omap: i2c: add a timeout to the busy waiting
[linux-2.6/linux-acpi-2.6/ibm-acpi-2.6.git] / drivers / staging / wlags49_h2 / wl_main.c
blobcf0c38468b201c98b326aca5449b0ca9a86d8927
1 /*******************************************************************************
2 * Agere Systems Inc.
3 * Wireless device driver for Linux (wlags49).
5 * Copyright (c) 1998-2003 Agere Systems Inc.
6 * All rights reserved.
7 * http://www.agere.com
9 * Initially developed by TriplePoint, Inc.
10 * http://www.triplepoint.com
12 *------------------------------------------------------------------------------
14 * This file contains the main driver entry points and other adapter
15 * specific routines.
17 *------------------------------------------------------------------------------
19 * SOFTWARE LICENSE
21 * This software is provided subject to the following terms and conditions,
22 * which you should read carefully before using the software. Using this
23 * software indicates your acceptance of these terms and conditions. If you do
24 * not agree with these terms and conditions, do not use the software.
26 * Copyright © 2003 Agere Systems Inc.
27 * All rights reserved.
29 * Redistribution and use in source or binary forms, with or without
30 * modifications, are permitted provided that the following conditions are met:
32 * . Redistributions of source code must retain the above copyright notice, this
33 * list of conditions and the following Disclaimer as comments in the code as
34 * well as in the documentation and/or other materials provided with the
35 * distribution.
37 * . Redistributions in binary form must reproduce the above copyright notice,
38 * this list of conditions and the following Disclaimer in the documentation
39 * and/or other materials provided with the distribution.
41 * . Neither the name of Agere Systems Inc. nor the names of the contributors
42 * may be used to endorse or promote products derived from this software
43 * without specific prior written permission.
45 * Disclaimer
47 * THIS SOFTWARE IS PROVIDED “AS IS” AND ANY EXPRESS OR IMPLIED WARRANTIES,
48 * INCLUDING, BUT NOT LIMITED TO, INFRINGEMENT AND THE IMPLIED WARRANTIES OF
49 * MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED. ANY
50 * USE, MODIFICATION OR DISTRIBUTION OF THIS SOFTWARE IS SOLELY AT THE USERS OWN
51 * RISK. IN NO EVENT SHALL AGERE SYSTEMS INC. OR CONTRIBUTORS BE LIABLE FOR ANY
52 * DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES
53 * (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES;
54 * LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND
55 * ON ANY THEORY OF LIABILITY, INCLUDING, BUT NOT LIMITED TO, CONTRACT, STRICT
56 * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT
57 * OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH
58 * DAMAGE.
60 ******************************************************************************/
62 /*******************************************************************************
63 * constant definitions
64 ******************************************************************************/
66 /* Allow support for calling system fcns to access F/W iamge file */
67 #define __KERNEL_SYSCALLS__
69 /*******************************************************************************
70 * include files
71 ******************************************************************************/
72 #include <wl_version.h>
74 #include <linux/module.h>
75 #include <linux/proc_fs.h>
76 #include <linux/types.h>
77 #include <linux/kernel.h>
78 // #include <linux/sched.h>
79 // #include <linux/ptrace.h>
80 // #include <linux/slab.h>
81 // #include <linux/ctype.h>
82 // #include <linux/string.h>
83 // #include <linux/timer.h>
84 //#include <linux/interrupt.h>
85 // #include <linux/tqueue.h>
86 // #include <linux/in.h>
87 // #include <linux/delay.h>
88 // #include <asm/io.h>
89 // #include <asm/system.h>
90 // #include <asm/bitops.h>
91 #include <linux/unistd.h>
92 #include <asm/uaccess.h>
94 #include <linux/netdevice.h>
95 #include <linux/etherdevice.h>
96 // #include <linux/skbuff.h>
97 // #include <linux/if_arp.h>
98 // #include <linux/ioport.h>
100 #define BIN_DL 0
101 #if BIN_DL
102 #include <linux/vmalloc.h>
103 #endif // BIN_DL
106 #include <debug.h>
108 #include <hcf.h>
109 #include <dhf.h>
110 //in order to get around:: wl_main.c:2229: `HREG_EV_RDMAD' undeclared (first use in this function)
111 #include <hcfdef.h>
113 #include <wl_if.h>
114 #include <wl_internal.h>
115 #include <wl_util.h>
116 #include <wl_main.h>
117 #include <wl_netdev.h>
118 #include <wl_wext.h>
120 #ifdef USE_PROFILE
121 #include <wl_profile.h>
122 #endif /* USE_PROFILE */
124 #ifdef BUS_PCMCIA
125 #include <wl_cs.h>
126 #endif /* BUS_PCMCIA */
128 #ifdef BUS_PCI
129 #include <wl_pci.h>
130 #endif /* BUS_PCI */
131 /*******************************************************************************
132 * macro defintions
133 ******************************************************************************/
134 #define VALID_PARAM(C) \
136 if (!(C)) \
138 printk(KERN_INFO "Wireless, parameter error: \"%s\"\n", #C); \
139 goto failed; \
142 /*******************************************************************************
143 * local functions
144 ******************************************************************************/
145 void wl_isr_handler( unsigned long p );
147 #if 0 //SCULL_USE_PROC /* don't waste space if unused */
148 //int scull_read_procmem(char *buf, char **start, off_t offset, int len, int unused);
149 int scull_read_procmem(char *buf, char **start, off_t offset, int len, int *eof, void *data );
150 static int write_int(struct file *file, const char *buffer, unsigned long count, void *data);
151 static void proc_write(const char *name, write_proc_t *w, void *data);
153 #endif /* SCULL_USE_PROC */
155 /*******************************************************************************
156 * module parameter definitions - set with 'insmod'
157 ******************************************************************************/
158 static p_u16 irq_mask = 0xdeb8; // IRQ3,4,5,7,9,10,11,12,14,15
159 static p_s8 irq_list[4] = { -1 };
161 #if 0
162 MODULE_PARM(irq_mask, "h");
163 MODULE_PARM_DESC(irq_mask, "IRQ mask [0xdeb8]");
164 MODULE_PARM(irq_list, "1-4b");
165 MODULE_PARM_DESC(irq_list, "IRQ list [<irq_mask>]");
166 #endif
168 static p_u8 PARM_AUTHENTICATION = PARM_DEFAULT_AUTHENTICATION;
169 static p_u16 PARM_AUTH_KEY_MGMT_SUITE = PARM_DEFAULT_AUTH_KEY_MGMT_SUITE;
170 static p_u16 PARM_BRSC_2GHZ = PARM_DEFAULT_BRSC_2GHZ;
171 static p_u16 PARM_BRSC_5GHZ = PARM_DEFAULT_BRSC_5GHZ;
172 static p_u16 PARM_COEXISTENCE = PARM_DEFAULT_COEXISTENCE;
173 static p_u16 PARM_CONNECTION_CONTROL = PARM_DEFAULT_CONNECTION_CONTROL; //;?rename and move
174 static p_char *PARM_CREATE_IBSS = PARM_DEFAULT_CREATE_IBSS_STR;
175 static p_char *PARM_DESIRED_SSID = PARM_DEFAULT_SSID;
176 static p_char *PARM_DOWNLOAD_FIRMWARE = "";
177 static p_u16 PARM_ENABLE_ENCRYPTION = PARM_DEFAULT_ENABLE_ENCRYPTION;
178 static p_char *PARM_EXCLUDE_UNENCRYPTED = PARM_DEFAULT_EXCLUDE_UNENCRYPTED_STR;
179 static p_char *PARM_INTRA_BSS_RELAY = PARM_DEFAULT_INTRA_BSS_RELAY_STR;
180 static p_char *PARM_KEY1 = "";
181 static p_char *PARM_KEY2 = "";
182 static p_char *PARM_KEY3 = "";
183 static p_char *PARM_KEY4 = "";
184 static p_char *PARM_LOAD_BALANCING = PARM_DEFAULT_LOAD_BALANCING_STR;
185 static p_u16 PARM_MAX_SLEEP = PARM_DEFAULT_MAX_PM_SLEEP;
186 static p_char *PARM_MEDIUM_DISTRIBUTION = PARM_DEFAULT_MEDIUM_DISTRIBUTION_STR;
187 static p_char *PARM_MICROWAVE_ROBUSTNESS = PARM_DEFAULT_MICROWAVE_ROBUSTNESS_STR;
188 static p_char *PARM_MULTICAST_PM_BUFFERING = PARM_DEFAULT_MULTICAST_PM_BUFFERING_STR;
189 static p_u16 PARM_MULTICAST_RATE = PARM_DEFAULT_MULTICAST_RATE_2GHZ;
190 static p_char *PARM_MULTICAST_RX = PARM_DEFAULT_MULTICAST_RX_STR;
191 static p_u8 PARM_NETWORK_ADDR[ETH_ALEN] = PARM_DEFAULT_NETWORK_ADDR;
192 static p_u16 PARM_OWN_ATIM_WINDOW = PARM_DEFAULT_OWN_ATIM_WINDOW;
193 static p_u16 PARM_OWN_BEACON_INTERVAL = PARM_DEFAULT_OWN_BEACON_INTERVAL;
194 static p_u8 PARM_OWN_CHANNEL = PARM_DEFAULT_OWN_CHANNEL;
195 static p_u8 PARM_OWN_DTIM_PERIOD = PARM_DEFAULT_OWN_DTIM_PERIOD;
196 static p_char *PARM_OWN_NAME = PARM_DEFAULT_OWN_NAME;
197 static p_char *PARM_OWN_SSID = PARM_DEFAULT_SSID;
198 static p_u16 PARM_PM_ENABLED = WVLAN_PM_STATE_DISABLED;
199 static p_u16 PARM_PM_HOLDOVER_DURATION = PARM_DEFAULT_PM_HOLDOVER_DURATION;
200 static p_u8 PARM_PORT_TYPE = PARM_DEFAULT_PORT_TYPE;
201 static p_char *PARM_PROMISCUOUS_MODE = PARM_DEFAULT_PROMISCUOUS_MODE_STR;
202 static p_char *PARM_REJECT_ANY = PARM_DEFAULT_REJECT_ANY_STR;
203 #ifdef USE_WDS
204 static p_u16 PARM_RTS_THRESHOLD1 = PARM_DEFAULT_RTS_THRESHOLD;
205 static p_u16 PARM_RTS_THRESHOLD2 = PARM_DEFAULT_RTS_THRESHOLD;
206 static p_u16 PARM_RTS_THRESHOLD3 = PARM_DEFAULT_RTS_THRESHOLD;
207 static p_u16 PARM_RTS_THRESHOLD4 = PARM_DEFAULT_RTS_THRESHOLD;
208 static p_u16 PARM_RTS_THRESHOLD5 = PARM_DEFAULT_RTS_THRESHOLD;
209 static p_u16 PARM_RTS_THRESHOLD6 = PARM_DEFAULT_RTS_THRESHOLD;
210 #endif // USE_WDS
211 static p_u16 PARM_RTS_THRESHOLD = PARM_DEFAULT_RTS_THRESHOLD;
212 static p_u16 PARM_SRSC_2GHZ = PARM_DEFAULT_SRSC_2GHZ;
213 static p_u16 PARM_SRSC_5GHZ = PARM_DEFAULT_SRSC_5GHZ;
214 static p_u8 PARM_SYSTEM_SCALE = PARM_DEFAULT_SYSTEM_SCALE;
215 static p_u8 PARM_TX_KEY = PARM_DEFAULT_TX_KEY;
216 static p_u16 PARM_TX_POW_LEVEL = PARM_DEFAULT_TX_POW_LEVEL;
217 #ifdef USE_WDS
218 static p_u16 PARM_TX_RATE1 = PARM_DEFAULT_TX_RATE_2GHZ;
219 static p_u16 PARM_TX_RATE2 = PARM_DEFAULT_TX_RATE_2GHZ;
220 static p_u16 PARM_TX_RATE3 = PARM_DEFAULT_TX_RATE_2GHZ;
221 static p_u16 PARM_TX_RATE4 = PARM_DEFAULT_TX_RATE_2GHZ;
222 static p_u16 PARM_TX_RATE5 = PARM_DEFAULT_TX_RATE_2GHZ;
223 static p_u16 PARM_TX_RATE6 = PARM_DEFAULT_TX_RATE_2GHZ;
224 #endif // USE_WDS
225 static p_u16 PARM_TX_RATE = PARM_DEFAULT_TX_RATE_2GHZ;
226 #ifdef USE_WDS
227 static p_u8 PARM_WDS_ADDRESS1[ETH_ALEN] = PARM_DEFAULT_NETWORK_ADDR;
228 static p_u8 PARM_WDS_ADDRESS2[ETH_ALEN] = PARM_DEFAULT_NETWORK_ADDR;
229 static p_u8 PARM_WDS_ADDRESS3[ETH_ALEN] = PARM_DEFAULT_NETWORK_ADDR;
230 static p_u8 PARM_WDS_ADDRESS4[ETH_ALEN] = PARM_DEFAULT_NETWORK_ADDR;
231 static p_u8 PARM_WDS_ADDRESS5[ETH_ALEN] = PARM_DEFAULT_NETWORK_ADDR;
232 static p_u8 PARM_WDS_ADDRESS6[ETH_ALEN] = PARM_DEFAULT_NETWORK_ADDR;
233 #endif // USE_WDS
236 #if 0
237 MODULE_PARM(PARM_DESIRED_SSID, "s");
238 MODULE_PARM_DESC(PARM_DESIRED_SSID, "Network Name (<string>) [ANY]");
239 MODULE_PARM(PARM_OWN_SSID, "s");
240 MODULE_PARM_DESC(PARM_OWN_SSID, "Network Name (<string>) [ANY]");
241 MODULE_PARM(PARM_OWN_CHANNEL, "b");
242 MODULE_PARM_DESC(PARM_OWN_CHANNEL, "Channel (0 - 14) [0]");
243 MODULE_PARM(PARM_SYSTEM_SCALE, "b");
244 MODULE_PARM_DESC(PARM_SYSTEM_SCALE, "Distance Between APs (1 - 3) [1]");
245 MODULE_PARM(PARM_TX_RATE, "b");
246 MODULE_PARM_DESC(PARM_TX_RATE, "Transmit Rate Control");
247 MODULE_PARM(PARM_RTS_THRESHOLD, "h");
248 MODULE_PARM_DESC(PARM_RTS_THRESHOLD, "Medium Reservation (RTS/CTS Fragment Length) (256 - 2347) [2347]");
249 MODULE_PARM(PARM_MICROWAVE_ROBUSTNESS, "s");
250 MODULE_PARM_DESC(PARM_MICROWAVE_ROBUSTNESS, "Microwave Oven Robustness Enabled (<string> N or Y) [N]");
251 MODULE_PARM(PARM_OWN_NAME, "s");
252 MODULE_PARM_DESC(PARM_OWN_NAME, "Station Name (<string>) [Linux]");
254 MODULE_PARM(PARM_ENABLE_ENCRYPTION, "b");
255 MODULE_PARM_DESC(PARM_ENABLE_ENCRYPTION, "Encryption Mode (0 - 7) [0]");
257 MODULE_PARM(PARM_KEY1, "s");
258 MODULE_PARM_DESC(PARM_KEY1, "Data Encryption Key 1 (<string>) []");
259 MODULE_PARM(PARM_KEY2, "s");
260 MODULE_PARM_DESC(PARM_KEY2, "Data Encryption Key 2 (<string>) []");
261 MODULE_PARM(PARM_KEY3, "s");
262 MODULE_PARM_DESC(PARM_KEY3, "Data Encryption Key 3 (<string>) []");
263 MODULE_PARM(PARM_KEY4, "s");
264 MODULE_PARM_DESC(PARM_KEY4, "Data Encryption Key 4 (<string>) []");
265 MODULE_PARM(PARM_TX_KEY, "b");
266 MODULE_PARM_DESC(PARM_TX_KEY, "Transmit Key ID (1 - 4) [1]");
267 MODULE_PARM(PARM_MULTICAST_RATE, "b");
268 MODULE_PARM_DESC(PARM_MULTICAST_RATE, "Multicast Rate");
269 MODULE_PARM(PARM_DOWNLOAD_FIRMWARE, "s");
270 MODULE_PARM_DESC(PARM_DOWNLOAD_FIRMWARE, "filename of firmware image");
272 MODULE_PARM(PARM_AUTH_KEY_MGMT_SUITE, "b");
273 MODULE_PARM_DESC(PARM_AUTH_KEY_MGMT_SUITE, "Authentication Key Management suite (0-4) [0]");
275 MODULE_PARM(PARM_LOAD_BALANCING, "s");
276 MODULE_PARM_DESC(PARM_LOAD_BALANCING, "Load Balancing Enabled (<string> N or Y) [Y]");
277 MODULE_PARM(PARM_MEDIUM_DISTRIBUTION, "s");
278 MODULE_PARM_DESC(PARM_MEDIUM_DISTRIBUTION, "Medium Distribution Enabled (<string> N or Y) [Y]");
279 MODULE_PARM(PARM_TX_POW_LEVEL, "b");
280 MODULE_PARM_DESC(PARM_TX_POW_LEVEL, "Transmit Power (0 - 6) [3]");
281 MODULE_PARM(PARM_SRSC_2GHZ, "b");
282 MODULE_PARM_DESC(PARM_SRSC_2GHZ, "Supported Rate Set Control 2.4 GHz");
283 MODULE_PARM(PARM_SRSC_5GHZ, "b");
284 MODULE_PARM_DESC(PARM_SRSC_5GHZ, "Supported Rate Set Control 5.0 GHz");
285 MODULE_PARM(PARM_BRSC_2GHZ, "b");
286 MODULE_PARM_DESC(PARM_BRSC_2GHZ, "Basic Rate Set Control 2.4 GHz");
287 MODULE_PARM(PARM_BRSC_5GHZ, "b");
288 MODULE_PARM_DESC(PARM_BRSC_5GHZ, "Basic Rate Set Control 5.0 GHz");
289 #if 1 //;? (HCF_TYPE) & HCF_TYPE_STA
290 //;?seems reasonable that even an AP-only driver could afford this small additional footprint
291 MODULE_PARM(PARM_PM_ENABLED, "h");
292 MODULE_PARM_DESC(PARM_PM_ENABLED, "Power Management State (0 - 2, 8001 - 8002) [0]");
293 MODULE_PARM(PARM_PORT_TYPE, "b");
294 MODULE_PARM_DESC(PARM_PORT_TYPE, "Port Type (1 - 3) [1]");
295 //;?MODULE_PARM(PARM_CREATE_IBSS, "s");
296 //;?MODULE_PARM_DESC(PARM_CREATE_IBSS, "Create IBSS (<string> N or Y) [N]");
297 //;?MODULE_PARM(PARM_MULTICAST_RX, "s");
298 //;?MODULE_PARM_DESC(PARM_MULTICAST_RX, "Multicast Receive Enable (<string> N or Y) [Y]");
299 //;?MODULE_PARM(PARM_MAX_SLEEP, "h");
300 //;?MODULE_PARM_DESC(PARM_MAX_SLEEP, "Maximum Power Management Sleep Duration (0 - 65535) [100]");
301 //;?MODULE_PARM(PARM_NETWORK_ADDR, "6b");
302 //;?MODULE_PARM_DESC(PARM_NETWORK_ADDR, "Hardware Ethernet Address ([0x00-0xff],[0x00-0xff],[0x00-0xff],[0x00-0xff],[0x00-0xff],[0x00-0xff]) [<factory value>]");
303 //;?MODULE_PARM(PARM_AUTHENTICATION, "b");
305 //tracker 12448
306 //;?MODULE_PARM_DESC(PARM_AUTHENTICATION, "Authentication Type (0-2) [0] 0=Open 1=SharedKey 2=LEAP");
307 //;?MODULE_PARM_DESC(authentication, "Authentication Type (1-2) [1] 1=Open 2=SharedKey");
308 //tracker 12448
310 //;?MODULE_PARM(PARM_OWN_ATIM_WINDOW, "b");
311 //;?MODULE_PARM_DESC(PARM_OWN_ATIM_WINDOW, "ATIM Window time in TU for IBSS creation (0-100) [0]");
312 //;?MODULE_PARM(PARM_PM_HOLDOVER_DURATION, "b");
313 //;?MODULE_PARM_DESC(PARM_PM_HOLDOVER_DURATION, "Time station remains awake after MAC frame transfer when PM is on (0-65535) [100]");
314 //;?MODULE_PARM(PARM_PROMISCUOUS_MODE, "s");
315 //;?MODULE_PARM_DESC(PARM_PROMISCUOUS_MODE, "Promiscuous Mode Enable (<string> Y or N ) [N]" );
316 //;?
