[PATCH] ipw2100: Fix a gcc compile warning
[linux-2.6/cjktty.git] / drivers / net / wireless / ipw2100.c
blob027352a84dce3c664023e451f399c36092e97a5c
1 /******************************************************************************
3 Copyright(c) 2003 - 2005 Intel Corporation. All rights reserved.
5 This program is free software; you can redistribute it and/or modify it
6 under the terms of version 2 of the GNU General Public License as
7 published by the Free Software Foundation.
9 This program is distributed in the hope that it will be useful, but WITHOUT
10 ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or
11 FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License for
12 more details.
14 You should have received a copy of the GNU General Public License along with
15 this program; if not, write to the Free Software Foundation, Inc., 59
16 Temple Place - Suite 330, Boston, MA 02111-1307, USA.
18 The full GNU General Public License is included in this distribution in the
19 file called LICENSE.
21 Contact Information:
22 James P. Ketrenos <ipw2100-admin@linux.intel.com>
23 Intel Corporation, 5200 N.E. Elam Young Parkway, Hillsboro, OR 97124-6497
25 Portions of this file are based on the sample_* files provided by Wireless
26 Extensions 0.26 package and copyright (c) 1997-2003 Jean Tourrilhes
27 <jt@hpl.hp.com>
29 Portions of this file are based on the Host AP project,
30 Copyright (c) 2001-2002, SSH Communications Security Corp and Jouni Malinen
31 <jkmaline@cc.hut.fi>
32 Copyright (c) 2002-2003, Jouni Malinen <jkmaline@cc.hut.fi>
34 Portions of ipw2100_mod_firmware_load, ipw2100_do_mod_firmware_load, and
35 ipw2100_fw_load are loosely based on drivers/sound/sound_firmware.c
36 available in the 2.4.25 kernel sources, and are copyright (c) Alan Cox
38 ******************************************************************************/
41 Initial driver on which this is based was developed by Janusz Gorycki,
42 Maciej Urbaniak, and Maciej Sosnowski.
44 Promiscuous mode support added by Jacek Wysoczynski and Maciej Urbaniak.
46 Theory of Operation
48 Tx - Commands and Data
50 Firmware and host share a circular queue of Transmit Buffer Descriptors (TBDs)
51 Each TBD contains a pointer to the physical (dma_addr_t) address of data being
52 sent to the firmware as well as the length of the data.
54 The host writes to the TBD queue at the WRITE index. The WRITE index points
55 to the _next_ packet to be written and is advanced when after the TBD has been
56 filled.
58 The firmware pulls from the TBD queue at the READ index. The READ index points
59 to the currently being read entry, and is advanced once the firmware is
60 done with a packet.
62 When data is sent to the firmware, the first TBD is used to indicate to the
63 firmware if a Command or Data is being sent. If it is Command, all of the
64 command information is contained within the physical address referred to by the
65 TBD. If it is Data, the first TBD indicates the type of data packet, number
66 of fragments, etc. The next TBD then referrs to the actual packet location.
68 The Tx flow cycle is as follows:
70 1) ipw2100_tx() is called by kernel with SKB to transmit
71 2) Packet is move from the tx_free_list and appended to the transmit pending
72 list (tx_pend_list)
73 3) work is scheduled to move pending packets into the shared circular queue.
74 4) when placing packet in the circular queue, the incoming SKB is DMA mapped
75 to a physical address. That address is entered into a TBD. Two TBDs are
76 filled out. The first indicating a data packet, the second referring to the
77 actual payload data.
78 5) the packet is removed from tx_pend_list and placed on the end of the
79 firmware pending list (fw_pend_list)
80 6) firmware is notified that the WRITE index has
81 7) Once the firmware has processed the TBD, INTA is triggered.
82 8) For each Tx interrupt received from the firmware, the READ index is checked
83 to see which TBDs are done being processed.
84 9) For each TBD that has been processed, the ISR pulls the oldest packet
85 from the fw_pend_list.
86 10)The packet structure contained in the fw_pend_list is then used
87 to unmap the DMA address and to free the SKB originally passed to the driver
88 from the kernel.
89 11)The packet structure is placed onto the tx_free_list
91 The above steps are the same for commands, only the msg_free_list/msg_pend_list
92 are used instead of tx_free_list/tx_pend_list
94 ...
96 Critical Sections / Locking :
98 There are two locks utilized. The first is the low level lock (priv->low_lock)
99 that protects the following:
101 - Access to the Tx/Rx queue lists via priv->low_lock. The lists are as follows:
103 tx_free_list : Holds pre-allocated Tx buffers.
104 TAIL modified in __ipw2100_tx_process()
105 HEAD modified in ipw2100_tx()
107 tx_pend_list : Holds used Tx buffers waiting to go into the TBD ring
108 TAIL modified ipw2100_tx()
109 HEAD modified by ipw2100_tx_send_data()
111 msg_free_list : Holds pre-allocated Msg (Command) buffers
112 TAIL modified in __ipw2100_tx_process()
113 HEAD modified in ipw2100_hw_send_command()
115 msg_pend_list : Holds used Msg buffers waiting to go into the TBD ring
116 TAIL modified in ipw2100_hw_send_command()
117 HEAD modified in ipw2100_tx_send_commands()
119 The flow of data on the TX side is as follows:
121 MSG_FREE_LIST + COMMAND => MSG_PEND_LIST => TBD => MSG_FREE_LIST
122 TX_FREE_LIST + DATA => TX_PEND_LIST => TBD => TX_FREE_LIST
124 The methods that work on the TBD ring are protected via priv->low_lock.
126 - The internal data state of the device itself
127 - Access to the firmware read/write indexes for the BD queues
128 and associated logic
130 All external entry functions are locked with the priv->action_lock to ensure
131 that only one external action is invoked at a time.
136 #include <linux/compiler.h>
137 #include <linux/config.h>
138 #include <linux/errno.h>
139 #include <linux/if_arp.h>
140 #include <linux/in6.h>
141 #include <linux/in.h>
142 #include <linux/ip.h>
143 #include <linux/kernel.h>
144 #include <linux/kmod.h>
145 #include <linux/module.h>
146 #include <linux/netdevice.h>
147 #include <linux/ethtool.h>
148 #include <linux/pci.h>
149 #include <linux/dma-mapping.h>
150 #include <linux/proc_fs.h>
151 #include <linux/skbuff.h>
152 #include <asm/uaccess.h>
153 #include <asm/io.h>
154 #define __KERNEL_SYSCALLS__
155 #include <linux/fs.h>
156 #include <linux/mm.h>
157 #include <linux/slab.h>
158 #include <linux/unistd.h>
159 #include <linux/stringify.h>
160 #include <linux/tcp.h>
161 #include <linux/types.h>
162 #include <linux/version.h>
163 #include <linux/time.h>
164 #include <linux/firmware.h>
165 #include <linux/acpi.h>
166 #include <linux/ctype.h>
168 #include "ipw2100.h"
170 #define IPW2100_VERSION "1.1.3"
172 #define DRV_NAME "ipw2100"
173 #define DRV_VERSION IPW2100_VERSION
174 #define DRV_DESCRIPTION "Intel(R) PRO/Wireless 2100 Network Driver"
175 #define DRV_COPYRIGHT "Copyright(c) 2003-2005 Intel Corporation"
177 /* Debugging stuff */
178 #ifdef CONFIG_IPW2100_DEBUG
179 #define CONFIG_IPW2100_RX_DEBUG /* Reception debugging */
180 #endif
182 MODULE_DESCRIPTION(DRV_DESCRIPTION);
183 MODULE_VERSION(DRV_VERSION);
184 MODULE_AUTHOR(DRV_COPYRIGHT);
185 MODULE_LICENSE("GPL");
187 static int debug = 0;
188 static int mode = 0;
189 static int channel = 0;
190 static int associate = 1;
191 static int disable = 0;
192 #ifdef CONFIG_PM
193 static struct ipw2100_fw ipw2100_firmware;
194 #endif
196 #include <linux/moduleparam.h>
197 module_param(debug, int, 0444);
198 module_param(mode, int, 0444);
199 module_param(channel, int, 0444);
200 module_param(associate, int, 0444);
201 module_param(disable, int, 0444);
203 MODULE_PARM_DESC(debug, "debug level");
204 MODULE_PARM_DESC(mode, "network mode (0=BSS,1=IBSS,2=Monitor)");
205 MODULE_PARM_DESC(channel, "channel");
206 MODULE_PARM_DESC(associate, "auto associate when scanning (default on)");
207 MODULE_PARM_DESC(disable, "manually disable the radio (default 0 [radio on])");
209 static u32 ipw2100_debug_level = IPW_DL_NONE;
211 #ifdef CONFIG_IPW2100_DEBUG
212 #define IPW_DEBUG(level, message...) \
213 do { \
214 if (ipw2100_debug_level & (level)) { \
215 printk(KERN_DEBUG "ipw2100: %c %s ", \
216 in_interrupt() ? 'I' : 'U', __FUNCTION__); \
217 printk(message); \
219 } while (0)
220 #else
221 #define IPW_DEBUG(level, message...) do {} while (0)
222 #endif /* CONFIG_IPW2100_DEBUG */
224 #ifdef CONFIG_IPW2100_DEBUG
225 static const char *command_types[] = {
226 "undefined",
227 "unused", /* HOST_ATTENTION */
228 "HOST_COMPLETE",
229 "unused", /* SLEEP */
230 "unused", /* HOST_POWER_DOWN */
231 "unused",
232 "SYSTEM_CONFIG",
233 "unused", /* SET_IMR */
234 "SSID",
235 "MANDATORY_BSSID",
236 "AUTHENTICATION_TYPE",
237 "ADAPTER_ADDRESS",
238 "PORT_TYPE",
239 "INTERNATIONAL_MODE",
240 "CHANNEL",
241 "RTS_THRESHOLD",
242 "FRAG_THRESHOLD",
243 "POWER_MODE",
244 "TX_RATES",
245 "BASIC_TX_RATES",
246 "WEP_KEY_INFO",
247 "unused",
248 "unused",
249 "unused",
250 "unused",
251 "WEP_KEY_INDEX",
252 "WEP_FLAGS",
253 "ADD_MULTICAST",
254 "CLEAR_ALL_MULTICAST",
255 "BEACON_INTERVAL",
256 "ATIM_WINDOW",
257 "CLEAR_STATISTICS",
258 "undefined",
259 "undefined",
260 "undefined",
261 "undefined",
262 "TX_POWER_INDEX",
263 "undefined",
264 "undefined",
265 "undefined",
266 "undefined",
267 "undefined",
268 "undefined",
269 "BROADCAST_SCAN",
270 "CARD_DISABLE",
271 "PREFERRED_BSSID",
272 "SET_SCAN_OPTIONS",
273 "SCAN_DWELL_TIME",
274 "SWEEP_TABLE",
275 "AP_OR_STATION_TABLE",
276 "GROUP_ORDINALS",
277 "SHORT_RETRY_LIMIT",
278 "LONG_RETRY_LIMIT",
279 "unused", /* SAVE_CALIBRATION */
280 "unused", /* RESTORE_CALIBRATION */
281 "undefined",
282 "undefined",
283 "undefined",
284 "HOST_PRE_POWER_DOWN",
285 "unused", /* HOST_INTERRUPT_COALESCING */
286 "undefined",
287 "CARD_DISABLE_PHY_OFF",
288 "MSDU_TX_RATES" "undefined",
289 "undefined",
290 "SET_STATION_STAT_BITS",
291 "CLEAR_STATIONS_STAT_BITS",
292 "LEAP_ROGUE_MODE",
293 "SET_SECURITY_INFORMATION",
294 "DISASSOCIATION_BSSID",
295 "SET_WPA_ASS_IE"
297 #endif
299 /* Pre-decl until we get the code solid and then we can clean it up */
300 static void ipw2100_tx_send_commands(struct ipw2100_priv *priv);
301 static void ipw2100_tx_send_data(struct ipw2100_priv *priv);
302 static int ipw2100_adapter_setup(struct ipw2100_priv *priv);
304 static void ipw2100_queues_initialize(struct ipw2100_priv *priv);
305 static void ipw2100_queues_free(struct ipw2100_priv *priv);
306 static int ipw2100_queues_allocate(struct ipw2100_priv *priv);
308 static int ipw2100_fw_download(struct ipw2100_priv *priv,
309 struct ipw2100_fw *fw);
310 static int ipw2100_get_firmware(struct ipw2100_priv *priv,
311 struct ipw2100_fw *fw);
312 static int ipw2100_get_fwversion(struct ipw2100_priv *priv, char *buf,
313 size_t max);
314 static int ipw2100_get_ucodeversion(struct ipw2100_priv *priv, char *buf,
315 size_t max);
316 static void ipw2100_release_firmware(struct ipw2100_priv *priv,
317 struct ipw2100_fw *fw);
318 static int ipw2100_ucode_download(struct ipw2100_priv *priv,
319 struct ipw2100_fw *fw);
320 static void ipw2100_wx_event_work(struct ipw2100_priv *priv);
321 static struct iw_statistics *ipw2100_wx_wireless_stats(struct net_device *dev);
322 static struct iw_handler_def ipw2100_wx_handler_def;
324 static inline void read_register(struct net_device *dev, u32 reg, u32 * val)
326 *val = readl((void __iomem *)(dev->base_addr + reg));
327 IPW_DEBUG_IO("r: 0x%08X => 0x%08X\n", reg, *val);
330 static inline void write_register(struct net_device *dev, u32 reg, u32 val)
332 writel(val, (void __iomem *)(dev->base_addr + reg));
333 IPW_DEBUG_IO("w: 0x%08X <= 0x%08X\n", reg, val);
336 static inline void read_register_word(struct net_device *dev, u32 reg,
337 u16 * val)
339 *val = readw((void __iomem *)(dev->base_addr + reg));
340 IPW_DEBUG_IO("r: 0x%08X => %04X\n", reg, *val);
343 static inline void read_register_byte(struct net_device *dev, u32 reg, u8 * val)
345 *val = readb((void __iomem *)(dev->base_addr + reg));
346 IPW_DEBUG_IO("r: 0x%08X => %02X\n", reg, *val);
349 static inline void write_register_word(struct net_device *dev, u32 reg, u16 val)
351 writew(val, (void __iomem *)(dev->base_addr + reg));
352 IPW_DEBUG_IO("w: 0x%08X <= %04X\n", reg, val);
355 static inline void write_register_byte(struct net_device *dev, u32 reg, u8 val)
357 writeb(val, (void __iomem *)(dev->base_addr + reg));
358 IPW_DEBUG_IO("w: 0x%08X =< %02X\n", reg, val);
361 static inline void read_nic_dword(struct net_device *dev, u32 addr, u32 * val)
363 write_register(dev, IPW_REG_INDIRECT_ACCESS_ADDRESS,
364 addr & IPW_REG_INDIRECT_ADDR_MASK);
365 read_register(dev, IPW_REG_INDIRECT_ACCESS_DATA, val);
368 static inline void write_nic_dword(struct net_device *dev, u32 addr, u32 val)
370 write_register(dev, IPW_REG_INDIRECT_ACCESS_ADDRESS,
371 addr & IPW_REG_INDIRECT_ADDR_MASK);
372 write_register(dev, IPW_REG_INDIRECT_ACCESS_DATA, val);
375 static inline void read_nic_word(struct net_device *dev, u32 addr, u16 * val)
377 write_register(dev, IPW_REG_INDIRECT_ACCESS_ADDRESS,
378 addr & IPW_REG_INDIRECT_ADDR_MASK);
379 read_register_word(dev, IPW_REG_INDIRECT_ACCESS_DATA, val);
382 static inline void write_nic_word(struct net_device *dev, u32 addr, u16 val)
384 write_register(dev, IPW_REG_INDIRECT_ACCESS_ADDRESS,
385 addr & IPW_REG_INDIRECT_ADDR_MASK);
386 write_register_word(dev, IPW_REG_INDIRECT_ACCESS_DATA, val);
389 static inline void read_nic_byte(struct net_device *dev, u32 addr, u8 * val)
391 write_register(dev, IPW_REG_INDIRECT_ACCESS_ADDRESS,
392 addr & IPW_REG_INDIRECT_ADDR_MASK);
393 read_register_byte(dev, IPW_REG_INDIRECT_ACCESS_DATA, val);
396 static inline void write_nic_byte(struct net_device *dev, u32 addr, u8 val)
398 write_register(dev, IPW_REG_INDIRECT_ACCESS_ADDRESS,
399 addr & IPW_REG_INDIRECT_ADDR_MASK);
400 write_register_byte(dev, IPW_REG_INDIRECT_ACCESS_DATA, val);
403 static inline void write_nic_auto_inc_address(struct net_device *dev, u32 addr)
405 write_register(dev, IPW_REG_AUTOINCREMENT_ADDRESS,
406 addr & IPW_REG_INDIRECT_ADDR_MASK);
409 static inline void write_nic_dword_auto_inc(struct net_device *dev, u32 val)
411 write_register(dev, IPW_REG_AUTOINCREMENT_DATA, val);
414 static void write_nic_memory(struct net_device *dev, u32 addr, u32 len,
415 const u8 * buf)
417 u32 aligned_addr;
418 u32 aligned_len;
419 u32 dif_len;
420 u32 i;
422 /* read first nibble byte by byte */
423 aligned_addr = addr & (~0x3);
424 dif_len = addr - aligned_addr;
425 if (dif_len) {
426 /* Start reading at aligned_addr + dif_len */
427 write_register(dev, IPW_REG_INDIRECT_ACCESS_ADDRESS,
428 aligned_addr);
429 for (i = dif_len; i < 4; i++, buf++)
430 write_register_byte(dev,
431 IPW_REG_INDIRECT_ACCESS_DATA + i,
432 *buf);
434 len -= dif_len;
435 aligned_addr += 4;
438 /* read DWs through autoincrement registers */
439 write_register(dev, IPW_REG_AUTOINCREMENT_ADDRESS, aligned_addr);
440 aligned_len = len & (~0x3);
441 for (i = 0; i < aligned_len; i += 4, buf += 4, aligned_addr += 4)
442 write_register(dev, IPW_REG_AUTOINCREMENT_DATA, *(u32 *) buf);
444 /* copy the last nibble */
445 dif_len = len - aligned_len;
446 write_register(dev, IPW_REG_INDIRECT_ACCESS_ADDRESS, aligned_addr);
447 for (i = 0; i < dif_len; i++, buf++)
448 write_register_byte(dev, IPW_REG_INDIRECT_ACCESS_DATA + i,
449 *buf);
452 static void read_nic_memory(struct net_device *dev, u32 addr, u32 len,
453 u8 * buf)
455 u32 aligned_addr;
456 u32 aligned_len;
457 u32 dif_len;
458 u32 i;
460 /* read first nibble byte by byte */
461 aligned_addr = addr & (~0x3);
462 dif_len = addr - aligned_addr;
463 if (dif_len) {
464 /* Start reading at aligned_addr + dif_len */
465 write_register(dev, IPW_REG_INDIRECT_ACCESS_ADDRESS,
466 aligned_addr);
467 for (i = dif_len; i < 4; i++, buf++)
468 read_register_byte(dev,
469 IPW_REG_INDIRECT_ACCESS_DATA + i,
470 buf);
472 len -= dif_len;
473 aligned_addr += 4;
476 /* read DWs through autoincrement registers */
477 write_register(dev, IPW_REG_AUTOINCREMENT_ADDRESS, aligned_addr);
478 aligned_len = len & (~0x3);
479 for (i = 0; i < aligned_len; i += 4, buf += 4, aligned_addr += 4)
480 read_register(dev, IPW_REG_AUTOINCREMENT_DATA, (u32 *) buf);
482 /* copy the last nibble */
483 dif_len = len - aligned_len;
484 write_register(dev, IPW_REG_INDIRECT_ACCESS_ADDRESS, aligned_addr);
485 for (i = 0; i < dif_len; i++, buf++)
486 read_register_byte(dev, IPW_REG_INDIRECT_ACCESS_DATA + i, buf);
489 static inline int ipw2100_hw_is_adapter_in_system(struct net_device *dev)
491 return (dev->base_addr &&
492 (readl
493 ((void __iomem *)(dev->base_addr +
494 IPW_REG_DOA_DEBUG_AREA_START))
495 == IPW_DATA_DOA_DEBUG_VALUE));
498 static int ipw2100_get_ordinal(struct ipw2100_priv *priv, u32 ord,
499 void *val, u32 * len)
501 struct ipw2100_ordinals *ordinals = &priv->ordinals;
502 u32 addr;
503 u32 field_info;
504 u16 field_len;
505 u16 field_count;
506 u32 total_length;
508 if (ordinals->table1_addr == 0) {
509 printk(KERN_WARNING DRV_NAME ": attempt to use fw ordinals "
510 "before they have been loaded.\n");
511 return -EINVAL;
514 if (IS_ORDINAL_TABLE_ONE(ordinals, ord)) {
515 if (*len < IPW_ORD_TAB_1_ENTRY_SIZE) {
516 *len = IPW_ORD_TAB_1_ENTRY_SIZE;
518 printk(KERN_WARNING DRV_NAME
519 ": ordinal buffer length too small, need %zd\n",
520 IPW_ORD_TAB_1_ENTRY_SIZE);
522 return -EINVAL;
525 read_nic_dword(priv->net_dev,
526 ordinals->table1_addr + (ord << 2), &addr);
527 read_nic_dword(priv->net_dev, addr, val);
529 *len = IPW_ORD_TAB_1_ENTRY_SIZE;
531 return 0;
534 if (IS_ORDINAL_TABLE_TWO(ordinals, ord)) {
536 ord -= IPW_START_ORD_TAB_2;
538 /* get the address of statistic */
539 read_nic_dword(priv->net_dev,
540 ordinals->table2_addr + (ord << 3), &addr);
542 /* get the second DW of statistics ;
543 * two 16-bit words - first is length, second is count */
544 read_nic_dword(priv->net_dev,
545 ordinals->table2_addr + (ord << 3) + sizeof(u32),
546 &field_info);
548 /* get each entry length */
549 field_len = *((u16 *) & field_info);
551 /* get number of entries */
552 field_count = *(((u16 *) & field_info) + 1);
554 /* abort if no enought memory */
555 total_length = field_len * field_count;
556 if (total_length > *len) {
557 *len = total_length;
558 return -EINVAL;
561 *len = total_length;
562 if (!total_length)
563 return 0;
565 /* read the ordinal data from the SRAM */
566 read_nic_memory(priv->net_dev, addr, total_length, val);
568 return 0;
571 printk(KERN_WARNING DRV_NAME ": ordinal %d neither in table 1 nor "
572 "in table 2\n", ord);
574 return -EINVAL;
577 static int ipw2100_set_ordinal(struct ipw2100_priv *priv, u32 ord, u32 * val,
578 u32 * len)
580 struct ipw2100_ordinals *ordinals = &priv->ordinals;
581 u32 addr;
583 if (IS_ORDINAL_TABLE_ONE(ordinals, ord)) {
584 if (*len != IPW_ORD_TAB_1_ENTRY_SIZE) {
585 *len = IPW_ORD_TAB_1_ENTRY_SIZE;
586 IPW_DEBUG_INFO("wrong size\n");
587 return -EINVAL;
590 read_nic_dword(priv->net_dev,
591 ordinals->table1_addr + (ord << 2), &addr);
593 write_nic_dword(priv->net_dev, addr, *val);
595 *len = IPW_ORD_TAB_1_ENTRY_SIZE;
597 return 0;
600 IPW_DEBUG_INFO("wrong table\n");
601 if (IS_ORDINAL_TABLE_TWO(ordinals, ord))
602 return -EINVAL;
604 return -EINVAL;
607 static char *snprint_line(char *buf, size_t count,
608 const u8 * data, u32 len, u32 ofs)
610 int out, i, j, l;
611 char c;
613 out = snprintf(buf, count, "%08X", ofs);
615 for (l = 0, i = 0; i < 2; i++) {
616 out += snprintf(buf + out, count - out, " ");
617 for (j = 0; j < 8 && l < len; j++, l++)
618 out += snprintf(buf + out, count - out, "%02X ",
619 data[(i * 8 + j)]);
620 for (; j < 8; j++)
621 out += snprintf(buf + out, count - out, " ");
624 out += snprintf(buf + out, count - out, " ");
625 for (l = 0, i = 0; i < 2; i++) {
626 out += snprintf(buf + out, count - out, " ");
627 for (j = 0; j < 8 && l < len; j++, l++) {
628 c = data[(i * 8 + j)];
629 if (!isascii(c) || !isprint(c))
630 c = '.';
632 out += snprintf(buf + out, count - out, "%c", c);
635 for (; j < 8; j++)
636 out += snprintf(buf + out, count - out, " ");
639 return buf;
642 static void printk_buf(int level, const u8 * data, u32 len)
644 char line[81];
645 u32 ofs = 0;
646 if (!(ipw2100_debug_level & level))
647 return;
649 while (len) {
650 printk(KERN_DEBUG "%s\n",
651 snprint_line(line, sizeof(line), &data[ofs],
652 min(len, 16U), ofs));
653 ofs += 16;
654 len -= min(len, 16U);
658 #define MAX_RESET_BACKOFF 10
660 static void schedule_reset(struct ipw2100_priv *priv)
662 unsigned long now = get_seconds();
664 /* If we haven't received a reset request within the backoff period,
665 * then we can reset the backoff interval so this reset occurs
666 * immediately */
667 if (priv->reset_backoff &&
668 (now - priv->last_reset > priv->reset_backoff))
669 priv->reset_backoff = 0;
671 priv->last_reset = get_seconds();
673 if (!(priv->status & STATUS_RESET_PENDING)) {
674 IPW_DEBUG_INFO("%s: Scheduling firmware restart (%ds).\n",
675 priv->net_dev->name, priv->reset_backoff);
676 netif_carrier_off(priv->net_dev);
677 netif_stop_queue(priv->net_dev);
678 priv->status |= STATUS_RESET_PENDING;
679 if (priv->reset_backoff)
680 queue_delayed_work(priv->workqueue, &priv->reset_work,
681 priv->reset_backoff * HZ);
682 else
683 queue_work(priv->workqueue, &priv->reset_work);
685 if (priv->reset_backoff < MAX_RESET_BACKOFF)
686 priv->reset_backoff++;
688 wake_up_interruptible(&priv->wait_command_queue);
689 } else
690 IPW_DEBUG_INFO("%s: Firmware restart already in progress.\n",
691 priv->net_dev->name);
695 #define HOST_COMPLETE_TIMEOUT (2 * HZ)
696 static int ipw2100_hw_send_command(struct ipw2100_priv *priv,
697 struct host_command *cmd)
699 struct list_head *element;
700 struct ipw2100_tx_packet *packet;
701 unsigned long flags;
702 int err = 0;
704 IPW_DEBUG_HC("Sending %s command (#%d), %d bytes\n",
705 command_types[cmd->host_command], cmd->host_command,
706 cmd->host_command_length);
707 printk_buf(IPW_DL_HC, (u8 *) cmd->host_command_parameters,
708 cmd->host_command_length);
710 spin_lock_irqsave(&priv->low_lock, flags);
712 if (priv->fatal_error) {
713 IPW_DEBUG_INFO
714 ("Attempt to send command while hardware in fatal error condition.\n");
715 err = -EIO;
716 goto fail_unlock;
719 if (!(priv->status & STATUS_RUNNING)) {
720 IPW_DEBUG_INFO
721 ("Attempt to send command while hardware is not running.\n");
722 err = -EIO;
723 goto fail_unlock;
726 if (priv->status & STATUS_CMD_ACTIVE) {
727 IPW_DEBUG_INFO
728 ("Attempt to send command while another command is pending.\n");
729 err = -EBUSY;
730 goto fail_unlock;
733 if (list_empty(&priv->msg_free_list)) {
734 IPW_DEBUG_INFO("no available msg buffers\n");
735 goto fail_unlock;
738 priv->status |= STATUS_CMD_ACTIVE;
739 priv->messages_sent++;
741 element = priv->msg_free_list.next;
743 packet = list_entry(element, struct ipw2100_tx_packet, list);
744 packet->jiffy_start = jiffies;
746 /* initialize the firmware command packet */
747 packet->info.c_struct.cmd->host_command_reg = cmd->host_command;
748 packet->info.c_struct.cmd->host_command_reg1 = cmd->host_command1;
749 packet->info.c_struct.cmd->host_command_len_reg =
750 cmd->host_command_length;
751 packet->info.c_struct.cmd->sequence = cmd->host_command_sequence;
753 memcpy(packet->info.c_struct.cmd->host_command_params_reg,
754 cmd->host_command_parameters,
755 sizeof(packet->info.c_struct.cmd->host_command_params_reg));
757 list_del(element);
758 DEC_STAT(&priv->msg_free_stat);
760 list_add_tail(element, &priv->msg_pend_list);
761 INC_STAT(&priv->msg_pend_stat);
763 ipw2100_tx_send_commands(priv);
764 ipw2100_tx_send_data(priv);
766 spin_unlock_irqrestore(&priv->low_lock, flags);
769 * We must wait for this command to complete before another
770 * command can be sent... but if we wait more than 3 seconds
771 * then there is a problem.
774 err =
775 wait_event_interruptible_timeout(priv->wait_command_queue,
776 !(priv->
777 status & STATUS_CMD_ACTIVE),
778 HOST_COMPLETE_TIMEOUT);
780 if (err == 0) {
781 IPW_DEBUG_INFO("Command completion failed out after %dms.\n",
782 1000 * (HOST_COMPLETE_TIMEOUT / HZ));
783 priv->fatal_error = IPW2100_ERR_MSG_TIMEOUT;
784 priv->status &= ~STATUS_CMD_ACTIVE;
785 schedule_reset(priv);
786 return -EIO;
789 if (priv->fatal_error) {
790 printk(KERN_WARNING DRV_NAME ": %s: firmware fatal error\n",
791 priv->net_dev->name);
792 return -EIO;
795 /* !!!!! HACK TEST !!!!!
796 * When lots of debug trace statements are enabled, the driver
797 * doesn't seem to have as many firmware restart cycles...
799 * As a test, we're sticking in a 1/100s delay here */
800 schedule_timeout_uninterruptible(msecs_to_jiffies(10));
802 return 0;
804 fail_unlock:
805 spin_unlock_irqrestore(&priv->low_lock, flags);
807 return err;
811 * Verify the values and data access of the hardware
812 * No locks needed or used. No functions called.
814 static int ipw2100_verify(struct ipw2100_priv *priv)
816 u32 data1, data2;
817 u32 address;
819 u32 val1 = 0x76543210;
820 u32 val2 = 0xFEDCBA98;
822 /* Domain 0 check - all values should be DOA_DEBUG */
823 for (address = IPW_REG_DOA_DEBUG_AREA_START;
824 address < IPW_REG_DOA_DEBUG_AREA_END; address += sizeof(u32)) {
825 read_register(priv->net_dev, address, &data1);
826 if (data1 != IPW_DATA_DOA_DEBUG_VALUE)
827 return -EIO;
830 /* Domain 1 check - use arbitrary read/write compare */
831 for (address = 0; address < 5; address++) {
832 /* The memory area is not used now */
833 write_register(priv->net_dev, IPW_REG_DOMAIN_1_OFFSET + 0x32,
834 val1);
835 write_register(priv->net_dev, IPW_REG_DOMAIN_1_OFFSET + 0x36,
836 val2);
837 read_register(priv->net_dev, IPW_REG_DOMAIN_1_OFFSET + 0x32,
838 &data1);
839 read_register(priv->net_dev, IPW_REG_DOMAIN_1_OFFSET + 0x36,
840 &data2);
841 if (val1 == data1 && val2 == data2)
842 return 0;
845 return -EIO;
850 * Loop until the CARD_DISABLED bit is the same value as the
851 * supplied parameter
853 * TODO: See if it would be more efficient to do a wait/wake
854 * cycle and have the completion event trigger the wakeup
857 #define IPW_CARD_DISABLE_COMPLETE_WAIT 100 // 100 milli
858 static int ipw2100_wait_for_card_state(struct ipw2100_priv *priv, int state)
860 int i;
861 u32 card_state;
862 u32 len = sizeof(card_state);
863 int err;
865 for (i = 0; i <= IPW_CARD_DISABLE_COMPLETE_WAIT * 1000; i += 50) {
866 err = ipw2100_get_ordinal(priv, IPW_ORD_CARD_DISABLED,
867 &card_state, &len);
868 if (err) {
869 IPW_DEBUG_INFO("Query of CARD_DISABLED ordinal "
870 "failed.\n");
871 return 0;
874 /* We'll break out if either the HW state says it is
875 * in the state we want, or if HOST_COMPLETE command
876 * finishes */
877 if ((card_state == state) ||
878 ((priv->status & STATUS_ENABLED) ?
879 IPW_HW_STATE_ENABLED : IPW_HW_STATE_DISABLED) == state) {
880 if (state == IPW_HW_STATE_ENABLED)
881 priv->status |= STATUS_ENABLED;
882 else
883 priv->status &= ~STATUS_ENABLED;
885 return 0;
888 udelay(50);
891 IPW_DEBUG_INFO("ipw2100_wait_for_card_state to %s state timed out\n",
892 state ? "DISABLED" : "ENABLED");
893 return -EIO;
896 /*********************************************************************
897 Procedure : sw_reset_and_clock
898 Purpose : Asserts s/w reset, asserts clock initialization
899 and waits for clock stabilization
900 ********************************************************************/
901 static int sw_reset_and_clock(struct ipw2100_priv *priv)
903 int i;
904 u32 r;
906 // assert s/w reset
907 write_register(priv->net_dev, IPW_REG_RESET_REG,
908 IPW_AUX_HOST_RESET_REG_SW_RESET);
910 // wait for clock stabilization
911 for (i = 0; i < 1000; i++) {
912 udelay(IPW_WAIT_RESET_ARC_COMPLETE_DELAY);
914 // check clock ready bit
915 read_register(priv->net_dev, IPW_REG_RESET_REG, &r);
916 if (r & IPW_AUX_HOST_RESET_REG_PRINCETON_RESET)
917 break;
920 if (i == 1000)
921 return -EIO; // TODO: better error value
923 /* set "initialization complete" bit to move adapter to
924 * D0 state */
925 write_register(priv->net_dev, IPW_REG_GP_CNTRL,
926 IPW_AUX_HOST_GP_CNTRL_BIT_INIT_DONE);
928 /* wait for clock stabilization */
929 for (i = 0; i < 10000; i++) {
930 udelay(IPW_WAIT_CLOCK_STABILIZATION_DELAY * 4);
932 /* check clock ready bit */
933 read_register(priv->net_dev, IPW_REG_GP_CNTRL, &r);
934 if (r & IPW_AUX_HOST_GP_CNTRL_BIT_CLOCK_READY)
935 break;
938 if (i == 10000)
939 return -EIO; /* TODO: better error value */
941 /* set D0 standby bit */
942 read_register(priv->net_dev, IPW_REG_GP_CNTRL, &r);
943 write_register(priv->net_dev, IPW_REG_GP_CNTRL,
944 r | IPW_AUX_HOST_GP_CNTRL_BIT_HOST_ALLOWS_STANDBY);
946 return 0;
949 /*********************************************************************
950 Procedure : ipw2100_download_firmware
951 Purpose : Initiaze adapter after power on.
952 The sequence is:
953 1. assert s/w reset first!
954 2. awake clocks & wait for clock stabilization
955 3. hold ARC (don't ask me why...)
