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1 /*
2         Copyright (C) 2004 - 2008 rt2x00 SourceForge Project
3         <http://rt2x00.serialmonkey.com>
4
5         This program is free software; you can redistribute it and/or modify
6         it under the terms of the GNU General Public License as published by
7         the Free Software Foundation; either version 2 of the License, or
8         (at your option) any later version.
9
10         This program is distributed in the hope that it will be useful,
11         but WITHOUT ANY WARRANTY; without even the implied warranty of
12         MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
13         GNU General Public License for more details.
14
15         You should have received a copy of the GNU General Public License
16         along with this program; if not, write to the
17         Free Software Foundation, Inc.,
18         59 Temple Place - Suite 330, Boston, MA 02111-1307, USA.
19  */
20
21 /*
22         Module: rt2500usb
23         Abstract: rt2500usb device specific routines.
24         Supported chipsets: RT2570.
25  */
26
27 #include <linux/delay.h>
28 #include <linux/etherdevice.h>
29 #include <linux/init.h>
30 #include <linux/kernel.h>
31 #include <linux/module.h>
32 #include <linux/usb.h>
33
34 #include "rt2x00.h"
35 #include "rt2x00usb.h"
36 #include "rt2500usb.h"
37
38 /*
39  * Register access.
40  * All access to the CSR registers will go through the methods
41  * rt2500usb_register_read and rt2500usb_register_write.
42  * BBP and RF register require indirect register access,
43  * and use the CSR registers BBPCSR and RFCSR to achieve this.
44  * These indirect registers work with busy bits,
45  * and we will try maximal REGISTER_BUSY_COUNT times to access
46  * the register while taking a REGISTER_BUSY_DELAY us delay
47  * between each attampt. When the busy bit is still set at that time,
48  * the access attempt is considered to have failed,
49  * and we will print an error.
50  * If the usb_cache_mutex is already held then the _lock variants must
51  * be used instead.
52  */
53 static inline void rt2500usb_register_read(struct rt2x00_dev *rt2x00dev,
54                                            const unsigned int offset,
55                                            u16 *value)
56 {
57         __le16 reg;
58         rt2x00usb_vendor_request_buff(rt2x00dev, USB_MULTI_READ,
59                                       USB_VENDOR_REQUEST_IN, offset,
60                                       &reg, sizeof(u16), REGISTER_TIMEOUT);
61         *value = le16_to_cpu(reg);
62 }
63
64 static inline void rt2500usb_register_read_lock(struct rt2x00_dev *rt2x00dev,
65                                                 const unsigned int offset,
66                                                 u16 *value)
67 {
68         __le16 reg;
69         rt2x00usb_vendor_req_buff_lock(rt2x00dev, USB_MULTI_READ,
70                                        USB_VENDOR_REQUEST_IN, offset,
71                                        &reg, sizeof(u16), REGISTER_TIMEOUT);
72         *value = le16_to_cpu(reg);
73 }
74
75 static inline void rt2500usb_register_multiread(struct rt2x00_dev *rt2x00dev,
76                                                 const unsigned int offset,
77                                                 void *value, const u16 length)
78 {
79         int timeout = REGISTER_TIMEOUT * (length / sizeof(u16));
80         rt2x00usb_vendor_request_buff(rt2x00dev, USB_MULTI_READ,
81                                       USB_VENDOR_REQUEST_IN, offset,
82                                       value, length, timeout);
83 }
84
85 static inline void rt2500usb_register_write(struct rt2x00_dev *rt2x00dev,
86                                             const unsigned int offset,
87                                             u16 value)
88 {
89         __le16 reg = cpu_to_le16(value);
90         rt2x00usb_vendor_request_buff(rt2x00dev, USB_MULTI_WRITE,
91                                       USB_VENDOR_REQUEST_OUT, offset,
92                                       &reg, sizeof(u16), REGISTER_TIMEOUT);
93 }
94
95 static inline void rt2500usb_register_write_lock(struct rt2x00_dev *rt2x00dev,
96                                                  const unsigned int offset,
97                                                  u16 value)
98 {
99         __le16 reg = cpu_to_le16(value);
100         rt2x00usb_vendor_req_buff_lock(rt2x00dev, USB_MULTI_WRITE,
101                                        USB_VENDOR_REQUEST_OUT, offset,
102                                        &reg, sizeof(u16), REGISTER_TIMEOUT);
103 }
104
105 static inline void rt2500usb_register_multiwrite(struct rt2x00_dev *rt2x00dev,
106                                                  const unsigned int offset,
107                                                  void *value, const u16 length)
108 {
109         int timeout = REGISTER_TIMEOUT * (length / sizeof(u16));
110         rt2x00usb_vendor_request_buff(rt2x00dev, USB_MULTI_WRITE,
111                                       USB_VENDOR_REQUEST_OUT, offset,
112                                       value, length, timeout);
113 }
114
115 static u16 rt2500usb_bbp_check(struct rt2x00_dev *rt2x00dev)
116 {
117         u16 reg;
118         unsigned int i;
119
120         for (i = 0; i < REGISTER_BUSY_COUNT; i++) {
121                 rt2500usb_register_read_lock(rt2x00dev, PHY_CSR8, &reg);
122                 if (!rt2x00_get_field16(reg, PHY_CSR8_BUSY))
123                         break;
124                 udelay(REGISTER_BUSY_DELAY);
125         }
126
127         return reg;
128 }
129
130 static void rt2500usb_bbp_write(struct rt2x00_dev *rt2x00dev,
131                                 const unsigned int word, const u8 value)
132 {
133         u16 reg;
134
135         mutex_lock(&rt2x00dev->usb_cache_mutex);
136
137         /*
138          * Wait until the BBP becomes ready.
139          */
140         reg = rt2500usb_bbp_check(rt2x00dev);
141         if (rt2x00_get_field16(reg, PHY_CSR8_BUSY)) {
142                 ERROR(rt2x00dev, "PHY_CSR8 register busy. Write failed.\n");
143                 mutex_unlock(&rt2x00dev->usb_cache_mutex);
144                 return;
145         }
146
147         /*
148          * Write the data into the BBP.
149          */
150         reg = 0;
151         rt2x00_set_field16(&reg, PHY_CSR7_DATA, value);
152         rt2x00_set_field16(&reg, PHY_CSR7_REG_ID, word);
153         rt2x00_set_field16(&reg, PHY_CSR7_READ_CONTROL, 0);
154
155         rt2500usb_register_write_lock(rt2x00dev, PHY_CSR7, reg);
156
157         mutex_unlock(&rt2x00dev->usb_cache_mutex);
158 }
159
160 static void rt2500usb_bbp_read(struct rt2x00_dev *rt2x00dev,
161                                const unsigned int word, u8 *value)
162 {
163         u16 reg;
164
165         mutex_lock(&rt2x00dev->usb_cache_mutex);
166
167         /*
168          * Wait until the BBP becomes ready.
169          */
170         reg = rt2500usb_bbp_check(rt2x00dev);
171         if (rt2x00_get_field16(reg, PHY_CSR8_BUSY)) {
172                 ERROR(rt2x00dev, "PHY_CSR8 register busy. Read failed.\n");
173                 return;
174         }
175
176         /*
177          * Write the request into the BBP.
178          */
179         reg = 0;
180         rt2x00_set_field16(&reg, PHY_CSR7_REG_ID, word);
181         rt2x00_set_field16(&reg, PHY_CSR7_READ_CONTROL, 1);
182
183         rt2500usb_register_write_lock(rt2x00dev, PHY_CSR7, reg);
184
185         /*
186          * Wait until the BBP becomes ready.
187          */
188         reg = rt2500usb_bbp_check(rt2x00dev);
189         if (rt2x00_get_field16(reg, PHY_CSR8_BUSY)) {
190                 ERROR(rt2x00dev, "PHY_CSR8 register busy. Read failed.\n");
191                 *value = 0xff;
192                 mutex_unlock(&rt2x00dev->usb_cache_mutex);
193                 return;
194         }
195
196         rt2500usb_register_read_lock(rt2x00dev, PHY_CSR7, &reg);
197         *value = rt2x00_get_field16(reg, PHY_CSR7_DATA);
198
199         mutex_unlock(&rt2x00dev->usb_cache_mutex);
200 }
201
202 static void rt2500usb_rf_write(struct rt2x00_dev *rt2x00dev,
203                                const unsigned int word, const u32 value)
204 {
205         u16 reg;
206         unsigned int i;
207
208         if (!word)
209                 return;
210
211         mutex_lock(&rt2x00dev->usb_cache_mutex);
212
213         for (i = 0; i < REGISTER_BUSY_COUNT; i++) {
214                 rt2500usb_register_read_lock(rt2x00dev, PHY_CSR10, &reg);
215                 if (!rt2x00_get_field16(reg, PHY_CSR10_RF_BUSY))
216                         goto rf_write;
217                 udelay(REGISTER_BUSY_DELAY);
218         }
219
220         mutex_unlock(&rt2x00dev->usb_cache_mutex);
221         ERROR(rt2x00dev, "PHY_CSR10 register busy. Write failed.\n");
222         return;
223
224 rf_write:
225         reg = 0;
226         rt2x00_set_field16(&reg, PHY_CSR9_RF_VALUE, value);
227         rt2500usb_register_write_lock(rt2x00dev, PHY_CSR9, reg);
228
229         reg = 0;
230         rt2x00_set_field16(&reg, PHY_CSR10_RF_VALUE, value >> 16);
231         rt2x00_set_field16(&reg, PHY_CSR10_RF_NUMBER_OF_BITS, 20);
232         rt2x00_set_field16(&reg, PHY_CSR10_RF_IF_SELECT, 0);
233         rt2x00_set_field16(&reg, PHY_CSR10_RF_BUSY, 1);
234
235         rt2500usb_register_write_lock(rt2x00dev, PHY_CSR10, reg);
236         rt2x00_rf_write(rt2x00dev, word, value);
237
238         mutex_unlock(&rt2x00dev->usb_cache_mutex);
239 }
240
241 #ifdef CONFIG_RT2X00_LIB_DEBUGFS
242 #define CSR_OFFSET(__word)      ( CSR_REG_BASE + ((__word) * sizeof(u16)) )
243
244 static void rt2500usb_read_csr(struct rt2x00_dev *rt2x00dev,
245                                const unsigned int word, u32 *data)
246 {
247         rt2500usb_register_read(rt2x00dev, CSR_OFFSET(word), (u16 *) data);
248 }
249
250 static void rt2500usb_write_csr(struct rt2x00_dev *rt2x00dev,
251                                 const unsigned int word, u32 data)
252 {
253         rt2500usb_register_write(rt2x00dev, CSR_OFFSET(word), data);
254 }
255
256 static const struct rt2x00debug rt2500usb_rt2x00debug = {
257         .owner  = THIS_MODULE,
258         .csr    = {
259                 .read           = rt2500usb_read_csr,
260                 .write          = rt2500usb_write_csr,
261                 .word_size      = sizeof(u16),
262                 .word_count     = CSR_REG_SIZE / sizeof(u16),
263         },
264         .eeprom = {
265                 .read           = rt2x00_eeprom_read,
266                 .write          = rt2x00_eeprom_write,
267                 .word_size      = sizeof(u16),
268                 .word_count     = EEPROM_SIZE / sizeof(u16),
269         },
270         .bbp    = {
271                 .read           = rt2500usb_bbp_read,
272                 .write          = rt2500usb_bbp_write,
273                 .word_size      = sizeof(u8),
274                 .word_count     = BBP_SIZE / sizeof(u8),
275         },
276         .rf     = {
277                 .read           = rt2x00_rf_read,
278                 .write          = rt2500usb_rf_write,
279                 .word_size      = sizeof(u32),
280                 .word_count     = RF_SIZE / sizeof(u32),
281         },
282 };
283 #endif /* CONFIG_RT2X00_LIB_DEBUGFS */
284
285 #ifdef CONFIG_RT2500USB_LEDS
286 static void rt2500usb_led_brightness(struct led_classdev *led_cdev,
287                                      enum led_brightness brightness)
288 {
289         struct rt2x00_led *led =
290             container_of(led_cdev, struct rt2x00_led, led_dev);
291         unsigned int enabled = brightness != LED_OFF;
292         unsigned int activity =
293             led->rt2x00dev->led_flags & LED_SUPPORT_ACTIVITY;
294
295         if (in_atomic()) {
296                 NOTICE(led->rt2x00dev,
297                        "Ignoring LED brightness command for led %d\n",
298                        led->type);
299                 return;
300         }
301
302         if (led->type == LED_TYPE_RADIO || led->type == LED_TYPE_ASSOC) {
303                 rt2x00_set_field16(&led->rt2x00dev->led_mcu_reg,
304                                    MAC_CSR20_LINK, enabled);
305                 rt2x00_set_field16(&led->rt2x00dev->led_mcu_reg,
306                                    MAC_CSR20_ACTIVITY, enabled && activity);
307         }
308
309         rt2500usb_register_write(led->rt2x00dev, MAC_CSR20,
310                                  led->rt2x00dev->led_mcu_reg);
311 }
312 #else
313 #define rt2500usb_led_brightness        NULL
314 #endif /* CONFIG_RT2500USB_LEDS */
315
316 /*
317  * Configuration handlers.