317 MODULE_PARM(PARM_CONNECTION_CONTROL, "b");
318 MODULE_PARM_DESC(PARM_CONNECTION_CONTROL, "Connection Control (0 - 3) [2]");
319 #endif /* HCF_STA */
320 #if 1 //;? (HCF_TYPE) & HCF_TYPE_AP
321 //;?should we restore this to allow smaller memory footprint
322 MODULE_PARM(PARM_OWN_DTIM_PERIOD, "b");
323 MODULE_PARM_DESC(PARM_OWN_DTIM_PERIOD, "DTIM Period (0 - 255) [1]");
324 MODULE_PARM(PARM_REJECT_ANY, "s");
325 MODULE_PARM_DESC(PARM_REJECT_ANY, "Closed System (<string> N or Y) [N]");
326 MODULE_PARM(PARM_EXCLUDE_UNENCRYPTED, "s");
327 MODULE_PARM_DESC(PARM_EXCLUDE_UNENCRYPTED, "Deny non-encrypted (<string> N or Y) [Y]");
328 MODULE_PARM(PARM_MULTICAST_PM_BUFFERING,"s");
329 MODULE_PARM_DESC(PARM_MULTICAST_PM_BUFFERING, "Buffer MAC frames for Tx after DTIM (<string> Y or N) [Y]");
330 MODULE_PARM(PARM_INTRA_BSS_RELAY, "s");
331 MODULE_PARM_DESC(PARM_INTRA_BSS_RELAY, "IntraBSS Relay (<string> N or Y) [Y]");
332 MODULE_PARM(PARM_RTS_THRESHOLD1, "h");
333 MODULE_PARM_DESC(PARM_RTS_THRESHOLD1, "RTS Threshold, WDS Port 1 (256 - 2347) [2347]");
334 MODULE_PARM(PARM_RTS_THRESHOLD2, "h");
335 MODULE_PARM_DESC(PARM_RTS_THRESHOLD2, "RTS Threshold, WDS Port 2 (256 - 2347) [2347]");
336 MODULE_PARM(PARM_RTS_THRESHOLD3, "h");
337 MODULE_PARM_DESC(PARM_RTS_THRESHOLD3, "RTS Threshold, WDS Port 3 (256 - 2347) [2347]");
338 MODULE_PARM(PARM_RTS_THRESHOLD4, "h");
339 MODULE_PARM_DESC(PARM_RTS_THRESHOLD4, "RTS Threshold, WDS Port 4 (256 - 2347) [2347]");
340 MODULE_PARM(PARM_RTS_THRESHOLD5, "h");
341 MODULE_PARM_DESC(PARM_RTS_THRESHOLD5, "RTS Threshold, WDS Port 5 (256 - 2347) [2347]");
342 MODULE_PARM(PARM_RTS_THRESHOLD6, "h");
343 MODULE_PARM_DESC(PARM_RTS_THRESHOLD6, "RTS Threshold, WDS Port 6 (256 - 2347) [2347]");
344 MODULE_PARM(PARM_TX_RATE1, "b");
345 MODULE_PARM_DESC(PARM_TX_RATE1, "Transmit Rate Control, WDS Port 1 (1 - 7) [3]");
346 MODULE_PARM(PARM_TX_RATE2, "b");
347 MODULE_PARM_DESC(PARM_TX_RATE2, "Transmit Rate Control, WDS Port 2 (1 - 7) [3]");
348 MODULE_PARM(PARM_TX_RATE3, "b");
349 MODULE_PARM_DESC(PARM_TX_RATE3, "Transmit Rate Control, WDS Port 3 (1 - 7) [3]");
350 MODULE_PARM(PARM_TX_RATE4, "b");
351 MODULE_PARM_DESC(PARM_TX_RATE4, "Transmit Rate Control, WDS Port 4 (1 - 7) [3]");
352 MODULE_PARM(PARM_TX_RATE5, "b");
353 MODULE_PARM_DESC(PARM_TX_RATE5, "Transmit Rate Control, WDS Port 5 (1 - 7) [3]");
354 MODULE_PARM(PARM_TX_RATE6, "b");
355 MODULE_PARM_DESC(PARM_TX_RATE6, "Transmit Rate Control, WDS Port 6 (1 - 7) [3]");
356 MODULE_PARM(PARM_WDS_ADDRESS1, "6b");
357 MODULE_PARM_DESC(PARM_WDS_ADDRESS1, "MAC Address, WDS Port 1 ([0x00-0xff],[0x00-0xff],[0x00-0xff],[0x00-0xff],[0x00-0xff],[0x00-0xff]) [{0}]");
358 MODULE_PARM(PARM_WDS_ADDRESS2, "6b");
359 MODULE_PARM_DESC(PARM_WDS_ADDRESS2, "MAC Address, WDS Port 2 ([0x00-0xff],[0x00-0xff],[0x00-0xff],[0x00-0xff],[0x00-0xff],[0x00-0xff]) [{0}]");
360 MODULE_PARM(PARM_WDS_ADDRESS3, "6b");
361 MODULE_PARM_DESC(PARM_WDS_ADDRESS3, "MAC Address, WDS Port 3 ([0x00-0xff],[0x00-0xff],[0x00-0xff],[0x00-0xff],[0x00-0xff],[0x00-0xff]) [{0}]");
362 MODULE_PARM(PARM_WDS_ADDRESS4, "6b");
363 MODULE_PARM_DESC(PARM_WDS_ADDRESS4, "MAC Address, WDS Port 4 ([0x00-0xff],[0x00-0xff],[0x00-0xff],[0x00-0xff],[0x00-0xff],[0x00-0xff]) [{0}]");
364 MODULE_PARM(PARM_WDS_ADDRESS5, "6b");
365 MODULE_PARM_DESC(PARM_WDS_ADDRESS5, "MAC Address, WDS Port 5 ([0x00-0xff],[0x00-0xff],[0x00-0xff],[0x00-0xff],[0x00-0xff],[0x00-0xff]) [{0}]");
366 MODULE_PARM(PARM_WDS_ADDRESS6, "6b");
367 MODULE_PARM_DESC(PARM_WDS_ADDRESS6, "MAC Address, WDS Port 6 ([0x00-0xff],[0x00-0xff],[0x00-0xff],[0x00-0xff],[0x00-0xff],[0x00-0xff]) [{0}]");
369 MODULE_PARM(PARM_OWN_BEACON_INTERVAL, "b");
370 MODULE_PARM_DESC(PARM_OWN_BEACON_INTERVAL, "Own Beacon Interval (20 - 200) [100]");
371 MODULE_PARM(PARM_COEXISTENCE, "b");
372 MODULE_PARM_DESC(PARM_COEXISTENCE, "Coexistence (0-7) [0]");
374 #endif /* HCF_AP */
375 #endif
377 /* END NEW PARAMETERS */
378 /*******************************************************************************
379 * debugging specifics
380 ******************************************************************************/
381 #if DBG
383 static p_u32 pc_debug = DBG_LVL;
384 //MODULE_PARM(pc_debug, "i");
385 /*static ;?conflicts with my understanding of CL parameters and breaks now I moved
386 * the correspondig logic to wl_profile
387 */ p_u32 DebugFlag = ~0; //recognizable "undefined value" rather then DBG_DEFAULTS;
388 //MODULE_PARM(DebugFlag, "l");
390 dbg_info_t wl_info = { DBG_MOD_NAME, 0, 0 };
391 dbg_info_t *DbgInfo = &wl_info;
393 #endif /* DBG */
394 #ifdef USE_RTS
396 static p_char *useRTS = "N";
397 MODULE_PARM( useRTS, "s" );
398 MODULE_PARM_DESC( useRTS, "Use RTS test interface (<string> N or Y) [N]" );
400 #endif /* USE_RTS */
401 /*******************************************************************************
402 * firmware download specifics
403 ******************************************************************************/
404 extern struct CFG_RANGE2_STRCT BASED
405 cfg_drv_act_ranges_pri; // describes primary-actor range of HCF
407 #if 0 //;? (HCF_TYPE) & HCF_TYPE_AP
408 extern memimage ap; // AP firmware image to be downloaded
409 #endif /* HCF_AP */
411 #if 1 //;? (HCF_TYPE) & HCF_TYPE_STA
412 //extern memimage station; // STA firmware image to be downloaded
413 extern memimage fw_image; // firmware image to be downloaded
414 #endif /* HCF_STA */
417 /*******************************************************************************
418 * wl_insert()
419 *******************************************************************************
421 * DESCRIPTION:
423 * wl_insert() is scheduled to run after a CARD_INSERTION event is
424 * received, to configure the PCMCIA socket, and to make the ethernet device
425 * available to the system.
427 * PARAMETERS:
429 * dev - a pointer to the net_device struct of the wireless device
431 * RETURNS:
433 * TRUE or FALSE
435 ******************************************************************************/
436 int wl_insert( struct net_device *dev )
438 int result = 0;
439 int hcf_status = HCF_SUCCESS;
440 int i;
441 unsigned long flags = 0;
442 struct wl_private *lp = wl_priv(dev);
443 /*------------------------------------------------------------------------*/
444 DBG_FUNC( "wl_insert" );
445 DBG_ENTER( DbgInfo );
447 /* Initialize the adapter hardware. */
448 memset( &( lp->hcfCtx ), 0, sizeof( IFB_STRCT ));
450 /* Initialize the adapter parameters. */
451 spin_lock_init( &( lp->slock ));
453 /* Intialize states */
454 //lp->lockcount = 0; //PE1DNN
455 lp->is_handling_int = WL_NOT_HANDLING_INT;
456 lp->firmware_present = WL_FRIMWARE_NOT_PRESENT;
458 lp->dev = dev;
460 DBG_PARAM( DbgInfo, "irq_mask", "0x%04x", irq_mask & 0x0FFFF );
461 DBG_PARAM( DbgInfo, "irq_list", "0x%02x 0x%02x 0x%02x 0x%02x",
462 irq_list[0] & 0x0FF, irq_list[1] & 0x0FF,
463 irq_list[2] & 0x0FF, irq_list[3] & 0x0FF );
464 DBG_PARAM( DbgInfo, PARM_NAME_DESIRED_SSID, "\"%s\"", PARM_DESIRED_SSID );
465 DBG_PARAM( DbgInfo, PARM_NAME_OWN_SSID, "\"%s\"", PARM_OWN_SSID );
466 DBG_PARAM( DbgInfo, PARM_NAME_OWN_CHANNEL, "%d", PARM_OWN_CHANNEL);
467 DBG_PARAM( DbgInfo, PARM_NAME_SYSTEM_SCALE, "%d", PARM_SYSTEM_SCALE );
468 DBG_PARAM( DbgInfo, PARM_NAME_TX_RATE, "%d", PARM_TX_RATE );
469 DBG_PARAM( DbgInfo, PARM_NAME_RTS_THRESHOLD, "%d", PARM_RTS_THRESHOLD );
470 DBG_PARAM( DbgInfo, PARM_NAME_MICROWAVE_ROBUSTNESS, "\"%s\"", PARM_MICROWAVE_ROBUSTNESS );
471 DBG_PARAM( DbgInfo, PARM_NAME_OWN_NAME, "\"%s\"", PARM_OWN_NAME );
472 //;? DBG_PARAM( DbgInfo, PARM_NAME_ENABLE_ENCRYPTION, "\"%s\"", PARM_ENABLE_ENCRYPTION );
473 DBG_PARAM( DbgInfo, PARM_NAME_KEY1, "\"%s\"", PARM_KEY1 );
474 DBG_PARAM( DbgInfo, PARM_NAME_KEY2, "\"%s\"", PARM_KEY2 );
475 DBG_PARAM( DbgInfo, PARM_NAME_KEY3, "\"%s\"", PARM_KEY3 );
476 DBG_PARAM( DbgInfo, PARM_NAME_KEY4, "\"%s\"", PARM_KEY4 );
477 DBG_PARAM( DbgInfo, PARM_NAME_TX_KEY, "%d", PARM_TX_KEY );
478 DBG_PARAM( DbgInfo, PARM_NAME_MULTICAST_RATE, "%d", PARM_MULTICAST_RATE );
479 DBG_PARAM( DbgInfo, PARM_NAME_DOWNLOAD_FIRMWARE, "\"%s\"", PARM_DOWNLOAD_FIRMWARE );
480 DBG_PARAM( DbgInfo, PARM_NAME_AUTH_KEY_MGMT_SUITE, "%d", PARM_AUTH_KEY_MGMT_SUITE );
481 //;?#if (HCF_TYPE) & HCF_TYPE_STA
482 //;?should we make this code conditional depending on in STA mode
483 //;? DBG_PARAM( DbgInfo, PARM_NAME_PORT_TYPE, "%d", PARM_PORT_TYPE );
484 DBG_PARAM( DbgInfo, PARM_NAME_PM_ENABLED, "%04x", PARM_PM_ENABLED );
485 //;? DBG_PARAM( DbgInfo, PARM_NAME_CREATE_IBSS, "\"%s\"", PARM_CREATE_IBSS );
486 //;? DBG_PARAM( DbgInfo, PARM_NAME_MULTICAST_RX, "\"%s\"", PARM_MULTICAST_RX );
487 //;? DBG_PARAM( DbgInfo, PARM_NAME_MAX_SLEEP, "%d", PARM_MAX_SLEEP );
488 //;? DBG_PARAM( DbgInfo, PARM_NAME_NETWORK_ADDR, "\"%s\"", DbgHwAddr( PARM_NETWORK_ADDR ));
489 //;? DBG_PARAM( DbgInfo, PARM_NAME_AUTHENTICATION, "%d", PARM_AUTHENTICATION );
490 //;? DBG_PARAM( DbgInfo, PARM_NAME_OWN_ATIM_WINDOW, "%d", PARM_OWN_ATIM_WINDOW );
491 //;? DBG_PARAM( DbgInfo, PARM_NAME_PM_HOLDOVER_DURATION, "%d", PARM_PM_HOLDOVER_DURATION );
492 //;? DBG_PARAM( DbgInfo, PARM_NAME_PROMISCUOUS_MODE, "\"%s\"", PARM_PROMISCUOUS_MODE );
493 //;?#endif /* HCF_STA */
494 #if 1 //;? (HCF_TYPE) & HCF_TYPE_AP
495 //;?should we restore this to allow smaller memory footprint
496 //;?I guess: no, since this is Debug mode only
497 DBG_PARAM( DbgInfo, PARM_NAME_OWN_DTIM_PERIOD, "%d", PARM_OWN_DTIM_PERIOD );
498 DBG_PARAM( DbgInfo, PARM_NAME_REJECT_ANY, "\"%s\"", PARM_REJECT_ANY );
499 DBG_PARAM( DbgInfo, PARM_NAME_EXCLUDE_UNENCRYPTED, "\"%s\"", PARM_EXCLUDE_UNENCRYPTED );
500 DBG_PARAM( DbgInfo, PARM_NAME_MULTICAST_PM_BUFFERING, "\"%s\"", PARM_MULTICAST_PM_BUFFERING );
501 DBG_PARAM( DbgInfo, PARM_NAME_INTRA_BSS_RELAY, "\"%s\"", PARM_INTRA_BSS_RELAY );
502 #ifdef USE_WDS
503 DBG_PARAM( DbgInfo, PARM_NAME_RTS_THRESHOLD1, "%d", PARM_RTS_THRESHOLD1 );
504 DBG_PARAM( DbgInfo, PARM_NAME_RTS_THRESHOLD2, "%d", PARM_RTS_THRESHOLD2 );
505 DBG_PARAM( DbgInfo, PARM_NAME_RTS_THRESHOLD3, "%d", PARM_RTS_THRESHOLD3 );
506 DBG_PARAM( DbgInfo, PARM_NAME_RTS_THRESHOLD4, "%d", PARM_RTS_THRESHOLD4 );
507 DBG_PARAM( DbgInfo, PARM_NAME_RTS_THRESHOLD5, "%d", PARM_RTS_THRESHOLD5 );
508 DBG_PARAM( DbgInfo, PARM_NAME_RTS_THRESHOLD6, "%d", PARM_RTS_THRESHOLD6 );
509 DBG_PARAM( DbgInfo, PARM_NAME_TX_RATE1, "%d", PARM_TX_RATE1 );
510 DBG_PARAM( DbgInfo, PARM_NAME_TX_RATE2, "%d", PARM_TX_RATE2 );
511 DBG_PARAM( DbgInfo, PARM_NAME_TX_RATE3, "%d", PARM_TX_RATE3 );
512 DBG_PARAM( DbgInfo, PARM_NAME_TX_RATE4, "%d", PARM_TX_RATE4 );
513 DBG_PARAM( DbgInfo, PARM_NAME_TX_RATE5, "%d", PARM_TX_RATE5 );
514 DBG_PARAM( DbgInfo, PARM_NAME_TX_RATE6, "%d", PARM_TX_RATE6 );
515 DBG_PARAM( DbgInfo, PARM_NAME_WDS_ADDRESS1, "\"%s\"", DbgHwAddr( PARM_WDS_ADDRESS1 ));
516 DBG_PARAM( DbgInfo, PARM_NAME_WDS_ADDRESS2, "\"%s\"", DbgHwAddr( PARM_WDS_ADDRESS2 ));
517 DBG_PARAM( DbgInfo, PARM_NAME_WDS_ADDRESS3, "\"%s\"", DbgHwAddr( PARM_WDS_ADDRESS3 ));
518 DBG_PARAM( DbgInfo, PARM_NAME_WDS_ADDRESS4, "\"%s\"", DbgHwAddr( PARM_WDS_ADDRESS4 ));
519 DBG_PARAM( DbgInfo, PARM_NAME_WDS_ADDRESS5, "\"%s\"", DbgHwAddr( PARM_WDS_ADDRESS5 ));
520 DBG_PARAM( DbgInfo, PARM_NAME_WDS_ADDRESS6, "\"%s\"", DbgHwAddr( PARM_WDS_ADDRESS6 ));
521 #endif /* USE_WDS */
522 #endif /* HCF_AP */
524 VALID_PARAM( !PARM_DESIRED_SSID || ( strlen( PARM_DESIRED_SSID ) <= PARM_MAX_NAME_LEN ));
525 VALID_PARAM( !PARM_OWN_SSID || ( strlen( PARM_OWN_SSID ) <= PARM_MAX_NAME_LEN ));
526 VALID_PARAM(( PARM_OWN_CHANNEL <= PARM_MAX_OWN_CHANNEL ));
527 VALID_PARAM(( PARM_SYSTEM_SCALE >= PARM_MIN_SYSTEM_SCALE ) && ( PARM_SYSTEM_SCALE <= PARM_MAX_SYSTEM_SCALE ));
528 VALID_PARAM(( PARM_TX_RATE >= PARM_MIN_TX_RATE ) && ( PARM_TX_RATE <= PARM_MAX_TX_RATE ));
529 VALID_PARAM(( PARM_RTS_THRESHOLD <= PARM_MAX_RTS_THRESHOLD ));
530 VALID_PARAM( !PARM_MICROWAVE_ROBUSTNESS || strchr( "NnYy", PARM_MICROWAVE_ROBUSTNESS[0] ) != NULL );
531 VALID_PARAM( !PARM_OWN_NAME || ( strlen( PARM_NAME_OWN_NAME ) <= PARM_MAX_NAME_LEN ));
532 VALID_PARAM(( PARM_ENABLE_ENCRYPTION <= PARM_MAX_ENABLE_ENCRYPTION ));
533 VALID_PARAM( is_valid_key_string( PARM_KEY1 ));
534 VALID_PARAM( is_valid_key_string( PARM_KEY2 ));
535 VALID_PARAM( is_valid_key_string( PARM_KEY3 ));
536 VALID_PARAM( is_valid_key_string( PARM_KEY4 ));
537 VALID_PARAM(( PARM_TX_KEY >= PARM_MIN_TX_KEY ) && ( PARM_TX_KEY <= PARM_MAX_TX_KEY ));
539 VALID_PARAM(( PARM_MULTICAST_RATE >= PARM_MIN_MULTICAST_RATE ) &&
540 ( PARM_MULTICAST_RATE <= PARM_MAX_MULTICAST_RATE ));
542 VALID_PARAM( !PARM_DOWNLOAD_FIRMWARE || ( strlen( PARM_DOWNLOAD_FIRMWARE ) <= 255 /*;?*/ ));
543 VALID_PARAM(( PARM_AUTH_KEY_MGMT_SUITE < PARM_MAX_AUTH_KEY_MGMT_SUITE ));
545 VALID_PARAM( !PARM_LOAD_BALANCING || strchr( "NnYy", PARM_LOAD_BALANCING[0] ) != NULL );
546 VALID_PARAM( !PARM_MEDIUM_DISTRIBUTION || strchr( "NnYy", PARM_MEDIUM_DISTRIBUTION[0] ) != NULL );
547 VALID_PARAM(( PARM_TX_POW_LEVEL <= PARM_MAX_TX_POW_LEVEL ));
549 VALID_PARAM(( PARM_PORT_TYPE >= PARM_MIN_PORT_TYPE ) && ( PARM_PORT_TYPE <= PARM_MAX_PORT_TYPE ));
550 VALID_PARAM( PARM_PM_ENABLED <= WVLAN_PM_STATE_STANDARD ||
551 ( PARM_PM_ENABLED & 0x7FFF ) <= WVLAN_PM_STATE_STANDARD );
552 VALID_PARAM( !PARM_CREATE_IBSS || strchr( "NnYy", PARM_CREATE_IBSS[0] ) != NULL );
553 VALID_PARAM( !PARM_MULTICAST_RX || strchr( "NnYy", PARM_MULTICAST_RX[0] ) != NULL );
554 VALID_PARAM(( PARM_MAX_SLEEP <= PARM_MAX_MAX_PM_SLEEP ));
555 VALID_PARAM(( PARM_AUTHENTICATION <= PARM_MAX_AUTHENTICATION ));
556 VALID_PARAM(( PARM_OWN_ATIM_WINDOW <= PARM_MAX_OWN_ATIM_WINDOW ));
557 VALID_PARAM(( PARM_PM_HOLDOVER_DURATION <= PARM_MAX_PM_HOLDOVER_DURATION ));
558 VALID_PARAM( !PARM_PROMISCUOUS_MODE || strchr( "NnYy", PARM_PROMISCUOUS_MODE[0] ) != NULL );
559 VALID_PARAM(( PARM_CONNECTION_CONTROL <= PARM_MAX_CONNECTION_CONTROL ));
561 VALID_PARAM(( PARM_OWN_DTIM_PERIOD >= PARM_MIN_OWN_DTIM_PERIOD ));
562 VALID_PARAM( !PARM_REJECT_ANY || strchr( "NnYy", PARM_REJECT_ANY[0] ) != NULL );
563 VALID_PARAM( !PARM_EXCLUDE_UNENCRYPTED || strchr( "NnYy", PARM_EXCLUDE_UNENCRYPTED[0] ) != NULL );