956 4. load Dino ucode and reset/clock init again
957 5. zero-out shared mem
958 6. download f/w
959 *******************************************************************/
960 static int ipw2100_download_firmware(struct ipw2100_priv *priv)
962 u32 address;
963 int err;
965 #ifndef CONFIG_PM
966 /* Fetch the firmware and microcode */
967 struct ipw2100_fw ipw2100_firmware;
968 #endif
970 if (priv->fatal_error) {
971 IPW_DEBUG_ERROR("%s: ipw2100_download_firmware called after "
972 "fatal error %d. Interface must be brought down.\n",
973 priv->net_dev->name, priv->fatal_error);
974 return -EINVAL;
976 #ifdef CONFIG_PM
977 if (!ipw2100_firmware.version) {
978 err = ipw2100_get_firmware(priv, &ipw2100_firmware);
979 if (err) {
980 IPW_DEBUG_ERROR("%s: ipw2100_get_firmware failed: %d\n",
981 priv->net_dev->name, err);
982 priv->fatal_error = IPW2100_ERR_FW_LOAD;
983 goto fail;
986 #else
987 err = ipw2100_get_firmware(priv, &ipw2100_firmware);
988 if (err) {
989 IPW_DEBUG_ERROR("%s: ipw2100_get_firmware failed: %d\n",
990 priv->net_dev->name, err);
991 priv->fatal_error = IPW2100_ERR_FW_LOAD;
992 goto fail;
994 #endif
995 priv->firmware_version = ipw2100_firmware.version;
997 /* s/w reset and clock stabilization */
998 err = sw_reset_and_clock(priv);
999 if (err) {
1000 IPW_DEBUG_ERROR("%s: sw_reset_and_clock failed: %d\n",
1001 priv->net_dev->name, err);
1002 goto fail;
1005 err = ipw2100_verify(priv);
1006 if (err) {
1007 IPW_DEBUG_ERROR("%s: ipw2100_verify failed: %d\n",
1008 priv->net_dev->name, err);
1009 goto fail;
1012 /* Hold ARC */
1013 write_nic_dword(priv->net_dev,
1014 IPW_INTERNAL_REGISTER_HALT_AND_RESET, 0x80000000);
1016 /* allow ARC to run */
1017 write_register(priv->net_dev, IPW_REG_RESET_REG, 0);
1019 /* load microcode */
1020 err = ipw2100_ucode_download(priv, &ipw2100_firmware);
1021 if (err) {
1022 printk(KERN_ERR DRV_NAME ": %s: Error loading microcode: %d\n",
1023 priv->net_dev->name, err);
1024 goto fail;
1027 /* release ARC */
1028 write_nic_dword(priv->net_dev,
1029 IPW_INTERNAL_REGISTER_HALT_AND_RESET, 0x00000000);
1031 /* s/w reset and clock stabilization (again!!!) */
1032 err = sw_reset_and_clock(priv);
1033 if (err) {
1034 printk(KERN_ERR DRV_NAME
1035 ": %s: sw_reset_and_clock failed: %d\n",
1036 priv->net_dev->name, err);
1037 goto fail;
1040 /* load f/w */
1041 err = ipw2100_fw_download(priv, &ipw2100_firmware);
1042 if (err) {
1043 IPW_DEBUG_ERROR("%s: Error loading firmware: %d\n",
1044 priv->net_dev->name, err);
1045 goto fail;
1047 #ifndef CONFIG_PM
1049 * When the .resume method of the driver is called, the other
1050 * part of the system, i.e. the ide driver could still stay in
1051 * the suspend stage. This prevents us from loading the firmware
1052 * from the disk. --YZ
1055 /* free any storage allocated for firmware image */
1056 ipw2100_release_firmware(priv, &ipw2100_firmware);
1057 #endif
1059 /* zero out Domain 1 area indirectly (Si requirement) */
1060 for (address = IPW_HOST_FW_SHARED_AREA0;
1061 address < IPW_HOST_FW_SHARED_AREA0_END; address += 4)
1062 write_nic_dword(priv->net_dev, address, 0);
1063 for (address = IPW_HOST_FW_SHARED_AREA1;
1064 address < IPW_HOST_FW_SHARED_AREA1_END; address += 4)
1065 write_nic_dword(priv->net_dev, address, 0);
1066 for (address = IPW_HOST_FW_SHARED_AREA2;
1067 address < IPW_HOST_FW_SHARED_AREA2_END; address += 4)
1068 write_nic_dword(priv->net_dev, address, 0);
1069 for (address = IPW_HOST_FW_SHARED_AREA3;
1070 address < IPW_HOST_FW_SHARED_AREA3_END; address += 4)
1071 write_nic_dword(priv->net_dev, address, 0);
1072 for (address = IPW_HOST_FW_INTERRUPT_AREA;
1073 address < IPW_HOST_FW_INTERRUPT_AREA_END; address += 4)
1074 write_nic_dword(priv->net_dev, address, 0);
1076 return 0;
1078 fail:
1079 ipw2100_release_firmware(priv, &ipw2100_firmware);
1080 return err;
1083 static inline void ipw2100_enable_interrupts(struct ipw2100_priv *priv)
1085 if (priv->status & STATUS_INT_ENABLED)
1086 return;
1087 priv->status |= STATUS_INT_ENABLED;
1088 write_register(priv->net_dev, IPW_REG_INTA_MASK, IPW_INTERRUPT_MASK);
1091 static inline void ipw2100_disable_interrupts(struct ipw2100_priv *priv)
1093 if (!(priv->status & STATUS_INT_ENABLED))
1094 return;
1095 priv->status &= ~STATUS_INT_ENABLED;
1096 write_register(priv->net_dev, IPW_REG_INTA_MASK, 0x0);
1099 static void ipw2100_initialize_ordinals(struct ipw2100_priv *priv)
1101 struct ipw2100_ordinals *ord = &priv->ordinals;
1103 IPW_DEBUG_INFO("enter\n");
1105 read_register(priv->net_dev, IPW_MEM_HOST_SHARED_ORDINALS_TABLE_1,
1106 &ord->table1_addr);
1108 read_register(priv->net_dev, IPW_MEM_HOST_SHARED_ORDINALS_TABLE_2,
1109 &ord->table2_addr);
1111 read_nic_dword(priv->net_dev, ord->table1_addr, &ord->table1_size);
1112 read_nic_dword(priv->net_dev, ord->table2_addr, &ord->table2_size);
1114 ord->table2_size &= 0x0000FFFF;
1116 IPW_DEBUG_INFO("table 1 size: %d\n", ord->table1_size);
1117 IPW_DEBUG_INFO("table 2 size: %d\n", ord->table2_size);
1118 IPW_DEBUG_INFO("exit\n");
1121 static inline void ipw2100_hw_set_gpio(struct ipw2100_priv *priv)
1123 u32 reg = 0;
1125 * Set GPIO 3 writable by FW; GPIO 1 writable
1126 * by driver and enable clock
1128 reg = (IPW_BIT_GPIO_GPIO3_MASK | IPW_BIT_GPIO_GPIO1_ENABLE |
1129 IPW_BIT_GPIO_LED_OFF);
1130 write_register(priv->net_dev, IPW_REG_GPIO, reg);
1133 static int rf_kill_active(struct ipw2100_priv *priv)
1135 #define MAX_RF_KILL_CHECKS 5
1136 #define RF_KILL_CHECK_DELAY 40
1138 unsigned short value = 0;
1139 u32 reg = 0;
1140 int i;
1142 if (!(priv->hw_features & HW_FEATURE_RFKILL)) {
1143 priv->status &= ~STATUS_RF_KILL_HW;
1144 return 0;
1147 for (i = 0; i < MAX_RF_KILL_CHECKS; i++) {
1148 udelay(RF_KILL_CHECK_DELAY);
1149 read_register(priv->net_dev, IPW_REG_GPIO, &reg);
1150 value = (value << 1) | ((reg & IPW_BIT_GPIO_RF_KILL) ? 0 : 1);
1153 if (value == 0)
1154 priv->status |= STATUS_RF_KILL_HW;
1155 else
1156 priv->status &= ~STATUS_RF_KILL_HW;
1158 return (value == 0);
1161 static int ipw2100_get_hw_features(struct ipw2100_priv *priv)
1163 u32 addr, len;
1164 u32 val;
1167 * EEPROM_SRAM_DB_START_ADDRESS using ordinal in ordinal table 1
1169 len = sizeof(addr);
1170 if (ipw2100_get_ordinal
1171 (priv, IPW_ORD_EEPROM_SRAM_DB_BLOCK_START_ADDRESS, &addr, &len)) {
1172 IPW_DEBUG_INFO("failed querying ordinals at line %d\n",
1173 __LINE__);
1174 return -EIO;
1177 IPW_DEBUG_INFO("EEPROM address: %08X\n", addr);
1180 * EEPROM version is the byte at offset 0xfd in firmware
1181 * We read 4 bytes, then shift out the byte we actually want */
1182 read_nic_dword(priv->net_dev, addr + 0xFC, &val);
1183 priv->eeprom_version = (val >> 24) & 0xFF;
1184 IPW_DEBUG_INFO("EEPROM version: %d\n", priv->eeprom_version);
1187 * HW RF Kill enable is bit 0 in byte at offset 0x21 in firmware
1189 * notice that the EEPROM bit is reverse polarity, i.e.
1190 * bit = 0 signifies HW RF kill switch is supported
1191 * bit = 1 signifies HW RF kill switch is NOT supported
1193 read_nic_dword(priv->net_dev, addr + 0x20, &val);
1194 if (!((val >> 24) & 0x01))
1195 priv->hw_features |= HW_FEATURE_RFKILL;
1197 IPW_DEBUG_INFO("HW RF Kill: %ssupported.\n",
1198 (priv->hw_features & HW_FEATURE_RFKILL) ? "" : "not ");
1200 return 0;
1204 * Start firmware execution after power on and intialization
1205 * The sequence is:
1206 * 1. Release ARC
1207 * 2. Wait for f/w initialization completes;
1209 static int ipw2100_start_adapter(struct ipw2100_priv *priv)
1211 int i;
1212 u32 inta, inta_mask, gpio;
1214 IPW_DEBUG_INFO("enter\n");
1216 if (priv->status & STATUS_RUNNING)
1217 return 0;
1220 * Initialize the hw - drive adapter to DO state by setting
1221 * init_done bit. Wait for clk_ready bit and Download
1222 * fw & dino ucode
1224 if (ipw2100_download_firmware(priv)) {
1225 printk(KERN_ERR DRV_NAME
1226 ": %s: Failed to power on the adapter.\n",
1227 priv->net_dev->name);
1228 return -EIO;
1231 /* Clear the Tx, Rx and Msg queues and the r/w indexes
1232 * in the firmware RBD and TBD ring queue */
1233 ipw2100_queues_initialize(priv);
1235 ipw2100_hw_set_gpio(priv);
1237 /* TODO -- Look at disabling interrupts here to make sure none
1238 * get fired during FW initialization */
1240 /* Release ARC - clear reset bit */
1241 write_register(priv->net_dev, IPW_REG_RESET_REG, 0);
1243 /* wait for f/w intialization complete */
1244 IPW_DEBUG_FW("Waiting for f/w initialization to complete...\n");
1245 i = 5000;
1246 do {
1247 schedule_timeout_uninterruptible(msecs_to_jiffies(40));
1248 /* Todo... wait for sync command ... */
1250 read_register(priv->net_dev, IPW_REG_INTA, &inta);
1252 /* check "init done" bit */
1253 if (inta & IPW2100_INTA_FW_INIT_DONE) {
1254 /* reset "init done" bit */
1255 write_register(priv->net_dev, IPW_REG_INTA,
1256 IPW2100_INTA_FW_INIT_DONE);
1257 break;
1260 /* check error conditions : we check these after the firmware
1261 * check so that if there is an error, the interrupt handler
1262 * will see it and the adapter will be reset */
1263 if (inta &
1264 (IPW2100_INTA_FATAL_ERROR | IPW2100_INTA_PARITY_ERROR)) {
1265 /* clear error conditions */
1266 write_register(priv->net_dev, IPW_REG_INTA,
1267 IPW2100_INTA_FATAL_ERROR |
1268 IPW2100_INTA_PARITY_ERROR);
1270 } while (i--);
1272 /* Clear out any pending INTAs since we aren't supposed to have
1273 * interrupts enabled at this point... */
1274 read_register(priv->net_dev, IPW_REG_INTA, &inta);
1275 read_register(priv->net_dev, IPW_REG_INTA_MASK, &inta_mask);
1276 inta &= IPW_INTERRUPT_MASK;
1277 /* Clear out any pending interrupts */
1278 if (inta & inta_mask)
1279 write_register(priv->net_dev, IPW_REG_INTA, inta);
1281 IPW_DEBUG_FW("f/w initialization complete: %s\n",
1282 i ? "SUCCESS" : "FAILED");
1284 if (!i) {
1285 printk(KERN_WARNING DRV_NAME
1286 ": %s: Firmware did not initialize.\n",
1287 priv->net_dev->name);
1288 return -EIO;
1291 /* allow firmware to write to GPIO1 & GPIO3 */
1292 read_register(priv->net_dev, IPW_REG_GPIO, &gpio);
1294 gpio |= (IPW_BIT_GPIO_GPIO1_MASK | IPW_BIT_GPIO_GPIO3_MASK);
1296 write_register(priv->net_dev, IPW_REG_GPIO, gpio);
1298 /* Ready to receive commands */
1299 priv->status |= STATUS_RUNNING;
1301 /* The adapter has been reset; we are not associated */
1302 priv->status &= ~(STATUS_ASSOCIATING | STATUS_ASSOCIATED);
1304 IPW_DEBUG_INFO("exit\n");
1306 return 0;
1309 static inline void ipw2100_reset_fatalerror(struct ipw2100_priv *priv)
1311 if (!priv->fatal_error)
1312 return;
1314 priv->fatal_errors[priv->fatal_index++] = priv->fatal_error;
1315 priv->fatal_index %= IPW2100_ERROR_QUEUE;
1316 priv->fatal_error = 0;
1319 /* NOTE: Our interrupt is disabled when this method is called */
1320 static int ipw2100_power_cycle_adapter(struct ipw2100_priv *priv)
1322 u32 reg;
1323 int i;
1325 IPW_DEBUG_INFO("Power cycling the hardware.\n");
1327 ipw2100_hw_set_gpio(priv);
1329 /* Step 1. Stop Master Assert */
1330 write_register(priv->net_dev, IPW_REG_RESET_REG,
1331 IPW_AUX_HOST_RESET_REG_STOP_MASTER);
1333 /* Step 2. Wait for stop Master Assert
1334 * (not more then 50us, otherwise ret error */
1335 i = 5;
1336 do {
1337 udelay(IPW_WAIT_RESET_MASTER_ASSERT_COMPLETE_DELAY);
1338 read_register(priv->net_dev, IPW_REG_RESET_REG, &reg);
1340 if (reg & IPW_AUX_HOST_RESET_REG_MASTER_DISABLED)
1341 break;
1342 } while (i--);
1344 priv->status &= ~STATUS_RESET_PENDING;
1346 if (!i) {
1347 IPW_DEBUG_INFO
1348 ("exit - waited too long for master assert stop\n");
1349 return -EIO;
1352 write_register(priv->net_dev, IPW_REG_RESET_REG,
1353 IPW_AUX_HOST_RESET_REG_SW_RESET);
1355 /* Reset any fatal_error conditions */
1356 ipw2100_reset_fatalerror(priv);
1358 /* At this point, the adapter is now stopped and disabled */
1359 priv->status &= ~(STATUS_RUNNING | STATUS_ASSOCIATING |
1360 STATUS_ASSOCIATED | STATUS_ENABLED);
1362 return 0;
1366 * Send the CARD_DISABLE_PHY_OFF comamnd to the card to disable it
1368 * After disabling, if the card was associated, a STATUS_ASSN_LOST will be sent.
1370 * STATUS_CARD_DISABLE_NOTIFICATION will be sent regardless of
1371 * if STATUS_ASSN_LOST is sent.
1373 static int ipw2100_hw_phy_off(struct ipw2100_priv *priv)
1376 #define HW_PHY_OFF_LOOP_DELAY (HZ / 5000)
1378 struct host_command cmd = {
1379 .host_command = CARD_DISABLE_PHY_OFF,
1380 .host_command_sequence = 0,
1381 .host_command_length = 0,
1383 int err, i;
1384 u32 val1, val2;
1386 IPW_DEBUG_HC("CARD_DISABLE_PHY_OFF\n");
1388 /* Turn off the radio */
1389 err = ipw2100_hw_send_command(priv, &cmd);
1390 if (err)
1391 return err;
1393 for (i = 0; i < 2500; i++) {
1394 read_nic_dword(priv->net_dev, IPW2100_CONTROL_REG, &val1);
1395 read_nic_dword(priv->net_dev, IPW2100_COMMAND, &val2);
1397 if ((val1 & IPW2100_CONTROL_PHY_OFF) &&
1398 (val2 & IPW2100_COMMAND_PHY_OFF))
1399 return 0;
1401 schedule_timeout_uninterruptible(HW_PHY_OFF_LOOP_DELAY);
1404 return -EIO;
1407 static int ipw2100_enable_adapter(struct ipw2100_priv *priv)
1409 struct host_command cmd = {
1410 .host_command = HOST_COMPLETE,
1411 .host_command_sequence = 0,
1412 .host_command_length = 0
1414 int err = 0;
1416 IPW_DEBUG_HC("HOST_COMPLETE\n");
1418 if (priv->status & STATUS_ENABLED)
1419 return 0;
1421 down(&priv->adapter_sem);
1423 if (rf_kill_active(priv)) {
1424 IPW_DEBUG_HC("Command aborted due to RF kill active.\n");
1425 goto fail_up;
1428 err = ipw2100_hw_send_command(priv, &cmd);
1429 if (err) {
1430 IPW_DEBUG_INFO("Failed to send HOST_COMPLETE command\n");
1431 goto fail_up;
1434 err = ipw2100_wait_for_card_state(priv, IPW_HW_STATE_ENABLED);
1435 if (err) {
1436 IPW_DEBUG_INFO("%s: card not responding to init command.\n",
1437 priv->net_dev->name);
1438 goto fail_up;
1441 if (priv->stop_hang_check) {
1442 priv->stop_hang_check = 0;
1443 queue_delayed_work(priv->workqueue, &priv->hang_check, HZ / 2);
1446 fail_up:
1447 up(&priv->adapter_sem);
1448 return err;
1451 static int ipw2100_hw_stop_adapter(struct ipw2100_priv *priv)
1453 #define HW_POWER_DOWN_DELAY (msecs_to_jiffies(100))
1455 struct host_command cmd = {
1456 .host_command = HOST_PRE_POWER_DOWN,
1457 .host_command_sequence = 0,
1458 .host_command_length = 0,
1460 int err, i;
1461 u32 reg;
1463 if (!(priv->status & STATUS_RUNNING))
1464 return 0;
1466 priv->status |= STATUS_STOPPING;
1468 /* We can only shut down the card if the firmware is operational. So,
1469 * if we haven't reset since a fatal_error, then we can not send the
1470 * shutdown commands. */
1471 if (!priv->fatal_error) {
1472 /* First, make sure the adapter is enabled so that the PHY_OFF
1473 * command can shut it down */
1474 ipw2100_enable_adapter(priv);
1476 err = ipw2100_hw_phy_off(priv);
1477 if (err)
1478 printk(KERN_WARNING DRV_NAME
1479 ": Error disabling radio %d\n", err);
1482 * If in D0-standby mode going directly to D3 may cause a
1483 * PCI bus violation. Therefore we must change out of the D0
1484 * state.
1486 * Sending the PREPARE_FOR_POWER_DOWN will restrict the
1487 * hardware from going into standby mode and will transition
1488 * out of D0-standy if it is already in that state.
1490 * STATUS_PREPARE_POWER_DOWN_COMPLETE will be sent by the
1491 * driver upon completion. Once received, the driver can
1492 * proceed to the D3 state.
1494 * Prepare for power down command to fw. This command would
1495 * take HW out of D0-standby and prepare it for D3 state.
1497 * Currently FW does not support event notification for this
1498 * event. Therefore, skip waiting for it. Just wait a fixed
1499 * 100ms
1501 IPW_DEBUG_HC("HOST_PRE_POWER_DOWN\n");
1503 err = ipw2100_hw_send_command(priv, &cmd);
1504 if (err)
1505 printk(KERN_WARNING DRV_NAME ": "
1506 "%s: Power down command failed: Error %d\n",
1507 priv->net_dev->name, err);
1508 else
1509 schedule_timeout_uninterruptible(HW_POWER_DOWN_DELAY);
1512 priv->status &= ~STATUS_ENABLED;
1515 * Set GPIO 3 writable by FW; GPIO 1 writable
1516 * by driver and enable clock
1518 ipw2100_hw_set_gpio(priv);
1521 * Power down adapter. Sequence:
1522 * 1. Stop master assert (RESET_REG[9]=1)
1523 * 2. Wait for stop master (RESET_REG[8]==1)
1524 * 3. S/w reset assert (RESET_REG[7] = 1)
1527 /* Stop master assert */
1528 write_register(priv->net_dev, IPW_REG_RESET_REG,
1529 IPW_AUX_HOST_RESET_REG_STOP_MASTER);
1531 /* wait stop master not more than 50 usec.
1532 * Otherwise return error. */
1533 for (i = 5; i > 0; i--) {
1534 udelay(10);
1536 /* Check master stop bit */
1537 read_register(priv->net_dev, IPW_REG_RESET_REG, &reg);
1539 if (reg & IPW_AUX_HOST_RESET_REG_MASTER_DISABLED)
1540 break;
1543 if (i == 0)
1544 printk(KERN_WARNING DRV_NAME
1545 ": %s: Could now power down adapter.\n",
1546 priv->net_dev->name);
1548 /* assert s/w reset */
1549 write_register(priv->net_dev, IPW_REG_RESET_REG,
1550 IPW_AUX_HOST_RESET_REG_SW_RESET);
1552 priv->status &= ~(STATUS_RUNNING | STATUS_STOPPING);
1554 return 0;
1557 static int ipw2100_disable_adapter(struct ipw2100_priv *priv)
1559 struct host_command cmd = {
1560 .host_command = CARD_DISABLE,
1561 .host_command_sequence = 0,
1562 .host_command_length = 0
1564 int err = 0;
1566 IPW_DEBUG_HC("CARD_DISABLE\n");
1568 if (!(priv->status & STATUS_ENABLED))
1569 return 0;
1571 /* Make sure we clear the associated state */
1572 priv->status &= ~(STATUS_ASSOCIATED | STATUS_ASSOCIATING);
1574 if (!priv->stop_hang_check) {
1575 priv->stop_hang_check = 1;
1576 cancel_delayed_work(&priv->hang_check);
1579 down(&priv->adapter_sem);
1581 err = ipw2100_hw_send_command(priv, &cmd);
1582 if (err) {
1583 printk(KERN_WARNING DRV_NAME
1584 ": exit - failed to send CARD_DISABLE command\n");
1585 goto fail_up;
1588 err = ipw2100_wait_for_card_state(priv, IPW_HW_STATE_DISABLED);
1589 if (err) {
1590 printk(KERN_WARNING DRV_NAME
1591 ": exit - card failed to change to DISABLED\n");
1592 goto fail_up;
1595 IPW_DEBUG_INFO("TODO: implement scan state machine\n");
1597 fail_up:
1598 up(&priv->adapter_sem);
1599 return err;
1602 static int ipw2100_set_scan_options(struct ipw2100_priv *priv)
1604 struct host_command cmd = {
1605 .host_command = SET_SCAN_OPTIONS,
1606 .host_command_sequence = 0,
1607 .host_command_length = 8
1609 int err;
1611 IPW_DEBUG_INFO("enter\n");
1613 IPW_DEBUG_SCAN("setting scan options\n");
1615 cmd.host_command_parameters[0] = 0;
1617 if (!(priv->config & CFG_ASSOCIATE))
1618 cmd.host_command_parameters[0] |= IPW_SCAN_NOASSOCIATE;
1619 if ((priv->ieee->sec.flags & SEC_ENABLED) && priv->ieee->sec.enabled)
1620 cmd.host_command_parameters[0] |= IPW_SCAN_MIXED_CELL;
1621 if (priv->config & CFG_PASSIVE_SCAN)
1622 cmd.host_command_parameters[0] |= IPW_SCAN_PASSIVE;
1624 cmd.host_command_parameters[1] = priv->channel_mask;
1626 err = ipw2100_hw_send_command(priv, &cmd);
1628 IPW_DEBUG_HC("SET_SCAN_OPTIONS 0x%04X\n",
1629 cmd.host_command_parameters[0]);
1631 return err;
1634 static int ipw2100_start_scan(struct ipw2100_priv *priv)
1636 struct host_command cmd = {
1637 .host_command = BROADCAST_SCAN,
1638 .host_command_sequence = 0,
1639 .host_command_length = 4
1641 int err;
1643 IPW_DEBUG_HC("START_SCAN\n");
1645 cmd.host_command_parameters[0] = 0;
1647 /* No scanning if in monitor mode */
1648 if (priv->ieee->iw_mode == IW_MODE_MONITOR)
1649 return 1;
1651 if (priv->status & STATUS_SCANNING) {
1652 IPW_DEBUG_SCAN("Scan requested while already in scan...\n");
1653 return 0;
1656 IPW_DEBUG_INFO("enter\n");
1658 /* Not clearing here; doing so makes iwlist always return nothing...
1660 * We should modify the table logic to use aging tables vs. clearing
1661 * the table on each scan start.
1663 IPW_DEBUG_SCAN("starting scan\n");
1665 priv->status |= STATUS_SCANNING;
1666 err = ipw2100_hw_send_command(priv, &cmd);
1667 if (err)
1668 priv->status &= ~STATUS_SCANNING;
1670 IPW_DEBUG_INFO("exit\n");
1672 return err;
1675 static int ipw2100_up(struct ipw2100_priv *priv, int deferred)
1677 unsigned long flags;
1678 int rc = 0;
1679 u32 lock;
1680 u32 ord_len = sizeof(lock);
1682 /* Quite if manually disabled. */
1683 if (priv->status & STATUS_RF_KILL_SW) {
1684 IPW_DEBUG_INFO("%s: Radio is disabled by Manual Disable "
1685 "switch\n", priv->net_dev->name);
1686 return 0;
1689 /* If the interrupt is enabled, turn it off... */
1690 spin_lock_irqsave(&priv->low_lock, flags);
1691 ipw2100_disable_interrupts(priv);
1693 /* Reset any fatal_error conditions */
1694 ipw2100_reset_fatalerror(priv);
1695 spin_unlock_irqrestore(&priv->low_lock, flags);
1697 if (priv->status & STATUS_POWERED ||
1698 (priv->status & STATUS_RESET_PENDING)) {
1699 /* Power cycle the card ... */
1700 if (ipw2100_power_cycle_adapter(priv)) {
1701 printk(KERN_WARNING DRV_NAME
1702 ": %s: Could not cycle adapter.\n",
1703 priv->net_dev->name);
1704 rc = 1;
1705 goto exit;
1707 } else
1708 priv->status |= STATUS_POWERED;
1710 /* Load the firmware, start the clocks, etc. */
1711 if (ipw2100_start_adapter(priv)) {
1712 printk(KERN_ERR DRV_NAME
1713 ": %s: Failed to start the firmware.\n",
1714 priv->net_dev->name);
1715 rc = 1;
1716 goto exit;
1719 ipw2100_initialize_ordinals(priv);
1721 /* Determine capabilities of this particular HW configuration */
1722 if (ipw2100_get_hw_features(priv)) {
1723 printk(KERN_ERR DRV_NAME
1724 ": %s: Failed to determine HW features.\n",
1725 priv->net_dev->name);
1726 rc = 1;
1727 goto exit;
1730 lock = LOCK_NONE;
1731 if (ipw2100_set_ordinal(priv, IPW_ORD_PERS_DB_LOCK, &lock, &ord_len)) {
1732 printk(KERN_ERR DRV_NAME
1733 ": %s: Failed to clear ordinal lock.\n",
1734 priv->net_dev->name);
1735 rc = 1;
1736 goto exit;
1739 priv->status &= ~STATUS_SCANNING;
1741 if (rf_kill_active(priv)) {
1742 printk(KERN_INFO "%s: Radio is disabled by RF switch.\n",
1743 priv->net_dev->name);
1745 if (priv->stop_rf_kill) {
1746 priv->stop_rf_kill = 0;
1747 queue_delayed_work(priv->workqueue, &priv->rf_kill, HZ);
1750 deferred = 1;
1753 /* Turn on the interrupt so that commands can be processed */
1754 ipw2100_enable_interrupts(priv);
1756 /* Send all of the commands that must be sent prior to
1757 * HOST_COMPLETE */
1758 if (ipw2100_adapter_setup(priv)) {
1759 printk(KERN_ERR DRV_NAME ": %s: Failed to start the card.\n",
1760 priv->net_dev->name);
1761 rc = 1;
1762 goto exit;
1765 if (!deferred) {
1766 /* Enable the adapter - sends HOST_COMPLETE */
1767 if (ipw2100_enable_adapter(priv)) {
1768 printk(KERN_ERR DRV_NAME ": "
1769 "%s: failed in call to enable adapter.\n",
1770 priv->net_dev->name);
1771 ipw2100_hw_stop_adapter(priv);
1772 rc = 1;
1773 goto exit;
1776 /* Start a scan . . . */
1777 ipw2100_set_scan_options(priv);
1778 ipw2100_start_scan(priv);
1781 exit:
1782 return rc;
1785 /* Called by register_netdev() */
1786 static int ipw2100_net_init(struct net_device *dev)
1788 struct ipw2100_priv *priv = ieee80211_priv(dev);
1789 return ipw2100_up(priv, 1);
1792 static void ipw2100_down(struct ipw2100_priv *priv)
1794 unsigned long flags;
1795 union iwreq_data wrqu = {
1796 .ap_addr = {
1797 .sa_family = ARPHRD_ETHER}
1799 int associated = priv->status & STATUS_ASSOCIATED;
1801 /* Kill the RF switch timer */
1802 if (!priv->stop_rf_kill) {
1803 priv->stop_rf_kill = 1;
1804 cancel_delayed_work(&priv->rf_kill);
1807 /* Kill the firmare hang check timer */
1808 if (!priv->stop_hang_check) {
1809 priv->stop_hang_check = 1;
1810 cancel_delayed_work(&priv->hang_check);
1813 /* Kill any pending resets */
1814 if (priv->status & STATUS_RESET_PENDING)
1815 cancel_delayed_work(&priv->reset_work);
1817 /* Make sure the interrupt is on so that FW commands will be
1818 * processed correctly */
1819 spin_lock_irqsave(&priv->low_lock, flags);
1820 ipw2100_enable_interrupts(priv);
1821 spin_unlock_irqrestore(&priv->low_lock, flags);
1823 if (ipw2100_hw_stop_adapter(priv))
1824 printk(KERN_ERR DRV_NAME ": %s: Error stopping adapter.\n",
1825 priv->net_dev->name);
1827 /* Do not disable the interrupt until _after_ we disable
1828 * the adaptor. Otherwise the CARD_DISABLE command will never
1829 * be ack'd by the firmware */
1830 spin_lock_irqsave(&priv->low_lock, flags);
1831 ipw2100_disable_interrupts(priv);
1832 spin_unlock_irqrestore(&priv->low_lock, flags);
1834 #ifdef ACPI_CSTATE_LIMIT_DEFINED
1835 if (priv->config & CFG_C3_DISABLED) {
1836 IPW_DEBUG_INFO(": Resetting C3 transitions.\n");
1837 acpi_set_cstate_limit(priv->cstate_limit);
1838 priv->config &= ~CFG_C3_DISABLED;
1840 #endif
1842 /* We have to signal any supplicant if we are disassociating */
1843 if (associated)
1844 wireless_send_event(priv->net_dev, SIOCGIWAP, &wrqu, NULL);
1846 priv->status &= ~(STATUS_ASSOCIATED | STATUS_ASSOCIATING);
1847 netif_carrier_off(priv->net_dev);
1848 netif_stop_queue(priv->net_dev);
1851 static void ipw2100_reset_adapter(struct ipw2100_priv *priv)
1853 unsigned long flags;
1854 union iwreq_data wrqu = {
1855 .ap_addr = {
1856 .sa_family = ARPHRD_ETHER}
1858 int associated = priv->status & STATUS_ASSOCIATED;
1860 spin_lock_irqsave(&priv->low_lock, flags);
1861 IPW_DEBUG_INFO(": %s: Restarting adapter.\n", priv->net_dev->name);
1862 priv->resets++;
1863 priv->status &= ~(STATUS_ASSOCIATED | STATUS_ASSOCIATING);
1864 priv->status |= STATUS_SECURITY_UPDATED;
1866 /* Force a power cycle even if interface hasn't been opened
1867 * yet */
1868 cancel_delayed_work(&priv->reset_work);
1869 priv->status |= STATUS_RESET_PENDING;
1870 spin_unlock_irqrestore(&priv->low_lock, flags);
1872 down(&priv->action_sem);
1873 /* stop timed checks so that they don't interfere with reset */
1874 priv->stop_hang_check = 1;
1875 cancel_delayed_work(&priv->hang_check);
1877 /* We have to signal any supplicant if we are disassociating */
1878 if (associated)
1879 wireless_send_event(priv->net_dev, SIOCGIWAP, &wrqu, NULL);
1881 ipw2100_up(priv, 0);
1882 up(&priv->action_sem);
1886 static void isr_indicate_associated(struct ipw2100_priv *priv, u32 status)
1889 #define MAC_ASSOCIATION_READ_DELAY (HZ)
1890 int ret, len, essid_len;
1891 char essid[IW_ESSID_MAX_SIZE];
1892 u32 txrate;
1893 u32 chan;
1894 char *txratename;
1895 u8 bssid[ETH_ALEN];
1898 * TBD: BSSID is usually 00:00:00:00:00:00 here and not
1899 * an actual MAC of the AP. Seems like FW sets this
1900 * address too late. Read it later and expose through
1901 * /proc or schedule a later task to query and update
1904 essid_len = IW_ESSID_MAX_SIZE;
1905 ret = ipw2100_get_ordinal(priv, IPW_ORD_STAT_ASSN_SSID,
1906 essid, &essid_len);
1907 if (ret) {
1908 IPW_DEBUG_INFO("failed querying ordinals at line %d\n",
1909 __LINE__);
1910 return;
1913 len = sizeof(u32);
1914 ret = ipw2100_get_ordinal(priv, IPW_ORD_CURRENT_TX_RATE, &txrate, &len);
1915 if (ret) {
1916 IPW_DEBUG_INFO("failed querying ordinals at line %d\n",
1917 __LINE__);
1918 return;
1921 len = sizeof(u32);
1922 ret = ipw2100_get_ordinal(priv, IPW_ORD_OUR_FREQ, &chan, &len);
1923 if (ret) {
1924 IPW_DEBUG_INFO("failed querying ordinals at line %d\n",
1925 __LINE__);
1926 return;
1928 len = ETH_ALEN;
1929 ipw2100_get_ordinal(priv, IPW_ORD_STAT_ASSN_AP_BSSID, &bssid, &len);
1930 if (ret) {
1931 IPW_DEBUG_INFO("failed querying ordinals at line %d\n",
1932 __LINE__);
1933 return;
1935 memcpy(priv->ieee->bssid, bssid, ETH_ALEN);
1937 switch (txrate) {
1938 case TX_RATE_1_MBIT:
1939 txratename = "1Mbps";
1940 break;
1941 case TX_RATE_2_MBIT:
1942 txratename = "2Mbsp";
1943 break;
1944 case TX_RATE_5_5_MBIT:
1945 txratename = "5.5Mbps";
1946 break;
1947 case TX_RATE_11_MBIT:
1948 txratename = "11Mbps";
1949 break;
1950 default:
1951 IPW_DEBUG_INFO("Unknown rate: %d\n", txrate);
1952 txratename = "unknown rate";
1953 break;
1956 IPW_DEBUG_INFO("%s: Associated with '%s' at %s, channel %d (BSSID="
1957 MAC_FMT ")\n",
1958 priv->net_dev->name, escape_essid(essid, essid_len),
1959 txratename, chan, MAC_ARG(bssid));
1961 /* now we copy read ssid into dev */
1962 if (!(priv->config & CFG_STATIC_ESSID)) {
1963 priv->essid_len = min((u8) essid_len, (u8) IW_ESSID_MAX_SIZE);
1964 memcpy(priv->essid, essid, priv->essid_len);
1966 priv->channel = chan;
1967 memcpy(priv->bssid, bssid, ETH_ALEN);
1969 priv->status |= STATUS_ASSOCIATING;
1970 priv->connect_start = get_seconds();
1972 queue_delayed_work(priv->workqueue, &priv->wx_event_work, HZ / 10);
1975 static int ipw2100_set_essid(struct ipw2100_priv *priv, char *essid,
1976 int length, int batch_mode)
1978 int ssid_len = min(length, IW_ESSID_MAX_SIZE);
1979 struct host_command cmd = {
1980 .host_command = SSID,
1981 .host_command_sequence = 0,
1982 .host_command_length = ssid_len
1984 int err;
1986 IPW_DEBUG_HC("SSID: '%s'\n", escape_essid(essid, ssid_len));
1988 if (ssid_len)
1989 memcpy(cmd.host_command_parameters, essid, ssid_len);
1991 if (!batch_mode) {
1992 err = ipw2100_disable_adapter(priv);
1993 if (err)
1994 return err;
1997 /* Bug in FW currently doesn't honor bit 0 in SET_SCAN_OPTIONS to
1998 * disable auto association -- so we cheat by setting a bogus SSID */
1999 if (!ssid_len && !(priv->config & CFG_ASSOCIATE)) {
2000 int i;
2001 u8 *bogus = (u8 *) cmd.host_command_parameters;
2002 for (i = 0; i < IW_ESSID_MAX_SIZE; i++)
2003 bogus[i] = 0x18 + i;
2004 cmd.host_command_length = IW_ESSID_MAX_SIZE;
2007 /* NOTE: We always send the SSID command even if the provided ESSID is
2008 * the same as what we currently think is set. */
2010 err = ipw2100_hw_send_command(priv, &cmd);
2011 if (!err) {
2012 memset(priv->essid + ssid_len, 0, IW_ESSID_MAX_SIZE - ssid_len);
2013 memcpy(priv->essid, essid, ssid_len);
2014 priv->essid_len = ssid_len;
2017 if (!batch_mode) {
2018 if (ipw2100_enable_adapter(priv))
2019 err = -EIO;
2022 return err;
2025 static void isr_indicate_association_lost(struct ipw2100_priv *priv, u32 status)
2027 IPW_DEBUG(IPW_DL_NOTIF | IPW_DL_STATE | IPW_DL_ASSOC,
2028 "disassociated: '%s' " MAC_FMT " \n",
2029 escape_essid(priv->essid, priv->essid_len),
2030 MAC_ARG(priv->bssid));
2032 priv->status &= ~(STATUS_ASSOCIATED | STATUS_ASSOCIATING);
2034 if (priv->status & STATUS_STOPPING) {
2035 IPW_DEBUG_INFO("Card is stopping itself, discard ASSN_LOST.\n");
2036 return;
2039 memset(priv->bssid, 0, ETH_ALEN);
2040 memset(priv->ieee->bssid, 0, ETH_ALEN);
2042 netif_carrier_off(priv->net_dev);
2043 netif_stop_queue(priv->net_dev);
2045 if (!(priv->status & STATUS_RUNNING))
2046 return;
2048 if (priv->status & STATUS_SECURITY_UPDATED)
2049 queue_work(priv->workqueue, &priv->security_work);
2051 queue_work(priv->workqueue, &priv->wx_event_work);
2054 static void isr_indicate_rf_kill(struct ipw2100_priv *priv, u32 status)
2056 IPW_DEBUG_INFO("%s: RF Kill state changed to radio OFF.\n",
2057 priv->net_dev->name);
2059 /* RF_KILL is now enabled (else we wouldn't be here) */
2060 priv->status |= STATUS_RF_KILL_HW;
2062 #ifdef ACPI_CSTATE_LIMIT_DEFINED
2063 if (priv->config & CFG_C3_DISABLED) {
2064 IPW_DEBUG_INFO(": Resetting C3 transitions.\n");
2065 acpi_set_cstate_limit(priv->cstate_limit);
2066 priv->config &= ~CFG_C3_DISABLED;
2068 #endif
2070 /* Make sure the RF Kill check timer is running */
2071 priv->stop_rf_kill = 0;
2072 cancel_delayed_work(&priv->rf_kill);
2073 queue_delayed_work(priv->workqueue, &priv->rf_kill, HZ);
2076 static void isr_scan_complete(struct ipw2100_priv *priv, u32 status)
2078 IPW_DEBUG_SCAN("scan complete\n");
2079 /* Age the scan results... */
2080 priv->ieee->scans++;
2081 priv->status &= ~STATUS_SCANNING;
2084 #ifdef CONFIG_IPW2100_DEBUG
2085 #define IPW2100_HANDLER(v, f) { v, f, # v }
2086 struct ipw2100_status_indicator {
2087 int status;
2088 void (*cb) (struct ipw2100_priv * priv, u32 status);
2089 char *name;
2091 #else
2092 #define IPW2100_HANDLER(v, f) { v, f }
2093 struct ipw2100_status_indicator {
2094 int status;
2095 void (*cb) (struct ipw2100_priv * priv, u32 status);
2097 #endif /* CONFIG_IPW2100_DEBUG */
2099 static void isr_indicate_scanning(struct ipw2100_priv *priv, u32 status)
2101 IPW_DEBUG_SCAN("Scanning...\n");
2102 priv->status |= STATUS_SCANNING;
2105 static const struct ipw2100_status_indicator status_handlers[] = {
2106 IPW2100_HANDLER(IPW_STATE_INITIALIZED, NULL),
2107 IPW2100_HANDLER(IPW_STATE_COUNTRY_FOUND, NULL),
2108 IPW2100_HANDLER(IPW_STATE_ASSOCIATED, isr_indicate_associated),
2109 IPW2100_HANDLER(IPW_STATE_ASSN_LOST, isr_indicate_association_lost),
2110 IPW2100_HANDLER(IPW_STATE_ASSN_CHANGED, NULL),
2111 IPW2100_HANDLER(IPW_STATE_SCAN_COMPLETE, isr_scan_complete),
2112 IPW2100_HANDLER(IPW_STATE_ENTERED_PSP, NULL),
2113 IPW2100_HANDLER(IPW_STATE_LEFT_PSP, NULL),
2114 IPW2100_HANDLER(IPW_STATE_RF_KILL, isr_indicate_rf_kill),
2115 IPW2100_HANDLER(IPW_STATE_DISABLED, NULL),
2116 IPW2100_HANDLER(IPW_STATE_POWER_DOWN, NULL),
2117 IPW2100_HANDLER(IPW_STATE_SCANNING, isr_indicate_scanning),
2118 IPW2100_HANDLER(-1, NULL)
2121 static void isr_status_change(struct ipw2100_priv *priv, int status)
2123 int i;
2125 if (status == IPW_STATE_SCANNING &&
2126 priv->status & STATUS_ASSOCIATED &&
2127 !(priv->status & STATUS_SCANNING)) {
2128 IPW_DEBUG_INFO("Scan detected while associated, with "
2129 "no scan request. Restarting firmware.\n");
2131 /* Wake up any sleeping jobs */
2132 schedule_reset(priv);
2135 for (i = 0; status_handlers[i].status != -1; i++) {
2136 if (status == status_handlers[i].status) {
2137 IPW_DEBUG_NOTIF("Status change: %s\n",
2138 status_handlers[i].name);
2139 if (status_handlers[i].cb)
2140 status_handlers[i].cb(priv, status);
2141 priv->wstats.status = status;
2142 return;
2146 IPW_DEBUG_NOTIF("unknown status received: %04x\n", status);
2149 static void isr_rx_complete_command(struct ipw2100_priv *priv,
2150 struct ipw2100_cmd_header *cmd)
2152 #ifdef CONFIG_IPW2100_DEBUG
2153 if (cmd->host_command_reg < ARRAY_SIZE(command_types)) {
2154 IPW_DEBUG_HC("Command completed '%s (%d)'\n",
2155 command_types[cmd->host_command_reg],
2156 cmd->host_command_reg);
2158 #endif
2159 if (cmd->host_command_reg == HOST_COMPLETE)
2160 priv->status |= STATUS_ENABLED;
2162 if (cmd->host_command_reg == CARD_DISABLE)
2163 priv->status &= ~STATUS_ENABLED;
2165 priv->status &= ~STATUS_CMD_ACTIVE;
2167 wake_up_interruptible(&priv->wait_command_queue);
2170 #ifdef CONFIG_IPW2100_DEBUG
2171 static const char *frame_types[] = {
2172 "COMMAND_STATUS_VAL",
2173 "STATUS_CHANGE_VAL",
2174 "P80211_DATA_VAL",
2175 "P8023_DATA_VAL",
2176 "HOST_NOTIFICATION_VAL"
2178 #endif
2180 static int ipw2100_alloc_skb(struct ipw2100_priv *priv,
2181 struct ipw2100_rx_packet *packet)
2183 packet->skb = dev_alloc_skb(sizeof(struct ipw2100_rx));
2184 if (!packet->skb)
2185 return -ENOMEM;
2187 packet->rxp = (struct ipw2100_rx *)packet->skb->data;
2188 packet->dma_addr = pci_map_single(priv->pci_dev, packet->skb->data,
2189 sizeof(struct ipw2100_rx),
2190 PCI_DMA_FROMDEVICE);
2191 /* NOTE: pci_map_single does not return an error code, and 0 is a valid
2192 * dma_addr */
2194 return 0;
2197 #define SEARCH_ERROR 0xffffffff
2198 #define SEARCH_FAIL 0xfffffffe
2199 #define SEARCH_SUCCESS 0xfffffff0
2200 #define SEARCH_DISCARD 0
2201 #define SEARCH_SNAPSHOT 1
2203 #define SNAPSHOT_ADDR(ofs) (priv->snapshot[((ofs) >> 12) & 0xff] + ((ofs) & 0xfff))
2204 static void ipw2100_snapshot_free(struct ipw2100_priv *priv)
2206 int i;
2207 if (!priv->snapshot[0])
2208 return;
2209 for (i = 0; i < 0x30; i++)
2210 kfree(priv->snapshot[i]);
2211 priv->snapshot[0] = NULL;
2214 #ifdef CONFIG_IPW2100_DEBUG_C3
2215 static int ipw2100_snapshot_alloc(struct ipw2100_priv *priv)
2217 int i;
2218 if (priv->snapshot[0])
2219 return 1;
2220 for (i = 0; i < 0x30; i++) {
2221 priv->snapshot[i] = (u8 *) kmalloc(0x1000, GFP_ATOMIC);
2222 if (!priv->snapshot[i]) {
2223 IPW_DEBUG_INFO("%s: Error allocating snapshot "
2224 "buffer %d\n", priv->net_dev->name, i);
2225 while (i > 0)
2226 kfree(priv->snapshot[--i]);
2227 priv->snapshot[0] = NULL;
2228 return 0;
2232 return 1;
2235 static u32 ipw2100_match_buf(struct ipw2100_priv *priv, u8 * in_buf,
2236 size_t len, int mode)
2238 u32 i, j;
2239 u32 tmp;
2240 u8 *s, *d;
2241 u32 ret;
2243 s = in_buf;
2244 if (mode == SEARCH_SNAPSHOT) {
2245 if (!ipw2100_snapshot_alloc(priv))
2246 mode = SEARCH_DISCARD;
2249 for (ret = SEARCH_FAIL, i = 0; i < 0x30000; i += 4) {
2250 read_nic_dword(priv->net_dev, i, &tmp);
2251 if (mode == SEARCH_SNAPSHOT)
2252 *(u32 *) SNAPSHOT_ADDR(i) = tmp;
2253 if (ret == SEARCH_FAIL) {
2254 d = (u8 *) & tmp;
2255 for (j = 0; j < 4; j++) {
2256 if (*s != *d) {
2257 s = in_buf;
2258 continue;
2261 s++;
2262 d++;
2264 if ((s - in_buf) == len)
2265 ret = (i + j) - len + 1;
2267 } else if (mode == SEARCH_DISCARD)
2268 return ret;
2271 return ret;
2273 #endif
2277 * 0) Disconnect the SKB from the firmware (just unmap)
2278 * 1) Pack the ETH header into the SKB
2279 * 2) Pass the SKB to the network stack
2281 * When packet is provided by the firmware, it contains the following:
2283 * . ieee80211_hdr
2284 * . ieee80211_snap_hdr
2286 * The size of the constructed ethernet
2289 #ifdef CONFIG_IPW2100_RX_DEBUG
2290 static u8 packet_data[IPW_RX_NIC_BUFFER_LENGTH];
2291 #endif
2293 static void ipw2100_corruption_detected(struct ipw2100_priv *priv, int i)
2295 #ifdef CONFIG_IPW2100_DEBUG_C3
2296 struct ipw2100_status *status = &priv->status_queue.drv[i];
2297 u32 match, reg;
2298 int j;
2299 #endif
2300 #ifdef ACPI_CSTATE_LIMIT_DEFINED
2301 int limit;
2302 #endif
2304 IPW_DEBUG_INFO(": PCI latency error detected at 0x%04zX.\n",
2305 i * sizeof(struct ipw2100_status));
2307 #ifdef ACPI_CSTATE_LIMIT_DEFINED
2308 IPW_DEBUG_INFO(": Disabling C3 transitions.\n");
2309 limit = acpi_get_cstate_limit();
2310 if (limit > 2) {
2311 priv->cstate_limit = limit;
2312 acpi_set_cstate_limit(2);
2313 priv->config |= CFG_C3_DISABLED;
2315 #endif
2317 #ifdef CONFIG_IPW2100_DEBUG_C3
2318 /* Halt the fimrware so we can get a good image */
2319 write_register(priv->net_dev, IPW_REG_RESET_REG,
2320 IPW_AUX_HOST_RESET_REG_STOP_MASTER);
2321 j = 5;
2322 do {
2323 udelay(IPW_WAIT_RESET_MASTER_ASSERT_COMPLETE_DELAY);
2324 read_register(priv->net_dev, IPW_REG_RESET_REG, &reg);
2326 if (reg & IPW_AUX_HOST_RESET_REG_MASTER_DISABLED)
2327 break;
2328 } while (j--);
2330 match = ipw2100_match_buf(priv, (u8 *) status,
2331 sizeof(struct ipw2100_status),
2332 SEARCH_SNAPSHOT);
2333 if (match < SEARCH_SUCCESS)
2334 IPW_DEBUG_INFO("%s: DMA status match in Firmware at "
2335 "offset 0x%06X, length %d:\n",
2336 priv->net_dev->name, match,
2337 sizeof(struct ipw2100_status));
2338 else
2339 IPW_DEBUG_INFO("%s: No DMA status match in "
2340 "Firmware.\n", priv->net_dev->name);
2342 printk_buf((u8 *) priv->status_queue.drv,
2343 sizeof(struct ipw2100_status) * RX_QUEUE_LENGTH);
2344 #endif
2346 priv->fatal_error = IPW2100_ERR_C3_CORRUPTION;
2347 priv->ieee->stats.rx_errors++;
2348 schedule_reset(priv);
2351 static void isr_rx(struct ipw2100_priv *priv, int i,
2352 struct ieee80211_rx_stats *stats)
2354 struct ipw2100_status *status = &priv->status_queue.drv[i];
2355 struct ipw2100_rx_packet *packet = &priv->rx_buffers[i];