318  */
319 static void rt2500usb_config_filter(struct rt2x00_dev *rt2x00dev,
320                                     const unsigned int filter_flags)
321 {
322         u16 reg;
323
324         /*
325          * Start configuration steps.
326          * Note that the version error will always be dropped
327          * and broadcast frames will always be accepted since
328          * there is no filter for it at this time.
329          */
330         rt2500usb_register_read(rt2x00dev, TXRX_CSR2, &reg);
331         rt2x00_set_field16(&reg, TXRX_CSR2_DROP_CRC,
332                            !(filter_flags & FIF_FCSFAIL));
333         rt2x00_set_field16(&reg, TXRX_CSR2_DROP_PHYSICAL,
334                            !(filter_flags & FIF_PLCPFAIL));
335         rt2x00_set_field16(&reg, TXRX_CSR2_DROP_CONTROL,
336                            !(filter_flags & FIF_CONTROL));
337         rt2x00_set_field16(&reg, TXRX_CSR2_DROP_NOT_TO_ME,
338                            !(filter_flags & FIF_PROMISC_IN_BSS));
339         rt2x00_set_field16(&reg, TXRX_CSR2_DROP_TODS,
340                            !(filter_flags & FIF_PROMISC_IN_BSS) &&
341                            !rt2x00dev->intf_ap_count);
342         rt2x00_set_field16(&reg, TXRX_CSR2_DROP_VERSION_ERROR, 1);
343         rt2x00_set_field16(&reg, TXRX_CSR2_DROP_MULTICAST,
344                            !(filter_flags & FIF_ALLMULTI));
345         rt2x00_set_field16(&reg, TXRX_CSR2_DROP_BROADCAST, 0);
346         rt2500usb_register_write(rt2x00dev, TXRX_CSR2, reg);
347 }
348
349 static void rt2500usb_config_intf(struct rt2x00_dev *rt2x00dev,
350                                   struct rt2x00_intf *intf,
351                                   struct rt2x00intf_conf *conf,
352                                   const unsigned int flags)
353 {
354         unsigned int bcn_preload;
355         u16 reg;
356
357         if (flags & CONFIG_UPDATE_TYPE) {
358                 /*
359                  * Enable beacon config
360                  */
361                 bcn_preload = PREAMBLE + get_duration(IEEE80211_HEADER, 20);
362                 rt2500usb_register_read(rt2x00dev, TXRX_CSR20, &reg);
363                 rt2x00_set_field16(&reg, TXRX_CSR20_OFFSET, bcn_preload >> 6);
364                 rt2x00_set_field16(&reg, TXRX_CSR20_BCN_EXPECT_WINDOW,
365                                    2 * (conf->type != IEEE80211_IF_TYPE_STA));
366                 rt2500usb_register_write(rt2x00dev, TXRX_CSR20, reg);
367
368                 /*
369                  * Enable synchronisation.
370                  */
371                 rt2500usb_register_read(rt2x00dev, TXRX_CSR18, &reg);
372                 rt2x00_set_field16(&reg, TXRX_CSR18_OFFSET, 0);
373                 rt2500usb_register_write(rt2x00dev, TXRX_CSR18, reg);
374
375                 rt2500usb_register_read(rt2x00dev, TXRX_CSR19, &reg);
376                 rt2x00_set_field16(&reg, TXRX_CSR19_TSF_COUNT, 1);
377                 rt2x00_set_field16(&reg, TXRX_CSR19_TSF_SYNC, conf->sync);
378                 rt2x00_set_field16(&reg, TXRX_CSR19_TBCN, 1);
379                 rt2500usb_register_write(rt2x00dev, TXRX_CSR19, reg);
380         }
381
382         if (flags & CONFIG_UPDATE_MAC)
383                 rt2500usb_register_multiwrite(rt2x00dev, MAC_CSR2, conf->mac,
384                                               (3 * sizeof(__le16)));
385
386         if (flags & CONFIG_UPDATE_BSSID)
387                 rt2500usb_register_multiwrite(rt2x00dev, MAC_CSR5, conf->bssid,
388                                               (3 * sizeof(__le16)));
389 }
390
391 static void rt2500usb_config_erp(struct rt2x00_dev *rt2x00dev,
392                                  struct rt2x00lib_erp *erp)
393 {
394         u16 reg;
395
396         rt2500usb_register_read(rt2x00dev, TXRX_CSR1, &reg);
397         rt2x00_set_field16(&reg, TXRX_CSR1_ACK_TIMEOUT, erp->ack_timeout);
398         rt2500usb_register_write(rt2x00dev, TXRX_CSR1, reg);
399
400         rt2500usb_register_read(rt2x00dev, TXRX_CSR10, &reg);
401         rt2x00_set_field16(&reg, TXRX_CSR10_AUTORESPOND_PREAMBLE,
402                            !!erp->short_preamble);
403         rt2500usb_register_write(rt2x00dev, TXRX_CSR10, reg);
404 }
405
406 static void rt2500usb_config_phymode(struct rt2x00_dev *rt2x00dev,
407                                      const int basic_rate_mask)
408 {
409         rt2500usb_register_write(rt2x00dev, TXRX_CSR11, basic_rate_mask);
410 }
411
412 static void rt2500usb_config_channel(struct rt2x00_dev *rt2x00dev,
413                                      struct rf_channel *rf, const int txpower)
414 {
415         /*
416          * Set TXpower.
417          */
418         rt2x00_set_field32(&rf->rf3, RF3_TXPOWER, TXPOWER_TO_DEV(txpower));
419
420         /*
421          * For RT2525E we should first set the channel to half band higher.
422          */
423         if (rt2x00_rf(&rt2x00dev->chip, RF2525E)) {
424                 static const u32 vals[] = {
425                         0x000008aa, 0x000008ae, 0x000008ae, 0x000008b2,
426                         0x000008b2, 0x000008b6, 0x000008b6, 0x000008ba,
427                         0x000008ba, 0x000008be, 0x000008b7, 0x00000902,
428                         0x00000902, 0x00000906
429                 };
430
431                 rt2500usb_rf_write(rt2x00dev, 2, vals[rf->channel - 1]);
432                 if (rf->rf4)
433                         rt2500usb_rf_write(rt2x00dev, 4, rf->rf4);
434         }
435
436         rt2500usb_rf_write(rt2x00dev, 1, rf->rf1);
437         rt2500usb_rf_write(rt2x00dev, 2, rf->rf2);
438         rt2500usb_rf_write(rt2x00dev, 3, rf->rf3);
439         if (rf->rf4)
440                 rt2500usb_rf_write(rt2x00dev, 4, rf->rf4);
441 }
442
443 static void rt2500usb_config_txpower(struct rt2x00_dev *rt2x00dev,
444                                      const int txpower)
445 {
446         u32 rf3;
447
448         rt2x00_rf_read(rt2x00dev, 3, &rf3);
449         rt2x00_set_field32(&rf3, RF3_TXPOWER, TXPOWER_TO_DEV(txpower));
450         rt2500usb_rf_write(rt2x00dev, 3, rf3);
451 }
452
453 static void rt2500usb_config_antenna(struct rt2x00_dev *rt2x00dev,
454                                      struct antenna_setup *ant)
455 {
456         u8 r2;
457         u8 r14;
458         u16 csr5;
459         u16 csr6;
460
461         /*
462          * We should never come here because rt2x00lib is supposed
463          * to catch this and send us the correct antenna explicitely.
464          */
465         BUG_ON(ant->rx == ANTENNA_SW_DIVERSITY ||
466                ant->tx == ANTENNA_SW_DIVERSITY);
467
468         rt2500usb_bbp_read(rt2x00dev, 2, &r2);
469         rt2500usb_bbp_read(rt2x00dev, 14, &r14);
470         rt2500usb_register_read(rt2x00dev, PHY_CSR5, &csr5);
471         rt2500usb_register_read(rt2x00dev, PHY_CSR6, &csr6);
472
473         /*
474          * Configure the TX antenna.
475          */
476         switch (ant->tx) {
477         case ANTENNA_HW_DIVERSITY:
478                 rt2x00_set_field8(&r2, BBP_R2_TX_ANTENNA, 1);
479                 rt2x00_set_field16(&csr5, PHY_CSR5_CCK, 1);
480                 rt2x00_set_field16(&csr6, PHY_CSR6_OFDM, 1);
481                 break;
482         case ANTENNA_A:
483                 rt2x00_set_field8(&r2, BBP_R2_TX_ANTENNA, 0);
484                 rt2x00_set_field16(&csr5, PHY_CSR5_CCK, 0);
485                 rt2x00_set_field16(&csr6, PHY_CSR6_OFDM, 0);
486                 break;
487         case ANTENNA_B:
488         default:
489                 rt2x00_set_field8(&r2, BBP_R2_TX_ANTENNA, 2);
490                 rt2x00_set_field16(&csr5, PHY_CSR5_CCK, 2);
491                 rt2x00_set_field16(&csr6, PHY_CSR6_OFDM, 2);
492                 break;
493         }
494
495         /*
496          * Configure the RX antenna.
497          */
498         switch (ant->rx) {
499         case ANTENNA_HW_DIVERSITY:
500                 rt2x00_set_field8(&r14, BBP_R14_RX_ANTENNA, 1);
501                 break;
502         case ANTENNA_A:
503                 rt2x00_set_field8(&r14, BBP_R14_RX_ANTENNA, 0);
504                 break;
505         case ANTENNA_B:
506         default:
507                 rt2x00_set_field8(&r14, BBP_R14_RX_ANTENNA, 2);
508                 break;
509         }
510
511         /*
512          * RT2525E and RT5222 need to flip TX I/Q
513          */
514         if (rt2x00_rf(&rt2x00dev->chip, RF2525E) ||
515             rt2x00_rf(&rt2x00dev->chip, RF5222)) {
516                 rt2x00_set_field8(&r2, BBP_R2_TX_IQ_FLIP, 1);
517                 rt2x00_set_field16(&csr5, PHY_CSR5_CCK_FLIP, 1);
518                 rt2x00_set_field16(&csr6, PHY_CSR6_OFDM_FLIP, 1);
519
520                 /*
521                  * RT2525E does not need RX I/Q Flip.
522                  */
523                 if (rt2x00_rf(&rt2x00dev->chip, RF2525E))
524                         rt2x00_set_field8(&r14, BBP_R14_RX_IQ_FLIP, 0);
525         } else {
526                 rt2x00_set_field16(&csr5, PHY_CSR5_CCK_FLIP, 0);
527                 rt2x00_set_field16(&csr6, PHY_CSR6_OFDM_FLIP, 0);
528         }
529
530         rt2500usb_bbp_write(rt2x00dev, 2, r2);
531         rt2500usb_bbp_write(rt2x00dev, 14, r14);
532         rt2500usb_register_write(rt2x00dev, PHY_CSR5, csr5);
533         rt2500usb_register_write(rt2x00dev, PHY_CSR6, csr6);
534 }
535
536 static void rt2500usb_config_duration(struct rt2x00_dev *rt2x00dev,
537                                       struct rt2x00lib_conf *libconf)
538 {
539         u16 reg;
540
541         rt2500usb_register_write(rt2x00dev, MAC_CSR10, libconf->slot_time);
542         rt2500usb_register_write(rt2x00dev, MAC_CSR11, libconf->sifs);
543         rt2500usb_register_write(rt2x00dev, MAC_CSR12, libconf->eifs);
544
545         rt2500usb_register_read(rt2x00dev, TXRX_CSR18, &reg);
546         rt2x00_set_field16(&reg, TXRX_CSR18_INTERVAL,
547                            libconf->conf->beacon_int * 4);
548         rt2500usb_register_write(rt2x00dev, TXRX_CSR18, reg);
549 }
550
551 static void rt2500usb_config(struct rt2x00_dev *rt2x00dev,
552                              struct rt2x00lib_conf *libconf,
553                              const unsigned int flags)
554 {
555         if (flags & CONFIG_UPDATE_PHYMODE)
556                 rt2500usb_config_phymode(rt2x00dev, libconf->basic_rates);
557         if (flags & CONFIG_UPDATE_CHANNEL)
558                 rt2500usb_config_channel(rt2x00dev, &libconf->rf,
559                                          libconf->conf->power_level);
560         if ((flags & CONFIG_UPDATE_TXPOWER) && !(flags & CONFIG_UPDATE_CHANNEL))
561                 rt2500usb_config_txpower(rt2x00dev,
562                                          libconf->conf->power_level);
563         if (flags & CONFIG_UPDATE_ANTENNA)
564                 rt2500usb_config_antenna(rt2x00dev, &libconf->ant);
565         if (flags & (CONFIG_UPDATE_SLOT_TIME | CONFIG_UPDATE_BEACON_INT))
566                 rt2500usb_config_duration(rt2x00dev, libconf);
567 }
568
569 /*
570  * Link tuning
571  */
572 static void rt2500usb_link_stats(struct rt2x00_dev *rt2x00dev,
573                                  struct link_qual *qual)
574 {
575         u16 reg;
576
577         /*
578          * Update FCS error count from register.