564 VALID_PARAM( !PARM_MULTICAST_PM_BUFFERING || strchr( "NnYy", PARM_MULTICAST_PM_BUFFERING[0] ) != NULL );
565 VALID_PARAM( !PARM_INTRA_BSS_RELAY || strchr( "NnYy", PARM_INTRA_BSS_RELAY[0] ) != NULL );
566 #ifdef USE_WDS
567 VALID_PARAM(( PARM_RTS_THRESHOLD1 <= PARM_MAX_RTS_THRESHOLD ));
568 VALID_PARAM(( PARM_RTS_THRESHOLD2 <= PARM_MAX_RTS_THRESHOLD ));
569 VALID_PARAM(( PARM_RTS_THRESHOLD3 <= PARM_MAX_RTS_THRESHOLD ));
570 VALID_PARAM(( PARM_RTS_THRESHOLD4 <= PARM_MAX_RTS_THRESHOLD ));
571 VALID_PARAM(( PARM_RTS_THRESHOLD5 <= PARM_MAX_RTS_THRESHOLD ));
572 VALID_PARAM(( PARM_RTS_THRESHOLD6 <= PARM_MAX_RTS_THRESHOLD ));
573 VALID_PARAM(( PARM_TX_RATE1 >= PARM_MIN_TX_RATE ) && (PARM_TX_RATE1 <= PARM_MAX_TX_RATE ));
574 VALID_PARAM(( PARM_TX_RATE2 >= PARM_MIN_TX_RATE ) && (PARM_TX_RATE2 <= PARM_MAX_TX_RATE ));
575 VALID_PARAM(( PARM_TX_RATE3 >= PARM_MIN_TX_RATE ) && (PARM_TX_RATE3 <= PARM_MAX_TX_RATE ));
576 VALID_PARAM(( PARM_TX_RATE4 >= PARM_MIN_TX_RATE ) && (PARM_TX_RATE4 <= PARM_MAX_TX_RATE ));
577 VALID_PARAM(( PARM_TX_RATE5 >= PARM_MIN_TX_RATE ) && (PARM_TX_RATE5 <= PARM_MAX_TX_RATE ));
578 VALID_PARAM(( PARM_TX_RATE6 >= PARM_MIN_TX_RATE ) && (PARM_TX_RATE6 <= PARM_MAX_TX_RATE ));
579 #endif /* USE_WDS */
581 VALID_PARAM(( PARM_OWN_BEACON_INTERVAL >= PARM_MIN_OWN_BEACON_INTERVAL ) && ( PARM_OWN_BEACON_INTERVAL <= PARM_MAX_OWN_BEACON_INTERVAL ));
582 VALID_PARAM(( PARM_COEXISTENCE <= PARM_COEXISTENCE ));
584 /* Set the driver parameters from the passed in parameters. */
586 /* THESE MODULE PARAMETERS ARE TO BE DEPRECATED IN FAVOR OF A NAMING CONVENTION
587 WHICH IS INLINE WITH THE FORTHCOMING WAVELAN API */
589 /* START NEW PARAMETERS */
591 lp->Channel = PARM_OWN_CHANNEL;
592 lp->DistanceBetweenAPs = PARM_SYSTEM_SCALE;
594 /* Need to determine how to handle the new bands for 5GHz */
595 lp->TxRateControl[0] = PARM_DEFAULT_TX_RATE_2GHZ;
596 lp->TxRateControl[1] = PARM_DEFAULT_TX_RATE_5GHZ;
598 lp->RTSThreshold = PARM_RTS_THRESHOLD;
600 /* Need to determine how to handle the new bands for 5GHz */
601 lp->MulticastRate[0] = PARM_DEFAULT_MULTICAST_RATE_2GHZ;
602 lp->MulticastRate[1] = PARM_DEFAULT_MULTICAST_RATE_5GHZ;
604 if ( strchr( "Yy", PARM_MICROWAVE_ROBUSTNESS[0] ) != NULL ) {
605 lp->MicrowaveRobustness = 1;
606 } else {
607 lp->MicrowaveRobustness = 0;
609 if ( PARM_DESIRED_SSID && ( strlen( PARM_DESIRED_SSID ) <= HCF_MAX_NAME_LEN )) {
610 strcpy( lp->NetworkName, PARM_DESIRED_SSID );
612 if ( PARM_OWN_SSID && ( strlen( PARM_OWN_SSID ) <= HCF_MAX_NAME_LEN )) {
613 strcpy( lp->NetworkName, PARM_OWN_SSID );
615 if ( PARM_OWN_NAME && ( strlen( PARM_OWN_NAME ) <= HCF_MAX_NAME_LEN )) {
616 strcpy( lp->StationName, PARM_OWN_NAME );
618 lp->EnableEncryption = PARM_ENABLE_ENCRYPTION;
619 if ( PARM_KEY1 && ( strlen( PARM_KEY1 ) <= MAX_KEY_LEN )) {
620 strcpy( lp->Key1, PARM_KEY1 );
622 if ( PARM_KEY2 && ( strlen( PARM_KEY2 ) <= MAX_KEY_LEN )) {
623 strcpy( lp->Key2, PARM_KEY2 );
625 if ( PARM_KEY3 && ( strlen( PARM_KEY3 ) <= MAX_KEY_LEN )) {
626 strcpy( lp->Key3, PARM_KEY3 );
628 if ( PARM_KEY4 && ( strlen( PARM_KEY4 ) <= MAX_KEY_LEN )) {
629 strcpy( lp->Key4, PARM_KEY4 );
632 lp->TransmitKeyID = PARM_TX_KEY;
634 key_string2key( lp->Key1, &(lp->DefaultKeys.key[0] ));
635 key_string2key( lp->Key2, &(lp->DefaultKeys.key[1] ));
636 key_string2key( lp->Key3, &(lp->DefaultKeys.key[2] ));
637 key_string2key( lp->Key4, &(lp->DefaultKeys.key[3] ));
639 lp->DownloadFirmware = 1 ; //;?to be upgraded PARM_DOWNLOAD_FIRMWARE;
640 lp->AuthKeyMgmtSuite = PARM_AUTH_KEY_MGMT_SUITE;
642 if ( strchr( "Yy", PARM_LOAD_BALANCING[0] ) != NULL ) {
643 lp->loadBalancing = 1;
644 } else {
645 lp->loadBalancing = 0;
648 if ( strchr( "Yy", PARM_MEDIUM_DISTRIBUTION[0] ) != NULL ) {
649 lp->mediumDistribution = 1;
650 } else {
651 lp->mediumDistribution = 0;
654 lp->txPowLevel = PARM_TX_POW_LEVEL;
656 lp->srsc[0] = PARM_SRSC_2GHZ;
657 lp->srsc[1] = PARM_SRSC_5GHZ;
658 lp->brsc[0] = PARM_BRSC_2GHZ;
659 lp->brsc[1] = PARM_BRSC_5GHZ;
660 #if 1 //;? (HCF_TYPE) & HCF_TYPE_STA
661 //;?seems reasonable that even an AP-only driver could afford this small additional footprint
662 lp->PortType = PARM_PORT_TYPE;
663 lp->MaxSleepDuration = PARM_MAX_SLEEP;
664 lp->authentication = PARM_AUTHENTICATION;
665 lp->atimWindow = PARM_OWN_ATIM_WINDOW;
666 lp->holdoverDuration = PARM_PM_HOLDOVER_DURATION;
667 lp->PMEnabled = PARM_PM_ENABLED; //;?
668 if ( strchr( "Yy", PARM_CREATE_IBSS[0] ) != NULL ) {
669 lp->CreateIBSS = 1;
670 } else {
671 lp->CreateIBSS = 0;
673 if ( strchr( "Nn", PARM_MULTICAST_RX[0] ) != NULL ) {
674 lp->MulticastReceive = 0;
675 } else {
676 lp->MulticastReceive = 1;
678 if ( strchr( "Yy", PARM_PROMISCUOUS_MODE[0] ) != NULL ) {
679 lp->promiscuousMode = 1;
680 } else {
681 lp->promiscuousMode = 0;
683 for( i = 0; i < ETH_ALEN; i++ ) {
684 lp->MACAddress[i] = PARM_NETWORK_ADDR[i];
687 lp->connectionControl = PARM_CONNECTION_CONTROL;
689 #endif /* HCF_STA */
690 #if 1 //;? (HCF_TYPE) & HCF_TYPE_AP
691 //;?should we restore this to allow smaller memory footprint
692 lp->DTIMPeriod = PARM_OWN_DTIM_PERIOD;
694 if ( strchr( "Yy", PARM_REJECT_ANY[0] ) != NULL ) {
695 lp->RejectAny = 1;
696 } else {
697 lp->RejectAny = 0;
699 if ( strchr( "Nn", PARM_EXCLUDE_UNENCRYPTED[0] ) != NULL ) {
700 lp->ExcludeUnencrypted = 0;
701 } else {
702 lp->ExcludeUnencrypted = 1;
704 if ( strchr( "Yy", PARM_MULTICAST_PM_BUFFERING[0] ) != NULL ) {
705 lp->multicastPMBuffering = 1;
706 } else {
707 lp->multicastPMBuffering = 0;
709 if ( strchr( "Yy", PARM_INTRA_BSS_RELAY[0] ) != NULL ) {
710 lp->intraBSSRelay = 1;
711 } else {
712 lp->intraBSSRelay = 0;
715 lp->ownBeaconInterval = PARM_OWN_BEACON_INTERVAL;
716 lp->coexistence = PARM_COEXISTENCE;
718 #ifdef USE_WDS
719 lp->wds_port[0].rtsThreshold = PARM_RTS_THRESHOLD1;
720 lp->wds_port[1].rtsThreshold = PARM_RTS_THRESHOLD2;
721 lp->wds_port[2].rtsThreshold = PARM_RTS_THRESHOLD3;
722 lp->wds_port[3].rtsThreshold = PARM_RTS_THRESHOLD4;
723 lp->wds_port[4].rtsThreshold = PARM_RTS_THRESHOLD5;
724 lp->wds_port[5].rtsThreshold = PARM_RTS_THRESHOLD6;
725 lp->wds_port[0].txRateCntl = PARM_TX_RATE1;
726 lp->wds_port[1].txRateCntl = PARM_TX_RATE2;
727 lp->wds_port[2].txRateCntl = PARM_TX_RATE3;
728 lp->wds_port[3].txRateCntl = PARM_TX_RATE4;
729 lp->wds_port[4].txRateCntl = PARM_TX_RATE5;
730 lp->wds_port[5].txRateCntl = PARM_TX_RATE6;
732 for( i = 0; i < ETH_ALEN; i++ ) {
733 lp->wds_port[0].wdsAddress[i] = PARM_WDS_ADDRESS1[i];
735 for( i = 0; i < ETH_ALEN; i++ ) {
736 lp->wds_port[1].wdsAddress[i] = PARM_WDS_ADDRESS2[i];
738 for( i = 0; i < ETH_ALEN; i++ ) {
739 lp->wds_port[2].wdsAddress[i] = PARM_WDS_ADDRESS3[i];
741 for( i = 0; i < ETH_ALEN; i++ ) {
742 lp->wds_port[3].wdsAddress[i] = PARM_WDS_ADDRESS4[i];
744 for( i = 0; i < ETH_ALEN; i++ ) {
745 lp->wds_port[4].wdsAddress[i] = PARM_WDS_ADDRESS5[i];
747 for( i = 0; i < ETH_ALEN; i++ ) {
748 lp->wds_port[5].wdsAddress[i] = PARM_WDS_ADDRESS6[i];
750 #endif /* USE_WDS */
751 #endif /* HCF_AP */
752 #ifdef USE_RTS
753 if ( strchr( "Yy", useRTS[0] ) != NULL ) {
754 lp->useRTS = 1;
755 } else {
756 lp->useRTS = 0;
758 #endif /* USE_RTS */
761 /* END NEW PARAMETERS */
764 wl_lock( lp, &flags );
766 /* Initialize the portState variable */
767 lp->portState = WVLAN_PORT_STATE_DISABLED;
769 /* Initialize the ScanResult struct */
770 memset( &( lp->scan_results ), 0, sizeof( lp->scan_results ));
771 lp->scan_results.scan_complete = FALSE;
773 /* Initialize the ProbeResult struct */
774 memset( &( lp->probe_results ), 0, sizeof( lp->probe_results ));
775 lp->probe_results.scan_complete = FALSE;
776 lp->probe_num_aps = 0;
779 /* Initialize Tx queue stuff */
780 memset( lp->txList, 0, sizeof( lp->txList ));
782 INIT_LIST_HEAD( &( lp->txFree ));
784 lp->txF.skb = NULL;
785 lp->txF.port = 0;
788 for( i = 0; i < DEFAULT_NUM_TX_FRAMES; i++ ) {
789 list_add_tail( &( lp->txList[i].node ), &( lp->txFree ));
793 for( i = 0; i < WVLAN_MAX_TX_QUEUES; i++ ) {
794 INIT_LIST_HEAD( &( lp->txQ[i] ));
797 lp->netif_queue_on = TRUE;
798 lp->txQ_count = 0;
799 /* Initialize the use_dma element in the adapter structure. Not sure if
800 this should be a compile-time or run-time configurable. So for now,
801 implement as run-time and just define here */
802 #ifdef WARP
803 #ifdef ENABLE_DMA
804 DBG_TRACE( DbgInfo, "HERMES 2.5 BUSMASTER DMA MODE\n" );
805 lp->use_dma = 1;
806 #else
807 DBG_TRACE( DbgInfo, "HERMES 2.5 PORT I/O MODE\n" );
808 lp->use_dma = 0;
809 #endif // ENABLE_DMA
810 #endif // WARP
812 /* Register the ISR handler information here, so that it's not done
813 repeatedly in the ISR */
814 tasklet_init(&lp->task, wl_isr_handler, (unsigned long)lp);
816 /* Connect to the adapter */
817 DBG_TRACE( DbgInfo, "Calling hcf_connect()...\n" );
818 hcf_status = hcf_connect( &lp->hcfCtx, dev->base_addr );
819 //HCF_ERR_INCOMP_FW is acceptable, because download must still take place
820 //HCF_ERR_INCOMP_PRI is not acceptable
821 if ( hcf_status != HCF_SUCCESS && hcf_status != HCF_ERR_INCOMP_FW ) {
822 DBG_ERROR( DbgInfo, "hcf_connect() failed, status: 0x%x\n", hcf_status );
823 wl_unlock( lp, &flags );
824 goto hcf_failed;
827 //;?should set HCF_version and how about driver_stat
828 lp->driverInfo.IO_address = dev->base_addr;
829 lp->driverInfo.IO_range = HCF_NUM_IO_PORTS; //;?conditionally 0x40 or 0x80 seems better
830 lp->driverInfo.IRQ_number = dev->irq;
831 lp->driverInfo.card_stat = lp->hcfCtx.IFB_CardStat;
832 //;? what happened to frame_type
834 /* Fill in the driver identity structure */
835 lp->driverIdentity.len = ( sizeof( lp->driverIdentity ) / sizeof( hcf_16 )) - 1;
836 lp->driverIdentity.typ = CFG_DRV_IDENTITY;
837 lp->driverIdentity.comp_id = DRV_IDENTITY;
838 lp->driverIdentity.variant = DRV_VARIANT;
839 lp->driverIdentity.version_major = DRV_MAJOR_VERSION;
840 lp->driverIdentity.version_minor = DRV_MINOR_VERSION;
843 /* Start the card here - This needs to be done in order to get the
844 MAC address for the network layer */
845 DBG_TRACE( DbgInfo, "Calling wvlan_go() to perform a card reset...\n" );
846 hcf_status = wl_go( lp );
848 if ( hcf_status != HCF_SUCCESS ) {
849 DBG_ERROR( DbgInfo, "wl_go() failed\n" );
850 wl_unlock( lp, &flags );
851 goto hcf_failed;
854 /* Certain RIDs must be set before enabling the ports */
855 wl_put_ltv_init( lp );
857 #if 0 //;?why was this already commented out in wl_lkm_720
858 /* Enable the ports */
859 if ( wl_adapter_is_open( lp->dev )) {
860 /* Enable the ports */
861 DBG_TRACE( DbgInfo, "Enabling Port 0\n" );
862 hcf_status = wl_enable( lp );
864 if ( hcf_status != HCF_SUCCESS ) {
865 DBG_TRACE( DbgInfo, "Enable port 0 failed: 0x%x\n", hcf_status );
868 #if (HCF_TYPE) & HCF_TYPE_AP
869 DBG_TRACE( DbgInfo, "Enabling WDS Ports\n" );
870 //wl_enable_wds_ports( lp );
871 #endif /* (HCF_TYPE) & HCF_TYPE_AP */
874 #endif
876 /* Fill out the MAC address information in the net_device struct */
877 memcpy( lp->dev->dev_addr, lp->MACAddress, ETH_ALEN );
878 dev->addr_len = ETH_ALEN;
880 lp->is_registered = TRUE;
882 #ifdef USE_PROFILE
883 /* Parse the config file for the sake of creating WDS ports if WDS is
884 configured there but not in the module options */
885 parse_config( dev );
886 #endif /* USE_PROFILE */
888 /* If we're going into AP Mode, register the "virtual" ethernet devices
889 needed for WDS */
890 WL_WDS_NETDEV_REGISTER( lp );
892 /* Reset the DownloadFirmware variable in the private struct. If the
893 config file is not used, this will not matter; if it is used, it
894 will be reparsed in wl_open(). This is done because logic in wl_open
895 used to check if a firmware download is needed is broken by parsing
896 the file here; however, this parsing is needed to register WDS ports
897 in AP mode, if they are configured */
898 lp->DownloadFirmware = WVLAN_DRV_MODE_STA; //;?download_firmware;
900 #ifdef USE_RTS
901 if ( lp->useRTS == 1 ) {
902 DBG_TRACE( DbgInfo, "ENTERING RTS MODE...\n" );
903 wl_act_int_off( lp );
904 lp->is_handling_int = WL_NOT_HANDLING_INT; // Not handling interrupts anymore
906 wl_disable( lp );
908 hcf_connect( &lp->hcfCtx, HCF_DISCONNECT);
910 #endif /* USE_RTS */
912 wl_unlock( lp, &flags );
914 DBG_TRACE( DbgInfo, "%s: Wireless, io_addr %#03lx, irq %d, ""mac_address ",
915 dev->name, dev->base_addr, dev->irq );
917 for( i = 0; i < ETH_ALEN; i++ ) {
918 printk( "%02X%c", dev->dev_addr[i], (( i < ( ETH_ALEN-1 )) ? ':' : '\n' ));
921 #if 0 //SCULL_USE_PROC /* don't waste space if unused */
922 create_proc_read_entry( "wlags", 0, NULL, scull_read_procmem, dev );
923 proc_mkdir("driver/wlags49", 0);
924 proc_write("driver/wlags49/wlags49_type", write_int, &lp->wlags49_type);
925 #endif /* SCULL_USE_PROC */
927 DBG_LEAVE( DbgInfo );
928 return result;
930 hcf_failed:
931 wl_hcf_error( dev, hcf_status );
933 failed:
935 DBG_ERROR( DbgInfo, "wl_insert() FAILED\n" );
937 if ( lp->is_registered == TRUE ) {
938 lp->is_registered = FALSE;
941 WL_WDS_NETDEV_DEREGISTER( lp );
943 result = -EFAULT;
946 DBG_LEAVE( DbgInfo );
947 return result;
948 } // wl_insert
949 /*============================================================================*/
952 /*******************************************************************************
953 * wl_reset()
954 *******************************************************************************
956 * DESCRIPTION:
958 * Reset the adapter.
960 * PARAMETERS:
962 * dev - a pointer to the net_device struct of the wireless device
964 * RETURNS:
966 * an HCF status code
968 ******************************************************************************/
969 int wl_reset(struct net_device *dev)
971 struct wl_private *lp = wl_priv(dev);
972 int hcf_status = HCF_SUCCESS;
973 /*------------------------------------------------------------------------*/
974 DBG_FUNC( "wl_reset" );
975 DBG_ENTER( DbgInfo );
976 DBG_PARAM( DbgInfo, "dev", "%s (0x%p)", dev->name, dev );
977 DBG_PARAM( DbgInfo, "dev->base_addr", "(%#03lx)", dev->base_addr );
980 * The caller should already have a lock and
981 * disable the interrupts, we do not lock here,
982 * nor do we enable/disable interrupts!
