->data.length;
6497 } else {
6498 kfree(ieee->wpa_ie);
6499 ieee->wpa_ie = NULL;
6500 ieee->wpa_ie_len = 0;
6501 }
6502
6503 ipw_wpa_assoc_frame(priv, ieee->wpa_ie, ieee->wpa_ie_len);
6504 out:
6505 return err;
6506 }
6507
6508 /* SIOCGIWGENIE */
ipw_wx_get_genie(struct net_device * dev,struct iw_request_info * info,union iwreq_data * wrqu,char * extra)6509 static int ipw_wx_get_genie(struct net_device *dev,
6510 struct iw_request_info *info,
6511 union iwreq_data *wrqu, char *extra)
6512 {
6513 struct ipw_priv *priv = libipw_priv(dev);
6514 struct libipw_device *ieee = priv->ieee;
6515 int err = 0;
6516
6517 if (ieee->wpa_ie_len == 0 || ieee->wpa_ie == NULL) {
6518 wrqu->data.length = 0;
6519 goto out;
6520 }
6521
6522 if (wrqu->data.length < ieee->wpa_ie_len) {
6523 err = -E2BIG;
6524 goto out;
6525 }
6526
6527 wrqu->data.length = ieee->wpa_ie_len;
6528 memcpy(extra, ieee->wpa_ie, ieee->wpa_ie_len);
6529
6530 out:
6531 return err;
6532 }
6533
wext_cipher2level(int cipher)6534 static int wext_cipher2level(int cipher)
6535 {
6536 switch (cipher) {
6537 case IW_AUTH_CIPHER_NONE:
6538 return SEC_LEVEL_0;
6539 case IW_AUTH_CIPHER_WEP40:
6540 case IW_AUTH_CIPHER_WEP104:
6541 return SEC_LEVEL_1;
6542 case IW_AUTH_CIPHER_TKIP:
6543 return SEC_LEVEL_2;
6544 case IW_AUTH_CIPHER_CCMP:
6545 return SEC_LEVEL_3;
6546 default:
6547 return -1;
6548 }
6549 }
6550
6551 /* SIOCSIWAUTH */
ipw_wx_set_auth(struct net_device * dev,struct iw_request_info * info,union iwreq_data * wrqu,char * extra)6552 static int ipw_wx_set_auth(struct net_device *dev,
6553 struct iw_request_info *info,
6554 union iwreq_data *wrqu, char *extra)
6555 {
6556 struct ipw_priv *priv = libipw_priv(dev);
6557 struct libipw_device *ieee = priv->ieee;
6558 struct iw_param *param = &wrqu->param;
6559 struct libipw_crypt_data *crypt;
6560 unsigned long flags;
6561 int ret = 0;
6562
6563 switch (param->flags & IW_AUTH_INDEX) {
6564 case IW_AUTH_WPA_VERSION:
6565 break;
6566 case IW_AUTH_CIPHER_PAIRWISE:
6567 ipw_set_hw_decrypt_unicast(priv,
6568 wext_cipher2level(param->value));
6569 break;
6570 case IW_AUTH_CIPHER_GROUP:
6571 ipw_set_hw_decrypt_multicast(priv,
6572 wext_cipher2level(param->value));
6573 break;
6574 case IW_AUTH_KEY_MGMT:
6575 /*
6576 * ipw2200 does not use these parameters
6577 */
6578 break;
6579
6580 case IW_AUTH_TKIP_COUNTERMEASURES:
6581 crypt = priv->ieee->crypt_info.crypt[priv->ieee->crypt_info.tx_keyidx];
6582 if (!crypt || !crypt->ops->set_flags || !crypt->ops->get_flags)
6583 break;
6584
6585 flags = crypt->ops->get_flags(crypt->priv);
6586
6587 if (param->value)
6588 flags |= IEEE80211_CRYPTO_TKIP_COUNTERMEASURES;
6589 else
6590 flags &= ~IEEE80211_CRYPTO_TKIP_COUNTERMEASURES;
6591
6592 crypt->ops->set_flags(flags, crypt->priv);
6593
6594 break;
6595
6596 case IW_AUTH_DROP_UNENCRYPTED:{
6597 /* HACK:
6598 *
6599 * wpa_supplicant calls set_wpa_enabled when the driver
6600 * is loaded and unloaded, regardless of if WPA is being
6601 * used. No other calls are made which can be used to
6602 * determine if encryption will be used or not prior to
6603 * association being expected. If encryption is not being
6604 * used, drop_unencrypted is set to false, else true -- we
6605 * can use this to determine if the CAP_PRIVACY_ON bit should
6606 * be set.
6607 */
6608 struct libipw_security sec = {
6609 .flags = SEC_ENABLED,
6610 .enabled = param->value,
6611 };
6612 priv->ieee->drop_unencrypted = param->value;
6613 /* We only change SEC_LEVEL for open mode. Others
6614 * are set by ipw_wpa_set_encryption.
6615 */
6616 if (!param->value) {
6617 sec.flags |= SEC_LEVEL;
6618 sec.level = SEC_LEVEL_0;
6619 } else {
6620 sec.flags |= SEC_LEVEL;
6621 sec.level = SEC_LEVEL_1;
6622 }
6623 if (priv->ieee->set_security)
6624 priv->ieee->set_security(priv->ieee->dev, &sec);
6625 break;
6626 }
6627
6628 case IW_AUTH_80211_AUTH_ALG:
6629 ret = ipw_wpa_set_auth_algs(priv, param->value);
6630 break;
6631
6632 case IW_AUTH_WPA_ENABLED:
6633 ret = ipw_wpa_enable(priv, param->value);
6634 ipw_disassociate(priv);
6635 break;
6636
6637 case IW_AUTH_RX_UNENCRYPTED_EAPOL:
6638 ieee->ieee802_1x = param->value;
6639 break;
6640
6641 case IW_AUTH_PRIVACY_INVOKED:
6642 ieee->privacy_invoked = param->value;
6643 break;
6644
6645 default:
6646 return -EOPNOTSUPP;
6647 }
6648 return ret;
6649 }
6650
6651 /* SIOCGIWAUTH */
ipw_wx_get_auth(struct net_device * dev,struct iw_request_info * info,union iwreq_data * wrqu,char * extra)6652 static int ipw_wx_get_auth(struct net_device *dev,
6653 struct iw_request_info *info,
6654 union iwreq_data *wrqu, char *extra)
6655 {
6656 struct ipw_priv *priv = libipw_priv(dev);
6657 struct libipw_device *ieee = priv->ieee;
6658 struct libipw_crypt_data *crypt;
6659 struct iw_param *param = &wrqu->param;
6660
6661 switch (param->flags & IW_AUTH_INDEX) {
6662 case IW_AUTH_WPA_VERSION:
6663 case IW_AUTH_CIPHER_PAIRWISE:
6664 case IW_AUTH_CIPHER_GROUP:
6665 case IW_AUTH_KEY_MGMT:
6666 /*
6667 * wpa_supplicant will control these internally
6668 */
6669 return -EOPNOTSUPP;
6670
6671 case IW_AUTH_TKIP_COUNTERMEASURES:
6672 crypt = priv->ieee->crypt_info.crypt[priv->ieee->crypt_info.tx_keyidx];
6673 if (!crypt || !crypt->ops->get_flags)
6674 break;
6675
6676 param->value = (crypt->ops->get_flags(crypt->priv) &
6677 IEEE80211_CRYPTO_TKIP_COUNTERMEASURES) ? 1 : 0;
6678
6679 break;
6680
6681 case IW_AUTH_DROP_UNENCRYPTED:
6682 param->value = ieee->drop_unencrypted;
6683 break;
6684
6685 case IW_AUTH_80211_AUTH_ALG:
6686 param->value = ieee->sec.auth_mode;
6687 break;
6688
6689 case IW_AUTH_WPA_ENABLED:
6690 param->value = ieee->wpa_enabled;
6691 break;
6692
6693 case IW_AUTH_RX_UNENCRYPTED_EAPOL:
6694 param->value = ieee->ieee802_1x;
6695 break;
6696
6697 case IW_AUTH_ROAMING_CONTROL:
6698 case IW_AUTH_PRIVACY_INVOKED:
6699 param->value = ieee->privacy_invoked;
6700 break;
6701
6702 default:
6703 return -EOPNOTSUPP;
6704 }
6705 return 0;
6706 }
6707
6708 /* SIOCSIWENCODEEXT */
ipw_wx_set_encodeext(struct net_device * dev,struct iw_request_info * info,union iwreq_data * wrqu,char * extra)6709 static int ipw_wx_set_encodeext(struct net_device *dev,
6710 struct iw_request_info *info,
6711 union iwreq_data *wrqu, char *extra)
6712 {
6713 struct ipw_priv *priv = libipw_priv(dev);
6714 struct iw_encode_ext *ext = (struct iw_encode_ext *)extra;
6715
6716 if (hwcrypto) {
6717 if (ext->alg == IW_ENCODE_ALG_TKIP) {
6718 /* IPW HW can't build TKIP MIC,
6719 host decryption still needed */
6720 if (ext->ext_flags & IW_ENCODE_EXT_GROUP_KEY)
6721 priv->ieee->host_mc_decrypt = 1;
6722 else {
6723 priv->ieee->host_encrypt = 0;
6724 priv->ieee->host_encrypt_msdu = 1;
6725 priv->ieee->host_decrypt = 1;
6726 }
6727 } else {
6728 priv->ieee->host_encrypt = 0;
6729 priv->ieee->host_encrypt_msdu = 0;
6730 priv->ieee->host_decrypt = 0;
6731 priv->ieee->host_mc_decrypt = 0;
6732 }
6733 }
6734
6735 return libipw_wx_set_encodeext(priv->ieee, info, wrqu, extra);
6736 }
6737
6738 /* SIOCGIWENCODEEXT */
ipw_wx_get_encodeext(struct net_device * dev,struct iw_request_info * info,union iwreq_data * wrqu,char * extra)6739 static int ipw_wx_get_encodeext(struct net_device *dev,
6740 struct iw_request_info *info,
6741 union iwreq_data *wrqu, char *extra)
6742 {
6743 struct ipw_priv *priv = libipw_priv(dev);
6744 return libipw_wx_get_encodeext(priv->ieee, info, wrqu, extra);
6745 }
6746
6747 /* SIOCSIWMLME */
ipw_wx_set_mlme(struct net_device * dev,struct iw_request_info * info,union iwreq_data * wrqu,char * extra)6748 static int ipw_wx_set_mlme(struct net_device *dev,
6749 struct iw_request_info *info,
6750 union iwreq_data *wrqu, char *extra)
6751 {
6752 struct ipw_priv *priv = libipw_priv(dev);
6753 struct iw_mlme *mlme = (struct iw_mlme *)extra;
6754
6755 switch (mlme->cmd) {
6756 case IW_MLME_DEAUTH:
6757 /* silently ignore */
6758 break;
6759
6760 case IW_MLME_DISASSOC:
6761 ipw_disassociate(priv);
6762 break;
6763
6764 default:
6765 return -EOPNOTSUPP;
6766 }
6767 return 0;
6768 }
6769
6770 #ifdef CONFIG_IPW2200_QOS
6771
6772 /* QoS */
6773 /*
6774 * get the modulation type of the current network or
6775 * the card current mode
6776 */
ipw_qos_current_mode(struct ipw_priv * priv)6777 static u8 ipw_qos_current_mode(struct ipw_priv * priv)
6778 {
6779 u8 mode = 0;
6780
6781 if (priv->status & STATUS_ASSOCIATED) {
6782 unsigned long flags;
6783
6784 spin_lock_irqsave(&priv->ieee->lock, flags);
6785 mode = priv->assoc_network->mode;
6786 spin_unlock_irqrestore(&priv->ieee->lock, flags);
6787 } else {
6788 mode = priv->ieee->mode;
6789 }
6790 IPW_DEBUG_QOS("QoS network/card mode %d\n", mode);
6791 return mode;
6792 }
6793
6794 /*
6795 * Handle management frame beacon and probe response
6796 */
ipw_qos_handle_probe_response(struct ipw_priv * priv,int active_network,struct libipw_network * network)6797 static int ipw_qos_handle_probe_response(struct ipw_priv *priv,
6798 int active_network,
6799 struct libipw_network *network)
6800 {
6801 u32 size = sizeof(struct libipw_qos_parameters);
6802
6803 if (network->capability & WLAN_CAPABILITY_IBSS)
6804 network->qos_data.active = network->qos_data.supported;
6805
6806 if (network->flags & NETWORK_HAS_QOS_MASK) {
6807 if (active_network &&
6808 (network->flags & NETWORK_HAS_QOS_PARAMETERS))
6809 network->qos_data.active = network->qos_data.supported;
6810
6811 if ((network->qos_data.active == 1) && (active_network == 1) &&
6812 (network->flags & NETWORK_HAS_QOS_PARAMETERS) &&
6813 (network->qos_data.old_param_count !=
6814 network->qos_data.param_count)) {
6815 network->qos_data.old_param_count =
6816 network->qos_data.param_count;
6817 schedule_work(&priv->qos_activate);
6818 IPW_DEBUG_QOS("QoS parameters change call "
6819 "qos_activate\n");
6820 }
6821 } else {
6822 if ((priv->ieee->mode == IEEE_B) || (network->mode == IEEE_B))
6823 memcpy(&network->qos_data.parameters,
6824 &def_parameters_CCK, size);
6825 else
6826 memcpy(&network->qos_data.parameters,
6827 &def_parameters_OFDM, size);
6828
6829 if ((network->qos_data.active == 1) && (active_network == 1)) {
6830 IPW_DEBUG_QOS("QoS was disabled call qos_activate\n");
6831 schedule_work(&priv->qos_activate);
6832 }
6833
6834 network->qos_data.active = 0;
6835 network->qos_data.supported = 0;
6836 }
6837 if ((priv->status & STATUS_ASSOCIATED) &&
6838 (priv->ieee->iw_mode == IW_MODE_ADHOC) && (active_network == 0)) {
6839 if (!ether_addr_equal(network->bssid, priv->bssid))
6840 if (network->capability & WLAN_CAPABILITY_IBSS)
6841 if ((network->ssid_len ==
6842 priv->assoc_network->ssid_len) &&
6843 !memcmp(network->ssid,
6844 priv->assoc_network->ssid,
6845 network->ssid_len)) {
6846 schedule_work(&priv->merge_networks);
6847 }
6848 }
6849
6850 return 0;
6851 }
6852
6853 /*
6854 * This function set up the firmware to support QoS. It sends
6855 * IPW_CMD_QOS_PARAMETERS and IPW_CMD_WME_INFO
6856 */
ipw_qos_activate(struct ipw_priv * priv,struct libipw_qos_data * qos_network_data)6857 static int ipw_qos_activate(struct ipw_priv *priv,
6858 struct libipw_qos_data *qos_network_data)
6859 {
6860 int err;
6861 struct libipw_qos_parameters qos_parameters[QOS_QOS_SETS];
6862 struct libipw_qos_parameters *active_one = NULL;
6863 u32 size = sizeof(struct libipw_qos_parameters);
6864 u32 burst_duration;
6865 int i;
6866 u8 type;
6867
6868 type = ipw_qos_current_mode(priv);
6869
6870 active_one = &(qos_parameters[QOS_PARAM_SET_DEF_CCK]);
6871 memcpy(active_one, priv->qos_data.def_qos_parm_CCK, size);
6872 active_one = &(qos_parameters[QOS_PARAM_SET_DEF_OFDM]);
6873 memcpy(active_one, priv->qos_data.def_qos_parm_OFDM, size);
6874
6875 if (qos_network_data == NULL) {
6876 if (type == IEEE_B) {
6877 IPW_DEBUG_QOS("QoS activate network mode %d\n", type);
6878 active_one = &def_parameters_CCK;
6879 } else
6880 active_one = &def_parameters_OFDM;
6881
6882 memcpy(&qos_parameters[QOS_PARAM_SET_ACTIVE], active_one, size);
6883 burst_duration = ipw_qos_get_burst_duration(priv);
6884 for (i = 0; i < QOS_QUEUE_NUM; i++)
6885 qos_parameters[QOS_PARAM_SET_ACTIVE].tx_op_limit[i] =
6886 cpu_to_le16(burst_duration);
6887 } else if (priv->ieee->iw_mode == IW_MODE_ADHOC) {
6888 if (type == IEEE_B) {
6889 IPW_DEBUG_QOS("QoS activate IBSS network mode %d\n",
6890 type);
6891 if (priv->qos_data.qos_enable == 0)
6892 active_one = &def_parameters_CCK;
6893 else
6894 active_one = priv->qos_data.def_qos_parm_CCK;
6895 } else {
6896 if (priv->qos_data.qos_enable == 0)
6897 active_one = &def_parameters_OFDM;
6898 else
6899 active_one = priv->qos_data.def_qos_parm_OFDM;
6900 }
6901 memcpy(&qos_parameters[QOS_PARAM_SET_ACTIVE], active_one, size);
6902 } else {
6903 unsigned long flags;
6904 int active;
6905
6906 spin_lock_irqsave(&priv->ieee->lock, flags);
6907 active_one = &(qos_network_data->parameters);
6908 qos_network_data->old_param_count =
6909 qos_network_data->param_count;
6910 memcpy(&qos_parameters[QOS_PARAM_SET_ACTIVE], active_one, size);
6911 active = qos_network_data->supported;
6912 spin_unlock_irqrestore(&priv->ieee->lock, flags);
6913
6914 if (active == 0) {
6915 burst_duration = ipw_qos_get_burst_duration(priv);
6916 for (i = 0; i < QOS_QUEUE_NUM; i++)
6917 qos_parameters[QOS_PARAM_SET_ACTIVE].
6918 tx_op_limit[i] = cpu_to_le16(burst_duration);
6919 }
6920 }
6921
6922 IPW_DEBUG_QOS("QoS sending IPW_CMD_QOS_PARAMETERS\n");
6923 err = ipw_send_qos_params_command(priv, &qos_parameters[0]);
6924 if (err)
6925 IPW_DEBUG_QOS("QoS IPW_CMD_QOS_PARAMETERS failed\n");
6926
6927 return err;
6928 }
6929
6930 /*
6931 * send IPW_CMD_WME_INFO to the firmware
6932 */
ipw_qos_set_info_element(struct ipw_priv * priv)6933 static int ipw_qos_set_info_element(struct ipw_priv *priv)
6934 {
6935 int ret = 0;
6936 struct libipw_qos_information_element qos_info;
6937
6938 if (priv == NULL)
6939 return -1;
6940
6941 qos_info.elementID = QOS_ELEMENT_ID;
6942 qos_info.length = sizeof(struct libipw_qos_information_element) - 2;
6943
6944 qos_info.version = QOS_VERSION_1;
6945 qos_info.ac_info = 0;
6946
6947 memcpy(qos_info.qui, qos_oui, QOS_OUI_LEN);
6948 qos_info.qui_type = QOS_OUI_TYPE;
6949 qos_info.qui_subtype = QOS_OUI_INFO_SUB_TYPE;
6950
6951 ret = ipw_send_qos_info_command(priv, &qos_info);
6952 if (ret != 0) {
6953 IPW_DEBUG_QOS("QoS error calling ipw_send_qos_info_command\n");
6954 }
6955 return ret;
6956 }
6957
6958 /*
6959 * Set the QoS parameter with the association request structure
6960 */
ipw_qos_association(struct ipw_priv * priv,struct libipw_network * network)6961 static int ipw_qos_association(struct ipw_priv *priv,
6962 struct libipw_network *network)
6963 {
6964 int err = 0;
6965 struct libipw_qos_data *qos_data = NULL;
6966 struct libipw_qos_data ibss_data = {
6967 .supported = 1,
6968 .active = 1,
6969 };
6970
6971 switch (priv->ieee->iw_mode) {
6972 case IW_MODE_ADHOC:
6973 BUG_ON(!(network->capability & WLAN_CAPABILITY_IBSS));
6974
6975 qos_data = &ibss_data;
6976 break;
6977
6978 case IW_MODE_INFRA:
6979 qos_data = &network->qos_data;
6980 break;
6981
6982 default:
6983 BUG();
6984 break;
6985 }
6986
6987 err = ipw_qos_activate(priv, qos_data);
6988 if (err) {
6989 priv->assoc_request.policy_support &= ~HC_QOS_SUPPORT_ASSOC;
6990 return err;
6991 }
6992
6993 if (priv->qos_data.qos_enable && qos_data->supported) {
6994 IPW_DEBUG_QOS("QoS will be enabled for this association\n");
6995 priv->assoc_request.policy_support |= HC_QOS_SUPPORT_ASSOC;
6996 return ipw_qos_set_info_element(priv);
6997 }
6998
6999 return 0;
7000 }
7001
7002 /*
7003 * handling the beaconing responses. if we get different QoS setting
7004 * off the network from the associated setting, adjust the QoS
7005 * setting
7006 */
ipw_qos_association_resp(struct ipw_priv * priv,struct libipw_network * network)7007 static void ipw_qos_association_resp(struct ipw_priv *priv,
7008 struct libipw_network *network)
7009 {
7010 unsigned long flags;
7011 u32 size = sizeof(struct libipw_qos_parameters);
7012 int set_qos_param = 0;
7013
7014 if ((priv == NULL) || (network == NULL) ||
7015 (priv->assoc_network == NULL))
7016 return;
7017
7018 if (!(priv->status & STATUS_ASSOCIATED))
7019 return;
7020
7021 if ((priv->ieee->iw_mode != IW_MODE_INFRA))
7022 return;
7023
7024 spin_lock_irqsave(&priv->ieee->lock, flags);
7025 if (network->flags & NETWORK_HAS_QOS_PARAMETERS) {
7026 memcpy(&priv->assoc_network->qos_data, &network->qos_data,
7027 sizeof(struct libipw_qos_data));
7028 priv->assoc_network->qos_data.active = 1;
7029 if ((network->qos_data.old_param_count !=
7030 network->qos_data.param_count)) {
7031 set_qos_param = 1;
7032 network->qos_data.old_param_count =
7033 network->qos_data.param_count;
7034 }
7035
7036 } else {
7037 if ((network->mode == IEEE_B) || (priv->ieee->mode == IEEE_B))
7038 memcpy(&priv->assoc_network->qos_data.parameters,
7039 &def_parameters_CCK, size);
7040 else
7041 memcpy(&priv->assoc_network->qos_data.parameters,
7042 &def_parameters_OFDM, size);
7043 priv->assoc_network->qos_data.active = 0;
7044 priv->assoc_network->qos_data.supported = 0;
7045 set_qos_param = 1;
7046 }
7047
7048 spin_unlock_irqrestore(&priv->ieee->lock, flags);
7049
7050 if (set_qos_param == 1)
7051 schedule_work(&priv->qos_activate);
7052 }
7053
ipw_qos_get_burst_duration(struct ipw_priv * priv)7054 static u32 ipw_qos_get_burst_duration(struct ipw_priv *priv)
7055 {
7056 u32 ret = 0;
7057
7058 if (!priv)
7059 return 0;
7060
7061 if (!(priv->ieee->modulation & LIBIPW_OFDM_MODULATION))
7062 ret = priv->qos_data.burst_duration_CCK;
7063 else
7064 ret = priv->qos_data.burst_duration_OFDM;
7065
7066 return ret;
7067 }
7068
7069 /*
7070 * Initialize the setting of QoS global
7071 */
ipw_qos_init(struct ipw_priv * priv,int enable,int burst_enable,u32 burst_duration_CCK,u32 burst_duration_OFDM)7072 static void ipw_qos_init(struct ipw_priv *priv, int enable,
7073 int burst_enable, u32 burst_duration_CCK,
7074 u32 burst_duration_OFDM)
7075 {
7076 priv->qos_data.qos_enable = enable;
7077
7078 if (priv->qos_data.qos_enable) {
7079 priv->qos_data.def_qos_parm_CCK = &def_qos_parameters_CCK;
7080 priv->qos_data.def_qos_parm_OFDM = &def_qos_parameters_OFDM;
7081 IPW_DEBUG_QOS("QoS is enabled\n");
7082 } else {
7083 priv->qos_data.def_qos_parm_CCK = &def_parameters_CCK;
7084 priv->qos_data.def_qos_parm_OFDM = &def_parameters_OFDM;
7085 IPW_DEBUG_QOS("QoS is not enabled\n");
7086 }
7087
7088 priv->qos_data.burst_enable = burst_enable;
7089
7090 if (burst_enable) {
7091 priv->qos_data.burst_duration_CCK = burst_duration_CCK;
7092 priv->qos_data.burst_duration_OFDM = burst_duration_OFDM;
7093 } else {
7094 priv->qos_data.burst_duration_CCK = 0;
7095 priv->qos_data.burst_duration_OFDM = 0;
7096 }
7097 }
7098
7099 /*
7100 * map the packet priority to the right TX Queue
7101 */
ipw_get_tx_queue_number(struct ipw_priv * priv,u16 priority)7102 static int ipw_get_tx_queue_number(struct ipw_priv *priv, u16 priority)
7103 {
7104 if (priority > 7 || !priv->qos_data.qos_enable)
7105 priority = 0;
7106
7107 return from_priority_to_tx_queue[priority] - 1;
7108 }
7109
ipw_is_qos_active(struct net_device * dev,struct sk_buff * skb)7110 static int ipw_is_qos_active(struct net_device *dev,
7111 struct sk_buff *skb)
7112 {
7113 struct ipw_priv *priv = libipw_priv(dev);
7114 struct libipw_qos_data *qos_data = NULL;
7115 int active, supported;
7116 u8 *daddr = skb->data + ETH_ALEN;
7117 int unicast = !is_multicast_ether_addr(daddr);
7118
7119 if (!(priv->status & STATUS_ASSOCIATED))
7120 return 0;
7121
7122 qos_data = &priv->assoc_network->qos_data;
7123
7124 if (priv->ieee->iw_mode == IW_MODE_ADHOC) {
7125 if (unicast == 0)
7126 qos_data->active = 0;
7127 else
7128 qos_data->active = qos_data->supported;
7129 }
7130 active = qos_data->active;
7131 supported = qos_data->supported;
7132 IPW_DEBUG_QOS("QoS %d network is QoS active %d supported %d "
7133 "unicast %d\n",
7134 priv->qos_data.qos_enable, active, supported, unicast);
7135 if (active && priv->qos_data.qos_enable)
7136 return 1;
7137
7138 return 0;
7139
7140 }
7141 /*
7142 * add QoS parameter to the TX command
7143 */
ipw_qos_set_tx_queue_command(struct ipw_priv * priv,u16 priority,struct tfd_data * tfd)7144 static int ipw_qos_set_tx_queue_command(struct ipw_priv *priv,
7145 u16 priority,
7146 struct tfd_data *tfd)
7147 {
7148 int tx_queue_id = 0;
7149
7150
7151 tx_queue_id = from_priority_to_tx_queue[priority] - 1;
7152 tfd->tx_flags_ext |= DCT_FLAG_EXT_QOS_ENABLED;
7153
7154 if (priv->qos_data.qos_no_ack_mask & (1UL << tx_queue_id)) {
7155 tfd->tx_flags &= ~DCT_FLAG_ACK_REQD;
7156 tfd->tfd.tfd_26.mchdr.qos_ctrl |= cpu_to_le16(CTRL_QOS_NO_ACK);
7157 }
7158 return 0;
7159 }
7160
7161 /*
7162 * background support to run QoS activate functionality
7163 */
ipw_bg_qos_activate(struct work_struct * work)7164 static void ipw_bg_qos_activate(struct work_struct *work)
7165 {
7166 struct ipw_priv *priv =
7167 container_of(work, struct ipw_priv, qos_activate);
7168
7169 mutex_lock(&priv->mutex);
7170
7171 if (priv->status & STATUS_ASSOCIATED)
7172 ipw_qos_activate(priv, &(priv->assoc_network->qos_data));
7173
7174 mutex_unlock(&priv->mutex);
7175 }
7176
ipw_handle_probe_response(struct net_device * dev,struct libipw_probe_response * resp,struct libipw_network * network)7177 static int ipw_handle_probe_response(struct net_device *dev,
7178 struct libipw_probe_response *resp,
7179 struct libipw_network *network)
7180 {
7181 struct ipw_priv *priv = libipw_priv(dev);
7182 int active_network = ((priv->status & STATUS_ASSOCIATED) &&
7183 (network == priv->assoc_network));
7184
7185 ipw_qos_handle_probe_response(priv, active_network, network);
7186
7187 return 0;
7188 }
7189
ipw_handle_beacon(struct net_device * dev,struct libipw_beacon * resp,struct libipw_network * network)7190 static int ipw_handle_beacon(struct net_device *dev,
7191 struct libipw_beacon *resp,
7192 struct libipw_network *network)
7193 {
7194 struct ipw_priv *priv = libipw_priv(dev);
7195 int active_network = ((priv->status & STATUS_ASSOCIATED) &&
7196 (network == priv->assoc_network));
7197
7198 ipw_qos_handle_probe_response(priv, active_network, network);
7199
7200 return 0;
7201 }
7202
ipw_handle_assoc_response(struct net_device * dev,struct libipw_assoc_response * resp,struct libipw_network * network)7203 static int ipw_handle_assoc_response(struct net_device *dev,
7204 struct libipw_assoc_response *resp,
7205 struct libipw_network *network)
7206 {
7207 struct ipw_priv *priv = libipw_priv(dev);
7208 ipw_qos_association_resp(priv, network);
7209 return 0;
7210 }
7211
ipw_send_qos_params_command(struct ipw_priv * priv,struct libipw_qos_parameters * qos_param)7212 static int ipw_send_qos_params_command(struct ipw_priv *priv, struct libipw_qos_parameters
7213 *qos_param)
7214 {
7215 return ipw_send_cmd_pdu(priv, IPW_CMD_QOS_PARAMETERS,
7216 sizeof(*qos_param) * 3, qos_param);
7217 }
7218
ipw_send_qos_info_command(struct ipw_priv * priv,struct libipw_qos_information_element * qos_param)7219 static int ipw_send_qos_info_command(struct ipw_priv *priv, struct libipw_qos_information_element
7220 *qos_param)
7221 {
7222 return ipw_send_cmd_pdu(priv, IPW_CMD_WME_INFO, sizeof(*qos_param),
7223 qos_param);
7224 }
7225
7226 #endif /* CONFIG_IPW2200_QOS */
7227
ipw_associate_network(struct ipw_priv * priv,struct libipw_network * network,struct ipw_supported_rates * rates,int roaming)7228 static int ipw_associate_network(struct ipw_priv *priv,
7229 struct libipw_network *network,
7230 struct ipw_supported_rates *rates, int roaming)
7231 {
7232 int err;
7233
7234 if (priv->config & CFG_FIXED_RATE)
7235 ipw_set_fixed_rate(priv, network->mode);
7236
7237 if (!(priv->config & CFG_STATIC_ESSID)) {
7238 priv->essid_len = min(network->ssid_len,
7239 (u8) IW_ESSID_MAX_SIZE);
7240 memcpy(priv->essid, network->ssid, priv->essid_len);
7241 }
7242
7243 network->last_associate = jiffies;
7244
7245 memset(&priv->assoc_request, 0, sizeof(priv->assoc_request));
7246 priv->assoc_request.channel = network->channel;
7247 priv->assoc_request.auth_key = 0;
7248
7249 if ((priv->capability & CAP_PRIVACY_ON) &&
7250 (priv->ieee->sec.auth_mode == WLAN_AUTH_SHARED_KEY)) {
7251 priv->assoc_request.auth_type = AUTH_SHARED_KEY;
7252 priv->assoc_request.auth_key = priv->ieee->sec.active_key;
7253
7254 if (priv->ieee->sec.level == SEC_LEVEL_1)
7255 ipw_send_wep_keys(priv, DCW_WEP_KEY_SEC_TYPE_WEP);
7256
7257 } else if ((priv->capability & CAP_PRIVACY_ON) &&
7258 (priv->ieee->sec.auth_mode == WLAN_AUTH_LEAP))
7259 priv->assoc_request.auth_type = AUTH_LEAP;
7260 else
7261 priv->assoc_request.auth_type = AUTH_OPEN;
7262
7263 if (priv->ieee->wpa_ie_len) {
7264 priv->assoc_request.policy_support = cpu_to_le16(0x02); /* RSN active */
7265 ipw_set_rsn_capa(priv, priv->ieee->wpa_ie,
7266 priv->ieee->wpa_ie_len);
7267 }
7268
7269 /*
7270 * It is valid for our ieee device to support multiple modes, but
7271 * when it comes to associating to a given network we have to choose
7272 * just one mode.