579          */
580         rt2500usb_register_read(rt2x00dev, STA_CSR0, &reg);
581         qual->rx_failed = rt2x00_get_field16(reg, STA_CSR0_FCS_ERROR);
582
583         /*
584          * Update False CCA count from register.
585          */
586         rt2500usb_register_read(rt2x00dev, STA_CSR3, &reg);
587         qual->false_cca = rt2x00_get_field16(reg, STA_CSR3_FALSE_CCA_ERROR);
588 }
589
590 static void rt2500usb_reset_tuner(struct rt2x00_dev *rt2x00dev)
591 {
592         u16 eeprom;
593         u16 value;
594
595         rt2x00_eeprom_read(rt2x00dev, EEPROM_BBPTUNE_R24, &eeprom);
596         value = rt2x00_get_field16(eeprom, EEPROM_BBPTUNE_R24_LOW);
597         rt2500usb_bbp_write(rt2x00dev, 24, value);
598
599         rt2x00_eeprom_read(rt2x00dev, EEPROM_BBPTUNE_R25, &eeprom);
600         value = rt2x00_get_field16(eeprom, EEPROM_BBPTUNE_R25_LOW);
601         rt2500usb_bbp_write(rt2x00dev, 25, value);
602
603         rt2x00_eeprom_read(rt2x00dev, EEPROM_BBPTUNE_R61, &eeprom);
604         value = rt2x00_get_field16(eeprom, EEPROM_BBPTUNE_R61_LOW);
605         rt2500usb_bbp_write(rt2x00dev, 61, value);
606
607         rt2x00_eeprom_read(rt2x00dev, EEPROM_BBPTUNE_VGC, &eeprom);
608         value = rt2x00_get_field16(eeprom, EEPROM_BBPTUNE_VGCUPPER);
609         rt2500usb_bbp_write(rt2x00dev, 17, value);
610
611         rt2x00dev->link.vgc_level = value;
612 }
613
614 static void rt2500usb_link_tuner(struct rt2x00_dev *rt2x00dev)
615 {
616         int rssi = rt2x00_get_link_rssi(&rt2x00dev->link);
617         u16 bbp_thresh;
618         u16 vgc_bound;
619         u16 sens;
620         u16 r24;
621         u16 r25;
622         u16 r61;
623         u16 r17_sens;
624         u8 r17;
625         u8 up_bound;
626         u8 low_bound;
627
628         /*
629          * Read current r17 value, as well as the sensitivity values
630          * for the r17 register.
631          */
632         rt2500usb_bbp_read(rt2x00dev, 17, &r17);
633         rt2x00_eeprom_read(rt2x00dev, EEPROM_BBPTUNE_R17, &r17_sens);
634
635         rt2x00_eeprom_read(rt2x00dev, EEPROM_BBPTUNE_VGC, &vgc_bound);
636         up_bound = rt2x00_get_field16(vgc_bound, EEPROM_BBPTUNE_VGCUPPER);
637         low_bound = rt2x00_get_field16(vgc_bound, EEPROM_BBPTUNE_VGCLOWER);
638
639         /*
640          * If we are not associated, we should go straight to the
641          * dynamic CCA tuning.
642          */
643         if (!rt2x00dev->intf_associated)
644                 goto dynamic_cca_tune;
645
646         /*
647          * Determine the BBP tuning threshold and correctly
648          * set BBP 24, 25 and 61.
649          */
650         rt2x00_eeprom_read(rt2x00dev, EEPROM_BBPTUNE, &bbp_thresh);
651         bbp_thresh = rt2x00_get_field16(bbp_thresh, EEPROM_BBPTUNE_THRESHOLD);
652
653         rt2x00_eeprom_read(rt2x00dev, EEPROM_BBPTUNE_R24, &r24);
654         rt2x00_eeprom_read(rt2x00dev, EEPROM_BBPTUNE_R25, &r25);
655         rt2x00_eeprom_read(rt2x00dev, EEPROM_BBPTUNE_R61, &r61);
656
657         if ((rssi + bbp_thresh) > 0) {
658                 r24 = rt2x00_get_field16(r24, EEPROM_BBPTUNE_R24_HIGH);
659                 r25 = rt2x00_get_field16(r25, EEPROM_BBPTUNE_R25_HIGH);
660                 r61 = rt2x00_get_field16(r61, EEPROM_BBPTUNE_R61_HIGH);
661         } else {
662                 r24 = rt2x00_get_field16(r24, EEPROM_BBPTUNE_R24_LOW);
663                 r25 = rt2x00_get_field16(r25, EEPROM_BBPTUNE_R25_LOW);
664                 r61 = rt2x00_get_field16(r61, EEPROM_BBPTUNE_R61_LOW);
665         }
666
667         rt2500usb_bbp_write(rt2x00dev, 24, r24);
668         rt2500usb_bbp_write(rt2x00dev, 25, r25);
669         rt2500usb_bbp_write(rt2x00dev, 61, r61);
670
671         /*
672          * A too low RSSI will cause too much false CCA which will
673          * then corrupt the R17 tuning. To remidy this the tuning should
674          * be stopped (While making sure the R17 value will not exceed limits)
675          */
676         if (rssi >= -40) {
677                 if (r17 != 0x60)
678                         rt2500usb_bbp_write(rt2x00dev, 17, 0x60);
679                 return;
680         }
681
682         /*
683          * Special big-R17 for short distance
684          */
685         if (rssi >= -58) {
686                 sens = rt2x00_get_field16(r17_sens, EEPROM_BBPTUNE_R17_LOW);
687                 if (r17 != sens)
688                         rt2500usb_bbp_write(rt2x00dev, 17, sens);
689                 return;
690         }
691
692         /*
693          * Special mid-R17 for middle distance
694          */
695         if (rssi >= -74) {
696                 sens = rt2x00_get_field16(r17_sens, EEPROM_BBPTUNE_R17_HIGH);
697                 if (r17 != sens)
698                         rt2500usb_bbp_write(rt2x00dev, 17, sens);
699                 return;
700         }
701
702         /*
703          * Leave short or middle distance condition, restore r17
704          * to the dynamic tuning range.
705          */
706         low_bound = 0x32;
707         if (rssi < -77)
708                 up_bound -= (-77 - rssi);
709
710         if (up_bound < low_bound)
711                 up_bound = low_bound;
712
713         if (r17 > up_bound) {
714                 rt2500usb_bbp_write(rt2x00dev, 17, up_bound);
715                 rt2x00dev->link.vgc_level = up_bound;
716                 return;
717         }
718
719 dynamic_cca_tune:
720
721         /*
722          * R17 is inside the dynamic tuning range,
723          * start tuning the link based on the false cca counter.
724          */
725         if (rt2x00dev->link.qual.false_cca > 512 && r17 < up_bound) {
726                 rt2500usb_bbp_write(rt2x00dev, 17, ++r17);
727                 rt2x00dev->link.vgc_level = r17;
728         } else if (rt2x00dev->link.qual.false_cca < 100 && r17 > low_bound) {
729                 rt2500usb_bbp_write(rt2x00dev, 17, --r17);
730                 rt2x00dev->link.vgc_level = r17;
731         }
732 }
733
734 /*
735  * Initialization functions.
736  */
737 static int rt2500usb_init_registers(struct rt2x00_dev *rt2x00dev)
738 {
739         u16 reg;
740
741         rt2x00usb_vendor_request_sw(rt2x00dev, USB_DEVICE_MODE, 0x0001,
742                                     USB_MODE_TEST, REGISTER_TIMEOUT);
743         rt2x00usb_vendor_request_sw(rt2x00dev, USB_SINGLE_WRITE, 0x0308,
744                                     0x00f0, REGISTER_TIMEOUT);
745
746         rt2500usb_register_read(rt2x00dev, TXRX_CSR2, &reg);
747         rt2x00_set_field16(&reg, TXRX_CSR2_DISABLE_RX, 1);
748         rt2500usb_register_write(rt2x00dev, TXRX_CSR2, reg);
749
750         rt2500usb_register_write(rt2x00dev, MAC_CSR13, 0x1111);
751         rt2500usb_register_write(rt2x00dev, MAC_CSR14, 0x1e11);
752
753         rt2500usb_register_read(rt2x00dev, MAC_CSR1, &reg);
754         rt2x00_set_field16(&reg, MAC_CSR1_SOFT_RESET, 1);
755         rt2x00_set_field16(&reg, MAC_CSR1_BBP_RESET, 1);
756         rt2x00_set_field16(&reg, MAC_CSR1_HOST_READY, 0);
757         rt2500usb_register_write(rt2x00dev, MAC_CSR1, reg);
758
759         rt2500usb_register_read(rt2x00dev, MAC_CSR1, &reg);
760         rt2x00_set_field16(&reg, MAC_CSR1_SOFT_RESET, 0);
761         rt2x00_set_field16(&reg, MAC_CSR1_BBP_RESET, 0);
762         rt2x00_set_field16(&reg, MAC_CSR1_HOST_READY, 0);
763         rt2500usb_register_write(rt2x00dev, MAC_CSR1, reg);
764
765         rt2500usb_register_read(rt2x00dev, MAC_CSR21, &reg);
766         rt2x00_set_field16(&reg, MAC_CSR21_ON_PERIOD, 70);
767         rt2x00_set_field16(&reg, MAC_CSR21_OFF_PERIOD, 30);
768         rt2500usb_register_write(rt2x00dev, MAC_CSR21, reg);
769
770         rt2500usb_register_read(rt2x00dev, TXRX_CSR5, &reg);
771         rt2x00_set_field16(&reg, TXRX_CSR5_BBP_ID0, 13);
772         rt2x00_set_field16(&reg, TXRX_CSR5_BBP_ID0_VALID, 1);
773         rt2x00_set_field16(&reg, TXRX_CSR5_BBP_ID1, 12);
774         rt2x00_set_field16(&reg, TXRX_CSR5_BBP_ID1_VALID, 1);
775         rt2500usb_register_write(rt2x00dev, TXRX_CSR5, reg);
776
777         rt2500usb_register_read(rt2x00dev, TXRX_CSR6, &reg);
778         rt2x00_set_field16(&reg, TXRX_CSR6_BBP_ID0, 10);
779         rt2x00_set_field16(&reg, TXRX_CSR6_BBP_ID0_VALID, 1);
780         rt2x00_set_field16(&reg, TXRX_CSR6_BBP_ID1, 11);
781         rt2x00_set_field16(&reg, TXRX_CSR6_BBP_ID1_VALID, 1);
782         rt2500usb_register_write(rt2x00dev, TXRX_CSR6, reg);
783
784         rt2500usb_register_read(rt2x00dev, TXRX_CSR7, &reg);
785         rt2x00_set_field16(&reg, TXRX_CSR7_BBP_ID0, 7);
786         rt2x00_set_field16(&reg, TXRX_CSR7_BBP_ID0_VALID, 1);
787         rt2x00_set_field16(&reg, TXRX_CSR7_BBP_ID1, 6);
788         rt2x00_set_field16(&reg, TXRX_CSR7_BBP_ID1_VALID, 1);
789         rt2500usb_register_write(rt2x00dev, TXRX_CSR7, reg);
790
791         rt2500usb_register_read(rt2x00dev, TXRX_CSR8, &reg);
792         rt2x00_set_field16(&reg, TXRX_CSR8_BBP_ID0, 5);
793         rt2x00_set_field16(&reg, TXRX_CSR8_BBP_ID0_VALID, 1);
794         rt2x00_set_field16(&reg, TXRX_CSR8_BBP_ID1, 0);
795         rt2x00_set_field16(&reg, TXRX_CSR8_BBP_ID1_VALID, 0);
796         rt2500usb_register_write(rt2x00dev, TXRX_CSR8, reg);
797
798         rt2500usb_register_write(rt2x00dev, TXRX_CSR21, 0xe78f);
799         rt2500usb_register_write(rt2x00dev, MAC_CSR9, 0xff1d);
800
801         if (rt2x00dev->ops->lib->set_device_state(rt2x00dev, STATE_AWAKE))
802                 return -EBUSY;
803
804         rt2500usb_register_read(rt2x00dev, MAC_CSR1, &reg);
805         rt2x00_set_field16(&reg, MAC_CSR1_SOFT_RESET, 0);
806         rt2x00_set_field16(&reg, MAC_CSR1_BBP_RESET, 0);