2357 IPW_DEBUG_RX("Handler...\n");
2359 if (unlikely(status->frame_size > skb_tailroom(packet->skb))) {
2360 IPW_DEBUG_INFO("%s: frame_size (%u) > skb_tailroom (%u)!"
2361 " Dropping.\n",
2362 priv->net_dev->name,
2363 status->frame_size, skb_tailroom(packet->skb));
2364 priv->ieee->stats.rx_errors++;
2365 return;
2368 if (unlikely(!netif_running(priv->net_dev))) {
2369 priv->ieee->stats.rx_errors++;
2370 priv->wstats.discard.misc++;
2371 IPW_DEBUG_DROP("Dropping packet while interface is not up.\n");
2372 return;
2374 #ifdef CONFIG_IPW2100_MONITOR
2375 if (unlikely(priv->ieee->iw_mode == IW_MODE_MONITOR &&
2376 priv->config & CFG_CRC_CHECK &&
2377 status->flags & IPW_STATUS_FLAG_CRC_ERROR)) {
2378 IPW_DEBUG_RX("CRC error in packet. Dropping.\n");
2379 priv->ieee->stats.rx_errors++;
2380 return;
2382 #endif
2384 if (unlikely(priv->ieee->iw_mode != IW_MODE_MONITOR &&
2385 !(priv->status & STATUS_ASSOCIATED))) {
2386 IPW_DEBUG_DROP("Dropping packet while not associated.\n");
2387 priv->wstats.discard.misc++;
2388 return;
2391 pci_unmap_single(priv->pci_dev,
2392 packet->dma_addr,
2393 sizeof(struct ipw2100_rx), PCI_DMA_FROMDEVICE);
2395 skb_put(packet->skb, status->frame_size);
2397 #ifdef CONFIG_IPW2100_RX_DEBUG
2398 /* Make a copy of the frame so we can dump it to the logs if
2399 * ieee80211_rx fails */
2400 memcpy(packet_data, packet->skb->data,
2401 min_t(u32, status->frame_size, IPW_RX_NIC_BUFFER_LENGTH));
2402 #endif
2404 if (!ieee80211_rx(priv->ieee, packet->skb, stats)) {
2405 #ifdef CONFIG_IPW2100_RX_DEBUG
2406 IPW_DEBUG_DROP("%s: Non consumed packet:\n",
2407 priv->net_dev->name);
2408 printk_buf(IPW_DL_DROP, packet_data, status->frame_size);
2409 #endif
2410 priv->ieee->stats.rx_errors++;
2412 /* ieee80211_rx failed, so it didn't free the SKB */
2413 dev_kfree_skb_any(packet->skb);
2414 packet->skb = NULL;
2417 /* We need to allocate a new SKB and attach it to the RDB. */
2418 if (unlikely(ipw2100_alloc_skb(priv, packet))) {
2419 printk(KERN_WARNING DRV_NAME ": "
2420 "%s: Unable to allocate SKB onto RBD ring - disabling "
2421 "adapter.\n", priv->net_dev->name);
2422 /* TODO: schedule adapter shutdown */
2423 IPW_DEBUG_INFO("TODO: Shutdown adapter...\n");
2426 /* Update the RDB entry */
2427 priv->rx_queue.drv[i].host_addr = packet->dma_addr;
2430 static int ipw2100_corruption_check(struct ipw2100_priv *priv, int i)
2432 struct ipw2100_status *status = &priv->status_queue.drv[i];
2433 struct ipw2100_rx *u = priv->rx_buffers[i].rxp;
2434 u16 frame_type = status->status_fields & STATUS_TYPE_MASK;
2436 switch (frame_type) {
2437 case COMMAND_STATUS_VAL:
2438 return (status->frame_size != sizeof(u->rx_data.command));
2439 case STATUS_CHANGE_VAL:
2440 return (status->frame_size != sizeof(u->rx_data.status));
2441 case HOST_NOTIFICATION_VAL:
2442 return (status->frame_size < sizeof(u->rx_data.notification));
2443 case P80211_DATA_VAL:
2444 case P8023_DATA_VAL:
2445 #ifdef CONFIG_IPW2100_MONITOR
2446 return 0;
2447 #else
2448 switch (WLAN_FC_GET_TYPE(u->rx_data.header.frame_ctl)) {
2449 case IEEE80211_FTYPE_MGMT:
2450 case IEEE80211_FTYPE_CTL:
2451 return 0;
2452 case IEEE80211_FTYPE_DATA:
2453 return (status->frame_size >
2454 IPW_MAX_802_11_PAYLOAD_LENGTH);
2456 #endif
2459 return 1;
2463 * ipw2100 interrupts are disabled at this point, and the ISR
2464 * is the only code that calls this method. So, we do not need
2465 * to play with any locks.
2467 * RX Queue works as follows:
2469 * Read index - firmware places packet in entry identified by the
2470 * Read index and advances Read index. In this manner,
2471 * Read index will always point to the next packet to
2472 * be filled--but not yet valid.
2474 * Write index - driver fills this entry with an unused RBD entry.
2475 * This entry has not filled by the firmware yet.
2477 * In between the W and R indexes are the RBDs that have been received
2478 * but not yet processed.
2480 * The process of handling packets will start at WRITE + 1 and advance
2481 * until it reaches the READ index.
2483 * The WRITE index is cached in the variable 'priv->rx_queue.next'.
2486 static void __ipw2100_rx_process(struct ipw2100_priv *priv)
2488 struct ipw2100_bd_queue *rxq = &priv->rx_queue;
2489 struct ipw2100_status_queue *sq = &priv->status_queue;
2490 struct ipw2100_rx_packet *packet;
2491 u16 frame_type;
2492 u32 r, w, i, s;
2493 struct ipw2100_rx *u;
2494 struct ieee80211_rx_stats stats = {
2495 .mac_time = jiffies,
2498 read_register(priv->net_dev, IPW_MEM_HOST_SHARED_RX_READ_INDEX, &r);
2499 read_register(priv->net_dev, IPW_MEM_HOST_SHARED_RX_WRITE_INDEX, &w);
2501 if (r >= rxq->entries) {
2502 IPW_DEBUG_RX("exit - bad read index\n");
2503 return;
2506 i = (rxq->next + 1) % rxq->entries;
2507 s = i;
2508 while (i != r) {
2509 /* IPW_DEBUG_RX("r = %d : w = %d : processing = %d\n",
2510 r, rxq->next, i); */
2512 packet = &priv->rx_buffers[i];
2514 /* Sync the DMA for the STATUS buffer so CPU is sure to get
2515 * the correct values */
2516 pci_dma_sync_single_for_cpu(priv->pci_dev,
2517 sq->nic +
2518 sizeof(struct ipw2100_status) * i,
2519 sizeof(struct ipw2100_status),
2520 PCI_DMA_FROMDEVICE);
2522 /* Sync the DMA for the RX buffer so CPU is sure to get
2523 * the correct values */
2524 pci_dma_sync_single_for_cpu(priv->pci_dev, packet->dma_addr,
2525 sizeof(struct ipw2100_rx),
2526 PCI_DMA_FROMDEVICE);
2528 if (unlikely(ipw2100_corruption_check(priv, i))) {
2529 ipw2100_corruption_detected(priv, i);
2530 goto increment;
2533 u = packet->rxp;
2534 frame_type = sq->drv[i].status_fields & STATUS_TYPE_MASK;
2535 stats.rssi = sq->drv[i].rssi + IPW2100_RSSI_TO_DBM;
2536 stats.len = sq->drv[i].frame_size;
2538 stats.mask = 0;
2539 if (stats.rssi != 0)
2540 stats.mask |= IEEE80211_STATMASK_RSSI;
2541 stats.freq = IEEE80211_24GHZ_BAND;
2543 IPW_DEBUG_RX("%s: '%s' frame type received (%d).\n",
2544 priv->net_dev->name, frame_types[frame_type],
2545 stats.len);
2547 switch (frame_type) {
2548 case COMMAND_STATUS_VAL:
2549 /* Reset Rx watchdog */
2550 isr_rx_complete_command(priv, &u->rx_data.command);
2551 break;
2553 case STATUS_CHANGE_VAL:
2554 isr_status_change(priv, u->rx_data.status);
2555 break;
2557 case P80211_DATA_VAL:
2558 case P8023_DATA_VAL:
2559 #ifdef CONFIG_IPW2100_MONITOR
2560 if (priv->ieee->iw_mode == IW_MODE_MONITOR) {
2561 isr_rx(priv, i, &stats);
2562 break;
2564 #endif
2565 if (stats.len < sizeof(u->rx_data.header))
2566 break;
2567 switch (WLAN_FC_GET_TYPE(u->rx_data.header.frame_ctl)) {
2568 case IEEE80211_FTYPE_MGMT:
2569 ieee80211_rx_mgt(priv->ieee,
2570 &u->rx_data.header, &stats);
2571 break;
2573 case IEEE80211_FTYPE_CTL:
2574 break;
2576 case IEEE80211_FTYPE_DATA:
2577 isr_rx(priv, i, &stats);
2578 break;
2581 break;
2584 increment:
2585 /* clear status field associated with this RBD */
2586 rxq->drv[i].status.info.field = 0;
2588 i = (i + 1) % rxq->entries;
2591 if (i != s) {
2592 /* backtrack one entry, wrapping to end if at 0 */
2593 rxq->next = (i ? i : rxq->entries) - 1;
2595 write_register(priv->net_dev,
2596 IPW_MEM_HOST_SHARED_RX_WRITE_INDEX, rxq->next);
2601 * __ipw2100_tx_process
2603 * This routine will determine whether the next packet on
2604 * the fw_pend_list has been processed by the firmware yet.
2606 * If not, then it does nothing and returns.
2608 * If so, then it removes the item from the fw_pend_list, frees
2609 * any associated storage, and places the item back on the
2610 * free list of its source (either msg_free_list or tx_free_list)
2612 * TX Queue works as follows:
2614 * Read index - points to the next TBD that the firmware will
2615 * process. The firmware will read the data, and once
2616 * done processing, it will advance the Read index.
2618 * Write index - driver fills this entry with an constructed TBD
2619 * entry. The Write index is not advanced until the
2620 * packet has been configured.
2622 * In between the W and R indexes are the TBDs that have NOT been
2623 * processed. Lagging behind the R index are packets that have
2624 * been processed but have not been freed by the driver.
2626 * In order to free old storage, an internal index will be maintained
2627 * that points to the next packet to be freed. When all used
2628 * packets have been freed, the oldest index will be the same as the
2629 * firmware's read index.
2631 * The OLDEST index is cached in the variable 'priv->tx_queue.oldest'
2633 * Because the TBD structure can not contain arbitrary data, the
2634 * driver must keep an internal queue of cached allocations such that
2635 * it can put that data back into the tx_free_list and msg_free_list
2636 * for use by future command and data packets.
2639 static int __ipw2100_tx_process(struct ipw2100_priv *priv)
2641 struct ipw2100_bd_queue *txq = &priv->tx_queue;
2642 struct ipw2100_bd *tbd;
2643 struct list_head *element;
2644 struct ipw2100_tx_packet *packet;
2645 int descriptors_used;
2646 int e, i;
2647 u32 r, w, frag_num = 0;
2649 if (list_empty(&priv->fw_pend_list))
2650 return 0;
2652 element = priv->fw_pend_list.next;
2654 packet = list_entry(element, struct ipw2100_tx_packet, list);
2655 tbd = &txq->drv[packet->index];
2657 /* Determine how many TBD entries must be finished... */
2658 switch (packet->type) {
2659 case COMMAND:
2660 /* COMMAND uses only one slot; don't advance */
2661 descriptors_used = 1;
2662 e = txq->oldest;
2663 break;
2665 case DATA:
2666 /* DATA uses two slots; advance and loop position. */
2667 descriptors_used = tbd->num_fragments;
2668 frag_num = tbd->num_fragments - 1;
2669 e = txq->oldest + frag_num;
2670 e %= txq->entries;
2671 break;
2673 default:
2674 printk(KERN_WARNING DRV_NAME ": %s: Bad fw_pend_list entry!\n",
2675 priv->net_dev->name);
2676 return 0;
2679 /* if the last TBD is not done by NIC yet, then packet is
2680 * not ready to be released.
2683 read_register(priv->net_dev, IPW_MEM_HOST_SHARED_TX_QUEUE_READ_INDEX,
2684 &r);
2685 read_register(priv->net_dev, IPW_MEM_HOST_SHARED_TX_QUEUE_WRITE_INDEX,
2686 &w);
2687 if (w != txq->next)
2688 printk(KERN_WARNING DRV_NAME ": %s: write index mismatch\n",
2689 priv->net_dev->name);
2692 * txq->next is the index of the last packet written txq->oldest is
2693 * the index of the r is the index of the next packet to be read by
2694 * firmware
2698 * Quick graphic to help you visualize the following
2699 * if / else statement
2701 * ===>| s---->|===============
2702 * e>|
2703 * | a | b | c | d | e | f | g | h | i | j | k | l
2704 * r---->|
2707 * w - updated by driver
2708 * r - updated by firmware
2709 * s - start of oldest BD entry (txq->oldest)
2710 * e - end of oldest BD entry
2713 if (!((r <= w && (e < r || e >= w)) || (e < r && e >= w))) {
2714 IPW_DEBUG_TX("exit - no processed packets ready to release.\n");
2715 return 0;
2718 list_del(element);
2719 DEC_STAT(&priv->fw_pend_stat);
2721 #ifdef CONFIG_IPW2100_DEBUG
2723 int i = txq->oldest;
2724 IPW_DEBUG_TX("TX%d V=%p P=%04X T=%04X L=%d\n", i,
2725 &txq->drv[i],
2726 (u32) (txq->nic + i * sizeof(struct ipw2100_bd)),
2727 txq->drv[i].host_addr, txq->drv[i].buf_length);
2729 if (packet->type == DATA) {
2730 i = (i + 1) % txq->entries;
2732 IPW_DEBUG_TX("TX%d V=%p P=%04X T=%04X L=%d\n", i,
2733 &txq->drv[i],
2734 (u32) (txq->nic + i *
2735 sizeof(struct ipw2100_bd)),
2736 (u32) txq->drv[i].host_addr,
2737 txq->drv[i].buf_length);
2740 #endif
2742 switch (packet->type) {
2743 case DATA:
2744 if (txq->drv[txq->oldest].status.info.fields.txType != 0)
2745 printk(KERN_WARNING DRV_NAME ": %s: Queue mismatch. "
2746 "Expecting DATA TBD but pulled "
2747 "something else: ids %d=%d.\n",
2748 priv->net_dev->name, txq->oldest, packet->index);
2750 /* DATA packet; we have to unmap and free the SKB */
2751 for (i = 0; i < frag_num; i++) {
2752 tbd = &txq->drv[(packet->index + 1 + i) % txq->entries];
2754 IPW_DEBUG_TX("TX%d P=%08x L=%d\n",
2755 (packet->index + 1 + i) % txq->entries,
2756 tbd->host_addr, tbd->buf_length);
2758 pci_unmap_single(priv->pci_dev,
2759 tbd->host_addr,
2760 tbd->buf_length, PCI_DMA_TODEVICE);
2763 ieee80211_txb_free(packet->info.d_struct.txb);
2764 packet->info.d_struct.txb = NULL;
2766 list_add_tail(element, &priv->tx_free_list);
2767 INC_STAT(&priv->tx_free_stat);
2769 /* We have a free slot in the Tx queue, so wake up the
2770 * transmit layer if it is stopped. */
2771 if (priv->status & STATUS_ASSOCIATED)
2772 netif_wake_queue(priv->net_dev);
2774 /* A packet was processed by the hardware, so update the
2775 * watchdog */
2776 priv->net_dev->trans_start = jiffies;
2778 break;
2780 case COMMAND:
2781 if (txq->drv[txq->oldest].status.info.fields.txType != 1)
2782 printk(KERN_WARNING DRV_NAME ": %s: Queue mismatch. "
2783 "Expecting COMMAND TBD but pulled "
2784 "something else: ids %d=%d.\n",
2785 priv->net_dev->name, txq->oldest, packet->index);
2787 #ifdef CONFIG_IPW2100_DEBUG
2788 if (packet->info.c_struct.cmd->host_command_reg <
2789 sizeof(command_types) / sizeof(*command_types))
2790 IPW_DEBUG_TX("Command '%s (%d)' processed: %d.\n",
2791 command_types[packet->info.c_struct.cmd->
2792 host_command_reg],
2793 packet->info.c_struct.cmd->
2794 host_command_reg,
2795 packet->info.c_struct.cmd->cmd_status_reg);
2796 #endif
2798 list_add_tail(element, &priv->msg_free_list);
2799 INC_STAT(&priv->msg_free_stat);
2800 break;
2803 /* advance oldest used TBD pointer to start of next entry */
2804 txq->oldest = (e + 1) % txq->entries;
2805 /* increase available TBDs number */
2806 txq->available += descriptors_used;
2807 SET_STAT(&priv->txq_stat, txq->available);
2809 IPW_DEBUG_TX("packet latency (send to process) %ld jiffies\n",
2810 jiffies - packet->jiffy_start);
2812 return (!list_empty(&priv->fw_pend_list));
2815 static inline void __ipw2100_tx_complete(struct ipw2100_priv *priv)
2817 int i = 0;
2819 while (__ipw2100_tx_process(priv) && i < 200)
2820 i++;
2822 if (i == 200) {
2823 printk(KERN_WARNING DRV_NAME ": "
2824 "%s: Driver is running slow (%d iters).\n",
2825 priv->net_dev->name, i);
2829 static void ipw2100_tx_send_commands(struct ipw2100_priv *priv)
2831 struct list_head *element;
2832 struct ipw2100_tx_packet *packet;
2833 struct ipw2100_bd_queue *txq = &priv->tx_queue;
2834 struct ipw2100_bd *tbd;
2835 int next = txq->next;
2837 while (!list_empty(&priv->msg_pend_list)) {
2838 /* if there isn't enough space in TBD queue, then
2839 * don't stuff a new one in.
2840 * NOTE: 3 are needed as a command will take one,
2841 * and there is a minimum of 2 that must be
2842 * maintained between the r and w indexes
2844 if (txq->available <= 3) {
2845 IPW_DEBUG_TX("no room in tx_queue\n");
2846 break;
2849 element = priv->msg_pend_list.next;
2850 list_del(element);
2851 DEC_STAT(&priv->msg_pend_stat);
2853 packet = list_entry(element, struct ipw2100_tx_packet, list);
2855 IPW_DEBUG_TX("using TBD at virt=%p, phys=%p\n",
2856 &txq->drv[txq->next],
2857 (void *)(txq->nic + txq->next *
2858 sizeof(struct ipw2100_bd)));
2860 packet->index = txq->next;
2862 tbd = &txq->drv[txq->next];
2864 /* initialize TBD */
2865 tbd->host_addr = packet->info.c_struct.cmd_phys;
2866 tbd->buf_length = sizeof(struct ipw2100_cmd_header);
2867 /* not marking number of fragments causes problems
2868 * with f/w debug version */
2869 tbd->num_fragments = 1;
2870 tbd->status.info.field =
2871 IPW_BD_STATUS_TX_FRAME_COMMAND |
2872 IPW_BD_STATUS_TX_INTERRUPT_ENABLE;
2874 /* update TBD queue counters */
2875 txq->next++;
2876 txq->next %= txq->entries;
2877 txq->available--;
2878 DEC_STAT(&priv->txq_stat);
2880 list_add_tail(element, &priv->fw_pend_list);
2881 INC_STAT(&priv->fw_pend_stat);
2884 if (txq->next != next) {
2885 /* kick off the DMA by notifying firmware the
2886 * write index has moved; make sure TBD stores are sync'd */
2887 wmb();
2888 write_register(priv->net_dev,
2889 IPW_MEM_HOST_SHARED_TX_QUEUE_WRITE_INDEX,
2890 txq->next);
2895 * ipw2100_tx_send_data
2898 static void ipw2100_tx_send_data(struct ipw2100_priv *priv)
2900 struct list_head *element;
2901 struct ipw2100_tx_packet *packet;
2902 struct ipw2100_bd_queue *txq = &priv->tx_queue;
2903 struct ipw2100_bd *tbd;
2904 int next = txq->next;
2905 int i = 0;
2906 struct ipw2100_data_header *ipw_hdr;
2907 struct ieee80211_hdr_3addr *hdr;
2909 while (!list_empty(&priv->tx_pend_list)) {
2910 /* if there isn't enough space in TBD queue, then
2911 * don't stuff a new one in.
2912 * NOTE: 4 are needed as a data will take two,
2913 * and there is a minimum of 2 that must be
2914 * maintained between the r and w indexes
2916 element = priv->tx_pend_list.next;
2917 packet = list_entry(element, struct ipw2100_tx_packet, list);
2919 if (unlikely(1 + packet->info.d_struct.txb->nr_frags >
2920 IPW_MAX_BDS)) {
2921 /* TODO: Support merging buffers if more than
2922 * IPW_MAX_BDS are used */
2923 IPW_DEBUG_INFO("%s: Maximum BD theshold exceeded. "
2924 "Increase fragmentation level.\n",
2925 priv->net_dev->name);
2928 if (txq->available <= 3 + packet->info.d_struct.txb->nr_frags) {
2929 IPW_DEBUG_TX("no room in tx_queue\n");
2930 break;
2933 list_del(element);
2934 DEC_STAT(&priv->tx_pend_stat);
2936 tbd = &txq->drv[txq->next];
2938 packet->index = txq->next;
2940 ipw_hdr = packet->info.d_struct.data;
2941 hdr = (struct ieee80211_hdr_3addr *)packet->info.d_struct.txb->
2942 fragments[0]->data;
2944 if (priv->ieee->iw_mode == IW_MODE_INFRA) {
2945 /* To DS: Addr1 = BSSID, Addr2 = SA,
2946 Addr3 = DA */
2947 memcpy(ipw_hdr->src_addr, hdr->addr2, ETH_ALEN);
2948 memcpy(ipw_hdr->dst_addr, hdr->addr3, ETH_ALEN);
2949 } else if (priv->ieee->iw_mode == IW_MODE_ADHOC) {
2950 /* not From/To DS: Addr1 = DA, Addr2 = SA,
2951 Addr3 = BSSID */
2952 memcpy(ipw_hdr->src_addr, hdr->addr2, ETH_ALEN);
2953 memcpy(ipw_hdr->dst_addr, hdr->addr1, ETH_ALEN);
2956 ipw_hdr->host_command_reg = SEND;
2957 ipw_hdr->host_command_reg1 = 0;
2959 /* For now we only support host based encryption */
2960 ipw_hdr->needs_encryption = 0;
2961 ipw_hdr->encrypted = packet->info.d_struct.txb->encrypted;
2962 if (packet->info.d_struct.txb->nr_frags > 1)
2963 ipw_hdr->fragment_size =
2964 packet->info.d_struct.txb->frag_size -
2965 IEEE80211_3ADDR_LEN;
2966 else
2967 ipw_hdr->fragment_size = 0;
2969 tbd->host_addr = packet->info.d_struct.data_phys;
2970 tbd->buf_length = sizeof(struct ipw2100_data_header);
2971 tbd->num_fragments = 1 + packet->info.d_struct.txb->nr_frags;
2972 tbd->status.info.field =
2973 IPW_BD_STATUS_TX_FRAME_802_3 |
2974 IPW_BD_STATUS_TX_FRAME_NOT_LAST_FRAGMENT;
2975 txq->next++;
2976 txq->next %= txq->entries;
2978 IPW_DEBUG_TX("data header tbd TX%d P=%08x L=%d\n",
2979 packet->index, tbd->host_addr, tbd->buf_length);
2980 #ifdef CONFIG_IPW2100_DEBUG
2981 if (packet->info.d_struct.txb->nr_frags > 1)
2982 IPW_DEBUG_FRAG("fragment Tx: %d frames\n",
2983 packet->info.d_struct.txb->nr_frags);
2984 #endif
2986 for (i = 0; i < packet->info.d_struct.txb->nr_frags; i++) {
2987 tbd = &txq->drv[txq->next];
2988 if (i == packet->info.d_struct.txb->nr_frags - 1)
2989 tbd->status.info.field =
2990 IPW_BD_STATUS_TX_FRAME_802_3 |
2991 IPW_BD_STATUS_TX_INTERRUPT_ENABLE;
2992 else
2993 tbd->status.info.field =
2994 IPW_BD_STATUS_TX_FRAME_802_3 |
2995 IPW_BD_STATUS_TX_FRAME_NOT_LAST_FRAGMENT;
2997 tbd->buf_length = packet->info.d_struct.txb->
2998 fragments[i]->len - IEEE80211_3ADDR_LEN;
3000 tbd->host_addr = pci_map_single(priv->pci_dev,
3001 packet->info.d_struct.
3002 txb->fragments[i]->
3003 data +
3004 IEEE80211_3ADDR_LEN,
3005 tbd->buf_length,
3006 PCI_DMA_TODEVICE);
3008 IPW_DEBUG_TX("data frag tbd TX%d P=%08x L=%d\n",
3009 txq->next, tbd->host_addr,
3010 tbd->buf_length);
3012 pci_dma_sync_single_for_device(priv->pci_dev,
3013 tbd->host_addr,
3014 tbd->buf_length,
3015 PCI_DMA_TODEVICE);
3017 txq->next++;
3018 txq->next %= txq->entries;
3021 txq->available -= 1 + packet->info.d_struct.txb->nr_frags;
3022 SET_STAT(&priv->txq_stat, txq->available);
3024 list_add_tail(element, &priv->fw_pend_list);
3025 INC_STAT(&priv->fw_pend_stat);
3028 if (txq->next != next) {
3029 /* kick off the DMA by notifying firmware the
3030 * write index has moved; make sure TBD stores are sync'd */
3031 write_register(priv->net_dev,
3032 IPW_MEM_HOST_SHARED_TX_QUEUE_WRITE_INDEX,
3033 txq->next);
3035 return;
3038 static void ipw2100_irq_tasklet(struct ipw2100_priv *priv)
3040 struct net_device *dev = priv->net_dev;
3041 unsigned long flags;
3042 u32 inta, tmp;
3044 spin_lock_irqsave(&priv->low_lock, flags);
3045 ipw2100_disable_interrupts(priv);
3047 read_register(dev, IPW_REG_INTA, &inta);
3049 IPW_DEBUG_ISR("enter - INTA: 0x%08lX\n",
3050 (unsigned long)inta & IPW_INTERRUPT_MASK);
3052 priv->in_isr++;
3053 priv->interrupts++;
3055 /* We do not loop and keep polling for more interrupts as this
3056 * is frowned upon and doesn't play nicely with other potentially
3057 * chained IRQs */
3058 IPW_DEBUG_ISR("INTA: 0x%08lX\n",
3059 (unsigned long)inta & IPW_INTERRUPT_MASK);
3061 if (inta & IPW2100_INTA_FATAL_ERROR) {
3062 printk(KERN_WARNING DRV_NAME
3063 ": Fatal interrupt. Scheduling firmware restart.\n");
3064 priv->inta_other++;
3065 write_register(dev, IPW_REG_INTA, IPW2100_INTA_FATAL_ERROR);
3067 read_nic_dword(dev, IPW_NIC_FATAL_ERROR, &priv->fatal_error);
3068 IPW_DEBUG_INFO("%s: Fatal error value: 0x%08X\n",
3069 priv->net_dev->name, priv->fatal_error);
3071 read_nic_dword(dev, IPW_ERROR_ADDR(priv->fatal_error), &tmp);
3072 IPW_DEBUG_INFO("%s: Fatal error address value: 0x%08X\n",
3073 priv->net_dev->name, tmp);
3075 /* Wake up any sleeping jobs */
3076 schedule_reset(priv);
3079 if (inta & IPW2100_INTA_PARITY_ERROR) {
3080 printk(KERN_ERR DRV_NAME
3081 ": ***** PARITY ERROR INTERRUPT !!!! \n");
3082 priv->inta_other++;
3083 write_register(dev, IPW_REG_INTA, IPW2100_INTA_PARITY_ERROR);
3086 if (inta & IPW2100_INTA_RX_TRANSFER) {
3087 IPW_DEBUG_ISR("RX interrupt\n");
3089 priv->rx_interrupts++;
3091 write_register(dev, IPW_REG_INTA, IPW2100_INTA_RX_TRANSFER);
3093 __ipw2100_rx_process(priv);
3094 __ipw2100_tx_complete(priv);
3097 if (inta & IPW2100_INTA_TX_TRANSFER) {
3098 IPW_DEBUG_ISR("TX interrupt\n");
3100 priv->tx_interrupts++;
3102 write_register(dev, IPW_REG_INTA, IPW2100_INTA_TX_TRANSFER);
3104 __ipw2100_tx_complete(priv);
3105 ipw2100_tx_send_commands(priv);
3106 ipw2100_tx_send_data(priv);
3109 if (inta & IPW2100_INTA_TX_COMPLETE) {
3110 IPW_DEBUG_ISR("TX complete\n");
3111 priv->inta_other++;
3112 write_register(dev, IPW_REG_INTA, IPW2100_INTA_TX_COMPLETE);
3114 __ipw2100_tx_complete(priv);
3117 if (inta & IPW2100_INTA_EVENT_INTERRUPT) {
3118 /* ipw2100_handle_event(dev); */
3119 priv->inta_other++;
3120 write_register(dev, IPW_REG_INTA, IPW2100_INTA_EVENT_INTERRUPT);
3123 if (inta & IPW2100_INTA_FW_INIT_DONE) {
3124 IPW_DEBUG_ISR("FW init done interrupt\n");
3125 priv->inta_other++;
3127 read_register(dev, IPW_REG_INTA, &tmp);
3128 if (tmp & (IPW2100_INTA_FATAL_ERROR |
3129 IPW2100_INTA_PARITY_ERROR)) {
3130 write_register(dev, IPW_REG_INTA,
3131 IPW2100_INTA_FATAL_ERROR |
3132 IPW2100_INTA_PARITY_ERROR);
3135 write_register(dev, IPW_REG_INTA, IPW2100_INTA_FW_INIT_DONE);
3138 if (inta & IPW2100_INTA_STATUS_CHANGE) {
3139 IPW_DEBUG_ISR("Status change interrupt\n");
3140 priv->inta_other++;
3141 write_register(dev, IPW_REG_INTA, IPW2100_INTA_STATUS_CHANGE);
3144 if (inta & IPW2100_INTA_SLAVE_MODE_HOST_COMMAND_DONE) {
3145 IPW_DEBUG_ISR("slave host mode interrupt\n");
3146 priv->inta_other++;
3147 write_register(dev, IPW_REG_INTA,
3148 IPW2100_INTA_SLAVE_MODE_HOST_COMMAND_DONE);
3151 priv->in_isr--;
3152 ipw2100_enable_interrupts(priv);
3154 spin_unlock_irqrestore(&priv->low_lock, flags);
3156 IPW_DEBUG_ISR("exit\n");
3159 static irqreturn_t ipw2100_interrupt(int irq, void *data, struct pt_regs *regs)
3161 struct ipw2100_priv *priv = data;
3162 u32 inta, inta_mask;
3164 if (!data)
3165 return IRQ_NONE;
3167 spin_lock(&priv->low_lock);
3169 /* We check to see if we should be ignoring interrupts before
3170 * we touch the hardware. During ucode load if we try and handle
3171 * an interrupt we can cause keyboard problems as well as cause
3172 * the ucode to fail to initialize */
3173 if (!(priv->status & STATUS_INT_ENABLED)) {
3174 /* Shared IRQ */
3175 goto none;
3178 read_register(priv->net_dev, IPW_REG_INTA_MASK, &inta_mask);
3179 read_register(priv->net_dev, IPW_REG_INTA, &inta);
3181 if (inta == 0xFFFFFFFF) {
3182 /* Hardware disappeared */
3183 printk(KERN_WARNING DRV_NAME ": IRQ INTA == 0xFFFFFFFF\n");
3184 goto none;
3187 inta &= IPW_INTERRUPT_MASK;
3189 if (!(inta & inta_mask)) {
3190 /* Shared interrupt */
3191 goto none;
3194 /* We disable the hardware interrupt here just to prevent unneeded
3195 * calls to be made. We disable this again within the actual
3196 * work tasklet, so if another part of the code re-enables the
3197 * interrupt, that is fine */
3198 ipw2100_disable_interrupts(priv);
3200 tasklet_schedule(&priv->irq_tasklet);
3201 spin_unlock(&priv->low_lock);
3203 return IRQ_HANDLED;
3204 none:
3205 spin_unlock(&priv->low_lock);
3206 return IRQ_NONE;
3209 static int ipw2100_tx(struct ieee80211_txb *txb, struct net_device *dev,
3210 int pri)
3212 struct ipw2100_priv *priv = ieee80211_priv(dev);
3213 struct list_head *element;
3214 struct ipw2100_tx_packet *packet;
3215 unsigned long flags;
3217 spin_lock_irqsave(&priv->low_lock, flags);
3219 if (!(priv->status & STATUS_ASSOCIATED)) {
3220 IPW_DEBUG_INFO("Can not transmit when not connected.\n");
3221 priv->ieee->stats.tx_carrier_errors++;
3222 netif_stop_queue(dev);
3223 goto fail_unlock;
3226 if (list_empty(&priv->tx_free_list))
3227 goto fail_unlock;
3229 element = priv->tx_free_list.next;
3230 packet = list_entry(element, struct ipw2100_tx_packet, list);
3232 packet->info.d_struct.txb = txb;
3234 IPW_DEBUG_TX("Sending fragment (%d bytes):\n", txb->fragments[0]->len);
3235 printk_buf(IPW_DL_TX, txb->fragments[0]->data, txb->fragments[0]->len);
3237 packet->jiffy_start = jiffies;
3239 list_del(element);
3240 DEC_STAT(&priv->tx_free_stat);
3242 list_add_tail(element, &priv->tx_pend_list);
3243 INC_STAT(&priv->tx_pend_stat);
3245 ipw2100_tx_send_data(priv);
3247 spin_unlock_irqrestore(&priv->low_lock, flags);
3248 return 0;
3250 fail_unlock:
3251 netif_stop_queue(dev);
3252 spin_unlock_irqrestore(&priv->low_lock, flags);
3253 return 1;
3256 static int ipw2100_msg_allocate(struct ipw2100_priv *priv)
3258 int i, j, err = -EINVAL;
3259 void *v;
3260 dma_addr_t p;
3262 priv->msg_buffers =
3263 (struct ipw2100_tx_packet *)kmalloc(IPW_COMMAND_POOL_SIZE *
3264 sizeof(struct
3265 ipw2100_tx_packet),
3266 GFP_KERNEL);
3267 if (!priv->msg_buffers) {
3268 printk(KERN_ERR DRV_NAME ": %s: PCI alloc failed for msg "
3269 "buffers.\n", priv->net_dev->name);
3270 return -ENOMEM;
3273 for (i = 0; i < IPW_COMMAND_POOL_SIZE; i++) {
3274 v = pci_alloc_consistent(priv->pci_dev,
3275 sizeof(struct ipw2100_cmd_header), &p);
3276 if (!v) {
3277 printk(KERN_ERR DRV_NAME ": "
3278 "%s: PCI alloc failed for msg "
3279 "buffers.\n", priv->net_dev->name);
3280 err = -ENOMEM;
3281 break;
3284 memset(v, 0, sizeof(struct ipw2100_cmd_header));
3286 priv->msg_buffers[i].type = COMMAND;
3287 priv->msg_buffers[i].info.c_struct.cmd =
3288 (struct ipw2100_cmd_header *)v;
3289 priv->msg_buffers[i].info.c_struct.cmd_phys = p;
3292 if (i == IPW_COMMAND_POOL_SIZE)
3293 return 0;
3295 for (j = 0; j < i; j++) {
3296 pci_free_consistent(priv->pci_dev,
3297 sizeof(struct ipw2100_cmd_header),
3298 priv->msg_buffers[j].info.c_struct.cmd,
3299 priv->msg_buffers[j].info.c_struct.