7273 */
7274 if (network->mode & priv->ieee->mode & IEEE_A)
7275 priv->assoc_request.ieee_mode = IPW_A_MODE;
7276 else if (network->mode & priv->ieee->mode & IEEE_G)
7277 priv->assoc_request.ieee_mode = IPW_G_MODE;
7278 else if (network->mode & priv->ieee->mode & IEEE_B)
7279 priv->assoc_request.ieee_mode = IPW_B_MODE;
7280
7281 priv->assoc_request.capability = cpu_to_le16(network->capability);
7282 if ((network->capability & WLAN_CAPABILITY_SHORT_PREAMBLE)
7283 && !(priv->config & CFG_PREAMBLE_LONG)) {
7284 priv->assoc_request.preamble_length = DCT_FLAG_SHORT_PREAMBLE;
7285 } else {
7286 priv->assoc_request.preamble_length = DCT_FLAG_LONG_PREAMBLE;
7287
7288 /* Clear the short preamble if we won't be supporting it */
7289 priv->assoc_request.capability &=
7290 ~cpu_to_le16(WLAN_CAPABILITY_SHORT_PREAMBLE);
7291 }
7292
7293 /* Clear capability bits that aren't used in Ad Hoc */
7294 if (priv->ieee->iw_mode == IW_MODE_ADHOC)
7295 priv->assoc_request.capability &=
7296 ~cpu_to_le16(WLAN_CAPABILITY_SHORT_SLOT_TIME);
7297
7298 IPW_DEBUG_ASSOC("%ssociation attempt: '%*pE', channel %d, 802.11%c [%d], %s[:%s], enc=%s%s%s%c%c\n",
7299 roaming ? "Rea" : "A",
7300 priv->essid_len, priv->essid,
7301 network->channel,
7302 ipw_modes[priv->assoc_request.ieee_mode],
7303 rates->num_rates,
7304 (priv->assoc_request.preamble_length ==
7305 DCT_FLAG_LONG_PREAMBLE) ? "long" : "short",
7306 network->capability &
7307 WLAN_CAPABILITY_SHORT_PREAMBLE ? "short" : "long",
7308 priv->capability & CAP_PRIVACY_ON ? "on " : "off",
7309 priv->capability & CAP_PRIVACY_ON ?
7310 (priv->capability & CAP_SHARED_KEY ? "(shared)" :
7311 "(open)") : "",
7312 priv->capability & CAP_PRIVACY_ON ? " key=" : "",
7313 priv->capability & CAP_PRIVACY_ON ?
7314 '1' + priv->ieee->sec.active_key : '.',
7315 priv->capability & CAP_PRIVACY_ON ? '.' : ' ');
7316
7317 priv->assoc_request.beacon_interval = cpu_to_le16(network->beacon_interval);
7318 if ((priv->ieee->iw_mode == IW_MODE_ADHOC) &&
7319 (network->time_stamp[0] == 0) && (network->time_stamp[1] == 0)) {
7320 priv->assoc_request.assoc_type = HC_IBSS_START;
7321 priv->assoc_request.assoc_tsf_msw = 0;
7322 priv->assoc_request.assoc_tsf_lsw = 0;
7323 } else {
7324 if (unlikely(roaming))
7325 priv->assoc_request.assoc_type = HC_REASSOCIATE;
7326 else
7327 priv->assoc_request.assoc_type = HC_ASSOCIATE;
7328 priv->assoc_request.assoc_tsf_msw = cpu_to_le32(network->time_stamp[1]);
7329 priv->assoc_request.assoc_tsf_lsw = cpu_to_le32(network->time_stamp[0]);
7330 }
7331
7332 memcpy(priv->assoc_request.bssid, network->bssid, ETH_ALEN);
7333
7334 if (priv->ieee->iw_mode == IW_MODE_ADHOC) {
7335 eth_broadcast_addr(priv->assoc_request.dest);
7336 priv->assoc_request.atim_window = cpu_to_le16(network->atim_window);
7337 } else {
7338 memcpy(priv->assoc_request.dest, network->bssid, ETH_ALEN);
7339 priv->assoc_request.atim_window = 0;
7340 }
7341
7342 priv->assoc_request.listen_interval = cpu_to_le16(network->listen_interval);
7343
7344 err = ipw_send_ssid(priv, priv->essid, priv->essid_len);
7345 if (err) {
7346 IPW_DEBUG_HC("Attempt to send SSID command failed.\n");
7347 return err;
7348 }
7349
7350 rates->ieee_mode = priv->assoc_request.ieee_mode;
7351 rates->purpose = IPW_RATE_CONNECT;
7352 ipw_send_supported_rates(priv, rates);
7353
7354 if (priv->assoc_request.ieee_mode == IPW_G_MODE)
7355 priv->sys_config.dot11g_auto_detection = 1;
7356 else
7357 priv->sys_config.dot11g_auto_detection = 0;
7358
7359 if (priv->ieee->iw_mode == IW_MODE_ADHOC)
7360 priv->sys_config.answer_broadcast_ssid_probe = 1;
7361 else
7362 priv->sys_config.answer_broadcast_ssid_probe = 0;
7363
7364 err = ipw_send_system_config(priv);
7365 if (err) {
7366 IPW_DEBUG_HC("Attempt to send sys config command failed.\n");
7367 return err;
7368 }
7369
7370 IPW_DEBUG_ASSOC("Association sensitivity: %d\n", network->stats.rssi);
7371 err = ipw_set_sensitivity(priv, network->stats.rssi + IPW_RSSI_TO_DBM);
7372 if (err) {
7373 IPW_DEBUG_HC("Attempt to send associate command failed.\n");
7374 return err;
7375 }
7376
7377 /*
7378 * If preemption is enabled, it is possible for the association
7379 * to complete before we return from ipw_send_associate. Therefore
7380 * we have to be sure and update our priviate data first.
7381 */
7382 priv->channel = network->channel;
7383 memcpy(priv->bssid, network->bssid, ETH_ALEN);
7384 priv->status |= STATUS_ASSOCIATING;
7385 priv->status &= ~STATUS_SECURITY_UPDATED;
7386
7387 priv->assoc_network = network;
7388
7389 #ifdef CONFIG_IPW2200_QOS
7390 ipw_qos_association(priv, network);
7391 #endif
7392
7393 err = ipw_send_associate(priv, &priv->assoc_request);
7394 if (err) {
7395 IPW_DEBUG_HC("Attempt to send associate command failed.\n");
7396 return err;
7397 }
7398
7399 IPW_DEBUG(IPW_DL_STATE, "associating: '%*pE' %pM\n",
7400 priv->essid_len, priv->essid, priv->bssid);
7401
7402 return 0;
7403 }
7404
ipw_roam(void * data)7405 static void ipw_roam(void *data)
7406 {
7407 struct ipw_priv *priv = data;
7408 struct libipw_network *network = NULL;
7409 struct ipw_network_match match = {
7410 .network = priv->assoc_network
7411 };
7412
7413 /* The roaming process is as follows:
7414 *
7415 * 1. Missed beacon threshold triggers the roaming process by
7416 * setting the status ROAM bit and requesting a scan.
7417 * 2. When the scan completes, it schedules the ROAM work
7418 * 3. The ROAM work looks at all of the known networks for one that
7419 * is a better network than the currently associated. If none
7420 * found, the ROAM process is over (ROAM bit cleared)
7421 * 4. If a better network is found, a disassociation request is
7422 * sent.
7423 * 5. When the disassociation completes, the roam work is again
7424 * scheduled. The second time through, the driver is no longer
7425 * associated, and the newly selected network is sent an
7426 * association request.
7427 * 6. At this point ,the roaming process is complete and the ROAM
7428 * status bit is cleared.
7429 */
7430
7431 /* If we are no longer associated, and the roaming bit is no longer
7432 * set, then we are not actively roaming, so just return */
7433 if (!(priv->status & (STATUS_ASSOCIATED | STATUS_ROAMING)))
7434 return;
7435
7436 if (priv->status & STATUS_ASSOCIATED) {
7437 /* First pass through ROAM process -- look for a better
7438 * network */
7439 unsigned long flags;
7440 u8 rssi = priv->assoc_network->stats.rssi;
7441 priv->assoc_network->stats.rssi = -128;
7442 spin_lock_irqsave(&priv->ieee->lock, flags);
7443 list_for_each_entry(network, &priv->ieee->network_list, list) {
7444 if (network != priv->assoc_network)
7445 ipw_best_network(priv, &match, network, 1);
7446 }
7447 spin_unlock_irqrestore(&priv->ieee->lock, flags);
7448 priv->assoc_network->stats.rssi = rssi;
7449
7450 if (match.network == priv->assoc_network) {
7451 IPW_DEBUG_ASSOC("No better APs in this network to "
7452 "roam to.\n");
7453 priv->status &= ~STATUS_ROAMING;
7454 ipw_debug_config(priv);
7455 return;
7456 }
7457
7458 ipw_send_disassociate(priv, 1);
7459 priv->assoc_network = match.network;
7460
7461 return;
7462 }
7463
7464 /* Second pass through ROAM process -- request association */
7465 ipw_compatible_rates(priv, priv->assoc_network, &match.rates);
7466 ipw_associate_network(priv, priv->assoc_network, &match.rates, 1);
7467 priv->status &= ~STATUS_ROAMING;
7468 }
7469
ipw_bg_roam(struct work_struct * work)7470 static void ipw_bg_roam(struct work_struct *work)
7471 {
7472 struct ipw_priv *priv =
7473 container_of(work, struct ipw_priv, roam);
7474 mutex_lock(&priv->mutex);
7475 ipw_roam(priv);
7476 mutex_unlock(&priv->mutex);
7477 }
7478
ipw_associate(void * data)7479 static int ipw_associate(void *data)
7480 {
7481 struct ipw_priv *priv = data;
7482
7483 struct libipw_network *network = NULL;
7484 struct ipw_network_match match = {
7485 .network = NULL
7486 };
7487 struct ipw_supported_rates *rates;
7488 struct list_head *element;
7489 unsigned long flags;
7490
7491 if (priv->ieee->iw_mode == IW_MODE_MONITOR) {
7492 IPW_DEBUG_ASSOC("Not attempting association (monitor mode)\n");
7493 return 0;
7494 }
7495
7496 if (priv->status & (STATUS_ASSOCIATED | STATUS_ASSOCIATING)) {
7497 IPW_DEBUG_ASSOC("Not attempting association (already in "
7498 "progress)\n");
7499 return 0;
7500 }
7501
7502 if (priv->status & STATUS_DISASSOCIATING) {
7503 IPW_DEBUG_ASSOC("Not attempting association (in disassociating)\n");
7504 schedule_work(&priv->associate);
7505 return 0;
7506 }
7507
7508 if (!ipw_is_init(priv) || (priv->status & STATUS_SCANNING)) {
7509 IPW_DEBUG_ASSOC("Not attempting association (scanning or not "
7510 "initialized)\n");
7511 return 0;
7512 }
7513
7514 if (!(priv->config & CFG_ASSOCIATE) &&
7515 !(priv->config & (CFG_STATIC_ESSID | CFG_STATIC_BSSID))) {
7516 IPW_DEBUG_ASSOC("Not attempting association (associate=0)\n");
7517 return 0;
7518 }
7519
7520 /* Protect our use of the network_list */
7521 spin_lock_irqsave(&priv->ieee->lock, flags);
7522 list_for_each_entry(network, &priv->ieee->network_list, list)
7523 ipw_best_network(priv, &match, network, 0);
7524
7525 network = match.network;
7526 rates = &match.rates;
7527
7528 if (network == NULL &&
7529 priv->ieee->iw_mode == IW_MODE_ADHOC &&
7530 priv->config & CFG_ADHOC_CREATE &&
7531 priv->config & CFG_STATIC_ESSID &&
7532 priv->config & CFG_STATIC_CHANNEL) {
7533 /* Use oldest network if the free list is empty */
7534 if (list_empty(&priv->ieee->network_free_list)) {
7535 struct libipw_network *oldest = NULL;
7536 struct libipw_network *target;
7537
7538 list_for_each_entry(target, &priv->ieee->network_list, list) {
7539 if ((oldest == NULL) ||
7540 (target->last_scanned < oldest->last_scanned))
7541 oldest = target;
7542 }
7543
7544 /* If there are no more slots, expire the oldest */
7545 list_del(&oldest->list);
7546 target = oldest;
7547 IPW_DEBUG_ASSOC("Expired '%*pE' (%pM) from network list.\n",
7548 target->ssid_len, target->ssid,
7549 target->bssid);
7550 list_add_tail(&target->list,
7551 &priv->ieee->network_free_list);
7552 }
7553
7554 element = priv->ieee->network_free_list.next;
7555 network = list_entry(element, struct libipw_network, list);
7556 ipw_adhoc_create(priv, network);
7557 rates = &priv->rates;
7558 list_del(element);
7559 list_add_tail(&network->list, &priv->ieee->network_list);
7560 }
7561 spin_unlock_irqrestore(&priv->ieee->lock, flags);
7562
7563 /* If we reached the end of the list, then we don't have any valid
7564 * matching APs */
7565 if (!network) {
7566 ipw_debug_config(priv);
7567
7568 if (!(priv->status & STATUS_SCANNING)) {
7569 if (!(priv->config & CFG_SPEED_SCAN))
7570 schedule_delayed_work(&priv->request_scan,
7571 SCAN_INTERVAL);
7572 else
7573 schedule_delayed_work(&priv->request_scan, 0);
7574 }
7575
7576 return 0;
7577 }
7578
7579 ipw_associate_network(priv, network, rates, 0);
7580
7581 return 1;
7582 }
7583
ipw_bg_associate(struct work_struct * work)7584 static void ipw_bg_associate(struct work_struct *work)
7585 {
7586 struct ipw_priv *priv =
7587 container_of(work, struct ipw_priv, associate);
7588 mutex_lock(&priv->mutex);
7589 ipw_associate(priv);
7590 mutex_unlock(&priv->mutex);
7591 }
7592
ipw_rebuild_decrypted_skb(struct ipw_priv * priv,struct sk_buff * skb)7593 static void ipw_rebuild_decrypted_skb(struct ipw_priv *priv,
7594 struct sk_buff *skb)
7595 {
7596 struct ieee80211_hdr *hdr;
7597 u16 fc;
7598
7599 hdr = (struct ieee80211_hdr *)skb->data;
7600 fc = le16_to_cpu(hdr->frame_control);
7601 if (!(fc & IEEE80211_FCTL_PROTECTED))
7602 return;
7603
7604 fc &= ~IEEE80211_FCTL_PROTECTED;
7605 hdr->frame_control = cpu_to_le16(fc);
7606 switch (priv->ieee->sec.level) {
7607 case SEC_LEVEL_3:
7608 /* Remove CCMP HDR */
7609 memmove(skb->data + LIBIPW_3ADDR_LEN,
7610 skb->data + LIBIPW_3ADDR_LEN + 8,
7611 skb->len - LIBIPW_3ADDR_LEN - 8);
7612 skb_trim(skb, skb->len - 16); /* CCMP_HDR_LEN + CCMP_MIC_LEN */
7613 break;
7614 case SEC_LEVEL_2:
7615 break;
7616 case SEC_LEVEL_1:
7617 /* Remove IV */
7618 memmove(skb->data + LIBIPW_3ADDR_LEN,
7619 skb->data + LIBIPW_3ADDR_LEN + 4,
7620 skb->len - LIBIPW_3ADDR_LEN - 4);
7621 skb_trim(skb, skb->len - 8); /* IV + ICV */
7622 break;
7623 case SEC_LEVEL_0:
7624 break;
7625 default:
7626 printk(KERN_ERR "Unknown security level %d\n",
7627 priv->ieee->sec.level);
7628 break;
7629 }
7630 }
7631
ipw_handle_data_packet(struct ipw_priv * priv,struct ipw_rx_mem_buffer * rxb,struct libipw_rx_stats * stats)7632 static void ipw_handle_data_packet(struct ipw_priv *priv,
7633 struct ipw_rx_mem_buffer *rxb,
7634 struct libipw_rx_stats *stats)
7635 {
7636 struct net_device *dev = priv->net_dev;
7637 struct libipw_hdr_4addr *hdr;
7638 struct ipw_rx_packet *pkt = (struct ipw_rx_packet *)rxb->skb->data;
7639
7640 /* We received data from the HW, so stop the watchdog */
7641 netif_trans_update(dev);
7642
7643 /* We only process data packets if the
7644 * interface is open */
7645 if (unlikely((le16_to_cpu(pkt->u.frame.length) + IPW_RX_FRAME_SIZE) >
7646 skb_tailroom(rxb->skb))) {
7647 dev->stats.rx_errors++;
7648 priv->wstats.discard.misc++;
7649 IPW_DEBUG_DROP("Corruption detected! Oh no!\n");
7650 return;
7651 } else if (unlikely(!netif_running(priv->net_dev))) {
7652 dev->stats.rx_dropped++;
7653 priv->wstats.discard.misc++;
7654 IPW_DEBUG_DROP("Dropping packet while interface is not up.\n");
7655 return;
7656 }
7657
7658 /* Advance skb->data to the start of the actual payload */
7659 skb_reserve(rxb->skb, offsetof(struct ipw_rx_packet, u.frame.data));
7660
7661 /* Set the size of the skb to the size of the frame */
7662 skb_put(rxb->skb, le16_to_cpu(pkt->u.frame.length));
7663
7664 IPW_DEBUG_RX("Rx packet of %d bytes.\n", rxb->skb->len);
7665
7666 /* HW decrypt will not clear the WEP bit, MIC, PN, etc. */
7667 hdr = (struct libipw_hdr_4addr *)rxb->skb->data;
7668 if (priv->ieee->iw_mode != IW_MODE_MONITOR &&
7669 (is_multicast_ether_addr(hdr->addr1) ?
7670 !priv->ieee->host_mc_decrypt : !priv->ieee->host_decrypt))
7671 ipw_rebuild_decrypted_skb(priv, rxb->skb);
7672
7673 if (!libipw_rx(priv->ieee, rxb->skb, stats))
7674 dev->stats.rx_errors++;
7675 else { /* libipw_rx succeeded, so it now owns the SKB */
7676 rxb->skb = NULL;
7677 __ipw_led_activity_on(priv);
7678 }
7679 }
7680
7681 #ifdef CONFIG_IPW2200_RADIOTAP
ipw_handle_data_packet_monitor(struct ipw_priv * priv,struct ipw_rx_mem_buffer * rxb,struct libipw_rx_stats * stats)7682 static void ipw_handle_data_packet_monitor(struct ipw_priv *priv,
7683 struct ipw_rx_mem_buffer *rxb,
7684 struct libipw_rx_stats *stats)
7685 {
7686 struct net_device *dev = priv->net_dev;
7687 struct ipw_rx_packet *pkt = (struct ipw_rx_packet *)rxb->skb->data;
7688 struct ipw_rx_frame *frame = &pkt->u.frame;
7689
7690 /* initial pull of some data */
7691 u16 received_channel = frame->received_channel;
7692 u8 antennaAndPhy = frame->antennaAndPhy;
7693 s8 antsignal = frame->rssi_dbm - IPW_RSSI_TO_DBM; /* call it signed anyhow */
7694 u16 pktrate = frame->rate;
7695
7696 /* Magic struct that slots into the radiotap header -- no reason
7697 * to build this manually element by element, we can write it much
7698 * more efficiently than we can parse it. ORDER MATTERS HERE */
7699 struct ipw_rt_hdr *ipw_rt;
7700
7701 unsigned short len = le16_to_cpu(pkt->u.frame.length);
7702
7703 /* We received data from the HW, so stop the watchdog */
7704 netif_trans_update(dev);
7705
7706 /* We only process data packets if the
7707 * interface is open */
7708 if (unlikely((le16_to_cpu(pkt->u.frame.length) + IPW_RX_FRAME_SIZE) >
7709 skb_tailroom(rxb->skb))) {
7710 dev->stats.rx_errors++;
7711 priv->wstats.discard.misc++;
7712 IPW_DEBUG_DROP("Corruption detected! Oh no!\n");
7713 return;
7714 } else if (unlikely(!netif_running(priv->net_dev))) {
7715 dev->stats.rx_dropped++;
7716 priv->wstats.discard.misc++;
7717 IPW_DEBUG_DROP("Dropping packet while interface is not up.\n");
7718 return;
7719 }
7720
7721 /* Libpcap 0.9.3+ can handle variable length radiotap, so we'll use
7722 * that now */
7723 if (len > IPW_RX_BUF_SIZE - sizeof(struct ipw_rt_hdr)) {
7724 /* FIXME: Should alloc bigger skb instead */
7725 dev->stats.rx_dropped++;
7726 priv->wstats.discard.misc++;
7727 IPW_DEBUG_DROP("Dropping too large packet in monitor\n");
7728 return;
7729 }
7730
7731 /* copy the frame itself */
7732 memmove(rxb->skb->data + sizeof(struct ipw_rt_hdr),
7733 rxb->skb->data + IPW_RX_FRAME_SIZE, len);
7734
7735 ipw_rt = (struct ipw_rt_hdr *)rxb->skb->data;
7736
7737 ipw_rt->rt_hdr.it_version = PKTHDR_RADIOTAP_VERSION;
7738 ipw_rt->rt_hdr.it_pad = 0; /* always good to zero */
7739 ipw_rt->rt_hdr.it_len = cpu_to_le16(sizeof(struct ipw_rt_hdr)); /* total header+data */
7740
7741 /* Big bitfield of all the fields we provide in radiotap */
7742 ipw_rt->rt_hdr.it_present = cpu_to_le32(
7743 (1 << IEEE80211_RADIOTAP_TSFT) |
7744 (1 << IEEE80211_RADIOTAP_FLAGS) |
7745 (1 << IEEE80211_RADIOTAP_RATE) |
7746 (1 << IEEE80211_RADIOTAP_CHANNEL) |
7747 (1 << IEEE80211_RADIOTAP_DBM_ANTSIGNAL) |
7748 (1 << IEEE80211_RADIOTAP_DBM_ANTNOISE) |
7749 (1 << IEEE80211_RADIOTAP_ANTENNA));
7750
7751 /* Zero the flags, we'll add to them as we go */
7752 ipw_rt->rt_flags = 0;
7753 ipw_rt->rt_tsf = (u64)(frame->parent_tsf[3] << 24 |
7754 frame->parent_tsf[2] << 16 |
7755 frame->parent_tsf[1] << 8 |
7756 frame->parent_tsf[0]);
7757
7758 /* Convert signal to DBM */
7759 ipw_rt->rt_dbmsignal = antsignal;
7760 ipw_rt->rt_dbmnoise = (s8) le16_to_cpu(frame->noise);
7761
7762 /* Convert the channel data and set the flags */
7763 ipw_rt->rt_channel = cpu_to_le16(ieee80211chan2mhz(received_channel));
7764 if (received_channel > 14) { /* 802.11a */
7765 ipw_rt->rt_chbitmask =
7766 cpu_to_le16((IEEE80211_CHAN_OFDM | IEEE80211_CHAN_5GHZ));
7767 } else if (antennaAndPhy & 32) { /* 802.11b */
7768 ipw_rt->rt_chbitmask =
7769 cpu_to_le16((IEEE80211_CHAN_CCK | IEEE80211_CHAN_2GHZ));
7770 } else { /* 802.11g */
7771 ipw_rt->rt_chbitmask =
7772 cpu_to_le16(IEEE80211_CHAN_OFDM | IEEE80211_CHAN_2GHZ);
7773 }
7774
7775 /* set the rate in multiples of 500k/s */
7776 switch (pktrate) {
7777 case IPW_TX_RATE_1MB:
7778 ipw_rt->rt_rate = 2;
7779 break;
7780 case IPW_TX_RATE_2MB:
7781 ipw_rt->rt_rate = 4;
7782 break;
7783 case IPW_TX_RATE_5MB:
7784 ipw_rt->rt_rate = 10;
7785 break;
7786 case IPW_TX_RATE_6MB:
7787 ipw_rt->rt_rate = 12;
7788 break;
7789 case IPW_TX_RATE_9MB:
7790 ipw_rt->rt_rate = 18;
7791 break;
7792 case IPW_TX_RATE_11MB:
7793 ipw_rt->rt_rate = 22;
7794 break;
7795 case IPW_TX_RATE_12MB:
7796 ipw_rt->rt_rate = 24;
7797 break;
7798 case IPW_TX_RATE_18MB:
7799 ipw_rt->rt_rate = 36;
7800 break;
7801 case IPW_TX_RATE_24MB:
7802 ipw_rt->rt_rate = 48;
7803 break;
7804 case IPW_TX_RATE_36MB:
7805 ipw_rt->rt_rate = 72;
7806 break;
7807 case IPW_TX_RATE_48MB:
7808 ipw_rt->rt_rate = 96;
7809 break;
7810 case IPW_TX_RATE_54MB:
7811 ipw_rt->rt_rate = 108;
7812 break;
7813 default:
7814 ipw_rt->rt_rate = 0;
7815 break;
7816 }
7817
7818 /* antenna number */
7819 ipw_rt->rt_antenna = (antennaAndPhy & 3); /* Is this right? */
7820
7821 /* set the preamble flag if we have it */
7822 if ((antennaAndPhy & 64))
7823 ipw_rt->rt_flags |= IEEE80211_RADIOTAP_F_SHORTPRE;
7824
7825 /* Set the size of the skb to the size of the frame */
7826 skb_put(rxb->skb, len + sizeof(struct ipw_rt_hdr));
7827
7828 IPW_DEBUG_RX("Rx packet of %d bytes.\n", rxb->skb->len);
7829
7830 if (!libipw_rx(priv->ieee, rxb->skb, stats))
7831 dev->stats.rx_errors++;
7832 else { /* libipw_rx succeeded, so it now owns the SKB */
7833 rxb->skb = NULL;
7834 /* no LED during capture */
7835 }
7836 }
7837 #endif
7838
7839 #ifdef CONFIG_IPW2200_PROMISCUOUS
7840 #define libipw_is_probe_response(fc) \
7841 ((fc & IEEE80211_FCTL_FTYPE) == IEEE80211_FTYPE_MGMT && \
7842 (fc & IEEE80211_FCTL_STYPE) == IEEE80211_STYPE_PROBE_RESP )
7843
7844 #define libipw_is_management(fc) \
7845 ((fc & IEEE80211_FCTL_FTYPE) == IEEE80211_FTYPE_MGMT)
7846
7847 #define libipw_is_control(fc) \
7848 ((fc & IEEE80211_FCTL_FTYPE) == IEEE80211_FTYPE_CTL)
7849
7850 #define libipw_is_data(fc) \
7851 ((fc & IEEE80211_FCTL_FTYPE) == IEEE80211_FTYPE_DATA)
7852
7853 #define libipw_is_assoc_request(fc) \
7854 ((fc & IEEE80211_FCTL_STYPE) == IEEE80211_STYPE_ASSOC_REQ)
7855
7856 #define libipw_is_reassoc_request(fc) \
7857 ((fc & IEEE80211_FCTL_STYPE) == IEEE80211_STYPE_REASSOC_REQ)
7858
ipw_handle_promiscuous_rx(struct ipw_priv * priv,struct ipw_rx_mem_buffer * rxb,struct libipw_rx_stats * stats)7859 static void ipw_handle_promiscuous_rx(struct ipw_priv *priv,
7860 struct ipw_rx_mem_buffer *rxb,
7861 struct libipw_rx_stats *stats)
7862 {
7863 struct net_device *dev = priv->prom_net_dev;
7864 struct ipw_rx_packet *pkt = (struct ipw_rx_packet *)rxb->skb->data;
7865 struct ipw_rx_frame *frame = &pkt->u.frame;
7866 struct ipw_rt_hdr *ipw_rt;
7867
7868 /* First cache any information we need before we overwrite
7869 * the information provided in the skb from the hardware */
7870 struct ieee80211_hdr *hdr;
7871 u16 channel = frame->received_channel;
7872 u8 phy_flags = frame->antennaAndPhy;
7873 s8 signal = frame->rssi_dbm - IPW_RSSI_TO_DBM;
7874 s8 noise = (s8) le16_to_cpu(frame->noise);
7875 u8 rate = frame->rate;
7876 unsigned short len = le16_to_cpu(pkt->u.frame.length);
7877 struct sk_buff *skb;
7878 int hdr_only = 0;
7879 u16 filter = priv->prom_priv->filter;
7880
7881 /* If the filter is set to not include Rx frames then return */
7882 if (filter & IPW_PROM_NO_RX)
7883 return;
7884
7885 /* We received data from the HW, so stop the watchdog */
7886 netif_trans_update(dev);
7887
7888 if (unlikely((len + IPW_RX_FRAME_SIZE) > skb_tailroom(rxb->skb))) {
7889 dev->stats.rx_errors++;
7890 IPW_DEBUG_DROP("Corruption detected! Oh no!\n");
7891 return;
7892 }
7893
7894 /* We only process data packets if the interface is open */
7895 if (unlikely(!netif_running(dev))) {
7896 dev->stats.rx_dropped++;
7897 IPW_DEBUG_DROP("Dropping packet while interface is not up.\n");
7898 return;
7899 }
7900
7901 /* Libpcap 0.9.3+ can handle variable length radiotap, so we'll use
7902 * that now */