807         rt2x00_set_field16(&reg, MAC_CSR1_HOST_READY, 1);
808         rt2500usb_register_write(rt2x00dev, MAC_CSR1, reg);
809
810         if (rt2x00_rev(&rt2x00dev->chip) >= RT2570_VERSION_C) {
811                 rt2500usb_register_read(rt2x00dev, PHY_CSR2, &reg);
812                 rt2x00_set_field16(&reg, PHY_CSR2_LNA, 0);
813         } else {
814                 reg = 0;
815                 rt2x00_set_field16(&reg, PHY_CSR2_LNA, 1);
816                 rt2x00_set_field16(&reg, PHY_CSR2_LNA_MODE, 3);
817         }
818         rt2500usb_register_write(rt2x00dev, PHY_CSR2, reg);
819
820         rt2500usb_register_write(rt2x00dev, MAC_CSR11, 0x0002);
821         rt2500usb_register_write(rt2x00dev, MAC_CSR22, 0x0053);
822         rt2500usb_register_write(rt2x00dev, MAC_CSR15, 0x01ee);
823         rt2500usb_register_write(rt2x00dev, MAC_CSR16, 0x0000);
824
825         rt2500usb_register_read(rt2x00dev, MAC_CSR8, &reg);
826         rt2x00_set_field16(&reg, MAC_CSR8_MAX_FRAME_UNIT,
827                            rt2x00dev->rx->data_size);
828         rt2500usb_register_write(rt2x00dev, MAC_CSR8, reg);
829
830         rt2500usb_register_read(rt2x00dev, TXRX_CSR0, &reg);
831         rt2x00_set_field16(&reg, TXRX_CSR0_IV_OFFSET, IEEE80211_HEADER);
832         rt2x00_set_field16(&reg, TXRX_CSR0_KEY_ID, 0xff);
833         rt2500usb_register_write(rt2x00dev, TXRX_CSR0, reg);
834
835         rt2500usb_register_read(rt2x00dev, MAC_CSR18, &reg);
836         rt2x00_set_field16(&reg, MAC_CSR18_DELAY_AFTER_BEACON, 90);
837         rt2500usb_register_write(rt2x00dev, MAC_CSR18, reg);
838
839         rt2500usb_register_read(rt2x00dev, PHY_CSR4, &reg);
840         rt2x00_set_field16(&reg, PHY_CSR4_LOW_RF_LE, 1);
841         rt2500usb_register_write(rt2x00dev, PHY_CSR4, reg);
842
843         rt2500usb_register_read(rt2x00dev, TXRX_CSR1, &reg);
844         rt2x00_set_field16(&reg, TXRX_CSR1_AUTO_SEQUENCE, 1);
845         rt2500usb_register_write(rt2x00dev, TXRX_CSR1, reg);
846
847         return 0;
848 }
849
850 static int rt2500usb_init_bbp(struct rt2x00_dev *rt2x00dev)
851 {
852         unsigned int i;
853         u16 eeprom;
854         u8 value;
855         u8 reg_id;
856
857         for (i = 0; i < REGISTER_BUSY_COUNT; i++) {
858                 rt2500usb_bbp_read(rt2x00dev, 0, &value);
859                 if ((value != 0xff) && (value != 0x00))
860                         goto continue_csr_init;
861                 NOTICE(rt2x00dev, "Waiting for BBP register.\n");
862                 udelay(REGISTER_BUSY_DELAY);
863         }
864
865         ERROR(rt2x00dev, "BBP register access failed, aborting.\n");
866         return -EACCES;
867
868 continue_csr_init:
869         rt2500usb_bbp_write(rt2x00dev, 3, 0x02);
870         rt2500usb_bbp_write(rt2x00dev, 4, 0x19);
871         rt2500usb_bbp_write(rt2x00dev, 14, 0x1c);
872         rt2500usb_bbp_write(rt2x00dev, 15, 0x30);
873         rt2500usb_bbp_write(rt2x00dev, 16, 0xac);
874         rt2500usb_bbp_write(rt2x00dev, 18, 0x18);
875         rt2500usb_bbp_write(rt2x00dev, 19, 0xff);
876         rt2500usb_bbp_write(rt2x00dev, 20, 0x1e);
877         rt2500usb_bbp_write(rt2x00dev, 21, 0x08);
878         rt2500usb_bbp_write(rt2x00dev, 22, 0x08);
879         rt2500usb_bbp_write(rt2x00dev, 23, 0x08);
880         rt2500usb_bbp_write(rt2x00dev, 24, 0x80);
881         rt2500usb_bbp_write(rt2x00dev, 25, 0x50);
882         rt2500usb_bbp_write(rt2x00dev, 26, 0x08);
883         rt2500usb_bbp_write(rt2x00dev, 27, 0x23);
884         rt2500usb_bbp_write(rt2x00dev, 30, 0x10);
885         rt2500usb_bbp_write(rt2x00dev, 31, 0x2b);
886         rt2500usb_bbp_write(rt2x00dev, 32, 0xb9);
887         rt2500usb_bbp_write(rt2x00dev, 34, 0x12);
888         rt2500usb_bbp_write(rt2x00dev, 35, 0x50);
889         rt2500usb_bbp_write(rt2x00dev, 39, 0xc4);
890         rt2500usb_bbp_write(rt2x00dev, 40, 0x02);
891         rt2500usb_bbp_write(rt2x00dev, 41, 0x60);
892         rt2500usb_bbp_write(rt2x00dev, 53, 0x10);
893         rt2500usb_bbp_write(rt2x00dev, 54, 0x18);
894         rt2500usb_bbp_write(rt2x00dev, 56, 0x08);
895         rt2500usb_bbp_write(rt2x00dev, 57, 0x10);
896         rt2500usb_bbp_write(rt2x00dev, 58, 0x08);
897         rt2500usb_bbp_write(rt2x00dev, 61, 0x60);
898         rt2500usb_bbp_write(rt2x00dev, 62, 0x10);
899         rt2500usb_bbp_write(rt2x00dev, 75, 0xff);
900
901         for (i = 0; i < EEPROM_BBP_SIZE; i++) {
902                 rt2x00_eeprom_read(rt2x00dev, EEPROM_BBP_START + i, &eeprom);
903
904                 if (eeprom != 0xffff && eeprom != 0x0000) {
905                         reg_id = rt2x00_get_field16(eeprom, EEPROM_BBP_REG_ID);
906                         value = rt2x00_get_field16(eeprom, EEPROM_BBP_VALUE);
907                         rt2500usb_bbp_write(rt2x00dev, reg_id, value);
908                 }
909         }
910
911         return 0;
912 }
913
914 /*
915  * Device state switch handlers.
916  */
917 static void rt2500usb_toggle_rx(struct rt2x00_dev *rt2x00dev,
918                                 enum dev_state state)
919 {
920         u16 reg;
921
922         rt2500usb_register_read(rt2x00dev, TXRX_CSR2, &reg);
923         rt2x00_set_field16(&reg, TXRX_CSR2_DISABLE_RX,
924                            state == STATE_RADIO_RX_OFF);
925         rt2500usb_register_write(rt2x00dev, TXRX_CSR2, reg);
926 }
927
928 static int rt2500usb_enable_radio(struct rt2x00_dev *rt2x00dev)
929 {
930         /*
931          * Initialize all registers.
932          */
933         if (rt2500usb_init_registers(rt2x00dev) ||
934             rt2500usb_init_bbp(rt2x00dev)) {
935                 ERROR(rt2x00dev, "Register initialization failed.\n");
936                 return -EIO;
937         }
938
939         return 0;
940 }
941
942 static void rt2500usb_disable_radio(struct rt2x00_dev *rt2x00dev)
943 {
944         rt2500usb_register_write(rt2x00dev, MAC_CSR13, 0x2121);
945         rt2500usb_register_write(rt2x00dev, MAC_CSR14, 0x2121);
946
947         /*
948          * Disable synchronisation.
949          */
950         rt2500usb_register_write(rt2x00dev, TXRX_CSR19, 0);
951
952         rt2x00usb_disable_radio(rt2x00dev);
953 }
954
955 static int rt2500usb_set_state(struct rt2x00_dev *rt2x00dev,
956                                enum dev_state state)
957 {
958         u16 reg;
959         u16 reg2;
960         unsigned int i;
961         char put_to_sleep;
962         char bbp_state;
963         char rf_state;
964
965         put_to_sleep = (state != STATE_AWAKE);
966
967         reg = 0;
968         rt2x00_set_field16(&reg, MAC_CSR17_BBP_DESIRE_STATE, state);
969         rt2x00_set_field16(&reg, MAC_CSR17_RF_DESIRE_STATE, state);
970         rt2x00_set_field16(&reg, MAC_CSR17_PUT_TO_SLEEP, put_to_sleep);
971         rt2500usb_register_write(rt2x00dev, MAC_CSR17, reg);
972         rt2x00_set_field16(&reg, MAC_CSR17_SET_STATE, 1);
973         rt2500usb_register_write(rt2x00dev, MAC_CSR17, reg);
974
975         /*
976          * Device is not guaranteed to be in the requested state yet.
977          * We must wait until the register indicates that the
978          * device has entered the correct state.
979          */
980         for (i = 0; i < REGISTER_BUSY_COUNT; i++) {
981                 rt2500usb_register_read(rt2x00dev, MAC_CSR17, &reg2);
982                 bbp_state = rt2x00_get_field16(reg2, MAC_CSR17_BBP_CURR_STATE);
983                 rf_state = rt2x00_get_field16(reg2, MAC_CSR17_RF_CURR_STATE);
984                 if (bbp_state == state && rf_state == state)
985                         return 0;
986                 rt2500usb_register_write(rt2x00dev, MAC_CSR17, reg);
987                 msleep(30);
988         }
989
990         NOTICE(rt2x00dev, "Device failed to enter state %d, "
991                "current device state: bbp %d and rf %d.\n",
992                state, bbp_state, rf_state);
993
994         return -EBUSY;
995 }
996
997 static int rt2500usb_set_device_state(struct rt2x00_dev *rt2x00dev,
998                                       enum dev_state state)
999 {
1000         int retval = 0;
1001
1002         switch (state) {
1003         case STATE_RADIO_ON:
1004                 retval = rt2500usb_enable_radio(rt2x00dev);
1005                 break;
1006         case STATE_RADIO_OFF:
1007                 rt2500usb_disable_radio(rt2x00dev);
1008                 break;
1009         case STATE_RADIO_RX_ON:
1010         case STATE_RADIO_RX_ON_LINK:
1011                 rt2500usb_toggle_rx(rt2x00dev, STATE_RADIO_RX_ON);
1012                 break;
1013         case STATE_RADIO_RX_OFF:
1014         case STATE_RADIO_RX_OFF_LINK:
1015                 rt2500usb_toggle_rx(rt2x00dev, STATE_RADIO_RX_OFF);
1016                 break;
1017         case STATE_DEEP_SLEEP:
1018         case STATE_SLEEP:
1019         case STATE_STANDBY:
1020         case STATE_AWAKE:
1021                 retval = rt2500usb_set_state(rt2x00dev, state);
1022                 break;
1023         default:
1024                 retval = -ENOTSUPP;
1025                 break;
1026         }
1027
1028         return retval;
1029 }
1030
1031 /*
1032  * TX descriptor initialization
1033  */
1034 static void rt2500usb_write_tx_desc(struct rt2x00_dev *rt2x00dev,
1035                                     struct sk_buff *skb,
1036                                     struct txentry_desc *txdesc,
1037                                     struct ieee80211_tx_control *control)
1038 {
1039         struct skb_frame_desc *skbdesc = get_skb_frame_desc(skb);
1040         __le32 *txd = skbdesc->desc;
1041         u32 word;
1042
1043         /*
1044          * Start writing the descriptor words.