985 DBG_TRACE( DbgInfo, "Device Base Address: %#03lx\n", dev->base_addr );
986 if ( dev->base_addr ) {
987 /* Shutdown the adapter. */
988 hcf_connect( &lp->hcfCtx, HCF_DISCONNECT );
990 /* Reset the driver information. */
991 lp->txBytes = 0;
993 /* Connect to the adapter. */
994 hcf_status = hcf_connect( &lp->hcfCtx, dev->base_addr );
995 if ( hcf_status != HCF_SUCCESS && hcf_status != HCF_ERR_INCOMP_FW ) {
996 DBG_ERROR( DbgInfo, "hcf_connect() failed, status: 0x%x\n", hcf_status );
997 goto out;
1000 /* Check if firmware is present, if not change state */
1001 if ( hcf_status == HCF_ERR_INCOMP_FW ) {
1002 lp->firmware_present = WL_FRIMWARE_NOT_PRESENT;
1005 /* Initialize the portState variable */
1006 lp->portState = WVLAN_PORT_STATE_DISABLED;
1008 /* Restart the adapter. */
1009 hcf_status = wl_go( lp );
1010 if ( hcf_status != HCF_SUCCESS ) {
1011 DBG_ERROR( DbgInfo, "wl_go() failed, status: 0x%x\n", hcf_status );
1012 goto out;
1015 /* Certain RIDs must be set before enabling the ports */
1016 wl_put_ltv_init( lp );
1017 } else {
1018 DBG_ERROR( DbgInfo, "Device Base Address INVALID!!!\n" );
1021 out:
1022 DBG_LEAVE( DbgInfo );
1023 return hcf_status;
1024 } // wl_reset
1025 /*============================================================================*/
1028 /*******************************************************************************
1029 * wl_go()
1030 *******************************************************************************
1032 * DESCRIPTION:
1034 * Reset the adapter.
1036 * PARAMETERS:
1038 * dev - a pointer to the net_device struct of the wireless device
1040 * RETURNS:
1042 * an HCF status code
1044 ******************************************************************************/
1045 int wl_go( struct wl_private *lp )
1047 int hcf_status = HCF_SUCCESS;
1048 char *cp = NULL; //fw_image
1049 int retries = 0;
1050 /*------------------------------------------------------------------------*/
1051 DBG_FUNC( "wl_go" );
1052 DBG_ENTER( DbgInfo );
1054 hcf_status = wl_disable( lp );
1055 if ( hcf_status != HCF_SUCCESS ) {
1056 DBG_TRACE( DbgInfo, "Disable port 0 failed: 0x%x\n", hcf_status );
1058 while (( hcf_status != HCF_SUCCESS ) && (retries < 10)) {
1059 retries++;
1060 hcf_status = wl_disable( lp );
1062 if ( hcf_status == HCF_SUCCESS ) {
1063 DBG_TRACE( DbgInfo, "Disable port 0 succes : %d retries\n", retries );
1064 } else {
1065 DBG_TRACE( DbgInfo, "Disable port 0 failed after: %d retries\n", retries );
1069 #if 1 //;? (HCF_TYPE) & HCF_TYPE_AP
1070 //DBG_TRACE( DbgInfo, "Disabling WDS Ports\n" );
1071 //wl_disable_wds_ports( lp );
1072 #endif /* (HCF_TYPE) & HCF_TYPE_AP */
1074 //;?what was the purpose of this
1075 // /* load the appropriate firmware image, depending on driver mode */
1076 // lp->ltvRecord.len = ( sizeof( CFG_RANGE20_STRCT ) / sizeof( hcf_16 )) - 1;
1077 // lp->ltvRecord.typ = CFG_DRV_ACT_RANGES_PRI;
1078 // hcf_get_info( &lp->hcfCtx, (LTVP)&( lp->ltvRecord ));
1080 #if BIN_DL
1081 if ( strlen( lp->fw_image_filename ) ) {
1082 mm_segment_t fs;
1083 int file_desc;
1084 int rc;
1086 DBG_TRACE( DbgInfo, "F/W image:%s:\n", lp->fw_image_filename );
1087 /* Obtain a user-space process context, storing the original context */
1088 fs = get_fs( );
1089 set_fs( get_ds( ));
1090 file_desc = open( lp->fw_image_filename, O_RDONLY, 0 );
1091 if ( file_desc == -1 ) {
1092 DBG_ERROR( DbgInfo, "No image file found\n" );
1093 } else {
1094 DBG_TRACE( DbgInfo, "F/W image file found\n" );
1095 #define DHF_ALLOC_SIZE 96000 //just below 96K, let's hope it suffices for now and for the future
1096 cp = (char*)vmalloc( DHF_ALLOC_SIZE );
1097 if ( cp == NULL ) {
1098 DBG_ERROR( DbgInfo, "error in vmalloc\n" );
1099 } else {
1100 rc = read( file_desc, cp, DHF_ALLOC_SIZE );
1101 if ( rc == DHF_ALLOC_SIZE ) {
1102 DBG_ERROR( DbgInfo, "buffer too small, %d\n", DHF_ALLOC_SIZE );
1103 } else if ( rc > 0 ) {
1104 DBG_TRACE( DbgInfo, "read O.K.: %d bytes %.12s\n", rc, cp );
1105 rc = read( file_desc, &cp[rc], 1 );
1106 if ( rc == 0 ) { //;/change to an until-loop at rc<=0
1107 DBG_TRACE( DbgInfo, "no more to read\n" );
1110 if ( rc != 0 ) {
1111 DBG_ERROR( DbgInfo, "file not read in one swoop or other error"\
1112 ", give up, too complicated, rc = %0X\n", rc );
1113 DBG_ERROR( DbgInfo, "still have to change code to get a real download now !!!!!!!!\n" );
1114 } else {
1115 DBG_TRACE( DbgInfo, "before dhf_download_binary\n" );
1116 hcf_status = dhf_download_binary( (memimage *)cp );
1117 DBG_TRACE( DbgInfo, "after dhf_download_binary, before dhf_download_fw\n" );
1118 //;?improve error flow/handling
1119 hcf_status = dhf_download_fw( &lp->hcfCtx, (memimage *)cp );
1120 DBG_TRACE( DbgInfo, "after dhf_download_fw\n" );
1122 vfree( cp );
1124 close( file_desc );
1126 set_fs( fs ); /* Return to the original context */
1128 #endif // BIN_DL
1130 /* If firmware is present but the type is unknown then download anyway */
1131 if ( (lp->firmware_present == WL_FRIMWARE_PRESENT)
1133 ( CNV_INT_TO_LITTLE( lp->hcfCtx.IFB_FWIdentity.comp_id ) != COMP_ID_FW_STA )
1135 ( CNV_INT_TO_LITTLE( lp->hcfCtx.IFB_FWIdentity.comp_id ) != COMP_ID_FW_AP ) ) {
1136 /* Unknown type, download needed. */
1137 lp->firmware_present = WL_FRIMWARE_NOT_PRESENT;
1140 if(lp->firmware_present == WL_FRIMWARE_NOT_PRESENT)
1142 if ( cp == NULL ) {
1143 DBG_TRACE( DbgInfo, "Downloading STA firmware...\n" );
1144 // hcf_status = dhf_download_fw( &lp->hcfCtx, &station );
1145 hcf_status = dhf_download_fw( &lp->hcfCtx, &fw_image );
1147 if ( hcf_status != HCF_SUCCESS ) {
1148 DBG_ERROR( DbgInfo, "Firmware Download failed\n" );
1149 DBG_LEAVE( DbgInfo );
1150 return hcf_status;
1153 /* Report the FW versions */
1154 //;?obsolete, use the available IFB info:: wl_get_pri_records( lp );
1155 if ( CNV_INT_TO_LITTLE( lp->hcfCtx.IFB_FWIdentity.comp_id ) == COMP_ID_FW_STA ) {
1156 DBG_TRACE( DbgInfo, "downloaded station F/W\n" );
1157 } else if ( CNV_INT_TO_LITTLE( lp->hcfCtx.IFB_FWIdentity.comp_id ) == COMP_ID_FW_AP ) {
1158 DBG_TRACE( DbgInfo, "downloaded AP F/W\n" );
1159 } else {
1160 DBG_ERROR( DbgInfo, "unknown F/W type\n" );
1164 * Downloaded, no need to repeat this next time, assume the
1165 * contents stays in the card until it is powered off. Note we
1166 * do not switch firmware on the fly, the firmware is fixed in
1167 * the driver for now.
1169 lp->firmware_present = WL_FRIMWARE_PRESENT;
1171 DBG_TRACE( DbgInfo, "ComponentID:%04x variant:%04x major:%04x minor:%04x\n",
1172 CNV_INT_TO_LITTLE( lp->hcfCtx.IFB_FWIdentity.comp_id ),
1173 CNV_INT_TO_LITTLE( lp->hcfCtx.IFB_FWIdentity.variant ),
1174 CNV_INT_TO_LITTLE( lp->hcfCtx.IFB_FWIdentity.version_major ),
1175 CNV_INT_TO_LITTLE( lp->hcfCtx.IFB_FWIdentity.version_minor ));
1177 /* now we wil get the MAC address of the card */
1178 lp->ltvRecord.len = 4;
1179 if ( CNV_INT_TO_LITTLE( lp->hcfCtx.IFB_FWIdentity.comp_id ) == COMP_ID_FW_AP ) {
1180 lp->ltvRecord.typ = CFG_NIC_MAC_ADDR;
1181 } else
1183 lp->ltvRecord.typ = CFG_CNF_OWN_MAC_ADDR;
1185 hcf_status = hcf_get_info( &lp->hcfCtx, (LTVP)&( lp->ltvRecord ));
1186 if ( hcf_status != HCF_SUCCESS ) {
1187 DBG_ERROR( DbgInfo, "Could not retrieve MAC address\n" );
1188 DBG_LEAVE( DbgInfo );
1189 return hcf_status;
1191 memcpy( lp->MACAddress, &lp->ltvRecord.u.u8[0], ETH_ALEN );
1192 DBG_TRACE( DbgInfo, "Card MAC Address: %s\n", DbgHwAddr( lp->MACAddress ));
1194 /* Write out configuration to the device, enable, and reconnect. However,
1195 only reconnect if in AP mode. For STA mode, need to wait for passive scan
1196 completion before a connect can be issued */
1197 wl_put_ltv( lp );
1198 /* Enable the ports */
1199 hcf_status = wl_enable( lp );
1201 if ( lp->DownloadFirmware == WVLAN_DRV_MODE_AP ) {
1202 #ifdef USE_WDS
1203 wl_enable_wds_ports( lp );
1204 #endif // USE_WDS
1205 hcf_status = wl_connect( lp );
1207 DBG_LEAVE( DbgInfo );
1208 return hcf_status;
1209 } // wl_go
1210 /*============================================================================*/
1213 /*******************************************************************************
1214 * wl_set_wep_keys()
1215 *******************************************************************************
1217 * DESCRIPTION:
1219 * Write TxKeyID and WEP keys to the adapter. This is separated from
1220 * wl_apply() to allow dynamic WEP key updates through the wireless
1221 * extensions.
1223 * PARAMETERS:
1225 * lp - a pointer to the wireless adapter's private structure
1227 * RETURNS:
1229 * N/A
1231 ******************************************************************************/
1232 void wl_set_wep_keys( struct wl_private *lp )
1234 int count = 0;
1235 /*------------------------------------------------------------------------*/
1236 DBG_FUNC( "wl_set_wep_keys" );
1237 DBG_ENTER( DbgInfo );
1238 DBG_PARAM( DbgInfo, "lp", "%s (0x%p)", lp->dev->name, lp );
1239 if ( lp->EnableEncryption ) {
1240 /* NOTE: CFG_CNF_ENCRYPTION is set in wl_put_ltv() as it's a static
1241 RID */
1243 /* set TxKeyID */
1244 lp->ltvRecord.len = 2;
1245 lp->ltvRecord.typ = CFG_TX_KEY_ID;
1246 lp->ltvRecord.u.u16[0] = CNV_INT_TO_LITTLE(lp->TransmitKeyID - 1);
1248 hcf_put_info( &lp->hcfCtx, (LTVP)&( lp->ltvRecord ));
1250 DBG_TRACE( DbgInfo, "Key 1 len: %d\n", lp->DefaultKeys.key[0].len );
1251 DBG_TRACE( DbgInfo, "Key 2 len: %d\n", lp->DefaultKeys.key[1].len );
1252 DBG_TRACE( DbgInfo, "Key 3 len: %d\n", lp->DefaultKeys.key[2].len );
1253 DBG_TRACE( DbgInfo, "Key 4 len: %d\n", lp->DefaultKeys.key[3].len );
1255 /* write keys */
1256 lp->DefaultKeys.len = sizeof( lp->DefaultKeys ) / sizeof( hcf_16 ) - 1;
1257 lp->DefaultKeys.typ = CFG_DEFAULT_KEYS;
1259 /* endian translate the appropriate key information */
1260 for( count = 0; count < MAX_KEYS; count++ ) {
1261 lp->DefaultKeys.key[count].len = CNV_INT_TO_LITTLE( lp->DefaultKeys.key[count].len );
1264 hcf_put_info( &lp->hcfCtx, (LTVP)&( lp->DefaultKeys ));
1266 /* Reverse the above endian translation, since these keys are accessed
1267 elsewhere */
1268 for( count = 0; count < MAX_KEYS; count++ ) {
1269 lp->DefaultKeys.key[count].len = CNV_INT_TO_LITTLE( lp->DefaultKeys.key[count].len );
1272 DBG_NOTICE( DbgInfo, "encrypt: %d, ID: %d\n", lp->EnableEncryption, lp->TransmitKeyID );
1273 DBG_NOTICE( DbgInfo, "set key: %s(%d) [%d]\n", lp->DefaultKeys.key[lp->TransmitKeyID-1].key, lp->DefaultKeys.key[lp->TransmitKeyID-1].len, lp->TransmitKeyID-1 );
1276 DBG_LEAVE( DbgInfo );
1277 } // wl_set_wep_keys
1278 /*============================================================================*/
1281 /*******************************************************************************
1282 * wl_apply()
1283 *******************************************************************************
1285 * DESCRIPTION:
1287 * Write the parameters to the adapter. (re-)enables the card if device is
1288 * open. Returns hcf_status of hcf_enable().
1290 * PARAMETERS:
1292 * lp - a pointer to the wireless adapter's private structure
1294 * RETURNS:
1296 * an HCF status code
1298 ******************************************************************************/
1299 int wl_apply(struct wl_private *lp)
1301 int hcf_status = HCF_SUCCESS;
1302 /*------------------------------------------------------------------------*/
1303 DBG_FUNC( "wl_apply" );
1304 DBG_ENTER( DbgInfo );
1305 DBG_ASSERT( lp != NULL);
1306 DBG_PARAM( DbgInfo, "lp", "%s (0x%p)", lp->dev->name, lp );
1308 if ( !( lp->flags & WVLAN2_UIL_BUSY )) {
1309 /* The adapter parameters have changed:
1310 disable card
1311 reload parameters
1312 enable card
1315 if ( wl_adapter_is_open( lp->dev )) {
1316 /* Disconnect and disable if necessary */
1317 hcf_status = wl_disconnect( lp );
1318 if ( hcf_status != HCF_SUCCESS ) {
1319 DBG_ERROR( DbgInfo, "Disconnect failed\n" );
1320 DBG_LEAVE( DbgInfo );
1321 return -1;
1323 hcf_status = wl_disable( lp );
1324 if ( hcf_status != HCF_SUCCESS ) {
1325 DBG_ERROR( DbgInfo, "Disable failed\n" );
1326 DBG_LEAVE( DbgInfo );
1327 return -1;
1328 } else {
1329 /* Write out configuration to the device, enable, and reconnect.
1330 However, only reconnect if in AP mode. For STA mode, need to
1331 wait for passive scan completion before a connect can be
1332 issued */
1333 hcf_status = wl_put_ltv( lp );
1335 if ( hcf_status == HCF_SUCCESS ) {
1336 hcf_status = wl_enable( lp );
1338 if ( CNV_INT_TO_LITTLE( lp->hcfCtx.IFB_FWIdentity.comp_id ) == COMP_ID_FW_AP ) {
1339 hcf_status = wl_connect( lp );
1341 } else {
1342 DBG_WARNING( DbgInfo, "wl_put_ltv() failed\n" );
1348 DBG_LEAVE( DbgInfo );
1349 return hcf_status;
1350 } // wl_apply
1351 /*============================================================================*/
1354 /*******************************************************************************
1355 * wl_put_ltv_init()
1356 *******************************************************************************
1358 * DESCRIPTION:
1360 * Used to set basic parameters for card initialization.
1362 * PARAMETERS:
1364 * lp - a pointer to the wireless adapter's private structure
1366 * RETURNS:
1368 * an HCF status code
1370 ******************************************************************************/
1371 int wl_put_ltv_init( struct wl_private *lp )
1373 int i;
1374 int hcf_status;
1375 CFG_RID_LOG_STRCT *RidLog;
1376 /*------------------------------------------------------------------------*/
1377 DBG_FUNC( "wl_put_ltv_init" );
1378 DBG_ENTER( DbgInfo );
1379 if ( lp == NULL ) {
1380 DBG_ERROR( DbgInfo, "lp pointer is NULL\n" );
1381 DBG_LEAVE( DbgInfo );
1382 return -1;
1384 /* DMA/IO */
1385 lp->ltvRecord.len = 2;
1386 lp->ltvRecord.typ = CFG_CNTL_OPT;
1388 /* The Card Services build must ALWAYS configure for 16-bit I/O. PCI or
1389 CardBus can be set to either 16/32 bit I/O, or Bus Master DMA, but only
1390 for Hermes-2.5 */
1391 #ifdef BUS_PCMCIA
1392 lp->ltvRecord.u.u16[0] = CNV_INT_TO_LITTLE( USE_16BIT );
1393 #else
1394 if ( lp->use_dma ) {
1395 lp->ltvRecord.u.u16[0] = CNV_INT_TO_LITTLE( USE_DMA );
1396 } else {
1397 lp->ltvRecord.u.u16[0] = CNV_INT_TO_LITTLE( 0 );
1400 #endif
1401 hcf_status = hcf_put_info( &lp->hcfCtx, (LTVP)&( lp->ltvRecord ));
1402 DBG_TRACE( DbgInfo, "CFG_CNTL_OPT : 0x%04x\n",
1403 lp->ltvRecord.u.u16[0] );
1404 DBG_TRACE( DbgInfo, "CFG_CNTL_OPT result : 0x%04x\n",
1405 hcf_status );
1407 /* Register the list of RIDs on which asynchronous notification is
1408 required. Note that this mechanism replaces the mailbox, so the mailbox
1409 can be queried by the host (if desired) without contention from us */
1410 i=0;
1412 lp->RidList[i].len = sizeof( lp->ProbeResp );
1413 lp->RidList[i].typ = CFG_ACS_SCAN;
1414 lp->RidList[i].bufp = (wci_recordp)&lp->ProbeResp;
1415 //lp->ProbeResp.infoType = 0xFFFF;
1416 i++;
1418 lp->RidList[i].len = sizeof( lp->assoc_stat );
1419 lp->RidList[i].typ = CFG_ASSOC_STAT;
1420 lp->RidList[i].bufp = (wci_recordp)&lp->assoc_stat;
1421 lp->assoc_stat.len = 0xFFFF;
1422 i++;
1424 lp->RidList[i].len = 4;
1425 lp->RidList[i].typ = CFG_UPDATED_INFO_RECORD;
1426 lp->RidList[i].bufp = (wci_recordp)&lp->updatedRecord;
1427 lp->updatedRecord.len = 0xFFFF;
1428 i++;
1430 lp->RidList[i].len = sizeof( lp->sec_stat );
1431 lp->RidList[i].typ = CFG_SECURITY_STAT;
1432 lp->RidList[i].bufp = (wci_recordp)&lp->sec_stat;
1433 lp->sec_stat.len = 0xFFFF;
1434 i++;
1436 lp->RidList[i].typ = 0; // Terminate List
1438 RidLog = (CFG_RID_LOG_STRCT *)&lp->ltvRecord;
1439 RidLog->len = 3;
1440 RidLog->typ = CFG_REG_INFO_LOG;
1441 RidLog->recordp = (RID_LOGP)&lp->RidList[0];
1443 hcf_status = hcf_put_info( &lp->hcfCtx, (LTVP)&( lp->ltvRecord ));
1444 DBG_TRACE( DbgInfo, "CFG_REG_INFO_LOG\n" );
1445 DBG_TRACE( DbgInfo, "CFG_REG_INFO_LOG result : 0x%04x\n",
1446 hcf_status );
1447 DBG_LEAVE( DbgInfo );
1448 return hcf_status;
1449 } // wl_put_ltv_init
1450 /*============================================================================*/
1453 /*******************************************************************************
1454 * wl_put_ltv()
1455 *******************************************************************************
1457 * DESCRIPTION:
1459 * Used by wvlan_apply() and wvlan_go to set the card's configuration.