7903 if (len > IPW_RX_BUF_SIZE - sizeof(struct ipw_rt_hdr)) {
7904 /* FIXME: Should alloc bigger skb instead */
7905 dev->stats.rx_dropped++;
7906 IPW_DEBUG_DROP("Dropping too large packet in monitor\n");
7907 return;
7908 }
7909
7910 hdr = (void *)rxb->skb->data + IPW_RX_FRAME_SIZE;
7911 if (libipw_is_management(le16_to_cpu(hdr->frame_control))) {
7912 if (filter & IPW_PROM_NO_MGMT)
7913 return;
7914 if (filter & IPW_PROM_MGMT_HEADER_ONLY)
7915 hdr_only = 1;
7916 } else if (libipw_is_control(le16_to_cpu(hdr->frame_control))) {
7917 if (filter & IPW_PROM_NO_CTL)
7918 return;
7919 if (filter & IPW_PROM_CTL_HEADER_ONLY)
7920 hdr_only = 1;
7921 } else if (libipw_is_data(le16_to_cpu(hdr->frame_control))) {
7922 if (filter & IPW_PROM_NO_DATA)
7923 return;
7924 if (filter & IPW_PROM_DATA_HEADER_ONLY)
7925 hdr_only = 1;
7926 }
7927
7928 /* Copy the SKB since this is for the promiscuous side */
7929 skb = skb_copy(rxb->skb, GFP_ATOMIC);
7930 if (skb == NULL) {
7931 IPW_ERROR("skb_clone failed for promiscuous copy.\n");
7932 return;
7933 }
7934
7935 /* copy the frame data to write after where the radiotap header goes */
7936 ipw_rt = (void *)skb->data;
7937
7938 if (hdr_only)
7939 len = libipw_get_hdrlen(le16_to_cpu(hdr->frame_control));
7940
7941 memcpy(ipw_rt->payload, hdr, len);
7942
7943 ipw_rt->rt_hdr.it_version = PKTHDR_RADIOTAP_VERSION;
7944 ipw_rt->rt_hdr.it_pad = 0; /* always good to zero */
7945 ipw_rt->rt_hdr.it_len = cpu_to_le16(sizeof(*ipw_rt)); /* total header+data */
7946
7947 /* Set the size of the skb to the size of the frame */
7948 skb_put(skb, sizeof(*ipw_rt) + len);
7949
7950 /* Big bitfield of all the fields we provide in radiotap */
7951 ipw_rt->rt_hdr.it_present = cpu_to_le32(
7952 (1 << IEEE80211_RADIOTAP_TSFT) |
7953 (1 << IEEE80211_RADIOTAP_FLAGS) |
7954 (1 << IEEE80211_RADIOTAP_RATE) |
7955 (1 << IEEE80211_RADIOTAP_CHANNEL) |
7956 (1 << IEEE80211_RADIOTAP_DBM_ANTSIGNAL) |
7957 (1 << IEEE80211_RADIOTAP_DBM_ANTNOISE) |
7958 (1 << IEEE80211_RADIOTAP_ANTENNA));
7959
7960 /* Zero the flags, we'll add to them as we go */
7961 ipw_rt->rt_flags = 0;
7962 ipw_rt->rt_tsf = (u64)(frame->parent_tsf[3] << 24 |
7963 frame->parent_tsf[2] << 16 |
7964 frame->parent_tsf[1] << 8 |
7965 frame->parent_tsf[0]);
7966
7967 /* Convert to DBM */
7968 ipw_rt->rt_dbmsignal = signal;
7969 ipw_rt->rt_dbmnoise = noise;
7970
7971 /* Convert the channel data and set the flags */
7972 ipw_rt->rt_channel = cpu_to_le16(ieee80211chan2mhz(channel));
7973 if (channel > 14) { /* 802.11a */
7974 ipw_rt->rt_chbitmask =
7975 cpu_to_le16((IEEE80211_CHAN_OFDM | IEEE80211_CHAN_5GHZ));
7976 } else if (phy_flags & (1 << 5)) { /* 802.11b */
7977 ipw_rt->rt_chbitmask =
7978 cpu_to_le16((IEEE80211_CHAN_CCK | IEEE80211_CHAN_2GHZ));
7979 } else { /* 802.11g */
7980 ipw_rt->rt_chbitmask =
7981 cpu_to_le16(IEEE80211_CHAN_OFDM | IEEE80211_CHAN_2GHZ);
7982 }
7983
7984 /* set the rate in multiples of 500k/s */
7985 switch (rate) {
7986 case IPW_TX_RATE_1MB:
7987 ipw_rt->rt_rate = 2;
7988 break;
7989 case IPW_TX_RATE_2MB:
7990 ipw_rt->rt_rate = 4;
7991 break;
7992 case IPW_TX_RATE_5MB:
7993 ipw_rt->rt_rate = 10;
7994 break;
7995 case IPW_TX_RATE_6MB:
7996 ipw_rt->rt_rate = 12;
7997 break;
7998 case IPW_TX_RATE_9MB:
7999 ipw_rt->rt_rate = 18;
8000 break;
8001 case IPW_TX_RATE_11MB:
8002 ipw_rt->rt_rate = 22;
8003 break;
8004 case IPW_TX_RATE_12MB:
8005 ipw_rt->rt_rate = 24;
8006 break;
8007 case IPW_TX_RATE_18MB:
8008 ipw_rt->rt_rate = 36;
8009 break;
8010 case IPW_TX_RATE_24MB:
8011 ipw_rt->rt_rate = 48;
8012 break;
8013 case IPW_TX_RATE_36MB:
8014 ipw_rt->rt_rate = 72;
8015 break;
8016 case IPW_TX_RATE_48MB:
8017 ipw_rt->rt_rate = 96;
8018 break;
8019 case IPW_TX_RATE_54MB:
8020 ipw_rt->rt_rate = 108;
8021 break;
8022 default:
8023 ipw_rt->rt_rate = 0;
8024 break;
8025 }
8026
8027 /* antenna number */
8028 ipw_rt->rt_antenna = (phy_flags & 3);
8029
8030 /* set the preamble flag if we have it */
8031 if (phy_flags & (1 << 6))
8032 ipw_rt->rt_flags |= IEEE80211_RADIOTAP_F_SHORTPRE;
8033
8034 IPW_DEBUG_RX("Rx packet of %d bytes.\n", skb->len);
8035
8036 if (!libipw_rx(priv->prom_priv->ieee, skb, stats)) {
8037 dev->stats.rx_errors++;
8038 dev_kfree_skb_any(skb);
8039 }
8040 }
8041 #endif
8042
is_network_packet(struct ipw_priv * priv,struct libipw_hdr_4addr * header)8043 static int is_network_packet(struct ipw_priv *priv,
8044 struct libipw_hdr_4addr *header)
8045 {
8046 /* Filter incoming packets to determine if they are targeted toward
8047 * this network, discarding packets coming from ourselves */
8048 switch (priv->ieee->iw_mode) {
8049 case IW_MODE_ADHOC: /* Header: Dest. | Source | BSSID */
8050 /* packets from our adapter are dropped (echo) */
8051 if (ether_addr_equal(header->addr2, priv->net_dev->dev_addr))
8052 return 0;
8053
8054 /* {broad,multi}cast packets to our BSSID go through */
8055 if (is_multicast_ether_addr(header->addr1))
8056 return ether_addr_equal(header->addr3, priv->bssid);
8057
8058 /* packets to our adapter go through */
8059 return ether_addr_equal(header->addr1,
8060 priv->net_dev->dev_addr);
8061
8062 case IW_MODE_INFRA: /* Header: Dest. | BSSID | Source */
8063 /* packets from our adapter are dropped (echo) */
8064 if (ether_addr_equal(header->addr3, priv->net_dev->dev_addr))
8065 return 0;
8066
8067 /* {broad,multi}cast packets to our BSS go through */
8068 if (is_multicast_ether_addr(header->addr1))
8069 return ether_addr_equal(header->addr2, priv->bssid);
8070
8071 /* packets to our adapter go through */
8072 return ether_addr_equal(header->addr1,
8073 priv->net_dev->dev_addr);
8074 }
8075
8076 return 1;
8077 }
8078
8079 #define IPW_PACKET_RETRY_TIME HZ
8080
is_duplicate_packet(struct ipw_priv * priv,struct libipw_hdr_4addr * header)8081 static int is_duplicate_packet(struct ipw_priv *priv,
8082 struct libipw_hdr_4addr *header)
8083 {
8084 u16 sc = le16_to_cpu(header->seq_ctl);
8085 u16 seq = WLAN_GET_SEQ_SEQ(sc);
8086 u16 frag = WLAN_GET_SEQ_FRAG(sc);
8087 u16 *last_seq, *last_frag;
8088 unsigned long *last_time;
8089
8090 switch (priv->ieee->iw_mode) {
8091 case IW_MODE_ADHOC:
8092 {
8093 struct list_head *p;
8094 struct ipw_ibss_seq *entry = NULL;
8095 u8 *mac = header->addr2;
8096 int index = mac[5] % IPW_IBSS_MAC_HASH_SIZE;
8097
8098 list_for_each(p, &priv->ibss_mac_hash[index]) {
8099 entry =
8100 list_entry(p, struct ipw_ibss_seq, list);
8101 if (ether_addr_equal(entry->mac, mac))
8102 break;
8103 }
8104 if (p == &priv->ibss_mac_hash[index]) {
8105 entry = kmalloc_obj(*entry, GFP_ATOMIC);
8106 if (!entry) {
8107 IPW_ERROR
8108 ("Cannot malloc new mac entry\n");
8109 return 0;
8110 }
8111 memcpy(entry->mac, mac, ETH_ALEN);
8112 entry->seq_num = seq;
8113 entry->frag_num = frag;
8114 entry->packet_time = jiffies;
8115 list_add(&entry->list,
8116 &priv->ibss_mac_hash[index]);
8117 return 0;
8118 }
8119 last_seq = &entry->seq_num;
8120 last_frag = &entry->frag_num;
8121 last_time = &entry->packet_time;
8122 break;
8123 }
8124 case IW_MODE_INFRA:
8125 last_seq = &priv->last_seq_num;
8126 last_frag = &priv->last_frag_num;
8127 last_time = &priv->last_packet_time;
8128 break;
8129 default:
8130 return 0;
8131 }
8132 if ((*last_seq == seq) &&
8133 time_after(*last_time + IPW_PACKET_RETRY_TIME, jiffies)) {
8134 if (*last_frag == frag)
8135 goto drop;
8136 if (*last_frag + 1 != frag)
8137 /* out-of-order fragment */
8138 goto drop;
8139 } else
8140 *last_seq = seq;
8141
8142 *last_frag = frag;
8143 *last_time = jiffies;
8144 return 0;
8145
8146 drop:
8147 /* Comment this line now since we observed the card receives
8148 * duplicate packets but the FCTL_RETRY bit is not set in the
8149 * IBSS mode with fragmentation enabled.
8150 BUG_ON(!(le16_to_cpu(header->frame_control) & IEEE80211_FCTL_RETRY)); */
8151 return 1;
8152 }
8153
ipw_handle_mgmt_packet(struct ipw_priv * priv,struct ipw_rx_mem_buffer * rxb,struct libipw_rx_stats * stats)8154 static void ipw_handle_mgmt_packet(struct ipw_priv *priv,
8155 struct ipw_rx_mem_buffer *rxb,
8156 struct libipw_rx_stats *stats)
8157 {
8158 struct sk_buff *skb = rxb->skb;
8159 struct ipw_rx_packet *pkt = (struct ipw_rx_packet *)skb->data;
8160 struct libipw_hdr_4addr *header = (struct libipw_hdr_4addr *)
8161 (skb->data + IPW_RX_FRAME_SIZE);
8162
8163 libipw_rx_mgt(priv->ieee, header, stats);
8164
8165 if (priv->ieee->iw_mode == IW_MODE_ADHOC &&
8166 ((WLAN_FC_GET_STYPE(le16_to_cpu(header->frame_ctl)) ==
8167 IEEE80211_STYPE_PROBE_RESP) ||
8168 (WLAN_FC_GET_STYPE(le16_to_cpu(header->frame_ctl)) ==
8169 IEEE80211_STYPE_BEACON))) {
8170 if (ether_addr_equal(header->addr3, priv->bssid))
8171 ipw_add_station(priv, header->addr2);
8172 }
8173
8174 if (priv->config & CFG_NET_STATS) {
8175 IPW_DEBUG_HC("sending stat packet\n");
8176
8177 /* Set the size of the skb to the size of the full
8178 * ipw header and 802.11 frame */
8179 skb_put(skb, le16_to_cpu(pkt->u.frame.length) +
8180 IPW_RX_FRAME_SIZE);
8181
8182 /* Advance past the ipw packet header to the 802.11 frame */
8183 skb_pull(skb, IPW_RX_FRAME_SIZE);
8184
8185 /* Push the libipw_rx_stats before the 802.11 frame */
8186 memcpy(skb_push(skb, sizeof(*stats)), stats, sizeof(*stats));
8187
8188 skb->dev = priv->ieee->dev;
8189
8190 /* Point raw at the libipw_stats */
8191 skb_reset_mac_header(skb);
8192
8193 skb->pkt_type = PACKET_OTHERHOST;
8194 skb->protocol = cpu_to_be16(ETH_P_80211_STATS);
8195 memset(skb->cb, 0, sizeof(rxb->skb->cb));
8196 netif_rx(skb);
8197 rxb->skb = NULL;
8198 }
8199 }
8200
8201 /*
8202 * Main entry function for receiving a packet with 80211 headers. This
8203 * should be called when ever the FW has notified us that there is a new
8204 * skb in the receive queue.
8205 */
ipw_rx(struct ipw_priv * priv)8206 static void ipw_rx(struct ipw_priv *priv)
8207 {
8208 struct ipw_rx_mem_buffer *rxb;
8209 struct ipw_rx_packet *pkt;
8210 struct libipw_hdr_4addr *header;
8211 u32 r, i;
8212 u8 network_packet;
8213 u8 fill_rx = 0;
8214
8215 r = ipw_read32(priv, IPW_RX_READ_INDEX);
8216 ipw_read32(priv, IPW_RX_WRITE_INDEX);
8217 i = priv->rxq->read;
8218
8219 if (ipw_rx_queue_space (priv->rxq) > (RX_QUEUE_SIZE / 2))
8220 fill_rx = 1;
8221
8222 while (i != r) {
8223 rxb = priv->rxq->queue[i];
8224 if (unlikely(rxb == NULL)) {
8225 printk(KERN_CRIT "Queue not allocated!\n");
8226 break;
8227 }
8228 priv->rxq->queue[i] = NULL;
8229
8230 dma_sync_single_for_cpu(&priv->pci_dev->dev, rxb->dma_addr,
8231 IPW_RX_BUF_SIZE, DMA_FROM_DEVICE);
8232
8233 pkt = (struct ipw_rx_packet *)rxb->skb->data;
8234 IPW_DEBUG_RX("Packet: type=%02X seq=%02X bits=%02X\n",
8235 pkt->header.message_type,
8236 pkt->header.rx_seq_num, pkt->header.control_bits);
8237
8238 switch (pkt->header.message_type) {
8239 case RX_FRAME_TYPE: /* 802.11 frame */ {
8240 struct libipw_rx_stats stats = {
8241 .rssi = pkt->u.frame.rssi_dbm -
8242 IPW_RSSI_TO_DBM,
8243 .signal =
8244 pkt->u.frame.rssi_dbm -
8245 IPW_RSSI_TO_DBM + 0x100,
8246 .noise =
8247 le16_to_cpu(pkt->u.frame.noise),
8248 .rate = pkt->u.frame.rate,
8249 .mac_time = jiffies,
8250 .received_channel =
8251 pkt->u.frame.received_channel,
8252 .freq =
8253 (pkt->u.frame.
8254 control & (1 << 0)) ?
8255 LIBIPW_24GHZ_BAND :
8256 LIBIPW_52GHZ_BAND,
8257 .len = le16_to_cpu(pkt->u.frame.length),
8258 };
8259
8260 if (stats.rssi != 0)
8261 stats.mask |= LIBIPW_STATMASK_RSSI;
8262 if (stats.signal != 0)
8263 stats.mask |= LIBIPW_STATMASK_SIGNAL;
8264 if (stats.noise != 0)
8265 stats.mask |= LIBIPW_STATMASK_NOISE;
8266 if (stats.rate != 0)
8267 stats.mask |= LIBIPW_STATMASK_RATE;
8268
8269 priv->rx_packets++;
8270
8271 #ifdef CONFIG_IPW2200_PROMISCUOUS
8272 if (priv->prom_net_dev && netif_running(priv->prom_net_dev))
8273 ipw_handle_promiscuous_rx(priv, rxb, &stats);
8274 #endif
8275
8276 #ifdef CONFIG_IPW2200_MONITOR
8277 if (priv->ieee->iw_mode == IW_MODE_MONITOR) {
8278 #ifdef CONFIG_IPW2200_RADIOTAP
8279
8280 ipw_handle_data_packet_monitor(priv,
8281 rxb,
8282 &stats);
8283 #else
8284 ipw_handle_data_packet(priv, rxb,
8285 &stats);
8286 #endif
8287 break;
8288 }
8289 #endif
8290
8291 header =
8292 (struct libipw_hdr_4addr *)(rxb->skb->
8293 data +
8294 IPW_RX_FRAME_SIZE);
8295 /* TODO: Check Ad-Hoc dest/source and make sure
8296 * that we are actually parsing these packets
8297 * correctly -- we should probably use the
8298 * frame control of the packet and disregard
8299 * the current iw_mode */
8300
8301 network_packet =
8302 is_network_packet(priv, header);
8303 if (network_packet && priv->assoc_network) {
8304 priv->assoc_network->stats.rssi =
8305 stats.rssi;
8306 priv->exp_avg_rssi =
8307 exponential_average(priv->exp_avg_rssi,
8308 stats.rssi, DEPTH_RSSI);
8309 }
8310
8311 IPW_DEBUG_RX("Frame: len=%u\n",
8312 le16_to_cpu(pkt->u.frame.length));
8313
8314 if (le16_to_cpu(pkt->u.frame.length) <
8315 libipw_get_hdrlen(le16_to_cpu(
8316 header->frame_ctl))) {
8317 IPW_DEBUG_DROP
8318 ("Received packet is too small. "
8319 "Dropping.\n");
8320 priv->net_dev->stats.rx_errors++;
8321 priv->wstats.discard.misc++;
8322 break;
8323 }
8324
8325 switch (WLAN_FC_GET_TYPE
8326 (le16_to_cpu(header->frame_ctl))) {
8327
8328 case IEEE80211_FTYPE_MGMT:
8329 ipw_handle_mgmt_packet(priv, rxb,
8330 &stats);
8331 break;
8332
8333 case IEEE80211_FTYPE_CTL:
8334 break;
8335
8336 case IEEE80211_FTYPE_DATA:
8337 if (unlikely(!network_packet ||
8338 is_duplicate_packet(priv,
8339 header)))
8340 {
8341 IPW_DEBUG_DROP("Dropping: "
8342 "%pM, "
8343 "%pM, "
8344 "%pM\n",
8345 header->addr1,
8346 header->addr2,
8347 header->addr3);
8348 break;
8349 }
8350
8351 ipw_handle_data_packet(priv, rxb,
8352 &stats);
8353
8354 break;
8355 }
8356 break;
8357 }
8358
8359 case RX_HOST_NOTIFICATION_TYPE:{
8360 IPW_DEBUG_RX
8361 ("Notification: subtype=%02X flags=%02X size=%d\n",
8362 pkt->u.notification.subtype,
8363 pkt->u.notification.flags,
8364 le16_to_cpu(pkt->u.notification.size));
8365 ipw_rx_notification(priv, &pkt->u.notification);
8366 break;
8367 }
8368
8369 default:
8370 IPW_DEBUG_RX("Bad Rx packet of type %d\n",
8371 pkt->header.message_type);
8372 break;
8373 }
8374
8375 /* For now we just don't re-use anything. We can tweak this
8376 * later to try and re-use notification packets and SKBs that
8377 * fail to Rx correctly */
8378 if (rxb->skb != NULL) {
8379 dev_kfree_skb_any(rxb->skb);
8380 rxb->skb = NULL;
8381 }
8382
8383 dma_unmap_single(&priv->pci_dev->dev, rxb->dma_addr,
8384 IPW_RX_BUF_SIZE, DMA_FROM_DEVICE);
8385 list_add_tail(&rxb->list, &priv->rxq->rx_used);
8386
8387 i = (i + 1) % RX_QUEUE_SIZE;
8388
8389 /* If there are a lot of unsued frames, restock the Rx queue
8390 * so the ucode won't assert */
8391 if (fill_rx) {
8392 priv->rxq->read = i;
8393 ipw_rx_queue_replenish(priv);
8394 }
8395 }
8396
8397 /* Backtrack one entry */
8398 priv->rxq->read = i;
8399 ipw_rx_queue_restock(priv);
8400 }
8401
8402 #define DEFAULT_RTS_THRESHOLD 2304U
8403 #define MIN_RTS_THRESHOLD 1U
8404 #define MAX_RTS_THRESHOLD 2304U
8405 #define DEFAULT_BEACON_INTERVAL 100U
8406 #define DEFAULT_SHORT_RETRY_LIMIT 7U
8407 #define DEFAULT_LONG_RETRY_LIMIT 4U
8408
8409 /*
8410 * ipw_sw_reset
8411 * @option: options to control different reset behaviour
8412 * 0 = reset everything except the 'disable' module_param
8413 * 1 = reset everything and print out driver info (for probe only)
8414 * 2 = reset everything
8415 */
ipw_sw_reset(struct ipw_priv * priv,int option)8416 static int ipw_sw_reset(struct ipw_priv *priv, int option)
8417 {
8418 int band, modulation;
8419 int old_mode = priv->ieee->iw_mode;
8420
8421 /* Initialize module parameter values here */
8422 priv->config = 0;
8423
8424 /* We default to disabling the LED code as right now it causes
8425 * too many systems to lock up... */
8426 if (!led_support)
8427 priv->config |= CFG_NO_LED;
8428
8429 if (associate)
8430 priv->config |= CFG_ASSOCIATE;
8431 else
8432 IPW_DEBUG_INFO("Auto associate disabled.\n");
8433
8434 if (auto_create)
8435 priv->config |= CFG_ADHOC_CREATE;
8436 else
8437 IPW_DEBUG_INFO("Auto adhoc creation disabled.\n");
8438
8439 priv->config &= ~CFG_STATIC_ESSID;
8440 priv->essid_len = 0;
8441 memset(priv->essid, 0, IW_ESSID_MAX_SIZE);
8442
8443 if (disable && option) {
8444 priv->status |= STATUS_RF_KILL_SW;
8445 IPW_DEBUG_INFO("Radio disabled.\n");
8446 }
8447
8448 if (default_channel != 0) {
8449 priv->config |= CFG_STATIC_CHANNEL;
8450 priv->channel = default_channel;
8451 IPW_DEBUG_INFO("Bind to static channel %d\n", default_channel);
8452 /* TODO: Validate that provided channel is in range */
8453 }
8454 #ifdef CONFIG_IPW2200_QOS
8455 ipw_qos_init(priv, qos_enable, qos_burst_enable,
8456 burst_duration_CCK, burst_duration_OFDM);
8457 #endif /* CONFIG_IPW2200_QOS */
8458
8459 switch (network_mode) {
8460 case 1:
8461 priv->ieee->iw_mode = IW_MODE_ADHOC;
8462 priv->net_dev->type = ARPHRD_ETHER;
8463
8464 break;
8465 #ifdef CONFIG_IPW2200_MONITOR
8466 case 2:
8467 priv->ieee->iw_mode = IW_MODE_MONITOR;
8468 #ifdef CONFIG_IPW2200_RADIOTAP
8469 priv->net_dev->type = ARPHRD_IEEE80211_RADIOTAP;
8470 #else
8471 priv->net_dev->type = ARPHRD_IEEE80211;
8472 #endif
8473 break;
8474 #endif
8475 default:
8476 case 0:
8477 priv->net_dev->type = ARPHRD_ETHER;
8478 priv->ieee->iw_mode = IW_MODE_INFRA;
8479 break;
8480 }
8481
8482 if (hwcrypto) {
8483 priv->ieee->host_encrypt = 0;
8484 priv->ieee->host_encrypt_msdu = 0;
8485 priv->ieee->host_decrypt = 0;
8486 priv->ieee->host_mc_decrypt = 0;
8487 }
8488 IPW_DEBUG_INFO("Hardware crypto [%s]\n", hwcrypto ? "on" : "off");
8489
8490 /* IPW2200/2915 is abled to do hardware fragmentation. */
8491 priv->ieee->host_open_frag = 0;
8492
8493 if ((priv->pci_dev->device == 0x4223) ||
8494 (priv->pci_dev->device == 0x4224)) {
8495 if (option == 1)
8496 printk(KERN_INFO DRV_NAME
8497 ": Detected Intel PRO/Wireless 2915ABG Network "
8498 "Connection\n");
8499 priv->ieee->abg_true = 1;
8500 band = LIBIPW_52GHZ_BAND | LIBIPW_24GHZ_BAND;
8501 modulation = LIBIPW_OFDM_MODULATION |
8502 LIBIPW_CCK_MODULATION;
8503 priv->adapter = IPW_2915ABG;
8504 priv->ieee->mode = IEEE_A | IEEE_G | IEEE_B;
8505 } else {
8506 if (option == 1)
8507 printk(KERN_INFO DRV_NAME
8508 ": Detected Intel PRO/Wireless 2200BG Network "
8509 "Connection\n");
8510
8511 priv->ieee->abg_true = 0;
8512 band = LIBIPW_24GHZ_BAND;
8513 modulation = LIBIPW_OFDM_MODULATION |
8514 LIBIPW_CCK_MODULATION;
8515 priv->adapter = IPW_2200BG;
8516 priv->ieee->mode = IEEE_G | IEEE_B;
8517 }
8518
8519 priv->ieee->freq_band = band;
8520 priv->ieee->modulation = modulation;
8521
8522 priv->rates_mask = LIBIPW_DEFAULT_RATES_MASK;
8523
8524 priv->disassociate_threshold = IPW_MB_DISASSOCIATE_THRESHOLD_DEFAULT;
8525 priv->roaming_threshold = IPW_MB_ROAMING_THRESHOLD_DEFAULT;
8526
8527 priv->rts_threshold = DEFAULT_RTS_THRESHOLD;
8528 priv->short_retry_limit = DEFAULT_SHORT_RETRY_LIMIT;
8529 priv->long_retry_limit = DEFAULT_LONG_RETRY_LIMIT;
8530
8531 /* If power management is turned on, default to AC mode */
8532 priv->power_mode = IPW_POWER_AC;
8533 priv->tx_power = IPW_TX_POWER_DEFAULT;
8534
8535 return old_mode == priv->ieee->iw_mode;
8536 }
8537
8538 /*
8539 * This file defines the Wireless Extension handlers. It does not
8540 * define any methods of hardware manipulation and relies on the
8541 * functions defined in ipw_main to provide the HW interaction.
8542 *
8543 * The exception to this is the use of the ipw_get_ordinal()
8544 * function used to poll the hardware vs. making unnecessary calls.
8545 *
8546 */
8547
ipw_set_channel(struct ipw_priv * priv,u8 channel)8548 static int ipw_set_channel(struct ipw_priv *priv, u8 channel)
8549 {
8550 if (channel == 0) {
8551 IPW_DEBUG_INFO("Setting channel to ANY (0)\n");
8552 priv->config &= ~CFG_STATIC_CHANNEL;
8553 IPW_DEBUG_ASSOC("Attempting to associate with new "
8554 "parameters.\n");
8555 ipw_associate(priv);
8556 return 0;
8557 }
8558
8559 priv->config |= CFG_STATIC_CHANNEL;
8560
8561 if (priv->channel == channel) {
8562 IPW_DEBUG_INFO("Request to set channel to current value (%d)\n",
8563 channel);
8564 return 0;
8565 }
8566
8567 IPW_DEBUG_INFO("Setting channel to %i\n", (int)channel);
8568 priv->channel = channel;
8569
8570 #ifdef CONFIG_IPW2200_MONITOR
8571 if (priv->ieee->iw_mode == IW_MODE_MONITOR) {
8572 int i;
8573 if (priv->status & STATUS_SCANNING) {
8574 IPW_DEBUG_SCAN("Scan abort triggered due to "
8575 "channel change.\n");
8576 ipw_abort_scan(priv);
8577 }
8578
8579 for (i = 1000; i && (priv->status & STATUS_SCANNING); i--)
8580 udelay(10);
8581
8582 if (priv->status & STATUS_SCANNING)
8583 IPW_DEBUG_SCAN("Still scanning...\n");
8584 else
8585 IPW_DEBUG_SCAN("Took %dms to abort current scan\n",
8586 1000 - i);
8587
8588 return 0;
8589 }
8590 #endif /* CONFIG_IPW2200_MONITOR */
8591
8592 /* Network configuration changed -- force [re]association */
8593 IPW_DEBUG_ASSOC("[re]association triggered due to channel change.\n");
8594 if (!ipw_disassociate(priv))
8595 ipw_associate(priv);
8596
8597 return 0;
8598 }
8599
ipw_wx_set_freq(struct net_device * dev,struct iw_request_info * info,union iwreq_data * wrqu,char * extra)8600 static int ipw_wx_set_freq(struct net_device *dev,
8601 struct iw_request_info *info,
8602 union iwreq_data *wrqu, char *extra)
8603 {
8604 struct ipw_priv *priv = libipw_priv(dev);
8605 const struct libipw_geo *geo = libipw_get_geo(priv->ieee);
8606 struct iw_freq *fwrq = &wrqu->freq;
8607 int ret = 0, i;
8608 u8 channel, flags;
8609 int band;
8610
8611 if (fwrq->m == 0) {
8612 IPW_DEBUG_WX("SET Freq/Channel -> any\n");
8613 mutex_lock(&priv->mutex);
8614 ret = ipw_set_channel(priv, 0);
8615 mutex_unlock(&priv->mutex);
8616 return ret;
8617 }
8618 /* if setting by freq convert to channel */
8619 if (fwrq->e == 1) {
8620 channel = libipw_freq_to_channel(priv->ieee, fwrq->m);
8621 if (channel == 0)
8622 return -EINVAL;
8623 } else
8624 channel = fwrq->m;
8625
8626 if (!(band = libipw_is_valid_channel(priv->ieee, channel)))
8627 return -EINVAL;
8628
8629 if (priv->ieee->iw_mode == IW_MODE_ADHOC) {
8630 i = libipw_channel_to_index(priv->ieee, channel);
8631 if (i == -1)
8632 return -EINVAL;
8633
8634 flags = (band == LIBIPW_24GHZ_BAND) ?