1045          */
1046         rt2x00_desc_read(txd, 1, &word);
1047         rt2x00_set_field32(&word, TXD_W1_IV_OFFSET, IEEE80211_HEADER);
1048         rt2x00_set_field32(&word, TXD_W1_AIFS, txdesc->aifs);
1049         rt2x00_set_field32(&word, TXD_W1_CWMIN, txdesc->cw_min);
1050         rt2x00_set_field32(&word, TXD_W1_CWMAX, txdesc->cw_max);
1051         rt2x00_desc_write(txd, 1, word);
1052
1053         rt2x00_desc_read(txd, 2, &word);
1054         rt2x00_set_field32(&word, TXD_W2_PLCP_SIGNAL, txdesc->signal);
1055         rt2x00_set_field32(&word, TXD_W2_PLCP_SERVICE, txdesc->service);
1056         rt2x00_set_field32(&word, TXD_W2_PLCP_LENGTH_LOW, txdesc->length_low);
1057         rt2x00_set_field32(&word, TXD_W2_PLCP_LENGTH_HIGH, txdesc->length_high);
1058         rt2x00_desc_write(txd, 2, word);
1059
1060         rt2x00_desc_read(txd, 0, &word);
1061         rt2x00_set_field32(&word, TXD_W0_RETRY_LIMIT, control->retry_limit);
1062         rt2x00_set_field32(&word, TXD_W0_MORE_FRAG,
1063                            test_bit(ENTRY_TXD_MORE_FRAG, &txdesc->flags));
1064         rt2x00_set_field32(&word, TXD_W0_ACK,
1065                            test_bit(ENTRY_TXD_ACK, &txdesc->flags));
1066         rt2x00_set_field32(&word, TXD_W0_TIMESTAMP,
1067                            test_bit(ENTRY_TXD_REQ_TIMESTAMP, &txdesc->flags));
1068         rt2x00_set_field32(&word, TXD_W0_OFDM,
1069                            test_bit(ENTRY_TXD_OFDM_RATE, &txdesc->flags));
1070         rt2x00_set_field32(&word, TXD_W0_NEW_SEQ,
1071                            !!(control->flags & IEEE80211_TXCTL_FIRST_FRAGMENT));
1072         rt2x00_set_field32(&word, TXD_W0_IFS, txdesc->ifs);
1073         rt2x00_set_field32(&word, TXD_W0_DATABYTE_COUNT, skbdesc->data_len);
1074         rt2x00_set_field32(&word, TXD_W0_CIPHER, CIPHER_NONE);
1075         rt2x00_desc_write(txd, 0, word);
1076 }
1077
1078 static int rt2500usb_get_tx_data_len(struct rt2x00_dev *rt2x00dev,
1079                                      struct sk_buff *skb)
1080 {
1081         int length;
1082
1083         /*
1084          * The length _must_ be a multiple of 2,
1085          * but it must _not_ be a multiple of the USB packet size.
1086          */
1087         length = roundup(skb->len, 2);
1088         length += (2 * !(length % rt2x00dev->usb_maxpacket));
1089
1090         return length;
1091 }
1092
1093 /*
1094  * TX data initialization
1095  */
1096 static void rt2500usb_kick_tx_queue(struct rt2x00_dev *rt2x00dev,
1097                                     const unsigned int queue)
1098 {
1099         u16 reg;
1100
1101         if (queue != RT2X00_BCN_QUEUE_BEACON)
1102                 return;
1103
1104         rt2500usb_register_read(rt2x00dev, TXRX_CSR19, &reg);
1105         if (!rt2x00_get_field16(reg, TXRX_CSR19_BEACON_GEN)) {
1106                 rt2x00_set_field16(&reg, TXRX_CSR19_TSF_COUNT, 1);
1107                 rt2x00_set_field16(&reg, TXRX_CSR19_TBCN, 1);
1108                 rt2x00_set_field16(&reg, TXRX_CSR19_BEACON_GEN, 1);
1109                 /*
1110                  * Beacon generation will fail initially.
1111                  * To prevent this we need to register the TXRX_CSR19
1112                  * register several times.
1113                  */
1114                 rt2500usb_register_write(rt2x00dev, TXRX_CSR19, reg);
1115                 rt2500usb_register_write(rt2x00dev, TXRX_CSR19, 0);
1116                 rt2500usb_register_write(rt2x00dev, TXRX_CSR19, reg);
1117                 rt2500usb_register_write(rt2x00dev, TXRX_CSR19, 0);
1118                 rt2500usb_register_write(rt2x00dev, TXRX_CSR19, reg);
1119         }
1120 }
1121
1122 /*
1123  * RX control handlers
1124  */
1125 static void rt2500usb_fill_rxdone(struct queue_entry *entry,
1126                                   struct rxdone_entry_desc *rxdesc)
1127 {
1128         struct queue_entry_priv_usb_rx *priv_rx = entry->priv_data;
1129         struct skb_frame_desc *skbdesc = get_skb_frame_desc(entry->skb);
1130         __le32 *rxd =
1131             (__le32 *)(entry->skb->data +
1132                        (priv_rx->urb->actual_length - entry->queue->desc_size));
1133         unsigned int offset = entry->queue->desc_size + 2;
1134         u32 word0;
1135         u32 word1;
1136
1137         /*
1138          * Copy descriptor to the available headroom inside the skbuffer.
1139          */
1140         skb_push(entry->skb, offset);
1141         memcpy(entry->skb->data, rxd, entry->queue->desc_size);
1142         rxd = (__le32 *)entry->skb->data;
1143
1144         /*
1145          * The descriptor is now aligned to 4 bytes and thus it is
1146          * now safe to read it on all architectures.
1147          */
1148         rt2x00_desc_read(rxd, 0, &word0);
1149         rt2x00_desc_read(rxd, 1, &word1);
1150
1151         rxdesc->flags = 0;
1152         if (rt2x00_get_field32(word0, RXD_W0_CRC_ERROR))
1153                 rxdesc->flags |= RX_FLAG_FAILED_FCS_CRC;
1154         if (rt2x00_get_field32(word0, RXD_W0_PHYSICAL_ERROR))
1155                 rxdesc->flags |= RX_FLAG_FAILED_PLCP_CRC;
1156
1157         /*
1158          * Obtain the status about this packet.
1159          * When frame was received with an OFDM bitrate,
1160          * the signal is the PLCP value. If it was received with
1161          * a CCK bitrate the signal is the rate in 100kbit/s.
1162          */
1163         rxdesc->signal = rt2x00_get_field32(word1, RXD_W1_SIGNAL);
1164         rxdesc->rssi = rt2x00_get_field32(word1, RXD_W1_RSSI) -
1165             entry->queue->rt2x00dev->rssi_offset;
1166         rxdesc->size = rt2x00_get_field32(word0, RXD_W0_DATABYTE_COUNT);
1167
1168         rxdesc->dev_flags = 0;
1169         if (rt2x00_get_field32(word0, RXD_W0_OFDM))
1170                 rxdesc->dev_flags |= RXDONE_SIGNAL_PLCP;
1171         if (rt2x00_get_field32(word0, RXD_W0_MY_BSS))
1172                 rxdesc->dev_flags |= RXDONE_MY_BSS;
1173
1174         /*
1175          * Adjust the skb memory window to the frame boundaries.
1176          */
1177         skb_pull(entry->skb, offset);
1178         skb_trim(entry->skb, rxdesc->size);
1179
1180         /*
1181          * Set descriptor and data pointer.
1182          */
1183         skbdesc->data = entry->skb->data;
1184         skbdesc->data_len = rxdesc->size;
1185         skbdesc->desc = rxd;
1186         skbdesc->desc_len = entry->queue->desc_size;
1187 }
1188
1189 /*
1190  * Interrupt functions.
1191  */
1192 static void rt2500usb_beacondone(struct urb *urb)
1193 {
1194         struct queue_entry *entry = (struct queue_entry *)urb->context;
1195         struct queue_entry_priv_usb_bcn *priv_bcn = entry->priv_data;
1196
1197         if (!test_bit(DEVICE_ENABLED_RADIO, &entry->queue->rt2x00dev->flags))
1198                 return;
1199
1200         /*
1201          * Check if this was the guardian beacon,
1202          * if that was the case we need to send the real beacon now.
1203          * Otherwise we should free the sk_buffer, the device
1204          * should be doing the rest of the work now.
1205          */
1206         if (priv_bcn->guardian_urb == urb) {
1207                 usb_submit_urb(priv_bcn->urb, GFP_ATOMIC);
1208         } else if (priv_bcn->urb == urb) {
1209                 dev_kfree_skb(entry->skb);
1210                 entry->skb = NULL;
1211         }
1212 }
1213
1214 /*
1215  * Device probe functions.
1216  */
1217 static int rt2500usb_validate_eeprom(struct rt2x00_dev *rt2x00dev)
1218 {
1219         u16 word;
1220         u8 *mac;
1221         u8 bbp;
1222
1223         rt2x00usb_eeprom_read(rt2x00dev, rt2x00dev->eeprom, EEPROM_SIZE);
1224
1225         /*
1226          * Start validation of the data that has been read.
1227          */
1228         mac = rt2x00_eeprom_addr(rt2x00dev, EEPROM_MAC_ADDR_0);
1229         if (!is_valid_ether_addr(mac)) {
1230                 DECLARE_MAC_BUF(macbuf);
1231
1232                 random_ether_addr(mac);
1233                 EEPROM(rt2x00dev, "MAC: %s\n", print_mac(macbuf, mac));
1234         }
1235
1236         rt2x00_eeprom_read(rt2x00dev, EEPROM_ANTENNA, &word);
1237         if (word == 0xffff) {
1238                 rt2x00_set_field16(&word, EEPROM_ANTENNA_NUM, 2);
1239                 rt2x00_set_field16(&word, EEPROM_ANTENNA_TX_DEFAULT,
1240                                    ANTENNA_SW_DIVERSITY);
1241                 rt2x00_set_field16(&word, EEPROM_ANTENNA_RX_DEFAULT,
1242                                    ANTENNA_SW_DIVERSITY);
1243                 rt2x00_set_field16(&word, EEPROM_ANTENNA_LED_MODE,
1244                                    LED_MODE_DEFAULT);
1245                 rt2x00_set_field16(&word, EEPROM_ANTENNA_DYN_TXAGC, 0);
1246                 rt2x00_set_field16(&word, EEPROM_ANTENNA_HARDWARE_RADIO, 0);
1247                 rt2x00_set_field16(&word, EEPROM_ANTENNA_RF_TYPE, RF2522);
1248                 rt2x00_eeprom_write(rt2x00dev, EEPROM_ANTENNA, word);
1249                 EEPROM(rt2x00dev, "Antenna: 0x%04x\n", word);
1250         }
1251
1252         rt2x00_eeprom_read(rt2x00dev, EEPROM_NIC, &word);
1253         if (word == 0xffff) {
1254                 rt2x00_set_field16(&word, EEPROM_NIC_CARDBUS_ACCEL, 0);
1255                 rt2x00_set_field16(&word, EEPROM_NIC_DYN_BBP_TUNE, 0);
1256                 rt2x00_set_field16(&word, EEPROM_NIC_CCK_TX_POWER, 0);
1257                 rt2x00_eeprom_write(rt2x00dev, EEPROM_NIC, word);
1258                 EEPROM(rt2x00dev, "NIC: 0x%04x\n", word);
1259         }
1260
1261         rt2x00_eeprom_read(rt2x00dev, EEPROM_CALIBRATE_OFFSET, &word);
1262         if (word == 0xffff) {
1263                 rt2x00_set_field16(&word, EEPROM_CALIBRATE_OFFSET_RSSI,
1264                                    DEFAULT_RSSI_OFFSET);
1265                 rt2x00_eeprom_write(rt2x00dev, EEPROM_CALIBRATE_OFFSET, word);
1266                 EEPROM(rt2x00dev, "Calibrate offset: 0x%04x\n", word);
1267         }
1268
1269         rt2x00_eeprom_read(rt2x00dev, EEPROM_BBPTUNE, &word);
1270         if (word == 0xffff) {
1271                 rt2x00_set_field16(&word, EEPROM_BBPTUNE_THRESHOLD, 45);
1272                 rt2x00_eeprom_write(rt2x00dev, EEPROM_BBPTUNE, word);
1273                 EEPROM(rt2x00dev, "BBPtune: 0x%04x\n", word);
1274         }
1275
1276         /*
1277          * Switch lower vgc bound to current BBP R17 value,
1278          * lower the value a bit for better quality.