3300 cmd_phys);
3303 kfree(priv->msg_buffers);
3304 priv->msg_buffers = NULL;
3306 return err;
3309 static int ipw2100_msg_initialize(struct ipw2100_priv *priv)
3311 int i;
3313 INIT_LIST_HEAD(&priv->msg_free_list);
3314 INIT_LIST_HEAD(&priv->msg_pend_list);
3316 for (i = 0; i < IPW_COMMAND_POOL_SIZE; i++)
3317 list_add_tail(&priv->msg_buffers[i].list, &priv->msg_free_list);
3318 SET_STAT(&priv->msg_free_stat, i);
3320 return 0;
3323 static void ipw2100_msg_free(struct ipw2100_priv *priv)
3325 int i;
3327 if (!priv->msg_buffers)
3328 return;
3330 for (i = 0; i < IPW_COMMAND_POOL_SIZE; i++) {
3331 pci_free_consistent(priv->pci_dev,
3332 sizeof(struct ipw2100_cmd_header),
3333 priv->msg_buffers[i].info.c_struct.cmd,
3334 priv->msg_buffers[i].info.c_struct.
3335 cmd_phys);
3338 kfree(priv->msg_buffers);
3339 priv->msg_buffers = NULL;
3342 static ssize_t show_pci(struct device *d, struct device_attribute *attr,
3343 char *buf)
3345 struct pci_dev *pci_dev = container_of(d, struct pci_dev, dev);
3346 char *out = buf;
3347 int i, j;
3348 u32 val;
3350 for (i = 0; i < 16; i++) {
3351 out += sprintf(out, "[%08X] ", i * 16);
3352 for (j = 0; j < 16; j += 4) {
3353 pci_read_config_dword(pci_dev, i * 16 + j, &val);
3354 out += sprintf(out, "%08X ", val);
3356 out += sprintf(out, "\n");
3359 return out - buf;
3362 static DEVICE_ATTR(pci, S_IRUGO, show_pci, NULL);
3364 static ssize_t show_cfg(struct device *d, struct device_attribute *attr,
3365 char *buf)
3367 struct ipw2100_priv *p = d->driver_data;
3368 return sprintf(buf, "0x%08x\n", (int)p->config);
3371 static DEVICE_ATTR(cfg, S_IRUGO, show_cfg, NULL);
3373 static ssize_t show_status(struct device *d, struct device_attribute *attr,
3374 char *buf)
3376 struct ipw2100_priv *p = d->driver_data;
3377 return sprintf(buf, "0x%08x\n", (int)p->status);
3380 static DEVICE_ATTR(status, S_IRUGO, show_status, NULL);
3382 static ssize_t show_capability(struct device *d, struct device_attribute *attr,
3383 char *buf)
3385 struct ipw2100_priv *p = d->driver_data;
3386 return sprintf(buf, "0x%08x\n", (int)p->capability);
3389 static DEVICE_ATTR(capability, S_IRUGO, show_capability, NULL);
3391 #define IPW2100_REG(x) { IPW_ ##x, #x }
3392 static const struct {
3393 u32 addr;
3394 const char *name;
3395 } hw_data[] = {
3396 IPW2100_REG(REG_GP_CNTRL),
3397 IPW2100_REG(REG_GPIO),
3398 IPW2100_REG(REG_INTA),
3399 IPW2100_REG(REG_INTA_MASK), IPW2100_REG(REG_RESET_REG),};
3400 #define IPW2100_NIC(x, s) { x, #x, s }
3401 static const struct {
3402 u32 addr;
3403 const char *name;
3404 size_t size;
3405 } nic_data[] = {
3406 IPW2100_NIC(IPW2100_CONTROL_REG, 2),
3407 IPW2100_NIC(0x210014, 1), IPW2100_NIC(0x210000, 1),};
3408 #define IPW2100_ORD(x, d) { IPW_ORD_ ##x, #x, d }
3409 static const struct {
3410 u8 index;
3411 const char *name;
3412 const char *desc;
3413 } ord_data[] = {
3414 IPW2100_ORD(STAT_TX_HOST_REQUESTS, "requested Host Tx's (MSDU)"),
3415 IPW2100_ORD(STAT_TX_HOST_COMPLETE,
3416 "successful Host Tx's (MSDU)"),
3417 IPW2100_ORD(STAT_TX_DIR_DATA,
3418 "successful Directed Tx's (MSDU)"),
3419 IPW2100_ORD(STAT_TX_DIR_DATA1,
3420 "successful Directed Tx's (MSDU) @ 1MB"),
3421 IPW2100_ORD(STAT_TX_DIR_DATA2,
3422 "successful Directed Tx's (MSDU) @ 2MB"),
3423 IPW2100_ORD(STAT_TX_DIR_DATA5_5,
3424 "successful Directed Tx's (MSDU) @ 5_5MB"),
3425 IPW2100_ORD(STAT_TX_DIR_DATA11,
3426 "successful Directed Tx's (MSDU) @ 11MB"),
3427 IPW2100_ORD(STAT_TX_NODIR_DATA1,
3428 "successful Non_Directed Tx's (MSDU) @ 1MB"),
3429 IPW2100_ORD(STAT_TX_NODIR_DATA2,
3430 "successful Non_Directed Tx's (MSDU) @ 2MB"),
3431 IPW2100_ORD(STAT_TX_NODIR_DATA5_5,
3432 "successful Non_Directed Tx's (MSDU) @ 5.5MB"),
3433 IPW2100_ORD(STAT_TX_NODIR_DATA11,
3434 "successful Non_Directed Tx's (MSDU) @ 11MB"),
3435 IPW2100_ORD(STAT_NULL_DATA, "successful NULL data Tx's"),
3436 IPW2100_ORD(STAT_TX_RTS, "successful Tx RTS"),
3437 IPW2100_ORD(STAT_TX_CTS, "successful Tx CTS"),
3438 IPW2100_ORD(STAT_TX_ACK, "successful Tx ACK"),
3439 IPW2100_ORD(STAT_TX_ASSN, "successful Association Tx's"),
3440 IPW2100_ORD(STAT_TX_ASSN_RESP,
3441 "successful Association response Tx's"),
3442 IPW2100_ORD(STAT_TX_REASSN,
3443 "successful Reassociation Tx's"),
3444 IPW2100_ORD(STAT_TX_REASSN_RESP,
3445 "successful Reassociation response Tx's"),
3446 IPW2100_ORD(STAT_TX_PROBE,
3447 "probes successfully transmitted"),
3448 IPW2100_ORD(STAT_TX_PROBE_RESP,
3449 "probe responses successfully transmitted"),
3450 IPW2100_ORD(STAT_TX_BEACON, "tx beacon"),
3451 IPW2100_ORD(STAT_TX_ATIM, "Tx ATIM"),
3452 IPW2100_ORD(STAT_TX_DISASSN,
3453 "successful Disassociation TX"),
3454 IPW2100_ORD(STAT_TX_AUTH, "successful Authentication Tx"),
3455 IPW2100_ORD(STAT_TX_DEAUTH,
3456 "successful Deauthentication TX"),
3457 IPW2100_ORD(STAT_TX_TOTAL_BYTES,
3458 "Total successful Tx data bytes"),
3459 IPW2100_ORD(STAT_TX_RETRIES, "Tx retries"),
3460 IPW2100_ORD(STAT_TX_RETRY1, "Tx retries at 1MBPS"),
3461 IPW2100_ORD(STAT_TX_RETRY2, "Tx retries at 2MBPS"),
3462 IPW2100_ORD(STAT_TX_RETRY5_5, "Tx retries at 5.5MBPS"),
3463 IPW2100_ORD(STAT_TX_RETRY11, "Tx retries at 11MBPS"),
3464 IPW2100_ORD(STAT_TX_FAILURES, "Tx Failures"),
3465 IPW2100_ORD(STAT_TX_MAX_TRIES_IN_HOP,
3466 "times max tries in a hop failed"),
3467 IPW2100_ORD(STAT_TX_DISASSN_FAIL,
3468 "times disassociation failed"),
3469 IPW2100_ORD(STAT_TX_ERR_CTS, "missed/bad CTS frames"),
3470 IPW2100_ORD(STAT_TX_ERR_ACK, "tx err due to acks"),
3471 IPW2100_ORD(STAT_RX_HOST, "packets passed to host"),
3472 IPW2100_ORD(STAT_RX_DIR_DATA, "directed packets"),
3473 IPW2100_ORD(STAT_RX_DIR_DATA1, "directed packets at 1MB"),
3474 IPW2100_ORD(STAT_RX_DIR_DATA2, "directed packets at 2MB"),
3475 IPW2100_ORD(STAT_RX_DIR_DATA5_5,
3476 "directed packets at 5.5MB"),
3477 IPW2100_ORD(STAT_RX_DIR_DATA11, "directed packets at 11MB"),
3478 IPW2100_ORD(STAT_RX_NODIR_DATA, "nondirected packets"),
3479 IPW2100_ORD(STAT_RX_NODIR_DATA1,
3480 "nondirected packets at 1MB"),
3481 IPW2100_ORD(STAT_RX_NODIR_DATA2,
3482 "nondirected packets at 2MB"),
3483 IPW2100_ORD(STAT_RX_NODIR_DATA5_5,
3484 "nondirected packets at 5.5MB"),
3485 IPW2100_ORD(STAT_RX_NODIR_DATA11,
3486 "nondirected packets at 11MB"),
3487 IPW2100_ORD(STAT_RX_NULL_DATA, "null data rx's"),
3488 IPW2100_ORD(STAT_RX_RTS, "Rx RTS"), IPW2100_ORD(STAT_RX_CTS,
3489 "Rx CTS"),
3490 IPW2100_ORD(STAT_RX_ACK, "Rx ACK"),
3491 IPW2100_ORD(STAT_RX_CFEND, "Rx CF End"),
3492 IPW2100_ORD(STAT_RX_CFEND_ACK, "Rx CF End + CF Ack"),
3493 IPW2100_ORD(STAT_RX_ASSN, "Association Rx's"),
3494 IPW2100_ORD(STAT_RX_ASSN_RESP, "Association response Rx's"),
3495 IPW2100_ORD(STAT_RX_REASSN, "Reassociation Rx's"),
3496 IPW2100_ORD(STAT_RX_REASSN_RESP,
3497 "Reassociation response Rx's"),
3498 IPW2100_ORD(STAT_RX_PROBE, "probe Rx's"),
3499 IPW2100_ORD(STAT_RX_PROBE_RESP, "probe response Rx's"),
3500 IPW2100_ORD(STAT_RX_BEACON, "Rx beacon"),
3501 IPW2100_ORD(STAT_RX_ATIM, "Rx ATIM"),
3502 IPW2100_ORD(STAT_RX_DISASSN, "disassociation Rx"),
3503 IPW2100_ORD(STAT_RX_AUTH, "authentication Rx"),
3504 IPW2100_ORD(STAT_RX_DEAUTH, "deauthentication Rx"),
3505 IPW2100_ORD(STAT_RX_TOTAL_BYTES,
3506 "Total rx data bytes received"),
3507 IPW2100_ORD(STAT_RX_ERR_CRC, "packets with Rx CRC error"),
3508 IPW2100_ORD(STAT_RX_ERR_CRC1, "Rx CRC errors at 1MB"),
3509 IPW2100_ORD(STAT_RX_ERR_CRC2, "Rx CRC errors at 2MB"),
3510 IPW2100_ORD(STAT_RX_ERR_CRC5_5, "Rx CRC errors at 5.5MB"),
3511 IPW2100_ORD(STAT_RX_ERR_CRC11, "Rx CRC errors at 11MB"),
3512 IPW2100_ORD(STAT_RX_DUPLICATE1,
3513 "duplicate rx packets at 1MB"),
3514 IPW2100_ORD(STAT_RX_DUPLICATE2,
3515 "duplicate rx packets at 2MB"),
3516 IPW2100_ORD(STAT_RX_DUPLICATE5_5,
3517 "duplicate rx packets at 5.5MB"),
3518 IPW2100_ORD(STAT_RX_DUPLICATE11,
3519 "duplicate rx packets at 11MB"),
3520 IPW2100_ORD(STAT_RX_DUPLICATE, "duplicate rx packets"),
3521 IPW2100_ORD(PERS_DB_LOCK, "locking fw permanent db"),
3522 IPW2100_ORD(PERS_DB_SIZE, "size of fw permanent db"),
3523 IPW2100_ORD(PERS_DB_ADDR, "address of fw permanent db"),
3524 IPW2100_ORD(STAT_RX_INVALID_PROTOCOL,
3525 "rx frames with invalid protocol"),
3526 IPW2100_ORD(SYS_BOOT_TIME, "Boot time"),
3527 IPW2100_ORD(STAT_RX_NO_BUFFER,
3528 "rx frames rejected due to no buffer"),
3529 IPW2100_ORD(STAT_RX_MISSING_FRAG,
3530 "rx frames dropped due to missing fragment"),
3531 IPW2100_ORD(STAT_RX_ORPHAN_FRAG,
3532 "rx frames dropped due to non-sequential fragment"),
3533 IPW2100_ORD(STAT_RX_ORPHAN_FRAME,
3534 "rx frames dropped due to unmatched 1st frame"),
3535 IPW2100_ORD(STAT_RX_FRAG_AGEOUT,
3536 "rx frames dropped due to uncompleted frame"),
3537 IPW2100_ORD(STAT_RX_ICV_ERRORS,
3538 "ICV errors during decryption"),
3539 IPW2100_ORD(STAT_PSP_SUSPENSION, "times adapter suspended"),
3540 IPW2100_ORD(STAT_PSP_BCN_TIMEOUT, "beacon timeout"),
3541 IPW2100_ORD(STAT_PSP_POLL_TIMEOUT,
3542 "poll response timeouts"),
3543 IPW2100_ORD(STAT_PSP_NONDIR_TIMEOUT,
3544 "timeouts waiting for last {broad,multi}cast pkt"),
3545 IPW2100_ORD(STAT_PSP_RX_DTIMS, "PSP DTIMs received"),
3546 IPW2100_ORD(STAT_PSP_RX_TIMS, "PSP TIMs received"),
3547 IPW2100_ORD(STAT_PSP_STATION_ID, "PSP Station ID"),
3548 IPW2100_ORD(LAST_ASSN_TIME, "RTC time of last association"),
3549 IPW2100_ORD(STAT_PERCENT_MISSED_BCNS,
3550 "current calculation of % missed beacons"),
3551 IPW2100_ORD(STAT_PERCENT_RETRIES,
3552 "current calculation of % missed tx retries"),
3553 IPW2100_ORD(ASSOCIATED_AP_PTR,
3554 "0 if not associated, else pointer to AP table entry"),
3555 IPW2100_ORD(AVAILABLE_AP_CNT,
3556 "AP's decsribed in the AP table"),
3557 IPW2100_ORD(AP_LIST_PTR, "Ptr to list of available APs"),
3558 IPW2100_ORD(STAT_AP_ASSNS, "associations"),
3559 IPW2100_ORD(STAT_ASSN_FAIL, "association failures"),
3560 IPW2100_ORD(STAT_ASSN_RESP_FAIL,
3561 "failures due to response fail"),
3562 IPW2100_ORD(STAT_FULL_SCANS, "full scans"),
3563 IPW2100_ORD(CARD_DISABLED, "Card Disabled"),
3564 IPW2100_ORD(STAT_ROAM_INHIBIT,
3565 "times roaming was inhibited due to activity"),
3566 IPW2100_ORD(RSSI_AT_ASSN,
3567 "RSSI of associated AP at time of association"),
3568 IPW2100_ORD(STAT_ASSN_CAUSE1,
3569 "reassociation: no probe response or TX on hop"),
3570 IPW2100_ORD(STAT_ASSN_CAUSE2,
3571 "reassociation: poor tx/rx quality"),
3572 IPW2100_ORD(STAT_ASSN_CAUSE3,
3573 "reassociation: tx/rx quality (excessive AP load"),
3574 IPW2100_ORD(STAT_ASSN_CAUSE4,
3575 "reassociation: AP RSSI level"),
3576 IPW2100_ORD(STAT_ASSN_CAUSE5,
3577 "reassociations due to load leveling"),
3578 IPW2100_ORD(STAT_AUTH_FAIL, "times authentication failed"),
3579 IPW2100_ORD(STAT_AUTH_RESP_FAIL,
3580 "times authentication response failed"),
3581 IPW2100_ORD(STATION_TABLE_CNT,
3582 "entries in association table"),
3583 IPW2100_ORD(RSSI_AVG_CURR, "Current avg RSSI"),
3584 IPW2100_ORD(POWER_MGMT_MODE, "Power mode - 0=CAM, 1=PSP"),
3585 IPW2100_ORD(COUNTRY_CODE,
3586 "IEEE country code as recv'd from beacon"),
3587 IPW2100_ORD(COUNTRY_CHANNELS,
3588 "channels suported by country"),
3589 IPW2100_ORD(RESET_CNT, "adapter resets (warm)"),
3590 IPW2100_ORD(BEACON_INTERVAL, "Beacon interval"),
3591 IPW2100_ORD(ANTENNA_DIVERSITY,
3592 "TRUE if antenna diversity is disabled"),
3593 IPW2100_ORD(DTIM_PERIOD, "beacon intervals between DTIMs"),
3594 IPW2100_ORD(OUR_FREQ,
3595 "current radio freq lower digits - channel ID"),
3596 IPW2100_ORD(RTC_TIME, "current RTC time"),
3597 IPW2100_ORD(PORT_TYPE, "operating mode"),
3598 IPW2100_ORD(CURRENT_TX_RATE, "current tx rate"),
3599 IPW2100_ORD(SUPPORTED_RATES, "supported tx rates"),
3600 IPW2100_ORD(ATIM_WINDOW, "current ATIM Window"),
3601 IPW2100_ORD(BASIC_RATES, "basic tx rates"),
3602 IPW2100_ORD(NIC_HIGHEST_RATE, "NIC highest tx rate"),
3603 IPW2100_ORD(AP_HIGHEST_RATE, "AP highest tx rate"),
3604 IPW2100_ORD(CAPABILITIES,
3605 "Management frame capability field"),
3606 IPW2100_ORD(AUTH_TYPE, "Type of authentication"),
3607 IPW2100_ORD(RADIO_TYPE, "Adapter card platform type"),
3608 IPW2100_ORD(RTS_THRESHOLD,
3609 "Min packet length for RTS handshaking"),
3610 IPW2100_ORD(INT_MODE, "International mode"),
3611 IPW2100_ORD(FRAGMENTATION_THRESHOLD,
3612 "protocol frag threshold"),
3613 IPW2100_ORD(EEPROM_SRAM_DB_BLOCK_START_ADDRESS,
3614 "EEPROM offset in SRAM"),
3615 IPW2100_ORD(EEPROM_SRAM_DB_BLOCK_SIZE,
3616 "EEPROM size in SRAM"),
3617 IPW2100_ORD(EEPROM_SKU_CAPABILITY, "EEPROM SKU Capability"),
3618 IPW2100_ORD(EEPROM_IBSS_11B_CHANNELS,
3619 "EEPROM IBSS 11b channel set"),
3620 IPW2100_ORD(MAC_VERSION, "MAC Version"),
3621 IPW2100_ORD(MAC_REVISION, "MAC Revision"),
3622 IPW2100_ORD(RADIO_VERSION, "Radio Version"),
3623 IPW2100_ORD(NIC_MANF_DATE_TIME, "MANF Date/Time STAMP"),
3624 IPW2100_ORD(UCODE_VERSION, "Ucode Version"),};
3626 static ssize_t show_registers(struct device *d, struct device_attribute *attr,
3627 char *buf)
3629 int i;
3630 struct ipw2100_priv *priv = dev_get_drvdata(d);
3631 struct net_device *dev = priv->net_dev;
3632 char *out = buf;
3633 u32 val = 0;
3635 out += sprintf(out, "%30s [Address ] : Hex\n", "Register");
3637 for (i = 0; i < (sizeof(hw_data) / sizeof(*hw_data)); i++) {
3638 read_register(dev, hw_data[i].addr, &val);
3639 out += sprintf(out, "%30s [%08X] : %08X\n",
3640 hw_data[i].name, hw_data[i].addr, val);
3643 return out - buf;
3646 static DEVICE_ATTR(registers, S_IRUGO, show_registers, NULL);
3648 static ssize_t show_hardware(struct device *d, struct device_attribute *attr,
3649 char *buf)
3651 struct ipw2100_priv *priv = dev_get_drvdata(d);
3652 struct net_device *dev = priv->net_dev;
3653 char *out = buf;
3654 int i;
3656 out += sprintf(out, "%30s [Address ] : Hex\n", "NIC entry");
3658 for (i = 0; i < (sizeof(nic_data) / sizeof(*nic_data)); i++) {
3659 u8 tmp8;
3660 u16 tmp16;
3661 u32 tmp32;
3663 switch (nic_data[i].size) {
3664 case 1:
3665 read_nic_byte(dev, nic_data[i].addr, &tmp8);
3666 out += sprintf(out, "%30s [%08X] : %02X\n",
3667 nic_data[i].name, nic_data[i].addr,
3668 tmp8);
3669 break;
3670 case 2:
3671 read_nic_word(dev, nic_data[i].addr, &tmp16);
3672 out += sprintf(out, "%30s [%08X] : %04X\n",
3673 nic_data[i].name, nic_data[i].addr,
3674 tmp16);
3675 break;
3676 case 4:
3677 read_nic_dword(dev, nic_data[i].addr, &tmp32);
3678 out += sprintf(out, "%30s [%08X] : %08X\n",
3679 nic_data[i].name, nic_data[i].addr,
3680 tmp32);
3681 break;
3684 return out - buf;
3687 static DEVICE_ATTR(hardware, S_IRUGO, show_hardware, NULL);
3689 static ssize_t show_memory(struct device *d, struct device_attribute *attr,
3690 char *buf)
3692 struct ipw2100_priv *priv = dev_get_drvdata(d);
3693 struct net_device *dev = priv->net_dev;
3694 static unsigned long loop = 0;
3695 int len = 0;
3696 u32 buffer[4];
3697 int i;
3698 char line[81];
3700 if (loop >= 0x30000)
3701 loop = 0;
3703 /* sysfs provides us PAGE_SIZE buffer */
3704 while (len < PAGE_SIZE - 128 && loop < 0x30000) {
3706 if (priv->snapshot[0])
3707 for (i = 0; i < 4; i++)
3708 buffer[i] =
3709 *(u32 *) SNAPSHOT_ADDR(loop + i * 4);
3710 else
3711 for (i = 0; i < 4; i++)
3712 read_nic_dword(dev, loop + i * 4, &buffer[i]);
3714 if (priv->dump_raw)
3715 len += sprintf(buf + len,
3716 "%c%c%c%c"
3717 "%c%c%c%c"
3718 "%c%c%c%c"
3719 "%c%c%c%c",
3720 ((u8 *) buffer)[0x0],
3721 ((u8 *) buffer)[0x1],
3722 ((u8 *) buffer)[0x2],
3723 ((u8 *) buffer)[0x3],
3724 ((u8 *) buffer)[0x4],
3725 ((u8 *) buffer)[0x5],
3726 ((u8 *) buffer)[0x6],
3727 ((u8 *) buffer)[0x7],
3728 ((u8 *) buffer)[0x8],
3729 ((u8 *) buffer)[0x9],
3730 ((u8 *) buffer)[0xa],
3731 ((u8 *) buffer)[0xb],
3732 ((u8 *) buffer)[0xc],
3733 ((u8 *) buffer)[0xd],
3734 ((u8 *) buffer)[0xe],
3735 ((u8 *) buffer)[0xf]);
3736 else
3737 len += sprintf(buf + len, "%s\n",
3738 snprint_line(line, sizeof(line),
3739 (u8 *) buffer, 16, loop));
3740 loop += 16;
3743 return len;
3746 static ssize_t store_memory(struct device *d, struct device_attribute *attr,
3747 const char *buf, size_t count)
3749 struct ipw2100_priv *priv = dev_get_drvdata(d);
3750 struct net_device *dev = priv->net_dev;
3751 const char *p = buf;
3753 (void) dev; /* kill unused-var warning for debug-only code */
3755 if (count < 1)
3756 return count;
3758 if (p[0] == '1' ||
3759 (count >= 2 && tolower(p[0]) == 'o' && tolower(p[1]) == 'n')) {
3760 IPW_DEBUG_INFO("%s: Setting memory dump to RAW mode.\n",
3761 dev->name);
3762 priv->dump_raw = 1;
3764 } else if (p[0] == '0' || (count >= 2 && tolower(p[0]) == 'o' &&
3765 tolower(p[1]) == 'f')) {
3766 IPW_DEBUG_INFO("%s: Setting memory dump to HEX mode.\n",
3767 dev->name);
3768 priv->dump_raw = 0;
3770 } else if (tolower(p[0]) == 'r') {
3771 IPW_DEBUG_INFO("%s: Resetting firmware snapshot.\n", dev->name);
3772 ipw2100_snapshot_free(priv);
3774 } else
3775 IPW_DEBUG_INFO("%s: Usage: 0|on = HEX, 1|off = RAW, "
3776 "reset = clear memory snapshot\n", dev->name);
3778 return count;
3781 static DEVICE_ATTR(memory, S_IWUSR | S_IRUGO, show_memory, store_memory);
3783 static ssize_t show_ordinals(struct device *d, struct device_attribute *attr,
3784 char *buf)
3786 struct ipw2100_priv *priv = dev_get_drvdata(d);
3787 u32 val = 0;
3788 int len = 0;
3789 u32 val_len;
3790 static int loop = 0;
3792 if (priv->status & STATUS_RF_KILL_MASK)
3793 return 0;
3795 if (loop >= sizeof(ord_data) / sizeof(*ord_data))
3796 loop = 0;
3798 /* sysfs provides us PAGE_SIZE buffer */
3799 while (len < PAGE_SIZE - 128 &&
3800 loop < (sizeof(ord_data) / sizeof(*ord_data))) {
3802 val_len = sizeof(u32);
3804 if (ipw2100_get_ordinal(priv, ord_data[loop].index, &val,
3805 &val_len))
3806 len += sprintf(buf + len, "[0x%02X] = ERROR %s\n",
3807 ord_data[loop].index,
3808 ord_data[loop].desc);
3809 else
3810 len += sprintf(buf + len, "[0x%02X] = 0x%08X %s\n",
3811 ord_data[loop].index, val,
3812 ord_data[loop].desc);
3813 loop++;
3816 return len;
3819 static DEVICE_ATTR(ordinals, S_IRUGO, show_ordinals, NULL);
3821 static ssize_t show_stats(struct device *d, struct device_attribute *attr,
3822 char *buf)
3824 struct ipw2100_priv *priv = dev_get_drvdata(d);
3825 char *out = buf;
3827 out += sprintf(out, "interrupts: %d {tx: %d, rx: %d, other: %d}\n",
3828 priv->interrupts, priv->tx_interrupts,
3829 priv->rx_interrupts, priv->inta_other);
3830 out += sprintf(out, "firmware resets: %d\n", priv->resets);
3831 out += sprintf(out, "firmware hangs: %d\n", priv->hangs);
3832 #ifdef CONFIG_IPW2100_DEBUG
3833 out += sprintf(out, "packet mismatch image: %s\n",
3834 priv->snapshot[0] ? "YES" : "NO");
3835 #endif
3837 return out - buf;
3840 static DEVICE_ATTR(stats, S_IRUGO, show_stats, NULL);
3842 static int ipw2100_switch_mode(struct ipw2100_priv *priv, u32 mode)
3844 int err;
3846 if (mode == priv->ieee->iw_mode)
3847 return 0;
3849 err = ipw2100_disable_adapter(priv);
3850 if (err) {
3851 printk(KERN_ERR DRV_NAME ": %s: Could not disable adapter %d\n",
3852 priv->net_dev->name, err);
3853 return err;
3856 switch (mode) {
3857 case IW_MODE_INFRA:
3858 priv->net_dev->type = ARPHRD_ETHER;
3859 break;
3860 case IW_MODE_ADHOC:
3861 priv->net_dev->type = ARPHRD_ETHER;
3862 break;
3863 #ifdef CONFIG_IPW2100_MONITOR
3864 case IW_MODE_MONITOR:
3865 priv->last_mode = priv->ieee->iw_mode;
3866 priv->net_dev->type = ARPHRD_IEEE80211;
3867 break;
3868 #endif /* CONFIG_IPW2100_MONITOR */
3871 priv->ieee->iw_mode = mode;
3873 #ifdef CONFIG_PM
3874 /* Indicate ipw2100_download_firmware download firmware
3875 * from disk instead of memory. */
3876 ipw2100_firmware.version = 0;
3877 #endif
3879 printk(KERN_INFO "%s: Reseting on mode change.\n", priv->net_dev->name);
3880 priv->reset_backoff = 0;
3881 schedule_reset(priv);
3883 return 0;
3886 static ssize_t show_internals(struct device *d, struct device_attribute *attr,
3887 char *buf)
3889 struct ipw2100_priv *priv = dev_get_drvdata(d);
3890 int len = 0;
3892 #define DUMP_VAR(x,y) len += sprintf(buf + len, # x ": %" y "\n", priv-> x)
3894 if (priv->status & STATUS_ASSOCIATED)
3895 len += sprintf(buf + len, "connected: %lu\n",
3896 get_seconds() - priv->connect_start);
3897 else
3898 len += sprintf(buf + len, "not connected\n");
3900 DUMP_VAR(ieee->crypt[priv->ieee->tx_keyidx], "p");
3901 DUMP_VAR(status, "08lx");
3902 DUMP_VAR(config, "08lx");
3903 DUMP_VAR(capability, "08lx");
3905 len +=
3906 sprintf(buf + len, "last_rtc: %lu\n",
3907 (unsigned long)priv->last_rtc);
3909 DUMP_VAR(fatal_error, "d");
3910 DUMP_VAR(stop_hang_check, "d");
3911 DUMP_VAR(stop_rf_kill, "d");
3912 DUMP_VAR(messages_sent, "d");
3914 DUMP_VAR(tx_pend_stat.value, "d");
3915 DUMP_VAR(tx_pend_stat.hi, "d");
3917 DUMP_VAR(tx_free_stat.value, "d");
3918 DUMP_VAR(tx_free_stat.lo, "d");
3920 DUMP_VAR(msg_free_stat.value, "d");
3921 DUMP_VAR(msg_free_stat.lo, "d");
3923 DUMP_VAR(msg_pend_stat.value, "d");
3924 DUMP_VAR(msg_pend_stat.hi, "d");
3926 DUMP_VAR(fw_pend_stat.value, "d");
3927 DUMP_VAR(fw_pend_stat.hi, "d");
3929 DUMP_VAR(txq_stat.value, "d");
3930 DUMP_VAR(txq_stat.lo, "d");
3932 DUMP_VAR(ieee->scans, "d");
3933 DUMP_VAR(reset_backoff, "d");
3935 return len;
3938 static DEVICE_ATTR(internals, S_IRUGO, show_internals, NULL);
3940 static ssize_t show_bssinfo(struct device *d, struct device_attribute *attr,
3941 char *buf)
3943 struct ipw2100_priv *priv = dev_get_drvdata(d);
3944 char essid[IW_ESSID_MAX_SIZE + 1];
3945 u8 bssid[ETH_ALEN];
3946 u32 chan = 0;
3947 char *out = buf;
3948 int length;
3949 int ret;
3951 if (priv->status & STATUS_RF_KILL_MASK)
3952 return 0;
3954 memset(essid, 0, sizeof(essid));
3955 memset(bssid, 0, sizeof(bssid));
3957 length = IW_ESSID_MAX_SIZE;
3958 ret = ipw2100_get_ordinal(priv, IPW_ORD_STAT_ASSN_SSID, essid, &length);
3959 if (ret)
3960 IPW_DEBUG_INFO("failed querying ordinals at line %d\n",
3961 __LINE__);
3963 length = sizeof(bssid);
3964 ret = ipw2100_get_ordinal(priv, IPW_ORD_STAT_ASSN_AP_BSSID,
3965 bssid, &length);
3966 if (ret)
3967 IPW_DEBUG_INFO("failed querying ordinals at line %d\n",
3968 __LINE__);
3970 length = sizeof(u32);
3971 ret = ipw2100_get_ordinal(priv, IPW_ORD_OUR_FREQ, &chan, &length);
3972 if (ret)
3973 IPW_DEBUG_INFO("failed querying ordinals at line %d\n",
3974 __LINE__);
3976 out += sprintf(out, "ESSID: %s\n", essid);
3977 out += sprintf(out, "BSSID: %02x:%02x:%02x:%02x:%02x:%02x\n",
3978 bssid[0], bssid[1], bssid[2],
3979 bssid[3], bssid[4], bssid[5]);
3980 out += sprintf(out, "Channel: %d\n", chan);
3982 return out - buf;
3985 static DEVICE_ATTR(bssinfo, S_IRUGO, show_bssinfo, NULL);
3987 #ifdef CONFIG_IPW2100_DEBUG
3988 static ssize_t show_debug_level(struct device_driver *d, char *buf)
3990 return sprintf(buf, "0x%08X\n", ipw2100_debug_level);
3993 static ssize_t store_debug_level(struct device_driver *d,
3994 const char *buf, size_t count)
3996 char *p = (char *)buf;
3997 u32 val;
3999 if (p[1] == 'x' || p[1] == 'X' || p[0] == 'x' || p[0] == 'X') {
4000 p++;
4001 if (p[0] == 'x' || p[0] == 'X')
4002 p++;
4003 val = simple_strtoul(p, &p, 16);
4004 } else
4005 val = simple_strtoul(p, &p, 10);
4006 if (p == buf)
4007 IPW_DEBUG_INFO(": %s is not in hex or decimal form.\n", buf);
4008 else
4009 ipw2100_debug_level = val;
4011 return strnlen(buf, count);
4014 static DRIVER_ATTR(debug_level, S_IWUSR | S_IRUGO, show_debug_level,
4015 store_debug_level);
4016 #endif /* CONFIG_IPW2100_DEBUG */
4018 static ssize_t show_fatal_error(struct device *d,
4019 struct device_attribute *attr, char *buf)
4021 struct ipw2100_priv *priv = dev_get_drvdata(d);
4022 char *out = buf;
4023 int i;
4025 if (priv->fatal_error)
4026 out += sprintf(out, "0x%08X\n", priv->fatal_error);
4027 else
4028 out += sprintf(out, "0\n");
4030 for (i = 1; i <= IPW2100_ERROR_QUEUE; i++) {
4031 if (!priv->fatal_errors[(priv->fatal_index - i) %
4032 IPW2100_ERROR_QUEUE])
4033 continue;
4035 out += sprintf(out, "%d. 0x%08X\n", i,
4036 priv->fatal_errors[(priv->fatal_index - i) %
4037 IPW2100_ERROR_QUEUE]);
4040 return out - buf;
4043 static ssize_t store_fatal_error(struct device *d,
4044 struct device_attribute *attr, const char *buf,
4045 size_t count)
4047 struct ipw2100_priv *priv = dev_get_drvdata(d);
4048 schedule_reset(priv);
4049 return count;
4052 static DEVICE_ATTR(fatal_error, S_IWUSR | S_IRUGO, show_fatal_error,
4053 store_fatal_error);
4055 static ssize_t show_scan_age(struct device *d, struct device_attribute *attr,
4056 char *buf)
4058 struct ipw2100_priv *priv = dev_get_drvdata(d);
4059 return sprintf(buf, "%d\n", priv->ieee->scan_age);
4062 static ssize_t store_scan_age(struct device *d, struct device_attribute *attr,
4063 const char *buf, size_t count)
4065 struct ipw2100_priv *priv = dev_get_drvdata(d);
4066 struct net_device *dev = priv->net_dev;
4067 char buffer[] = "00000000";
4068 unsigned long len =
4069 (sizeof(buffer) - 1) > count ? count : sizeof(buffer) - 1;
4070 unsigned long val;
4071 char *p = buffer;
4073 (void) dev; /* kill unused-var warning for debug-only code */
4075 IPW_DEBUG_INFO("enter\n");
4077 strncpy(buffer, buf, len);
4078 buffer[len] = 0;
4080 if (p[1] == 'x' || p[1] == 'X' || p[0] == 'x' || p[0] == 'X') {
4081 p++;
4082 if (p[0] == 'x' || p[0] == 'X')
4083 p++;
4084 val = simple_strtoul(p, &p, 16);
4085 } else
4086 val = simple_strtoul(p, &p, 10);
4087 if (p == buffer) {
4088 IPW_DEBUG_INFO("%s: user supplied invalid value.\n", dev->name);
4089 } else {
4090 priv->ieee->scan_age = val;
4091 IPW_DEBUG_INFO("set scan_age = %u\n", priv->ieee->scan_age);
4094 IPW_DEBUG_INFO("exit\n");
4095 return len;
4098 static DEVICE_ATTR(scan_age, S_IWUSR | S_IRUGO, show_scan_age, store_scan_age);
4100 static ssize_t show_rf_kill(struct device *d, struct device_attribute *attr,
4101 char *buf)
4103 /* 0 - RF kill not enabled
4104 1 - SW based RF kill active (sysfs)
4105 2 - HW based RF kill active
4106 3 - Both HW and SW baed RF kill active */
4107 struct ipw2100_priv *priv = (struct ipw2100_priv *)d->driver_data;
4108 int val = ((priv->status & STATUS_RF_KILL_SW) ? 0x1 : 0x0) |
4109 (rf_kill_active(priv) ? 0x2 : 0x0);
4110 return sprintf(buf, "%i\n", val);
4113 static int ipw_radio_kill_sw(struct ipw2100_priv *priv, int disable_radio)
4115 if ((disable_radio ? 1 : 0) ==
4116 (priv->status & STATUS_RF_KILL_SW ? 1 : 0))
4117 return 0;
4119 IPW_DEBUG_RF_KILL("Manual SW RF Kill set to: RADIO %s\n",
4120 disable_radio ? "OFF" : "ON");
4122 down(&priv->action_sem);
4124 if (disable_radio) {
4125 priv->status |= STATUS_RF_KILL_SW;
4126 ipw2100_down(priv);
4127 } else {
4128 priv->status &= ~STATUS_RF_KILL_SW;
4129 if (rf_kill_active(priv)) {
4130 IPW_DEBUG_RF_KILL("Can not turn radio back on - "
4131 "disabled by HW switch\n");
4132 /* Make sure the RF_KILL check timer is running */
4133 priv->stop_rf_kill = 0;
4134 cancel_delayed_work(&priv->rf_kill);
4135 queue_delayed_work(priv->workqueue, &priv->rf_kill, HZ);
4136 } else
4137 schedule_reset(priv);
4140 up(&priv->action_sem);
4141 return 1;
4144 static ssize_t store_rf_kill(struct device *d, struct device_attribute *attr,
4145 const char *buf, size_t count)
4147 struct ipw2100_priv *priv = dev_get_drvdata(d);
4148 ipw_radio_kill_sw(priv, buf[0] == '1');
4149 return count;
4152 static DEVICE_ATTR(rf_kill, S_IWUSR | S_IRUGO, show_rf_kill, store_rf_kill);
4154 static struct attribute *ipw2100_sysfs_entries[] = {
4155 &dev_attr_hardware.attr,
4156 &dev_attr_registers.attr,
4157 &dev_attr_ordinals.attr,
4158 &dev_attr_pci.attr,
4159 &dev_attr_stats.attr,
4160 &dev_attr_internals.attr,
4161 &dev_attr_bssinfo.attr,
4162 &dev_attr_memory.attr,
4163 &dev_attr_scan_age.attr,
4164 &dev_attr_fatal_error.attr,
4165 &dev_attr_rf_kill.attr,
4166 &dev_attr_cfg.attr,
4167 &dev_attr_status.attr,
4168 &dev_attr_capability.attr,
4169 NULL,
4172 static struct attribute_group ipw2100_attribute_group = {
4173 .attrs = ipw2100_sysfs_entries,
4176 static int status_queue_allocate(struct ipw2100_priv *priv, int entries)
4178 struct ipw2100_status_queue *q = &priv->status_queue;
4180 IPW_DEBUG_INFO("enter\n");
4182 q->size = entries * sizeof(struct ipw2100_status);
4183 q->drv =
4184 (struct ipw2100_status *)pci_alloc_consistent(priv->pci_dev,
4185 q->size, &q->nic);
4186 if (!q->drv) {
4187 IPW_DEBUG_WARNING("Can not allocate status queue.\n");
4188 return -ENOMEM;
4191 memset(q->drv, 0, q->size);
4193 IPW_DEBUG_INFO("exit\n");
4195 return 0;
4198 static void status_queue_free(struct ipw2100_priv *priv)
4200 IPW_DEBUG_INFO("enter\n");
4202 if (priv->status_queue.drv) {
4203 pci_free_consistent(priv->pci_dev, priv->status_queue.size,
4204 priv->status_queue.drv,
4205 priv->status_queue.nic);
4206 priv->status_queue.drv = NULL;
4209 IPW_DEBUG_INFO("exit\n");
4212 static int bd_queue_allocate(struct ipw2100_priv *priv,
4213 struct ipw2100_bd_queue *q, int entries)
4215 IPW_DEBUG_INFO("enter\n");
4217 memset(q, 0, sizeof(struct ipw2100_bd_queue));
4219 q->entries = entries;
4220 q->size = entries * sizeof(struct ipw2100_bd);
4221 q->drv = pci_alloc_consistent(priv->pci_dev, q->size, &q->nic);
4222 if (!q->drv) {
4223 IPW_DEBUG_INFO
4224 ("can't allocate shared memory for buffer descriptors\n");
4225 return -ENOMEM;
4227 memset(q->drv, 0, q->size);
4229 IPW_DEBUG_INFO("exit\n");
4231 return 0;
4234 static void bd_queue_free(struct ipw2100_priv *priv, struct ipw2100_bd_queue *q)
4236 IPW_DEBUG_INFO("enter\n");
4238 if (!q)
4239 return;
4241 if (q->drv) {
4242 pci_free_consistent(priv->pci_dev, q->size, q->drv, q->nic);
4243 q->drv = NULL;
4246 IPW_DEBUG_INFO("exit\n");
4249 static void bd_queue_initialize(struct ipw2100_priv *priv,
4250 struct ipw2100_bd_queue *q, u32 base, u32 size,
4251 u32 r, u32 w)
4253 IPW_DEBUG_INFO("enter\n");
4255 IPW_DEBUG_INFO("initializing bd queue at virt=%p, phys=%08x\n", q->drv,
4256 (u32) q->nic);
4258 write_register(priv->net_dev, base, q->nic);
4259 write_register(priv->net_dev, size, q->entries);
4260 write_register(priv->net_dev, r, q->oldest);
4261 write_register(priv->net_dev, w, q->next);
4263 IPW_DEBUG_INFO("exit\n");
4266 static void ipw2100_kill_workqueue(struct ipw2100_priv *priv)
4268 if (priv->workqueue) {
4269 priv->stop_rf_kill = 1;
4270 priv->stop_hang_check = 1;
4271 cancel_delayed_work(&priv->reset_work);
4272 cancel_delayed_work(&priv->security_work);
4273 cancel_delayed_work(&priv->wx_event_work);
4274 cancel_delayed_work(&priv->hang_check);
4275 cancel_delayed_work(&priv->rf_kill);
4276 destroy_workqueue(priv->workqueue);
4277 priv->workqueue = NULL;
4281 static int ipw2100_tx_allocate(struct ipw2100_priv *priv)
4283 int i, j, err = -EINVAL;
4284 void *v;
4285 dma_addr_t p;
4287 IPW_DEBUG_INFO("enter\n");
4289 err = bd_queue_allocate(priv, &priv->tx_queue, TX_QUEUE_LENGTH);
4290 if (err) {
4291 IPW_DEBUG_ERROR("%s: failed bd_queue_allocate\n",
4292 priv->net_dev->name);
4293 return err;
4296 priv->tx_buffers =
4297 (struct ipw2100_tx_packet *)kmalloc(TX_PENDED_QUEUE_LENGTH *
4298 sizeof(struct
4299 ipw2100_tx_packet),
4300 GFP_ATOMIC);
4301 if (!priv->tx_buffers) {
4302 printk(KERN_ERR DRV_NAME
4303 ": %s: alloc failed form tx buffers.\n",
4304 priv->net_dev->name);
4305 bd_queue_free(priv, &priv->tx_queue);
4306 return -ENOMEM;
4309 for (i = 0; i < TX_PENDED_QUEUE_LENGTH; i++) {
4310 v = pci_alloc_consistent(priv->pci_dev,
4311 sizeof(struct ipw2100_data_header),
4312 &p);
4313 if (!v) {
4314 printk(KERN_ERR DRV_NAME
4315 ": %s: PCI alloc failed for tx " "buffers.\n",
4316 priv->net_dev->name);
4317 err = -ENOMEM;
4318 break;
4321 priv->tx_buffers[i].type = DATA;
4322 priv->tx_buffers[i].info.d_struct.data =
4323 (struct ipw2100_data_header *)v;
4324 priv->tx_buffers[i].info.d_struct.data_phys = p;
4325 priv->tx_buffers[i].info.d_struct.txb = NULL;
4328 if (i == TX_PENDED_QUEUE_LENGTH)
4329 return 0;
4331 for (j = 0; j < i; j++) {
4332 pci_free_consistent(priv->pci_dev,
4333 sizeof(struct ipw2100_data_header),
4334 priv->tx_buffers[j].info.d_struct.data,
4335 priv->tx_buffers[j].info.d_struct.