8635 geo->bg[i].flags : geo->a[i].flags;
8636 if (flags & LIBIPW_CH_PASSIVE_ONLY) {
8637 IPW_DEBUG_WX("Invalid Ad-Hoc channel for 802.11a\n");
8638 return -EINVAL;
8639 }
8640 }
8641
8642 IPW_DEBUG_WX("SET Freq/Channel -> %d\n", fwrq->m);
8643 mutex_lock(&priv->mutex);
8644 ret = ipw_set_channel(priv, channel);
8645 mutex_unlock(&priv->mutex);
8646 return ret;
8647 }
8648
ipw_wx_get_freq(struct net_device * dev,struct iw_request_info * info,union iwreq_data * wrqu,char * extra)8649 static int ipw_wx_get_freq(struct net_device *dev,
8650 struct iw_request_info *info,
8651 union iwreq_data *wrqu, char *extra)
8652 {
8653 struct ipw_priv *priv = libipw_priv(dev);
8654
8655 wrqu->freq.e = 0;
8656
8657 /* If we are associated, trying to associate, or have a statically
8658 * configured CHANNEL then return that; otherwise return ANY */
8659 mutex_lock(&priv->mutex);
8660 if (priv->config & CFG_STATIC_CHANNEL ||
8661 priv->status & (STATUS_ASSOCIATING | STATUS_ASSOCIATED)) {
8662 int i;
8663
8664 i = libipw_channel_to_index(priv->ieee, priv->channel);
8665 BUG_ON(i == -1);
8666 wrqu->freq.e = 1;
8667
8668 switch (libipw_is_valid_channel(priv->ieee, priv->channel)) {
8669 case LIBIPW_52GHZ_BAND:
8670 wrqu->freq.m = priv->ieee->geo.a[i].freq * 100000;
8671 break;
8672
8673 case LIBIPW_24GHZ_BAND:
8674 wrqu->freq.m = priv->ieee->geo.bg[i].freq * 100000;
8675 break;
8676
8677 default:
8678 BUG();
8679 }
8680 } else
8681 wrqu->freq.m = 0;
8682
8683 mutex_unlock(&priv->mutex);
8684 IPW_DEBUG_WX("GET Freq/Channel -> %d\n", priv->channel);
8685 return 0;
8686 }
8687
ipw_wx_set_mode(struct net_device * dev,struct iw_request_info * info,union iwreq_data * wrqu,char * extra)8688 static int ipw_wx_set_mode(struct net_device *dev,
8689 struct iw_request_info *info,
8690 union iwreq_data *wrqu, char *extra)
8691 {
8692 struct ipw_priv *priv = libipw_priv(dev);
8693 int err = 0;
8694
8695 IPW_DEBUG_WX("Set MODE: %d\n", wrqu->mode);
8696
8697 switch (wrqu->mode) {
8698 #ifdef CONFIG_IPW2200_MONITOR
8699 case IW_MODE_MONITOR:
8700 #endif
8701 case IW_MODE_ADHOC:
8702 case IW_MODE_INFRA:
8703 break;
8704 case IW_MODE_AUTO:
8705 wrqu->mode = IW_MODE_INFRA;
8706 break;
8707 default:
8708 return -EINVAL;
8709 }
8710 if (wrqu->mode == priv->ieee->iw_mode)
8711 return 0;
8712
8713 mutex_lock(&priv->mutex);
8714
8715 ipw_sw_reset(priv, 0);
8716
8717 #ifdef CONFIG_IPW2200_MONITOR
8718 if (priv->ieee->iw_mode == IW_MODE_MONITOR)
8719 priv->net_dev->type = ARPHRD_ETHER;
8720
8721 if (wrqu->mode == IW_MODE_MONITOR)
8722 #ifdef CONFIG_IPW2200_RADIOTAP
8723 priv->net_dev->type = ARPHRD_IEEE80211_RADIOTAP;
8724 #else
8725 priv->net_dev->type = ARPHRD_IEEE80211;
8726 #endif
8727 #endif /* CONFIG_IPW2200_MONITOR */
8728
8729 /* Free the existing firmware and reset the fw_loaded
8730 * flag so ipw_load() will bring in the new firmware */
8731 free_firmware();
8732
8733 priv->ieee->iw_mode = wrqu->mode;
8734
8735 schedule_work(&priv->adapter_restart);
8736 mutex_unlock(&priv->mutex);
8737 return err;
8738 }
8739
ipw_wx_get_mode(struct net_device * dev,struct iw_request_info * info,union iwreq_data * wrqu,char * extra)8740 static int ipw_wx_get_mode(struct net_device *dev,
8741 struct iw_request_info *info,
8742 union iwreq_data *wrqu, char *extra)
8743 {
8744 struct ipw_priv *priv = libipw_priv(dev);
8745 mutex_lock(&priv->mutex);
8746 wrqu->mode = priv->ieee->iw_mode;
8747 IPW_DEBUG_WX("Get MODE -> %d\n", wrqu->mode);
8748 mutex_unlock(&priv->mutex);
8749 return 0;
8750 }
8751
8752 /* Values are in microsecond */
8753 static const s32 timeout_duration[] = {
8754 350000,
8755 250000,
8756 75000,
8757 37000,
8758 25000,
8759 };
8760
8761 static const s32 period_duration[] = {
8762 400000,
8763 700000,
8764 1000000,
8765 1000000,
8766 1000000
8767 };
8768
ipw_wx_get_range(struct net_device * dev,struct iw_request_info * info,union iwreq_data * wrqu,char * extra)8769 static int ipw_wx_get_range(struct net_device *dev,
8770 struct iw_request_info *info,
8771 union iwreq_data *wrqu, char *extra)
8772 {
8773 struct ipw_priv *priv = libipw_priv(dev);
8774 struct iw_range *range = (struct iw_range *)extra;
8775 const struct libipw_geo *geo = libipw_get_geo(priv->ieee);
8776 int i = 0, j;
8777
8778 wrqu->data.length = sizeof(*range);
8779 memset(range, 0, sizeof(*range));
8780
8781 /* 54Mbs == ~27 Mb/s real (802.11g) */
8782 range->throughput = 27 * 1000 * 1000;
8783
8784 range->max_qual.qual = 100;
8785 /* TODO: Find real max RSSI and stick here */
8786 range->max_qual.level = 0;
8787 range->max_qual.noise = 0;
8788 range->max_qual.updated = 7; /* Updated all three */
8789
8790 range->avg_qual.qual = 70;
8791 /* TODO: Find real 'good' to 'bad' threshold value for RSSI */
8792 range->avg_qual.level = 0; /* FIXME to real average level */
8793 range->avg_qual.noise = 0;
8794 range->avg_qual.updated = 7; /* Updated all three */
8795 mutex_lock(&priv->mutex);
8796 range->num_bitrates = min(priv->rates.num_rates, (u8) IW_MAX_BITRATES);
8797
8798 for (i = 0; i < range->num_bitrates; i++)
8799 range->bitrate[i] = (priv->rates.supported_rates[i] & 0x7F) *
8800 500000;
8801
8802 range->max_rts = DEFAULT_RTS_THRESHOLD;
8803 range->min_frag = MIN_FRAG_THRESHOLD;
8804 range->max_frag = MAX_FRAG_THRESHOLD;
8805
8806 range->encoding_size[0] = 5;
8807 range->encoding_size[1] = 13;
8808 range->num_encoding_sizes = 2;
8809 range->max_encoding_tokens = WEP_KEYS;
8810
8811 /* Set the Wireless Extension versions */
8812 range->we_version_compiled = WIRELESS_EXT;
8813 range->we_version_source = 18;
8814
8815 i = 0;
8816 if (priv->ieee->mode & (IEEE_B | IEEE_G)) {
8817 for (j = 0; j < geo->bg_channels && i < IW_MAX_FREQUENCIES; j++) {
8818 if ((priv->ieee->iw_mode == IW_MODE_ADHOC) &&
8819 (geo->bg[j].flags & LIBIPW_CH_PASSIVE_ONLY))
8820 continue;
8821
8822 range->freq[i].i = geo->bg[j].channel;
8823 range->freq[i].m = geo->bg[j].freq * 100000;
8824 range->freq[i].e = 1;
8825 i++;
8826 }
8827 }
8828
8829 if (priv->ieee->mode & IEEE_A) {
8830 for (j = 0; j < geo->a_channels && i < IW_MAX_FREQUENCIES; j++) {
8831 if ((priv->ieee->iw_mode == IW_MODE_ADHOC) &&
8832 (geo->a[j].flags & LIBIPW_CH_PASSIVE_ONLY))
8833 continue;
8834
8835 range->freq[i].i = geo->a[j].channel;
8836 range->freq[i].m = geo->a[j].freq * 100000;
8837 range->freq[i].e = 1;
8838 i++;
8839 }
8840 }
8841
8842 range->num_channels = i;
8843 range->num_frequency = i;
8844
8845 mutex_unlock(&priv->mutex);
8846
8847 /* Event capability (kernel + driver) */
8848 range->event_capa[0] = (IW_EVENT_CAPA_K_0 |
8849 IW_EVENT_CAPA_MASK(SIOCGIWTHRSPY) |
8850 IW_EVENT_CAPA_MASK(SIOCGIWAP) |
8851 IW_EVENT_CAPA_MASK(SIOCGIWSCAN));
8852 range->event_capa[1] = IW_EVENT_CAPA_K_1;
8853
8854 range->enc_capa = IW_ENC_CAPA_WPA | IW_ENC_CAPA_WPA2 |
8855 IW_ENC_CAPA_CIPHER_TKIP | IW_ENC_CAPA_CIPHER_CCMP;
8856
8857 range->scan_capa = IW_SCAN_CAPA_ESSID | IW_SCAN_CAPA_TYPE;
8858
8859 IPW_DEBUG_WX("GET Range\n");
8860 return 0;
8861 }
8862
ipw_wx_set_wap(struct net_device * dev,struct iw_request_info * info,union iwreq_data * wrqu,char * extra)8863 static int ipw_wx_set_wap(struct net_device *dev,
8864 struct iw_request_info *info,
8865 union iwreq_data *wrqu, char *extra)
8866 {
8867 struct ipw_priv *priv = libipw_priv(dev);
8868
8869 if (wrqu->ap_addr.sa_family != ARPHRD_ETHER)
8870 return -EINVAL;
8871 mutex_lock(&priv->mutex);
8872 if (is_broadcast_ether_addr(wrqu->ap_addr.sa_data) ||
8873 is_zero_ether_addr(wrqu->ap_addr.sa_data)) {
8874 /* we disable mandatory BSSID association */
8875 IPW_DEBUG_WX("Setting AP BSSID to ANY\n");
8876 priv->config &= ~CFG_STATIC_BSSID;
8877 IPW_DEBUG_ASSOC("Attempting to associate with new "
8878 "parameters.\n");
8879 ipw_associate(priv);
8880 mutex_unlock(&priv->mutex);
8881 return 0;
8882 }
8883
8884 priv->config |= CFG_STATIC_BSSID;
8885 if (ether_addr_equal(priv->bssid, wrqu->ap_addr.sa_data)) {
8886 IPW_DEBUG_WX("BSSID set to current BSSID.\n");
8887 mutex_unlock(&priv->mutex);
8888 return 0;
8889 }
8890
8891 IPW_DEBUG_WX("Setting mandatory BSSID to %pM\n",
8892 wrqu->ap_addr.sa_data);
8893
8894 memcpy(priv->bssid, wrqu->ap_addr.sa_data, ETH_ALEN);
8895
8896 /* Network configuration changed -- force [re]association */
8897 IPW_DEBUG_ASSOC("[re]association triggered due to BSSID change.\n");
8898 if (!ipw_disassociate(priv))
8899 ipw_associate(priv);
8900
8901 mutex_unlock(&priv->mutex);
8902 return 0;
8903 }
8904
ipw_wx_get_wap(struct net_device * dev,struct iw_request_info * info,union iwreq_data * wrqu,char * extra)8905 static int ipw_wx_get_wap(struct net_device *dev,
8906 struct iw_request_info *info,
8907 union iwreq_data *wrqu, char *extra)
8908 {
8909 struct ipw_priv *priv = libipw_priv(dev);
8910
8911 /* If we are associated, trying to associate, or have a statically
8912 * configured BSSID then return that; otherwise return ANY */
8913 mutex_lock(&priv->mutex);
8914 if (priv->config & CFG_STATIC_BSSID ||
8915 priv->status & (STATUS_ASSOCIATED | STATUS_ASSOCIATING)) {
8916 wrqu->ap_addr.sa_family = ARPHRD_ETHER;
8917 memcpy(wrqu->ap_addr.sa_data, priv->bssid, ETH_ALEN);
8918 } else
8919 eth_zero_addr(wrqu->ap_addr.sa_data);
8920
8921 IPW_DEBUG_WX("Getting WAP BSSID: %pM\n",
8922 wrqu->ap_addr.sa_data);
8923 mutex_unlock(&priv->mutex);
8924 return 0;
8925 }
8926
ipw_wx_set_essid(struct net_device * dev,struct iw_request_info * info,union iwreq_data * wrqu,char * extra)8927 static int ipw_wx_set_essid(struct net_device *dev,
8928 struct iw_request_info *info,
8929 union iwreq_data *wrqu, char *extra)
8930 {
8931 struct ipw_priv *priv = libipw_priv(dev);
8932 int length;
8933
8934 mutex_lock(&priv->mutex);
8935
8936 if (!wrqu->essid.flags)
8937 {
8938 IPW_DEBUG_WX("Setting ESSID to ANY\n");
8939 ipw_disassociate(priv);
8940 priv->config &= ~CFG_STATIC_ESSID;
8941 ipw_associate(priv);
8942 mutex_unlock(&priv->mutex);
8943 return 0;
8944 }
8945
8946 length = min((int)wrqu->essid.length, IW_ESSID_MAX_SIZE);
8947
8948 priv->config |= CFG_STATIC_ESSID;
8949
8950 if (priv->essid_len == length && !memcmp(priv->essid, extra, length)
8951 && (priv->status & (STATUS_ASSOCIATED | STATUS_ASSOCIATING))) {
8952 IPW_DEBUG_WX("ESSID set to current ESSID.\n");
8953 mutex_unlock(&priv->mutex);
8954 return 0;
8955 }
8956
8957 IPW_DEBUG_WX("Setting ESSID: '%*pE' (%d)\n", length, extra, length);
8958
8959 priv->essid_len = length;
8960 memcpy(priv->essid, extra, priv->essid_len);
8961
8962 /* Network configuration changed -- force [re]association */
8963 IPW_DEBUG_ASSOC("[re]association triggered due to ESSID change.\n");
8964 if (!ipw_disassociate(priv))
8965 ipw_associate(priv);
8966
8967 mutex_unlock(&priv->mutex);
8968 return 0;
8969 }
8970
ipw_wx_get_essid(struct net_device * dev,struct iw_request_info * info,union iwreq_data * wrqu,char * extra)8971 static int ipw_wx_get_essid(struct net_device *dev,
8972 struct iw_request_info *info,
8973 union iwreq_data *wrqu, char *extra)
8974 {
8975 struct ipw_priv *priv = libipw_priv(dev);
8976
8977 /* If we are associated, trying to associate, or have a statically
8978 * configured ESSID then return that; otherwise return ANY */
8979 mutex_lock(&priv->mutex);
8980 if (priv->config & CFG_STATIC_ESSID ||
8981 priv->status & (STATUS_ASSOCIATED | STATUS_ASSOCIATING)) {
8982 IPW_DEBUG_WX("Getting essid: '%*pE'\n",
8983 priv->essid_len, priv->essid);
8984 memcpy(extra, priv->essid, priv->essid_len);
8985 wrqu->essid.length = priv->essid_len;
8986 wrqu->essid.flags = 1; /* active */
8987 } else {
8988 IPW_DEBUG_WX("Getting essid: ANY\n");
8989 wrqu->essid.length = 0;
8990 wrqu->essid.flags = 0; /* active */
8991 }
8992 mutex_unlock(&priv->mutex);
8993 return 0;
8994 }
8995
ipw_wx_set_nick(struct net_device * dev,struct iw_request_info * info,union iwreq_data * wrqu,char * extra)8996 static int ipw_wx_set_nick(struct net_device *dev,
8997 struct iw_request_info *info,
8998 union iwreq_data *wrqu, char *extra)
8999 {
9000 struct ipw_priv *priv = libipw_priv(dev);
9001
9002 IPW_DEBUG_WX("Setting nick to '%s'\n", extra);
9003 if (wrqu->data.length > IW_ESSID_MAX_SIZE)
9004 return -E2BIG;
9005 mutex_lock(&priv->mutex);
9006 wrqu->data.length = min_t(size_t, wrqu->data.length, sizeof(priv->nick));
9007 memset(priv->nick, 0, sizeof(priv->nick));
9008 memcpy(priv->nick, extra, wrqu->data.length);
9009 IPW_DEBUG_TRACE("<<\n");
9010 mutex_unlock(&priv->mutex);
9011 return 0;
9012
9013 }
9014
ipw_wx_get_nick(struct net_device * dev,struct iw_request_info * info,union iwreq_data * wrqu,char * extra)9015 static int ipw_wx_get_nick(struct net_device *dev,
9016 struct iw_request_info *info,
9017 union iwreq_data *wrqu, char *extra)
9018 {
9019 struct ipw_priv *priv = libipw_priv(dev);
9020 IPW_DEBUG_WX("Getting nick\n");
9021 mutex_lock(&priv->mutex);
9022 wrqu->data.length = strlen(priv->nick);
9023 memcpy(extra, priv->nick, wrqu->data.length);
9024 wrqu->data.flags = 1; /* active */
9025 mutex_unlock(&priv->mutex);
9026 return 0;
9027 }
9028
ipw_wx_set_sens(struct net_device * dev,struct iw_request_info * info,union iwreq_data * wrqu,char * extra)9029 static int ipw_wx_set_sens(struct net_device *dev,
9030 struct iw_request_info *info,
9031 union iwreq_data *wrqu, char *extra)
9032 {
9033 struct ipw_priv *priv = libipw_priv(dev);
9034 int err = 0;
9035
9036 IPW_DEBUG_WX("Setting roaming threshold to %d\n", wrqu->sens.value);
9037 IPW_DEBUG_WX("Setting disassociate threshold to %d\n", 3*wrqu->sens.value);
9038 mutex_lock(&priv->mutex);
9039
9040 if (wrqu->sens.fixed == 0)
9041 {
9042 priv->roaming_threshold = IPW_MB_ROAMING_THRESHOLD_DEFAULT;
9043 priv->disassociate_threshold = IPW_MB_DISASSOCIATE_THRESHOLD_DEFAULT;
9044 goto out;
9045 }
9046 if ((wrqu->sens.value > IPW_MB_ROAMING_THRESHOLD_MAX) ||
9047 (wrqu->sens.value < IPW_MB_ROAMING_THRESHOLD_MIN)) {
9048 err = -EINVAL;
9049 goto out;
9050 }
9051
9052 priv->roaming_threshold = wrqu->sens.value;
9053 priv->disassociate_threshold = 3*wrqu->sens.value;
9054 out:
9055 mutex_unlock(&priv->mutex);
9056 return err;
9057 }
9058
ipw_wx_get_sens(struct net_device * dev,struct iw_request_info * info,union iwreq_data * wrqu,char * extra)9059 static int ipw_wx_get_sens(struct net_device *dev,
9060 struct iw_request_info *info,
9061 union iwreq_data *wrqu, char *extra)
9062 {
9063 struct ipw_priv *priv = libipw_priv(dev);
9064 mutex_lock(&priv->mutex);
9065 wrqu->sens.fixed = 1;
9066 wrqu->sens.value = priv->roaming_threshold;
9067 mutex_unlock(&priv->mutex);
9068
9069 IPW_DEBUG_WX("GET roaming threshold -> %s %d\n",
9070 wrqu->power.disabled ? "OFF" : "ON", wrqu->power.value);
9071
9072 return 0;
9073 }
9074
ipw_wx_set_rate(struct net_device * dev,struct iw_request_info * info,union iwreq_data * wrqu,char * extra)9075 static int ipw_wx_set_rate(struct net_device *dev,
9076 struct iw_request_info *info,
9077 union iwreq_data *wrqu, char *extra)
9078 {
9079 /* TODO: We should use semaphores or locks for access to priv */
9080 struct ipw_priv *priv = libipw_priv(dev);
9081 u32 target_rate = wrqu->bitrate.value;
9082 u32 fixed, mask;
9083
9084 /* value = -1, fixed = 0 means auto only, so we should use all rates offered by AP */
9085 /* value = X, fixed = 1 means only rate X */
9086 /* value = X, fixed = 0 means all rates lower equal X */
9087
9088 if (target_rate == -1) {
9089 fixed = 0;
9090 mask = LIBIPW_DEFAULT_RATES_MASK;
9091 /* Now we should reassociate */
9092 goto apply;
9093 }
9094
9095 mask = 0;
9096 fixed = wrqu->bitrate.fixed;
9097
9098 if (target_rate == 1000000 || !fixed)
9099 mask |= LIBIPW_CCK_RATE_1MB_MASK;
9100 if (target_rate == 1000000)
9101 goto apply;
9102
9103 if (target_rate == 2000000 || !fixed)
9104 mask |= LIBIPW_CCK_RATE_2MB_MASK;
9105 if (target_rate == 2000000)
9106 goto apply;
9107
9108 if (target_rate == 5500000 || !fixed)
9109 mask |= LIBIPW_CCK_RATE_5MB_MASK;
9110 if (target_rate == 5500000)
9111 goto apply;
9112
9113 if (target_rate == 6000000 || !fixed)
9114 mask |= LIBIPW_OFDM_RATE_6MB_MASK;
9115 if (target_rate == 6000000)
9116 goto apply;
9117
9118 if (target_rate == 9000000 || !fixed)
9119 mask |= LIBIPW_OFDM_RATE_9MB_MASK;
9120 if (target_rate == 9000000)
9121 goto apply;
9122
9123 if (target_rate == 11000000 || !fixed)
9124 mask |= LIBIPW_CCK_RATE_11MB_MASK;
9125 if (target_rate == 11000000)
9126 goto apply;
9127
9128 if (target_rate == 12000000 || !fixed)
9129 mask |= LIBIPW_OFDM_RATE_12MB_MASK;
9130 if (target_rate == 12000000)
9131 goto apply;
9132
9133 if (target_rate == 18000000 || !fixed)
9134 mask |= LIBIPW_OFDM_RATE_18MB_MASK;
9135 if (target_rate == 18000000)
9136 goto apply;
9137
9138 if (target_rate == 24000000 || !fixed)
9139 mask |= LIBIPW_OFDM_RATE_24MB_MASK;
9140 if (target_rate == 24000000)
9141 goto apply;
9142
9143 if (target_rate == 36000000 || !fixed)
9144 mask |= LIBIPW_OFDM_RATE_36MB_MASK;
9145 if (target_rate == 36000000)
9146 goto apply;
9147
9148 if (target_rate == 48000000 || !fixed)
9149 mask |= LIBIPW_OFDM_RATE_48MB_MASK;
9150 if (target_rate == 48000000)
9151 goto apply;
9152
9153 if (target_rate == 54000000 || !fixed)
9154 mask |= LIBIPW_OFDM_RATE_54MB_MASK;
9155 if (target_rate == 54000000)
9156 goto apply;
9157
9158 IPW_DEBUG_WX("invalid rate specified, returning error\n");
9159 return -EINVAL;
9160
9161 apply:
9162 IPW_DEBUG_WX("Setting rate mask to 0x%08X [%s]\n",
9163 mask, fixed ? "fixed" : "sub-rates");
9164 mutex_lock(&priv->mutex);
9165 if (mask == LIBIPW_DEFAULT_RATES_MASK) {
9166 priv->config &= ~CFG_FIXED_RATE;
9167 ipw_set_fixed_rate(priv, priv->ieee->mode);
9168 } else
9169 priv->config |= CFG_FIXED_RATE;
9170
9171 if (priv->rates_mask == mask) {
9172 IPW_DEBUG_WX("Mask set to current mask.\n");
9173 mutex_unlock(&priv->mutex);
9174 return 0;
9175 }
9176
9177 priv->rates_mask = mask;
9178
9179 /* Network configuration changed -- force [re]association */
9180 IPW_DEBUG_ASSOC("[re]association triggered due to rates change.\n");
9181 if (!ipw_disassociate(priv))
9182 ipw_associate(priv);
9183
9184 mutex_unlock(&priv->mutex);
9185 return 0;
9186 }
9187
ipw_wx_get_rate(struct net_device * dev,struct iw_request_info * info,union iwreq_data * wrqu,char * extra)9188 static int ipw_wx_get_rate(struct net_device *dev,
9189 struct iw_request_info *info,
9190 union iwreq_data *wrqu, char *extra)
9191 {
9192 struct ipw_priv *priv = libipw_priv(dev);
9193 mutex_lock(&priv->mutex);
9194 wrqu->bitrate.value = priv->last_rate;
9195 wrqu->bitrate.fixed = (priv->config & CFG_FIXED_RATE) ? 1 : 0;
9196 mutex_unlock(&priv->mutex);
9197 IPW_DEBUG_WX("GET Rate -> %d\n", wrqu->bitrate.value);
9198 return 0;
9199 }
9200
ipw_wx_set_rts(struct net_device * dev,struct iw_request_info * info,union iwreq_data * wrqu,char * extra)9201 static int ipw_wx_set_rts(struct net_device *dev,
9202 struct iw_request_info *info,
9203 union iwreq_data *wrqu, char *extra)
9204 {
9205 struct ipw_priv *priv = libipw_priv(dev);
9206 mutex_lock(&priv->mutex);
9207 if (wrqu->rts.disabled || !wrqu->rts.fixed)
9208 priv->rts_threshold = DEFAULT_RTS_THRESHOLD;
9209 else {
9210 if (wrqu->rts.value < MIN_RTS_THRESHOLD ||
9211 wrqu->rts.value > MAX_RTS_THRESHOLD) {
9212 mutex_unlock(&priv->mutex);
9213 return -EINVAL;
9214 }
9215 priv->rts_threshold = wrqu->rts.value;
9216 }
9217
9218 ipw_send_rts_threshold(priv, priv->rts_threshold);
9219 mutex_unlock(&priv->mutex);
9220 IPW_DEBUG_WX("SET RTS Threshold -> %d\n", priv->rts_threshold);
9221 return 0;
9222 }
9223
ipw_wx_get_rts(struct net_device * dev,struct iw_request_info * info,union iwreq_data * wrqu,char * extra)9224 static int ipw_wx_get_rts(struct net_device *dev,
9225 struct iw_request_info *info,
9226 union iwreq_data *wrqu, char *extra)
9227 {
9228 struct ipw_priv *priv = libipw_priv(dev);
9229 mutex_lock(&priv->mutex);
9230 wrqu->rts.value = priv->rts_threshold;
9231 wrqu->rts.fixed = 0; /* no auto select */
9232 wrqu->rts.disabled = (wrqu->rts.value == DEFAULT_RTS_THRESHOLD);
9233 mutex_unlock(&priv->mutex);
9234 IPW_DEBUG_WX("GET RTS Threshold -> %d\n", wrqu->rts.value);
9235 return 0;
9236 }
9237
ipw_wx_set_txpow(struct net_device * dev,struct iw_request_info * info,union iwreq_data * wrqu,char * extra)9238 static int ipw_wx_set_txpow(struct net_device *dev,
9239 struct iw_request_info *info,
9240 union iwreq_data *wrqu, char *extra)
9241 {
9242 struct ipw_priv *priv = libipw_priv(dev);
9243 int err = 0;
9244
9245 mutex_lock(&priv->mutex);
9246 if (ipw_radio_kill_sw(priv, wrqu->power.disabled)) {
9247 err = -EINPROGRESS;
9248 goto out;
9249 }
9250
9251 if (!wrqu->power.fixed)
9252 wrqu->power.value = IPW_TX_POWER_DEFAULT;
9253
9254 if (wrqu->power.flags != IW_TXPOW_DBM) {
9255 err = -EINVAL;
9256 goto out;
9257 }
9258
9259 if ((wrqu->power.value > IPW_TX_POWER_MAX) ||
9260 (wrqu->power.value < IPW_TX_POWER_MIN)) {
9261 err = -EINVAL;
9262 goto out;
9263 }
9264
9265 priv->tx_power = wrqu->power.value;
9266 err = ipw_set_tx_power(priv);
9267 out:
9268 mutex_unlock(&priv->mutex);
9269 return err;
9270 }
9271
ipw_wx_get_txpow(struct net_device * dev,struct iw_request_info * info,union iwreq_data * wrqu,char * extra)9272 static int ipw_wx_get_txpow(struct net_device *dev,
9273 struct iw_request_info *info,
9274 union iwreq_data *wrqu, char *extra)
9275 {
9276 struct ipw_priv *priv = libipw_priv(dev);
9277 mutex_lock(&priv->mutex);
9278 wrqu->power.value = priv->tx_power;
9279 wrqu->power.fixed = 1;
9280 wrqu->power.flags = IW_TXPOW_DBM;
9281 wrqu->power.disabled = (priv->status & STATUS_RF_KILL_MASK) ? 1 : 0;
9282 mutex_unlock(&priv->mutex);
9283
9284 IPW_DEBUG_WX("GET TX Power -> %s %d\n",
9285 wrqu->power.disabled ? "OFF" : "ON", wrqu->power.value);
9286
9287 return 0;
9288 }
9289
ipw_wx_set_frag(struct net_device * dev,struct iw_request_info * info,union iwreq_data * wrqu,char * extra)9290 static int ipw_wx_set_frag(struct net_device *dev,
9291 struct iw_request_info *info,
9292 union iwreq_data *wrqu, char *extra)
9293 {
9294 struct ipw_priv *priv = libipw_priv(dev);
9295 mutex_lock(&priv->mutex);
9296 if (wrqu->frag.disabled || !wrqu->frag.fixed)
9297 priv->ieee->fts = DEFAULT_FTS;
9298 else {
9299 if (wrqu->frag.value < MIN_FRAG_THRESHOLD ||
9300 wrqu->frag.value > MAX_FRAG_THRESHOLD) {
9301 mutex_unlock(&priv->mutex);
9302 return -EINVAL;
9303 }
9304
9305 priv->ieee->fts = wrqu->frag.value & ~0x1;
9306 }
9307
9308 ipw_send_frag_threshold(priv, wrqu->frag.value);
9309 mutex_unlock(&priv->mutex);