1461 * PARAMETERS:
1463 * lp - a pointer to the wireless adapter's private structure
1465 * RETURNS:
1467 * an HCF status code
1469 ******************************************************************************/
1470 int wl_put_ltv( struct wl_private *lp )
1472 int len;
1473 int hcf_status;
1474 /*------------------------------------------------------------------------*/
1475 DBG_FUNC( "wl_put_ltv" );
1476 DBG_ENTER( DbgInfo );
1478 if ( lp == NULL ) {
1479 DBG_ERROR( DbgInfo, "lp pointer is NULL\n" );
1480 return -1;
1482 if ( CNV_INT_TO_LITTLE( lp->hcfCtx.IFB_FWIdentity.comp_id ) == COMP_ID_FW_AP ) {
1483 lp->maxPort = 6; //;?why set this here and not as part of download process
1484 } else {
1485 lp->maxPort = 0;
1488 /* Send our configuration to the card. Perform any endian translation
1489 necessary */
1490 /* Register the Mailbox; VxWorks does this elsewhere; why;? */
1491 lp->ltvRecord.len = 4;
1492 lp->ltvRecord.typ = CFG_REG_MB;
1493 lp->ltvRecord.u.u32[0] = (u_long)&( lp->mailbox );
1494 lp->ltvRecord.u.u16[2] = ( MB_SIZE / sizeof( hcf_16 ));
1495 hcf_status = hcf_put_info( &lp->hcfCtx, (LTVP)&( lp->ltvRecord ));
1497 /* Max Data Length */
1498 lp->ltvRecord.len = 2;
1499 lp->ltvRecord.typ = CFG_CNF_MAX_DATA_LEN;
1500 lp->ltvRecord.u.u16[0] = CNV_INT_TO_LITTLE( HCF_MAX_PACKET_SIZE );
1501 hcf_status = hcf_put_info( &lp->hcfCtx, (LTVP)&( lp->ltvRecord ));
1503 /* System Scale / Distance between APs */
1504 lp->ltvRecord.len = 2;
1505 lp->ltvRecord.typ = CFG_CNF_SYSTEM_SCALE;
1506 lp->ltvRecord.u.u16[0] = CNV_INT_TO_LITTLE( lp->DistanceBetweenAPs );
1507 hcf_status = hcf_put_info( &lp->hcfCtx, (LTVP)&( lp->ltvRecord ));
1509 /* Channel */
1510 if ( lp->CreateIBSS && ( lp->Channel == 0 )) {
1511 DBG_TRACE( DbgInfo, "Create IBSS" );
1512 lp->Channel = 10;
1514 lp->ltvRecord.len = 2;
1515 lp->ltvRecord.typ = CFG_CNF_OWN_CHANNEL;
1516 lp->ltvRecord.u.u16[0] = CNV_INT_TO_LITTLE( lp->Channel );
1517 hcf_status = hcf_put_info( &lp->hcfCtx, (LTVP)&( lp->ltvRecord ));
1519 /* Microwave Robustness */
1520 lp->ltvRecord.len = 2;
1521 lp->ltvRecord.typ = CFG_CNF_MICRO_WAVE;
1522 lp->ltvRecord.u.u16[0] = CNV_INT_TO_LITTLE( lp->MicrowaveRobustness );
1523 hcf_status = hcf_put_info( &lp->hcfCtx, (LTVP)&( lp->ltvRecord ));
1525 /* Load Balancing */
1526 lp->ltvRecord.len = 2;
1527 lp->ltvRecord.typ = CFG_CNF_LOAD_BALANCING;
1528 lp->ltvRecord.u.u16[0] = CNV_INT_TO_LITTLE( lp->loadBalancing );
1529 hcf_status = hcf_put_info( &lp->hcfCtx, (LTVP)&( lp->ltvRecord ));
1531 /* Medium Distribution */
1532 lp->ltvRecord.len = 2;
1533 lp->ltvRecord.typ = CFG_CNF_MEDIUM_DISTRIBUTION;
1534 lp->ltvRecord.u.u16[0] = CNV_INT_TO_LITTLE( lp->mediumDistribution );
1535 hcf_status = hcf_put_info( &lp->hcfCtx, (LTVP)&( lp->ltvRecord ));
1536 /* Country Code */
1538 #ifdef WARP
1539 /* Tx Power Level (for supported cards) */
1540 lp->ltvRecord.len = 2;
1541 lp->ltvRecord.typ = CFG_CNF_TX_POW_LVL;
1542 lp->ltvRecord.u.u16[0] = CNV_INT_TO_LITTLE( lp->txPowLevel );
1543 hcf_status = hcf_put_info( &lp->hcfCtx, (LTVP)&( lp->ltvRecord ));
1545 /* Short Retry Limit */
1546 /*lp->ltvRecord.len = 2;
1547 lp->ltvRecord.typ = 0xFC32;
1548 lp->ltvRecord.u.u16[0] = CNV_INT_TO_LITTLE( lp->shortRetryLimit );
1549 hcf_status = hcf_put_info( &lp->hcfCtx, (LTVP)&( lp->ltvRecord ));
1552 /* Long Retry Limit */
1553 /*lp->ltvRecord.len = 2;
1554 lp->ltvRecord.typ = 0xFC33;
1555 lp->ltvRecord.u.u16[0] = CNV_INT_TO_LITTLE( lp->longRetryLimit );
1556 hcf_status = hcf_put_info( &lp->hcfCtx, (LTVP)&( lp->ltvRecord ));
1559 /* Supported Rate Set Control */
1560 lp->ltvRecord.len = 3;
1561 lp->ltvRecord.typ = CFG_SUPPORTED_RATE_SET_CNTL; //0xFC88;
1562 lp->ltvRecord.u.u16[0] = CNV_INT_TO_LITTLE( lp->srsc[0] );
1563 lp->ltvRecord.u.u16[1] = CNV_INT_TO_LITTLE( lp->srsc[1] );
1564 hcf_status = hcf_put_info( &lp->hcfCtx, (LTVP)&( lp->ltvRecord ));
1566 /* Basic Rate Set Control */
1567 lp->ltvRecord.len = 3;
1568 lp->ltvRecord.typ = CFG_BASIC_RATE_SET_CNTL; //0xFC89;
1569 lp->ltvRecord.u.u16[0] = CNV_INT_TO_LITTLE( lp->brsc[0] );
1570 lp->ltvRecord.u.u16[1] = CNV_INT_TO_LITTLE( lp->brsc[1] );
1571 hcf_status = hcf_put_info( &lp->hcfCtx, (LTVP)&( lp->ltvRecord ));
1573 /* Frame Burst Limit */
1574 /* Defined, but not currently available in Firmware */
1576 #endif // WARP
1578 #ifdef WARP
1579 /* Multicast Rate */
1580 lp->ltvRecord.len = 3;
1581 lp->ltvRecord.typ = CFG_CNF_MCAST_RATE;
1582 lp->ltvRecord.u.u16[0] = CNV_INT_TO_LITTLE( lp->MulticastRate[0] );
1583 lp->ltvRecord.u.u16[1] = CNV_INT_TO_LITTLE( lp->MulticastRate[1] );
1584 #else
1585 lp->ltvRecord.len = 2;
1586 lp->ltvRecord.typ = CFG_CNF_MCAST_RATE;
1587 lp->ltvRecord.u.u16[0] = CNV_INT_TO_LITTLE( lp->MulticastRate[0] );
1588 #endif // WARP
1589 hcf_status = hcf_put_info( &lp->hcfCtx, (LTVP)&( lp->ltvRecord ));
1591 /* Own Name (Station Nickname) */
1592 if (( len = ( strlen( lp->StationName ) + 1 ) & ~0x01 ) != 0 ) {
1593 //DBG_TRACE( DbgInfo, "CFG_CNF_OWN_NAME : %s\n",
1594 // lp->StationName );
1596 lp->ltvRecord.len = 2 + ( len / sizeof( hcf_16 ));
1597 lp->ltvRecord.typ = CFG_CNF_OWN_NAME;
1598 lp->ltvRecord.u.u16[0] = CNV_INT_TO_LITTLE( strlen( lp->StationName ));
1600 memcpy( &( lp->ltvRecord.u.u8[2] ), lp->StationName, len );
1601 } else {
1602 //DBG_TRACE( DbgInfo, "CFG_CNF_OWN_NAME : EMPTY\n" );
1604 lp->ltvRecord.len = 2;
1605 lp->ltvRecord.typ = CFG_CNF_OWN_NAME;
1606 lp->ltvRecord.u.u16[0] = CNV_INT_TO_LITTLE( 0 );
1609 hcf_status = hcf_put_info( &lp->hcfCtx, (LTVP)&( lp->ltvRecord ));
1611 //DBG_TRACE( DbgInfo, "CFG_CNF_OWN_NAME result : 0x%04x\n",
1612 // hcf_status );
1614 /* The following are set in STA mode only */
1615 if ( CNV_INT_TO_LITTLE( lp->hcfCtx.IFB_FWIdentity.comp_id ) == COMP_ID_FW_STA ) {
1617 /* RTS Threshold */
1618 lp->ltvRecord.len = 2;
1619 lp->ltvRecord.typ = CFG_RTS_THRH;
1620 lp->ltvRecord.u.u16[0] = CNV_INT_TO_LITTLE( lp->RTSThreshold );
1621 hcf_status = hcf_put_info( &lp->hcfCtx, (LTVP)&( lp->ltvRecord ));
1623 /* Port Type */
1624 lp->ltvRecord.len = 2;
1625 lp->ltvRecord.typ = CFG_CNF_PORT_TYPE;
1626 lp->ltvRecord.u.u16[0] = CNV_INT_TO_LITTLE( lp->PortType );
1627 hcf_status = hcf_put_info( &lp->hcfCtx, (LTVP)&( lp->ltvRecord ));
1629 /* Tx Rate Control */
1630 #ifdef WARP
1631 lp->ltvRecord.len = 3;
1632 lp->ltvRecord.typ = CFG_TX_RATE_CNTL;
1633 lp->ltvRecord.u.u16[0] = CNV_INT_TO_LITTLE( lp->TxRateControl[0] );
1634 lp->ltvRecord.u.u16[1] = CNV_INT_TO_LITTLE( lp->TxRateControl[1] );
1635 #else
1636 lp->ltvRecord.len = 2;
1637 lp->ltvRecord.typ = CFG_TX_RATE_CNTL;
1638 lp->ltvRecord.u.u16[0] = CNV_INT_TO_LITTLE( lp->TxRateControl[0] );
1639 #endif // WARP
1641 //;?skip temporarily to see whether the RID or something else is the probelm hcf_status = hcf_put_info( &lp->hcfCtx, (LTVP)&( lp->ltvRecord ));
1643 DBG_TRACE( DbgInfo, "CFG_TX_RATE_CNTL 2.4GHz : 0x%04x\n",
1644 lp->TxRateControl[0] );
1645 DBG_TRACE( DbgInfo, "CFG_TX_RATE_CNTL 5.0GHz : 0x%04x\n",
1646 lp->TxRateControl[1] );
1647 DBG_TRACE( DbgInfo, "CFG_TX_RATE_CNTL result : 0x%04x\n",
1648 hcf_status );
1649 /* Power Management */
1650 lp->ltvRecord.len = 2;
1651 lp->ltvRecord.typ = CFG_CNF_PM_ENABLED;
1652 lp->ltvRecord.u.u16[0] = CNV_INT_TO_LITTLE( lp->PMEnabled );
1653 // lp->ltvRecord.u.u16[0] = CNV_INT_TO_LITTLE( 0x8001 );
1654 DBG_TRACE( DbgInfo, "CFG_CNF_PM_ENABLED : 0x%04x\n", lp->PMEnabled );
1655 hcf_status = hcf_put_info( &lp->hcfCtx, (LTVP)&( lp->ltvRecord ));
1656 /* Multicast Receive */
1657 lp->ltvRecord.len = 2;
1658 lp->ltvRecord.typ = CFG_CNF_MCAST_RX;
1659 lp->ltvRecord.u.u16[0] = CNV_INT_TO_LITTLE( lp->MulticastReceive );
1660 hcf_status = hcf_put_info( &lp->hcfCtx, (LTVP)&( lp->ltvRecord ));
1662 /* Max Sleep Duration */
1663 lp->ltvRecord.len = 2;
1664 lp->ltvRecord.typ = CFG_CNF_MAX_SLEEP_DURATION;
1665 lp->ltvRecord.u.u16[0] = CNV_INT_TO_LITTLE( lp->MaxSleepDuration );
1666 hcf_status = hcf_put_info( &lp->hcfCtx, (LTVP)&( lp->ltvRecord ));
1668 /* Create IBSS */
1669 lp->ltvRecord.len = 2;
1670 lp->ltvRecord.typ = CFG_CREATE_IBSS;
1671 lp->ltvRecord.u.u16[0] = CNV_INT_TO_LITTLE( lp->CreateIBSS );
1672 hcf_status = hcf_put_info( &lp->hcfCtx, (LTVP)&( lp->ltvRecord ));
1674 /* Desired SSID */
1675 if ((( len = ( strlen( lp->NetworkName ) + 1 ) & ~0x01 ) != 0 ) &&
1676 ( strcmp( lp->NetworkName, "ANY" ) != 0 ) &&
1677 ( strcmp( lp->NetworkName, "any" ) != 0 )) {
1678 //DBG_TRACE( DbgInfo, "CFG_DESIRED_SSID : %s\n",
1679 // lp->NetworkName );
1681 lp->ltvRecord.len = 2 + (len / sizeof(hcf_16));
1682 lp->ltvRecord.typ = CFG_DESIRED_SSID;
1683 lp->ltvRecord.u.u16[0] = CNV_INT_TO_LITTLE( strlen( lp->NetworkName ));
1685 memcpy( &( lp->ltvRecord.u.u8[2] ), lp->NetworkName, len );
1686 } else {
1687 //DBG_TRACE( DbgInfo, "CFG_DESIRED_SSID : ANY\n" );
1689 lp->ltvRecord.len = 2;
1690 lp->ltvRecord.typ = CFG_DESIRED_SSID;
1691 lp->ltvRecord.u.u16[0] = CNV_INT_TO_LITTLE( 0 );
1694 hcf_status = hcf_put_info( &lp->hcfCtx, (LTVP)&( lp->ltvRecord ));
1696 //DBG_TRACE( DbgInfo, "CFG_DESIRED_SSID result : 0x%04x\n",
1697 // hcf_status );
1698 /* Own ATIM window */
1699 lp->ltvRecord.len = 2;
1700 lp->ltvRecord.typ = CFG_CNF_OWN_ATIM_WINDOW;
1701 lp->ltvRecord.u.u16[0] = CNV_INT_TO_LITTLE( lp->atimWindow );
1702 hcf_status = hcf_put_info( &lp->hcfCtx, (LTVP)&( lp->ltvRecord ));
1705 /* Holdover Duration */
1706 lp->ltvRecord.len = 2;
1707 lp->ltvRecord.typ = CFG_CNF_HOLDOVER_DURATION;
1708 lp->ltvRecord.u.u16[0] = CNV_INT_TO_LITTLE( lp->holdoverDuration );
1709 hcf_status = hcf_put_info( &lp->hcfCtx, (LTVP)&( lp->ltvRecord ));
1711 /* Promiscuous Mode */
1712 lp->ltvRecord.len = 2;
1713 lp->ltvRecord.typ = CFG_PROMISCUOUS_MODE;
1714 lp->ltvRecord.u.u16[0] = CNV_INT_TO_LITTLE( lp->promiscuousMode );
1715 hcf_status = hcf_put_info( &lp->hcfCtx, (LTVP)&( lp->ltvRecord ));
1717 /* Authentication */
1718 lp->ltvRecord.len = 2;
1719 lp->ltvRecord.typ = CFG_CNF_AUTHENTICATION;
1720 lp->ltvRecord.u.u16[0] = CNV_INT_TO_LITTLE( lp->authentication );
1721 hcf_status = hcf_put_info( &lp->hcfCtx, (LTVP)&( lp->ltvRecord ));
1722 #ifdef WARP
1723 /* Connection Control */
1724 lp->ltvRecord.len = 2;
1725 lp->ltvRecord.typ = CFG_CNF_CONNECTION_CNTL;
1726 lp->ltvRecord.u.u16[0] = CNV_INT_TO_LITTLE( lp->connectionControl );
1727 hcf_status = hcf_put_info( &lp->hcfCtx, (LTVP)&( lp->ltvRecord ));
1731 /* Probe data rate */
1732 /*lp->ltvRecord.len = 3;
1733 lp->ltvRecord.typ = CFG_PROBE_DATA_RATE;
1734 lp->ltvRecord.u.u16[0] = CNV_INT_TO_LITTLE( lp->probeDataRates[0] );
1735 lp->ltvRecord.u.u16[1] = CNV_INT_TO_LITTLE( lp->probeDataRates[1] );
1736 hcf_status = hcf_put_info( &lp->hcfCtx, (LTVP)&( lp->ltvRecord ));
1738 DBG_TRACE( DbgInfo, "CFG_PROBE_DATA_RATE 2.4GHz : 0x%04x\n",
1739 lp->probeDataRates[0] );
1740 DBG_TRACE( DbgInfo, "CFG_PROBE_DATA_RATE 5.0GHz : 0x%04x\n",
1741 lp->probeDataRates[1] );
1742 DBG_TRACE( DbgInfo, "CFG_PROBE_DATA_RATE result : 0x%04x\n",
1743 hcf_status );*/
1744 #endif // WARP
1745 } else {
1746 /* The following are set in AP mode only */
1747 #if 0 //;? (HCF_TYPE) & HCF_TYPE_AP
1748 //;?should we restore this to allow smaller memory footprint
1750 /* DTIM Period */
1751 lp->ltvRecord.len = 2;
1752 lp->ltvRecord.typ = CFG_CNF_OWN_DTIM_PERIOD;
1753 lp->ltvRecord.u.u16[0] = CNV_INT_TO_LITTLE( lp->DTIMPeriod );
1754 hcf_status = hcf_put_info( &lp->hcfCtx, (LTVP)&( lp->ltvRecord ));
1756 /* Multicast PM Buffering */
1757 lp->ltvRecord.len = 2;
1758 lp->ltvRecord.typ = CFG_CNF_MCAST_PM_BUF;
1759 lp->ltvRecord.u.u16[0] = CNV_INT_TO_LITTLE( lp->multicastPMBuffering );
1760 hcf_status = hcf_put_info( &lp->hcfCtx, (LTVP)&( lp->ltvRecord ));
1762 /* Reject ANY - Closed System */
1763 lp->ltvRecord.len = 2;
1764 lp->ltvRecord.typ = CFG_CNF_REJECT_ANY;
1765 lp->ltvRecord.u.u16[0] = CNV_INT_TO_LITTLE( lp->RejectAny );
1767 hcf_status = hcf_put_info( &lp->hcfCtx, (LTVP)&( lp->ltvRecord ));
1769 /* Exclude Unencrypted */
1770 lp->ltvRecord.len = 2;
1771 lp->ltvRecord.typ = CFG_CNF_EXCL_UNENCRYPTED;
1772 lp->ltvRecord.u.u16[0] = CNV_INT_TO_LITTLE( lp->ExcludeUnencrypted );
1774 hcf_status = hcf_put_info( &lp->hcfCtx, (LTVP)&( lp->ltvRecord ));
1776 /* IntraBSS Relay */
1777 lp->ltvRecord.len = 2;
1778 lp->ltvRecord.typ = CFG_CNF_INTRA_BSS_RELAY;
1779 lp->ltvRecord.u.u16[0] = CNV_INT_TO_LITTLE( lp->intraBSSRelay );
1780 hcf_status = hcf_put_info( &lp->hcfCtx, (LTVP)&( lp->ltvRecord ));
1782 /* RTS Threshold 0 */
1783 lp->ltvRecord.len = 2;
1784 lp->ltvRecord.typ = CFG_RTS_THRH0;
1785 lp->ltvRecord.u.u16[0] = CNV_INT_TO_LITTLE( lp->RTSThreshold );
1787 hcf_status = hcf_put_info( &lp->hcfCtx, (LTVP)&( lp->ltvRecord ));
1789 /* Tx Rate Control 0 */
1790 #ifdef WARP
1791 lp->ltvRecord.len = 3;
1792 lp->ltvRecord.typ = CFG_TX_RATE_CNTL0;
1793 lp->ltvRecord.u.u16[0] = CNV_INT_TO_LITTLE( lp->TxRateControl[0] );
1794 lp->ltvRecord.u.u16[1] = CNV_INT_TO_LITTLE( lp->TxRateControl[1] );
1795 #else
1796 lp->ltvRecord.len = 2;
1797 lp->ltvRecord.typ = CFG_TX_RATE_CNTL0;
1798 lp->ltvRecord.u.u16[0] = CNV_INT_TO_LITTLE( lp->TxRateControl[0] );
1799 #endif // WARP
1801 hcf_status = hcf_put_info( &lp->hcfCtx, (LTVP)&( lp->ltvRecord ));
1803 /* Own Beacon Interval */
1804 lp->ltvRecord.len = 2;
1805 lp->ltvRecord.typ = 0xFC31;
1806 lp->ltvRecord.u.u16[0] = CNV_INT_TO_LITTLE( lp->ownBeaconInterval );
1807 hcf_status = hcf_put_info( &lp->hcfCtx, (LTVP)&( lp->ltvRecord ));
1809 /* Co-Existence Behavior */
1810 lp->ltvRecord.len = 2;
1811 lp->ltvRecord.typ = 0xFCC7;
1812 lp->ltvRecord.u.u16[0] = CNV_INT_TO_LITTLE( lp->coexistence );
1813 hcf_status = hcf_put_info( &lp->hcfCtx, (LTVP)&( lp->ltvRecord ));
1815 #ifdef USE_WDS
1817 /* RTS Threshold 1 */
1818 lp->ltvRecord.len = 2;
1819 lp->ltvRecord.typ = CFG_RTS_THRH1;
1820 lp->ltvRecord.u.u16[0] = CNV_INT_TO_LITTLE( lp->wds_port[0].rtsThreshold );
1821 hcf_status = hcf_put_info( &lp->hcfCtx, (LTVP)&( lp->ltvRecord ));
1823 /* RTS Threshold 2 */
1824 lp->ltvRecord.len = 2;
1825 lp->ltvRecord.typ = CFG_RTS_THRH2;
1826 lp->ltvRecord.u.u16[0] = CNV_INT_TO_LITTLE( lp->wds_port[1].rtsThreshold );
1827 hcf_status = hcf_put_info( &lp->hcfCtx, (LTVP)&( lp->ltvRecord ));
1830 /* RTS Threshold 3 */
1831 lp->ltvRecord.len = 2;
1832 lp->ltvRecord.typ = CFG_RTS_THRH3;
1833 lp->ltvRecord.u.u16[0] = CNV_INT_TO_LITTLE( lp->wds_port[2].rtsThreshold );
1834 hcf_status = hcf_put_info( &lp->hcfCtx, (LTVP)&( lp->ltvRecord ));
1837 /* RTS Threshold 4 */
1838 lp->ltvRecord.len = 2;
1839 lp->ltvRecord.typ = CFG_RTS_THRH4;
1840 lp->ltvRecord.u.u16[0] = CNV_INT_TO_LITTLE( lp->wds_port[3].rtsThreshold );
1841 hcf_status = hcf_put_info( &lp->hcfCtx, (LTVP)&( lp->ltvRecord ));
1844 /* RTS Threshold 5 */
1845 lp->ltvRecord.len = 2;
1846 lp->ltvRecord.typ = CFG_RTS_THRH5;
1847 lp->ltvRecord.u.u16[0] = CNV_INT_TO_LITTLE( lp->wds_port[4].rtsThreshold );
1848 hcf_status = hcf_put_info( &lp->hcfCtx, (LTVP)&( lp->ltvRecord ));
1850 /* RTS Threshold 6 */
1851 lp->ltvRecord.len = 2;