4336 data_phys);
4339 kfree(priv->tx_buffers);
4340 priv->tx_buffers = NULL;
4342 return err;
4345 static void ipw2100_tx_initialize(struct ipw2100_priv *priv)
4347 int i;
4349 IPW_DEBUG_INFO("enter\n");
4352 * reinitialize packet info lists
4354 INIT_LIST_HEAD(&priv->fw_pend_list);
4355 INIT_STAT(&priv->fw_pend_stat);
4358 * reinitialize lists
4360 INIT_LIST_HEAD(&priv->tx_pend_list);
4361 INIT_LIST_HEAD(&priv->tx_free_list);
4362 INIT_STAT(&priv->tx_pend_stat);
4363 INIT_STAT(&priv->tx_free_stat);
4365 for (i = 0; i < TX_PENDED_QUEUE_LENGTH; i++) {
4366 /* We simply drop any SKBs that have been queued for
4367 * transmit */
4368 if (priv->tx_buffers[i].info.d_struct.txb) {
4369 ieee80211_txb_free(priv->tx_buffers[i].info.d_struct.
4370 txb);
4371 priv->tx_buffers[i].info.d_struct.txb = NULL;
4374 list_add_tail(&priv->tx_buffers[i].list, &priv->tx_free_list);
4377 SET_STAT(&priv->tx_free_stat, i);
4379 priv->tx_queue.oldest = 0;
4380 priv->tx_queue.available = priv->tx_queue.entries;
4381 priv->tx_queue.next = 0;
4382 INIT_STAT(&priv->txq_stat);
4383 SET_STAT(&priv->txq_stat, priv->tx_queue.available);
4385 bd_queue_initialize(priv, &priv->tx_queue,
4386 IPW_MEM_HOST_SHARED_TX_QUEUE_BD_BASE,
4387 IPW_MEM_HOST_SHARED_TX_QUEUE_BD_SIZE,
4388 IPW_MEM_HOST_SHARED_TX_QUEUE_READ_INDEX,
4389 IPW_MEM_HOST_SHARED_TX_QUEUE_WRITE_INDEX);
4391 IPW_DEBUG_INFO("exit\n");
4395 static void ipw2100_tx_free(struct ipw2100_priv *priv)
4397 int i;
4399 IPW_DEBUG_INFO("enter\n");
4401 bd_queue_free(priv, &priv->tx_queue);
4403 if (!priv->tx_buffers)
4404 return;
4406 for (i = 0; i < TX_PENDED_QUEUE_LENGTH; i++) {
4407 if (priv->tx_buffers[i].info.d_struct.txb) {
4408 ieee80211_txb_free(priv->tx_buffers[i].info.d_struct.
4409 txb);
4410 priv->tx_buffers[i].info.d_struct.txb = NULL;
4412 if (priv->tx_buffers[i].info.d_struct.data)
4413 pci_free_consistent(priv->pci_dev,
4414 sizeof(struct ipw2100_data_header),
4415 priv->tx_buffers[i].info.d_struct.
4416 data,
4417 priv->tx_buffers[i].info.d_struct.
4418 data_phys);
4421 kfree(priv->tx_buffers);
4422 priv->tx_buffers = NULL;
4424 IPW_DEBUG_INFO("exit\n");
4427 static int ipw2100_rx_allocate(struct ipw2100_priv *priv)
4429 int i, j, err = -EINVAL;
4431 IPW_DEBUG_INFO("enter\n");
4433 err = bd_queue_allocate(priv, &priv->rx_queue, RX_QUEUE_LENGTH);
4434 if (err) {
4435 IPW_DEBUG_INFO("failed bd_queue_allocate\n");
4436 return err;
4439 err = status_queue_allocate(priv, RX_QUEUE_LENGTH);
4440 if (err) {
4441 IPW_DEBUG_INFO("failed status_queue_allocate\n");
4442 bd_queue_free(priv, &priv->rx_queue);
4443 return err;
4447 * allocate packets
4449 priv->rx_buffers = (struct ipw2100_rx_packet *)
4450 kmalloc(RX_QUEUE_LENGTH * sizeof(struct ipw2100_rx_packet),
4451 GFP_KERNEL);
4452 if (!priv->rx_buffers) {
4453 IPW_DEBUG_INFO("can't allocate rx packet buffer table\n");
4455 bd_queue_free(priv, &priv->rx_queue);
4457 status_queue_free(priv);
4459 return -ENOMEM;
4462 for (i = 0; i < RX_QUEUE_LENGTH; i++) {
4463 struct ipw2100_rx_packet *packet = &priv->rx_buffers[i];
4465 err = ipw2100_alloc_skb(priv, packet);
4466 if (unlikely(err)) {
4467 err = -ENOMEM;
4468 break;
4471 /* The BD holds the cache aligned address */
4472 priv->rx_queue.drv[i].host_addr = packet->dma_addr;
4473 priv->rx_queue.drv[i].buf_length = IPW_RX_NIC_BUFFER_LENGTH;
4474 priv->status_queue.drv[i].status_fields = 0;
4477 if (i == RX_QUEUE_LENGTH)
4478 return 0;
4480 for (j = 0; j < i; j++) {
4481 pci_unmap_single(priv->pci_dev, priv->rx_buffers[j].dma_addr,
4482 sizeof(struct ipw2100_rx_packet),
4483 PCI_DMA_FROMDEVICE);
4484 dev_kfree_skb(priv->rx_buffers[j].skb);
4487 kfree(priv->rx_buffers);
4488 priv->rx_buffers = NULL;
4490 bd_queue_free(priv, &priv->rx_queue);
4492 status_queue_free(priv);
4494 return err;
4497 static void ipw2100_rx_initialize(struct ipw2100_priv *priv)
4499 IPW_DEBUG_INFO("enter\n");
4501 priv->rx_queue.oldest = 0;
4502 priv->rx_queue.available = priv->rx_queue.entries - 1;
4503 priv->rx_queue.next = priv->rx_queue.entries - 1;
4505 INIT_STAT(&priv->rxq_stat);
4506 SET_STAT(&priv->rxq_stat, priv->rx_queue.available);
4508 bd_queue_initialize(priv, &priv->rx_queue,
4509 IPW_MEM_HOST_SHARED_RX_BD_BASE,
4510 IPW_MEM_HOST_SHARED_RX_BD_SIZE,
4511 IPW_MEM_HOST_SHARED_RX_READ_INDEX,
4512 IPW_MEM_HOST_SHARED_RX_WRITE_INDEX);
4514 /* set up the status queue */
4515 write_register(priv->net_dev, IPW_MEM_HOST_SHARED_RX_STATUS_BASE,
4516 priv->status_queue.nic);
4518 IPW_DEBUG_INFO("exit\n");
4521 static void ipw2100_rx_free(struct ipw2100_priv *priv)
4523 int i;
4525 IPW_DEBUG_INFO("enter\n");
4527 bd_queue_free(priv, &priv->rx_queue);
4528 status_queue_free(priv);
4530 if (!priv->rx_buffers)
4531 return;
4533 for (i = 0; i < RX_QUEUE_LENGTH; i++) {
4534 if (priv->rx_buffers[i].rxp) {
4535 pci_unmap_single(priv->pci_dev,
4536 priv->rx_buffers[i].dma_addr,
4537 sizeof(struct ipw2100_rx),
4538 PCI_DMA_FROMDEVICE);
4539 dev_kfree_skb(priv->rx_buffers[i].skb);
4543 kfree(priv->rx_buffers);
4544 priv->rx_buffers = NULL;
4546 IPW_DEBUG_INFO("exit\n");
4549 static int ipw2100_read_mac_address(struct ipw2100_priv *priv)
4551 u32 length = ETH_ALEN;
4552 u8 mac[ETH_ALEN];
4554 int err;
4556 err = ipw2100_get_ordinal(priv, IPW_ORD_STAT_ADAPTER_MAC, mac, &length);
4557 if (err) {
4558 IPW_DEBUG_INFO("MAC address read failed\n");
4559 return -EIO;
4561 IPW_DEBUG_INFO("card MAC is %02X:%02X:%02X:%02X:%02X:%02X\n",
4562 mac[0], mac[1], mac[2], mac[3], mac[4], mac[5]);
4564 memcpy(priv->net_dev->dev_addr, mac, ETH_ALEN);
4566 return 0;
4569 /********************************************************************
4571 * Firmware Commands
4573 ********************************************************************/
4575 static int ipw2100_set_mac_address(struct ipw2100_priv *priv, int batch_mode)
4577 struct host_command cmd = {
4578 .host_command = ADAPTER_ADDRESS,
4579 .host_command_sequence = 0,
4580 .host_command_length = ETH_ALEN
4582 int err;
4584 IPW_DEBUG_HC("SET_MAC_ADDRESS\n");
4586 IPW_DEBUG_INFO("enter\n");
4588 if (priv->config & CFG_CUSTOM_MAC) {
4589 memcpy(cmd.host_command_parameters, priv->mac_addr, ETH_ALEN);
4590 memcpy(priv->net_dev->dev_addr, priv->mac_addr, ETH_ALEN);
4591 } else
4592 memcpy(cmd.host_command_parameters, priv->net_dev->dev_addr,
4593 ETH_ALEN);
4595 err = ipw2100_hw_send_command(priv, &cmd);
4597 IPW_DEBUG_INFO("exit\n");
4598 return err;
4601 static int ipw2100_set_port_type(struct ipw2100_priv *priv, u32 port_type,
4602 int batch_mode)
4604 struct host_command cmd = {
4605 .host_command = PORT_TYPE,
4606 .host_command_sequence = 0,
4607 .host_command_length = sizeof(u32)
4609 int err;
4611 switch (port_type) {
4612 case IW_MODE_INFRA:
4613 cmd.host_command_parameters[0] = IPW_BSS;
4614 break;
4615 case IW_MODE_ADHOC:
4616 cmd.host_command_parameters[0] = IPW_IBSS;
4617 break;
4620 IPW_DEBUG_HC("PORT_TYPE: %s\n",
4621 port_type == IPW_IBSS ? "Ad-Hoc" : "Managed");
4623 if (!batch_mode) {
4624 err = ipw2100_disable_adapter(priv);
4625 if (err) {
4626 printk(KERN_ERR DRV_NAME
4627 ": %s: Could not disable adapter %d\n",
4628 priv->net_dev->name, err);
4629 return err;
4633 /* send cmd to firmware */
4634 err = ipw2100_hw_send_command(priv, &cmd);
4636 if (!batch_mode)
4637 ipw2100_enable_adapter(priv);
4639 return err;
4642 static int ipw2100_set_channel(struct ipw2100_priv *priv, u32 channel,
4643 int batch_mode)
4645 struct host_command cmd = {
4646 .host_command = CHANNEL,
4647 .host_command_sequence = 0,
4648 .host_command_length = sizeof(u32)
4650 int err;
4652 cmd.host_command_parameters[0] = channel;
4654 IPW_DEBUG_HC("CHANNEL: %d\n", channel);
4656 /* If BSS then we don't support channel selection */
4657 if (priv->ieee->iw_mode == IW_MODE_INFRA)
4658 return 0;
4660 if ((channel != 0) &&
4661 ((channel < REG_MIN_CHANNEL) || (channel > REG_MAX_CHANNEL)))
4662 return -EINVAL;
4664 if (!batch_mode) {
4665 err = ipw2100_disable_adapter(priv);
4666 if (err)
4667 return err;
4670 err = ipw2100_hw_send_command(priv, &cmd);
4671 if (err) {
4672 IPW_DEBUG_INFO("Failed to set channel to %d", channel);
4673 return err;
4676 if (channel)
4677 priv->config |= CFG_STATIC_CHANNEL;
4678 else
4679 priv->config &= ~CFG_STATIC_CHANNEL;
4681 priv->channel = channel;
4683 if (!batch_mode) {
4684 err = ipw2100_enable_adapter(priv);
4685 if (err)
4686 return err;
4689 return 0;
4692 static int ipw2100_system_config(struct ipw2100_priv *priv, int batch_mode)
4694 struct host_command cmd = {
4695 .host_command = SYSTEM_CONFIG,
4696 .host_command_sequence = 0,
4697 .host_command_length = 12,
4699 u32 ibss_mask, len = sizeof(u32);
4700 int err;
4702 /* Set system configuration */
4704 if (!batch_mode) {
4705 err = ipw2100_disable_adapter(priv);
4706 if (err)
4707 return err;
4710 if (priv->ieee->iw_mode == IW_MODE_ADHOC)
4711 cmd.host_command_parameters[0] |= IPW_CFG_IBSS_AUTO_START;
4713 cmd.host_command_parameters[0] |= IPW_CFG_IBSS_MASK |
4714 IPW_CFG_BSS_MASK | IPW_CFG_802_1x_ENABLE;
4716 if (!(priv->config & CFG_LONG_PREAMBLE))
4717 cmd.host_command_parameters[0] |= IPW_CFG_PREAMBLE_AUTO;
4719 err = ipw2100_get_ordinal(priv,
4720 IPW_ORD_EEPROM_IBSS_11B_CHANNELS,
4721 &ibss_mask, &len);
4722 if (err)
4723 ibss_mask = IPW_IBSS_11B_DEFAULT_MASK;
4725 cmd.host_command_parameters[1] = REG_CHANNEL_MASK;
4726 cmd.host_command_parameters[2] = REG_CHANNEL_MASK & ibss_mask;
4728 /* 11b only */
4729 /*cmd.host_command_parameters[0] |= DIVERSITY_ANTENNA_A; */
4731 err = ipw2100_hw_send_command(priv, &cmd);
4732 if (err)
4733 return err;
4735 /* If IPv6 is configured in the kernel then we don't want to filter out all
4736 * of the multicast packets as IPv6 needs some. */
4737 #if !defined(CONFIG_IPV6) && !defined(CONFIG_IPV6_MODULE)
4738 cmd.host_command = ADD_MULTICAST;
4739 cmd.host_command_sequence = 0;
4740 cmd.host_command_length = 0;
4742 ipw2100_hw_send_command(priv, &cmd);
4743 #endif
4744 if (!batch_mode) {
4745 err = ipw2100_enable_adapter(priv);
4746 if (err)
4747 return err;
4750 return 0;
4753 static int ipw2100_set_tx_rates(struct ipw2100_priv *priv, u32 rate,
4754 int batch_mode)
4756 struct host_command cmd = {
4757 .host_command = BASIC_TX_RATES,
4758 .host_command_sequence = 0,
4759 .host_command_length = 4
4761 int err;
4763 cmd.host_command_parameters[0] = rate & TX_RATE_MASK;
4765 if (!batch_mode) {
4766 err = ipw2100_disable_adapter(priv);
4767 if (err)
4768 return err;
4771 /* Set BASIC TX Rate first */
4772 ipw2100_hw_send_command(priv, &cmd);
4774 /* Set TX Rate */
4775 cmd.host_command = TX_RATES;
4776 ipw2100_hw_send_command(priv, &cmd);
4778 /* Set MSDU TX Rate */
4779 cmd.host_command = MSDU_TX_RATES;
4780 ipw2100_hw_send_command(priv, &cmd);
4782 if (!batch_mode) {
4783 err = ipw2100_enable_adapter(priv);
4784 if (err)
4785 return err;
4788 priv->tx_rates = rate;
4790 return 0;
4793 static int ipw2100_set_power_mode(struct ipw2100_priv *priv, int power_level)
4795 struct host_command cmd = {
4796 .host_command = POWER_MODE,
4797 .host_command_sequence = 0,
4798 .host_command_length = 4
4800 int err;
4802 cmd.host_command_parameters[0] = power_level;
4804 err = ipw2100_hw_send_command(priv, &cmd);
4805 if (err)
4806 return err;
4808 if (power_level == IPW_POWER_MODE_CAM)
4809 priv->power_mode = IPW_POWER_LEVEL(priv->power_mode);
4810 else
4811 priv->power_mode = IPW_POWER_ENABLED | power_level;
4813 #ifdef CONFIG_IPW2100_TX_POWER
4814 if (priv->port_type == IBSS && priv->adhoc_power != DFTL_IBSS_TX_POWER) {
4815 /* Set beacon interval */
4816 cmd.host_command = TX_POWER_INDEX;
4817 cmd.host_command_parameters[0] = (u32) priv->adhoc_power;
4819 err = ipw2100_hw_send_command(priv, &cmd);
4820 if (err)
4821 return err;
4823 #endif
4825 return 0;
4828 static int ipw2100_set_rts_threshold(struct ipw2100_priv *priv, u32 threshold)
4830 struct host_command cmd = {
4831 .host_command = RTS_THRESHOLD,
4832 .host_command_sequence = 0,
4833 .host_command_length = 4
4835 int err;
4837 if (threshold & RTS_DISABLED)
4838 cmd.host_command_parameters[0] = MAX_RTS_THRESHOLD;
4839 else
4840 cmd.host_command_parameters[0] = threshold & ~RTS_DISABLED;
4842 err = ipw2100_hw_send_command(priv, &cmd);
4843 if (err)
4844 return err;
4846 priv->rts_threshold = threshold;
4848 return 0;
4851 #if 0
4852 int ipw2100_set_fragmentation_threshold(struct ipw2100_priv *priv,
4853 u32 threshold, int batch_mode)
4855 struct host_command cmd = {
4856 .host_command = FRAG_THRESHOLD,
4857 .host_command_sequence = 0,
4858 .host_command_length = 4,
4859 .host_command_parameters[0] = 0,
4861 int err;
4863 if (!batch_mode) {
4864 err = ipw2100_disable_adapter(priv);
4865 if (err)
4866 return err;
4869 if (threshold == 0)
4870 threshold = DEFAULT_FRAG_THRESHOLD;
4871 else {
4872 threshold = max(threshold, MIN_FRAG_THRESHOLD);
4873 threshold = min(threshold, MAX_FRAG_THRESHOLD);
4876 cmd.host_command_parameters[0] = threshold;
4878 IPW_DEBUG_HC("FRAG_THRESHOLD: %u\n", threshold);
4880 err = ipw2100_hw_send_command(priv, &cmd);
4882 if (!batch_mode)
4883 ipw2100_enable_adapter(priv);
4885 if (!err)
4886 priv->frag_threshold = threshold;
4888 return err;
4890 #endif
4892 static int ipw2100_set_short_retry(struct ipw2100_priv *priv, u32 retry)
4894 struct host_command cmd = {
4895 .host_command = SHORT_RETRY_LIMIT,
4896 .host_command_sequence = 0,
4897 .host_command_length = 4
4899 int err;
4901 cmd.host_command_parameters[0] = retry;
4903 err = ipw2100_hw_send_command(priv, &cmd);
4904 if (err)
4905 return err;
4907 priv->short_retry_limit = retry;
4909 return 0;
4912 static int ipw2100_set_long_retry(struct ipw2100_priv *priv, u32 retry)
4914 struct host_command cmd = {
4915 .host_command = LONG_RETRY_LIMIT,
4916 .host_command_sequence = 0,
4917 .host_command_length = 4
4919 int err;
4921 cmd.host_command_parameters[0] = retry;
4923 err = ipw2100_hw_send_command(priv, &cmd);
4924 if (err)
4925 return err;
4927 priv->long_retry_limit = retry;
4929 return 0;
4932 static int ipw2100_set_mandatory_bssid(struct ipw2100_priv *priv, u8 * bssid,
4933 int batch_mode)
4935 struct host_command cmd = {
4936 .host_command = MANDATORY_BSSID,
4937 .host_command_sequence = 0,
4938 .host_command_length = (bssid == NULL) ? 0 : ETH_ALEN
4940 int err;
4942 #ifdef CONFIG_IPW2100_DEBUG
4943 if (bssid != NULL)
4944 IPW_DEBUG_HC("MANDATORY_BSSID: %02X:%02X:%02X:%02X:%02X:%02X\n",
4945 bssid[0], bssid[1], bssid[2], bssid[3], bssid[4],
4946 bssid[5]);
4947 else
4948 IPW_DEBUG_HC("MANDATORY_BSSID: <clear>\n");
4949 #endif
4950 /* if BSSID is empty then we disable mandatory bssid mode */
4951 if (bssid != NULL)
4952 memcpy(cmd.host_command_parameters, bssid, ETH_ALEN);
4954 if (!batch_mode) {
4955 err = ipw2100_disable_adapter(priv);
4956 if (err)
4957 return err;
4960 err = ipw2100_hw_send_command(priv, &cmd);
4962 if (!batch_mode)
4963 ipw2100_enable_adapter(priv);
4965 return err;
4968 static int ipw2100_disassociate_bssid(struct ipw2100_priv *priv)
4970 struct host_command cmd = {
4971 .host_command = DISASSOCIATION_BSSID,
4972 .host_command_sequence = 0,
4973 .host_command_length = ETH_ALEN
4975 int err;
4976 int len;
4978 IPW_DEBUG_HC("DISASSOCIATION_BSSID\n");
4980 len = ETH_ALEN;
4981 /* The Firmware currently ignores the BSSID and just disassociates from
4982 * the currently associated AP -- but in the off chance that a future
4983 * firmware does use the BSSID provided here, we go ahead and try and
4984 * set it to the currently associated AP's BSSID */
4985 memcpy(cmd.host_command_parameters, priv->bssid, ETH_ALEN);
4987 err = ipw2100_hw_send_command(priv, &cmd);
4989 return err;
4992 static int ipw2100_set_wpa_ie(struct ipw2100_priv *,
4993 struct ipw2100_wpa_assoc_frame *, int)
4994 __attribute__ ((unused));
4996 static int ipw2100_set_wpa_ie(struct ipw2100_priv *priv,
4997 struct ipw2100_wpa_assoc_frame *wpa_frame,
4998 int batch_mode)
5000 struct host_command cmd = {
5001 .host_command = SET_WPA_IE,
5002 .host_command_sequence = 0,
5003 .host_command_length = sizeof(struct ipw2100_wpa_assoc_frame),
5005 int err;
5007 IPW_DEBUG_HC("SET_WPA_IE\n");
5009 if (!batch_mode) {
5010 err = ipw2100_disable_adapter(priv);
5011 if (err)
5012 return err;
5015 memcpy(cmd.host_command_parameters, wpa_frame,
5016 sizeof(struct ipw2100_wpa_assoc_frame));
5018 err = ipw2100_hw_send_command(priv, &cmd);
5020 if (!batch_mode) {
5021 if (ipw2100_enable_adapter(priv))
5022 err = -EIO;
5025 return err;
5028 struct security_info_params {
5029 u32 allowed_ciphers;
5030 u16 version;
5031 u8 auth_mode;
5032 u8 replay_counters_number;
5033 u8 unicast_using_group;
5034 } __attribute__ ((packed));
5036 static int ipw2100_set_security_information(struct ipw2100_priv *priv,
5037 int auth_mode,
5038 int security_level,
5039 int unicast_using_group,
5040 int batch_mode)
5042 struct host_command cmd = {
5043 .host_command = SET_SECURITY_INFORMATION,
5044 .host_command_sequence = 0,
5045 .host_command_length = sizeof(struct security_info_params)
5047 struct security_info_params *security =
5048 (struct security_info_params *)&cmd.host_command_parameters;
5049 int err;
5050 memset(security, 0, sizeof(*security));
5052 /* If shared key AP authentication is turned on, then we need to
5053 * configure the firmware to try and use it.
5055 * Actual data encryption/decryption is handled by the host. */
5056 security->auth_mode = auth_mode;
5057 security->unicast_using_group = unicast_using_group;
5059 switch (security_level) {
5060 default:
5061 case SEC_LEVEL_0:
5062 security->allowed_ciphers = IPW_NONE_CIPHER;
5063 break;
5064 case SEC_LEVEL_1:
5065 security->allowed_ciphers = IPW_WEP40_CIPHER |
5066 IPW_WEP104_CIPHER;
5067 break;
5068 case SEC_LEVEL_2:
5069 security->allowed_ciphers = IPW_WEP40_CIPHER |
5070 IPW_WEP104_CIPHER | IPW_TKIP_CIPHER;
5071 break;
5072 case SEC_LEVEL_2_CKIP:
5073 security->allowed_ciphers = IPW_WEP40_CIPHER |
5074 IPW_WEP104_CIPHER | IPW_CKIP_CIPHER;
5075 break;
5076 case SEC_LEVEL_3:
5077 security->allowed_ciphers = IPW_WEP40_CIPHER |
5078 IPW_WEP104_CIPHER | IPW_TKIP_CIPHER | IPW_CCMP_CIPHER;
5079 break;
5082 IPW_DEBUG_HC
5083 ("SET_SECURITY_INFORMATION: auth:%d cipher:0x%02X (level %d)\n",
5084 security->auth_mode, security->allowed_ciphers, security_level);
5086 security->replay_counters_number = 0;
5088 if (!batch_mode) {
5089 err = ipw2100_disable_adapter(priv);
5090 if (err)
5091 return err;
5094 err = ipw2100_hw_send_command(priv, &cmd);
5096 if (!batch_mode)
5097 ipw2100_enable_adapter(priv);
5099 return err;
5102 static int ipw2100_set_tx_power(struct ipw2100_priv *priv, u32 tx_power)
5104 struct host_command cmd = {
5105 .host_command = TX_POWER_INDEX,
5106 .host_command_sequence = 0,
5107 .host_command_length = 4
5109 int err = 0;
5111 if (tx_power != IPW_TX_POWER_DEFAULT)
5112 tx_power = (tx_power - IPW_TX_POWER_MIN_DBM) * 16 /
5113 (IPW_TX_POWER_MAX_DBM - IPW_TX_POWER_MIN_DBM);
5115 cmd.host_command_parameters[0] = tx_power;
5117 if (priv->ieee->iw_mode == IW_MODE_ADHOC)
5118 err = ipw2100_hw_send_command(priv, &cmd);
5119 if (!err)
5120 priv->tx_power = tx_power;
5122 return 0;
5125 static int ipw2100_set_ibss_beacon_interval(struct ipw2100_priv *priv,
5126 u32 interval, int batch_mode)
5128 struct host_command cmd = {
5129 .host_command = BEACON_INTERVAL,
5130 .host_command_sequence = 0,
5131 .host_command_length = 4
5133 int err;
5135 cmd.host_command_parameters[0] = interval;
5137 IPW_DEBUG_INFO("enter\n");
5139 if (priv->ieee->iw_mode == IW_MODE_ADHOC) {
5140 if (!batch_mode) {
5141 err = ipw2100_disable_adapter(priv);
5142 if (err)
5143 return err;
5146 ipw2100_hw_send_command(priv, &cmd);
5148 if (!batch_mode) {
5149 err = ipw2100_enable_adapter(priv);
5150 if (err)
5151 return err;
5155 IPW_DEBUG_INFO("exit\n");
5157 return 0;
5160 void ipw2100_queues_initialize(struct ipw2100_priv *priv)
5162 ipw2100_tx_initialize(priv);
5163 ipw2100_rx_initialize(priv);
5164 ipw2100_msg_initialize(priv);
5167 void ipw2100_queues_free(struct ipw2100_priv *priv)
5169 ipw2100_tx_free(priv);
5170 ipw2100_rx_free(priv);
5171 ipw2100_msg_free(priv);
5174 int ipw2100_queues_allocate(struct ipw2100_priv *priv)
5176 if (ipw2100_tx_allocate(priv) ||
5177 ipw2100_rx_allocate(priv) || ipw2100_msg_allocate(priv))
5178 goto fail;
5180 return 0;
5182 fail:
5183 ipw2100_tx_free(priv);
5184 ipw2100_rx_free(priv);
5185 ipw2100_msg_free(priv);
5186 return -ENOMEM;
5189 #define IPW_PRIVACY_CAPABLE 0x0008
5191 static int ipw2100_set_wep_flags(struct ipw2100_priv *priv, u32 flags,
5192 int batch_mode)
5194 struct host_command cmd = {
5195 .host_command = WEP_FLAGS,
5196 .host_command_sequence = 0,
5197 .host_command_length = 4
5199 int err;
5201 cmd.host_command_parameters[0] = flags;
5203 IPW_DEBUG_HC("WEP_FLAGS: flags = 0x%08X\n", flags);
5205 if (!batch_mode) {
5206 err = ipw2100_disable_adapter(priv);
5207 if (err) {
5208 printk(KERN_ERR DRV_NAME
5209 ": %s: Could not disable adapter %d\n",
5210 priv->net_dev->name, err);
5211 return err;
5215 /* send cmd to firmware */
5216 err = ipw2100_hw_send_command(priv, &cmd);
5218 if (!batch_mode)
5219 ipw2100_enable_adapter(priv);
5221 return err;
5224 struct ipw2100_wep_key {
5225 u8 idx;
5226 u8 len;
5227 u8 key[13];
5230 /* Macros to ease up priting WEP keys */
5231 #define WEP_FMT_64 "%02X%02X%02X%02X-%02X"
5232 #define WEP_FMT_128 "%02X%02X%02X%02X-%02X%02X%02X%02X-%02X%02X%02X"
5233 #define WEP_STR_64(x) x[0],x[1],x[2],x[3],x[4]
5234 #define WEP_STR_128(x) x[0],x[1],x[2],x[3],x[4],x[5],x[6],x[7],x[8],x[9],x[10]
5237 * Set a the wep key
5239 * @priv: struct to work on
5240 * @idx: index of the key we want to set
5241 * @key: ptr to the key data to set
5242 * @len: length of the buffer at @key
5243 * @batch_mode: FIXME perform the operation in batch mode, not
5244 * disabling the device.
5246 * @returns 0 if OK, < 0 errno code on error.
5248 * Fill out a command structure with the new wep key, length an
5249 * index and send it down the wire.