1279          */
1280         rt2500usb_bbp_read(rt2x00dev, 17, &bbp);
1281         bbp -= 6;
1282
1283         rt2x00_eeprom_read(rt2x00dev, EEPROM_BBPTUNE_VGC, &word);
1284         if (word == 0xffff) {
1285                 rt2x00_set_field16(&word, EEPROM_BBPTUNE_VGCUPPER, 0x40);
1286                 rt2x00_set_field16(&word, EEPROM_BBPTUNE_VGCLOWER, bbp);
1287                 rt2x00_eeprom_write(rt2x00dev, EEPROM_BBPTUNE_VGC, word);
1288                 EEPROM(rt2x00dev, "BBPtune vgc: 0x%04x\n", word);
1289         }
1290
1291         rt2x00_eeprom_read(rt2x00dev, EEPROM_BBPTUNE_R17, &word);
1292         if (word == 0xffff) {
1293                 rt2x00_set_field16(&word, EEPROM_BBPTUNE_R17_LOW, 0x48);
1294                 rt2x00_set_field16(&word, EEPROM_BBPTUNE_R17_HIGH, 0x41);
1295                 rt2x00_eeprom_write(rt2x00dev, EEPROM_BBPTUNE_R17, word);
1296                 EEPROM(rt2x00dev, "BBPtune r17: 0x%04x\n", word);
1297         } else {
1298                 rt2x00_set_field16(&word, EEPROM_BBPTUNE_VGCLOWER, bbp);
1299                 rt2x00_eeprom_write(rt2x00dev, EEPROM_BBPTUNE_VGC, word);
1300         }
1301
1302         rt2x00_eeprom_read(rt2x00dev, EEPROM_BBPTUNE_R24, &word);
1303         if (word == 0xffff) {
1304                 rt2x00_set_field16(&word, EEPROM_BBPTUNE_R24_LOW, 0x40);
1305                 rt2x00_set_field16(&word, EEPROM_BBPTUNE_R24_HIGH, 0x80);
1306                 rt2x00_eeprom_write(rt2x00dev, EEPROM_BBPTUNE_R24, word);
1307                 EEPROM(rt2x00dev, "BBPtune r24: 0x%04x\n", word);
1308         }
1309
1310         rt2x00_eeprom_read(rt2x00dev, EEPROM_BBPTUNE_R25, &word);
1311         if (word == 0xffff) {
1312                 rt2x00_set_field16(&word, EEPROM_BBPTUNE_R25_LOW, 0x40);
1313                 rt2x00_set_field16(&word, EEPROM_BBPTUNE_R25_HIGH, 0x50);
1314                 rt2x00_eeprom_write(rt2x00dev, EEPROM_BBPTUNE_R25, word);
1315                 EEPROM(rt2x00dev, "BBPtune r25: 0x%04x\n", word);
1316         }
1317
1318         rt2x00_eeprom_read(rt2x00dev, EEPROM_BBPTUNE_R61, &word);
1319         if (word == 0xffff) {
1320                 rt2x00_set_field16(&word, EEPROM_BBPTUNE_R61_LOW, 0x60);
1321                 rt2x00_set_field16(&word, EEPROM_BBPTUNE_R61_HIGH, 0x6d);
1322                 rt2x00_eeprom_write(rt2x00dev, EEPROM_BBPTUNE_R61, word);
1323                 EEPROM(rt2x00dev, "BBPtune r61: 0x%04x\n", word);
1324         }
1325
1326         return 0;
1327 }
1328
1329 static int rt2500usb_init_eeprom(struct rt2x00_dev *rt2x00dev)
1330 {
1331         u16 reg;
1332         u16 value;
1333         u16 eeprom;
1334
1335         /*
1336          * Read EEPROM word for configuration.
1337          */
1338         rt2x00_eeprom_read(rt2x00dev, EEPROM_ANTENNA, &eeprom);
1339
1340         /*
1341          * Identify RF chipset.
1342          */
1343         value = rt2x00_get_field16(eeprom, EEPROM_ANTENNA_RF_TYPE);
1344         rt2500usb_register_read(rt2x00dev, MAC_CSR0, &reg);
1345         rt2x00_set_chip(rt2x00dev, RT2570, value, reg);
1346
1347         if (!rt2x00_check_rev(&rt2x00dev->chip, 0)) {
1348                 ERROR(rt2x00dev, "Invalid RT chipset detected.\n");
1349                 return -ENODEV;
1350         }
1351
1352         if (!rt2x00_rf(&rt2x00dev->chip, RF2522) &&
1353             !rt2x00_rf(&rt2x00dev->chip, RF2523) &&
1354             !rt2x00_rf(&rt2x00dev->chip, RF2524) &&
1355             !rt2x00_rf(&rt2x00dev->chip, RF2525) &&
1356             !rt2x00_rf(&rt2x00dev->chip, RF2525E) &&
1357             !rt2x00_rf(&rt2x00dev->chip, RF5222)) {
1358                 ERROR(rt2x00dev, "Invalid RF chipset detected.\n");
1359                 return -ENODEV;
1360         }
1361
1362         /*
1363          * Identify default antenna configuration.
1364          */
1365         rt2x00dev->default_ant.tx =
1366             rt2x00_get_field16(eeprom, EEPROM_ANTENNA_TX_DEFAULT);
1367         rt2x00dev->default_ant.rx =
1368             rt2x00_get_field16(eeprom, EEPROM_ANTENNA_RX_DEFAULT);
1369
1370         /*
1371          * When the eeprom indicates SW_DIVERSITY use HW_DIVERSITY instead.
1372          * I am not 100% sure about this, but the legacy drivers do not
1373          * indicate antenna swapping in software is required when
1374          * diversity is enabled.
1375          */
1376         if (rt2x00dev->default_ant.tx == ANTENNA_SW_DIVERSITY)
1377                 rt2x00dev->default_ant.tx = ANTENNA_HW_DIVERSITY;
1378         if (rt2x00dev->default_ant.rx == ANTENNA_SW_DIVERSITY)
1379                 rt2x00dev->default_ant.rx = ANTENNA_HW_DIVERSITY;
1380
1381         /*
1382          * Store led mode, for correct led behaviour.
1383          */
1384 #ifdef CONFIG_RT2500USB_LEDS
1385         value = rt2x00_get_field16(eeprom, EEPROM_ANTENNA_LED_MODE);
1386
1387         switch (value) {
1388         case LED_MODE_ASUS:
1389         case LED_MODE_ALPHA:
1390         case LED_MODE_DEFAULT:
1391                 rt2x00dev->led_flags = LED_SUPPORT_RADIO;
1392                 break;
1393         case LED_MODE_TXRX_ACTIVITY:
1394                 rt2x00dev->led_flags =
1395                     LED_SUPPORT_RADIO | LED_SUPPORT_ACTIVITY;
1396                 break;
1397         case LED_MODE_SIGNAL_STRENGTH:
1398                 rt2x00dev->led_flags = LED_SUPPORT_RADIO;
1399                 break;
1400         }
1401
1402         /*
1403          * Store the current led register value, we need it later
1404          * in set_brightness but that is called in irq context which
1405          * means we can't use rt2500usb_register_read() at that time.
1406          */
1407         rt2500usb_register_read(rt2x00dev, MAC_CSR20, &rt2x00dev->led_mcu_reg);
1408 #endif /* CONFIG_RT2500USB_LEDS */
1409
1410         /*
1411          * Check if the BBP tuning should be disabled.
1412          */
1413         rt2x00_eeprom_read(rt2x00dev, EEPROM_NIC, &eeprom);
1414         if (rt2x00_get_field16(eeprom, EEPROM_NIC_DYN_BBP_TUNE))
1415                 __set_bit(CONFIG_DISABLE_LINK_TUNING, &rt2x00dev->flags);
1416
1417         /*
1418          * Read the RSSI <-> dBm offset information.
1419          */
1420         rt2x00_eeprom_read(rt2x00dev, EEPROM_CALIBRATE_OFFSET, &eeprom);
1421         rt2x00dev->rssi_offset =
1422             rt2x00_get_field16(eeprom, EEPROM_CALIBRATE_OFFSET_RSSI);
1423
1424         return 0;
1425 }
1426
1427 /*
1428  * RF value list for RF2522
1429  * Supports: 2.4 GHz
1430  */
1431 static const struct rf_channel rf_vals_bg_2522[] = {
1432         { 1,  0x00002050, 0x000c1fda, 0x00000101, 0 },
1433         { 2,  0x00002050, 0x000c1fee, 0x00000101, 0 },
1434         { 3,  0x00002050, 0x000c2002, 0x00000101, 0 },
1435         { 4,  0x00002050, 0x000c2016, 0x00000101, 0 },
1436         { 5,  0x00002050, 0x000c202a, 0x00000101, 0 },
1437         { 6,  0x00002050, 0x000c203e, 0x00000101, 0 },
1438         { 7,  0x00002050, 0x000c2052, 0x00000101, 0 },
1439         { 8,  0x00002050, 0x000c2066, 0x00000101, 0 },
1440         { 9,  0x00002050, 0x000c207a, 0x00000101, 0 },
1441         { 10, 0x00002050, 0x000c208e, 0x00000101, 0 },
1442         { 11, 0x00002050, 0x000c20a2, 0x00000101, 0 },
1443         { 12, 0x00002050, 0x000c20b6, 0x00000101, 0 },
1444         { 13, 0x00002050, 0x000c20ca, 0x00000101, 0 },
1445         { 14, 0x00002050, 0x000c20fa, 0x00000101, 0 },
1446 };
1447
1448 /*
1449  * RF value list for RF2523
1450  * Supports: 2.4 GHz
1451  */
1452 static const struct rf_channel rf_vals_bg_2523[] = {
1453         { 1,  0x00022010, 0x00000c9e, 0x000e0111, 0x00000a1b },
1454         { 2,  0x00022010, 0x00000ca2, 0x000e0111, 0x00000a1b },
1455         { 3,  0x00022010, 0x00000ca6, 0x000e0111, 0x00000a1b },
1456         { 4,  0x00022010, 0x00000caa, 0x000e0111, 0x00000a1b },
1457         { 5,  0x00022010, 0x00000cae, 0x000e0111, 0x00000a1b },
1458         { 6,  0x00022010, 0x00000cb2, 0x000e0111, 0x00000a1b },
1459         { 7,  0x00022010, 0x00000cb6, 0x000e0111, 0x00000a1b },
1460         { 8,  0x00022010, 0x00000cba, 0x000e0111, 0x00000a1b },
1461         { 9,  0x00022010, 0x00000cbe, 0x000e0111, 0x00000a1b },
1462         { 10, 0x00022010, 0x00000d02, 0x000e0111, 0x00000a1b },
1463         { 11, 0x00022010, 0x00000d06, 0x000e0111, 0x00000a1b },
1464         { 12, 0x00022010, 0x00000d0a, 0x000e0111, 0x00000a1b },
1465         { 13, 0x00022010, 0x00000d0e, 0x000e0111, 0x00000a1b },
1466         { 14, 0x00022010, 0x00000d1a, 0x000e0111, 0x00000a03 },
1467 };
1468
1469 /*
1470  * RF value list for RF2524
1471  * Supports: 2.4 GHz
1472  */
1473 static const struct rf_channel rf_vals_bg_2524[] = {
1474         { 1,  0x00032020, 0x00000c9e, 0x00000101, 0x00000a1b },
1475         { 2,  0x00032020, 0x00000ca2, 0x00000101, 0x00000a1b },
1476         { 3,  0x00032020, 0x00000ca6, 0x00000101, 0x00000a1b },
1477         { 4,  0x00032020, 0x00000caa, 0x00000101, 0x00000a1b },
1478         { 5,  0x00032020, 0x00000cae, 0x00000101, 0x00000a1b },
1479         { 6,  0x00032020, 0x00000cb2, 0x00000101, 0x00000a1b },
1480         { 7,  0x00032020, 0x00000cb6, 0x00000101, 0x00000a1b },
1481         { 8,  0x00032020, 0x00000cba, 0x00000101, 0x00000a1b },
1482         { 9,  0x00032020, 0x00000cbe, 0x00000101, 0x00000a1b },
1483         { 10, 0x00032020, 0x00000d02, 0x00000101, 0x00000a1b },
1484         { 11, 0x00032020, 0x00000d06, 0x00000101, 0x00000a1b },
1485         { 12, 0x00032020, 0x00000d0a, 0x00000101, 0x00000a1b },
1486         { 13, 0x00032020, 0x00000d0e, 0x00000101, 0x00000a1b },
1487         { 14, 0x00032020, 0x00000d1a, 0x00000101, 0x00000a03 },
1488 };
1489
1490 /*
1491  * RF value list for RF2525
1492  * Supports: 2.4 GHz
1493  */