1852 lp->ltvRecord.typ = CFG_RTS_THRH6;
1853 lp->ltvRecord.u.u16[0] = CNV_INT_TO_LITTLE( lp->wds_port[5].rtsThreshold );
1854 hcf_status = hcf_put_info( &lp->hcfCtx, (LTVP)&( lp->ltvRecord ));
1855 #if 0
1856 /* TX Rate Control 1 */
1857 lp->ltvRecord.len = 2;
1858 lp->ltvRecord.typ = CFG_TX_RATE_CNTL1;
1859 lp->ltvRecord.u.u16[0] = CNV_INT_TO_LITTLE( lp->wds_port[0].txRateCntl );
1860 hcf_status = hcf_put_info( &lp->hcfCtx, (LTVP)&( lp->ltvRecord ));
1862 /* TX Rate Control 2 */
1863 lp->ltvRecord.len = 2;
1864 lp->ltvRecord.typ = CFG_TX_RATE_CNTL2;
1865 lp->ltvRecord.u.u16[0] = CNV_INT_TO_LITTLE( lp->wds_port[1].txRateCntl );
1866 hcf_status = hcf_put_info( &lp->hcfCtx, (LTVP)&( lp->ltvRecord ));
1868 /* TX Rate Control 3 */
1869 lp->ltvRecord.len = 2;
1870 lp->ltvRecord.typ = CFG_TX_RATE_CNTL3;
1871 lp->ltvRecord.u.u16[0] = CNV_INT_TO_LITTLE( lp->wds_port[2].txRateCntl );
1872 hcf_status = hcf_put_info( &lp->hcfCtx, (LTVP)&( lp->ltvRecord ));
1874 /* TX Rate Control 4 */
1875 lp->ltvRecord.len = 2;
1876 lp->ltvRecord.typ = CFG_TX_RATE_CNTL4;
1877 lp->ltvRecord.u.u16[0] = CNV_INT_TO_LITTLE( lp->wds_port[3].txRateCntl );
1878 hcf_status = hcf_put_info( &lp->hcfCtx, (LTVP)&( lp->ltvRecord ));
1880 /* TX Rate Control 5 */
1881 lp->ltvRecord.len = 2;
1882 lp->ltvRecord.typ = CFG_TX_RATE_CNTL5;
1883 lp->ltvRecord.u.u16[0] = CNV_INT_TO_LITTLE( lp->wds_port[4].txRateCntl );
1884 hcf_status = hcf_put_info( &lp->hcfCtx, (LTVP)&( lp->ltvRecord ));
1886 /* TX Rate Control 6 */
1887 lp->ltvRecord.len = 2;
1888 lp->ltvRecord.typ = CFG_TX_RATE_CNTL6;
1889 lp->ltvRecord.u.u16[0] = CNV_INT_TO_LITTLE( lp->wds_port[5].txRateCntl );
1890 hcf_status = hcf_put_info( &lp->hcfCtx, (LTVP)&( lp->ltvRecord ));
1892 #endif
1894 /* WDS addresses. It's okay to blindly send these parameters, because
1895 the port needs to be enabled, before anything is done with it. */
1897 /* WDS Address 1 */
1898 lp->ltvRecord.len = 4;
1899 lp->ltvRecord.typ = CFG_CNF_WDS_ADDR1;
1901 memcpy( &lp->ltvRecord.u.u8[0], lp->wds_port[0].wdsAddress, ETH_ALEN );
1902 hcf_status = hcf_put_info( &lp->hcfCtx, (LTVP)&( lp->ltvRecord ));
1904 /* WDS Address 2 */
1905 lp->ltvRecord.len = 4;
1906 lp->ltvRecord.typ = CFG_CNF_WDS_ADDR2;
1908 memcpy( &lp->ltvRecord.u.u8[0], lp->wds_port[1].wdsAddress, ETH_ALEN );
1909 hcf_status = hcf_put_info( &lp->hcfCtx, (LTVP)&( lp->ltvRecord ));
1911 /* WDS Address 3 */
1912 lp->ltvRecord.len = 4;
1913 lp->ltvRecord.typ = CFG_CNF_WDS_ADDR3;
1915 memcpy( &lp->ltvRecord.u.u8[0], lp->wds_port[2].wdsAddress, ETH_ALEN );
1916 hcf_status = hcf_put_info( &lp->hcfCtx, (LTVP)&( lp->ltvRecord ));
1918 /* WDS Address 4 */
1919 lp->ltvRecord.len = 4;
1920 lp->ltvRecord.typ = CFG_CNF_WDS_ADDR4;
1922 memcpy( &lp->ltvRecord.u.u8[0], lp->wds_port[3].wdsAddress, ETH_ALEN );
1923 hcf_status = hcf_put_info( &lp->hcfCtx, (LTVP)&( lp->ltvRecord ));
1925 /* WDS Address 5 */
1926 lp->ltvRecord.len = 4;
1927 lp->ltvRecord.typ = CFG_CNF_WDS_ADDR5;
1929 memcpy( &lp->ltvRecord.u.u8[0], lp->wds_port[4].wdsAddress, ETH_ALEN );
1930 hcf_status = hcf_put_info( &lp->hcfCtx, (LTVP)&( lp->ltvRecord ));
1932 /* WDS Address 6 */
1933 lp->ltvRecord.len = 4;
1934 lp->ltvRecord.typ = CFG_CNF_WDS_ADDR6;
1936 memcpy( &lp->ltvRecord.u.u8[0], lp->wds_port[5].wdsAddress, ETH_ALEN );
1937 hcf_status = hcf_put_info( &lp->hcfCtx, (LTVP)&( lp->ltvRecord ));
1938 #endif /* USE_WDS */
1939 #endif /* (HCF_TYPE) & HCF_TYPE_AP */
1942 /* Own MAC Address */
1943 //DBG_TRACE( DbgInfo, "MAC Address : %s\n",
1944 // DbgHwAddr( lp->MACAddress ));
1946 if ( WVLAN_VALID_MAC_ADDRESS( lp->MACAddress )) {
1947 /* Make the MAC address valid by:
1948 Clearing the multicast bit
1949 Setting the local MAC address bit
1951 //lp->MACAddress[0] &= ~0x03; //;?why is this commented out already in 720
1952 //lp->MACAddress[0] |= 0x02;
1954 lp->ltvRecord.len = 1 + ( ETH_ALEN / sizeof( hcf_16 ));
1955 if ( CNV_INT_TO_LITTLE( lp->hcfCtx.IFB_FWIdentity.comp_id ) == COMP_ID_FW_AP ) {
1956 //DBG_TRACE( DbgInfo, "CFG_NIC_MAC_ADDR\n" );
1957 lp->ltvRecord.typ = CFG_NIC_MAC_ADDR;
1958 } else {
1959 //DBG_TRACE( DbgInfo, "CFG_CNF_OWN_MAC_ADDR\n" );
1960 lp->ltvRecord.typ = CFG_CNF_OWN_MAC_ADDR;
1962 /* MAC address is byte aligned, no endian conversion needed */
1963 memcpy( &( lp->ltvRecord.u.u8[0] ), lp->MACAddress, ETH_ALEN );
1964 hcf_status = hcf_put_info( &lp->hcfCtx, (LTVP)&( lp->ltvRecord ));
1965 //DBG_TRACE( DbgInfo, "CFG_XXX_MAC_ADDR result : 0x%04x\n",
1966 // hcf_status );
1968 /* Update the MAC address in the netdevice struct */
1969 memcpy( lp->dev->dev_addr, lp->MACAddress, ETH_ALEN ); //;?what is the purpose of this seemingly complex logic
1971 /* Own SSID */
1972 if ((( len = ( strlen( lp->NetworkName ) + 1 ) & ~0x01 ) != 0 ) &&
1973 ( strcmp( lp->NetworkName, "ANY" ) != 0 ) &&
1974 ( strcmp( lp->NetworkName, "any" ) != 0 )) {
1975 //DBG_TRACE( DbgInfo, "CFG_CNF_OWN_SSID : %s\n",
1976 // lp->NetworkName );
1977 lp->ltvRecord.len = 2 + (len / sizeof(hcf_16));
1978 lp->ltvRecord.typ = CFG_CNF_OWN_SSID;
1979 lp->ltvRecord.u.u16[0] = CNV_INT_TO_LITTLE( strlen( lp->NetworkName ));
1981 memcpy( &( lp->ltvRecord.u.u8[2] ), lp->NetworkName, len );
1982 } else {
1983 //DBG_TRACE( DbgInfo, "CFG_CNF_OWN_SSID : ANY\n" );
1984 lp->ltvRecord.len = 2;
1985 lp->ltvRecord.typ = CFG_CNF_OWN_SSID;
1986 lp->ltvRecord.u.u16[0] = CNV_INT_TO_LITTLE( 0 );
1989 hcf_status = hcf_put_info( &lp->hcfCtx, (LTVP)&( lp->ltvRecord ));
1991 //DBG_TRACE( DbgInfo, "CFG_CNF_OWN_SSID result : 0x%04x\n",
1992 // hcf_status );
1993 /* enable/disable encryption */
1994 lp->ltvRecord.len = 2;
1995 lp->ltvRecord.typ = CFG_CNF_ENCRYPTION;
1996 lp->ltvRecord.u.u16[0] = CNV_INT_TO_LITTLE( lp->EnableEncryption );
1997 hcf_status = hcf_put_info( &lp->hcfCtx, (LTVP)&( lp->ltvRecord ));
1999 /* Set the Authentication Key Management Suite */
2000 lp->ltvRecord.len = 2;
2001 lp->ltvRecord.typ = CFG_SET_WPA_AUTH_KEY_MGMT_SUITE;
2002 lp->ltvRecord.u.u16[0] = CNV_INT_TO_LITTLE( lp->AuthKeyMgmtSuite );
2003 hcf_status = hcf_put_info( &lp->hcfCtx, (LTVP)&( lp->ltvRecord ));
2004 /* WEP Keys */
2005 wl_set_wep_keys( lp );
2007 /* Country Code */
2008 /* countryInfo, ltvCountryInfo, CFG_CNF_COUNTRY_INFO */
2010 DBG_LEAVE( DbgInfo );
2011 return hcf_status;
2012 } // wl_put_ltv
2013 /*============================================================================*/
2016 /*******************************************************************************
2017 * init_module()
2018 *******************************************************************************
2020 * DESCRIPTION:
2022 * Load the kernel module.
2024 * PARAMETERS:
2026 * N/A
2028 * RETURNS:
2030 * 0 on success
2031 * an errno value otherwise
2033 ******************************************************************************/
2034 static int __init wl_module_init( void )
2036 int result;
2037 /*------------------------------------------------------------------------*/
2039 DBG_FUNC( "wl_module_init" );
2041 #if DBG
2042 /* Convert "standard" PCMCIA parameter pc_debug to a reasonable DebugFlag value.
2043 * NOTE: The values all fall through to the lower values. */
2044 DbgInfo->DebugFlag = 0;
2045 DbgInfo->DebugFlag = DBG_TRACE_ON; //;?get this mess resolved one day
2046 if ( pc_debug ) switch( pc_debug ) {
2047 case 8:
2048 DbgInfo->DebugFlag |= DBG_DS_ON;
2049 case 7:
2050 DbgInfo->DebugFlag |= DBG_RX_ON | DBG_TX_ON;
2051 case 6:
2052 DbgInfo->DebugFlag |= DBG_PARAM_ON;
2053 case 5:
2054 DbgInfo->DebugFlag |= DBG_TRACE_ON;
2055 case 4:
2056 DbgInfo->DebugFlag |= DBG_VERBOSE_ON;
2057 case 1:
2058 DbgInfo->DebugFlag |= DBG_DEFAULTS;
2059 default:
2060 break;
2062 #endif /* DBG */
2064 DBG_ENTER( DbgInfo );
2065 printk(KERN_INFO "%s\n", VERSION_INFO);
2066 printk(KERN_INFO "*** Modified for kernel 2.6 by Henk de Groot <pe1dnn@amsat.org>\n");
2067 printk(KERN_INFO "*** Based on 7.18 version by Andrey Borzenkov <arvidjaar@mail.ru> $Revision: 39 $\n");
2070 // ;?#if (HCF_TYPE) & HCF_TYPE_AP
2071 // DBG_PRINT( "Access Point Mode (AP) Support: YES\n" );
2072 // #else
2073 // DBG_PRINT( "Access Point Mode (AP) Support: NO\n" );
2074 // #endif /* (HCF_TYPE) & HCF_TYPE_AP */
2076 result = wl_adapter_init_module( );
2077 DBG_LEAVE( DbgInfo );
2078 return result;
2079 } // init_module
2080 /*============================================================================*/
2083 /*******************************************************************************
2084 * cleanup_module()
2085 *******************************************************************************
2087 * DESCRIPTION:
2089 * Unload the kernel module.
2091 * PARAMETERS:
2093 * N/A
2095 * RETURNS:
2097 * N/A
2099 ******************************************************************************/
2100 static void __exit wl_module_exit( void )
2102 DBG_FUNC( "wl_module_exit" );
2103 DBG_ENTER(DbgInfo);
2105 wl_adapter_cleanup_module( );
2106 #if 0 //SCULL_USE_PROC /* don't waste space if unused */
2107 remove_proc_entry( "wlags", NULL ); //;?why so a-symmetric compared to location of create_proc_read_entry
2108 #endif
2110 DBG_LEAVE( DbgInfo );
2111 return;
2112 } // cleanup_module
2113 /*============================================================================*/
2115 module_init(wl_module_init);
2116 module_exit(wl_module_exit);
2118 /*******************************************************************************
2119 * wl_isr()
2120 *******************************************************************************
2122 * DESCRIPTION:
2124 * The Interrupt Service Routine for the driver.
2126 * PARAMETERS:
2128 * irq - the irq the interrupt came in on
2129 * dev_id - a buffer containing information about the request
2130 * regs -
2132 * RETURNS:
2134 * N/A
2136 ******************************************************************************/
2137 irqreturn_t wl_isr( int irq, void *dev_id, struct pt_regs *regs )
2139 int events;
2140 struct net_device *dev = (struct net_device *) dev_id;
2141 struct wl_private *lp = NULL;
2142 /*------------------------------------------------------------------------*/
2143 if (( dev == NULL ) || ( !netif_device_present( dev ))) {
2144 return IRQ_NONE;
2147 /* Set the wl_private pointer (lp), now that we know that dev is non-null */
2148 lp = wl_priv(dev);
2150 #ifdef USE_RTS
2151 if ( lp->useRTS == 1 ) {
2152 DBG_PRINT( "EXITING ISR, IN RTS MODE...\n" );
2153 return;
2155 #endif /* USE_RTS */
2157 /* If we have interrupts pending, then put them on a system task
2158 queue. Otherwise turn interrupts back on */
2159 events = hcf_action( &lp->hcfCtx, HCF_ACT_INT_OFF );
2161 if ( events == HCF_INT_PENDING ) {
2162 /* Schedule the ISR handler as a bottom-half task in the
2163 tq_immediate queue */
2164 tasklet_schedule(&lp->task);
2165 } else {
2166 //DBG_PRINT( "NOT OUR INTERRUPT\n" );
2167 hcf_action( &lp->hcfCtx, HCF_ACT_INT_ON );
2170 return IRQ_RETVAL(events == HCF_INT_PENDING);
2171 } // wl_isr
2172 /*============================================================================*/
2175 /*******************************************************************************
2176 * wl_isr_handler()
2177 *******************************************************************************
2179 * DESCRIPTION:
2181 * The ISR handler, scheduled to run in a deferred context by the ISR. This
2182 * is where the ISR's work actually gets done.
2184 * PARAMETERS:
2186 * lp - a pointer to the device's private adapter structure
2188 * RETURNS:
2190 * N/A
2192 ******************************************************************************/
2193 #define WVLAN_MAX_INT_SERVICES 50
2195 void wl_isr_handler( unsigned long p )
2197 struct net_device *dev;
2198 unsigned long flags;
2199 bool_t stop = TRUE;
2200 int count;
2201 int result;
2202 struct wl_private *lp = (struct wl_private *)p;
2203 /*------------------------------------------------------------------------*/
2205 if ( lp == NULL ) {
2206 DBG_PRINT( "wl_isr_handler lp adapter pointer is NULL!!!\n" );
2207 } else {
2208 wl_lock( lp, &flags );
2210 dev = (struct net_device *)lp->dev;
2211 if ( dev != NULL && netif_device_present( dev ) ) stop = FALSE;
2212 for( count = 0; stop == FALSE && count < WVLAN_MAX_INT_SERVICES; count++ ) {
2213 stop = TRUE;
2214 result = hcf_service_nic( &lp->hcfCtx,
2215 (wci_bufp)lp->lookAheadBuf,
2216 sizeof( lp->lookAheadBuf ));
2217 if ( result == HCF_ERR_MIC ) {
2218 wl_wext_event_mic_failed( dev ); /* Send an event that MIC failed */
2219 //;?this seems wrong if HCF_ERR_MIC coincides with another event, stop gets FALSE
2220 //so why not do it always ;?
2223 #ifndef USE_MBOX_SYNC
2224 if ( lp->hcfCtx.IFB_MBInfoLen != 0 ) { /* anything in the mailbox */
2225 wl_mbx( lp );
2226 stop = FALSE;
2228 #endif
2229 /* Check for a Link status event */
2230 if ( ( lp->hcfCtx.IFB_LinkStat & CFG_LINK_STAT_FW ) != 0 ) {
2231 wl_process_link_status( lp );
2232 stop = FALSE;
2234 /* Check for probe response events */
2235 if ( lp->ProbeResp.infoType != 0 &&
2236 lp->ProbeResp.infoType != 0xFFFF ) {
2237 wl_process_probe_response( lp );
2238 memset( &lp->ProbeResp, 0, sizeof( lp->ProbeResp ));
2239 lp->ProbeResp.infoType = 0xFFFF;
2240 stop = FALSE;
2242 /* Check for updated record events */
2243 if ( lp->updatedRecord.len != 0xFFFF ) {
2244 wl_process_updated_record( lp );
2245 lp->updatedRecord.len = 0xFFFF;
2246 stop = FALSE;
2248 /* Check for association status events */
2249 if ( lp->assoc_stat.len != 0xFFFF ) {
2250 wl_process_assoc_status( lp );
2251 lp->assoc_stat.len = 0xFFFF;
2252 stop = FALSE;
2254 /* Check for security status events */
2255 if ( lp->sec_stat.len != 0xFFFF ) {
2256 wl_process_security_status( lp );
2257 lp->sec_stat.len = 0xFFFF;
2258 stop = FALSE;
2261 #ifdef ENABLE_DMA
2262 if ( lp->use_dma ) {
2263 /* Check for DMA Rx packets */
2264 if ( lp->hcfCtx.IFB_DmaPackets & HREG_EV_RDMAD ) {
2265 wl_rx_dma( dev );
2266 stop = FALSE;
2268 /* Return Tx DMA descriptors to host */
2269 if ( lp->hcfCtx.IFB_DmaPackets & HREG_EV_TDMAD ) {
2270 wl_pci_dma_hcf_reclaim_tx( lp );
2271 stop = FALSE;
2274 else
2275 #endif // ENABLE_DMA
2277 /* Check for Rx packets */
2278 if ( lp->hcfCtx.IFB_RxLen != 0 ) {
2279 wl_rx( dev );
2280 stop = FALSE;
2282 /* Make sure that queued frames get sent */
2283 if ( wl_send( lp )) {
2284 stop = FALSE;
2288 /* We're done, so turn interrupts which were turned off in wl_isr, back on */
2289 hcf_action( &lp->hcfCtx, HCF_ACT_INT_ON );
2290 wl_unlock( lp, &flags );
2292 return;
2293 } // wl_isr_handler
2294 /*============================================================================*/
2297 /*******************************************************************************
2298 * wl_remove()
2299 *******************************************************************************
2301 * DESCRIPTION:
2303 * Notify the adapter that it has been removed. Since the adapter is gone,
2304 * we should no longer try to talk to it.