9310 IPW_DEBUG_WX("SET Frag Threshold -> %d\n", wrqu->frag.value);
9311 return 0;
9312 }
9313
ipw_wx_get_frag(struct net_device * dev,struct iw_request_info * info,union iwreq_data * wrqu,char * extra)9314 static int ipw_wx_get_frag(struct net_device *dev,
9315 struct iw_request_info *info,
9316 union iwreq_data *wrqu, char *extra)
9317 {
9318 struct ipw_priv *priv = libipw_priv(dev);
9319 mutex_lock(&priv->mutex);
9320 wrqu->frag.value = priv->ieee->fts;
9321 wrqu->frag.fixed = 0; /* no auto select */
9322 wrqu->frag.disabled = (wrqu->frag.value == DEFAULT_FTS);
9323 mutex_unlock(&priv->mutex);
9324 IPW_DEBUG_WX("GET Frag Threshold -> %d\n", wrqu->frag.value);
9325
9326 return 0;
9327 }
9328
ipw_wx_set_retry(struct net_device * dev,struct iw_request_info * info,union iwreq_data * wrqu,char * extra)9329 static int ipw_wx_set_retry(struct net_device *dev,
9330 struct iw_request_info *info,
9331 union iwreq_data *wrqu, char *extra)
9332 {
9333 struct ipw_priv *priv = libipw_priv(dev);
9334
9335 if (wrqu->retry.flags & IW_RETRY_LIFETIME || wrqu->retry.disabled)
9336 return -EINVAL;
9337
9338 if (!(wrqu->retry.flags & IW_RETRY_LIMIT))
9339 return 0;
9340
9341 if (wrqu->retry.value < 0 || wrqu->retry.value >= 255)
9342 return -EINVAL;
9343
9344 mutex_lock(&priv->mutex);
9345 if (wrqu->retry.flags & IW_RETRY_SHORT)
9346 priv->short_retry_limit = (u8) wrqu->retry.value;
9347 else if (wrqu->retry.flags & IW_RETRY_LONG)
9348 priv->long_retry_limit = (u8) wrqu->retry.value;
9349 else {
9350 priv->short_retry_limit = (u8) wrqu->retry.value;
9351 priv->long_retry_limit = (u8) wrqu->retry.value;
9352 }
9353
9354 ipw_send_retry_limit(priv, priv->short_retry_limit,
9355 priv->long_retry_limit);
9356 mutex_unlock(&priv->mutex);
9357 IPW_DEBUG_WX("SET retry limit -> short:%d long:%d\n",
9358 priv->short_retry_limit, priv->long_retry_limit);
9359 return 0;
9360 }
9361
ipw_wx_get_retry(struct net_device * dev,struct iw_request_info * info,union iwreq_data * wrqu,char * extra)9362 static int ipw_wx_get_retry(struct net_device *dev,
9363 struct iw_request_info *info,
9364 union iwreq_data *wrqu, char *extra)
9365 {
9366 struct ipw_priv *priv = libipw_priv(dev);
9367
9368 mutex_lock(&priv->mutex);
9369 wrqu->retry.disabled = 0;
9370
9371 if ((wrqu->retry.flags & IW_RETRY_TYPE) == IW_RETRY_LIFETIME) {
9372 mutex_unlock(&priv->mutex);
9373 return -EINVAL;
9374 }
9375
9376 if (wrqu->retry.flags & IW_RETRY_LONG) {
9377 wrqu->retry.flags = IW_RETRY_LIMIT | IW_RETRY_LONG;
9378 wrqu->retry.value = priv->long_retry_limit;
9379 } else if (wrqu->retry.flags & IW_RETRY_SHORT) {
9380 wrqu->retry.flags = IW_RETRY_LIMIT | IW_RETRY_SHORT;
9381 wrqu->retry.value = priv->short_retry_limit;
9382 } else {
9383 wrqu->retry.flags = IW_RETRY_LIMIT;
9384 wrqu->retry.value = priv->short_retry_limit;
9385 }
9386 mutex_unlock(&priv->mutex);
9387
9388 IPW_DEBUG_WX("GET retry -> %d\n", wrqu->retry.value);
9389
9390 return 0;
9391 }
9392
ipw_wx_set_scan(struct net_device * dev,struct iw_request_info * info,union iwreq_data * wrqu,char * extra)9393 static int ipw_wx_set_scan(struct net_device *dev,
9394 struct iw_request_info *info,
9395 union iwreq_data *wrqu, char *extra)
9396 {
9397 struct ipw_priv *priv = libipw_priv(dev);
9398 struct iw_scan_req *req = (struct iw_scan_req *)extra;
9399 struct delayed_work *work = NULL;
9400
9401 mutex_lock(&priv->mutex);
9402
9403 priv->user_requested_scan = 1;
9404
9405 if (wrqu->data.length == sizeof(struct iw_scan_req)) {
9406 if (wrqu->data.flags & IW_SCAN_THIS_ESSID) {
9407 int len = min((int)req->essid_len,
9408 (int)sizeof(priv->direct_scan_ssid));
9409 memcpy(priv->direct_scan_ssid, req->essid, len);
9410 priv->direct_scan_ssid_len = len;
9411 work = &priv->request_direct_scan;
9412 } else if (req->scan_type == IW_SCAN_TYPE_PASSIVE) {
9413 work = &priv->request_passive_scan;
9414 }
9415 } else {
9416 /* Normal active broadcast scan */
9417 work = &priv->request_scan;
9418 }
9419
9420 mutex_unlock(&priv->mutex);
9421
9422 IPW_DEBUG_WX("Start scan\n");
9423
9424 schedule_delayed_work(work, 0);
9425
9426 return 0;
9427 }
9428
ipw_wx_get_scan(struct net_device * dev,struct iw_request_info * info,union iwreq_data * wrqu,char * extra)9429 static int ipw_wx_get_scan(struct net_device *dev,
9430 struct iw_request_info *info,
9431 union iwreq_data *wrqu, char *extra)
9432 {
9433 struct ipw_priv *priv = libipw_priv(dev);
9434 return libipw_wx_get_scan(priv->ieee, info, wrqu, extra);
9435 }
9436
ipw_wx_set_encode(struct net_device * dev,struct iw_request_info * info,union iwreq_data * wrqu,char * key)9437 static int ipw_wx_set_encode(struct net_device *dev,
9438 struct iw_request_info *info,
9439 union iwreq_data *wrqu, char *key)
9440 {
9441 struct ipw_priv *priv = libipw_priv(dev);
9442 int ret;
9443 u32 cap = priv->capability;
9444
9445 mutex_lock(&priv->mutex);
9446 ret = libipw_wx_set_encode(priv->ieee, info, wrqu, key);
9447
9448 /* In IBSS mode, we need to notify the firmware to update
9449 * the beacon info after we changed the capability. */
9450 if (cap != priv->capability &&
9451 priv->ieee->iw_mode == IW_MODE_ADHOC &&
9452 priv->status & STATUS_ASSOCIATED)
9453 ipw_disassociate(priv);
9454
9455 mutex_unlock(&priv->mutex);
9456 return ret;
9457 }
9458
ipw_wx_get_encode(struct net_device * dev,struct iw_request_info * info,union iwreq_data * wrqu,char * key)9459 static int ipw_wx_get_encode(struct net_device *dev,
9460 struct iw_request_info *info,
9461 union iwreq_data *wrqu, char *key)
9462 {
9463 struct ipw_priv *priv = libipw_priv(dev);
9464 return libipw_wx_get_encode(priv->ieee, info, wrqu, key);
9465 }
9466
ipw_wx_set_power(struct net_device * dev,struct iw_request_info * info,union iwreq_data * wrqu,char * extra)9467 static int ipw_wx_set_power(struct net_device *dev,
9468 struct iw_request_info *info,
9469 union iwreq_data *wrqu, char *extra)
9470 {
9471 struct ipw_priv *priv = libipw_priv(dev);
9472 int err;
9473 mutex_lock(&priv->mutex);
9474 if (wrqu->power.disabled) {
9475 priv->power_mode = IPW_POWER_LEVEL(priv->power_mode);
9476 err = ipw_send_power_mode(priv, IPW_POWER_MODE_CAM);
9477 if (err) {
9478 IPW_DEBUG_WX("failed setting power mode.\n");
9479 mutex_unlock(&priv->mutex);
9480 return err;
9481 }
9482 IPW_DEBUG_WX("SET Power Management Mode -> off\n");
9483 mutex_unlock(&priv->mutex);
9484 return 0;
9485 }
9486
9487 switch (wrqu->power.flags & IW_POWER_MODE) {
9488 case IW_POWER_ON: /* If not specified */
9489 case IW_POWER_MODE: /* If set all mask */
9490 case IW_POWER_ALL_R: /* If explicitly state all */
9491 break;
9492 default: /* Otherwise we don't support it */
9493 IPW_DEBUG_WX("SET PM Mode: %X not supported.\n",
9494 wrqu->power.flags);
9495 mutex_unlock(&priv->mutex);
9496 return -EOPNOTSUPP;
9497 }
9498
9499 /* If the user hasn't specified a power management mode yet, default
9500 * to BATTERY */
9501 if (IPW_POWER_LEVEL(priv->power_mode) == IPW_POWER_AC)
9502 priv->power_mode = IPW_POWER_ENABLED | IPW_POWER_BATTERY;
9503 else
9504 priv->power_mode = IPW_POWER_ENABLED | priv->power_mode;
9505
9506 err = ipw_send_power_mode(priv, IPW_POWER_LEVEL(priv->power_mode));
9507 if (err) {
9508 IPW_DEBUG_WX("failed setting power mode.\n");
9509 mutex_unlock(&priv->mutex);
9510 return err;
9511 }
9512
9513 IPW_DEBUG_WX("SET Power Management Mode -> 0x%02X\n", priv->power_mode);
9514 mutex_unlock(&priv->mutex);
9515 return 0;
9516 }
9517
ipw_wx_get_power(struct net_device * dev,struct iw_request_info * info,union iwreq_data * wrqu,char * extra)9518 static int ipw_wx_get_power(struct net_device *dev,
9519 struct iw_request_info *info,
9520 union iwreq_data *wrqu, char *extra)
9521 {
9522 struct ipw_priv *priv = libipw_priv(dev);
9523 mutex_lock(&priv->mutex);
9524 if (!(priv->power_mode & IPW_POWER_ENABLED))
9525 wrqu->power.disabled = 1;
9526 else
9527 wrqu->power.disabled = 0;
9528
9529 mutex_unlock(&priv->mutex);
9530 IPW_DEBUG_WX("GET Power Management Mode -> %02X\n", priv->power_mode);
9531
9532 return 0;
9533 }
9534
ipw_wx_set_powermode(struct net_device * dev,struct iw_request_info * info,union iwreq_data * wrqu,char * extra)9535 static int ipw_wx_set_powermode(struct net_device *dev,
9536 struct iw_request_info *info,
9537 union iwreq_data *wrqu, char *extra)
9538 {
9539 struct ipw_priv *priv = libipw_priv(dev);
9540 int mode = *(int *)extra;
9541 int err;
9542
9543 mutex_lock(&priv->mutex);
9544 if ((mode < 1) || (mode > IPW_POWER_LIMIT))
9545 mode = IPW_POWER_AC;
9546
9547 if (IPW_POWER_LEVEL(priv->power_mode) != mode) {
9548 err = ipw_send_power_mode(priv, mode);
9549 if (err) {
9550 IPW_DEBUG_WX("failed setting power mode.\n");
9551 mutex_unlock(&priv->mutex);
9552 return err;
9553 }
9554 priv->power_mode = IPW_POWER_ENABLED | mode;
9555 }
9556 mutex_unlock(&priv->mutex);
9557 return 0;
9558 }
9559
9560 #define MAX_WX_STRING 80
ipw_wx_get_powermode(struct net_device * dev,struct iw_request_info * info,union iwreq_data * wrqu,char * extra)9561 static int ipw_wx_get_powermode(struct net_device *dev,
9562 struct iw_request_info *info,
9563 union iwreq_data *wrqu, char *extra)
9564 {
9565 struct ipw_priv *priv = libipw_priv(dev);
9566 int level = IPW_POWER_LEVEL(priv->power_mode);
9567 char *p = extra;
9568
9569 p += scnprintf(p, MAX_WX_STRING, "Power save level: %d ", level);
9570
9571 switch (level) {
9572 case IPW_POWER_AC:
9573 p += scnprintf(p, MAX_WX_STRING - (p - extra), "(AC)");
9574 break;
9575 case IPW_POWER_BATTERY:
9576 p += scnprintf(p, MAX_WX_STRING - (p - extra), "(BATTERY)");
9577 break;
9578 default:
9579 p += scnprintf(p, MAX_WX_STRING - (p - extra),
9580 "(Timeout %dms, Period %dms)",
9581 timeout_duration[level - 1] / 1000,
9582 period_duration[level - 1] / 1000);
9583 }
9584
9585 if (!(priv->power_mode & IPW_POWER_ENABLED))
9586 p += scnprintf(p, MAX_WX_STRING - (p - extra), " OFF");
9587
9588 wrqu->data.length = p - extra + 1;
9589
9590 return 0;
9591 }
9592
ipw_wx_set_wireless_mode(struct net_device * dev,struct iw_request_info * info,union iwreq_data * wrqu,char * extra)9593 static int ipw_wx_set_wireless_mode(struct net_device *dev,
9594 struct iw_request_info *info,
9595 union iwreq_data *wrqu, char *extra)
9596 {
9597 struct ipw_priv *priv = libipw_priv(dev);
9598 int mode = *(int *)extra;
9599 u8 band = 0, modulation = 0;
9600
9601 if (mode == 0 || mode & ~IEEE_MODE_MASK) {
9602 IPW_WARNING("Attempt to set invalid wireless mode: %d\n", mode);
9603 return -EINVAL;
9604 }
9605 mutex_lock(&priv->mutex);
9606 if (priv->adapter == IPW_2915ABG) {
9607 priv->ieee->abg_true = 1;
9608 if (mode & IEEE_A) {
9609 band |= LIBIPW_52GHZ_BAND;
9610 modulation |= LIBIPW_OFDM_MODULATION;
9611 } else
9612 priv->ieee->abg_true = 0;
9613 } else {
9614 if (mode & IEEE_A) {
9615 IPW_WARNING("Attempt to set 2200BG into "
9616 "802.11a mode\n");
9617 mutex_unlock(&priv->mutex);
9618 return -EINVAL;
9619 }
9620
9621 priv->ieee->abg_true = 0;
9622 }
9623
9624 if (mode & IEEE_B) {
9625 band |= LIBIPW_24GHZ_BAND;
9626 modulation |= LIBIPW_CCK_MODULATION;
9627 } else
9628 priv->ieee->abg_true = 0;
9629
9630 if (mode & IEEE_G) {
9631 band |= LIBIPW_24GHZ_BAND;
9632 modulation |= LIBIPW_OFDM_MODULATION;
9633 } else
9634 priv->ieee->abg_true = 0;
9635
9636 priv->ieee->mode = mode;
9637 priv->ieee->freq_band = band;
9638 priv->ieee->modulation = modulation;
9639 init_supported_rates(priv, &priv->rates);
9640
9641 /* Network configuration changed -- force [re]association */
9642 IPW_DEBUG_ASSOC("[re]association triggered due to mode change.\n");
9643 if (!ipw_disassociate(priv)) {
9644 ipw_send_supported_rates(priv, &priv->rates);
9645 ipw_associate(priv);
9646 }
9647
9648 /* Update the band LEDs */
9649 ipw_led_band_on(priv);
9650
9651 IPW_DEBUG_WX("PRIV SET MODE: %c%c%c\n",
9652 mode & IEEE_A ? 'a' : '.',
9653 mode & IEEE_B ? 'b' : '.', mode & IEEE_G ? 'g' : '.');
9654 mutex_unlock(&priv->mutex);
9655 return 0;
9656 }
9657
ipw_wx_get_wireless_mode(struct net_device * dev,struct iw_request_info * info,union iwreq_data * wrqu,char * extra)9658 static int ipw_wx_get_wireless_mode(struct net_device *dev,
9659 struct iw_request_info *info,
9660 union iwreq_data *wrqu, char *extra)
9661 {
9662 struct ipw_priv *priv = libipw_priv(dev);
9663 mutex_lock(&priv->mutex);
9664 switch (priv->ieee->mode) {
9665 case IEEE_A:
9666 strscpy_pad(extra, "802.11a (1)", MAX_WX_STRING);
9667 break;
9668 case IEEE_B:
9669 strscpy_pad(extra, "802.11b (2)", MAX_WX_STRING);
9670 break;
9671 case IEEE_A | IEEE_B:
9672 strscpy_pad(extra, "802.11ab (3)", MAX_WX_STRING);
9673 break;
9674 case IEEE_G:
9675 strscpy_pad(extra, "802.11g (4)", MAX_WX_STRING);
9676 break;
9677 case IEEE_A | IEEE_G:
9678 strscpy_pad(extra, "802.11ag (5)", MAX_WX_STRING);
9679 break;
9680 case IEEE_B | IEEE_G:
9681 strscpy_pad(extra, "802.11bg (6)", MAX_WX_STRING);
9682 break;
9683 case IEEE_A | IEEE_B | IEEE_G:
9684 strscpy_pad(extra, "802.11abg (7)", MAX_WX_STRING);
9685 break;
9686 default:
9687 strscpy_pad(extra, "unknown", MAX_WX_STRING);
9688 break;
9689 }
9690
9691 IPW_DEBUG_WX("PRIV GET MODE: %s\n", extra);
9692
9693 wrqu->data.length = strlen(extra) + 1;
9694 mutex_unlock(&priv->mutex);
9695
9696 return 0;
9697 }
9698
ipw_wx_set_preamble(struct net_device * dev,struct iw_request_info * info,union iwreq_data * wrqu,char * extra)9699 static int ipw_wx_set_preamble(struct net_device *dev,
9700 struct iw_request_info *info,
9701 union iwreq_data *wrqu, char *extra)
9702 {
9703 struct ipw_priv *priv = libipw_priv(dev);
9704 int mode = *(int *)extra;
9705 mutex_lock(&priv->mutex);
9706 /* Switching from SHORT -> LONG requires a disassociation */
9707 if (mode == 1) {
9708 if (!(priv->config & CFG_PREAMBLE_LONG)) {
9709 priv->config |= CFG_PREAMBLE_LONG;
9710
9711 /* Network configuration changed -- force [re]association */
9712 IPW_DEBUG_ASSOC
9713 ("[re]association triggered due to preamble change.\n");
9714 if (!ipw_disassociate(priv))
9715 ipw_associate(priv);
9716 }
9717 goto done;
9718 }
9719
9720 if (mode == 0) {
9721 priv->config &= ~CFG_PREAMBLE_LONG;
9722 goto done;
9723 }
9724 mutex_unlock(&priv->mutex);
9725 return -EINVAL;
9726
9727 done:
9728 mutex_unlock(&priv->mutex);
9729 return 0;
9730 }
9731
ipw_wx_get_preamble(struct net_device * dev,struct iw_request_info * info,union iwreq_data * wrqu,char * extra)9732 static int ipw_wx_get_preamble(struct net_device *dev,
9733 struct iw_request_info *info,
9734 union iwreq_data *wrqu, char *extra)
9735 {
9736 struct ipw_priv *priv = libipw_priv(dev);
9737 mutex_lock(&priv->mutex);
9738 if (priv->config & CFG_PREAMBLE_LONG)
9739 snprintf(wrqu->name, IFNAMSIZ, "long (1)");
9740 else
9741 snprintf(wrqu->name, IFNAMSIZ, "auto (0)");
9742 mutex_unlock(&priv->mutex);
9743 return 0;
9744 }
9745
9746 #ifdef CONFIG_IPW2200_MONITOR
ipw_wx_set_monitor(struct net_device * dev,struct iw_request_info * info,union iwreq_data * wrqu,char * extra)9747 static int ipw_wx_set_monitor(struct net_device *dev,
9748 struct iw_request_info *info,
9749 union iwreq_data *wrqu, char *extra)
9750 {
9751 struct ipw_priv *priv = libipw_priv(dev);
9752 int *parms = (int *)extra;
9753 int enable = (parms[0] > 0);
9754 mutex_lock(&priv->mutex);
9755 IPW_DEBUG_WX("SET MONITOR: %d %d\n", enable, parms[1]);
9756 if (enable) {
9757 if (priv->ieee->iw_mode != IW_MODE_MONITOR) {
9758 #ifdef CONFIG_IPW2200_RADIOTAP
9759 priv->net_dev->type = ARPHRD_IEEE80211_RADIOTAP;
9760 #else
9761 priv->net_dev->type = ARPHRD_IEEE80211;
9762 #endif
9763 schedule_work(&priv->adapter_restart);
9764 }
9765
9766 ipw_set_channel(priv, parms[1]);
9767 } else {
9768 if (priv->ieee->iw_mode != IW_MODE_MONITOR) {
9769 mutex_unlock(&priv->mutex);
9770 return 0;
9771 }
9772 priv->net_dev->type = ARPHRD_ETHER;
9773 schedule_work(&priv->adapter_restart);
9774 }
9775 mutex_unlock(&priv->mutex);
9776 return 0;
9777 }
9778
9779 #endif /* CONFIG_IPW2200_MONITOR */
9780
ipw_wx_reset(struct net_device * dev,struct iw_request_info * info,union iwreq_data * wrqu,char * extra)9781 static int ipw_wx_reset(struct net_device *dev,
9782 struct iw_request_info *info,
9783 union iwreq_data *wrqu, char *extra)
9784 {
9785 struct ipw_priv *priv = libipw_priv(dev);
9786 IPW_DEBUG_WX("RESET\n");
9787 schedule_work(&priv->adapter_restart);
9788 return 0;
9789 }
9790
ipw_wx_sw_reset(struct net_device * dev,struct iw_request_info * info,union iwreq_data * wrqu,char * extra)9791 static int ipw_wx_sw_reset(struct net_device *dev,
9792 struct iw_request_info *info,
9793 union iwreq_data *wrqu, char *extra)
9794 {
9795 struct ipw_priv *priv = libipw_priv(dev);
9796 union iwreq_data wrqu_sec = {
9797 .encoding = {
9798 .flags = IW_ENCODE_DISABLED,
9799 },
9800 };
9801 int ret;
9802
9803 IPW_DEBUG_WX("SW_RESET\n");
9804
9805 mutex_lock(&priv->mutex);
9806
9807 ret = ipw_sw_reset(priv, 2);
9808 if (!ret) {
9809 free_firmware();
9810 ipw_adapter_restart(priv);
9811 }
9812
9813 /* The SW reset bit might have been toggled on by the 'disable'
9814 * module parameter, so take appropriate action */
9815 ipw_radio_kill_sw(priv, priv->status & STATUS_RF_KILL_SW);
9816
9817 mutex_unlock(&priv->mutex);
9818 libipw_wx_set_encode(priv->ieee, info, &wrqu_sec, NULL);
9819 mutex_lock(&priv->mutex);
9820
9821 if (!(priv->status & STATUS_RF_KILL_MASK)) {
9822 /* Configuration likely changed -- force [re]association */
9823 IPW_DEBUG_ASSOC("[re]association triggered due to sw "
9824 "reset.\n");
9825 if (!ipw_disassociate(priv))
9826 ipw_associate(priv);
9827 }
9828
9829 mutex_unlock(&priv->mutex);
9830
9831 return 0;
9832 }
9833
9834 /* Rebase the WE IOCTLs to zero for the handler array */
9835 static iw_handler ipw_wx_handlers[] = {
9836 IW_HANDLER(SIOCGIWNAME, ipw_wx_get_name),
9837 IW_HANDLER(SIOCSIWFREQ, ipw_wx_set_freq),
9838 IW_HANDLER(SIOCGIWFREQ, ipw_wx_get_freq),
9839 IW_HANDLER(SIOCSIWMODE, ipw_wx_set_mode),
9840 IW_HANDLER(SIOCGIWMODE, ipw_wx_get_mode),
9841 IW_HANDLER(SIOCSIWSENS, ipw_wx_set_sens),
9842 IW_HANDLER(SIOCGIWSENS, ipw_wx_get_sens),
9843 IW_HANDLER(SIOCGIWRANGE, ipw_wx_get_range),
9844 IW_HANDLER(SIOCSIWAP, ipw_wx_set_wap),
9845 IW_HANDLER(SIOCGIWAP, ipw_wx_get_wap),
9846 IW_HANDLER(SIOCSIWSCAN, ipw_wx_set_scan),
9847 IW_HANDLER(SIOCGIWSCAN, ipw_wx_get_scan),
9848 IW_HANDLER(SIOCSIWESSID, ipw_wx_set_essid),
9849 IW_HANDLER(SIOCGIWESSID, ipw_wx_get_essid),
9850 IW_HANDLER(SIOCSIWNICKN, ipw_wx_set_nick),
9851 IW_HANDLER(SIOCGIWNICKN, ipw_wx_get_nick),
9852 IW_HANDLER(SIOCSIWRATE, ipw_wx_set_rate),
9853 IW_HANDLER(SIOCGIWRATE, ipw_wx_get_rate),
9854 IW_HANDLER(SIOCSIWRTS, ipw_wx_set_rts),
9855 IW_HANDLER(SIOCGIWRTS, ipw_wx_get_rts),
9856 IW_HANDLER(SIOCSIWFRAG, ipw_wx_set_frag),
9857 IW_HANDLER(SIOCGIWFRAG, ipw_wx_get_frag),
9858 IW_HANDLER(SIOCSIWTXPOW, ipw_wx_set_txpow),
9859 IW_HANDLER(SIOCGIWTXPOW, ipw_wx_get_txpow),
9860 IW_HANDLER(SIOCSIWRETRY, ipw_wx_set_retry),
9861 IW_HANDLER(SIOCGIWRETRY, ipw_wx_get_retry),
9862 IW_HANDLER(SIOCSIWENCODE, ipw_wx_set_encode),
9863 IW_HANDLER(SIOCGIWENCODE, ipw_wx_get_encode),
9864 IW_HANDLER(SIOCSIWPOWER, ipw_wx_set_power),
9865 IW_HANDLER(SIOCGIWPOWER, ipw_wx_get_power),
9866 IW_HANDLER(SIOCSIWSPY, ipw_wx_set_spy),
9867 IW_HANDLER(SIOCGIWSPY, ipw_wx_get_spy),
9868 IW_HANDLER(SIOCSIWTHRSPY, ipw_wx_set_thrspy),
9869 IW_HANDLER(SIOCGIWTHRSPY, ipw_wx_get_thrspy),
9870 IW_HANDLER(SIOCSIWGENIE, ipw_wx_set_genie),
9871 IW_HANDLER(SIOCGIWGENIE, ipw_wx_get_genie),
9872 IW_HANDLER(SIOCSIWMLME, ipw_wx_set_mlme),
9873 IW_HANDLER(SIOCSIWAUTH, ipw_wx_set_auth),
9874 IW_HANDLER(SIOCGIWAUTH, ipw_wx_get_auth),
9875 IW_HANDLER(SIOCSIWENCODEEXT, ipw_wx_set_encodeext),
9876 IW_HANDLER(SIOCGIWENCODEEXT, ipw_wx_get_encodeext),
9877 };
9878
9879 enum {
9880 IPW_PRIV_SET_POWER = SIOCIWFIRSTPRIV,
9881 IPW_PRIV_GET_POWER,
9882 IPW_PRIV_SET_MODE,
9883 IPW_PRIV_GET_MODE,
9884 IPW_PRIV_SET_PREAMBLE,
9885 IPW_PRIV_GET_PREAMBLE,
9886 IPW_PRIV_RESET,
9887 IPW_PRIV_SW_RESET,
9888 #ifdef CONFIG_IPW2200_MONITOR
9889 IPW_PRIV_SET_MONITOR,
9890 #endif
9891 };
9892
9893 static struct iw_priv_args ipw_priv_args[] = {
9894 {
9895 .cmd = IPW_PRIV_SET_POWER,
9896 .set_args = IW_PRIV_TYPE_INT | IW_PRIV_SIZE_FIXED | 1,
9897 .name = "set_power"},
9898 {
9899 .cmd = IPW_PRIV_GET_POWER,
9900 .get_args = IW_PRIV_TYPE_CHAR | IW_PRIV_SIZE_FIXED | MAX_WX_STRING,
9901 .name = "get_power"},
9902 {
9903 .cmd = IPW_PRIV_SET_MODE,
9904 .set_args = IW_PRIV_TYPE_INT | IW_PRIV_SIZE_FIXED | 1,
9905 .name = "set_mode"},
9906 {
9907 .cmd = IPW_PRIV_GET_MODE,
9908 .get_args = IW_PRIV_TYPE_CHAR | IW_PRIV_SIZE_FIXED | MAX_WX_STRING,
9909 .name = "get_mode"},
9910 {
9911 .cmd = IPW_PRIV_SET_PREAMBLE,
9912 .set_args = IW_PRIV_TYPE_INT | IW_PRIV_SIZE_FIXED | 1,
9913 .name = "set_preamble"},
9914 {
9915 .cmd = IPW_PRIV_GET_PREAMBLE,
9916 .get_args = IW_PRIV_TYPE_CHAR | IW_PRIV_SIZE_FIXED | IFNAMSIZ,
9917 .name = "get_preamble"},
9918 {
9919 IPW_PRIV_RESET,
9920 IW_PRIV_TYPE_INT | IW_PRIV_SIZE_FIXED | 0, 0, "reset"},
9921 {
9922 IPW_PRIV_SW_RESET,
9923 IW_PRIV_TYPE_INT | IW_PRIV_SIZE_FIXED | 0, 0, "sw_reset"},
9924 #ifdef CONFIG_IPW2200_MONITOR
9925 {
9926 IPW_PRIV_SET_MONITOR,
9927 IW_PRIV_TYPE_INT | IW_PRIV_SIZE_FIXED | 2, 0, "monitor"},
9928 #endif /* CONFIG_IPW2200_MONITOR */
9929 };
9930
9931 static iw_handler ipw_priv_handler[] = {
9932 ipw_wx_set_powermode,
9933 ipw_wx_get_powermode,
9934 ipw_wx_set_wireless_mode,
9935 ipw_wx_get_wireless_mode,
9936 ipw_wx_set_preamble,
9937 ipw_wx_get_preamble,
9938 ipw_wx_reset,
9939 ipw_wx_sw_reset,
9940 #ifdef CONFIG_IPW2200_MONITOR
9941 ipw_wx_set_monitor,
9942 #endif
9943 };
9944
9945 static const struct iw_handler_def ipw_wx_handler_def = {
9946 .standard = ipw_wx_handlers,
9947 .num_standard = ARRAY_SIZE(ipw_wx_handlers),
9948 .num_private = ARRAY_SIZE(ipw_priv_handler),
9949 .num_private_args = ARRAY_SIZE(ipw_priv_args),
9950 .private = ipw_priv_handler,
9951 .private_args = ipw_priv_args,
9952 .get_wireless_stats = ipw_get_wireless_stats,
9953 };
9954
9955 /*
9956 * Get wireless statistics.
9957 * Called by /proc/net/wireless
9958 * Also called by SIOCGIWSTATS
9959 */
ipw_get_wireless_stats(struct net_device * dev)9960 static struct iw_statistics *ipw_get_wireless_stats(struct net_device *dev)
9961 {
9962 struct ipw_priv *priv = libipw_priv(dev);
9963 struct iw_statistics *wstats;
9964
9965 wstats = &priv->wstats;
9966
9967 /* if hw is disabled, then ipw_get_ordinal() can't be called.