1494 static const struct rf_channel rf_vals_bg_2525[] = {
1495         { 1,  0x00022020, 0x00080c9e, 0x00060111, 0x00000a1b },
1496         { 2,  0x00022020, 0x00080ca2, 0x00060111, 0x00000a1b },
1497         { 3,  0x00022020, 0x00080ca6, 0x00060111, 0x00000a1b },
1498         { 4,  0x00022020, 0x00080caa, 0x00060111, 0x00000a1b },
1499         { 5,  0x00022020, 0x00080cae, 0x00060111, 0x00000a1b },
1500         { 6,  0x00022020, 0x00080cb2, 0x00060111, 0x00000a1b },
1501         { 7,  0x00022020, 0x00080cb6, 0x00060111, 0x00000a1b },
1502         { 8,  0x00022020, 0x00080cba, 0x00060111, 0x00000a1b },
1503         { 9,  0x00022020, 0x00080cbe, 0x00060111, 0x00000a1b },
1504         { 10, 0x00022020, 0x00080d02, 0x00060111, 0x00000a1b },
1505         { 11, 0x00022020, 0x00080d06, 0x00060111, 0x00000a1b },
1506         { 12, 0x00022020, 0x00080d0a, 0x00060111, 0x00000a1b },
1507         { 13, 0x00022020, 0x00080d0e, 0x00060111, 0x00000a1b },
1508         { 14, 0x00022020, 0x00080d1a, 0x00060111, 0x00000a03 },
1509 };
1510
1511 /*
1512  * RF value list for RF2525e
1513  * Supports: 2.4 GHz
1514  */
1515 static const struct rf_channel rf_vals_bg_2525e[] = {
1516         { 1,  0x00022010, 0x0000089a, 0x00060111, 0x00000e1b },
1517         { 2,  0x00022010, 0x0000089e, 0x00060111, 0x00000e07 },
1518         { 3,  0x00022010, 0x0000089e, 0x00060111, 0x00000e1b },
1519         { 4,  0x00022010, 0x000008a2, 0x00060111, 0x00000e07 },
1520         { 5,  0x00022010, 0x000008a2, 0x00060111, 0x00000e1b },
1521         { 6,  0x00022010, 0x000008a6, 0x00060111, 0x00000e07 },
1522         { 7,  0x00022010, 0x000008a6, 0x00060111, 0x00000e1b },
1523         { 8,  0x00022010, 0x000008aa, 0x00060111, 0x00000e07 },
1524         { 9,  0x00022010, 0x000008aa, 0x00060111, 0x00000e1b },
1525         { 10, 0x00022010, 0x000008ae, 0x00060111, 0x00000e07 },
1526         { 11, 0x00022010, 0x000008ae, 0x00060111, 0x00000e1b },
1527         { 12, 0x00022010, 0x000008b2, 0x00060111, 0x00000e07 },
1528         { 13, 0x00022010, 0x000008b2, 0x00060111, 0x00000e1b },
1529         { 14, 0x00022010, 0x000008b6, 0x00060111, 0x00000e23 },
1530 };
1531
1532 /*
1533  * RF value list for RF5222
1534  * Supports: 2.4 GHz & 5.2 GHz
1535  */
1536 static const struct rf_channel rf_vals_5222[] = {
1537         { 1,  0x00022020, 0x00001136, 0x00000101, 0x00000a0b },
1538         { 2,  0x00022020, 0x0000113a, 0x00000101, 0x00000a0b },
1539         { 3,  0x00022020, 0x0000113e, 0x00000101, 0x00000a0b },
1540         { 4,  0x00022020, 0x00001182, 0x00000101, 0x00000a0b },
1541         { 5,  0x00022020, 0x00001186, 0x00000101, 0x00000a0b },
1542         { 6,  0x00022020, 0x0000118a, 0x00000101, 0x00000a0b },
1543         { 7,  0x00022020, 0x0000118e, 0x00000101, 0x00000a0b },
1544         { 8,  0x00022020, 0x00001192, 0x00000101, 0x00000a0b },
1545         { 9,  0x00022020, 0x00001196, 0x00000101, 0x00000a0b },
1546         { 10, 0x00022020, 0x0000119a, 0x00000101, 0x00000a0b },
1547         { 11, 0x00022020, 0x0000119e, 0x00000101, 0x00000a0b },
1548         { 12, 0x00022020, 0x000011a2, 0x00000101, 0x00000a0b },
1549         { 13, 0x00022020, 0x000011a6, 0x00000101, 0x00000a0b },
1550         { 14, 0x00022020, 0x000011ae, 0x00000101, 0x00000a1b },
1551
1552         /* 802.11 UNI / HyperLan 2 */
1553         { 36, 0x00022010, 0x00018896, 0x00000101, 0x00000a1f },
1554         { 40, 0x00022010, 0x0001889a, 0x00000101, 0x00000a1f },
1555         { 44, 0x00022010, 0x0001889e, 0x00000101, 0x00000a1f },
1556         { 48, 0x00022010, 0x000188a2, 0x00000101, 0x00000a1f },
1557         { 52, 0x00022010, 0x000188a6, 0x00000101, 0x00000a1f },
1558         { 66, 0x00022010, 0x000188aa, 0x00000101, 0x00000a1f },
1559         { 60, 0x00022010, 0x000188ae, 0x00000101, 0x00000a1f },
1560         { 64, 0x00022010, 0x000188b2, 0x00000101, 0x00000a1f },
1561
1562         /* 802.11 HyperLan 2 */
1563         { 100, 0x00022010, 0x00008802, 0x00000101, 0x00000a0f },
1564         { 104, 0x00022010, 0x00008806, 0x00000101, 0x00000a0f },
1565         { 108, 0x00022010, 0x0000880a, 0x00000101, 0x00000a0f },
1566         { 112, 0x00022010, 0x0000880e, 0x00000101, 0x00000a0f },
1567         { 116, 0x00022010, 0x00008812, 0x00000101, 0x00000a0f },
1568         { 120, 0x00022010, 0x00008816, 0x00000101, 0x00000a0f },
1569         { 124, 0x00022010, 0x0000881a, 0x00000101, 0x00000a0f },
1570         { 128, 0x00022010, 0x0000881e, 0x00000101, 0x00000a0f },
1571         { 132, 0x00022010, 0x00008822, 0x00000101, 0x00000a0f },
1572         { 136, 0x00022010, 0x00008826, 0x00000101, 0x00000a0f },
1573
1574         /* 802.11 UNII */
1575         { 140, 0x00022010, 0x0000882a, 0x00000101, 0x00000a0f },
1576         { 149, 0x00022020, 0x000090a6, 0x00000101, 0x00000a07 },
1577         { 153, 0x00022020, 0x000090ae, 0x00000101, 0x00000a07 },
1578         { 157, 0x00022020, 0x000090b6, 0x00000101, 0x00000a07 },
1579         { 161, 0x00022020, 0x000090be, 0x00000101, 0x00000a07 },
1580 };
1581
1582 static void rt2500usb_probe_hw_mode(struct rt2x00_dev *rt2x00dev)
1583 {
1584         struct hw_mode_spec *spec = &rt2x00dev->spec;
1585         u8 *txpower;
1586         unsigned int i;
1587
1588         /*
1589          * Initialize all hw fields.
1590          */
1591         rt2x00dev->hw->flags =
1592             IEEE80211_HW_HOST_GEN_BEACON_TEMPLATE |
1593             IEEE80211_HW_RX_INCLUDES_FCS |
1594             IEEE80211_HW_HOST_BROADCAST_PS_BUFFERING;
1595         rt2x00dev->hw->extra_tx_headroom = TXD_DESC_SIZE;
1596         rt2x00dev->hw->max_signal = MAX_SIGNAL;
1597         rt2x00dev->hw->max_rssi = MAX_RX_SSI;
1598         rt2x00dev->hw->queues = 2;
1599
1600         SET_IEEE80211_DEV(rt2x00dev->hw, &rt2x00dev_usb(rt2x00dev)->dev);
1601         SET_IEEE80211_PERM_ADDR(rt2x00dev->hw,
1602                                 rt2x00_eeprom_addr(rt2x00dev,
1603                                                    EEPROM_MAC_ADDR_0));
1604
1605         /*
1606          * Convert tx_power array in eeprom.
1607          */
1608         txpower = rt2x00_eeprom_addr(rt2x00dev, EEPROM_TXPOWER_START);
1609         for (i = 0; i < 14; i++)
1610                 txpower[i] = TXPOWER_FROM_DEV(txpower[i]);
1611
1612         /*
1613          * Initialize hw_mode information.
1614          */
1615         spec->supported_bands = SUPPORT_BAND_2GHZ;
1616         spec->supported_rates = SUPPORT_RATE_CCK | SUPPORT_RATE_OFDM;
1617         spec->tx_power_a = NULL;
1618         spec->tx_power_bg = txpower;
1619         spec->tx_power_default = DEFAULT_TXPOWER;
1620
1621         if (rt2x00_rf(&rt2x00dev->chip, RF2522)) {
1622                 spec->num_channels = ARRAY_SIZE(rf_vals_bg_2522);
1623                 spec->channels = rf_vals_bg_2522;
1624         } else if (rt2x00_rf(&rt2x00dev->chip, RF2523)) {
1625                 spec->num_channels = ARRAY_SIZE(rf_vals_bg_2523);
1626                 spec->channels = rf_vals_bg_2523;
1627         } else if (rt2x00_rf(&rt2x00dev->chip, RF2524)) {
1628                 spec->num_channels = ARRAY_SIZE(rf_vals_bg_2524);
1629                 spec->channels = rf_vals_bg_2524;
1630         } else if (rt2x00_rf(&rt2x00dev->chip, RF2525)) {
1631                 spec->num_channels = ARRAY_SIZE(rf_vals_bg_2525);
1632                 spec->channels = rf_vals_bg_2525;
1633         } else if (rt2x00_rf(&rt2x00dev->chip, RF2525E)) {
1634                 spec->num_channels = ARRAY_SIZE(rf_vals_bg_2525e);
1635                 spec->channels = rf_vals_bg_2525e;
1636         } else if (rt2x00_rf(&rt2x00dev->chip, RF5222)) {
1637                 spec->supported_bands |= SUPPORT_BAND_5GHZ;
1638                 spec->num_channels = ARRAY_SIZE(rf_vals_5222);
1639                 spec->channels = rf_vals_5222;
1640         }
1641 }
1642
1643 static int rt2500usb_probe_hw(struct rt2x00_dev *rt2x00dev)
1644 {
1645         int retval;
1646
1647         /*
1648          * Allocate eeprom data.
1649          */
1650         retval = rt2500usb_validate_eeprom(rt2x00dev);
1651         if (retval)
1652                 return retval;
1653
1654         retval = rt2500usb_init_eeprom(rt2x00dev);
1655         if (retval)
1656                 return retval;
1657
1658         /*
1659          * Initialize hw specifications.
1660          */
1661         rt2500usb_probe_hw_mode(rt2x00dev);
1662
1663         /*
1664          * This device requires the atim queue
1665          */
1666         __set_bit(DRIVER_REQUIRE_ATIM_QUEUE, &rt2x00dev->flags);
1667         __set_bit(DRIVER_REQUIRE_BEACON_GUARD, &rt2x00dev->flags);
1668         __set_bit(DRIVER_REQUIRE_SCHEDULED, &rt2x00dev->flags);
1669
1670         /*
1671          * Set the rssi offset.
1672          */
1673         rt2x00dev->rssi_offset = DEFAULT_RSSI_OFFSET;
1674
1675         return 0;
1676 }
1677
1678 /*
1679  * IEEE80211 stack callback functions.
1680  */
1681 static int rt2500usb_beacon_update(struct ieee80211_hw *hw,
1682                                    struct sk_buff *skb,
1683                                    struct ieee80211_tx_control *control)
1684 {
1685         struct rt2x00_dev *rt2x00dev = hw->priv;
1686         struct usb_device *usb_dev = rt2x00dev_usb_dev(rt2x00dev);
1687         struct rt2x00_intf *intf = vif_to_intf(control->vif);
1688         struct queue_entry_priv_usb_bcn *priv_bcn;
1689         struct skb_frame_desc *skbdesc;
1690         int pipe = usb_sndbulkpipe(usb_dev, 1);
1691         int length;
1692         u16 reg;
1693
1694         if (unlikely(!intf->beacon))
1695                 return -ENOBUFS;
1696
1697         priv_bcn = intf->beacon->priv_data;
1698
1699         /*
1700          * Add the descriptor in front of the skb.