2306 * PARAMETERS:
2308 * dev - a pointer to the device's net_device structure
2310 * RETURNS:
2312 * N/A
2314 ******************************************************************************/
2315 void wl_remove( struct net_device *dev )
2317 struct wl_private *lp = wl_priv(dev);
2318 unsigned long flags;
2319 /*------------------------------------------------------------------------*/
2320 DBG_FUNC( "wl_remove" );
2321 DBG_ENTER( DbgInfo );
2323 DBG_PARAM( DbgInfo, "dev", "%s (0x%p)", dev->name, dev );
2325 wl_lock( lp, &flags );
2327 /* stop handling interrupts */
2328 wl_act_int_off( lp );
2329 lp->is_handling_int = WL_NOT_HANDLING_INT;
2332 * Disable the ports: just change state: since the
2333 * card is gone it is useless to talk to it and at
2334 * disconnect all state information is lost anyway.
2336 /* Reset portState */
2337 lp->portState = WVLAN_PORT_STATE_DISABLED;
2339 #if 0 //;? (HCF_TYPE) & HCF_TYPE_AP
2340 #ifdef USE_WDS
2341 //wl_disable_wds_ports( lp );
2342 #endif // USE_WDS
2343 #endif /* (HCF_TYPE) & HCF_TYPE_AP */
2345 /* Mark the device as unregistered */
2346 lp->is_registered = FALSE;
2348 /* Deregister the WDS ports as well */
2349 WL_WDS_NETDEV_DEREGISTER( lp );
2350 #ifdef USE_RTS
2351 if ( lp->useRTS == 1 ) {
2352 wl_unlock( lp, &flags );
2354 DBG_LEAVE( DbgInfo );
2355 return;
2357 #endif /* USE_RTS */
2359 /* Inform the HCF that the card has been removed */
2360 hcf_connect( &lp->hcfCtx, HCF_DISCONNECT );
2362 wl_unlock( lp, &flags );
2364 DBG_LEAVE( DbgInfo );
2365 return;
2366 } // wl_remove
2367 /*============================================================================*/
2370 /*******************************************************************************
2371 * wl_suspend()
2372 *******************************************************************************
2374 * DESCRIPTION:
2376 * Power-down and halt the adapter.
2378 * PARAMETERS:
2380 * dev - a pointer to the device's net_device structure
2382 * RETURNS:
2384 * N/A
2386 ******************************************************************************/
2387 void wl_suspend( struct net_device *dev )
2389 struct wl_private *lp = wl_priv(dev);
2390 unsigned long flags;
2391 /*------------------------------------------------------------------------*/
2392 DBG_FUNC( "wl_suspend" );
2393 DBG_ENTER( DbgInfo );
2395 DBG_PARAM( DbgInfo, "dev", "%s (0x%p)", dev->name, dev );
2397 /* The adapter is suspended:
2398 Stop the adapter
2399 Power down
2401 wl_lock( lp, &flags );
2403 /* Disable interrupt handling */
2404 wl_act_int_off( lp );
2406 /* Disconnect */
2407 wl_disconnect( lp );
2409 /* Disable */
2410 wl_disable( lp );
2412 /* Disconnect from the adapter */
2413 hcf_connect( &lp->hcfCtx, HCF_DISCONNECT );
2415 /* Reset portState to be sure (should have been done by wl_disable */
2416 lp->portState = WVLAN_PORT_STATE_DISABLED;
2418 wl_unlock( lp, &flags );
2420 DBG_LEAVE( DbgInfo );
2421 return;
2422 } // wl_suspend
2423 /*============================================================================*/
2426 /*******************************************************************************
2427 * wl_resume()
2428 *******************************************************************************
2430 * DESCRIPTION:
2432 * Resume a previously suspended adapter.
2434 * PARAMETERS:
2436 * dev - a pointer to the device's net_device structure
2438 * RETURNS:
2440 * N/A
2442 ******************************************************************************/
2443 void wl_resume(struct net_device *dev)
2445 struct wl_private *lp = wl_priv(dev);
2446 unsigned long flags;
2447 /*------------------------------------------------------------------------*/
2448 DBG_FUNC( "wl_resume" );
2449 DBG_ENTER( DbgInfo );
2451 DBG_PARAM( DbgInfo, "dev", "%s (0x%p)", dev->name, dev );
2453 wl_lock( lp, &flags );
2455 /* Connect to the adapter */
2456 hcf_connect( &lp->hcfCtx, dev->base_addr );
2458 /* Reset portState */
2459 lp->portState = WVLAN_PORT_STATE_DISABLED;
2461 /* Power might have been off, assume the card lost the firmware*/
2462 lp->firmware_present = WL_FRIMWARE_NOT_PRESENT;
2464 /* Reload the firmware and restart */
2465 wl_reset( dev );
2467 /* Resume interrupt handling */
2468 wl_act_int_on( lp );
2470 wl_unlock( lp, &flags );
2472 DBG_LEAVE( DbgInfo );
2473 return;
2474 } // wl_resume
2475 /*============================================================================*/
2478 /*******************************************************************************
2479 * wl_release()
2480 *******************************************************************************
2482 * DESCRIPTION:
2484 * This function perfroms a check on the device and calls wl_remove() if
2485 * necessary. This function can be used for all bus types, but exists mostly
2486 * for the benefit of the Card Services driver, as there are times when
2487 * wl_remove() does not get called.
2489 * PARAMETERS:
2491 * dev - a pointer to the device's net_device structure
2493 * RETURNS:
2495 * N/A
2497 ******************************************************************************/
2498 void wl_release( struct net_device *dev )
2500 struct wl_private *lp = wl_priv(dev);
2501 /*------------------------------------------------------------------------*/
2502 DBG_FUNC( "wl_release" );
2503 DBG_ENTER( DbgInfo );
2505 DBG_PARAM( DbgInfo, "dev", "%s (0x%p)", dev->name, dev );
2506 /* If wl_remove() hasn't been called (i.e. when Card Services is shut
2507 down with the card in the slot), then call it */
2508 if ( lp->is_registered == TRUE ) {
2509 DBG_TRACE( DbgInfo, "Calling unregister_netdev(), as it wasn't called yet\n" );
2510 wl_remove( dev );
2512 lp->is_registered = FALSE;
2515 DBG_LEAVE( DbgInfo );
2516 return;
2517 } // wl_release
2518 /*============================================================================*/
2521 /*******************************************************************************
2522 * wl_get_irq_mask()
2523 *******************************************************************************
2525 * DESCRIPTION:
2527 * Accessor function to retrieve the irq_mask module parameter
2529 * PARAMETERS:
2531 * N/A
2533 * RETURNS:
2535 * The irq_mask module parameter
2537 ******************************************************************************/
2538 p_u16 wl_get_irq_mask( void )
2540 return irq_mask;
2541 } // wl_get_irq_mask
2542 /*============================================================================*/
2545 /*******************************************************************************
2546 * wl_get_irq_list()
2547 *******************************************************************************
2549 * DESCRIPTION:
2551 * Accessor function to retrieve the irq_list module parameter
2553 * PARAMETERS:
2555 * N/A
2557 * RETURNS:
2559 * The irq_list module parameter
2561 ******************************************************************************/
2562 p_s8 * wl_get_irq_list( void )
2564 return irq_list;
2565 } // wl_get_irq_list
2566 /*============================================================================*/
2570 /*******************************************************************************
2571 * wl_enable()
2572 *******************************************************************************
2574 * DESCRIPTION:
2576 * Used to enable MAC ports
2578 * PARAMETERS:
2580 * lp - pointer to the device's private adapter structure
2582 * RETURNS:
2584 * N/A
2586 ******************************************************************************/
2587 int wl_enable( struct wl_private *lp )
2589 int hcf_status = HCF_SUCCESS;
2590 /*------------------------------------------------------------------------*/
2591 DBG_FUNC( "wl_enable" );
2592 DBG_ENTER( DbgInfo );
2594 if ( lp->portState == WVLAN_PORT_STATE_ENABLED ) {
2595 DBG_TRACE( DbgInfo, "No action: Card already enabled\n" );
2596 } else if ( lp->portState == WVLAN_PORT_STATE_CONNECTED ) {
2597 //;?suspicuous logic, how can you be connected without being enabled so this is probably dead code
2598 DBG_TRACE( DbgInfo, "No action: Card already connected\n" );
2599 } else {
2600 hcf_status = hcf_cntl( &lp->hcfCtx, HCF_CNTL_ENABLE );
2601 if ( hcf_status == HCF_SUCCESS ) {
2602 /* Set the status of the NIC to enabled */
2603 lp->portState = WVLAN_PORT_STATE_ENABLED; //;?bad mnemonic, NIC iso PORT
2604 #ifdef ENABLE_DMA
2605 if ( lp->use_dma ) {
2606 wl_pci_dma_hcf_supply( lp ); //;?always succes?
2608 #endif
2611 if ( hcf_status != HCF_SUCCESS ) { //;?make this an assert
2612 DBG_TRACE( DbgInfo, "failed: 0x%x\n", hcf_status );
2614 DBG_LEAVE( DbgInfo );
2615 return hcf_status;
2616 } // wl_enable
2617 /*============================================================================*/
2620 #ifdef USE_WDS
2621 /*******************************************************************************
2622 * wl_enable_wds_ports()
2623 *******************************************************************************
2625 * DESCRIPTION:
2627 * Used to enable the WDS MAC ports 1-6
2629 * PARAMETERS:
2631 * lp - pointer to the device's private adapter structure
2633 * RETURNS:
2635 * N/A
2637 ******************************************************************************/
2638 void wl_enable_wds_ports( struct wl_private * lp )
2641 DBG_FUNC( "wl_enable_wds_ports" );
2642 DBG_ENTER( DbgInfo );
2643 if ( CNV_INT_TO_LITTLE( lp->hcfCtx.IFB_FWIdentity.comp_id ) == COMP_ID_FW_AP ){
2644 DBG_ERROR( DbgInfo, "!!!!;? someone misunderstood something !!!!!\n" );
2646 DBG_LEAVE( DbgInfo );
2647 return;
2648 } // wl_enable_wds_ports
2649 #endif /* USE_WDS */
2650 /*============================================================================*/
2653 /*******************************************************************************
2654 * wl_connect()
2655 *******************************************************************************
2657 * DESCRIPTION:
2659 * Used to connect a MAC port
2661 * PARAMETERS:
2663 * lp - pointer to the device's private adapter structure
2665 * RETURNS:
2667 * N/A
2669 ******************************************************************************/
2670 int wl_connect( struct wl_private *lp )
2672 int hcf_status;
2673 /*------------------------------------------------------------------------*/
2675 DBG_FUNC( "wl_connect" );
2676 DBG_ENTER( DbgInfo );
2678 if ( lp->portState != WVLAN_PORT_STATE_ENABLED ) {
2679 DBG_TRACE( DbgInfo, "No action: Not in enabled state\n" );
2680 DBG_LEAVE( DbgInfo );
2681 return HCF_SUCCESS;
2683 hcf_status = hcf_cntl( &lp->hcfCtx, HCF_CNTL_CONNECT );
2684 if ( hcf_status == HCF_SUCCESS ) {
2685 lp->portState = WVLAN_PORT_STATE_CONNECTED;
2687 DBG_LEAVE( DbgInfo );
2688 return hcf_status;
2689 } // wl_connect
2690 /*============================================================================*/
2693 /*******************************************************************************
2694 * wl_disconnect()
2695 *******************************************************************************
2697 * DESCRIPTION:
2699 * Used to disconnect a MAC port
2701 * PARAMETERS:
2703 * lp - pointer to the device's private adapter structure
2705 * RETURNS:
2707 * N/A
2709 ******************************************************************************/
2710 int wl_disconnect( struct wl_private *lp )
2712 int hcf_status;
2713 /*------------------------------------------------------------------------*/
2715 DBG_FUNC( "wl_disconnect" );
2716 DBG_ENTER( DbgInfo );
2718 if ( lp->portState != WVLAN_PORT_STATE_CONNECTED ) {
2719 DBG_TRACE( DbgInfo, "No action: Not in connected state\n" );
2720 DBG_LEAVE( DbgInfo );
2721 return HCF_SUCCESS;
2723 hcf_status = hcf_cntl( &lp->hcfCtx, HCF_CNTL_DISCONNECT );
2724 if ( hcf_status == HCF_SUCCESS ) {
2725 lp->portState = WVLAN_PORT_STATE_ENABLED;
2727 DBG_LEAVE( DbgInfo );
2728 return hcf_status;
2729 } // wl_disconnect
2730 /*============================================================================*/
2733 /*******************************************************************************
2734 * wl_disable()
2735 *******************************************************************************
2737 * DESCRIPTION:
2739 * Used to disable MAC ports
2741 * PARAMETERS:
2743 * lp - pointer to the device's private adapter structure
2744 * port - the MAC port to disable
2746 * RETURNS:
2748 * N/A
2750 ******************************************************************************/
2751 int wl_disable( struct wl_private *lp )
2753 int hcf_status = HCF_SUCCESS;
2754 /*------------------------------------------------------------------------*/
2755 DBG_FUNC( "wl_disable" );
2756 DBG_ENTER( DbgInfo );
2758 if ( lp->portState == WVLAN_PORT_STATE_DISABLED ) {
2759 DBG_TRACE( DbgInfo, "No action: Port state is disabled\n" );
2760 } else {
2761 hcf_status = hcf_cntl( &lp->hcfCtx, HCF_CNTL_DISABLE );
2762 if ( hcf_status == HCF_SUCCESS ) {
2763 /* Set the status of the port to disabled */ //;?bad mnemonic use NIC iso PORT
2764 lp->portState = WVLAN_PORT_STATE_DISABLED;
2766 #ifdef ENABLE_DMA
2767 if ( lp->use_dma ) {
2768 wl_pci_dma_hcf_reclaim( lp );
2770 #endif
2773 if ( hcf_status != HCF_SUCCESS ) {
2774 DBG_TRACE( DbgInfo, "failed: 0x%x\n", hcf_status );
2776 DBG_LEAVE( DbgInfo );
2777 return hcf_status;
2778 } // wl_disable
2779 /*============================================================================*/
2782 #ifdef USE_WDS
2783 /*******************************************************************************
2784 * wl_disable_wds_ports()
2785 *******************************************************************************
2787 * DESCRIPTION:
2789 * Used to disable the WDS MAC ports 1-6
2791 * PARAMETERS:
2793 * lp - pointer to the device's private adapter structure
2795 * RETURNS:
2797 * N/A
2799 ******************************************************************************/
2800 void wl_disable_wds_ports( struct wl_private * lp )
2803 DBG_FUNC( "wl_disable_wds_ports" );
2804 DBG_ENTER( DbgInfo );
2806 if ( CNV_INT_TO_LITTLE( lp->hcfCtx.IFB_FWIdentity.comp_id ) == COMP_ID_FW_AP ){
2807 DBG_ERROR( DbgInfo, "!!!!;? someone misunderstood something !!!!!\n" );
2809 // if ( CNV_INT_TO_LITTLE( lp->hcfCtx.IFB_FWIdentity.comp_id ) == COMP_ID_FW_AP ) {
2810 // wl_disable( lp, HCF_PORT_1 );
2811 // wl_disable( lp, HCF_PORT_2 );
2812 // wl_disable( lp, HCF_PORT_3 );
2813 // wl_disable( lp, HCF_PORT_4 );
2814 // wl_disable( lp, HCF_PORT_5 );
2815 // wl_disable( lp, HCF_PORT_6 );
2816 // }
2817 DBG_LEAVE( DbgInfo );
2818 return;
2819 } // wl_disable_wds_ports
2820 #endif // USE_WDS
2821 /*============================================================================*/
2824 #ifndef USE_MBOX_SYNC
2825 /*******************************************************************************
2826 * wl_mbx()
2827 *******************************************************************************
2829 * DESCRIPTION:
2830 * This function is used to read and process a mailbox message.
2833 * PARAMETERS:
2835 * lp - pointer to the device's private adapter structure
2837 * RETURNS:
2839 * an HCF status code
2841 ******************************************************************************/
2842 int wl_mbx( struct wl_private *lp )
2844 int hcf_status = HCF_SUCCESS;
2845 /*------------------------------------------------------------------------*/
2846 DBG_FUNC( "wl_mbx" );
2847 DBG_ENTER( DbgInfo );
2848 DBG_TRACE( DbgInfo, "Mailbox Info: IFB_MBInfoLen: %d\n",
2849 lp->hcfCtx.IFB_MBInfoLen );
2851 memset( &( lp->ltvRecord ), 0, sizeof( ltv_t ));
2853 lp->ltvRecord.len = MB_SIZE;
2854 lp->ltvRecord.typ = CFG_MB_INFO;
2855 hcf_status = hcf_get_info( &lp->hcfCtx, (LTVP)&( lp->ltvRecord ));
2857 if ( hcf_status != HCF_SUCCESS ) {
2858 DBG_ERROR( DbgInfo, "hcf_get_info returned 0x%x\n", hcf_status );
2860 DBG_LEAVE( DbgInfo );
2861 return hcf_status;
2864 if ( lp->ltvRecord.typ == CFG_MB_INFO ) {
2865 DBG_LEAVE( DbgInfo );
2866 return hcf_status;
2868 /* Endian translate the mailbox data, then process the message */
2869 wl_endian_translate_mailbox( &( lp->ltvRecord ));
2870 wl_process_mailbox( lp );
2871 DBG_LEAVE( DbgInfo );
2872 return hcf_status;
2873 } // wl_mbx
2874 /*============================================================================*/
2877 /*******************************************************************************
2878 * wl_endian_translate_mailbox()
2879 *******************************************************************************
2881 * DESCRIPTION:
2883 * This function will perform the tedious task of endian translating all
2884 * fields withtin a mailbox message which need translating.
2886 * PARAMETERS:
2888 * ltv - pointer to the LTV to endian translate
2890 * RETURNS:
2892 * none
2894 ******************************************************************************/
2895 void wl_endian_translate_mailbox( ltv_t *ltv )
2898 DBG_FUNC( "wl_endian_translate_mailbox" );
2899 DBG_ENTER( DbgInfo );
2900 switch( ltv->typ ) {
2901 case CFG_TALLIES:
2902 break;
2904 case CFG_SCAN:
2906 int num_aps;
2907 SCAN_RS_STRCT *aps = (SCAN_RS_STRCT *)&ltv->u.u8[0];
2909 num_aps = (hcf_16)(( (size_t)(ltv->len - 1 ) * 2 ) /
2910 ( sizeof( SCAN_RS_STRCT )));
2912 while( num_aps >= 1 ) {
2913 num_aps--;
2915 aps[num_aps].channel_id =
2916 CNV_LITTLE_TO_INT( aps[num_aps].channel_id );
2918 aps[num_aps].noise_level =
2919 CNV_LITTLE_TO_INT( aps[num_aps].noise_level );
2921 aps[num_aps].signal_level =
2922 CNV_LITTLE_TO_INT( aps[num_aps].signal_level );
2924 aps[num_aps].beacon_interval_time =
2925 CNV_LITTLE_TO_INT( aps[num_aps].beacon_interval_time );
2927 aps[num_aps].capability =
2928 CNV_LITTLE_TO_INT( aps[num_aps].capability );
2930 aps[num_aps].ssid_len =
2931 CNV_LITTLE_TO_INT( aps[num_aps].ssid_len );
2933 aps[num_aps].ssid_val[aps[num_aps].ssid_len] = 0;
2936 break;
2938 case CFG_ACS_SCAN:
2940 PROBE_RESP *probe_resp = (PROBE_RESP *)ltv;
2942 probe_resp->frameControl = CNV_LITTLE_TO_INT( probe_resp->frameControl );
2943 probe_resp->durID = CNV_LITTLE_TO_INT( probe_resp->durID );
2944 probe_resp->sequence = CNV_LITTLE_TO_INT( probe_resp->sequence );
2945 probe_resp->dataLength = CNV_LITTLE_TO_INT( probe_resp->dataLength );
2946 #ifndef WARP
2947 probe_resp->lenType = CNV_LITTLE_TO_INT( probe_resp->lenType );
2948 #endif // WARP
2949 probe_resp->beaconInterval = CNV_LITTLE_TO_INT( probe_resp->beaconInterval );
2950 probe_resp->capability = CNV_LITTLE_TO_INT( probe_resp->capability );
2951 probe_resp->flags = CNV_LITTLE_TO_INT( probe_resp->flags );
2953 break;
2955 case CFG_LINK_STAT:
2956 #define ls ((LINK_STATUS_STRCT *)ltv)
2957 ls->linkStatus = CNV_LITTLE_TO_INT( ls->linkStatus );
2958 break;
2959 #undef ls
2961 case CFG_ASSOC_STAT:
2963 ASSOC_STATUS_STRCT *as = (ASSOC_STATUS_STRCT *)ltv;
2965 as->assocStatus = CNV_LITTLE_TO_INT( as->assocStatus );
2967 break;
2969 case CFG_SECURITY_STAT:
2971 SECURITY_STATUS_STRCT *ss = (SECURITY_STATUS_STRCT *)ltv;
2973 ss->securityStatus = CNV_LITTLE_TO_INT( ss->securityStatus );
2974 ss->reason = CNV_LITTLE_TO_INT( ss->reason );
2976 break;
2978 case CFG_WMP:
2979 break;
2981 case CFG_NULL:
2982 break;
2984 default:
2985 break;
2988 DBG_LEAVE( DbgInfo );
2989 return;
2990 } // wl_endian_translate_mailbox
2991 /*============================================================================*/
2993 /*******************************************************************************
2994 * wl_process_mailbox()
2995 *******************************************************************************
2997 * DESCRIPTION:
2999 * This function will process the mailbox data.