9968 * netdev->get_wireless_stats seems to be called before fw is
9969 * initialized. STATUS_ASSOCIATED will only be set if the hw is up
9970 * and associated; if not associcated, the values are all meaningless
9971 * anyway, so set them all to NULL and INVALID */
9972 if (!(priv->status & STATUS_ASSOCIATED)) {
9973 wstats->miss.beacon = 0;
9974 wstats->discard.retries = 0;
9975 wstats->qual.qual = 0;
9976 wstats->qual.level = 0;
9977 wstats->qual.noise = 0;
9978 wstats->qual.updated = 7;
9979 wstats->qual.updated |= IW_QUAL_NOISE_INVALID |
9980 IW_QUAL_QUAL_INVALID | IW_QUAL_LEVEL_INVALID;
9981 return wstats;
9982 }
9983
9984 wstats->qual.qual = priv->quality;
9985 wstats->qual.level = priv->exp_avg_rssi;
9986 wstats->qual.noise = priv->exp_avg_noise;
9987 wstats->qual.updated = IW_QUAL_QUAL_UPDATED | IW_QUAL_LEVEL_UPDATED |
9988 IW_QUAL_NOISE_UPDATED | IW_QUAL_DBM;
9989
9990 wstats->miss.beacon = average_value(&priv->average_missed_beacons);
9991 wstats->discard.retries = priv->last_tx_failures;
9992 wstats->discard.code = priv->ieee->ieee_stats.rx_discards_undecryptable;
9993
9994 /* if (ipw_get_ordinal(priv, IPW_ORD_STAT_TX_RETRY, &tx_retry, &len))
9995 goto fail_get_ordinal;
9996 wstats->discard.retries += tx_retry; */
9997
9998 return wstats;
9999 }
10000
10001 /* net device stuff */
10002
init_sys_config(struct ipw_sys_config * sys_config)10003 static void init_sys_config(struct ipw_sys_config *sys_config)
10004 {
10005 memset(sys_config, 0, sizeof(struct ipw_sys_config));
10006 sys_config->bt_coexistence = 0;
10007 sys_config->answer_broadcast_ssid_probe = 0;
10008 sys_config->accept_all_data_frames = 0;
10009 sys_config->accept_non_directed_frames = 1;
10010 sys_config->exclude_unicast_unencrypted = 0;
10011 sys_config->disable_unicast_decryption = 1;
10012 sys_config->exclude_multicast_unencrypted = 0;
10013 sys_config->disable_multicast_decryption = 1;
10014 if (antenna < CFG_SYS_ANTENNA_BOTH || antenna > CFG_SYS_ANTENNA_B)
10015 antenna = CFG_SYS_ANTENNA_BOTH;
10016 sys_config->antenna_diversity = antenna;
10017 sys_config->pass_crc_to_host = 0; /* TODO: See if 1 gives us FCS */
10018 sys_config->dot11g_auto_detection = 0;
10019 sys_config->enable_cts_to_self = 0;
10020 sys_config->bt_coexist_collision_thr = 0;
10021 sys_config->pass_noise_stats_to_host = 1; /* 1 -- fix for 256 */
10022 sys_config->silence_threshold = 0x1e;
10023 }
10024
ipw_net_open(struct net_device * dev)10025 static int ipw_net_open(struct net_device *dev)
10026 {
10027 IPW_DEBUG_INFO("dev->open\n");
10028 netif_start_queue(dev);
10029 return 0;
10030 }
10031
ipw_net_stop(struct net_device * dev)10032 static int ipw_net_stop(struct net_device *dev)
10033 {
10034 IPW_DEBUG_INFO("dev->close\n");
10035 netif_stop_queue(dev);
10036 return 0;
10037 }
10038
10039 /*
10040 todo:
10041
10042 modify to send one tfd per fragment instead of using chunking. otherwise
10043 we need to heavily modify the libipw_skb_to_txb.
10044 */
10045
ipw_tx_skb(struct ipw_priv * priv,struct libipw_txb * txb,int pri)10046 static int ipw_tx_skb(struct ipw_priv *priv, struct libipw_txb *txb,
10047 int pri)
10048 {
10049 struct libipw_hdr_3addrqos *hdr = (struct libipw_hdr_3addrqos *)
10050 txb->fragments[0]->data;
10051 int i = 0;
10052 struct tfd_frame *tfd;
10053 #ifdef CONFIG_IPW2200_QOS
10054 int tx_id = ipw_get_tx_queue_number(priv, pri);
10055 struct clx2_tx_queue *txq = &priv->txq[tx_id];
10056 #else
10057 struct clx2_tx_queue *txq = &priv->txq[0];
10058 #endif
10059 struct clx2_queue *q = &txq->q;
10060 u8 id, hdr_len, unicast;
10061 int fc;
10062
10063 if (!(priv->status & STATUS_ASSOCIATED))
10064 goto drop;
10065
10066 hdr_len = libipw_get_hdrlen(le16_to_cpu(hdr->frame_ctl));
10067 switch (priv->ieee->iw_mode) {
10068 case IW_MODE_ADHOC:
10069 unicast = !is_multicast_ether_addr(hdr->addr1);
10070 id = ipw_find_station(priv, hdr->addr1);
10071 if (id == IPW_INVALID_STATION) {
10072 id = ipw_add_station(priv, hdr->addr1);
10073 if (id == IPW_INVALID_STATION) {
10074 IPW_WARNING("Attempt to send data to "
10075 "invalid cell: %pM\n",
10076 hdr->addr1);
10077 goto drop;
10078 }
10079 }
10080 break;
10081
10082 case IW_MODE_INFRA:
10083 default:
10084 unicast = !is_multicast_ether_addr(hdr->addr3);
10085 id = 0;
10086 break;
10087 }
10088
10089 tfd = &txq->bd[q->first_empty];
10090 txq->txb[q->first_empty] = txb;
10091 memset(tfd, 0, sizeof(*tfd));
10092 tfd->u.data.station_number = id;
10093
10094 tfd->control_flags.message_type = TX_FRAME_TYPE;
10095 tfd->control_flags.control_bits = TFD_NEED_IRQ_MASK;
10096
10097 tfd->u.data.cmd_id = DINO_CMD_TX;
10098 tfd->u.data.len = cpu_to_le16(txb->payload_size);
10099
10100 if (priv->assoc_request.ieee_mode == IPW_B_MODE)
10101 tfd->u.data.tx_flags_ext |= DCT_FLAG_EXT_MODE_CCK;
10102 else
10103 tfd->u.data.tx_flags_ext |= DCT_FLAG_EXT_MODE_OFDM;
10104
10105 if (priv->assoc_request.preamble_length == DCT_FLAG_SHORT_PREAMBLE)
10106 tfd->u.data.tx_flags |= DCT_FLAG_SHORT_PREAMBLE;
10107
10108 fc = le16_to_cpu(hdr->frame_ctl);
10109 hdr->frame_ctl = cpu_to_le16(fc & ~IEEE80211_FCTL_MOREFRAGS);
10110
10111 memcpy(&tfd->u.data.tfd.tfd_24.mchdr, hdr, hdr_len);
10112
10113 if (likely(unicast))
10114 tfd->u.data.tx_flags |= DCT_FLAG_ACK_REQD;
10115
10116 if (txb->encrypted && !priv->ieee->host_encrypt) {
10117 switch (priv->ieee->sec.level) {
10118 case SEC_LEVEL_3:
10119 tfd->u.data.tfd.tfd_24.mchdr.frame_ctl |=
10120 cpu_to_le16(IEEE80211_FCTL_PROTECTED);
10121 /* XXX: ACK flag must be set for CCMP even if it
10122 * is a multicast/broadcast packet, because CCMP
10123 * group communication encrypted by GTK is
10124 * actually done by the AP. */
10125 if (!unicast)
10126 tfd->u.data.tx_flags |= DCT_FLAG_ACK_REQD;
10127
10128 tfd->u.data.tx_flags &= ~DCT_FLAG_NO_WEP;
10129 tfd->u.data.tx_flags_ext |= DCT_FLAG_EXT_SECURITY_CCM;
10130 tfd->u.data.key_index = 0;
10131 tfd->u.data.key_index |= DCT_WEP_INDEX_USE_IMMEDIATE;
10132 break;
10133 case SEC_LEVEL_2:
10134 tfd->u.data.tfd.tfd_24.mchdr.frame_ctl |=
10135 cpu_to_le16(IEEE80211_FCTL_PROTECTED);
10136 tfd->u.data.tx_flags &= ~DCT_FLAG_NO_WEP;
10137 tfd->u.data.tx_flags_ext |= DCT_FLAG_EXT_SECURITY_TKIP;
10138 tfd->u.data.key_index = DCT_WEP_INDEX_USE_IMMEDIATE;
10139 break;
10140 case SEC_LEVEL_1:
10141 tfd->u.data.tfd.tfd_24.mchdr.frame_ctl |=
10142 cpu_to_le16(IEEE80211_FCTL_PROTECTED);
10143 tfd->u.data.key_index = priv->ieee->crypt_info.tx_keyidx;
10144 if (priv->ieee->sec.key_sizes[priv->ieee->crypt_info.tx_keyidx] <=
10145 40)
10146 tfd->u.data.key_index |= DCT_WEP_KEY_64Bit;
10147 else
10148 tfd->u.data.key_index |= DCT_WEP_KEY_128Bit;
10149 break;
10150 case SEC_LEVEL_0:
10151 break;
10152 default:
10153 printk(KERN_ERR "Unknown security level %d\n",
10154 priv->ieee->sec.level);
10155 break;
10156 }
10157 } else
10158 /* No hardware encryption */
10159 tfd->u.data.tx_flags |= DCT_FLAG_NO_WEP;
10160
10161 #ifdef CONFIG_IPW2200_QOS
10162 if (fc & IEEE80211_STYPE_QOS_DATA)
10163 ipw_qos_set_tx_queue_command(priv, pri, &(tfd->u.data));
10164 #endif /* CONFIG_IPW2200_QOS */
10165
10166 /* payload */
10167 tfd->u.data.num_chunks = cpu_to_le32(min((u8) (NUM_TFD_CHUNKS - 2),
10168 txb->nr_frags));
10169 IPW_DEBUG_FRAG("%i fragments being sent as %i chunks.\n",
10170 txb->nr_frags, le32_to_cpu(tfd->u.data.num_chunks));
10171 for (i = 0; i < le32_to_cpu(tfd->u.data.num_chunks); i++) {
10172 IPW_DEBUG_FRAG("Adding fragment %i of %i (%d bytes).\n",
10173 i, le32_to_cpu(tfd->u.data.num_chunks),
10174 txb->fragments[i]->len - hdr_len);
10175 IPW_DEBUG_TX("Dumping TX packet frag %i of %i (%d bytes):\n",
10176 i, tfd->u.data.num_chunks,
10177 txb->fragments[i]->len - hdr_len);
10178 printk_buf(IPW_DL_TX, txb->fragments[i]->data + hdr_len,
10179 txb->fragments[i]->len - hdr_len);
10180
10181 tfd->u.data.chunk_ptr[i] =
10182 cpu_to_le32(dma_map_single(&priv->pci_dev->dev,
10183 txb->fragments[i]->data + hdr_len,
10184 txb->fragments[i]->len - hdr_len,
10185 DMA_TO_DEVICE));
10186 tfd->u.data.chunk_len[i] =
10187 cpu_to_le16(txb->fragments[i]->len - hdr_len);
10188 }
10189
10190 if (i != txb->nr_frags) {
10191 struct sk_buff *skb;
10192 u16 remaining_bytes = 0;
10193 int j;
10194
10195 for (j = i; j < txb->nr_frags; j++)
10196 remaining_bytes += txb->fragments[j]->len - hdr_len;
10197
10198 printk(KERN_INFO "Trying to reallocate for %d bytes\n",
10199 remaining_bytes);
10200 skb = alloc_skb(remaining_bytes, GFP_ATOMIC);
10201 if (skb != NULL) {
10202 tfd->u.data.chunk_len[i] = cpu_to_le16(remaining_bytes);
10203 for (j = i; j < txb->nr_frags; j++) {
10204 int size = txb->fragments[j]->len - hdr_len;
10205
10206 printk(KERN_INFO "Adding frag %d %d...\n",
10207 j, size);
10208 skb_put_data(skb,
10209 txb->fragments[j]->data + hdr_len,
10210 size);
10211 }
10212 dev_kfree_skb_any(txb->fragments[i]);
10213 txb->fragments[i] = skb;
10214 tfd->u.data.chunk_ptr[i] =
10215 cpu_to_le32(dma_map_single(&priv->pci_dev->dev,
10216 skb->data,
10217 remaining_bytes,
10218 DMA_TO_DEVICE));
10219
10220 le32_add_cpu(&tfd->u.data.num_chunks, 1);
10221 }
10222 }
10223
10224 /* kick DMA */
10225 q->first_empty = ipw_queue_inc_wrap(q->first_empty, q->n_bd);
10226 ipw_write32(priv, q->reg_w, q->first_empty);
10227
10228 if (ipw_tx_queue_space(q) < q->high_mark)
10229 netif_stop_queue(priv->net_dev);
10230
10231 return NETDEV_TX_OK;
10232
10233 drop:
10234 IPW_DEBUG_DROP("Silently dropping Tx packet.\n");
10235 libipw_txb_free(txb);
10236 return NETDEV_TX_OK;
10237 }
10238
ipw_net_is_queue_full(struct net_device * dev,int pri)10239 static int ipw_net_is_queue_full(struct net_device *dev, int pri)
10240 {
10241 struct ipw_priv *priv = libipw_priv(dev);
10242 #ifdef CONFIG_IPW2200_QOS
10243 int tx_id = ipw_get_tx_queue_number(priv, pri);
10244 struct clx2_tx_queue *txq = &priv->txq[tx_id];
10245 #else
10246 struct clx2_tx_queue *txq = &priv->txq[0];
10247 #endif /* CONFIG_IPW2200_QOS */
10248
10249 if (ipw_tx_queue_space(&txq->q) < txq->q.high_mark)
10250 return 1;
10251
10252 return 0;
10253 }
10254
10255 #ifdef CONFIG_IPW2200_PROMISCUOUS
ipw_handle_promiscuous_tx(struct ipw_priv * priv,struct libipw_txb * txb)10256 static void ipw_handle_promiscuous_tx(struct ipw_priv *priv,
10257 struct libipw_txb *txb)
10258 {
10259 struct libipw_rx_stats dummystats;
10260 struct ieee80211_hdr *hdr;
10261 u8 n;
10262 u16 filter = priv->prom_priv->filter;
10263 int hdr_only = 0;
10264
10265 if (filter & IPW_PROM_NO_TX)
10266 return;
10267
10268 memset(&dummystats, 0, sizeof(dummystats));
10269
10270 /* Filtering of fragment chains is done against the first fragment */
10271 hdr = (void *)txb->fragments[0]->data;
10272 if (libipw_is_management(le16_to_cpu(hdr->frame_control))) {
10273 if (filter & IPW_PROM_NO_MGMT)
10274 return;
10275 if (filter & IPW_PROM_MGMT_HEADER_ONLY)
10276 hdr_only = 1;
10277 } else if (libipw_is_control(le16_to_cpu(hdr->frame_control))) {
10278 if (filter & IPW_PROM_NO_CTL)
10279 return;
10280 if (filter & IPW_PROM_CTL_HEADER_ONLY)
10281 hdr_only = 1;
10282 } else if (libipw_is_data(le16_to_cpu(hdr->frame_control))) {
10283 if (filter & IPW_PROM_NO_DATA)
10284 return;
10285 if (filter & IPW_PROM_DATA_HEADER_ONLY)
10286 hdr_only = 1;
10287 }
10288
10289 for(n=0; n<txb->nr_frags; ++n) {
10290 struct sk_buff *src = txb->fragments[n];
10291 struct sk_buff *dst;
10292 struct ieee80211_radiotap_header *rt_hdr;
10293 int len;
10294
10295 if (hdr_only) {
10296 hdr = (void *)src->data;
10297 len = libipw_get_hdrlen(le16_to_cpu(hdr->frame_control));
10298 } else
10299 len = src->len;
10300
10301 dst = alloc_skb(len + sizeof(*rt_hdr) + sizeof(u16)*2, GFP_ATOMIC);
10302 if (!dst)
10303 continue;
10304
10305 rt_hdr = skb_put(dst, sizeof(*rt_hdr));
10306
10307 rt_hdr->it_version = PKTHDR_RADIOTAP_VERSION;
10308 rt_hdr->it_pad = 0;
10309 rt_hdr->it_present = 0; /* after all, it's just an idea */
10310 rt_hdr->it_present |= cpu_to_le32(1 << IEEE80211_RADIOTAP_CHANNEL);
10311
10312 *(__le16*)skb_put(dst, sizeof(u16)) = cpu_to_le16(
10313 ieee80211chan2mhz(priv->channel));
10314 if (priv->channel > 14) /* 802.11a */
10315 *(__le16*)skb_put(dst, sizeof(u16)) =
10316 cpu_to_le16(IEEE80211_CHAN_OFDM |
10317 IEEE80211_CHAN_5GHZ);
10318 else if (priv->ieee->mode == IEEE_B) /* 802.11b */
10319 *(__le16*)skb_put(dst, sizeof(u16)) =
10320 cpu_to_le16(IEEE80211_CHAN_CCK |
10321 IEEE80211_CHAN_2GHZ);
10322 else /* 802.11g */
10323 *(__le16*)skb_put(dst, sizeof(u16)) =
10324 cpu_to_le16(IEEE80211_CHAN_OFDM |
10325 IEEE80211_CHAN_2GHZ);
10326
10327 rt_hdr->it_len = cpu_to_le16(dst->len);
10328
10329 skb_copy_from_linear_data(src, skb_put(dst, len), len);
10330
10331 if (!libipw_rx(priv->prom_priv->ieee, dst, &dummystats))
10332 dev_kfree_skb_any(dst);
10333 }
10334 }
10335 #endif
10336
ipw_net_hard_start_xmit(struct libipw_txb * txb,struct net_device * dev,int pri)10337 static netdev_tx_t ipw_net_hard_start_xmit(struct libipw_txb *txb,
10338 struct net_device *dev, int pri)
10339 {
10340 struct ipw_priv *priv = libipw_priv(dev);
10341 unsigned long flags;
10342 netdev_tx_t ret;
10343
10344 IPW_DEBUG_TX("dev->xmit(%d bytes)\n", txb->payload_size);
10345 spin_lock_irqsave(&priv->lock, flags);
10346
10347 #ifdef CONFIG_IPW2200_PROMISCUOUS
10348 if (rtap_iface && netif_running(priv->prom_net_dev))
10349 ipw_handle_promiscuous_tx(priv, txb);
10350 #endif
10351
10352 ret = ipw_tx_skb(priv, txb, pri);
10353 if (ret == NETDEV_TX_OK)
10354 __ipw_led_activity_on(priv);
10355 spin_unlock_irqrestore(&priv->lock, flags);
10356
10357 return ret;
10358 }
10359
ipw_net_set_multicast_list(struct net_device * dev)10360 static void ipw_net_set_multicast_list(struct net_device *dev)
10361 {
10362
10363 }
10364
ipw_net_set_mac_address(struct net_device * dev,void * p)10365 static int ipw_net_set_mac_address(struct net_device *dev, void *p)
10366 {
10367 struct ipw_priv *priv = libipw_priv(dev);
10368 struct sockaddr *addr = p;
10369
10370 if (!is_valid_ether_addr(addr->sa_data))
10371 return -EADDRNOTAVAIL;
10372 mutex_lock(&priv->mutex);
10373 priv->config |= CFG_CUSTOM_MAC;
10374 memcpy(priv->mac_addr, addr->sa_data, ETH_ALEN);
10375 printk(KERN_INFO "%s: Setting MAC to %pM\n",
10376 priv->net_dev->name, priv->mac_addr);
10377 schedule_work(&priv->adapter_restart);
10378 mutex_unlock(&priv->mutex);
10379 return 0;
10380 }
10381
ipw_ethtool_get_drvinfo(struct net_device * dev,struct ethtool_drvinfo * info)10382 static void ipw_ethtool_get_drvinfo(struct net_device *dev,
10383 struct ethtool_drvinfo *info)
10384 {
10385 struct ipw_priv *p = libipw_priv(dev);
10386 char vers[64];
10387 u32 len;
10388
10389 strscpy(info->driver, DRV_NAME, sizeof(info->driver));
10390 strscpy(info->version, DRV_VERSION, sizeof(info->version));
10391
10392 len = sizeof(vers);
10393 ipw_get_ordinal(p, IPW_ORD_STAT_FW_VERSION, vers, &len);
10394
10395 strscpy(info->fw_version, vers, sizeof(info->fw_version));
10396 strscpy(info->bus_info, pci_name(p->pci_dev),
10397 sizeof(info->bus_info));
10398 }
10399
ipw_ethtool_get_link(struct net_device * dev)10400 static u32 ipw_ethtool_get_link(struct net_device *dev)
10401 {
10402 struct ipw_priv *priv = libipw_priv(dev);
10403 return (priv->status & STATUS_ASSOCIATED) != 0;
10404 }
10405
ipw_ethtool_get_eeprom_len(struct net_device * dev)10406 static int ipw_ethtool_get_eeprom_len(struct net_device *dev)
10407 {
10408 return IPW_EEPROM_IMAGE_SIZE;
10409 }
10410
ipw_ethtool_get_eeprom(struct net_device * dev,struct ethtool_eeprom * eeprom,u8 * bytes)10411 static int ipw_ethtool_get_eeprom(struct net_device *dev,
10412 struct ethtool_eeprom *eeprom, u8 * bytes)
10413 {
10414 struct ipw_priv *p = libipw_priv(dev);
10415
10416 if (eeprom->offset + eeprom->len > IPW_EEPROM_IMAGE_SIZE)
10417 return -EINVAL;
10418 mutex_lock(&p->mutex);
10419 memcpy(bytes, &p->eeprom[eeprom->offset], eeprom->len);
10420 mutex_unlock(&p->mutex);
10421 return 0;
10422 }
10423
ipw_ethtool_set_eeprom(struct net_device * dev,struct ethtool_eeprom * eeprom,u8 * bytes)10424 static int ipw_ethtool_set_eeprom(struct net_device *dev,
10425 struct ethtool_eeprom *eeprom, u8 * bytes)
10426 {
10427 struct ipw_priv *p = libipw_priv(dev);
10428 int i;
10429
10430 if (eeprom->offset + eeprom->len > IPW_EEPROM_IMAGE_SIZE)
10431 return -EINVAL;
10432 mutex_lock(&p->mutex);
10433 memcpy(&p->eeprom[eeprom->offset], bytes, eeprom->len);
10434 for (i = 0; i < IPW_EEPROM_IMAGE_SIZE; i++)
10435 ipw_write8(p, i + IPW_EEPROM_DATA, p->eeprom[i]);
10436 mutex_unlock(&p->mutex);
10437 return 0;
10438 }
10439
10440 static const struct ethtool_ops ipw_ethtool_ops = {
10441 .get_link = ipw_ethtool_get_link,
10442 .get_drvinfo = ipw_ethtool_get_drvinfo,
10443 .get_eeprom_len = ipw_ethtool_get_eeprom_len,
10444 .get_eeprom = ipw_ethtool_get_eeprom,
10445 .set_eeprom = ipw_ethtool_set_eeprom,
10446 };
10447
ipw_isr(int irq,void * data)10448 static irqreturn_t ipw_isr(int irq, void *data)
10449 {
10450 struct ipw_priv *priv = data;
10451 u32 inta, inta_mask;
10452
10453 if (!priv)
10454 return IRQ_NONE;
10455
10456 spin_lock(&priv->irq_lock);
10457
10458 if (!(priv->status & STATUS_INT_ENABLED)) {
10459 /* IRQ is disabled */
10460 goto none;
10461 }
10462
10463 inta = ipw_read32(priv, IPW_INTA_RW);
10464 inta_mask = ipw_read32(priv, IPW_INTA_MASK_R);
10465
10466 if (inta == 0xFFFFFFFF) {
10467 /* Hardware disappeared */
10468 IPW_WARNING("IRQ INTA == 0xFFFFFFFF\n");
10469 goto none;
10470 }
10471
10472 if (!(inta & (IPW_INTA_MASK_ALL & inta_mask))) {
10473 /* Shared interrupt */
10474 goto none;
10475 }
10476
10477 /* tell the device to stop sending interrupts */
10478 __ipw_disable_interrupts(priv);
10479
10480 /* ack current interrupts */
10481 inta &= (IPW_INTA_MASK_ALL & inta_mask);
10482 ipw_write32(priv, IPW_INTA_RW, inta);
10483
10484 /* Cache INTA value for our tasklet */
10485 priv->isr_inta = inta;
10486
10487 tasklet_schedule(&priv->irq_tasklet);
10488
10489 spin_unlock(&priv->irq_lock);
10490
10491 return IRQ_HANDLED;
10492 none:
10493 spin_unlock(&priv->irq_lock);
10494 return IRQ_NONE;
10495 }
10496
ipw_rf_kill(void * adapter)10497 static void ipw_rf_kill(void *adapter)
10498 {
10499 struct ipw_priv *priv = adapter;
10500 unsigned long flags;
10501
10502 spin_lock_irqsave(&priv->lock, flags);
10503
10504 if (rf_kill_active(priv)) {
10505 IPW_DEBUG_RF_KILL("RF Kill active, rescheduling GPIO check\n");
10506 schedule_delayed_work(&priv->rf_kill, 2 * HZ);
10507 goto exit_unlock;
10508 }
10509
10510 /* RF Kill is now disabled, so bring the device back up */
10511
10512 if (!(priv->status & STATUS_RF_KILL_MASK)) {
10513 IPW_DEBUG_RF_KILL("HW RF Kill no longer active, restarting "
10514 "device\n");
10515
10516 /* we can not do an adapter restart while inside an irq lock */
10517 schedule_work(&priv->adapter_restart);
10518 } else
10519 IPW_DEBUG_RF_KILL("HW RF Kill deactivated. SW RF Kill still "
10520 "enabled\n");
10521
10522 exit_unlock:
10523 spin_unlock_irqrestore(&priv->lock, flags);
10524 }
10525
ipw_bg_rf_kill(struct work_struct * work)10526 static void ipw_bg_rf_kill(struct work_struct *work)
10527 {
10528 struct ipw_priv *priv =
10529 container_of(work, struct ipw_priv, rf_kill.work);
10530 mutex_lock(&priv->mutex);
10531 ipw_rf_kill(priv);
10532 mutex_unlock(&priv->mutex);
10533 }
10534
ipw_link_up(struct ipw_priv * priv)10535 static void ipw_link_up(struct ipw_priv *priv)
10536 {
10537 priv->last_seq_num = -1;
10538 priv->last_frag_num = -1;
10539 priv->last_packet_time = 0;
10540
10541 netif_carrier_on(priv->net_dev);
10542
10543 cancel_delayed_work(&priv->request_scan);
10544 cancel_delayed_work(&priv->request_direct_scan);
10545 cancel_delayed_work(&priv->request_passive_scan);
10546 cancel_delayed_work(&priv->scan_event);
10547 ipw_reset_stats(priv);
10548 /* Ensure the rate is updated immediately */
10549 priv->last_rate = ipw_get_current_rate(priv);
10550 ipw_gather_stats(priv);
10551 ipw_led_link_up(priv);
10552 notify_wx_assoc_event(priv);
10553
10554 if (priv->config & CFG_BACKGROUND_SCAN)
10555 schedule_delayed_work(&priv->request_scan, HZ);
10556 }
10557
ipw_bg_link_up(struct work_struct * work)10558 static void ipw_bg_link_up(struct work_struct *work)
10559 {
10560 struct ipw_priv *priv =
10561 container_of(work, struct ipw_priv, link_up);
10562 mutex_lock(&priv->mutex);
10563 ipw_link_up(priv);
10564 mutex_unlock(&priv->mutex);
10565 }
10566
ipw_link_down(struct ipw_priv * priv)10567 static void ipw_link_down(struct ipw_priv *priv)
10568 {
10569 ipw_led_link_down(priv);
10570 netif_carrier_off(priv->net_dev);
10571 notify_wx_assoc_event(priv);
10572
10573 /* Cancel any queued work ... */
10574 cancel_delayed_work(&priv->request_scan);
10575 cancel_delayed_work(&priv->request_direct_scan);
10576 cancel_delayed_work(&priv->request_passive_scan);
10577 cancel_delayed_work(&priv->adhoc_check);
10578 cancel_delayed_work(&priv->gather_stats);
10579
10580 ipw_reset_stats(priv);
10581
10582 if (!(priv->status & STATUS_EXIT_PENDING)) {
10583 /* Queue up another scan... */
10584 schedule_delayed_work(&priv->request_scan, 0);
10585 } else
10586 cancel_delayed_work(&priv->scan_event);
10587 }
10588
ipw_bg_link_down(struct work_struct * work)10589 static void ipw_bg_link_down(struct work_struct *work)
10590 {
10591 struct ipw_priv *priv =
10592 container_of(work, struct ipw_priv, link_down);
10593 mutex_lock(&priv->mutex);
10594 ipw_link_down(priv);
10595 mutex_unlock(&priv->mutex);
10596 }
10597
ipw_setup_deferred_work(struct ipw_priv * priv)10598 static void ipw_setup_deferred_work(struct ipw_priv *priv)
10599 {
10600 init_waitqueue_head(&priv->wait_command_queue);
10601 init_waitqueue_head(&priv->wait_state);
10602
10603 INIT_DELAYED_WORK(&priv->adhoc_check, ipw_bg_adhoc_check);
10604 INIT_WORK(&priv->associate, ipw_bg_associate);
10605 INIT_WORK(&priv->disassociate, ipw_bg_disassociate);
10606 INIT_WORK(&priv->system_config, ipw_system_config);
10607 INIT_WORK(&priv->rx_replenish, ipw_bg_rx_queue_replenish);
10608 INIT_WORK(&priv->adapter_restart, ipw_bg_adapter_restart);
10609 INIT_DELAYED_WORK(&priv->rf_kill, ipw_bg_rf_kill);
10610 INIT_WORK(&priv->up, ipw_bg_up);
10611 INIT_WORK(&priv->down, ipw_bg_down);
10612 INIT_DELAYED_WORK(&priv->request_scan, ipw_request_scan);
10613 INIT_DELAYED_WORK(&priv->request_direct_scan, ipw_request_direct_scan);
10614 INIT_DELAYED_WORK(&priv->request_passive_scan, ipw_request_passive_scan);
10615 INIT_DELAYED_WORK(&priv->scan_event, ipw_scan_event);
10616 INIT_DELAYED_WORK(&priv->gather_stats, ipw_bg_gather_stats);
10617 INIT_WORK(&priv->abort_scan, ipw_bg_abort_scan);
10618 INIT_WORK(&priv->roam, ipw_bg_roam);
10619 INIT_DELAYED_WORK(&priv->scan_check, ipw_bg_scan_check);
10620 INIT_WORK(&priv->link_up, ipw_bg_link_up);
10621 INIT_WORK(&priv->link_down, ipw_bg_link_down);
10622 INIT_DELAYED_WORK(&priv->led_link_on, ipw_bg_led_link_on);
10623 INIT_DELAYED_WORK(&priv->led_link_off, ipw_bg_led_link_off);
10624 INIT_DELAYED_WORK(&priv->led_act_off, ipw_bg_led_activity_off);
10625 INIT_WORK(&priv->merge_networks, ipw_merge_adhoc_network);
10626
10627 #ifdef CONFIG_IPW2200_QOS
10628 INIT_WORK(&priv->qos_activate, ipw_bg_qos_activate);
10629 #endif /* CONFIG_IPW2200_QOS */
10630
10631 tasklet_setup(&priv->irq_tasklet, ipw_irq_tasklet);
10632 }
10633
shim__set_security(struct net_device * dev,struct libipw_security * sec)10634 static void shim__set_security(struct net_device *dev,
10635 struct libipw_security *sec)
10636 {
10637 struct ipw_priv *priv = libipw_priv(dev);
10638 int i;
10639 for (i = 0; i < 4; i++) {
10640 if (sec->flags & (1 << i)) {
10641 priv->ieee->sec.encode_alg[i] = sec->encode_alg[i];
10642 priv->ieee->sec.key_sizes[i] = sec->key_sizes[i];
10643 if (sec->key_sizes[i] == 0)
10644 priv->ieee->sec.flags &= ~(1 << i);
10645 else {
10646 memcpy(priv->ieee->sec.keys[i], sec->keys[i],
10647 sec->key_sizes[i]);
10648 priv->ieee->sec.flags |= (1 << i);
10649 }
10650 priv->status |= STATUS_SECURITY_UPDATED;
10651 } else if (sec->level != SEC_LEVEL_1)
10652 priv->ieee->sec.flags &= ~(1 << i);
10653 }
10654
10655 if (sec->flags & SEC_ACTIVE_KEY) {
10656 priv->ieee->sec.active_key = sec->active_key;
10657 priv->ieee->sec.flags |= SEC_ACTIVE_KEY;
10658 priv->status |= STATUS_SECURITY_UPDATED;
10659 } else
10660 priv->ieee->sec.flags &= ~SEC_ACTIVE_KEY;
10661
10662 if ((sec->flags & SEC_AUTH_MODE) &&
10663 (priv->ieee->sec.auth_mode != sec->auth_mode)) {
10664 priv->ieee->sec.auth_mode = sec->auth_mode;
10665 priv->ieee->sec.flags |= SEC_AUTH_MODE;
10666 if (sec->auth_mode == WLAN_AUTH_SHARED_KEY)
10667 priv->capability |= CAP_SHARED_KEY;
10668 else
10669 priv->capability &= ~CAP_SHARED_KEY;
10670 priv->status |= STATUS_SECURITY_UPDATED;
10671 }
10672
10673 if (sec->flags & SEC_ENABLED && priv->ieee->sec.enabled != sec->enabled) {
10674 priv->ieee->sec.flags |= SEC_ENABLED;
10675 priv->ieee->sec.enabled = sec->enabled;
10676 priv->status |= STATUS_SECURITY_UPDATED;
10677 if (sec->enabled)
10678 priv->capability |= CAP_PRIVACY_ON;
10679 else
10680 priv->capability &= ~CAP_PRIVACY_ON;
10681 }
10682
10683 if (sec->flags & SEC_ENCRYPT)
10684 priv->ieee->sec.encrypt = sec->encrypt;
10685
10686 if (sec->flags & SEC_LEVEL && priv->ieee->sec.level != sec->level) {
10687 priv->ieee->sec.level = sec->level;
10688 priv->ieee->sec.flags |= SEC_LEVEL;
10689 priv->status |= STATUS_SECURITY_UPDATED;
10690 }
10691
10692 if (!priv->ieee->host_encrypt && (sec->flags & SEC_ENCRYPT))
10693 ipw_set_hwcrypto_keys(priv);
10694
10695 /* To match current functionality of ipw2100 (which works well w/
10696 * various supplicants, we don't force a disassociate if the
10697 * privacy capability changes ... */
10698 #if 0
10699 if ((priv->status & (STATUS_ASSOCIATED | STATUS_ASSOCIATING)) &&
10700 (((priv->assoc_request.capability &
10701 cpu_to_le16(WLAN_CAPABILITY_PRIVACY)) && !sec->enabled) ||
10702 (!(priv->assoc_request.capability &
10703 cpu_to_le16(WLAN_CAPABILITY_PRIVACY)) && sec->enabled))) {
10704 IPW_DEBUG_ASSOC("Disassociating due to capability "
10705 "change.\n");
10706 ipw_disassociate(priv);
10707 }
10708 #endif
10709 }
10710
init_supported_rates(struct ipw_priv * priv,struct ipw_supported_rates * rates)10711 static int init_supported_rates(struct ipw_priv *priv,
10712 struct ipw_supported_rates *rates)
10713 {
10714 /* TODO: Mask out rates based on priv->rates_mask */
10715
10716 memset(rates, 0, sizeof(*rates));
10717 /* configure supported rates */
10718 switch (priv->ieee->freq_band) {
10719 case LIBIPW_52GHZ_BAND:
10720 rates->ieee_mode = IPW_A_MODE;
10721 rates->purpose = IPW_RATE_CAPABILITIES;
10722 ipw_add_ofdm_scan_rates(rates, LIBIPW_CCK_MODULATION,
10723 LIBIPW_OFDM_DEFAULT_RATES_MASK);
10724 break;
10725
10726 default: /* Mixed or 2.4Ghz */
10727 rates->ieee_mode = IPW_G_MODE;
10728 rates->purpose = IPW_RATE_CAPABILITIES;
10729 ipw_add_cck_scan_rates(rates, LIBIPW_CCK_MODULATION,
10730 LIBIPW_CCK_DEFAULT_RATES_MASK);
10731 if (priv->ieee->modulation & LIBIPW_OFDM_MODULATION) {
10732 ipw_add_ofdm_scan_rates(rates, LIBIPW_CCK_MODULATION,
10733 LIBIPW_OFDM_DEFAULT_RATES_MASK);
10734 }
10735 break;
10736 }
10737
10738 return 0;
10739 }
10740
ipw_config(struct ipw_priv * priv)10741 static int ipw_config(struct ipw_priv *priv)
10742 {
10743 /* This is only called from ipw_up, which resets/reloads the firmware
10744 so, we don't need to first disable the card before we configure
10745 it */
10746 if (ipw_set_tx_power(priv))
10747 goto error;
10748
10749 /* initialize adapter address */
10750 if (ipw_send_adapter_address(priv, priv->net_dev->dev_addr))
10751 goto error;
10752
10753 /* set basic system config settings */
10754 init_sys_config(&priv->sys_config);
10755
10756 /* Support Bluetooth if we have BT h/w on board, and user wants to.