5251 static int ipw2100_set_key(struct ipw2100_priv *priv,
5252 int idx, char *key, int len, int batch_mode)
5254 int keylen = len ? (len <= 5 ? 5 : 13) : 0;
5255 struct host_command cmd = {
5256 .host_command = WEP_KEY_INFO,
5257 .host_command_sequence = 0,
5258 .host_command_length = sizeof(struct ipw2100_wep_key),
5260 struct ipw2100_wep_key *wep_key = (void *)cmd.host_command_parameters;
5261 int err;
5263 IPW_DEBUG_HC("WEP_KEY_INFO: index = %d, len = %d/%d\n",
5264 idx, keylen, len);
5266 /* NOTE: We don't check cached values in case the firmware was reset
5267 * or some other problem is occuring. If the user is setting the key,
5268 * then we push the change */
5270 wep_key->idx = idx;
5271 wep_key->len = keylen;
5273 if (keylen) {
5274 memcpy(wep_key->key, key, len);
5275 memset(wep_key->key + len, 0, keylen - len);
5278 /* Will be optimized out on debug not being configured in */
5279 if (keylen == 0)
5280 IPW_DEBUG_WEP("%s: Clearing key %d\n",
5281 priv->net_dev->name, wep_key->idx);
5282 else if (keylen == 5)
5283 IPW_DEBUG_WEP("%s: idx: %d, len: %d key: " WEP_FMT_64 "\n",
5284 priv->net_dev->name, wep_key->idx, wep_key->len,
5285 WEP_STR_64(wep_key->key));
5286 else
5287 IPW_DEBUG_WEP("%s: idx: %d, len: %d key: " WEP_FMT_128
5288 "\n",
5289 priv->net_dev->name, wep_key->idx, wep_key->len,
5290 WEP_STR_128(wep_key->key));
5292 if (!batch_mode) {
5293 err = ipw2100_disable_adapter(priv);
5294 /* FIXME: IPG: shouldn't this prink be in _disable_adapter()? */
5295 if (err) {
5296 printk(KERN_ERR DRV_NAME
5297 ": %s: Could not disable adapter %d\n",
5298 priv->net_dev->name, err);
5299 return err;
5303 /* send cmd to firmware */
5304 err = ipw2100_hw_send_command(priv, &cmd);
5306 if (!batch_mode) {
5307 int err2 = ipw2100_enable_adapter(priv);
5308 if (err == 0)
5309 err = err2;
5311 return err;
5314 static int ipw2100_set_key_index(struct ipw2100_priv *priv,
5315 int idx, int batch_mode)
5317 struct host_command cmd = {
5318 .host_command = WEP_KEY_INDEX,
5319 .host_command_sequence = 0,
5320 .host_command_length = 4,
5321 .host_command_parameters = {idx},
5323 int err;
5325 IPW_DEBUG_HC("WEP_KEY_INDEX: index = %d\n", idx);
5327 if (idx < 0 || idx > 3)
5328 return -EINVAL;
5330 if (!batch_mode) {
5331 err = ipw2100_disable_adapter(priv);
5332 if (err) {
5333 printk(KERN_ERR DRV_NAME
5334 ": %s: Could not disable adapter %d\n",
5335 priv->net_dev->name, err);
5336 return err;
5340 /* send cmd to firmware */
5341 err = ipw2100_hw_send_command(priv, &cmd);
5343 if (!batch_mode)
5344 ipw2100_enable_adapter(priv);
5346 return err;
5349 static int ipw2100_configure_security(struct ipw2100_priv *priv, int batch_mode)
5351 int i, err, auth_mode, sec_level, use_group;
5353 if (!(priv->status & STATUS_RUNNING))
5354 return 0;
5356 if (!batch_mode) {
5357 err = ipw2100_disable_adapter(priv);
5358 if (err)
5359 return err;
5362 if (!priv->ieee->sec.enabled) {
5363 err =
5364 ipw2100_set_security_information(priv, IPW_AUTH_OPEN,
5365 SEC_LEVEL_0, 0, 1);
5366 } else {
5367 auth_mode = IPW_AUTH_OPEN;
5368 if ((priv->ieee->sec.flags & SEC_AUTH_MODE) &&
5369 (priv->ieee->sec.auth_mode == WLAN_AUTH_SHARED_KEY))
5370 auth_mode = IPW_AUTH_SHARED;
5372 sec_level = SEC_LEVEL_0;
5373 if (priv->ieee->sec.flags & SEC_LEVEL)
5374 sec_level = priv->ieee->sec.level;
5376 use_group = 0;
5377 if (priv->ieee->sec.flags & SEC_UNICAST_GROUP)
5378 use_group = priv->ieee->sec.unicast_uses_group;
5380 err =
5381 ipw2100_set_security_information(priv, auth_mode, sec_level,
5382 use_group, 1);
5385 if (err)
5386 goto exit;
5388 if (priv->ieee->sec.enabled) {
5389 for (i = 0; i < 4; i++) {
5390 if (!(priv->ieee->sec.flags & (1 << i))) {
5391 memset(priv->ieee->sec.keys[i], 0, WEP_KEY_LEN);
5392 priv->ieee->sec.key_sizes[i] = 0;
5393 } else {
5394 err = ipw2100_set_key(priv, i,
5395 priv->ieee->sec.keys[i],
5396 priv->ieee->sec.
5397 key_sizes[i], 1);
5398 if (err)
5399 goto exit;
5403 ipw2100_set_key_index(priv, priv->ieee->tx_keyidx, 1);
5406 /* Always enable privacy so the Host can filter WEP packets if
5407 * encrypted data is sent up */
5408 err =
5409 ipw2100_set_wep_flags(priv,
5410 priv->ieee->sec.
5411 enabled ? IPW_PRIVACY_CAPABLE : 0, 1);
5412 if (err)
5413 goto exit;
5415 priv->status &= ~STATUS_SECURITY_UPDATED;
5417 exit:
5418 if (!batch_mode)
5419 ipw2100_enable_adapter(priv);
5421 return err;
5424 static void ipw2100_security_work(struct ipw2100_priv *priv)
5426 /* If we happen to have reconnected before we get a chance to
5427 * process this, then update the security settings--which causes
5428 * a disassociation to occur */
5429 if (!(priv->status & STATUS_ASSOCIATED) &&
5430 priv->status & STATUS_SECURITY_UPDATED)
5431 ipw2100_configure_security(priv, 0);
5434 static void shim__set_security(struct net_device *dev,
5435 struct ieee80211_security *sec)
5437 struct ipw2100_priv *priv = ieee80211_priv(dev);
5438 int i, force_update = 0;
5440 down(&priv->action_sem);
5441 if (!(priv->status & STATUS_INITIALIZED))
5442 goto done;
5444 for (i = 0; i < 4; i++) {
5445 if (sec->flags & (1 << i)) {
5446 priv->ieee->sec.key_sizes[i] = sec->key_sizes[i];
5447 if (sec->key_sizes[i] == 0)
5448 priv->ieee->sec.flags &= ~(1 << i);
5449 else
5450 memcpy(priv->ieee->sec.keys[i], sec->keys[i],
5451 sec->key_sizes[i]);
5452 if (sec->level == SEC_LEVEL_1) {
5453 priv->ieee->sec.flags |= (1 << i);
5454 priv->status |= STATUS_SECURITY_UPDATED;
5455 } else
5456 priv->ieee->sec.flags &= ~(1 << i);
5460 if ((sec->flags & SEC_ACTIVE_KEY) &&
5461 priv->ieee->sec.active_key != sec->active_key) {
5462 if (sec->active_key <= 3) {
5463 priv->ieee->sec.active_key = sec->active_key;
5464 priv->ieee->sec.flags |= SEC_ACTIVE_KEY;
5465 } else
5466 priv->ieee->sec.flags &= ~SEC_ACTIVE_KEY;
5468 priv->status |= STATUS_SECURITY_UPDATED;
5471 if ((sec->flags & SEC_AUTH_MODE) &&
5472 (priv->ieee->sec.auth_mode != sec->auth_mode)) {
5473 priv->ieee->sec.auth_mode = sec->auth_mode;
5474 priv->ieee->sec.flags |= SEC_AUTH_MODE;
5475 priv->status |= STATUS_SECURITY_UPDATED;
5478 if (sec->flags & SEC_ENABLED && priv->ieee->sec.enabled != sec->enabled) {
5479 priv->ieee->sec.flags |= SEC_ENABLED;
5480 priv->ieee->sec.enabled = sec->enabled;
5481 priv->status |= STATUS_SECURITY_UPDATED;
5482 force_update = 1;
5485 if (sec->flags & SEC_ENCRYPT)
5486 priv->ieee->sec.encrypt = sec->encrypt;
5488 if (sec->flags & SEC_LEVEL && priv->ieee->sec.level != sec->level) {
5489 priv->ieee->sec.level = sec->level;
5490 priv->ieee->sec.flags |= SEC_LEVEL;
5491 priv->status |= STATUS_SECURITY_UPDATED;
5494 IPW_DEBUG_WEP("Security flags: %c %c%c%c%c %c%c%c%c\n",
5495 priv->ieee->sec.flags & (1 << 8) ? '1' : '0',
5496 priv->ieee->sec.flags & (1 << 7) ? '1' : '0',
5497 priv->ieee->sec.flags & (1 << 6) ? '1' : '0',
5498 priv->ieee->sec.flags & (1 << 5) ? '1' : '0',
5499 priv->ieee->sec.flags & (1 << 4) ? '1' : '0',
5500 priv->ieee->sec.flags & (1 << 3) ? '1' : '0',
5501 priv->ieee->sec.flags & (1 << 2) ? '1' : '0',
5502 priv->ieee->sec.flags & (1 << 1) ? '1' : '0',
5503 priv->ieee->sec.flags & (1 << 0) ? '1' : '0');
5505 /* As a temporary work around to enable WPA until we figure out why
5506 * wpa_supplicant toggles the security capability of the driver, which
5507 * forces a disassocation with force_update...
5509 * if (force_update || !(priv->status & STATUS_ASSOCIATED))*/
5510 if (!(priv->status & (STATUS_ASSOCIATED | STATUS_ASSOCIATING)))
5511 ipw2100_configure_security(priv, 0);
5512 done:
5513 up(&priv->action_sem);
5516 static int ipw2100_adapter_setup(struct ipw2100_priv *priv)
5518 int err;
5519 int batch_mode = 1;
5520 u8 *bssid;
5522 IPW_DEBUG_INFO("enter\n");
5524 err = ipw2100_disable_adapter(priv);
5525 if (err)
5526 return err;
5527 #ifdef CONFIG_IPW2100_MONITOR
5528 if (priv->ieee->iw_mode == IW_MODE_MONITOR) {
5529 err = ipw2100_set_channel(priv, priv->channel, batch_mode);
5530 if (err)
5531 return err;
5533 IPW_DEBUG_INFO("exit\n");
5535 return 0;
5537 #endif /* CONFIG_IPW2100_MONITOR */
5539 err = ipw2100_read_mac_address(priv);
5540 if (err)
5541 return -EIO;
5543 err = ipw2100_set_mac_address(priv, batch_mode);
5544 if (err)
5545 return err;
5547 err = ipw2100_set_port_type(priv, priv->ieee->iw_mode, batch_mode);
5548 if (err)
5549 return err;
5551 if (priv->ieee->iw_mode == IW_MODE_ADHOC) {
5552 err = ipw2100_set_channel(priv, priv->channel, batch_mode);
5553 if (err)
5554 return err;
5557 err = ipw2100_system_config(priv, batch_mode);
5558 if (err)
5559 return err;
5561 err = ipw2100_set_tx_rates(priv, priv->tx_rates, batch_mode);
5562 if (err)
5563 return err;
5565 /* Default to power mode OFF */
5566 err = ipw2100_set_power_mode(priv, IPW_POWER_MODE_CAM);
5567 if (err)
5568 return err;
5570 err = ipw2100_set_rts_threshold(priv, priv->rts_threshold);
5571 if (err)
5572 return err;
5574 if (priv->config & CFG_STATIC_BSSID)
5575 bssid = priv->bssid;
5576 else
5577 bssid = NULL;
5578 err = ipw2100_set_mandatory_bssid(priv, bssid, batch_mode);
5579 if (err)
5580 return err;
5582 if (priv->config & CFG_STATIC_ESSID)
5583 err = ipw2100_set_essid(priv, priv->essid, priv->essid_len,
5584 batch_mode);
5585 else
5586 err = ipw2100_set_essid(priv, NULL, 0, batch_mode);
5587 if (err)
5588 return err;
5590 err = ipw2100_configure_security(priv, batch_mode);
5591 if (err)
5592 return err;
5594 if (priv->ieee->iw_mode == IW_MODE_ADHOC) {
5595 err =
5596 ipw2100_set_ibss_beacon_interval(priv,
5597 priv->beacon_interval,
5598 batch_mode);
5599 if (err)
5600 return err;
5602 err = ipw2100_set_tx_power(priv, priv->tx_power);
5603 if (err)
5604 return err;
5608 err = ipw2100_set_fragmentation_threshold(
5609 priv, priv->frag_threshold, batch_mode);
5610 if (err)
5611 return err;
5614 IPW_DEBUG_INFO("exit\n");
5616 return 0;
5619 /*************************************************************************
5621 * EXTERNALLY CALLED METHODS
5623 *************************************************************************/
5625 /* This method is called by the network layer -- not to be confused with
5626 * ipw2100_set_mac_address() declared above called by this driver (and this
5627 * method as well) to talk to the firmware */
5628 static int ipw2100_set_address(struct net_device *dev, void *p)
5630 struct ipw2100_priv *priv = ieee80211_priv(dev);
5631 struct sockaddr *addr = p;
5632 int err = 0;
5634 if (!is_valid_ether_addr(addr->sa_data))
5635 return -EADDRNOTAVAIL;
5637 down(&priv->action_sem);
5639 priv->config |= CFG_CUSTOM_MAC;
5640 memcpy(priv->mac_addr, addr->sa_data, ETH_ALEN);
5642 err = ipw2100_set_mac_address(priv, 0);
5643 if (err)
5644 goto done;
5646 priv->reset_backoff = 0;
5647 up(&priv->action_sem);
5648 ipw2100_reset_adapter(priv);
5649 return 0;
5651 done:
5652 up(&priv->action_sem);
5653 return err;
5656 static int ipw2100_open(struct net_device *dev)
5658 struct ipw2100_priv *priv = ieee80211_priv(dev);
5659 unsigned long flags;
5660 IPW_DEBUG_INFO("dev->open\n");
5662 spin_lock_irqsave(&priv->low_lock, flags);
5663 if (priv->status & STATUS_ASSOCIATED) {
5664 netif_carrier_on(dev);
5665 netif_start_queue(dev);
5667 spin_unlock_irqrestore(&priv->low_lock, flags);
5669 return 0;
5672 static int ipw2100_close(struct net_device *dev)
5674 struct ipw2100_priv *priv = ieee80211_priv(dev);
5675 unsigned long flags;
5676 struct list_head *element;
5677 struct ipw2100_tx_packet *packet;
5679 IPW_DEBUG_INFO("enter\n");
5681 spin_lock_irqsave(&priv->low_lock, flags);
5683 if (priv->status & STATUS_ASSOCIATED)
5684 netif_carrier_off(dev);
5685 netif_stop_queue(dev);
5687 /* Flush the TX queue ... */
5688 while (!list_empty(&priv->tx_pend_list)) {
5689 element = priv->tx_pend_list.next;
5690 packet = list_entry(element, struct ipw2100_tx_packet, list);
5692 list_del(element);
5693 DEC_STAT(&priv->tx_pend_stat);
5695 ieee80211_txb_free(packet->info.d_struct.txb);
5696 packet->info.d_struct.txb = NULL;
5698 list_add_tail(element, &priv->tx_free_list);
5699 INC_STAT(&priv->tx_free_stat);
5701 spin_unlock_irqrestore(&priv->low_lock, flags);
5703 IPW_DEBUG_INFO("exit\n");
5705 return 0;
5709 * TODO: Fix this function... its just wrong
5711 static void ipw2100_tx_timeout(struct net_device *dev)
5713 struct ipw2100_priv *priv = ieee80211_priv(dev);
5715 priv->ieee->stats.tx_errors++;
5717 #ifdef CONFIG_IPW2100_MONITOR
5718 if (priv->ieee->iw_mode == IW_MODE_MONITOR)
5719 return;
5720 #endif
5722 IPW_DEBUG_INFO("%s: TX timed out. Scheduling firmware restart.\n",
5723 dev->name);
5724 schedule_reset(priv);
5728 * TODO: reimplement it so that it reads statistics
5729 * from the adapter using ordinal tables
5730 * instead of/in addition to collecting them
5731 * in the driver
5733 static struct net_device_stats *ipw2100_stats(struct net_device *dev)
5735 struct ipw2100_priv *priv = ieee80211_priv(dev);
5737 return &priv->ieee->stats;
5740 static int ipw2100_wpa_enable(struct ipw2100_priv *priv, int value)
5742 /* This is called when wpa_supplicant loads and closes the driver
5743 * interface. */
5744 priv->ieee->wpa_enabled = value;
5745 return 0;
5748 static int ipw2100_wpa_set_auth_algs(struct ipw2100_priv *priv, int value)
5751 struct ieee80211_device *ieee = priv->ieee;
5752 struct ieee80211_security sec = {
5753 .flags = SEC_AUTH_MODE,
5755 int ret = 0;
5757 if (value & IW_AUTH_ALG_SHARED_KEY) {
5758 sec.auth_mode = WLAN_AUTH_SHARED_KEY;
5759 ieee->open_wep = 0;
5760 } else if (value & IW_AUTH_ALG_OPEN_SYSTEM) {
5761 sec.auth_mode = WLAN_AUTH_OPEN;
5762 ieee->open_wep = 1;
5763 } else
5764 return -EINVAL;
5766 if (ieee->set_security)
5767 ieee->set_security(ieee->dev, &sec);
5768 else
5769 ret = -EOPNOTSUPP;
5771 return ret;
5774 void ipw2100_wpa_assoc_frame(struct ipw2100_priv *priv,
5775 char *wpa_ie, int wpa_ie_len)
5778 struct ipw2100_wpa_assoc_frame frame;
5780 frame.fixed_ie_mask = 0;
5782 /* copy WPA IE */
5783 memcpy(frame.var_ie, wpa_ie, wpa_ie_len);
5784 frame.var_ie_len = wpa_ie_len;
5786 /* make sure WPA is enabled */
5787 ipw2100_wpa_enable(priv, 1);
5788 ipw2100_set_wpa_ie(priv, &frame, 0);
5791 static void ipw_ethtool_get_drvinfo(struct net_device *dev,
5792 struct ethtool_drvinfo *info)
5794 struct ipw2100_priv *priv = ieee80211_priv(dev);
5795 char fw_ver[64], ucode_ver[64];
5797 strcpy(info->driver, DRV_NAME);
5798 strcpy(info->version, DRV_VERSION);
5800 ipw2100_get_fwversion(priv, fw_ver, sizeof(fw_ver));
5801 ipw2100_get_ucodeversion(priv, ucode_ver, sizeof(ucode_ver));
5803 snprintf(info->fw_version, sizeof(info->fw_version), "%s:%d:%s",
5804 fw_ver, priv->eeprom_version, ucode_ver);
5806 strcpy(info->bus_info, pci_name(priv->pci_dev));
5809 static u32 ipw2100_ethtool_get_link(struct net_device *dev)
5811 struct ipw2100_priv *priv = ieee80211_priv(dev);
5812 return (priv->status & STATUS_ASSOCIATED) ? 1 : 0;
5815 static struct ethtool_ops ipw2100_ethtool_ops = {
5816 .get_link = ipw2100_ethtool_get_link,
5817 .get_drvinfo = ipw_ethtool_get_drvinfo,
5820 static void ipw2100_hang_check(void *adapter)
5822 struct ipw2100_priv *priv = adapter;
5823 unsigned long flags;
5824 u32 rtc = 0xa5a5a5a5;
5825 u32 len = sizeof(rtc);
5826 int restart = 0;
5828 spin_lock_irqsave(&priv->low_lock, flags);
5830 if (priv->fatal_error != 0) {
5831 /* If fatal_error is set then we need to restart */
5832 IPW_DEBUG_INFO("%s: Hardware fatal error detected.\n",
5833 priv->net_dev->name);
5835 restart = 1;
5836 } else if (ipw2100_get_ordinal(priv, IPW_ORD_RTC_TIME, &rtc, &len) ||
5837 (rtc == priv->last_rtc)) {
5838 /* Check if firmware is hung */
5839 IPW_DEBUG_INFO("%s: Firmware RTC stalled.\n",
5840 priv->net_dev->name);
5842 restart = 1;
5845 if (restart) {
5846 /* Kill timer */
5847 priv->stop_hang_check = 1;
5848 priv->hangs++;
5850 /* Restart the NIC */
5851 schedule_reset(priv);
5854 priv->last_rtc = rtc;
5856 if (!priv->stop_hang_check)
5857 queue_delayed_work(priv->workqueue, &priv->hang_check, HZ / 2);
5859 spin_unlock_irqrestore(&priv->low_lock, flags);
5862 static void ipw2100_rf_kill(void *adapter)
5864 struct ipw2100_priv *priv = adapter;
5865 unsigned long flags;
5867 spin_lock_irqsave(&priv->low_lock, flags);
5869 if (rf_kill_active(priv)) {
5870 IPW_DEBUG_RF_KILL("RF Kill active, rescheduling GPIO check\n");
5871 if (!priv->stop_rf_kill)
5872 queue_delayed_work(priv->workqueue, &priv->rf_kill, HZ);
5873 goto exit_unlock;
5876 /* RF Kill is now disabled, so bring the device back up */
5878 if (!(priv->status & STATUS_RF_KILL_MASK)) {
5879 IPW_DEBUG_RF_KILL("HW RF Kill no longer active, restarting "
5880 "device\n");
5881 schedule_reset(priv);
5882 } else
5883 IPW_DEBUG_RF_KILL("HW RF Kill deactivated. SW RF Kill still "
5884 "enabled\n");
5886 exit_unlock:
5887 spin_unlock_irqrestore(&priv->low_lock, flags);
5890 static void ipw2100_irq_tasklet(struct ipw2100_priv *priv);
5892 /* Look into using netdev destructor to shutdown ieee80211? */
5894 static struct net_device *ipw2100_alloc_device(struct pci_dev *pci_dev,
5895 void __iomem * base_addr,
5896 unsigned long mem_start,
5897 unsigned long mem_len)
5899 struct ipw2100_priv *priv;
5900 struct net_device *dev;
5902 dev = alloc_ieee80211(sizeof(struct ipw2100_priv));
5903 if (!dev)
5904 return NULL;
5905 priv = ieee80211_priv(dev);
5906 priv->ieee = netdev_priv(dev);
5907 priv->pci_dev = pci_dev;
5908 priv->net_dev = dev;
5910 priv->ieee->hard_start_xmit = ipw2100_tx;
5911 priv->ieee->set_security = shim__set_security;
5913 priv->ieee->perfect_rssi = -20;
5914 priv->ieee->worst_rssi = -85;
5916 dev->open = ipw2100_open;
5917 dev->stop = ipw2100_close;
5918 dev->init = ipw2100_net_init;
5919 dev->get_stats = ipw2100_stats;
5920 dev->ethtool_ops = &ipw2100_ethtool_ops;
5921 dev->tx_timeout = ipw2100_tx_timeout;
5922 dev->wireless_handlers = &ipw2100_wx_handler_def;
5923 priv->wireless_data.ieee80211 = priv->ieee;
5924 dev->wireless_data = &priv->wireless_data;
5925 dev->set_mac_address = ipw2100_set_address;
5926 dev->watchdog_timeo = 3 * HZ;
5927 dev->irq = 0;
5929 dev->base_addr = (unsigned long)base_addr;
5930 dev->mem_start = mem_start;
5931 dev->mem_end = dev->mem_start + mem_len - 1;
5933 /* NOTE: We don't use the wireless_handlers hook
5934 * in dev as the system will start throwing WX requests
5935 * to us before we're actually initialized and it just
5936 * ends up causing problems. So, we just handle
5937 * the WX extensions through the ipw2100_ioctl interface */
5939 /* memset() puts everything to 0, so we only have explicitely set
5940 * those values that need to be something else */
5942 /* If power management is turned on, default to AUTO mode */
5943 priv->power_mode = IPW_POWER_AUTO;
5945 #ifdef CONFIG_IPW2100_MONITOR
5946 priv->config |= CFG_CRC_CHECK;
5947 #endif
5948 priv->ieee->wpa_enabled = 0;
5949 priv->ieee->drop_unencrypted = 0;
5950 priv->ieee->privacy_invoked = 0;
5951 priv->ieee->ieee802_1x = 1;
5953 /* Set module parameters */
5954 switch (mode) {
5955 case 1:
5956 priv->ieee->iw_mode = IW_MODE_ADHOC;
5957 break;
5958 #ifdef CONFIG_IPW2100_MONITOR
5959 case 2:
5960 priv->ieee->iw_mode = IW_MODE_MONITOR;
5961 break;
5962 #endif
5963 default:
5964 case 0:
5965 priv->ieee->iw_mode = IW_MODE_INFRA;
5966 break;
5969 if (disable == 1)
5970 priv->status |= STATUS_RF_KILL_SW;
5972 if (channel != 0 &&
5973 ((channel >= REG_MIN_CHANNEL) && (channel <= REG_MAX_CHANNEL))) {
5974 priv->config |= CFG_STATIC_CHANNEL;
5975 priv->channel = channel;
5978 if (associate)
5979 priv->config |= CFG_ASSOCIATE;
5981 priv->beacon_interval = DEFAULT_BEACON_INTERVAL;
5982 priv->short_retry_limit = DEFAULT_SHORT_RETRY_LIMIT;
5983 priv->long_retry_limit = DEFAULT_LONG_RETRY_LIMIT;
5984 priv->rts_threshold = DEFAULT_RTS_THRESHOLD | RTS_DISABLED;
5985 priv->frag_threshold = DEFAULT_FTS | FRAG_DISABLED;
5986 priv->tx_power = IPW_TX_POWER_DEFAULT;
5987 priv->tx_rates = DEFAULT_TX_RATES;
5989 strcpy(priv->nick, "ipw2100");
5991 spin_lock_init(&priv->low_lock);
5992 sema_init(&priv->action_sem, 1);
5993 sema_init(&priv->adapter_sem, 1);
5995 init_waitqueue_head(&priv->wait_command_queue);
5997 netif_carrier_off(dev);
5999 INIT_LIST_HEAD(&priv->msg_free_list);
6000 INIT_LIST_HEAD(&priv->msg_pend_list);
6001 INIT_STAT(&priv->msg_free_stat);
6002 INIT_STAT(&priv->msg_pend_stat);
6004 INIT_LIST_HEAD(&priv->tx_free_list);
6005 INIT_LIST_HEAD(&priv->tx_pend_list);
6006 INIT_STAT(&priv->tx_free_stat);
6007 INIT_STAT(&priv->tx_pend_stat);
6009 INIT_LIST_HEAD(&priv->fw_pend_list);
6010 INIT_STAT(&priv->fw_pend_stat);
6012 priv->workqueue = create_workqueue(DRV_NAME);
6014 INIT_WORK(&priv->reset_work,
6015 (void (*)(void *))ipw2100_reset_adapter, priv);
6016 INIT_WORK(&priv->security_work,
6017 (void (*)(void *))ipw2100_security_work, priv);
6018 INIT_WORK(&priv->wx_event_work,
6019 (void (*)(void *))ipw2100_wx_event_work, priv);
6020 INIT_WORK(&priv->hang_check, ipw2100_hang_check, priv);
6021 INIT_WORK(&priv->rf_kill, ipw2100_rf_kill, priv);
6023 tasklet_init(&priv->irq_tasklet, (void (*)(unsigned long))
6024 ipw2100_irq_tasklet, (unsigned long)priv);
6026 /* NOTE: We do not start the deferred work for status checks yet */
6027 priv->stop_rf_kill = 1;
6028 priv->stop_hang_check = 1;
6030 return dev;
6033 static int ipw2100_pci_init_one(struct pci_dev *pci_dev,
6034 const struct pci_device_id *ent)
6036 unsigned long mem_start, mem_len, mem_flags;
6037 void __iomem *base_addr = NULL;
6038 struct net_device *dev = NULL;
6039 struct ipw2100_priv *priv = NULL;
6040 int err = 0;
6041 int registered = 0;
6042 u32 val;
6044 IPW_DEBUG_INFO("enter\n");
6046 mem_start = pci_resource_start(pci_dev, 0);
6047 mem_len = pci_resource_len(pci_dev, 0);
6048 mem_flags = pci_resource_flags(pci_dev, 0);
6050 if ((mem_flags & IORESOURCE_MEM) != IORESOURCE_MEM) {
6051 IPW_DEBUG_INFO("weird - resource type is not memory\n");
6052 err = -ENODEV;
6053 goto fail;
6056 base_addr = ioremap_nocache(mem_start, mem_len);
6057 if (!base_addr) {
6058 printk(KERN_WARNING DRV_NAME
6059 "Error calling ioremap_nocache.\n");
6060 err = -EIO;
6061 goto fail;
6064 /* allocate and initialize our net_device */
6065 dev = ipw2100_alloc_device(pci_dev, base_addr, mem_start, mem_len);
6066 if (!dev) {
6067 printk(KERN_WARNING DRV_NAME
6068 "Error calling ipw2100_alloc_device.\n");
6069 err = -ENOMEM;
6070 goto fail;
6073 /* set up PCI mappings for device */
6074 err = pci_enable_device(pci_dev);
6075 if (err) {
6076 printk(KERN_WARNING DRV_NAME
6077 "Error calling pci_enable_device.\n");
6078 return err;
6081 priv = ieee80211_priv(dev);
6083 pci_set_master(pci_dev);
6084 pci_set_drvdata(pci_dev, priv);
6086 err = pci_set_dma_mask(pci_dev, DMA_32BIT_MASK);
6087 if (err) {
6088 printk(KERN_WARNING DRV_NAME
6089 "Error calling pci_set_dma_mask.\n");
6090 pci_disable_device(pci_dev);
6091 return err;
6094 err = pci_request_regions(pci_dev, DRV_NAME);
6095 if (err) {
6096 printk(KERN_WARNING DRV_NAME
6097 "Error calling pci_request_regions.\n");
6098 pci_disable_device(pci_dev);
6099 return err;
6102 /* We disable the RETRY_TIMEOUT register (0x41) to keep
6103 * PCI Tx retries from interfering with C3 CPU state */
6104 pci_read_config_dword(pci_dev, 0x40, &val);
6105 if ((val & 0x0000ff00) != 0)
6106 pci_write_config_dword(pci_dev, 0x40, val & 0xffff00ff);
6108 pci_set_power_state(pci_dev, PCI_D0);
6110 if (!ipw2100_hw_is_adapter_in_system(dev)) {
6111 printk(KERN_WARNING DRV_NAME
6112 "Device not found via register read.\n");
6113 err = -ENODEV;
6114 goto fail;
6117 SET_NETDEV_DEV(dev, &pci_dev->dev);
6119 /* Force interrupts to be shut off on the device */
6120 priv->status |= STATUS_INT_ENABLED;
6121 ipw2100_disable_interrupts(priv);
6123 /* Allocate and initialize the Tx/Rx queues and lists */
6124 if (ipw2100_queues_allocate(priv)) {
6125 printk(KERN_WARNING DRV_NAME
6126 "Error calilng ipw2100_queues_allocate.\n");
6127 err = -ENOMEM;
6128 goto fail;
6130 ipw2100_queues_initialize(priv);
6132 err = request_irq(pci_dev->irq,
6133 ipw2100_interrupt, SA_SHIRQ, dev->name, priv);
6134 if (err) {
6135 printk(KERN_WARNING DRV_NAME
6136 "Error calling request_irq: %d.\n", pci_dev->irq);
6137 goto fail;
6139 dev->irq = pci_dev->irq;
6141 IPW_DEBUG_INFO("Attempting to register device...\n");
6143 SET_MODULE_OWNER(dev);
6145 printk(KERN_INFO DRV_NAME
6146 ": Detected Intel PRO/Wireless 2100 Network Connection\n");
6148 /* Bring up the interface. Pre 0.46, after we registered the
6149 * network device we would call ipw2100_up. This introduced a race
6150 * condition with newer hotplug configurations (network was coming
6151 * up and making calls before the device was initialized).
6153 * If we called ipw2100_up before we registered the device, then the
6154 * device name wasn't registered. So, we instead use the net_dev->init
6155 * member to call a function that then just turns and calls ipw2100_up.
6156 * net_dev->init is called after name allocation but before the
6157 * notifier chain is called */
6158 down(&priv->action_sem);
6159 err = register_netdev(dev);
6160 if (err) {
6161 printk(KERN_WARNING DRV_NAME
6162 "Error calling register_netdev.\n");
6163 goto fail_unlock;
6165 registered = 1;
6167 IPW_DEBUG_INFO("%s: Bound to %s\n", dev->name, pci_name(pci_dev));
6169 /* perform this after register_netdev so that dev->name is set */
6170 sysfs_create_group(&pci_dev->dev.kobj, &ipw2100_attribute_group);
6172 /* If the RF Kill switch is disabled, go ahead and complete the
6173 * startup sequence */
6174 if (!(priv->status & STATUS_RF_KILL_MASK)) {
6175 /* Enable the adapter - sends HOST_COMPLETE */
6176 if (ipw2100_enable_adapter(priv)) {
6177 printk(KERN_WARNING DRV_NAME
6178 ": %s: failed in call to enable adapter.\n",
6179 priv->net_dev->name);
6180 ipw2100_hw_stop_adapter(priv);
6181 err = -EIO;
6182 goto fail_unlock;
6185 /* Start a scan . . . */
6186 ipw2100_set_scan_options(priv);
6187 ipw2100_start_scan(priv);
6190 IPW_DEBUG_INFO("exit\n");
6192 priv->status |= STATUS_INITIALIZED;
6194 up(&priv->action_sem);
6196 return 0;
6198 fail_unlock:
6199 up(&priv->action_sem);
6201 fail:
6202 if (dev) {
6203 if (registered)
6204 unregister_netdev(dev);
6206 ipw2100_hw_stop_adapter(priv);
6208 ipw2100_disable_interrupts(priv);
6210 if (dev->irq)
6211 free_irq(dev->irq, priv);
6213 ipw2100_kill_workqueue(priv);
6215 /* These are safe to call even if they weren't allocated */
6216 ipw2100_queues_free(priv);
6217 sysfs_remove_group(&pci_dev->dev.kobj,
6218 &ipw2100_attribute_group);
6220 free_ieee80211(dev);
6221 pci_set_drvdata(pci_dev, NULL);
6224 if (base_addr)
6225 iounmap(base_addr);
6227 pci_release_regions(pci_dev);
6228 pci_disable_device(pci_dev);
6230 return err;
6233 static void __devexit ipw2100_pci_remove_one(struct pci_dev *pci_dev)
6235 struct ipw2100_priv *priv = pci_get_drvdata(pci_dev);
6236 struct net_device *dev;
6238 if (priv) {
6239 down(&priv->action_sem);
6241 priv->status &= ~STATUS_INITIALIZED;
6243 dev = priv->net_dev;
6244 sysfs_remove_group(&pci_dev->dev.kobj,
6245 &ipw2100_attribute_group);
6247 #ifdef CONFIG_PM
6248 if (ipw2100_firmware.version)
6249 ipw2100_release_firmware(priv, &ipw2100_firmware);
6250 #endif
6251 /* Take down the hardware */
6252 ipw2100_down(priv);
6254 /* Release the semaphore so that the network subsystem can
6255 * complete any needed calls into the driver... */
6256 up(&priv->action_sem);
6258 /* Unregister the device first - this results in close()
6259 * being called if the device is open. If we free storage
6260 * first, then close() will crash. */
6261 unregister_netdev(dev);
6263 /* ipw2100_down will ensure that there is no more pending work
6264 * in the workqueue's, so we can safely remove them now. */
6265 ipw2100_kill_workqueue(priv);
6267 ipw2100_queues_free(priv);
6269 /* Free potential debugging firmware snapshot */
6270 ipw2100_snapshot_free(priv);
6272 if (dev->irq)
6273 free_irq(dev->irq, priv);
6275 if (dev->base_addr)
6276 iounmap((void __iomem *)dev->base_addr);
6278 free_ieee80211(dev);
6281 pci_release_regions(pci_dev);
6282 pci_disable_device(pci_dev);
6284 IPW_DEBUG_INFO("exit\n");
6287 #ifdef CONFIG_PM
6288 static int ipw2100_suspend(struct pci_dev *pci_dev, pm_message_t state)
6290 struct ipw2100_priv *priv = pci_get_drvdata(pci_dev);
6291 struct net_device *dev = priv->net_dev;
6293 IPW_DEBUG_INFO("%s: Going into suspend...\n", dev->name);
6295 down(&priv->action_sem);
6296 if (priv->status & STATUS_INITIALIZED) {
6297 /* Take down the device; powers it off, etc. */
6298 ipw2100_down(priv);
6301 /* Remove the PRESENT state of the device */
6302 netif_device_detach(dev);
6304 pci_save_state(pci_dev);
6305 pci_disable_device(pci_dev);
6306 pci_set_power_state(pci_dev, PCI_D3hot);
6308 up(&priv->action_sem);
6310 return 0;
6313 static int ipw2100_resume(struct pci_dev *pci_dev)
6315 struct ipw2100_priv *priv = pci_get_drvdata(pci_dev);
6316 struct net_device *dev = priv->net_dev;
6317 u32 val;
6319 if (IPW2100_PM_DISABLED)
6320 return 0;
6322 down(&priv->action_sem);
6324 IPW_DEBUG_INFO("%s: Coming out of suspend...\n", dev->name);
6326 pci_set_power_state(pci_dev, PCI_D0);
6327 pci_enable_device(pci_dev);
6328 pci_restore_state(pci_dev);
6331 * Suspend/Resume resets the PCI configuration space, so we have to
6332 * re-disable the RETRY_TIMEOUT register (0x41) to keep PCI Tx retries
6333 * from interfering with C3 CPU state. pci_restore_state won't help
6334 * here since it only restores the first 64 bytes pci config header.