1701          */
1702         skb_push(skb, intf->beacon->queue->desc_size);
1703         memset(skb->data, 0, intf->beacon->queue->desc_size);
1704
1705         /*
1706          * Fill in skb descriptor
1707          */
1708         skbdesc = get_skb_frame_desc(skb);
1709         memset(skbdesc, 0, sizeof(*skbdesc));
1710         skbdesc->flags |= FRAME_DESC_DRIVER_GENERATED;
1711         skbdesc->data = skb->data + intf->beacon->queue->desc_size;
1712         skbdesc->data_len = skb->len - intf->beacon->queue->desc_size;
1713         skbdesc->desc = skb->data;
1714         skbdesc->desc_len = intf->beacon->queue->desc_size;
1715         skbdesc->entry = intf->beacon;
1716
1717         /*
1718          * Disable beaconing while we are reloading the beacon data,
1719          * otherwise we might be sending out invalid data.
1720          */
1721         rt2500usb_register_read(rt2x00dev, TXRX_CSR19, &reg);
1722         rt2x00_set_field16(&reg, TXRX_CSR19_TSF_COUNT, 0);
1723         rt2x00_set_field16(&reg, TXRX_CSR19_TBCN, 0);
1724         rt2x00_set_field16(&reg, TXRX_CSR19_BEACON_GEN, 0);
1725         rt2500usb_register_write(rt2x00dev, TXRX_CSR19, reg);
1726
1727         /*
1728          * mac80211 doesn't provide the control->queue variable
1729          * for beacons. Set our own queue identification so
1730          * it can be used during descriptor initialization.
1731          */
1732         control->queue = RT2X00_BCN_QUEUE_BEACON;
1733         rt2x00lib_write_tx_desc(rt2x00dev, skb, control);
1734
1735         /*
1736          * USB devices cannot blindly pass the skb->len as the
1737          * length of the data to usb_fill_bulk_urb. Pass the skb
1738          * to the driver to determine what the length should be.
1739          */
1740         length = rt2500usb_get_tx_data_len(rt2x00dev, skb);
1741
1742         usb_fill_bulk_urb(priv_bcn->urb, usb_dev, pipe,
1743                           skb->data, length, rt2500usb_beacondone,
1744                           intf->beacon);
1745
1746         /*
1747          * Second we need to create the guardian byte.
1748          * We only need a single byte, so lets recycle
1749          * the 'flags' field we are not using for beacons.
1750          */
1751         priv_bcn->guardian_data = 0;
1752         usb_fill_bulk_urb(priv_bcn->guardian_urb, usb_dev, pipe,
1753                           &priv_bcn->guardian_data, 1, rt2500usb_beacondone,
1754                           intf->beacon);
1755
1756         /*
1757          * Send out the guardian byte.
1758          */
1759         usb_submit_urb(priv_bcn->guardian_urb, GFP_ATOMIC);
1760
1761         /*
1762          * Enable beacon generation.
1763          */
1764         rt2500usb_kick_tx_queue(rt2x00dev, control->queue);
1765
1766         return 0;
1767 }
1768
1769 static const struct ieee80211_ops rt2500usb_mac80211_ops = {
1770         .tx                     = rt2x00mac_tx,
1771         .start                  = rt2x00mac_start,
1772         .stop                   = rt2x00mac_stop,
1773         .add_interface          = rt2x00mac_add_interface,
1774         .remove_interface       = rt2x00mac_remove_interface,
1775         .config                 = rt2x00mac_config,
1776         .config_interface       = rt2x00mac_config_interface,
1777         .configure_filter       = rt2x00mac_configure_filter,
1778         .get_stats              = rt2x00mac_get_stats,
1779         .bss_info_changed       = rt2x00mac_bss_info_changed,
1780         .conf_tx                = rt2x00mac_conf_tx,
1781         .get_tx_stats           = rt2x00mac_get_tx_stats,
1782         .beacon_update          = rt2500usb_beacon_update,
1783 };
1784
1785 static const struct rt2x00lib_ops rt2500usb_rt2x00_ops = {
1786         .probe_hw               = rt2500usb_probe_hw,
1787         .initialize             = rt2x00usb_initialize,
1788         .uninitialize           = rt2x00usb_uninitialize,
1789         .init_rxentry           = rt2x00usb_init_rxentry,
1790         .init_txentry           = rt2x00usb_init_txentry,
1791         .set_device_state       = rt2500usb_set_device_state,
1792         .link_stats             = rt2500usb_link_stats,
1793         .reset_tuner            = rt2500usb_reset_tuner,
1794         .link_tuner             = rt2500usb_link_tuner,
1795         .led_brightness         = rt2500usb_led_brightness,
1796         .write_tx_desc          = rt2500usb_write_tx_desc,
1797         .write_tx_data          = rt2x00usb_write_tx_data,
1798         .get_tx_data_len        = rt2500usb_get_tx_data_len,
1799         .kick_tx_queue          = rt2500usb_kick_tx_queue,
1800         .fill_rxdone            = rt2500usb_fill_rxdone,
1801         .config_filter          = rt2500usb_config_filter,
1802         .config_intf            = rt2500usb_config_intf,
1803         .config_erp             = rt2500usb_config_erp,
1804         .config                 = rt2500usb_config,
1805 };
1806
1807 static const struct data_queue_desc rt2500usb_queue_rx = {
1808         .entry_num              = RX_ENTRIES,
1809         .data_size              = DATA_FRAME_SIZE,
1810         .desc_size              = RXD_DESC_SIZE,
1811         .priv_size              = sizeof(struct queue_entry_priv_usb_rx),
1812 };
1813
1814 static const struct data_queue_desc rt2500usb_queue_tx = {
1815         .entry_num              = TX_ENTRIES,
1816         .data_size              = DATA_FRAME_SIZE,
1817         .desc_size              = TXD_DESC_SIZE,
1818         .priv_size              = sizeof(struct queue_entry_priv_usb_tx),
1819 };
1820
1821 static const struct data_queue_desc rt2500usb_queue_bcn = {
1822         .entry_num              = BEACON_ENTRIES,
1823         .data_size              = MGMT_FRAME_SIZE,
1824         .desc_size              = TXD_DESC_SIZE,
1825         .priv_size              = sizeof(struct queue_entry_priv_usb_bcn),
1826 };
1827
1828 static const struct data_queue_desc rt2500usb_queue_atim = {
1829         .entry_num              = ATIM_ENTRIES,
1830         .data_size              = DATA_FRAME_SIZE,
1831         .desc_size              = TXD_DESC_SIZE,
1832         .priv_size              = sizeof(struct queue_entry_priv_usb_tx),
1833 };
1834
1835 static const struct rt2x00_ops rt2500usb_ops = {
1836         .name           = KBUILD_MODNAME,
1837         .max_sta_intf   = 1,
1838         .max_ap_intf    = 1,
1839         .eeprom_size    = EEPROM_SIZE,
1840         .rf_size        = RF_SIZE,
1841         .rx             = &rt2500usb_queue_rx,
1842         .tx             = &rt2500usb_queue_tx,
1843         .bcn            = &rt2500usb_queue_bcn,
1844         .atim           = &rt2500usb_queue_atim,
1845         .lib            = &rt2500usb_rt2x00_ops,
1846         .hw             = &rt2500usb_mac80211_ops,
1847 #ifdef CONFIG_RT2X00_LIB_DEBUGFS
1848         .debugfs        = &rt2500usb_rt2x00debug,
1849 #endif /* CONFIG_RT2X00_LIB_DEBUGFS */
1850 };
1851
1852 /*
1853  * rt2500usb module information.
1854  */
1855 static struct usb_device_id rt2500usb_device_table[] = {
1856         /* ASUS */
1857         { USB_DEVICE(0x0b05, 0x1706), USB_DEVICE_DATA(&rt2500usb_ops) },
1858         { USB_DEVICE(0x0b05, 0x1707), USB_DEVICE_DATA(&rt2500usb_ops) },
1859         /* Belkin */
1860         { USB_DEVICE(0x050d, 0x7050), USB_DEVICE_DATA(&rt2500usb_ops) },
1861         { USB_DEVICE(0x050d, 0x7051), USB_DEVICE_DATA(&rt2500usb_ops) },
1862         { USB_DEVICE(0x050d, 0x705a), USB_DEVICE_DATA(&rt2500usb_ops) },
1863         /* Cisco Systems */
1864         { USB_DEVICE(0x13b1, 0x000d), USB_DEVICE_DATA(&rt2500usb_ops) },
1865         { USB_DEVICE(0x13b1, 0x0011), USB_DEVICE_DATA(&rt2500usb_ops) },
1866         { USB_DEVICE(0x13b1, 0x001a), USB_DEVICE_DATA(&rt2500usb_ops) },
1867         /* Conceptronic */
1868         { USB_DEVICE(0x14b2, 0x3c02), USB_DEVICE_DATA(&rt2500usb_ops) },
1869         /* D-LINK */
1870         { USB_DEVICE(0x2001, 0x3c00), USB_DEVICE_DATA(&rt2500usb_ops) },
1871         /* Gigabyte */
1872         { USB_DEVICE(0x1044, 0x8001), USB_DEVICE_DATA(&rt2500usb_ops) },
1873         { USB_DEVICE(0x1044, 0x8007), USB_DEVICE_DATA(&rt2500usb_ops) },
1874         /* Hercules */
1875         { USB_DEVICE(0x06f8, 0xe000), USB_DEVICE_DATA(&rt2500usb_ops) },
1876         /* Melco */
1877         { USB_DEVICE(0x0411, 0x005e), USB_DEVICE_DATA(&rt2500usb_ops) },
1878         { USB_DEVICE(0x0411, 0x0066), USB_DEVICE_DATA(&rt2500usb_ops) },
1879         { USB_DEVICE(0x0411, 0x0067), USB_DEVICE_DATA(&rt2500usb_ops) },
1880         { USB_DEVICE(0x0411, 0x008b), USB_DEVICE_DATA(&rt2500usb_ops) },
1881         { USB_DEVICE(0x0411, 0x0097), USB_DEVICE_DATA(&rt2500usb_ops) },
1882         /* MSI */
1883         { USB_DEVICE(0x0db0, 0x6861), USB_DEVICE_DATA(&rt2500usb_ops) },
1884         { USB_DEVICE(0x0db0, 0x6865), USB_DEVICE_DATA(&rt2500usb_ops) },
1885         { USB_DEVICE(0x0db0, 0x6869), USB_DEVICE_DATA(&rt2500usb_ops) },
1886         /* Ralink */
1887         { USB_DEVICE(0x148f, 0x1706), USB_DEVICE_DATA(&rt2500usb_ops) },
1888         { USB_DEVICE(0x148f, 0x2570), USB_DEVICE_DATA(&rt2500usb_ops) },
1889         { USB_DEVICE(0x148f, 0x2573), USB_DEVICE_DATA(&rt2500usb_ops) },
1890         { USB_DEVICE(0x148f, 0x9020), USB_DEVICE_DATA(&rt2500usb_ops) },
1891         /* Siemens */
1892         { USB_DEVICE(0x0681, 0x3c06), USB_DEVICE_DATA(&rt2500usb_ops) },
1893         /* SMC */
1894         { USB_DEVICE(0x0707, 0xee13), USB_DEVICE_DATA(&rt2500usb_ops) },
1895         /* Spairon */
1896         { USB_DEVICE(0x114b, 0x0110), USB_DEVICE_DATA(&rt2500usb_ops) },
1897         /* Trust */
1898         { USB_DEVICE(0x0eb0, 0x9020), USB_DEVICE_DATA(&rt2500usb_ops) },
1899         /* Zinwell */
1900         { USB_DEVICE(0x5a57, 0x0260), USB_DEVICE_DATA(&rt2500usb_ops) },
1901         { 0, }
1902 };
1903
1904 MODULE_AUTHOR(DRV_PROJECT);
1905 MODULE_VERSION(DRV_VERSION);
1906 MODULE_DESCRIPTION("Ralink RT2500 USB Wireless LAN driver.");
1907 MODULE_SUPPORTED_DEVICE("Ralink RT2570 USB chipset based cards");
1908 MODULE_DEVICE_TABLE(usb, rt2500usb_device_table);
1909 MODULE_LICENSE("GPL");
1910
1911 static struct usb_driver rt2500usb_driver = {
1912         .name           = KBUILD_MODNAME,
1913         .id_table       = rt2500usb_device_table,
1914         .probe          = rt2x00usb_probe,
1915         .disconnect     = rt2x00usb_disconnect,
1916         .suspend        = rt2x00usb_suspend,
1917         .resume         = rt2x00usb_resume,
1918 };
1919
1920 static int __init rt2500usb_init(void)
1921 {
1922         return usb_register(&rt2500usb_driver);
1923 }
1924
1925 static void __exit rt2500usb_exit(void)
1926 {
1927         usb_deregister(&rt2500usb_driver);
1928 }
1929
1930 module_init(rt2500usb_init);
1931 module_exit(rt2500usb_exit);