10757 * Does not support BT priority yet (don't abort or defer our Tx) */
10758 if (bt_coexist) {
10759 unsigned char bt_caps = priv->eeprom[EEPROM_SKU_CAPABILITY];
10760
10761 if (bt_caps & EEPROM_SKU_CAP_BT_CHANNEL_SIG)
10762 priv->sys_config.bt_coexistence
10763 |= CFG_BT_COEXISTENCE_SIGNAL_CHNL;
10764 if (bt_caps & EEPROM_SKU_CAP_BT_OOB)
10765 priv->sys_config.bt_coexistence
10766 |= CFG_BT_COEXISTENCE_OOB;
10767 }
10768
10769 #ifdef CONFIG_IPW2200_PROMISCUOUS
10770 if (priv->prom_net_dev && netif_running(priv->prom_net_dev)) {
10771 priv->sys_config.accept_all_data_frames = 1;
10772 priv->sys_config.accept_non_directed_frames = 1;
10773 priv->sys_config.accept_all_mgmt_bcpr = 1;
10774 priv->sys_config.accept_all_mgmt_frames = 1;
10775 }
10776 #endif
10777
10778 if (priv->ieee->iw_mode == IW_MODE_ADHOC)
10779 priv->sys_config.answer_broadcast_ssid_probe = 1;
10780 else
10781 priv->sys_config.answer_broadcast_ssid_probe = 0;
10782
10783 if (ipw_send_system_config(priv))
10784 goto error;
10785
10786 init_supported_rates(priv, &priv->rates);
10787 if (ipw_send_supported_rates(priv, &priv->rates))
10788 goto error;
10789
10790 /* Set request-to-send threshold */
10791 if (priv->rts_threshold) {
10792 if (ipw_send_rts_threshold(priv, priv->rts_threshold))
10793 goto error;
10794 }
10795 #ifdef CONFIG_IPW2200_QOS
10796 IPW_DEBUG_QOS("QoS: call ipw_qos_activate\n");
10797 ipw_qos_activate(priv, NULL);
10798 #endif /* CONFIG_IPW2200_QOS */
10799
10800 if (ipw_set_random_seed(priv))
10801 goto error;
10802
10803 /* final state transition to the RUN state */
10804 if (ipw_send_host_complete(priv))
10805 goto error;
10806
10807 priv->status |= STATUS_INIT;
10808
10809 ipw_led_init(priv);
10810 ipw_led_radio_on(priv);
10811 priv->notif_missed_beacons = 0;
10812
10813 /* Set hardware WEP key if it is configured. */
10814 if ((priv->capability & CAP_PRIVACY_ON) &&
10815 (priv->ieee->sec.level == SEC_LEVEL_1) &&
10816 !(priv->ieee->host_encrypt || priv->ieee->host_decrypt))
10817 ipw_set_hwcrypto_keys(priv);
10818
10819 return 0;
10820
10821 error:
10822 return -EIO;
10823 }
10824
10825 /*
10826 * NOTE:
10827 *
10828 * These tables have been tested in conjunction with the
10829 * Intel PRO/Wireless 2200BG and 2915ABG Network Connection Adapters.
10830 *
10831 * Altering this values, using it on other hardware, or in geographies
10832 * not intended for resale of the above mentioned Intel adapters has
10833 * not been tested.
10834 *
10835 * Remember to update the table in README.ipw2200 when changing this
10836 * table.
10837 *
10838 */
10839 static const struct libipw_geo ipw_geos[] = {
10840 { /* Restricted */
10841 "---",
10842 .bg_channels = 11,
10843 .bg = {{2412, 1}, {2417, 2}, {2422, 3},
10844 {2427, 4}, {2432, 5}, {2437, 6},
10845 {2442, 7}, {2447, 8}, {2452, 9},
10846 {2457, 10}, {2462, 11}},
10847 },
10848
10849 { /* Custom US/Canada */
10850 "ZZF",
10851 .bg_channels = 11,
10852 .bg = {{2412, 1}, {2417, 2}, {2422, 3},
10853 {2427, 4}, {2432, 5}, {2437, 6},
10854 {2442, 7}, {2447, 8}, {2452, 9},
10855 {2457, 10}, {2462, 11}},
10856 .a_channels = 8,
10857 .a = {{5180, 36},
10858 {5200, 40},
10859 {5220, 44},
10860 {5240, 48},
10861 {5260, 52, LIBIPW_CH_PASSIVE_ONLY},
10862 {5280, 56, LIBIPW_CH_PASSIVE_ONLY},
10863 {5300, 60, LIBIPW_CH_PASSIVE_ONLY},
10864 {5320, 64, LIBIPW_CH_PASSIVE_ONLY}},
10865 },
10866
10867 { /* Rest of World */
10868 "ZZD",
10869 .bg_channels = 13,
10870 .bg = {{2412, 1}, {2417, 2}, {2422, 3},
10871 {2427, 4}, {2432, 5}, {2437, 6},
10872 {2442, 7}, {2447, 8}, {2452, 9},
10873 {2457, 10}, {2462, 11}, {2467, 12},
10874 {2472, 13}},
10875 },
10876
10877 { /* Custom USA & Europe & High */
10878 "ZZA",
10879 .bg_channels = 11,
10880 .bg = {{2412, 1}, {2417, 2}, {2422, 3},
10881 {2427, 4}, {2432, 5}, {2437, 6},
10882 {2442, 7}, {2447, 8}, {2452, 9},
10883 {2457, 10}, {2462, 11}},
10884 .a_channels = 13,
10885 .a = {{5180, 36},
10886 {5200, 40},
10887 {5220, 44},
10888 {5240, 48},
10889 {5260, 52, LIBIPW_CH_PASSIVE_ONLY},
10890 {5280, 56, LIBIPW_CH_PASSIVE_ONLY},
10891 {5300, 60, LIBIPW_CH_PASSIVE_ONLY},
10892 {5320, 64, LIBIPW_CH_PASSIVE_ONLY},
10893 {5745, 149},
10894 {5765, 153},
10895 {5785, 157},
10896 {5805, 161},
10897 {5825, 165}},
10898 },
10899
10900 { /* Custom NA & Europe */
10901 "ZZB",
10902 .bg_channels = 11,
10903 .bg = {{2412, 1}, {2417, 2}, {2422, 3},
10904 {2427, 4}, {2432, 5}, {2437, 6},
10905 {2442, 7}, {2447, 8}, {2452, 9},
10906 {2457, 10}, {2462, 11}},
10907 .a_channels = 13,
10908 .a = {{5180, 36},
10909 {5200, 40},
10910 {5220, 44},
10911 {5240, 48},
10912 {5260, 52, LIBIPW_CH_PASSIVE_ONLY},
10913 {5280, 56, LIBIPW_CH_PASSIVE_ONLY},
10914 {5300, 60, LIBIPW_CH_PASSIVE_ONLY},
10915 {5320, 64, LIBIPW_CH_PASSIVE_ONLY},
10916 {5745, 149, LIBIPW_CH_PASSIVE_ONLY},
10917 {5765, 153, LIBIPW_CH_PASSIVE_ONLY},
10918 {5785, 157, LIBIPW_CH_PASSIVE_ONLY},
10919 {5805, 161, LIBIPW_CH_PASSIVE_ONLY},
10920 {5825, 165, LIBIPW_CH_PASSIVE_ONLY}},
10921 },
10922
10923 { /* Custom Japan */
10924 "ZZC",
10925 .bg_channels = 11,
10926 .bg = {{2412, 1}, {2417, 2}, {2422, 3},
10927 {2427, 4}, {2432, 5}, {2437, 6},
10928 {2442, 7}, {2447, 8}, {2452, 9},
10929 {2457, 10}, {2462, 11}},
10930 .a_channels = 4,
10931 .a = {{5170, 34}, {5190, 38},
10932 {5210, 42}, {5230, 46}},
10933 },
10934
10935 { /* Custom */
10936 "ZZM",
10937 .bg_channels = 11,
10938 .bg = {{2412, 1}, {2417, 2}, {2422, 3},
10939 {2427, 4}, {2432, 5}, {2437, 6},
10940 {2442, 7}, {2447, 8}, {2452, 9},
10941 {2457, 10}, {2462, 11}},
10942 },
10943
10944 { /* Europe */
10945 "ZZE",
10946 .bg_channels = 13,
10947 .bg = {{2412, 1}, {2417, 2}, {2422, 3},
10948 {2427, 4}, {2432, 5}, {2437, 6},
10949 {2442, 7}, {2447, 8}, {2452, 9},
10950 {2457, 10}, {2462, 11}, {2467, 12},
10951 {2472, 13}},
10952 .a_channels = 19,
10953 .a = {{5180, 36},
10954 {5200, 40},
10955 {5220, 44},
10956 {5240, 48},
10957 {5260, 52, LIBIPW_CH_PASSIVE_ONLY},
10958 {5280, 56, LIBIPW_CH_PASSIVE_ONLY},
10959 {5300, 60, LIBIPW_CH_PASSIVE_ONLY},
10960 {5320, 64, LIBIPW_CH_PASSIVE_ONLY},
10961 {5500, 100, LIBIPW_CH_PASSIVE_ONLY},
10962 {5520, 104, LIBIPW_CH_PASSIVE_ONLY},
10963 {5540, 108, LIBIPW_CH_PASSIVE_ONLY},
10964 {5560, 112, LIBIPW_CH_PASSIVE_ONLY},
10965 {5580, 116, LIBIPW_CH_PASSIVE_ONLY},
10966 {5600, 120, LIBIPW_CH_PASSIVE_ONLY},
10967 {5620, 124, LIBIPW_CH_PASSIVE_ONLY},
10968 {5640, 128, LIBIPW_CH_PASSIVE_ONLY},
10969 {5660, 132, LIBIPW_CH_PASSIVE_ONLY},
10970 {5680, 136, LIBIPW_CH_PASSIVE_ONLY},
10971 {5700, 140, LIBIPW_CH_PASSIVE_ONLY}},
10972 },
10973
10974 { /* Custom Japan */
10975 "ZZJ",
10976 .bg_channels = 14,
10977 .bg = {{2412, 1}, {2417, 2}, {2422, 3},
10978 {2427, 4}, {2432, 5}, {2437, 6},
10979 {2442, 7}, {2447, 8}, {2452, 9},
10980 {2457, 10}, {2462, 11}, {2467, 12},
10981 {2472, 13}, {2484, 14, LIBIPW_CH_B_ONLY}},
10982 .a_channels = 4,
10983 .a = {{5170, 34}, {5190, 38},
10984 {5210, 42}, {5230, 46}},
10985 },
10986
10987 { /* Rest of World */
10988 "ZZR",
10989 .bg_channels = 14,
10990 .bg = {{2412, 1}, {2417, 2}, {2422, 3},
10991 {2427, 4}, {2432, 5}, {2437, 6},
10992 {2442, 7}, {2447, 8}, {2452, 9},
10993 {2457, 10}, {2462, 11}, {2467, 12},
10994 {2472, 13}, {2484, 14, LIBIPW_CH_B_ONLY |
10995 LIBIPW_CH_PASSIVE_ONLY}},
10996 },
10997
10998 { /* High Band */
10999 "ZZH",
11000 .bg_channels = 13,
11001 .bg = {{2412, 1}, {2417, 2}, {2422, 3},
11002 {2427, 4}, {2432, 5}, {2437, 6},
11003 {2442, 7}, {2447, 8}, {2452, 9},
11004 {2457, 10}, {2462, 11},
11005 {2467, 12, LIBIPW_CH_PASSIVE_ONLY},
11006 {2472, 13, LIBIPW_CH_PASSIVE_ONLY}},
11007 .a_channels = 4,
11008 .a = {{5745, 149}, {5765, 153},
11009 {5785, 157}, {5805, 161}},
11010 },
11011
11012 { /* Custom Europe */
11013 "ZZG",
11014 .bg_channels = 13,
11015 .bg = {{2412, 1}, {2417, 2}, {2422, 3},
11016 {2427, 4}, {2432, 5}, {2437, 6},
11017 {2442, 7}, {2447, 8}, {2452, 9},
11018 {2457, 10}, {2462, 11},
11019 {2467, 12}, {2472, 13}},
11020 .a_channels = 4,
11021 .a = {{5180, 36}, {5200, 40},
11022 {5220, 44}, {5240, 48}},
11023 },
11024
11025 { /* Europe */
11026 "ZZK",
11027 .bg_channels = 13,
11028 .bg = {{2412, 1}, {2417, 2}, {2422, 3},
11029 {2427, 4}, {2432, 5}, {2437, 6},
11030 {2442, 7}, {2447, 8}, {2452, 9},
11031 {2457, 10}, {2462, 11},
11032 {2467, 12, LIBIPW_CH_PASSIVE_ONLY},
11033 {2472, 13, LIBIPW_CH_PASSIVE_ONLY}},
11034 .a_channels = 24,
11035 .a = {{5180, 36, LIBIPW_CH_PASSIVE_ONLY},
11036 {5200, 40, LIBIPW_CH_PASSIVE_ONLY},
11037 {5220, 44, LIBIPW_CH_PASSIVE_ONLY},
11038 {5240, 48, LIBIPW_CH_PASSIVE_ONLY},
11039 {5260, 52, LIBIPW_CH_PASSIVE_ONLY},
11040 {5280, 56, LIBIPW_CH_PASSIVE_ONLY},
11041 {5300, 60, LIBIPW_CH_PASSIVE_ONLY},
11042 {5320, 64, LIBIPW_CH_PASSIVE_ONLY},
11043 {5500, 100, LIBIPW_CH_PASSIVE_ONLY},
11044 {5520, 104, LIBIPW_CH_PASSIVE_ONLY},
11045 {5540, 108, LIBIPW_CH_PASSIVE_ONLY},
11046 {5560, 112, LIBIPW_CH_PASSIVE_ONLY},
11047 {5580, 116, LIBIPW_CH_PASSIVE_ONLY},
11048 {5600, 120, LIBIPW_CH_PASSIVE_ONLY},
11049 {5620, 124, LIBIPW_CH_PASSIVE_ONLY},
11050 {5640, 128, LIBIPW_CH_PASSIVE_ONLY},
11051 {5660, 132, LIBIPW_CH_PASSIVE_ONLY},
11052 {5680, 136, LIBIPW_CH_PASSIVE_ONLY},
11053 {5700, 140, LIBIPW_CH_PASSIVE_ONLY},
11054 {5745, 149, LIBIPW_CH_PASSIVE_ONLY},
11055 {5765, 153, LIBIPW_CH_PASSIVE_ONLY},
11056 {5785, 157, LIBIPW_CH_PASSIVE_ONLY},
11057 {5805, 161, LIBIPW_CH_PASSIVE_ONLY},
11058 {5825, 165, LIBIPW_CH_PASSIVE_ONLY}},
11059 },
11060
11061 { /* Europe */
11062 "ZZL",
11063 .bg_channels = 11,
11064 .bg = {{2412, 1}, {2417, 2}, {2422, 3},
11065 {2427, 4}, {2432, 5}, {2437, 6},
11066 {2442, 7}, {2447, 8}, {2452, 9},
11067 {2457, 10}, {2462, 11}},
11068 .a_channels = 13,
11069 .a = {{5180, 36, LIBIPW_CH_PASSIVE_ONLY},
11070 {5200, 40, LIBIPW_CH_PASSIVE_ONLY},
11071 {5220, 44, LIBIPW_CH_PASSIVE_ONLY},
11072 {5240, 48, LIBIPW_CH_PASSIVE_ONLY},
11073 {5260, 52, LIBIPW_CH_PASSIVE_ONLY},
11074 {5280, 56, LIBIPW_CH_PASSIVE_ONLY},
11075 {5300, 60, LIBIPW_CH_PASSIVE_ONLY},
11076 {5320, 64, LIBIPW_CH_PASSIVE_ONLY},
11077 {5745, 149, LIBIPW_CH_PASSIVE_ONLY},
11078 {5765, 153, LIBIPW_CH_PASSIVE_ONLY},
11079 {5785, 157, LIBIPW_CH_PASSIVE_ONLY},
11080 {5805, 161, LIBIPW_CH_PASSIVE_ONLY},
11081 {5825, 165, LIBIPW_CH_PASSIVE_ONLY}},
11082 }
11083 };
11084
ipw_set_geo(struct ipw_priv * priv)11085 static void ipw_set_geo(struct ipw_priv *priv)
11086 {
11087 int j;
11088
11089 for (j = 0; j < ARRAY_SIZE(ipw_geos); j++) {
11090 if (!memcmp(&priv->eeprom[EEPROM_COUNTRY_CODE],
11091 ipw_geos[j].name, 3))
11092 break;
11093 }
11094
11095 if (j == ARRAY_SIZE(ipw_geos)) {
11096 IPW_WARNING("SKU [%c%c%c] not recognized.\n",
11097 priv->eeprom[EEPROM_COUNTRY_CODE + 0],
11098 priv->eeprom[EEPROM_COUNTRY_CODE + 1],
11099 priv->eeprom[EEPROM_COUNTRY_CODE + 2]);
11100 j = 0;
11101 }
11102
11103 libipw_set_geo(priv->ieee, &ipw_geos[j]);
11104 }
11105
11106 #define MAX_HW_RESTARTS 5
ipw_up(struct ipw_priv * priv)11107 static int ipw_up(struct ipw_priv *priv)
11108 {
11109 int rc, i;
11110
11111 /* Age scan list entries found before suspend */
11112 if (priv->suspend_time) {
11113 libipw_networks_age(priv->ieee, priv->suspend_time);
11114 priv->suspend_time = 0;
11115 }
11116
11117 if (priv->status & STATUS_EXIT_PENDING)
11118 return -EIO;
11119
11120 if (cmdlog && !priv->cmdlog) {
11121 priv->cmdlog = kzalloc_objs(*priv->cmdlog, cmdlog);
11122 if (priv->cmdlog == NULL) {
11123 IPW_ERROR("Error allocating %d command log entries.\n",
11124 cmdlog);
11125 return -ENOMEM;
11126 } else {
11127 priv->cmdlog_len = cmdlog;
11128 }
11129 }
11130
11131 for (i = 0; i < MAX_HW_RESTARTS; i++) {
11132 /* Load the microcode, firmware, and eeprom.