6336 pci_read_config_dword(pci_dev, 0x40, &val);
6337 if ((val & 0x0000ff00) != 0)
6338 pci_write_config_dword(pci_dev, 0x40, val & 0xffff00ff);
6340 /* Set the device back into the PRESENT state; this will also wake
6341 * the queue of needed */
6342 netif_device_attach(dev);
6344 /* Bring the device back up */
6345 if (!(priv->status & STATUS_RF_KILL_SW))
6346 ipw2100_up(priv, 0);
6348 up(&priv->action_sem);
6350 return 0;
6352 #endif
6354 #define IPW2100_DEV_ID(x) { PCI_VENDOR_ID_INTEL, 0x1043, 0x8086, x }
6356 static struct pci_device_id ipw2100_pci_id_table[] __devinitdata = {
6357 IPW2100_DEV_ID(0x2520), /* IN 2100A mPCI 3A */
6358 IPW2100_DEV_ID(0x2521), /* IN 2100A mPCI 3B */
6359 IPW2100_DEV_ID(0x2524), /* IN 2100A mPCI 3B */
6360 IPW2100_DEV_ID(0x2525), /* IN 2100A mPCI 3B */
6361 IPW2100_DEV_ID(0x2526), /* IN 2100A mPCI Gen A3 */
6362 IPW2100_DEV_ID(0x2522), /* IN 2100 mPCI 3B */
6363 IPW2100_DEV_ID(0x2523), /* IN 2100 mPCI 3A */
6364 IPW2100_DEV_ID(0x2527), /* IN 2100 mPCI 3B */
6365 IPW2100_DEV_ID(0x2528), /* IN 2100 mPCI 3B */
6366 IPW2100_DEV_ID(0x2529), /* IN 2100 mPCI 3B */
6367 IPW2100_DEV_ID(0x252B), /* IN 2100 mPCI 3A */
6368 IPW2100_DEV_ID(0x252C), /* IN 2100 mPCI 3A */
6369 IPW2100_DEV_ID(0x252D), /* IN 2100 mPCI 3A */
6371 IPW2100_DEV_ID(0x2550), /* IB 2100A mPCI 3B */
6372 IPW2100_DEV_ID(0x2551), /* IB 2100 mPCI 3B */
6373 IPW2100_DEV_ID(0x2553), /* IB 2100 mPCI 3B */
6374 IPW2100_DEV_ID(0x2554), /* IB 2100 mPCI 3B */
6375 IPW2100_DEV_ID(0x2555), /* IB 2100 mPCI 3B */
6377 IPW2100_DEV_ID(0x2560), /* DE 2100A mPCI 3A */
6378 IPW2100_DEV_ID(0x2562), /* DE 2100A mPCI 3A */
6379 IPW2100_DEV_ID(0x2563), /* DE 2100A mPCI 3A */
6380 IPW2100_DEV_ID(0x2561), /* DE 2100 mPCI 3A */
6381 IPW2100_DEV_ID(0x2565), /* DE 2100 mPCI 3A */
6382 IPW2100_DEV_ID(0x2566), /* DE 2100 mPCI 3A */
6383 IPW2100_DEV_ID(0x2567), /* DE 2100 mPCI 3A */
6385 IPW2100_DEV_ID(0x2570), /* GA 2100 mPCI 3B */
6387 IPW2100_DEV_ID(0x2580), /* TO 2100A mPCI 3B */
6388 IPW2100_DEV_ID(0x2582), /* TO 2100A mPCI 3B */
6389 IPW2100_DEV_ID(0x2583), /* TO 2100A mPCI 3B */
6390 IPW2100_DEV_ID(0x2581), /* TO 2100 mPCI 3B */
6391 IPW2100_DEV_ID(0x2585), /* TO 2100 mPCI 3B */
6392 IPW2100_DEV_ID(0x2586), /* TO 2100 mPCI 3B */
6393 IPW2100_DEV_ID(0x2587), /* TO 2100 mPCI 3B */
6395 IPW2100_DEV_ID(0x2590), /* SO 2100A mPCI 3B */
6396 IPW2100_DEV_ID(0x2592), /* SO 2100A mPCI 3B */
6397 IPW2100_DEV_ID(0x2591), /* SO 2100 mPCI 3B */
6398 IPW2100_DEV_ID(0x2593), /* SO 2100 mPCI 3B */
6399 IPW2100_DEV_ID(0x2596), /* SO 2100 mPCI 3B */
6400 IPW2100_DEV_ID(0x2598), /* SO 2100 mPCI 3B */
6402 IPW2100_DEV_ID(0x25A0), /* HP 2100 mPCI 3B */
6403 {0,},
6406 MODULE_DEVICE_TABLE(pci, ipw2100_pci_id_table);
6408 static struct pci_driver ipw2100_pci_driver = {
6409 .name = DRV_NAME,
6410 .id_table = ipw2100_pci_id_table,
6411 .probe = ipw2100_pci_init_one,
6412 .remove = __devexit_p(ipw2100_pci_remove_one),
6413 #ifdef CONFIG_PM
6414 .suspend = ipw2100_suspend,
6415 .resume = ipw2100_resume,
6416 #endif
6420 * Initialize the ipw2100 driver/module
6422 * @returns 0 if ok, < 0 errno node con error.
6424 * Note: we cannot init the /proc stuff until the PCI driver is there,
6425 * or we risk an unlikely race condition on someone accessing
6426 * uninitialized data in the PCI dev struct through /proc.
6428 static int __init ipw2100_init(void)
6430 int ret;
6432 printk(KERN_INFO DRV_NAME ": %s, %s\n", DRV_DESCRIPTION, DRV_VERSION);
6433 printk(KERN_INFO DRV_NAME ": %s\n", DRV_COPYRIGHT);
6435 ret = pci_module_init(&ipw2100_pci_driver);
6437 #ifdef CONFIG_IPW2100_DEBUG
6438 ipw2100_debug_level = debug;
6439 driver_create_file(&ipw2100_pci_driver.driver,
6440 &driver_attr_debug_level);
6441 #endif
6443 return ret;
6447 * Cleanup ipw2100 driver registration
6449 static void __exit ipw2100_exit(void)
6451 /* FIXME: IPG: check that we have no instances of the devices open */
6452 #ifdef CONFIG_IPW2100_DEBUG
6453 driver_remove_file(&ipw2100_pci_driver.driver,
6454 &driver_attr_debug_level);
6455 #endif
6456 pci_unregister_driver(&ipw2100_pci_driver);
6459 module_init(ipw2100_init);
6460 module_exit(ipw2100_exit);
6462 #define WEXT_USECHANNELS 1
6464 static const long ipw2100_frequencies[] = {
6465 2412, 2417, 2422, 2427,
6466 2432, 2437, 2442, 2447,
6467 2452, 2457, 2462, 2467,
6468 2472, 2484
6471 #define FREQ_COUNT (sizeof(ipw2100_frequencies) / \
6472 sizeof(ipw2100_frequencies[0]))
6474 static const long ipw2100_rates_11b[] = {
6475 1000000,
6476 2000000,
6477 5500000,
6478 11000000
6481 #define RATE_COUNT (sizeof(ipw2100_rates_11b) / sizeof(ipw2100_rates_11b[0]))
6483 static int ipw2100_wx_get_name(struct net_device *dev,
6484 struct iw_request_info *info,
6485 union iwreq_data *wrqu, char *extra)
6488 * This can be called at any time. No action lock required
6491 struct ipw2100_priv *priv = ieee80211_priv(dev);
6492 if (!(priv->status & STATUS_ASSOCIATED))
6493 strcpy(wrqu->name, "unassociated");
6494 else
6495 snprintf(wrqu->name, IFNAMSIZ, "IEEE 802.11b");
6497 IPW_DEBUG_WX("Name: %s\n", wrqu->name);
6498 return 0;
6501 static int ipw2100_wx_set_freq(struct net_device *dev,
6502 struct iw_request_info *info,
6503 union iwreq_data *wrqu, char *extra)
6505 struct ipw2100_priv *priv = ieee80211_priv(dev);
6506 struct iw_freq *fwrq = &wrqu->freq;
6507 int err = 0;
6509 if (priv->ieee->iw_mode == IW_MODE_INFRA)
6510 return -EOPNOTSUPP;
6512 down(&priv->action_sem);
6513 if (!(priv->status & STATUS_INITIALIZED)) {
6514 err = -EIO;
6515 goto done;
6518 /* if setting by freq convert to channel */
6519 if (fwrq->e == 1) {
6520 if ((fwrq->m >= (int)2.412e8 && fwrq->m <= (int)2.487e8)) {
6521 int f = fwrq->m / 100000;
6522 int c = 0;
6524 while ((c < REG_MAX_CHANNEL) &&
6525 (f != ipw2100_frequencies[c]))
6526 c++;
6528 /* hack to fall through */
6529 fwrq->e = 0;
6530 fwrq->m = c + 1;
6534 if (fwrq->e > 0 || fwrq->m > 1000) {
6535 err = -EOPNOTSUPP;
6536 goto done;
6537 } else { /* Set the channel */
6538 IPW_DEBUG_WX("SET Freq/Channel -> %d \n", fwrq->m);
6539 err = ipw2100_set_channel(priv, fwrq->m, 0);
6542 done:
6543 up(&priv->action_sem);
6544 return err;
6547 static int ipw2100_wx_get_freq(struct net_device *dev,
6548 struct iw_request_info *info,
6549 union iwreq_data *wrqu, char *extra)
6552 * This can be called at any time. No action lock required
6555 struct ipw2100_priv *priv = ieee80211_priv(dev);
6557 wrqu->freq.e = 0;
6559 /* If we are associated, trying to associate, or have a statically
6560 * configured CHANNEL then return that; otherwise return ANY */
6561 if (priv->config & CFG_STATIC_CHANNEL ||
6562 priv->status & STATUS_ASSOCIATED)
6563 wrqu->freq.m = priv->channel;
6564 else
6565 wrqu->freq.m = 0;
6567 IPW_DEBUG_WX("GET Freq/Channel -> %d \n", priv->channel);
6568 return 0;
6572 static int ipw2100_wx_set_mode(struct net_device *dev,
6573 struct iw_request_info *info,
6574 union iwreq_data *wrqu, char *extra)
6576 struct ipw2100_priv *priv = ieee80211_priv(dev);
6577 int err = 0;
6579 IPW_DEBUG_WX("SET Mode -> %d \n", wrqu->mode);
6581 if (wrqu->mode == priv->ieee->iw_mode)
6582 return 0;
6584 down(&priv->action_sem);
6585 if (!(priv->status & STATUS_INITIALIZED)) {
6586 err = -EIO;
6587 goto done;
6590 switch (wrqu->mode) {
6591 #ifdef CONFIG_IPW2100_MONITOR
6592 case IW_MODE_MONITOR:
6593 err = ipw2100_switch_mode(priv, IW_MODE_MONITOR);
6594 break;
6595 #endif /* CONFIG_IPW2100_MONITOR */
6596 case IW_MODE_ADHOC:
6597 err = ipw2100_switch_mode(priv, IW_MODE_ADHOC);
6598 break;
6599 case IW_MODE_INFRA:
6600 case IW_MODE_AUTO:
6601 default:
6602 err = ipw2100_switch_mode(priv, IW_MODE_INFRA);
6603 break;
6606 done:
6607 up(&priv->action_sem);
6608 return err;
6611 static int ipw2100_wx_get_mode(struct net_device *dev,
6612 struct iw_request_info *info,
6613 union iwreq_data *wrqu, char *extra)
6616 * This can be called at any time. No action lock required
6619 struct ipw2100_priv *priv = ieee80211_priv(dev);
6621 wrqu->mode = priv->ieee->iw_mode;
6622 IPW_DEBUG_WX("GET Mode -> %d\n", wrqu->mode);
6624 return 0;
6627 #define POWER_MODES 5
6629 /* Values are in microsecond */
6630 static const s32 timeout_duration[POWER_MODES] = {
6631 350000,
6632 250000,
6633 75000,
6634 37000,
6635 25000,
6638 static const s32 period_duration[POWER_MODES] = {
6639 400000,
6640 700000,
6641 1000000,
6642 1000000,
6643 1000000
6646 static int ipw2100_wx_get_range(struct net_device *dev,
6647 struct iw_request_info *info,
6648 union iwreq_data *wrqu, char *extra)
6651 * This can be called at any time. No action lock required
6654 struct ipw2100_priv *priv = ieee80211_priv(dev);
6655 struct iw_range *range = (struct iw_range *)extra;
6656 u16 val;
6657 int i, level;
6659 wrqu->data.length = sizeof(*range);
6660 memset(range, 0, sizeof(*range));
6662 /* Let's try to keep this struct in the same order as in
6663 * linux/include/wireless.h
6666 /* TODO: See what values we can set, and remove the ones we can't
6667 * set, or fill them with some default data.
6670 /* ~5 Mb/s real (802.11b) */
6671 range->throughput = 5 * 1000 * 1000;
6673 // range->sensitivity; /* signal level threshold range */
6675 range->max_qual.qual = 100;
6676 /* TODO: Find real max RSSI and stick here */
6677 range->max_qual.level = 0;
6678 range->max_qual.noise = 0;
6679 range->max_qual.updated = 7; /* Updated all three */
6681 range->avg_qual.qual = 70; /* > 8% missed beacons is 'bad' */
6682 /* TODO: Find real 'good' to 'bad' threshol value for RSSI */
6683 range->avg_qual.level = 20 + IPW2100_RSSI_TO_DBM;
6684 range->avg_qual.noise = 0;
6685 range->avg_qual.updated = 7; /* Updated all three */
6687 range->num_bitrates = RATE_COUNT;
6689 for (i = 0; i < RATE_COUNT && i < IW_MAX_BITRATES; i++) {
6690 range->bitrate[i] = ipw2100_rates_11b[i];
6693 range->min_rts = MIN_RTS_THRESHOLD;
6694 range->max_rts = MAX_RTS_THRESHOLD;
6695 range->min_frag = MIN_FRAG_THRESHOLD;
6696 range->max_frag = MAX_FRAG_THRESHOLD;
6698 range->min_pmp = period_duration[0]; /* Minimal PM period */
6699 range->max_pmp = period_duration[POWER_MODES - 1]; /* Maximal PM period */
6700 range->min_pmt = timeout_duration[POWER_MODES - 1]; /* Minimal PM timeout */
6701 range->max_pmt = timeout_duration[0]; /* Maximal PM timeout */
6703 /* How to decode max/min PM period */
6704 range->pmp_flags = IW_POWER_PERIOD;
6705 /* How to decode max/min PM period */
6706 range->pmt_flags = IW_POWER_TIMEOUT;
6707 /* What PM options are supported */
6708 range->pm_capa = IW_POWER_TIMEOUT | IW_POWER_PERIOD;
6710 range->encoding_size[0] = 5;
6711 range->encoding_size[1] = 13; /* Different token sizes */
6712 range->num_encoding_sizes = 2; /* Number of entry in the list */
6713 range->max_encoding_tokens = WEP_KEYS; /* Max number of tokens */
6714 // range->encoding_login_index; /* token index for login token */
6716 if (priv->ieee->iw_mode == IW_MODE_ADHOC) {
6717 range->txpower_capa = IW_TXPOW_DBM;
6718 range->num_txpower = IW_MAX_TXPOWER;
6719 for (i = 0, level = (IPW_TX_POWER_MAX_DBM * 16);
6720 i < IW_MAX_TXPOWER;
6721 i++, level -=
6722 ((IPW_TX_POWER_MAX_DBM -
6723 IPW_TX_POWER_MIN_DBM) * 16) / (IW_MAX_TXPOWER - 1))
6724 range->txpower[i] = level / 16;
6725 } else {
6726 range->txpower_capa = 0;
6727 range->num_txpower = 0;
6730 /* Set the Wireless Extension versions */
6731 range->we_version_compiled = WIRELESS_EXT;
6732 range->we_version_source = 18;
6734 // range->retry_capa; /* What retry options are supported */
6735 // range->retry_flags; /* How to decode max/min retry limit */
6736 // range->r_time_flags; /* How to decode max/min retry life */
6737 // range->min_retry; /* Minimal number of retries */
6738 // range->max_retry; /* Maximal number of retries */
6739 // range->min_r_time; /* Minimal retry lifetime */
6740 // range->max_r_time; /* Maximal retry lifetime */
6742 range->num_channels = FREQ_COUNT;
6744 val = 0;
6745 for (i = 0; i < FREQ_COUNT; i++) {
6746 // TODO: Include only legal frequencies for some countries
6747 // if (local->channel_mask & (1 << i)) {
6748 range->freq[val].i = i + 1;
6749 range->freq[val].m = ipw2100_frequencies[i] * 100000;
6750 range->freq[val].e = 1;
6751 val++;
6752 // }
6753 if (val == IW_MAX_FREQUENCIES)
6754 break;
6756 range->num_frequency = val;
6758 /* Event capability (kernel + driver) */
6759 range->event_capa[0] = (IW_EVENT_CAPA_K_0 |
6760 IW_EVENT_CAPA_MASK(SIOCGIWAP));
6761 range->event_capa[1] = IW_EVENT_CAPA_K_1;
6763 range->enc_capa = IW_ENC_CAPA_WPA | IW_ENC_CAPA_WPA2 |
6764 IW_ENC_CAPA_CIPHER_TKIP | IW_ENC_CAPA_CIPHER_CCMP;
6766 IPW_DEBUG_WX("GET Range\n");
6768 return 0;
6771 static int ipw2100_wx_set_wap(struct net_device *dev,
6772 struct iw_request_info *info,
6773 union iwreq_data *wrqu, char *extra)
6775 struct ipw2100_priv *priv = ieee80211_priv(dev);
6776 int err = 0;
6778 static const unsigned char any[] = {
6779 0xff, 0xff, 0xff, 0xff, 0xff, 0xff
6781 static const unsigned char off[] = {
6782 0x00, 0x00, 0x00, 0x00, 0x00, 0x00
6785 // sanity checks
6786 if (wrqu->ap_addr.sa_family != ARPHRD_ETHER)
6787 return -EINVAL;
6789 down(&priv->action_sem);
6790 if (!(priv->status & STATUS_INITIALIZED)) {
6791 err = -EIO;
6792 goto done;
6795 if (!memcmp(any, wrqu->ap_addr.sa_data, ETH_ALEN) ||
6796 !memcmp(off, wrqu->ap_addr.sa_data, ETH_ALEN)) {
6797 /* we disable mandatory BSSID association */
6798 IPW_DEBUG_WX("exit - disable mandatory BSSID\n");
6799 priv->config &= ~CFG_STATIC_BSSID;
6800 err = ipw2100_set_mandatory_bssid(priv, NULL, 0);
6801 goto done;
6804 priv->config |= CFG_STATIC_BSSID;
6805 memcpy(priv->mandatory_bssid_mac, wrqu->ap_addr.sa_data, ETH_ALEN);
6807 err = ipw2100_set_mandatory_bssid(priv, wrqu->ap_addr.sa_data, 0);
6809 IPW_DEBUG_WX("SET BSSID -> %02X:%02X:%02X:%02X:%02X:%02X\n",
6810 wrqu->ap_addr.sa_data[0] & 0xff,
6811 wrqu->ap_addr.sa_data[1] & 0xff,
6812 wrqu->ap_addr.sa_data[2] & 0xff,
6813 wrqu->ap_addr.sa_data[3] & 0xff,
6814 wrqu->ap_addr.sa_data[4] & 0xff,
6815 wrqu->ap_addr.sa_data[5] & 0xff);
6817 done:
6818 up(&priv->action_sem);
6819 return err;
6822 static int ipw2100_wx_get_wap(struct net_device *dev,
6823 struct iw_request_info *info,
6824 union iwreq_data *wrqu, char *extra)
6827 * This can be called at any time. No action lock required
6830 struct ipw2100_priv *priv = ieee80211_priv(dev);
6832 /* If we are associated, trying to associate, or have a statically
6833 * configured BSSID then return that; otherwise return ANY */
6834 if (priv->config & CFG_STATIC_BSSID || priv->status & STATUS_ASSOCIATED) {
6835 wrqu->ap_addr.sa_family = ARPHRD_ETHER;
6836 memcpy(wrqu->ap_addr.sa_data, priv->bssid, ETH_ALEN);
6837 } else
6838 memset(wrqu->ap_addr.sa_data, 0, ETH_ALEN);
6840 IPW_DEBUG_WX("Getting WAP BSSID: " MAC_FMT "\n",
6841 MAC_ARG(wrqu->ap_addr.sa_data));
6842 return 0;
6845 static int ipw2100_wx_set_essid(struct net_device *dev,
6846 struct iw_request_info *info,
6847 union iwreq_data *wrqu, char *extra)
6849 struct ipw2100_priv *priv = ieee80211_priv(dev);
6850 char *essid = ""; /* ANY */
6851 int length = 0;
6852 int err = 0;
6854 down(&priv->action_sem);
6855 if (!(priv->status & STATUS_INITIALIZED)) {
6856 err = -EIO;
6857 goto done;
6860 if (wrqu->essid.flags && wrqu->essid.length) {
6861 length = wrqu->essid.length - 1;
6862 essid = extra;
6865 if (length == 0) {
6866 IPW_DEBUG_WX("Setting ESSID to ANY\n");
6867 priv->config &= ~CFG_STATIC_ESSID;
6868 err = ipw2100_set_essid(priv, NULL, 0, 0);
6869 goto done;
6872 length = min(length, IW_ESSID_MAX_SIZE);
6874 priv->config |= CFG_STATIC_ESSID;
6876 if (priv->essid_len == length && !memcmp(priv->essid, extra, length)) {
6877 IPW_DEBUG_WX("ESSID set to current ESSID.\n");
6878 err = 0;
6879 goto done;
6882 IPW_DEBUG_WX("Setting ESSID: '%s' (%d)\n", escape_essid(essid, length),
6883 length);
6885 priv->essid_len = length;
6886 memcpy(priv->essid, essid, priv->essid_len);
6888 err = ipw2100_set_essid(priv, essid, length, 0);
6890 done:
6891 up(&priv->action_sem);
6892 return err;
6895 static int ipw2100_wx_get_essid(struct net_device *dev,
6896 struct iw_request_info *info,
6897 union iwreq_data *wrqu, char *extra)
6900 * This can be called at any time. No action lock required
6903 struct ipw2100_priv *priv = ieee80211_priv(dev);
6905 /* If we are associated, trying to associate, or have a statically
6906 * configured ESSID then return that; otherwise return ANY */
6907 if (priv->config & CFG_STATIC_ESSID || priv->status & STATUS_ASSOCIATED) {
6908 IPW_DEBUG_WX("Getting essid: '%s'\n",
6909 escape_essid(priv->essid, priv->essid_len));
6910 memcpy(extra, priv->essid, priv->essid_len);
6911 wrqu->essid.length = priv->essid_len;
6912 wrqu->essid.flags = 1; /* active */
6913 } else {
6914 IPW_DEBUG_WX("Getting essid: ANY\n");
6915 wrqu->essid.length = 0;
6916 wrqu->essid.flags = 0; /* active */
6919 return 0;
6922 static int ipw2100_wx_set_nick(struct net_device *dev,
6923 struct iw_request_info *info,
6924 union iwreq_data *wrqu, char *extra)
6927 * This can be called at any time. No action lock required
6930 struct ipw2100_priv *priv = ieee80211_priv(dev);
6932 if (wrqu->data.length > IW_ESSID_MAX_SIZE)
6933 return -E2BIG;
6935 wrqu->data.length = min((size_t) wrqu->data.length, sizeof(priv->nick));
6936 memset(priv->nick, 0, sizeof(priv->nick));
6937 memcpy(priv->nick, extra, wrqu->data.length);
6939 IPW_DEBUG_WX("SET Nickname -> %s \n", priv->nick);
6941 return 0;
6944 static int ipw2100_wx_get_nick(struct net_device *dev,
6945 struct iw_request_info *info,
6946 union iwreq_data *wrqu, char *extra)
6949 * This can be called at any time. No action lock required
6952 struct ipw2100_priv *priv = ieee80211_priv(dev);
6954 wrqu->data.length = strlen(priv->nick) + 1;
6955 memcpy(extra, priv->nick, wrqu->data.length);
6956 wrqu->data.flags = 1; /* active */
6958 IPW_DEBUG_WX("GET Nickname -> %s \n", extra);
6960 return 0;
6963 static int ipw2100_wx_set_rate(struct net_device *dev,
6964 struct iw_request_info *info,
6965 union iwreq_data *wrqu, char *extra)
6967 struct ipw2100_priv *priv = ieee80211_priv(dev);
6968 u32 target_rate = wrqu->bitrate.value;
6969 u32 rate;
6970 int err = 0;
6972 down(&priv->action_sem);
6973 if (!(priv->status & STATUS_INITIALIZED)) {
6974 err = -EIO;
6975 goto done;
6978 rate = 0;
6980 if (target_rate == 1000000 ||
6981 (!wrqu->bitrate.fixed && target_rate > 1000000))
6982 rate |= TX_RATE_1_MBIT;
6983 if (target_rate == 2000000 ||
6984 (!wrqu->bitrate.fixed && target_rate > 2000000))
6985 rate |= TX_RATE_2_MBIT;
6986 if (target_rate == 5500000 ||
6987 (!wrqu->bitrate.fixed && target_rate > 5500000))
6988 rate |= TX_RATE_5_5_MBIT;
6989 if (target_rate == 11000000 ||
6990 (!wrqu->bitrate.fixed && target_rate > 11000000))
6991 rate |= TX_RATE_11_MBIT;
6992 if (rate == 0)
6993 rate = DEFAULT_TX_RATES;
6995 err = ipw2100_set_tx_rates(priv, rate, 0);
6997 IPW_DEBUG_WX("SET Rate -> %04X \n", rate);
6998 done:
6999 up(&priv->action_sem);
7000 return err;
7003 static int ipw2100_wx_get_rate(struct net_device *dev,
7004 struct iw_request_info *info,
7005 union iwreq_data *wrqu, char *extra)
7007 struct ipw2100_priv *priv = ieee80211_priv(dev);
7008 int val;
7009 int len = sizeof(val);
7010 int err = 0;
7012 if (!(priv->status & STATUS_ENABLED) ||
7013 priv->status & STATUS_RF_KILL_MASK ||
7014 !(priv->status & STATUS_ASSOCIATED)) {
7015 wrqu->bitrate.value = 0;
7016 return 0;
7019 down(&priv->action_sem);
7020 if (!(priv->status & STATUS_INITIALIZED)) {
7021 err = -EIO;
7022 goto done;
7025 err = ipw2100_get_ordinal(priv, IPW_ORD_CURRENT_TX_RATE, &val, &len);
7026 if (err) {
7027 IPW_DEBUG_WX("failed querying ordinals.\n");
7028 return err;
7031 switch (val & TX_RATE_MASK) {
7032 case TX_RATE_1_MBIT:
7033 wrqu->bitrate.value = 1000000;
7034 break;
7035 case TX_RATE_2_MBIT:
7036 wrqu->bitrate.value = 2000000;
7037 break;
7038 case TX_RATE_5_5_MBIT:
7039 wrqu->bitrate.value = 5500000;
7040 break;
7041 case TX_RATE_11_MBIT:
7042 wrqu->bitrate.value = 11000000;
7043 break;
7044 default:
7045 wrqu->bitrate.value = 0;
7048 IPW_DEBUG_WX("GET Rate -> %d \n", wrqu->bitrate.value);
7050 done:
7051 up(&priv->action_sem);
7052 return err;
7055 static int ipw2100_wx_set_rts(struct net_device *dev,
7056 struct iw_request_info *info,
7057 union iwreq_data *wrqu, char *extra)
7059 struct ipw2100_priv *priv = ieee80211_priv(dev);
7060 int value, err;
7062 /* Auto RTS not yet supported */
7063 if (wrqu->rts.fixed == 0)
7064 return -EINVAL;
7066 down(&priv->action_sem);
7067 if (!(priv->status & STATUS_INITIALIZED)) {
7068 err = -EIO;
7069 goto done;
7072 if (wrqu->rts.disabled)
7073 value = priv->rts_threshold | RTS_DISABLED;
7074 else {
7075 if (wrqu->rts.value < 1 || wrqu->rts.value > 2304) {
7076 err = -EINVAL;
7077 goto done;
7079 value = wrqu->rts.value;
7082 err = ipw2100_set_rts_threshold(priv, value);
7084 IPW_DEBUG_WX("SET RTS Threshold -> 0x%08X \n", value);
7085 done:
7086 up(&priv->action_sem);
7087 return err;
7090 static int ipw2100_wx_get_rts(struct net_device *dev,
7091 struct iw_request_info *info,
7092 union iwreq_data *wrqu, char *extra)
7095 * This can be called at any time. No action lock required
7098 struct ipw2100_priv *priv = ieee80211_priv(dev);
7100 wrqu->rts.value = priv->rts_threshold & ~RTS_DISABLED;
7101 wrqu->rts.fixed = 1; /* no auto select */
7103 /* If RTS is set to the default value, then it is disabled */
7104 wrqu->rts.disabled = (priv->rts_threshold & RTS_DISABLED) ? 1 : 0;
7106 IPW_DEBUG_WX("GET RTS Threshold -> 0x%08X \n", wrqu->rts.value);
7108 return 0;
7111 static int ipw2100_wx_set_txpow(struct net_device *dev,
7112 struct iw_request_info *info,
7113 union iwreq_data *wrqu, char *extra)
7115 struct ipw2100_priv *priv = ieee80211_priv(dev);
7116 int err = 0, value;
7118 if (priv->ieee->iw_mode != IW_MODE_ADHOC)
7119 return -EINVAL;
7121 if (wrqu->txpower.disabled == 1 || wrqu->txpower.fixed == 0)
7122 value = IPW_TX_POWER_DEFAULT;
7123 else {
7124 if (wrqu->txpower.value < IPW_TX_POWER_MIN_DBM ||
7125 wrqu->txpower.value > IPW_TX_POWER_MAX_DBM)
7126 return -EINVAL;
7128 value = wrqu->txpower.value;
7131 down(&priv->action_sem);
7132 if (!(priv->status & STATUS_INITIALIZED)) {
7133 err = -EIO;
7134 goto done;
7137 err = ipw2100_set_tx_power(priv, value);
7139 IPW_DEBUG_WX("SET TX Power -> %d \n", value);
7141 done:
7142 up(&priv->action_sem);
7143 return err;
7146 static int ipw2100_wx_get_txpow(struct net_device *dev,
7147 struct iw_request_info *info,
7148 union iwreq_data *wrqu, char *extra)
7151 * This can be called at any time. No action lock required
7154 struct ipw2100_priv *priv = ieee80211_priv(dev);
7156 if (priv->ieee->iw_mode != IW_MODE_ADHOC) {
7157 wrqu->power.disabled = 1;
7158 return 0;
7161 if (priv->tx_power == IPW_TX_POWER_DEFAULT) {
7162 wrqu->power.fixed = 0;
7163 wrqu->power.value = IPW_TX_POWER_MAX_DBM;
7164 wrqu->power.disabled = 1;
7165 } else {
7166 wrqu->power.disabled = 0;
7167 wrqu->power.fixed = 1;
7168 wrqu->power.value = priv->tx_power;
7171 wrqu->power.flags = IW_TXPOW_DBM;
7173 IPW_DEBUG_WX("GET TX Power -> %d \n", wrqu->power.value);
7175 return 0;
7178 static int ipw2100_wx_set_frag(struct net_device *dev,
7179 struct iw_request_info *info,
7180 union iwreq_data *wrqu, char *extra)
7183 * This can be called at any time. No action lock required
7186 struct ipw2100_priv *priv = ieee80211_priv(dev);
7188 if (!wrqu->frag.fixed)
7189 return -EINVAL;
7191 if (wrqu->frag.disabled) {
7192 priv->frag_threshold |= FRAG_DISABLED;
7193 priv->ieee->fts = DEFAULT_FTS;
7194 } else {
7195 if (wrqu->frag.value < MIN_FRAG_THRESHOLD ||
7196 wrqu->frag.value > MAX_FRAG_THRESHOLD)
7197 return -EINVAL;
7199 priv->ieee->fts = wrqu->frag.value & ~0x1;
7200 priv->frag_threshold = priv->ieee->fts;
7203 IPW_DEBUG_WX("SET Frag Threshold -> %d \n", priv->ieee->fts);
7205 return 0;
7208 static int ipw2100_wx_get_frag(struct net_device *dev,
7209 struct iw_request_info *info,
7210 union iwreq_data *wrqu, char *extra)
7213 * This can be called at any time. No action lock required
7216 struct ipw2100_priv *priv = ieee80211_priv(dev);
7217 wrqu->frag.value = priv->frag_threshold & ~FRAG_DISABLED;
7218 wrqu->frag.fixed = 0; /* no auto select */
7219 wrqu->frag.disabled = (priv->frag_threshold & FRAG_DISABLED) ? 1 : 0;
7221 IPW_DEBUG_WX("GET Frag Threshold -> %d \n", wrqu->frag.value);
7223 return 0;
7226 static int ipw2100_wx_set_retry(struct net_device *dev,
7227 struct iw_request_info *info,
7228 union iwreq_data *wrqu, char *extra)
7230 struct ipw2100_priv *priv = ieee80211_priv(dev);
7231 int err = 0;
7233 if (wrqu->retry.flags & IW_RETRY_LIFETIME || wrqu->retry.disabled)
7234 return -EINVAL;
7236 if (!(wrqu->retry.flags & IW_RETRY_LIMIT))
7237 return 0;
7239 down(&priv->action_sem);
7240 if (!(priv->status & STATUS_INITIALIZED)) {
7241 err = -EIO;
7242 goto done;
7245 if (wrqu->retry.flags & IW_RETRY_MIN) {
7246 err = ipw2100_set_short_retry(priv, wrqu->retry.value);
7247 IPW_DEBUG_WX("SET Short Retry Limit -> %d \n",
7248 wrqu->retry.value);
7249 goto done;
7252 if (wrqu->retry.flags & IW_RETRY_MAX) {
7253 err = ipw2100_set_long_retry(priv, wrqu->retry.value);
7254 IPW_DEBUG_WX("SET Long Retry Limit -> %d \n",
7255 wrqu->retry.value);
7256 goto done;
7259 err = ipw2100_set_short_retry(priv, wrqu->retry.value);
7260 if (!err)
7261 err = ipw2100_set_long_retry(priv, wrqu->retry.value);
7263 IPW_DEBUG_WX("SET Both Retry Limits -> %d \n", wrqu->retry.value);
7265 done:
7266 up(&priv->action_sem);
7267 return err;
7270 static int ipw2100_wx_get_retry(struct net_device *dev,
7271 struct iw_request_info *info,
7272 union iwreq_data *wrqu, char *extra)
7275 * This can be called at any time. No action lock required
7278 struct ipw2100_priv *priv = ieee80211_priv(dev);
7280 wrqu->retry.disabled = 0; /* can't be disabled */
7282 if ((wrqu->retry.flags & IW_RETRY_TYPE) == IW_RETRY_LIFETIME)
7283 return -EINVAL;
7285 if (wrqu->retry.flags & IW_RETRY_MAX) {
7286 wrqu->retry.flags = IW_RETRY_LIMIT | IW_RETRY_MAX;
7287 wrqu->retry.value = priv->long_retry_limit;
7288 } else {
7289 wrqu->retry.flags =
7290 (priv->short_retry_limit !=
7291 priv->long_retry_limit) ?
7292 IW_RETRY_LIMIT | IW_RETRY_MIN : IW_RETRY_LIMIT;
7294 wrqu->retry.value = priv->short_retry_limit;
7297 IPW_DEBUG_WX("GET Retry -> %d \n", wrqu->retry.value);
7299 return 0;
7302 static int ipw2100_wx_set_scan(struct net_device *dev,
7303 struct iw_request_info *info,
7304 union iwreq_data *wrqu, char *extra)
7306 struct ipw2100_priv *priv = ieee80211_priv(dev);
7307 int err = 0;
7309 down(&priv->action_sem);
7310 if (!(priv->status & STATUS_INITIALIZED)) {
7311 err = -EIO;
7312 goto done;
7315 IPW_DEBUG_WX("Initiating scan...\n");
7316 if (ipw2100_set_scan_options(priv) || ipw2100_start_scan(priv)) {
7317 IPW_DEBUG_WX("Start scan failed.\n");
7319 /* TODO: Mark a scan as pending so when hardware initialized
7320 * a scan starts */
7323 done:
7324 up(&priv->action_sem);
7325 return err;
7328 static int ipw2100_wx_get_scan(struct net_device *dev,
7329 struct iw_request_info *info,
7330 union iwreq_data *wrqu, char *extra)
7333 * This can be called at any time. No action lock required
7336 struct ipw2100_priv *priv = ieee80211_priv(dev);
7337 return ieee80211_wx_get_scan(priv->ieee, info, wrqu, extra);
7341 * Implementation based on code in hostap-driver v0.1.3 hostap_ioctl.c
7343 static int ipw2100_wx_set_encode(struct net_device *dev,
7344 struct iw_request_info *info,
7345 union iwreq_data *wrqu, char *key)
7348 * No check of STATUS_INITIALIZED required
7351 struct ipw2100_priv *priv = ieee80211_priv(dev);
7352 return ieee80211_wx_set_encode(priv->ieee, info, wrqu, key);
7355 static int ipw2100_wx_get_encode(struct net_device *dev,
7356 struct iw_request_info *info,
7357 union iwreq_data *wrqu, char *key)
7360 * This can be called at any time. No action lock required
7363 struct ipw2100_priv *priv = ieee80211_priv(dev);
7364 return ieee80211_wx_get_encode(priv->ieee, info, wrqu, key);
7367 static int ipw2100_wx_set_power(struct net_device *dev,
7368 struct iw_request_info *info,
7369 union iwreq_data *wrqu, char *extra)
7371 struct ipw2100_priv *priv = ieee80211_priv(dev);
7372 int err = 0;
7374 down(&priv->action_sem);
7375 if (!(priv->status & STATUS_INITIALIZED)) {
7376 err = -EIO;
7377 goto done;
7380 if (wrqu->power.disabled) {
7381 priv->power_mode = IPW_POWER_LEVEL(priv->power_mode);
7382 err = ipw2100_set_power_mode(priv, IPW_POWER_MODE_CAM);
7383 IPW_DEBUG_WX("SET Power Management Mode -> off\n");
7384 goto done;
7387 switch (wrqu->power.flags & IW_POWER_MODE) {
7388 case IW_POWER_ON: /* If not specified */
7389 case IW_POWER_MODE: /* If set all mask */
7390 case IW_POWER_ALL_R: /* If explicitely state all */
7391 break;
7392 default: /* Otherwise we don't support it */
7393 IPW_DEBUG_WX("SET PM Mode: %X not supported.\n",
7394 wrqu->power.flags);
7395 err = -EOPNOTSUPP;
7396 goto done;
7399 /* If the user hasn't specified a power management mode yet, default
7400 * to BATTERY */
7401 priv->power_mode = IPW_POWER_ENABLED | priv->power_mode;
7402 err = ipw2100_set_power_mode(priv, IPW_POWER_LEVEL(priv->power_mode));
7404 IPW_DEBUG_WX("SET Power Management Mode -> 0x%02X\n", priv->power_mode);
7406 done:
7407 up(&priv->action_sem);
7408 return err;
7412 static int ipw2100_wx_get_power(struct net_device *dev,
7413 struct iw_request_info *info,
7414 union iwreq_data *wrqu, char *extra)
7417 * This can be called at any time. No action lock required
7420 struct ipw2100_priv *priv = ieee80211_priv(dev);
7422 if (!(priv->power_mode & IPW_POWER_ENABLED))
7423 wrqu->power.disabled = 1;
7424 else {
7425 wrqu->power.disabled = 0;
7426 wrqu->power.flags = 0;
7429 IPW_DEBUG_WX("GET Power Management Mode -> %02X\n", priv->power_mode);
7431 return 0;
7435 * WE-18 WPA support
7438 /* SIOCSIWGENIE */
7439 static int ipw2100_wx_set_genie(struct net_device *dev,
7440 struct iw_request_info *info,
7441 union iwreq_data *wrqu, char *extra)
7444 struct ipw2100_priv *priv = ieee80211_priv(dev);
7445 struct ieee80211_device *ieee = priv->ieee;
7446 u8 *buf;
7448 if (!ieee->wpa_enabled)
7449 return -EOPNOTSUPP;
7451 if (wrqu->data.length > MAX_WPA_IE_LEN ||
7452 (wrqu->data.length && extra == NULL))
7453 return -EINVAL;
7455 if (wrqu->data.length) {
7456 buf = kmalloc(wrqu->data.length, GFP_KERNEL);
7457 if (buf == NULL)
7458 return -ENOMEM;
7460 memcpy(buf, extra, wrqu->data.length);
7461 kfree(ieee->wpa_ie);
7462 ieee->wpa_ie = buf;
7463 ieee->wpa_ie_len = wrqu->data.length;
7464 } else {
7465 kfree(ieee->wpa_ie);
7466 ieee->wpa_ie = NULL;
7467 ieee->wpa_ie_len = 0;
7470 ipw2100_wpa_assoc_frame(priv, ieee->wpa_ie, ieee->wpa_ie_len);
7472 return 0;
7475 /* SIOCGIWGENIE */
7476 static int ipw2100_wx_get_genie(struct net_device *dev,
7477 struct iw_request_info *info,
7478 union iwreq_data *wrqu, char *extra)
7480 struct ipw2100_priv *priv = ieee80211_priv(dev);
7481 struct ieee80211_device *ieee = priv->ieee;
7483 if (ieee->wpa_ie_len == 0 || ieee->wpa_ie == NULL) {
7484 wrqu->data.length = 0;
7485 return 0;
7488 if (wrqu->data.length < ieee->wpa_ie_len)
7489 return -E2BIG;
7491 wrqu->data.length = ieee->wpa_ie_len;
7492 memcpy(extra, ieee->wpa_ie, ieee->wpa_ie_len);
7494 return 0;
7497 /* SIOCSIWAUTH */
7498 static int ipw2100_wx_set_auth(struct net_device *dev,
7499 struct iw_request_info *info,
7500 union iwreq_data *wrqu, char *extra)
7502 struct ipw2100_priv *priv = ieee80211_priv(dev);
7503 struct ieee80211_device *ieee = priv->ieee;
7504 struct iw_param *param = &wrqu->param;
7505 struct ieee80211_crypt_data *crypt;
7506 unsigned long flags;
7507 int ret = 0;
7509 switch (param->flags & IW_AUTH_INDEX) {
7510 case IW_AUTH_WPA_VERSION:
7511 case IW_AUTH_CIPHER_PAIRWISE:
7512 case IW_AUTH_CIPHER_GROUP:
7513 case IW_AUTH_KEY_MGMT:
7515 * ipw2200 does not use these parameters
7517 break;
7519 case IW_AUTH_TKIP_COUNTERMEASURES:
7520 crypt = priv->ieee->crypt[priv->ieee->tx_keyidx];
7521 if (!crypt || !crypt->ops->set_flags || !crypt->ops->get_flags)
7522 break;
7524 flags = crypt->ops->get_flags(crypt->priv);
7526 if (param->value)
7527 flags |= IEEE80211_CRYPTO_TKIP_COUNTERMEASURES;
7528 else
7529 flags &= ~IEEE80211_CRYPTO_TKIP_COUNTERMEASURES;
7531 crypt->ops->set_flags(flags, crypt->priv);
7533 break;
7535 case IW_AUTH_DROP_UNENCRYPTED:{
7536 /* HACK:
7538 * wpa_supplicant calls set_wpa_enabled when the driver
7539 * is loaded and unloaded, regardless of if WPA is being
7540 * used. No other calls are made which can be used to
7541 * determine if encryption will be used or not prior to
7542 * association being expected. If encryption is not being
7543 * used, drop_unencrypted is set to false, else true -- we
7544 * can use this to determine if the CAP_PRIVACY_ON bit should
7545 * be set.