11133 * Also start the clocks. */
11134 rc = ipw_load(priv);
11135 if (rc) {
11136 IPW_ERROR("Unable to load firmware: %d\n", rc);
11137 return rc;
11138 }
11139
11140 ipw_init_ordinals(priv);
11141 if (!(priv->config & CFG_CUSTOM_MAC))
11142 eeprom_parse_mac(priv, priv->mac_addr);
11143 eth_hw_addr_set(priv->net_dev, priv->mac_addr);
11144
11145 ipw_set_geo(priv);
11146
11147 if (priv->status & STATUS_RF_KILL_SW) {
11148 IPW_WARNING("Radio disabled by module parameter.\n");
11149 return 0;
11150 } else if (rf_kill_active(priv)) {
11151 IPW_WARNING("Radio Frequency Kill Switch is On:\n"
11152 "Kill switch must be turned off for "
11153 "wireless networking to work.\n");
11154 schedule_delayed_work(&priv->rf_kill, 2 * HZ);
11155 return 0;
11156 }
11157
11158 rc = ipw_config(priv);
11159 if (!rc) {
11160 IPW_DEBUG_INFO("Configured device on count %i\n", i);
11161
11162 /* If configure to try and auto-associate, kick
11163 * off a scan. */
11164 schedule_delayed_work(&priv->request_scan, 0);
11165
11166 return 0;
11167 }
11168
11169 IPW_DEBUG_INFO("Device configuration failed: 0x%08X\n", rc);
11170 IPW_DEBUG_INFO("Failed to config device on retry %d of %d\n",
11171 i, MAX_HW_RESTARTS);
11172
11173 /* We had an error bringing up the hardware, so take it
11174 * all the way back down so we can try again */
11175 ipw_down(priv);
11176 }
11177
11178 /* tried to restart and config the device for as long as our
11179 * patience could withstand */
11180 IPW_ERROR("Unable to initialize device after %d attempts.\n", i);
11181
11182 return -EIO;
11183 }
11184
ipw_bg_up(struct work_struct * work)11185 static void ipw_bg_up(struct work_struct *work)
11186 {
11187 struct ipw_priv *priv =
11188 container_of(work, struct ipw_priv, up);
11189 mutex_lock(&priv->mutex);
11190 ipw_up(priv);
11191 mutex_unlock(&priv->mutex);
11192 }
11193
ipw_deinit(struct ipw_priv * priv)11194 static void ipw_deinit(struct ipw_priv *priv)
11195 {
11196 int i;
11197
11198 if (priv->status & STATUS_SCANNING) {
11199 IPW_DEBUG_INFO("Aborting scan during shutdown.\n");
11200 ipw_abort_scan(priv);
11201 }
11202
11203 if (priv->status & STATUS_ASSOCIATED) {
11204 IPW_DEBUG_INFO("Disassociating during shutdown.\n");
11205 ipw_disassociate(priv);
11206 }
11207
11208 ipw_led_shutdown(priv);
11209
11210 /* Wait up to 1s for status to change to not scanning and not
11211 * associated (disassociation can take a while for a ful 802.11
11212 * exchange */
11213 for (i = 1000; i && (priv->status &
11214 (STATUS_DISASSOCIATING |
11215 STATUS_ASSOCIATED | STATUS_SCANNING)); i--)
11216 udelay(10);
11217
11218 if (priv->status & (STATUS_DISASSOCIATING |
11219 STATUS_ASSOCIATED | STATUS_SCANNING))
11220 IPW_DEBUG_INFO("Still associated or scanning...\n");
11221 else
11222 IPW_DEBUG_INFO("Took %dms to de-init\n", 1000 - i);
11223
11224 /* Attempt to disable the card */
11225 ipw_send_card_disable(priv, 0);
11226
11227 priv->status &= ~STATUS_INIT;
11228 }
11229
ipw_down(struct ipw_priv * priv)11230 static void ipw_down(struct ipw_priv *priv)
11231 {
11232 int exit_pending = priv->status & STATUS_EXIT_PENDING;
11233
11234 priv->status |= STATUS_EXIT_PENDING;
11235
11236 if (ipw_is_init(priv))
11237 ipw_deinit(priv);
11238
11239 /* Wipe out the EXIT_PENDING status bit if we are not actually
11240 * exiting the module */
11241 if (!exit_pending)
11242 priv->status &= ~STATUS_EXIT_PENDING;
11243
11244 /* tell the device to stop sending interrupts */
11245 ipw_disable_interrupts(priv);
11246
11247 /* Clear all bits but the RF Kill */
11248 priv->status &= STATUS_RF_KILL_MASK | STATUS_EXIT_PENDING;
11249 netif_carrier_off(priv->net_dev);
11250
11251 ipw_stop_nic(priv);
11252
11253 ipw_led_radio_off(priv);
11254 }
11255
ipw_bg_down(struct work_struct * work)11256 static void ipw_bg_down(struct work_struct *work)
11257 {
11258 struct ipw_priv *priv =
11259 container_of(work, struct ipw_priv, down);
11260 mutex_lock(&priv->mutex);
11261 ipw_down(priv);
11262 mutex_unlock(&priv->mutex);
11263 }
11264
ipw_wdev_init(struct net_device * dev)11265 static int ipw_wdev_init(struct net_device *dev)
11266 {
11267 int i, rc = 0;
11268 struct ipw_priv *priv = libipw_priv(dev);
11269 const struct libipw_geo *geo = libipw_get_geo(priv->ieee);
11270 struct wireless_dev *wdev = &priv->ieee->wdev;
11271
11272 memcpy(wdev->wiphy->perm_addr, priv->mac_addr, ETH_ALEN);
11273
11274 /* fill-out priv->ieee->bg_band */
11275 if (geo->bg_channels) {
11276 struct ieee80211_supported_band *bg_band = &priv->ieee->bg_band;
11277
11278 bg_band->band = NL80211_BAND_2GHZ;
11279 bg_band->n_channels = geo->bg_channels;
11280 bg_band->channels = kzalloc_objs(struct ieee80211_channel,
11281 geo->bg_channels);
11282 if (!bg_band->channels) {
11283 rc = -ENOMEM;
11284 goto out;
11285 }
11286 /* translate geo->bg to bg_band.channels */
11287 for (i = 0; i < geo->bg_channels; i++) {
11288 bg_band->channels[i].band = NL80211_BAND_2GHZ;
11289 bg_band->channels[i].center_freq = geo->bg[i].freq;
11290 bg_band->channels[i].hw_value = geo->bg[i].channel;
11291 bg_band->channels[i].max_power = geo->bg[i].max_power;
11292 if (geo->bg[i].flags & LIBIPW_CH_PASSIVE_ONLY)
11293 bg_band->channels[i].flags |=
11294 IEEE80211_CHAN_NO_IR;
11295 if (geo->bg[i].flags & LIBIPW_CH_NO_IBSS)
11296 bg_band->channels[i].flags |=
11297 IEEE80211_CHAN_NO_IR;
11298 if (geo->bg[i].flags & LIBIPW_CH_RADAR_DETECT)
11299 bg_band->channels[i].flags |=
11300 IEEE80211_CHAN_RADAR;
11301 /* No equivalent for LIBIPW_CH_80211H_RULES,
11302 LIBIPW_CH_UNIFORM_SPREADING, or
11303 LIBIPW_CH_B_ONLY... */
11304 }
11305 /* point at bitrate info */
11306 bg_band->bitrates = ipw2200_bg_rates;
11307 bg_band->n_bitrates = ipw2200_num_bg_rates;
11308
11309 wdev->wiphy->bands[NL80211_BAND_2GHZ] = bg_band;
11310 }
11311
11312 /* fill-out priv->ieee->a_band */
11313 if (geo->a_channels) {
11314 struct ieee80211_supported_band *a_band = &priv->ieee->a_band;
11315
11316 a_band->band = NL80211_BAND_5GHZ;
11317 a_band->n_channels = geo->a_channels;
11318 a_band->channels = kzalloc_objs(struct ieee80211_channel,
11319 geo->a_channels);
11320 if (!a_band->channels) {
11321 rc = -ENOMEM;
11322 goto out;
11323 }
11324 /* translate geo->a to a_band.channels */
11325 for (i = 0; i < geo->a_channels; i++) {
11326 a_band->channels[i].band = NL80211_BAND_5GHZ;
11327 a_band->channels[i].center_freq = geo->a[i].freq;
11328 a_band->channels[i].hw_value = geo->a[i].channel;
11329 a_band->channels[i].max_power = geo->a[i].max_power;
11330 if (geo->a[i].flags & LIBIPW_CH_PASSIVE_ONLY)
11331 a_band->channels[i].flags |=
11332 IEEE80211_CHAN_NO_IR;
11333 if (geo->a[i].flags & LIBIPW_CH_NO_IBSS)
11334 a_band->channels[i].flags |=
11335 IEEE80211_CHAN_NO_IR;
11336 if (geo->a[i].flags & LIBIPW_CH_RADAR_DETECT)
11337 a_band->channels[i].flags |=
11338 IEEE80211_CHAN_RADAR;
11339 /* No equivalent for LIBIPW_CH_80211H_RULES,
11340 LIBIPW_CH_UNIFORM_SPREADING, or
11341 LIBIPW_CH_B_ONLY... */
11342 }
11343 /* point at bitrate info */
11344 a_band->bitrates = ipw2200_a_rates;
11345 a_band->n_bitrates = ipw2200_num_a_rates;
11346
11347 wdev->wiphy->bands[NL80211_BAND_5GHZ] = a_band;
11348 }
11349
11350 wdev->wiphy->cipher_suites = ipw_cipher_suites;
11351 wdev->wiphy->n_cipher_suites = ARRAY_SIZE(ipw_cipher_suites);
11352
11353 set_wiphy_dev(wdev->wiphy, &priv->pci_dev->dev);
11354
11355 /* With that information in place, we can now register the wiphy... */
11356 rc = wiphy_register(wdev->wiphy);
11357 if (rc)
11358 goto out;
11359
11360 return 0;
11361 out:
11362 kfree(priv->ieee->a_band.channels);
11363 kfree(priv->ieee->bg_band.channels);
11364 return rc;
11365 }
11366
11367 /* PCI driver stuff */
11368 static const struct pci_device_id card_ids[] = {
11369 {PCI_VENDOR_ID_INTEL, 0x1043, 0x8086, 0x2701, 0, 0, 0},
11370 {PCI_VENDOR_ID_INTEL, 0x1043, 0x8086, 0x2702, 0, 0, 0},
11371 {PCI_VENDOR_ID_INTEL, 0x1043, 0x8086, 0x2711, 0, 0, 0},
11372 {PCI_VENDOR_ID_INTEL, 0x1043, 0x8086, 0x2712, 0, 0, 0},
11373 {PCI_VENDOR_ID_INTEL, 0x1043, 0x8086, 0x2721, 0, 0, 0},
11374 {PCI_VENDOR_ID_INTEL, 0x1043, 0x8086, 0x2722, 0, 0, 0},
11375 {PCI_VENDOR_ID_INTEL, 0x1043, 0x8086, 0x2731, 0, 0, 0},
11376 {PCI_VENDOR_ID_INTEL, 0x1043, 0x8086, 0x2732, 0, 0, 0},
11377 {PCI_VENDOR_ID_INTEL, 0x1043, 0x8086, 0x2741, 0, 0, 0},
11378 {PCI_VENDOR_ID_INTEL, 0x1043, 0x103c, 0x2741, 0, 0, 0},
11379 {PCI_VENDOR_ID_INTEL, 0x1043, 0x8086, 0x2742, 0, 0, 0},
11380 {PCI_VENDOR_ID_INTEL, 0x1043, 0x8086, 0x2751, 0, 0, 0},
11381 {PCI_VENDOR_ID_INTEL, 0x1043, 0x8086, 0x2752, 0, 0, 0},
11382 {PCI_VENDOR_ID_INTEL, 0x1043, 0x8086, 0x2753, 0, 0, 0},
11383 {PCI_VENDOR_ID_INTEL, 0x1043, 0x8086, 0x2754, 0, 0, 0},
11384 {PCI_VENDOR_ID_INTEL, 0x1043, 0x8086, 0x2761, 0, 0, 0},
11385 {PCI_VENDOR_ID_INTEL, 0x1043, 0x8086, 0x2762, 0, 0, 0},
11386 /*
11387 * This ID conflicts with i40e, but the devices can be differentiated
11388 * because i40e devices use PCI_CLASS_NETWORK_ETHERNET and ipw2200
11389 * devices use PCI_CLASS_NETWORK_OTHER.
11390 */
11391 {PCI_DEVICE(PCI_VENDOR_ID_INTEL, 0x104f),
11392 PCI_CLASS_NETWORK_OTHER << 8, 0xffff00, 0},
11393 {PCI_VDEVICE(INTEL, 0x4220), 0}, /* BG */
11394 {PCI_VDEVICE(INTEL, 0x4221), 0}, /* BG */
11395 {PCI_VDEVICE(INTEL, 0x4223), 0}, /* ABG */
11396 {PCI_VDEVICE(INTEL, 0x4224), 0}, /* ABG */
11397
11398 /* required last entry */
11399 {0,}
11400 };
11401
11402 MODULE_DEVICE_TABLE(pci, card_ids);
11403
11404 static struct attribute *ipw_sysfs_entries[] = {
11405 &dev_attr_rf_kill.attr,
11406 &dev_attr_direct_dword.attr,
11407 &dev_attr_indirect_byte.attr,
11408 &dev_attr_indirect_dword.attr,
11409 &dev_attr_mem_gpio_reg.attr,
11410 &dev_attr_command_event_reg.attr,
11411 &dev_attr_nic_type.attr,
11412 &dev_attr_status.attr,
11413 &dev_attr_cfg.attr,
11414 &dev_attr_error.attr,
11415 &dev_attr_event_log.attr,
11416 &dev_attr_cmd_log.attr,
11417 &dev_attr_eeprom_delay.attr,
11418 &dev_attr_ucode_version.attr,
11419 &dev_attr_rtc.attr,
11420 &dev_attr_scan_age.attr,
11421 &dev_attr_led.attr,
11422 &dev_attr_speed_scan.attr,
11423 &dev_attr_net_stats.attr,
11424 &dev_attr_channels.attr,
11425 #ifdef CONFIG_IPW2200_PROMISCUOUS
11426 &dev_attr_rtap_iface.attr,
11427 &dev_attr_rtap_filter.attr,
11428 #endif
11429 NULL
11430 };
11431
11432 static const struct attribute_group ipw_attribute_group = {
11433 .name = NULL, /* put in device directory */
11434 .attrs = ipw_sysfs_entries,
11435 };
11436
11437 #ifdef CONFIG_IPW2200_PROMISCUOUS
ipw_prom_open(struct net_device * dev)11438 static int ipw_prom_open(struct net_device *dev)
11439 {
11440 struct ipw_prom_priv *prom_priv = libipw_priv(dev);
11441 struct ipw_priv *priv = prom_priv->priv;
11442
11443 IPW_DEBUG_INFO("prom dev->open\n");
11444 netif_carrier_off(dev);
11445
11446 if (priv->ieee->iw_mode != IW_MODE_MONITOR) {
11447 priv->sys_config.accept_all_data_frames = 1;
11448 priv->sys_config.accept_non_directed_frames = 1;
11449 priv->sys_config.accept_all_mgmt_bcpr = 1;
11450 priv->sys_config.accept_all_mgmt_frames = 1;
11451
11452 ipw_send_system_config(priv);
11453 }
11454
11455 return 0;
11456 }
11457
ipw_prom_stop(struct net_device * dev)11458 static int ipw_prom_stop(struct net_device *dev)
11459 {
11460 struct ipw_prom_priv *prom_priv = libipw_priv(dev);
11461 struct ipw_priv *priv = prom_priv->priv;
11462
11463 IPW_DEBUG_INFO("prom dev->stop\n");
11464
11465 if (priv->ieee->iw_mode != IW_MODE_MONITOR) {
11466 priv->sys_config.accept_all_data_frames = 0;
11467 priv->sys_config.accept_non_directed_frames = 0;
11468 priv->sys_config.accept_all_mgmt_bcpr = 0;
11469 priv->sys_config.accept_all_mgmt_frames = 0;
11470
11471 ipw_send_system_config(priv);
11472 }
11473
11474 return 0;
11475 }
11476
ipw_prom_hard_start_xmit(struct sk_buff * skb,struct net_device * dev)11477 static netdev_tx_t ipw_prom_hard_start_xmit(struct sk_buff *skb,
11478 struct net_device *dev)
11479 {
11480 IPW_DEBUG_INFO("prom dev->xmit\n");
11481 dev_kfree_skb(skb);
11482 return NETDEV_TX_OK;
11483 }
11484
11485 static const struct net_device_ops ipw_prom_netdev_ops = {
11486 .ndo_open = ipw_prom_open,
11487 .ndo_stop = ipw_prom_stop,
11488 .ndo_start_xmit = ipw_prom_hard_start_xmit,
11489 .ndo_set_mac_address = eth_mac_addr,
11490 .ndo_validate_addr = eth_validate_addr,
11491 };
11492
ipw_prom_alloc(struct ipw_priv * priv)11493 static int ipw_prom_alloc(struct ipw_priv *priv)
11494 {
11495 int rc = 0;
11496
11497 if (priv->prom_net_dev)
11498 return -EPERM;
11499
11500 priv->prom_net_dev = alloc_libipw(sizeof(struct ipw_prom_priv), 1);
11501 if (priv->prom_net_dev == NULL)
11502 return -ENOMEM;
11503
11504 priv->prom_priv = libipw_priv(priv->prom_net_dev);
11505 priv->prom_priv->ieee = netdev_priv(priv->prom_net_dev);
11506 priv->prom_priv->priv = priv;
11507
11508 strcpy(priv->prom_net_dev->name, "rtap%d");
11509 eth_hw_addr_set(priv->prom_net_dev, priv->mac_addr);
11510
11511 priv->prom_net_dev->type = ARPHRD_IEEE80211_RADIOTAP;
11512 priv->prom_net_dev->netdev_ops = &ipw_prom_netdev_ops;
11513
11514 priv->prom_net_dev->min_mtu = 68;
11515 priv->prom_net_dev->max_mtu = LIBIPW_DATA_LEN;
11516
11517 priv->prom_priv->ieee->iw_mode = IW_MODE_MONITOR;
11518 SET_NETDEV_DEV(priv->prom_net_dev, &priv->pci_dev->dev);
11519
11520 rc = register_netdev(priv->prom_net_dev);
11521 if (rc) {
11522 free_libipw(priv->prom_net_dev, 1);
11523 priv->prom_net_dev = NULL;
11524 return rc;
11525 }
11526
11527 return 0;
11528 }
11529
ipw_prom_free(struct ipw_priv * priv)11530 static void ipw_prom_free(struct ipw_priv *priv)
11531 {
11532 if (!priv->prom_net_dev)
11533 return;
11534
11535 unregister_netdev(priv->prom_net_dev);
11536 free_libipw(priv->prom_net_dev, 1);
11537
11538 priv->prom_net_dev = NULL;
11539 }
11540
11541 #endif
11542
11543 static const struct net_device_ops ipw_netdev_ops = {
11544 .ndo_open = ipw_net_open,
11545 .ndo_stop = ipw_net_stop,
11546 .ndo_set_rx_mode = ipw_net_set_multicast_list,
11547 .ndo_set_mac_address = ipw_net_set_mac_address,
11548 .ndo_start_xmit = libipw_xmit,
11549 .ndo_validate_addr = eth_validate_addr,
11550 };
11551
ipw_pci_probe(struct pci_dev * pdev,const struct pci_device_id * ent)11552 static int ipw_pci_probe(struct pci_dev *pdev,
11553 const struct pci_device_id *ent)
11554 {
11555 int err = 0;
11556 struct net_device *net_dev;
11557 void __iomem *base;
11558 u32 length, val;
11559 struct ipw_priv *priv;
11560 int i;
11561
11562 net_dev = alloc_libipw(sizeof(struct ipw_priv), 0);
11563 if (net_dev == NULL) {
11564 err = -ENOMEM;
11565 goto out;
11566 }
11567
11568 priv = libipw_priv(net_dev);
11569 priv->ieee = netdev_priv(net_dev);
11570
11571 priv->net_dev = net_dev;
11572 priv->pci_dev = pdev;
11573 ipw_debug_level = debug;
11574 spin_lock_init(&priv->irq_lock);
11575 spin_lock_init(&priv->lock);
11576 for (i = 0; i < IPW_IBSS_MAC_HASH_SIZE; i++)
11577 INIT_LIST_HEAD(&priv->ibss_mac_hash[i]);
11578
11579 mutex_init(&priv->mutex);
11580 if (pci_enable_device(pdev)) {
11581 err = -ENODEV;
11582 goto out_free_libipw;
11583 }
11584
11585 pci_set_master(pdev);
11586
11587 err = dma_set_mask(&pdev->dev, DMA_BIT_MASK(32));
11588 if (!err)
11589 err = dma_set_coherent_mask(&pdev->dev, DMA_BIT_MASK(32));
11590 if (err) {
11591 printk(KERN_WARNING DRV_NAME ": No suitable DMA available.\n");
11592 goto out_pci_disable_device;
11593 }
11594
11595 pci_set_drvdata(pdev, priv);
11596
11597 err = pci_request_regions(pdev, DRV_NAME);
11598 if (err)
11599 goto out_pci_disable_device;
11600
11601 /* We disable the RETRY_TIMEOUT register (0x41) to keep
11602 * PCI Tx retries from interfering with C3 CPU state */
11603 pci_read_config_dword(pdev, 0x40, &val);
11604 if ((val & 0x0000ff00) != 0)
11605 pci_write_config_dword(pdev, 0x40, val & 0xffff00ff);
11606
11607 length = pci_resource_len(pdev, 0);
11608 priv->hw_len = length;
11609
11610 base = pci_ioremap_bar(pdev, 0);
11611 if (!base) {
11612 err = -ENODEV;
11613 goto out_pci_release_regions;
11614 }
11615
11616 priv->hw_base = base;
11617 IPW_DEBUG_INFO("pci_resource_len = 0x%08x\n", length);
11618 IPW_DEBUG_INFO("pci_resource_base = %p\n", base);
11619
11620 ipw_setup_deferred_work(priv);
11621
11622 ipw_sw_reset(priv, 1);
11623
11624 err = request_irq(pdev->irq, ipw_isr, IRQF_SHARED, DRV_NAME, priv);
11625 if (err) {
11626 IPW_ERROR("Error allocating IRQ %d\n", pdev->irq);
11627 goto out_iounmap;
11628 }
11629
11630 SET_NETDEV_DEV(net_dev, &pdev->dev);
11631
11632 mutex_lock(&priv->mutex);
11633
11634 priv->ieee->hard_start_xmit = ipw_net_hard_start_xmit;
11635 priv->ieee->set_security = shim__set_security;
11636 priv->ieee->is_queue_full = ipw_net_is_queue_full;
11637
11638 #ifdef CONFIG_IPW2200_QOS
11639 priv->ieee->is_qos_active = ipw_is_qos_active;
11640 priv->ieee->handle_probe_response = ipw_handle_beacon;
11641 priv->ieee->handle_beacon = ipw_handle_probe_response;
11642 priv->ieee->handle_assoc_response = ipw_handle_assoc_response;
11643 #endif /* CONFIG_IPW2200_QOS */
11644
11645 priv->ieee->perfect_rssi = -20;
11646 priv->ieee->worst_rssi = -85;
11647
11648 net_dev->netdev_ops = &ipw_netdev_ops;
11649 priv->ieee->spy_enabled = true;
11650 net_dev->wireless_handlers = &ipw_wx_handler_def;
11651 net_dev->ethtool_ops = &ipw_ethtool_ops;
11652
11653 net_dev->min_mtu = 68;
11654 net_dev->max_mtu = LIBIPW_DATA_LEN;
11655
11656 err = sysfs_create_group(&pdev->dev.kobj, &ipw_attribute_group);
11657 if (err) {
11658 IPW_ERROR("failed to create sysfs device attributes\n");
11659 mutex_unlock(&priv->mutex);
11660 goto out_release_irq;
11661 }
11662
11663 if (ipw_up(priv)) {
11664 mutex_unlock(&priv->mutex);
11665 err = -EIO;
11666 goto out_remove_sysfs;
11667 }
11668
11669 mutex_unlock(&priv->mutex);
11670
11671 err = ipw_wdev_init(net_dev);
11672 if (err) {
11673 IPW_ERROR("failed to register wireless device\n");
11674 goto out_remove_sysfs;
11675 }
11676
11677 err = register_netdev(net_dev);
11678 if (err) {
11679 IPW_ERROR("failed to register network device\n");
11680 goto out_unregister_wiphy;
11681 }
11682
11683 #ifdef CONFIG_IPW2200_PROMISCUOUS
11684 if (rtap_iface) {
11685 err = ipw_prom_alloc(priv);
11686 if (err) {
11687 IPW_ERROR("Failed to register promiscuous network "
11688 "device (error %d).\n", err);
11689 unregister_netdev(priv->net_dev);
11690 goto out_unregister_wiphy;
11691 }
11692 }
11693 #endif
11694
11695 printk(KERN_INFO DRV_NAME ": Detected geography %s (%d 802.11bg "
11696 "channels, %d 802.11a channels)\n",
11697 priv->ieee->geo.name, priv->ieee->geo.bg_channels,
11698 priv->ieee->geo.a_channels);
11699
11700 return 0;
11701
11702 out_unregister_wiphy:
11703 wiphy_unregister(priv->ieee->wdev.wiphy);
11704 kfree(priv->ieee->a_band.channels);
11705 kfree(priv->ieee->bg_band.channels);
11706 out_remove_sysfs:
11707 sysfs_remove_group(&pdev->dev.kobj, &ipw_attribute_group);
11708 out_release_irq:
11709 free_irq(pdev->irq, priv);
11710 out_iounmap:
11711 iounmap(priv->hw_base);
11712 out_pci_release_regions:
11713 pci_release_regions(pdev);
11714 out_pci_disable_device:
11715 pci_disable_device(pdev);
11716 out_free_libipw:
11717 free_libipw(priv->net_dev, 0);
11718 out:
11719 return err;
11720 }
11721
ipw_pci_remove(struct pci_dev * pdev)11722 static void ipw_pci_remove(struct pci_dev *pdev)
11723 {
11724 struct ipw_priv *priv = pci_get_drvdata(pdev);
11725 struct list_head *p, *q;
11726 int i;
11727
11728 if (!priv)
11729 return;
11730
11731 mutex_lock(&priv->mutex);
11732
11733 priv->status |= STATUS_EXIT_PENDING;
11734 ipw_down(priv);
11735 sysfs_remove_group(&pdev->dev.kobj, &ipw_attribute_group);
11736
11737 mutex_unlock(&priv->mutex);
11738
11739 unregister_netdev(priv->net_dev);
11740
11741 if (priv->rxq) {
11742 ipw_rx_queue_free(priv, priv->rxq);
11743 priv->rxq = NULL;
11744 }
11745 ipw_tx_queue_free(priv);
11746
11747 if (priv->cmdlog) {
11748 kfree(priv->cmdlog);
11749 priv->cmdlog = NULL;
11750 }
11751
11752 /* make sure all works are inactive */
11753 cancel_delayed_work_sync(&priv->adhoc_check);
11754 cancel_work_sync(&priv->associate);
11755 cancel_work_sync(&priv->disassociate);
11756 cancel_work_sync(&priv->system_config);
11757 cancel_work_sync(&priv->rx_replenish);
11758 cancel_work_sync(&priv->adapter_restart);
11759 cancel_delayed_work_sync(&priv->rf_kill);
11760 cancel_work_sync(&priv->up);
11761 cancel_work_sync(&priv->down);
11762 cancel_delayed_work_sync(&priv->request_scan);
11763 cancel_delayed_work_sync(&priv->request_direct_scan);
11764 cancel_delayed_work_sync(&priv->request_passive_scan);
11765 cancel_delayed_work_sync(&priv->scan_event);
11766 cancel_delayed_work_sync(&priv->gather_stats);
11767 cancel_work_sync(&priv->abort_scan);
11768 cancel_work_sync(&priv->roam);
11769 cancel_delayed_work_sync(&priv->scan_check);
11770 cancel_work_sync(&priv->link_up);
11771 cancel_work_sync(&priv->link_down);
11772 cancel_delayed_work_sync(&priv->led_link_on);
11773 cancel_delayed_work_sync(&priv->led_link_off);
11774 cancel_delayed_work_sync(&priv->led_act_off);
11775 cancel_work_sync(&priv->merge_networks);
11776
11777 /* Free MAC hash list for ADHOC */
11778 for (i = 0; i < IPW_IBSS_MAC_HASH_SIZE; i++) {
11779 list_for_each_safe(p, q, &priv->ibss_mac_hash[i]) {
11780 list_del(p);
11781 kfree(list_entry(p, struct ipw_ibss_seq, list));
11782 }
11783 }
11784
11785 kfree(priv->error);
11786 priv->error = NULL;
11787
11788 #ifdef CONFIG_IPW2200_PROMISCUOUS
11789 ipw_prom_free(priv);
11790 #endif
11791
11792 free_irq(pdev->irq, priv);
11793 iounmap(priv->hw_base);
11794 pci_release_regions(pdev);
11795 pci_disable_device(pdev);
11796 /* wiphy_unregister needs to be here, before free_libipw */
11797 wiphy_unregister(priv->ieee->wdev.wiphy);
11798 kfree(priv->ieee->a_band.channels);
11799 kfree(priv->ieee->bg_band.channels);
11800 free_libipw(priv->net_dev, 0);
11801 free_firmware();
11802 }
11803
ipw_pci_suspend(struct device * dev_d)11804 static int __maybe_unused ipw_pci_suspend(struct device *dev_d)
11805 {
11806 struct ipw_priv *priv = dev_get_drvdata(dev_d);
11807 struct net_device *dev = priv->net_dev;
11808
11809 printk(KERN_INFO "%s: Going into suspend...\n", dev->name);
11810
11811 /* Take down the device; powers it off, etc. */
11812 ipw_down(priv);
11813
11814 /* Remove the PRESENT state of the device */
11815 netif_device_detach(dev);
11816
11817 priv->suspend_at = ktime_get_boottime_seconds();
11818
11819 return 0;
11820 }
11821
ipw_pci_resume(struct device * dev_d)11822 static int __maybe_unused ipw_pci_resume(struct device *dev_d)
11823 {
11824 struct pci_dev *pdev = to_pci_dev(dev_d);
11825 struct ipw_priv *priv = pci_get_drvdata(pdev);
11826 struct net_device *dev = priv->net_dev;
11827 u32 val;
11828
11829 printk(KERN_INFO "%s: Coming out of suspend...\n", dev->name);
11830
11831 /*
11832 * Suspend/Resume resets the PCI configuration space, so we have to
11833 * re-disable the RETRY_TIMEOUT register (0x41) to keep PCI Tx retries
11834 * from interfering with C3 CPU state. pci_restore_state won't help
11835 * here since it only restores the first 64 bytes pci config header.
11836 */
11837 pci_read_config_dword(pdev, 0x40, &val);
11838 if ((val & 0x0000ff00) != 0)
11839 pci_write_config_dword(pdev, 0x40, val & 0xffff00ff);
11840
11841 /* Set the device back into the PRESENT state; this will also wake
11842 * the queue of needed */
11843 netif_device_attach(dev);
11844
11845 priv->suspend_time = ktime_get_boottime_seconds() - priv->suspend_at;
11846
11847 /* Bring the device back up */
11848 schedule_work(&priv->up);
11849
11850 return 0;
11851 }
11852
ipw_pci_shutdown(struct pci_dev * pdev)11853 static void ipw_pci_shutdown(struct pci_dev *pdev)
11854 {
11855 struct ipw_priv *priv = pci_get_drvdata(pdev);
11856
11857 /* Take down the device; powers it off, etc. */
11858 ipw_down(priv);
11859
11860 pci_disable_device(pdev);
11861 }
11862
11863 static SIMPLE_DEV_PM_OPS(ipw_pci_pm_ops, ipw_pci_suspend, ipw_pci_resume);
11864
11865 /* driver initialization stuff */
11866 static struct pci_driver ipw_driver = {
11867 .name = DRV_NAME,
11868 .id_table = card_ids,
11869 .probe = ipw_pci_probe,
11870 .remove = ipw_pci_remove,
11871 .driver.pm = &ipw_pci_pm_ops,
11872 .shutdown = ipw_pci_shutdown,
11873 };
11874
ipw_init(void)11875 static int __init ipw_init(void)
11876 {
11877 int ret;
11878
11879 printk(KERN_INFO DRV_NAME ": " DRV_DESCRIPTION ", " DRV_VERSION "\n");
11880 printk(KERN_INFO DRV_NAME ": " DRV_COPYRIGHT "\n");
11881
11882 ret = pci_register_driver(&ipw_driver);
11883 if (ret) {
11884 IPW_ERROR("Unable to initialize PCI module\n");
11885 return ret;
11886 }
11887
11888 ret = driver_create_file(&ipw_driver.driver, &driver_attr_debug_level);
11889 if (ret) {
11890 IPW_ERROR("Unable to create driver sysfs file\n");
11891 pci_unregister_driver(&ipw_driver);
11892 return ret;
11893 }
11894
11895 return ret;
11896 }
11897
ipw_exit(void)11898 static void __exit ipw_exit(void)
11899 {
11900 driver_remove_file(&ipw_driver.driver, &driver_attr_debug_level);
11901 pci_unregister_driver(&ipw_driver);
11902 }
11903
11904 module_param(disable, int, 0444);
11905 MODULE_PARM_DESC(disable, "manually disable the radio (default 0 [radio on])");
11906
11907 module_param(associate, int, 0444);
11908 MODULE_PARM_DESC(associate, "auto associate when scanning (default off)");
11909
11910 module_param(auto_create, int, 0444);
11911 MODULE_PARM_DESC(auto_create, "auto create adhoc network (default on)");
11912
11913 module_param_named(led, led_support, int, 0444);
11914 MODULE_PARM_DESC(led, "enable led control on some systems (default 1 on)");
11915
11916 module_param(debug, int, 0444);
11917 MODULE_PARM_DESC(debug, "debug output mask");
11918
11919 module_param_named(channel, default_channel, int, 0444);
11920 MODULE_PARM_DESC(channel, "channel to limit associate to (default 0 [ANY])");
11921
11922 #ifdef CONFIG_IPW2200_PROMISCUOUS
11923 module_param(rtap_iface, int, 0444);
11924 MODULE_PARM_DESC(rtap_iface, "create the rtap interface (1 - create, default 0)");
11925 #endif
11926
11927 #ifdef CONFIG_IPW2200_QOS
11928 module_param(qos_enable, int, 0444);
11929 MODULE_PARM_DESC(qos_enable, "enable all QoS functionalities");
11930
11931 module_param(qos_burst_enable, int, 0444);
11932 MODULE_PARM_DESC(qos_burst_enable, "enable QoS burst mode");
11933
11934 module_param(qos_no_ack_mask, int, 0444);
11935 MODULE_PARM_DESC(qos_no_ack_mask, "mask Tx_Queue to no ack");
11936
11937 module_param(burst_duration_CCK, int, 0444);
11938 MODULE_PARM_DESC(burst_duration_CCK, "set CCK burst value");
11939
11940 module_param(burst_duration_OFDM, int, 0444);
11941 MODULE_PARM_DESC(burst_duration_OFDM, "set OFDM burst value");
11942 #endif /* CONFIG_IPW2200_QOS */
11943
11944 #ifdef CONFIG_IPW2200_MONITOR
11945 module_param_named(mode, network_mode, int, 0444);
11946 MODULE_PARM_DESC(mode, "network mode (0=BSS,1=IBSS,2=Monitor)");
11947 #else
11948 module_param_named(mode, network_mode, int, 0444);
11949 MODULE_PARM_DESC(mode, "network mode (0=BSS,1=IBSS)");
11950 #endif
11951
11952 module_param(bt_coexist, int, 0444);
11953 MODULE_PARM_DESC(bt_coexist, "enable bluetooth coexistence (default off)");
11954
11955 module_param(hwcrypto, int, 0444);
11956 MODULE_PARM_DESC(hwcrypto, "enable hardware crypto (default off)");
11957
11958 module_param(cmdlog, int, 0444);
11959 MODULE_PARM_DESC(cmdlog,
11960 "allocate a ring buffer for logging firmware commands");
11961
11962 module_param(roaming, int, 0444);
11963 MODULE_PARM_DESC(roaming, "enable roaming support (default on)");
11964
11965 module_param(antenna, int, 0444);
11966 MODULE_PARM_DESC(antenna, "select antenna 1=Main, 3=Aux, default 0 [both], 2=slow_diversity (choose the one with lower background noise)");
11967
11968 module_exit(ipw_exit);
11969 module_init(ipw_init);
11970