7547 struct ieee80211_security sec = {
7548 .flags = SEC_ENABLED,
7549 .enabled = param->value,
7551 priv->ieee->drop_unencrypted = param->value;
7552 /* We only change SEC_LEVEL for open mode. Others
7553 * are set by ipw_wpa_set_encryption.
7555 if (!param->value) {
7556 sec.flags |= SEC_LEVEL;
7557 sec.level = SEC_LEVEL_0;
7558 } else {
7559 sec.flags |= SEC_LEVEL;
7560 sec.level = SEC_LEVEL_1;
7562 if (priv->ieee->set_security)
7563 priv->ieee->set_security(priv->ieee->dev, &sec);
7564 break;
7567 case IW_AUTH_80211_AUTH_ALG:
7568 ret = ipw2100_wpa_set_auth_algs(priv, param->value);
7569 break;
7571 case IW_AUTH_WPA_ENABLED:
7572 ret = ipw2100_wpa_enable(priv, param->value);
7573 break;
7575 case IW_AUTH_RX_UNENCRYPTED_EAPOL:
7576 ieee->ieee802_1x = param->value;
7577 break;
7579 //case IW_AUTH_ROAMING_CONTROL:
7580 case IW_AUTH_PRIVACY_INVOKED:
7581 ieee->privacy_invoked = param->value;
7582 break;
7584 default:
7585 return -EOPNOTSUPP;
7587 return ret;
7590 /* SIOCGIWAUTH */
7591 static int ipw2100_wx_get_auth(struct net_device *dev,
7592 struct iw_request_info *info,
7593 union iwreq_data *wrqu, char *extra)
7595 struct ipw2100_priv *priv = ieee80211_priv(dev);
7596 struct ieee80211_device *ieee = priv->ieee;
7597 struct ieee80211_crypt_data *crypt;
7598 struct iw_param *param = &wrqu->param;
7599 int ret = 0;
7601 switch (param->flags & IW_AUTH_INDEX) {
7602 case IW_AUTH_WPA_VERSION:
7603 case IW_AUTH_CIPHER_PAIRWISE:
7604 case IW_AUTH_CIPHER_GROUP:
7605 case IW_AUTH_KEY_MGMT:
7607 * wpa_supplicant will control these internally
7609 ret = -EOPNOTSUPP;
7610 break;
7612 case IW_AUTH_TKIP_COUNTERMEASURES:
7613 crypt = priv->ieee->crypt[priv->ieee->tx_keyidx];
7614 if (!crypt || !crypt->ops->get_flags) {
7615 IPW_DEBUG_WARNING("Can't get TKIP countermeasures: "
7616 "crypt not set!\n");
7617 break;
7620 param->value = (crypt->ops->get_flags(crypt->priv) &
7621 IEEE80211_CRYPTO_TKIP_COUNTERMEASURES) ? 1 : 0;
7623 break;
7625 case IW_AUTH_DROP_UNENCRYPTED:
7626 param->value = ieee->drop_unencrypted;
7627 break;
7629 case IW_AUTH_80211_AUTH_ALG:
7630 param->value = priv->ieee->sec.auth_mode;
7631 break;
7633 case IW_AUTH_WPA_ENABLED:
7634 param->value = ieee->wpa_enabled;
7635 break;
7637 case IW_AUTH_RX_UNENCRYPTED_EAPOL:
7638 param->value = ieee->ieee802_1x;
7639 break;
7641 case IW_AUTH_ROAMING_CONTROL:
7642 case IW_AUTH_PRIVACY_INVOKED:
7643 param->value = ieee->privacy_invoked;
7644 break;
7646 default:
7647 return -EOPNOTSUPP;
7649 return 0;
7652 /* SIOCSIWENCODEEXT */
7653 static int ipw2100_wx_set_encodeext(struct net_device *dev,
7654 struct iw_request_info *info,
7655 union iwreq_data *wrqu, char *extra)
7657 struct ipw2100_priv *priv = ieee80211_priv(dev);
7658 return ieee80211_wx_set_encodeext(priv->ieee, info, wrqu, extra);
7661 /* SIOCGIWENCODEEXT */
7662 static int ipw2100_wx_get_encodeext(struct net_device *dev,
7663 struct iw_request_info *info,
7664 union iwreq_data *wrqu, char *extra)
7666 struct ipw2100_priv *priv = ieee80211_priv(dev);
7667 return ieee80211_wx_get_encodeext(priv->ieee, info, wrqu, extra);
7670 /* SIOCSIWMLME */
7671 static int ipw2100_wx_set_mlme(struct net_device *dev,
7672 struct iw_request_info *info,
7673 union iwreq_data *wrqu, char *extra)
7675 struct ipw2100_priv *priv = ieee80211_priv(dev);
7676 struct iw_mlme *mlme = (struct iw_mlme *)extra;
7677 u16 reason;
7679 reason = cpu_to_le16(mlme->reason_code);
7681 switch (mlme->cmd) {
7682 case IW_MLME_DEAUTH:
7683 // silently ignore
7684 break;
7686 case IW_MLME_DISASSOC:
7687 ipw2100_disassociate_bssid(priv);
7688 break;
7690 default:
7691 return -EOPNOTSUPP;
7693 return 0;
7698 * IWPRIV handlers
7701 #ifdef CONFIG_IPW2100_MONITOR
7702 static int ipw2100_wx_set_promisc(struct net_device *dev,
7703 struct iw_request_info *info,
7704 union iwreq_data *wrqu, char *extra)
7706 struct ipw2100_priv *priv = ieee80211_priv(dev);
7707 int *parms = (int *)extra;
7708 int enable = (parms[0] > 0);
7709 int err = 0;
7711 down(&priv->action_sem);
7712 if (!(priv->status & STATUS_INITIALIZED)) {
7713 err = -EIO;
7714 goto done;
7717 if (enable) {
7718 if (priv->ieee->iw_mode == IW_MODE_MONITOR) {
7719 err = ipw2100_set_channel(priv, parms[1], 0);
7720 goto done;
7722 priv->channel = parms[1];
7723 err = ipw2100_switch_mode(priv, IW_MODE_MONITOR);
7724 } else {
7725 if (priv->ieee->iw_mode == IW_MODE_MONITOR)
7726 err = ipw2100_switch_mode(priv, priv->last_mode);
7728 done:
7729 up(&priv->action_sem);
7730 return err;
7733 static int ipw2100_wx_reset(struct net_device *dev,
7734 struct iw_request_info *info,
7735 union iwreq_data *wrqu, char *extra)
7737 struct ipw2100_priv *priv = ieee80211_priv(dev);
7738 if (priv->status & STATUS_INITIALIZED)
7739 schedule_reset(priv);
7740 return 0;
7743 #endif
7745 static int ipw2100_wx_set_powermode(struct net_device *dev,
7746 struct iw_request_info *info,
7747 union iwreq_data *wrqu, char *extra)
7749 struct ipw2100_priv *priv = ieee80211_priv(dev);
7750 int err = 0, mode = *(int *)extra;
7752 down(&priv->action_sem);
7753 if (!(priv->status & STATUS_INITIALIZED)) {
7754 err = -EIO;
7755 goto done;
7758 if ((mode < 1) || (mode > POWER_MODES))
7759 mode = IPW_POWER_AUTO;
7761 if (priv->power_mode != mode)
7762 err = ipw2100_set_power_mode(priv, mode);
7763 done:
7764 up(&priv->action_sem);
7765 return err;
7768 #define MAX_POWER_STRING 80
7769 static int ipw2100_wx_get_powermode(struct net_device *dev,
7770 struct iw_request_info *info,
7771 union iwreq_data *wrqu, char *extra)
7774 * This can be called at any time. No action lock required
7777 struct ipw2100_priv *priv = ieee80211_priv(dev);
7778 int level = IPW_POWER_LEVEL(priv->power_mode);
7779 s32 timeout, period;
7781 if (!(priv->power_mode & IPW_POWER_ENABLED)) {
7782 snprintf(extra, MAX_POWER_STRING,
7783 "Power save level: %d (Off)", level);
7784 } else {
7785 switch (level) {
7786 case IPW_POWER_MODE_CAM:
7787 snprintf(extra, MAX_POWER_STRING,
7788 "Power save level: %d (None)", level);
7789 break;
7790 case IPW_POWER_AUTO:
7791 snprintf(extra, MAX_POWER_STRING,
7792 "Power save level: %d (Auto)", 0);
7793 break;
7794 default:
7795 timeout = timeout_duration[level - 1] / 1000;
7796 period = period_duration[level - 1] / 1000;
7797 snprintf(extra, MAX_POWER_STRING,
7798 "Power save level: %d "
7799 "(Timeout %dms, Period %dms)",
7800 level, timeout, period);
7804 wrqu->data.length = strlen(extra) + 1;
7806 return 0;
7809 static int ipw2100_wx_set_preamble(struct net_device *dev,
7810 struct iw_request_info *info,
7811 union iwreq_data *wrqu, char *extra)
7813 struct ipw2100_priv *priv = ieee80211_priv(dev);
7814 int err, mode = *(int *)extra;
7816 down(&priv->action_sem);
7817 if (!(priv->status & STATUS_INITIALIZED)) {
7818 err = -EIO;
7819 goto done;
7822 if (mode == 1)
7823 priv->config |= CFG_LONG_PREAMBLE;
7824 else if (mode == 0)
7825 priv->config &= ~CFG_LONG_PREAMBLE;
7826 else {
7827 err = -EINVAL;
7828 goto done;
7831 err = ipw2100_system_config(priv, 0);
7833 done:
7834 up(&priv->action_sem);
7835 return err;
7838 static int ipw2100_wx_get_preamble(struct net_device *dev,
7839 struct iw_request_info *info,
7840 union iwreq_data *wrqu, char *extra)
7843 * This can be called at any time. No action lock required
7846 struct ipw2100_priv *priv = ieee80211_priv(dev);
7848 if (priv->config & CFG_LONG_PREAMBLE)
7849 snprintf(wrqu->name, IFNAMSIZ, "long (1)");
7850 else
7851 snprintf(wrqu->name, IFNAMSIZ, "auto (0)");
7853 return 0;
7856 #ifdef CONFIG_IPW2100_MONITOR
7857 static int ipw2100_wx_set_crc_check(struct net_device *dev,
7858 struct iw_request_info *info,
7859 union iwreq_data *wrqu, char *extra)
7861 struct ipw2100_priv *priv = ieee80211_priv(dev);
7862 int err, mode = *(int *)extra;
7864 down(&priv->action_sem);
7865 if (!(priv->status & STATUS_INITIALIZED)) {
7866 err = -EIO;
7867 goto done;
7870 if (mode == 1)
7871 priv->config |= CFG_CRC_CHECK;
7872 else if (mode == 0)
7873 priv->config &= ~CFG_CRC_CHECK;
7874 else {
7875 err = -EINVAL;
7876 goto done;
7878 err = 0;
7880 done:
7881 up(&priv->action_sem);
7882 return err;
7885 static int ipw2100_wx_get_crc_check(struct net_device *dev,
7886 struct iw_request_info *info,
7887 union iwreq_data *wrqu, char *extra)
7890 * This can be called at any time. No action lock required
7893 struct ipw2100_priv *priv = ieee80211_priv(dev);
7895 if (priv->config & CFG_CRC_CHECK)
7896 snprintf(wrqu->name, IFNAMSIZ, "CRC checked (1)");
7897 else
7898 snprintf(wrqu->name, IFNAMSIZ, "CRC ignored (0)");
7900 return 0;
7902 #endif /* CONFIG_IPW2100_MONITOR */
7904 static iw_handler ipw2100_wx_handlers[] = {
7905 NULL, /* SIOCSIWCOMMIT */
7906 ipw2100_wx_get_name, /* SIOCGIWNAME */
7907 NULL, /* SIOCSIWNWID */
7908 NULL, /* SIOCGIWNWID */
7909 ipw2100_wx_set_freq, /* SIOCSIWFREQ */
7910 ipw2100_wx_get_freq, /* SIOCGIWFREQ */
7911 ipw2100_wx_set_mode, /* SIOCSIWMODE */
7912 ipw2100_wx_get_mode, /* SIOCGIWMODE */
7913 NULL, /* SIOCSIWSENS */
7914 NULL, /* SIOCGIWSENS */
7915 NULL, /* SIOCSIWRANGE */
7916 ipw2100_wx_get_range, /* SIOCGIWRANGE */
7917 NULL, /* SIOCSIWPRIV */
7918 NULL, /* SIOCGIWPRIV */
7919 NULL, /* SIOCSIWSTATS */
7920 NULL, /* SIOCGIWSTATS */
7921 NULL, /* SIOCSIWSPY */
7922 NULL, /* SIOCGIWSPY */
7923 NULL, /* SIOCGIWTHRSPY */
7924 NULL, /* SIOCWIWTHRSPY */
7925 ipw2100_wx_set_wap, /* SIOCSIWAP */
7926 ipw2100_wx_get_wap, /* SIOCGIWAP */
7927 ipw2100_wx_set_mlme, /* SIOCSIWMLME */
7928 NULL, /* SIOCGIWAPLIST -- deprecated */
7929 ipw2100_wx_set_scan, /* SIOCSIWSCAN */
7930 ipw2100_wx_get_scan, /* SIOCGIWSCAN */
7931 ipw2100_wx_set_essid, /* SIOCSIWESSID */
7932 ipw2100_wx_get_essid, /* SIOCGIWESSID */
7933 ipw2100_wx_set_nick, /* SIOCSIWNICKN */
7934 ipw2100_wx_get_nick, /* SIOCGIWNICKN */
7935 NULL, /* -- hole -- */
7936 NULL, /* -- hole -- */
7937 ipw2100_wx_set_rate, /* SIOCSIWRATE */
7938 ipw2100_wx_get_rate, /* SIOCGIWRATE */
7939 ipw2100_wx_set_rts, /* SIOCSIWRTS */
7940 ipw2100_wx_get_rts, /* SIOCGIWRTS */
7941 ipw2100_wx_set_frag, /* SIOCSIWFRAG */
7942 ipw2100_wx_get_frag, /* SIOCGIWFRAG */
7943 ipw2100_wx_set_txpow, /* SIOCSIWTXPOW */
7944 ipw2100_wx_get_txpow, /* SIOCGIWTXPOW */
7945 ipw2100_wx_set_retry, /* SIOCSIWRETRY */
7946 ipw2100_wx_get_retry, /* SIOCGIWRETRY */
7947 ipw2100_wx_set_encode, /* SIOCSIWENCODE */
7948 ipw2100_wx_get_encode, /* SIOCGIWENCODE */
7949 ipw2100_wx_set_power, /* SIOCSIWPOWER */
7950 ipw2100_wx_get_power, /* SIOCGIWPOWER */
7951 NULL, /* -- hole -- */
7952 NULL, /* -- hole -- */
7953 ipw2100_wx_set_genie, /* SIOCSIWGENIE */
7954 ipw2100_wx_get_genie, /* SIOCGIWGENIE */
7955 ipw2100_wx_set_auth, /* SIOCSIWAUTH */
7956 ipw2100_wx_get_auth, /* SIOCGIWAUTH */
7957 ipw2100_wx_set_encodeext, /* SIOCSIWENCODEEXT */
7958 ipw2100_wx_get_encodeext, /* SIOCGIWENCODEEXT */
7959 NULL, /* SIOCSIWPMKSA */
7962 #define IPW2100_PRIV_SET_MONITOR SIOCIWFIRSTPRIV
7963 #define IPW2100_PRIV_RESET SIOCIWFIRSTPRIV+1
7964 #define IPW2100_PRIV_SET_POWER SIOCIWFIRSTPRIV+2
7965 #define IPW2100_PRIV_GET_POWER SIOCIWFIRSTPRIV+3
7966 #define IPW2100_PRIV_SET_LONGPREAMBLE SIOCIWFIRSTPRIV+4
7967 #define IPW2100_PRIV_GET_LONGPREAMBLE SIOCIWFIRSTPRIV+5
7968 #define IPW2100_PRIV_SET_CRC_CHECK SIOCIWFIRSTPRIV+6
7969 #define IPW2100_PRIV_GET_CRC_CHECK SIOCIWFIRSTPRIV+7
7971 static const struct iw_priv_args ipw2100_private_args[] = {
7973 #ifdef CONFIG_IPW2100_MONITOR
7975 IPW2100_PRIV_SET_MONITOR,
7976 IW_PRIV_TYPE_INT | IW_PRIV_SIZE_FIXED | 2, 0, "monitor"},
7978 IPW2100_PRIV_RESET,
7979 IW_PRIV_TYPE_INT | IW_PRIV_SIZE_FIXED | 0, 0, "reset"},
7980 #endif /* CONFIG_IPW2100_MONITOR */
7983 IPW2100_PRIV_SET_POWER,
7984 IW_PRIV_TYPE_INT | IW_PRIV_SIZE_FIXED | 1, 0, "set_power"},
7986 IPW2100_PRIV_GET_POWER,
7987 0, IW_PRIV_TYPE_CHAR | IW_PRIV_SIZE_FIXED | MAX_POWER_STRING,
7988 "get_power"},
7990 IPW2100_PRIV_SET_LONGPREAMBLE,
7991 IW_PRIV_TYPE_INT | IW_PRIV_SIZE_FIXED | 1, 0, "set_preamble"},
7993 IPW2100_PRIV_GET_LONGPREAMBLE,
7994 0, IW_PRIV_TYPE_CHAR | IW_PRIV_SIZE_FIXED | IFNAMSIZ, "get_preamble"},
7995 #ifdef CONFIG_IPW2100_MONITOR
7997 IPW2100_PRIV_SET_CRC_CHECK,
7998 IW_PRIV_TYPE_INT | IW_PRIV_SIZE_FIXED | 1, 0, "set_crc_check"},
8000 IPW2100_PRIV_GET_CRC_CHECK,
8001 0, IW_PRIV_TYPE_CHAR | IW_PRIV_SIZE_FIXED | IFNAMSIZ, "get_crc_check"},
8002 #endif /* CONFIG_IPW2100_MONITOR */
8005 static iw_handler ipw2100_private_handler[] = {
8006 #ifdef CONFIG_IPW2100_MONITOR
8007 ipw2100_wx_set_promisc,
8008 ipw2100_wx_reset,
8009 #else /* CONFIG_IPW2100_MONITOR */
8010 NULL,
8011 NULL,
8012 #endif /* CONFIG_IPW2100_MONITOR */
8013 ipw2100_wx_set_powermode,
8014 ipw2100_wx_get_powermode,
8015 ipw2100_wx_set_preamble,
8016 ipw2100_wx_get_preamble,
8017 #ifdef CONFIG_IPW2100_MONITOR
8018 ipw2100_wx_set_crc_check,
8019 ipw2100_wx_get_crc_check,
8020 #else /* CONFIG_IPW2100_MONITOR */
8021 NULL,
8022 NULL,
8023 #endif /* CONFIG_IPW2100_MONITOR */
8027 * Get wireless statistics.
8028 * Called by /proc/net/wireless
8029 * Also called by SIOCGIWSTATS
8031 static struct iw_statistics *ipw2100_wx_wireless_stats(struct net_device *dev)
8033 enum {
8034 POOR = 30,
8035 FAIR = 60,
8036 GOOD = 80,
8037 VERY_GOOD = 90,
8038 EXCELLENT = 95,
8039 PERFECT = 100
8041 int rssi_qual;
8042 int tx_qual;
8043 int beacon_qual;
8045 struct ipw2100_priv *priv = ieee80211_priv(dev);
8046 struct iw_statistics *wstats;
8047 u32 rssi, quality, tx_retries, missed_beacons, tx_failures;
8048 u32 ord_len = sizeof(u32);
8050 if (!priv)
8051 return (struct iw_statistics *)NULL;
8053 wstats = &priv->wstats;
8055 /* if hw is disabled, then ipw2100_get_ordinal() can't be called.
8056 * ipw2100_wx_wireless_stats seems to be called before fw is
8057 * initialized. STATUS_ASSOCIATED will only be set if the hw is up
8058 * and associated; if not associcated, the values are all meaningless
8059 * anyway, so set them all to NULL and INVALID */
8060 if (!(priv->status & STATUS_ASSOCIATED)) {
8061 wstats->miss.beacon = 0;
8062 wstats->discard.retries = 0;
8063 wstats->qual.qual = 0;
8064 wstats->qual.level = 0;
8065 wstats->qual.noise = 0;
8066 wstats->qual.updated = 7;
8067 wstats->qual.updated |= IW_QUAL_NOISE_INVALID |
8068 IW_QUAL_QUAL_INVALID | IW_QUAL_LEVEL_INVALID;
8069 return wstats;
8072 if (ipw2100_get_ordinal(priv, IPW_ORD_STAT_PERCENT_MISSED_BCNS,
8073 &missed_beacons, &ord_len))
8074 goto fail_get_ordinal;
8076 /* If we don't have a connection the quality and level is 0 */
8077 if (!(priv->status & STATUS_ASSOCIATED)) {
8078 wstats->qual.qual = 0;
8079 wstats->qual.level = 0;
8080 } else {
8081 if (ipw2100_get_ordinal(priv, IPW_ORD_RSSI_AVG_CURR,
8082 &rssi, &ord_len))
8083 goto fail_get_ordinal;
8084 wstats->qual.level = rssi + IPW2100_RSSI_TO_DBM;
8085 if (rssi < 10)
8086 rssi_qual = rssi * POOR / 10;
8087 else if (rssi < 15)
8088 rssi_qual = (rssi - 10) * (FAIR - POOR) / 5 + POOR;
8089 else if (rssi < 20)
8090 rssi_qual = (rssi - 15) * (GOOD - FAIR) / 5 + FAIR;
8091 else if (rssi < 30)
8092 rssi_qual = (rssi - 20) * (VERY_GOOD - GOOD) /
8093 10 + GOOD;
8094 else
8095 rssi_qual = (rssi - 30) * (PERFECT - VERY_GOOD) /
8096 10 + VERY_GOOD;
8098 if (ipw2100_get_ordinal(priv, IPW_ORD_STAT_PERCENT_RETRIES,
8099 &tx_retries, &ord_len))
8100 goto fail_get_ordinal;
8102 if (tx_retries > 75)
8103 tx_qual = (90 - tx_retries) * POOR / 15;
8104 else if (tx_retries > 70)
8105 tx_qual = (75 - tx_retries) * (FAIR - POOR) / 5 + POOR;
8106 else if (tx_retries > 65)
8107 tx_qual = (70 - tx_retries) * (GOOD - FAIR) / 5 + FAIR;
8108 else if (tx_retries > 50)
8109 tx_qual = (65 - tx_retries) * (VERY_GOOD - GOOD) /
8110 15 + GOOD;
8111 else
8112 tx_qual = (50 - tx_retries) *
8113 (PERFECT - VERY_GOOD) / 50 + VERY_GOOD;
8115 if (missed_beacons > 50)
8116 beacon_qual = (60 - missed_beacons) * POOR / 10;
8117 else if (missed_beacons > 40)
8118 beacon_qual = (50 - missed_beacons) * (FAIR - POOR) /
8119 10 + POOR;
8120 else if (missed_beacons > 32)
8121 beacon_qual = (40 - missed_beacons) * (GOOD - FAIR) /
8122 18 + FAIR;
8123 else if (missed_beacons > 20)
8124 beacon_qual = (32 - missed_beacons) *
8125 (VERY_GOOD - GOOD) / 20 + GOOD;
8126 else
8127 beacon_qual = (20 - missed_beacons) *
8128 (PERFECT - VERY_GOOD) / 20 + VERY_GOOD;
8130 quality = min(beacon_qual, min(tx_qual, rssi_qual));
8132 #ifdef CONFIG_IPW2100_DEBUG
8133 if (beacon_qual == quality)
8134 IPW_DEBUG_WX("Quality clamped by Missed Beacons\n");
8135 else if (tx_qual == quality)
8136 IPW_DEBUG_WX("Quality clamped by Tx Retries\n");
8137 else if (quality != 100)
8138 IPW_DEBUG_WX("Quality clamped by Signal Strength\n");
8139 else
8140 IPW_DEBUG_WX("Quality not clamped.\n");
8141 #endif
8143 wstats->qual.qual = quality;
8144 wstats->qual.level = rssi + IPW2100_RSSI_TO_DBM;
8147 wstats->qual.noise = 0;
8148 wstats->qual.updated = 7;
8149 wstats->qual.updated |= IW_QUAL_NOISE_INVALID;
8151 /* FIXME: this is percent and not a # */
8152 wstats->miss.beacon = missed_beacons;
8154 if (ipw2100_get_ordinal(priv, IPW_ORD_STAT_TX_FAILURES,
8155 &tx_failures, &ord_len))
8156 goto fail_get_ordinal;
8157 wstats->discard.retries = tx_failures;
8159 return wstats;
8161 fail_get_ordinal:
8162 IPW_DEBUG_WX("failed querying ordinals.\n");
8164 return (struct iw_statistics *)NULL;
8167 static struct iw_handler_def ipw2100_wx_handler_def = {
8168 .standard = ipw2100_wx_handlers,
8169 .num_standard = sizeof(ipw2100_wx_handlers) / sizeof(iw_handler),
8170 .num_private = sizeof(ipw2100_private_handler) / sizeof(iw_handler),
8171 .num_private_args = sizeof(ipw2100_private_args) /
8172 sizeof(struct iw_priv_args),
8173 .private = (iw_handler *) ipw2100_private_handler,
8174 .private_args = (struct iw_priv_args *)ipw2100_private_args,
8175 .get_wireless_stats = ipw2100_wx_wireless_stats,
8178 static void ipw2100_wx_event_work(struct ipw2100_priv *priv)
8180 union iwreq_data wrqu;
8181 int len = ETH_ALEN;
8183 if (priv->status & STATUS_STOPPING)
8184 return;
8186 down(&priv->action_sem);
8188 IPW_DEBUG_WX("enter\n");
8190 up(&priv->action_sem);
8192 wrqu.ap_addr.sa_family = ARPHRD_ETHER;
8194 /* Fetch BSSID from the hardware */
8195 if (!(priv->status & (STATUS_ASSOCIATING | STATUS_ASSOCIATED)) ||
8196 priv->status & STATUS_RF_KILL_MASK ||
8197 ipw2100_get_ordinal(priv, IPW_ORD_STAT_ASSN_AP_BSSID,
8198 &priv->bssid, &len)) {
8199 memset(wrqu.ap_addr.sa_data, 0, ETH_ALEN);
8200 } else {
8201 /* We now have the BSSID, so can finish setting to the full
8202 * associated state */
8203 memcpy(wrqu.ap_addr.sa_data, priv->bssid, ETH_ALEN);
8204 memcpy(priv->ieee->bssid, priv->bssid, ETH_ALEN);
8205 priv->status &= ~STATUS_ASSOCIATING;
8206 priv->status |= STATUS_ASSOCIATED;
8207 netif_carrier_on(priv->net_dev);
8208 netif_wake_queue(priv->net_dev);
8211 if (!(priv->status & STATUS_ASSOCIATED)) {
8212 IPW_DEBUG_WX("Configuring ESSID\n");
8213 down(&priv->action_sem);
8214 /* This is a disassociation event, so kick the firmware to
8215 * look for another AP */
8216 if (priv->config & CFG_STATIC_ESSID)
8217 ipw2100_set_essid(priv, priv->essid, priv->essid_len,
8219 else
8220 ipw2100_set_essid(priv, NULL, 0, 0);
8221 up(&priv->action_sem);
8224 wireless_send_event(priv->net_dev, SIOCGIWAP, &wrqu, NULL);
8227 #define IPW2100_FW_MAJOR_VERSION 1
8228 #define IPW2100_FW_MINOR_VERSION 3
8230 #define IPW2100_FW_MINOR(x) ((x & 0xff) >> 8)
8231 #define IPW2100_FW_MAJOR(x) (x & 0xff)
8233 #define IPW2100_FW_VERSION ((IPW2100_FW_MINOR_VERSION << 8) | \
8234 IPW2100_FW_MAJOR_VERSION)
8236 #define IPW2100_FW_PREFIX "ipw2100-" __stringify(IPW2100_FW_MAJOR_VERSION) \
8237 "." __stringify(IPW2100_FW_MINOR_VERSION)
8239 #define IPW2100_FW_NAME(x) IPW2100_FW_PREFIX "" x ".fw"
8243 BINARY FIRMWARE HEADER FORMAT
8245 offset length desc
8246 0 2 version
8247 2 2 mode == 0:BSS,1:IBSS,2:MONITOR
8248 4 4 fw_len
8249 8 4 uc_len
8250 C fw_len firmware data
8251 12 + fw_len uc_len microcode data
8255 struct ipw2100_fw_header {
8256 short version;
8257 short mode;
8258 unsigned int fw_size;
8259 unsigned int uc_size;
8260 } __attribute__ ((packed));
8262 static int ipw2100_mod_firmware_load(struct ipw2100_fw *fw)
8264 struct ipw2100_fw_header *h =
8265 (struct ipw2100_fw_header *)fw->fw_entry->data;
8267 if (IPW2100_FW_MAJOR(h->version) != IPW2100_FW_MAJOR_VERSION) {
8268 printk(KERN_WARNING DRV_NAME ": Firmware image not compatible "
8269 "(detected version id of %u). "
8270 "See Documentation/networking/README.ipw2100\n",
8271 h->version);
8272 return 1;
8275 fw->version = h->version;
8276 fw->fw.data = fw->fw_entry->data + sizeof(struct ipw2100_fw_header);
8277 fw->fw.size = h->fw_size;
8278 fw->uc.data = fw->fw.data + h->fw_size;
8279 fw->uc.size = h->uc_size;
8281 return 0;
8284 static int ipw2100_get_firmware(struct ipw2100_priv *priv,
8285 struct ipw2100_fw *fw)
8287 char *fw_name;
8288 int rc;
8290 IPW_DEBUG_INFO("%s: Using hotplug firmware load.\n",
8291 priv->net_dev->name);
8293 switch (priv->ieee->iw_mode) {
8294 case IW_MODE_ADHOC:
8295 fw_name = IPW2100_FW_NAME("-i");
8296 break;
8297 #ifdef CONFIG_IPW2100_MONITOR
8298 case IW_MODE_MONITOR:
8299 fw_name = IPW2100_FW_NAME("-p");
8300 break;
8301 #endif
8302 case IW_MODE_INFRA:
8303 default:
8304 fw_name = IPW2100_FW_NAME("");
8305 break;
8308 rc = request_firmware(&fw->fw_entry, fw_name, &priv->pci_dev->dev);
8310 if (rc < 0) {
8311 printk(KERN_ERR DRV_NAME ": "
8312 "%s: Firmware '%s' not available or load failed.\n",
8313 priv->net_dev->name, fw_name);
8314 return rc;
8316 IPW_DEBUG_INFO("firmware data %p size %zd\n", fw->fw_entry->data,
8317 fw->fw_entry->size);
8319 ipw2100_mod_firmware_load(fw);
8321 return 0;
8324 static void ipw2100_release_firmware(struct ipw2100_priv *priv,
8325 struct ipw2100_fw *fw)
8327 fw->version = 0;
8328 if (fw->fw_entry)
8329 release_firmware(fw->fw_entry);
8330 fw->fw_entry = NULL;
8333 static int ipw2100_get_fwversion(struct ipw2100_priv *priv, char *buf,
8334 size_t max)
8336 char ver[MAX_FW_VERSION_LEN];
8337 u32 len = MAX_FW_VERSION_LEN;
8338 u32 tmp;
8339 int i;
8340 /* firmware version is an ascii string (max len of 14) */
8341 if (ipw2100_get_ordinal(priv, IPW_ORD_STAT_FW_VER_NUM, ver, &len))
8342 return -EIO;
8343 tmp = max;
8344 if (len >= max)
8345 len = max - 1;
8346 for (i = 0; i < len; i++)
8347 buf[i] = ver[i];
8348 buf[i] = '\0';
8349 return tmp;
8352 static int ipw2100_get_ucodeversion(struct ipw2100_priv *priv, char *buf,
8353 size_t max)
8355 u32 ver;
8356 u32 len = sizeof(ver);
8357 /* microcode version is a 32 bit integer */
8358 if (ipw2100_get_ordinal(priv, IPW_ORD_UCODE_VERSION, &ver, &len))
8359 return -EIO;
8360 return snprintf(buf, max, "%08X", ver);
8364 * On exit, the firmware will have been freed from the fw list
8366 static int ipw2100_fw_download(struct ipw2100_priv *priv, struct ipw2100_fw *fw)
8368 /* firmware is constructed of N contiguous entries, each entry is
8369 * structured as:
8371 * offset sie desc
8372 * 0 4 address to write to
8373 * 4 2 length of data run
8374 * 6 length data
8376 unsigned int addr;
8377 unsigned short len;
8379 const unsigned char *firmware_data = fw->fw.data;
8380 unsigned int firmware_data_left = fw->fw.size;
8382 while (firmware_data_left > 0) {
8383 addr = *(u32 *) (firmware_data);
8384 firmware_data += 4;
8385 firmware_data_left -= 4;
8387 len = *(u16 *) (firmware_data);
8388 firmware_data += 2;
8389 firmware_data_left -= 2;
8391 if (len > 32) {
8392 printk(KERN_ERR DRV_NAME ": "
8393 "Invalid firmware run-length of %d bytes\n",
8394 len);
8395 return -EINVAL;
8398 write_nic_memory(priv->net_dev, addr, len, firmware_data);
8399 firmware_data += len;
8400 firmware_data_left -= len;
8403 return 0;
8406 struct symbol_alive_response {
8407 u8 cmd_id;
8408 u8 seq_num;
8409 u8 ucode_rev;
8410 u8 eeprom_valid;
8411 u16 valid_flags;
8412 u8 IEEE_addr[6];
8413 u16 flags;
8414 u16 pcb_rev;
8415 u16 clock_settle_time; // 1us LSB
8416 u16 powerup_settle_time; // 1us LSB
8417 u16 hop_settle_time; // 1us LSB
8418 u8 date[3]; // month, day, year
8419 u8 time[2]; // hours, minutes
8420 u8 ucode_valid;
8423 static int ipw2100_ucode_download(struct ipw2100_priv *priv,
8424 struct ipw2100_fw *fw)
8426 struct net_device *dev = priv->net_dev;
8427 const unsigned char *microcode_data = fw->uc.data;
8428 unsigned int microcode_data_left = fw->uc.size;
8429 void __iomem *reg = (void __iomem *)dev->base_addr;
8431 struct symbol_alive_response response;
8432 int i, j;
8433 u8 data;
8435 /* Symbol control */
8436 write_nic_word(dev, IPW2100_CONTROL_REG, 0x703);
8437 readl(reg);
8438 write_nic_word(dev, IPW2100_CONTROL_REG, 0x707);
8439 readl(reg);
8441 /* HW config */
8442 write_nic_byte(dev, 0x210014, 0x72); /* fifo width =16 */
8443 readl(reg);
8444 write_nic_byte(dev, 0x210014, 0x72); /* fifo width =16 */
8445 readl(reg);
8447 /* EN_CS_ACCESS bit to reset control store pointer */
8448 write_nic_byte(dev, 0x210000, 0x40);
8449 readl(reg);
8450 write_nic_byte(dev, 0x210000, 0x0);
8451 readl(reg);
8452 write_nic_byte(dev, 0x210000, 0x40);
8453 readl(reg);
8455 /* copy microcode from buffer into Symbol */
8457 while (microcode_data_left > 0) {
8458 write_nic_byte(dev, 0x210010, *microcode_data++);
8459 write_nic_byte(dev, 0x210010, *microcode_data++);
8460 microcode_data_left -= 2;
8463 /* EN_CS_ACCESS bit to reset the control store pointer */
8464 write_nic_byte(dev, 0x210000, 0x0);
8465 readl(reg);
8467 /* Enable System (Reg 0)
8468 * first enable causes garbage in RX FIFO */
8469 write_nic_byte(dev, 0x210000, 0x0);
8470 readl(reg);
8471 write_nic_byte(dev, 0x210000, 0x80);
8472 readl(reg);
8474 /* Reset External Baseband Reg */
8475 write_nic_word(dev, IPW2100_CONTROL_REG, 0x703);
8476 readl(reg);
8477 write_nic_word(dev, IPW2100_CONTROL_REG, 0x707);
8478 readl(reg);
8480 /* HW Config (Reg 5) */
8481 write_nic_byte(dev, 0x210014, 0x72); // fifo width =16
8482 readl(reg);
8483 write_nic_byte(dev, 0x210014, 0x72); // fifo width =16
8484 readl(reg);
8486 /* Enable System (Reg 0)
8487 * second enable should be OK */
8488 write_nic_byte(dev, 0x210000, 0x00); // clear enable system
8489 readl(reg);
8490 write_nic_byte(dev, 0x210000, 0x80); // set enable system
8492 /* check Symbol is enabled - upped this from 5 as it wasn't always
8493 * catching the update */
8494 for (i = 0; i < 10; i++) {
8495 udelay(10);
8497 /* check Dino is enabled bit */
8498 read_nic_byte(dev, 0x210000, &data);
8499 if (data & 0x1)
8500 break;
8503 if (i == 10) {
8504 printk(KERN_ERR DRV_NAME ": %s: Error initializing Symbol\n",
8505 dev->name);
8506 return -EIO;
8509 /* Get Symbol alive response */
8510 for (i = 0; i < 30; i++) {
8511 /* Read alive response structure */
8512 for (j = 0;
8513 j < (sizeof(struct symbol_alive_response) >> 1); j++)
8514 read_nic_word(dev, 0x210004, ((u16 *) & response) + j);
8516 if ((response.cmd_id == 1) && (response.ucode_valid == 0x1))
8517 break;
8518 udelay(10);
8521 if (i == 30) {
8522 printk(KERN_ERR DRV_NAME
8523 ": %s: No response from Symbol - hw not alive\n",
8524 dev->name);
8525 printk_buf(IPW_DL_ERROR, (u8 *) & response, sizeof(response));
8526 return -EIO;
8529 return 0;