3001 * PARAMETERS:
3003 * ltv - pointer to the LTV to be processed.
3005 * RETURNS:
3007 * none
3009 ******************************************************************************/
3010 void wl_process_mailbox( struct wl_private *lp )
3012 ltv_t *ltv;
3013 hcf_16 ltv_val = 0xFFFF;
3014 /*------------------------------------------------------------------------*/
3015 DBG_FUNC( "wl_process_mailbox" );
3016 DBG_ENTER( DbgInfo );
3017 ltv = &( lp->ltvRecord );
3019 switch( ltv->typ ) {
3021 case CFG_TALLIES:
3022 DBG_TRACE( DbgInfo, "CFG_TALLIES\n" );
3023 break;
3024 case CFG_SCAN:
3025 DBG_TRACE( DbgInfo, "CFG_SCAN\n" );
3028 int num_aps;
3029 SCAN_RS_STRCT *aps = (SCAN_RS_STRCT *)&ltv->u.u8[0];
3031 num_aps = (hcf_16)(( (size_t)(ltv->len - 1 ) * 2 ) /
3032 ( sizeof( SCAN_RS_STRCT )));
3034 lp->scan_results.num_aps = num_aps;
3036 DBG_TRACE( DbgInfo, "Number of APs: %d\n", num_aps );
3038 while( num_aps >= 1 ) {
3039 num_aps--;
3041 DBG_TRACE( DbgInfo, "AP : %d\n", num_aps );
3042 DBG_TRACE( DbgInfo, "=========================\n" );
3043 DBG_TRACE( DbgInfo, "Channel ID : 0x%04x\n",
3044 aps[num_aps].channel_id );
3045 DBG_TRACE( DbgInfo, "Noise Level : 0x%04x\n",
3046 aps[num_aps].noise_level );
3047 DBG_TRACE( DbgInfo, "Signal Level : 0x%04x\n",
3048 aps[num_aps].signal_level );
3049 DBG_TRACE( DbgInfo, "Beacon Interval : 0x%04x\n",
3050 aps[num_aps].beacon_interval_time );
3051 DBG_TRACE( DbgInfo, "Capability : 0x%04x\n",
3052 aps[num_aps].capability );
3053 DBG_TRACE( DbgInfo, "SSID Length : 0x%04x\n",
3054 aps[num_aps].ssid_len );
3055 DBG_TRACE( DbgInfo, "BSSID : %s\n",
3056 DbgHwAddr( aps[num_aps].bssid ));
3058 if ( aps[num_aps].ssid_len != 0 ) {
3059 DBG_TRACE( DbgInfo, "SSID : %s.\n",
3060 aps[num_aps].ssid_val );
3061 } else {
3062 DBG_TRACE( DbgInfo, "SSID : %s.\n", "ANY" );
3065 DBG_TRACE( DbgInfo, "\n" );
3067 /* Copy the info to the ScanResult structure in the private
3068 adapter struct */
3069 memcpy( &( lp->scan_results.APTable[num_aps]), &( aps[num_aps] ),
3070 sizeof( SCAN_RS_STRCT ));
3073 /* Set scan result to true so that any scan requests will
3074 complete */
3075 lp->scan_results.scan_complete = TRUE;
3078 break;
3079 case CFG_ACS_SCAN:
3080 DBG_TRACE( DbgInfo, "CFG_ACS_SCAN\n" );
3083 PROBE_RESP *probe_rsp = (PROBE_RESP *)ltv;
3084 hcf_8 *wpa_ie = NULL;
3085 hcf_16 wpa_ie_len = 0;
3087 DBG_TRACE( DbgInfo, "(%s) =========================\n",
3088 lp->dev->name );
3090 DBG_TRACE( DbgInfo, "(%s) length : 0x%04x.\n",
3091 lp->dev->name, probe_rsp->length );
3093 if ( probe_rsp->length > 1 ) {
3094 DBG_TRACE( DbgInfo, "(%s) infoType : 0x%04x.\n",
3095 lp->dev->name, probe_rsp->infoType );
3097 DBG_TRACE( DbgInfo, "(%s) signal : 0x%02x.\n",
3098 lp->dev->name, probe_rsp->signal );
3100 DBG_TRACE( DbgInfo, "(%s) silence : 0x%02x.\n",
3101 lp->dev->name, probe_rsp->silence );
3103 DBG_TRACE( DbgInfo, "(%s) rxFlow : 0x%02x.\n",
3104 lp->dev->name, probe_rsp->rxFlow );
3106 DBG_TRACE( DbgInfo, "(%s) rate : 0x%02x.\n",
3107 lp->dev->name, probe_rsp->rate );
3109 DBG_TRACE( DbgInfo, "(%s) frame cntl : 0x%04x.\n",
3110 lp->dev->name, probe_rsp->frameControl );
3112 DBG_TRACE( DbgInfo, "(%s) durID : 0x%04x.\n",
3113 lp->dev->name, probe_rsp->durID );
3115 DBG_TRACE( DbgInfo, "(%s) address1 : %s\n",
3116 lp->dev->name, DbgHwAddr( probe_rsp->address1 ));
3118 DBG_TRACE( DbgInfo, "(%s) address2 : %s\n",
3119 lp->dev->name, DbgHwAddr( probe_rsp->address2 ));
3121 DBG_TRACE( DbgInfo, "(%s) BSSID : %s\n",
3122 lp->dev->name, DbgHwAddr( probe_rsp->BSSID ));
3124 DBG_TRACE( DbgInfo, "(%s) sequence : 0x%04x.\n",
3125 lp->dev->name, probe_rsp->sequence );
3127 DBG_TRACE( DbgInfo, "(%s) address4 : %s\n",
3128 lp->dev->name, DbgHwAddr( probe_rsp->address4 ));
3130 DBG_TRACE( DbgInfo, "(%s) datalength : 0x%04x.\n",
3131 lp->dev->name, probe_rsp->dataLength );
3133 DBG_TRACE( DbgInfo, "(%s) DA : %s\n",
3134 lp->dev->name, DbgHwAddr( probe_rsp->DA ));
3136 DBG_TRACE( DbgInfo, "(%s) SA : %s\n",
3137 lp->dev->name, DbgHwAddr( probe_rsp->SA ));
3139 //DBG_TRACE( DbgInfo, "(%s) lenType : 0x%04x.\n",
3140 // lp->dev->name, probe_rsp->lenType );
3142 DBG_TRACE( DbgInfo, "(%s) timeStamp : %s\n",
3143 lp->dev->name, DbgHwAddr( probe_rsp->timeStamp ));
3145 DBG_TRACE( DbgInfo, "(%s) beaconInt : 0x%04x.\n",
3146 lp->dev->name, probe_rsp->beaconInterval );
3148 DBG_TRACE( DbgInfo, "(%s) capability : 0x%04x.\n",
3149 lp->dev->name, probe_rsp->capability );
3151 DBG_TRACE( DbgInfo, "(%s) SSID len : 0x%04x.\n",
3152 lp->dev->name, probe_rsp->rawData[1] );
3154 if ( probe_rsp->rawData[1] > 0 ) {
3155 char ssid[HCF_MAX_NAME_LEN];
3157 memset( ssid, 0, sizeof( ssid ));
3158 strncpy( ssid, &probe_rsp->rawData[2],
3159 probe_rsp->rawData[1] );
3161 DBG_TRACE( DbgInfo, "(%s) SSID : %s\n",
3162 lp->dev->name, ssid );
3165 /* Parse out the WPA-IE, if one exists */
3166 wpa_ie = wl_parse_wpa_ie( probe_rsp, &wpa_ie_len );
3167 if ( wpa_ie != NULL ) {
3168 DBG_TRACE( DbgInfo, "(%s) WPA-IE : %s\n",
3169 lp->dev->name, wl_print_wpa_ie( wpa_ie, wpa_ie_len ));
3172 DBG_TRACE( DbgInfo, "(%s) flags : 0x%04x.\n",
3173 lp->dev->name, probe_rsp->flags );
3176 DBG_TRACE( DbgInfo, "\n\n" );
3177 /* If probe response length is 1, then the scan is complete */
3178 if ( probe_rsp->length == 1 ) {
3179 DBG_TRACE( DbgInfo, "SCAN COMPLETE\n" );
3180 lp->probe_results.num_aps = lp->probe_num_aps;
3181 lp->probe_results.scan_complete = TRUE;
3183 /* Reset the counter for the next scan request */
3184 lp->probe_num_aps = 0;
3186 /* Send a wireless extensions event that the scan completed */
3187 wl_wext_event_scan_complete( lp->dev );
3188 } else {
3189 /* Only copy to the table if the entry is unique; APs sometimes
3190 respond more than once to a probe */
3191 if ( lp->probe_num_aps == 0 ) {
3192 /* Copy the info to the ScanResult structure in the private
3193 adapter struct */
3194 memcpy( &( lp->probe_results.ProbeTable[lp->probe_num_aps] ),
3195 probe_rsp, sizeof( PROBE_RESP ));
3197 /* Increment the number of APs detected */
3198 lp->probe_num_aps++;
3199 } else {
3200 int count;
3201 int unique = 1;
3203 for( count = 0; count < lp->probe_num_aps; count++ ) {
3204 if ( memcmp( &( probe_rsp->BSSID ),
3205 lp->probe_results.ProbeTable[count].BSSID,
3206 ETH_ALEN ) == 0 ) {
3207 unique = 0;
3211 if ( unique ) {
3212 /* Copy the info to the ScanResult structure in the
3213 private adapter struct. Only copy if there's room in the
3214 table */
3215 if ( lp->probe_num_aps < MAX_NAPS )
3217 memcpy( &( lp->probe_results.ProbeTable[lp->probe_num_aps] ),
3218 probe_rsp, sizeof( PROBE_RESP ));
3220 else
3222 DBG_WARNING( DbgInfo, "Num of scan results exceeds storage, truncating\n" );
3225 /* Increment the number of APs detected. Note I do this
3226 here even when I don't copy the probe response to the
3227 buffer in order to detect the overflow condition */
3228 lp->probe_num_aps++;
3234 break;
3236 case CFG_LINK_STAT:
3237 #define ls ((LINK_STATUS_STRCT *)ltv)
3238 DBG_TRACE( DbgInfo, "CFG_LINK_STAT\n" );
3240 switch( ls->linkStatus ) {
3241 case 1:
3242 DBG_TRACE( DbgInfo, "Link Status : Connected\n" );
3243 wl_wext_event_ap( lp->dev );
3244 break;
3246 case 2:
3247 DBG_TRACE( DbgInfo, "Link Status : Disconnected\n" );
3248 break;
3250 case 3:
3251 DBG_TRACE( DbgInfo, "Link Status : Access Point Change\n" );
3252 break;
3254 case 4:
3255 DBG_TRACE( DbgInfo, "Link Status : Access Point Out of Range\n" );
3256 break;
3258 case 5:
3259 DBG_TRACE( DbgInfo, "Link Status : Access Point In Range\n" );
3260 break;
3262 default:
3263 DBG_TRACE( DbgInfo, "Link Status : UNKNOWN (0x%04x)\n",
3264 ls->linkStatus );
3265 break;
3268 break;
3269 #undef ls
3271 case CFG_ASSOC_STAT:
3272 DBG_TRACE( DbgInfo, "CFG_ASSOC_STAT\n" );
3275 ASSOC_STATUS_STRCT *as = (ASSOC_STATUS_STRCT *)ltv;
3277 switch( as->assocStatus ) {
3278 case 1:
3279 DBG_TRACE( DbgInfo, "Association Status : STA Associated\n" );
3280 break;
3282 case 2:
3283 DBG_TRACE( DbgInfo, "Association Status : STA Reassociated\n" );
3284 break;
3286 case 3:
3287 DBG_TRACE( DbgInfo, "Association Status : STA Disassociated\n" );
3288 break;
3290 default:
3291 DBG_TRACE( DbgInfo, "Association Status : UNKNOWN (0x%04x)\n",
3292 as->assocStatus );
3293 break;
3296 DBG_TRACE( DbgInfo, "STA Address : %s\n",
3297 DbgHwAddr( as->staAddr ));
3299 if (( as->assocStatus == 2 ) && ( as->len == 8 )) {
3300 DBG_TRACE( DbgInfo, "Old AP Address : %s\n",
3301 DbgHwAddr( as->oldApAddr ));
3305 break;
3307 case CFG_SECURITY_STAT:
3308 DBG_TRACE( DbgInfo, "CFG_SECURITY_STAT\n" );
3311 SECURITY_STATUS_STRCT *ss = (SECURITY_STATUS_STRCT *)ltv;
3313 switch( ss->securityStatus ) {
3314 case 1:
3315 DBG_TRACE( DbgInfo, "Security Status : Dissassociate [AP]\n" );
3316 break;
3318 case 2:
3319 DBG_TRACE( DbgInfo, "Security Status : Deauthenticate [AP]\n" );
3320 break;
3322 case 3:
3323 DBG_TRACE( DbgInfo, "Security Status : Authenticate Fail [STA] or [AP]\n" );
3324 break;
3326 case 4:
3327 DBG_TRACE( DbgInfo, "Security Status : MIC Fail\n" );
3328 break;
3330 case 5:
3331 DBG_TRACE( DbgInfo, "Security Status : Associate Fail\n" );
3332 break;
3334 default:
3335 DBG_TRACE( DbgInfo, "Security Status : UNKNOWN %d\n",
3336 ss->securityStatus );
3337 break;
3340 DBG_TRACE( DbgInfo, "STA Address : %s\n", DbgHwAddr( ss->staAddr ));
3342 DBG_TRACE( DbgInfo, "Reason : 0x%04x \n", ss->reason );
3345 break;
3347 case CFG_WMP:
3348 DBG_TRACE( DbgInfo, "CFG_WMP, size is %d bytes\n", ltv->len );
3350 WMP_RSP_STRCT *wmp_rsp = (WMP_RSP_STRCT *)ltv;
3352 DBG_TRACE( DbgInfo, "CFG_WMP, pdu type is 0x%x\n",
3353 wmp_rsp->wmpRsp.wmpHdr.type );
3355 switch( wmp_rsp->wmpRsp.wmpHdr.type ) {
3356 case WVLAN_WMP_PDU_TYPE_LT_RSP:
3358 #if DBG
3359 LINKTEST_RSP_STRCT *lt_rsp = (LINKTEST_RSP_STRCT *)ltv;
3360 #endif // DBG
3361 DBG_TRACE( DbgInfo, "LINK TEST RESULT\n" );
3362 DBG_TRACE( DbgInfo, "================\n" );
3363 DBG_TRACE( DbgInfo, "Length : %d.\n", lt_rsp->len );
3365 DBG_TRACE( DbgInfo, "Name : %s.\n", lt_rsp->ltRsp.ltRsp.name );
3366 DBG_TRACE( DbgInfo, "Signal Level : 0x%02x.\n", lt_rsp->ltRsp.ltRsp.signal );
3367 DBG_TRACE( DbgInfo, "Noise Level : 0x%02x.\n", lt_rsp->ltRsp.ltRsp.noise );
3368 DBG_TRACE( DbgInfo, "Receive Flow : 0x%02x.\n", lt_rsp->ltRsp.ltRsp.rxFlow );
3369 DBG_TRACE( DbgInfo, "Data Rate : 0x%02x.\n", lt_rsp->ltRsp.ltRsp.dataRate );
3370 DBG_TRACE( DbgInfo, "Protocol : 0x%04x.\n", lt_rsp->ltRsp.ltRsp.protocol );
3371 DBG_TRACE( DbgInfo, "Station : 0x%02x.\n", lt_rsp->ltRsp.ltRsp.station );
3372 DBG_TRACE( DbgInfo, "Data Rate Cap : 0x%02x.\n", lt_rsp->ltRsp.ltRsp.dataRateCap );
3374 DBG_TRACE( DbgInfo, "Power Mgmt : 0x%02x 0x%02x 0x%02x 0x%02x.\n",
3375 lt_rsp->ltRsp.ltRsp.powerMgmt[0],
3376 lt_rsp->ltRsp.ltRsp.powerMgmt[1],
3377 lt_rsp->ltRsp.ltRsp.powerMgmt[2],
3378 lt_rsp->ltRsp.ltRsp.powerMgmt[3] );
3380 DBG_TRACE( DbgInfo, "Robustness : 0x%02x 0x%02x 0x%02x 0x%02x.\n",
3381 lt_rsp->ltRsp.ltRsp.robustness[0],
3382 lt_rsp->ltRsp.ltRsp.robustness[1],
3383 lt_rsp->ltRsp.ltRsp.robustness[2],
3384 lt_rsp->ltRsp.ltRsp.robustness[3] );
3386 DBG_TRACE( DbgInfo, "Scaling : 0x%02x.\n", lt_rsp->ltRsp.ltRsp.scaling );
3389 break;
3391 default:
3392 break;
3396 break;
3398 case CFG_NULL:
3399 DBG_TRACE( DbgInfo, "CFG_NULL\n" );
3400 break;
3402 case CFG_UPDATED_INFO_RECORD: // Updated Information Record
3403 DBG_TRACE( DbgInfo, "UPDATED INFORMATION RECORD\n" );
3405 ltv_val = CNV_INT_TO_LITTLE( ltv->u.u16[0] );
3407 /* Check and see which RID was updated */
3408 switch( ltv_val ) {
3409 case CFG_CUR_COUNTRY_INFO: // Indicate Passive Scan Completion
3410 DBG_TRACE( DbgInfo, "Updated country info\n" );
3412 /* Do I need to hold off on updating RIDs until the process is
3413 complete? */
3414 wl_connect( lp );
3415 break;
3417 case CFG_PORT_STAT: // Wait for Connect Event
3418 //wl_connect( lp );
3420 break;
3422 default:
3423 DBG_WARNING( DbgInfo, "Unknown RID: 0x%04x\n", ltv_val );
3426 break;
3428 default:
3429 DBG_TRACE( DbgInfo, "UNKNOWN MESSAGE: 0x%04x\n", ltv->typ );
3430 break;
3432 DBG_LEAVE( DbgInfo );
3433 return;
3434 } // wl_process_mailbox
3435 /*============================================================================*/
3436 #endif /* ifndef USE_MBOX_SYNC */
3438 #ifdef USE_WDS
3439 /*******************************************************************************
3440 * wl_wds_netdev_register()
3441 *******************************************************************************
3443 * DESCRIPTION:
3445 * This function registers net_device structures with the system's network
3446 * layer for use with the WDS ports.
3449 * PARAMETERS:
3451 * lp - pointer to the device's private adapter structure
3453 * RETURNS:
3455 * N/A
3457 ******************************************************************************/
3458 void wl_wds_netdev_register( struct wl_private *lp )
3460 int count;
3461 /*------------------------------------------------------------------------*/
3462 DBG_FUNC( "wl_wds_netdev_register" );
3463 DBG_ENTER( DbgInfo );
3464 //;?why is there no USE_WDS clause like in wl_enable_wds_ports
3465 if ( CNV_INT_TO_LITTLE( lp->hcfCtx.IFB_FWIdentity.comp_id ) == COMP_ID_FW_AP ) {
3466 for( count = 0; count < NUM_WDS_PORTS; count++ ) {
3467 if ( WVLAN_VALID_MAC_ADDRESS( lp->wds_port[count].wdsAddress )) {
3468 if ( register_netdev( lp->wds_port[count].dev ) != 0 ) {
3469 DBG_WARNING( DbgInfo, "net device for WDS port %d could not be registered\n",
3470 ( count + 1 ));
3472 lp->wds_port[count].is_registered = TRUE;
3474 /* Fill out the net_device structs with the MAC addr */
3475 memcpy( lp->wds_port[count].dev->dev_addr, lp->MACAddress, ETH_ALEN );
3476 lp->wds_port[count].dev->addr_len = ETH_ALEN;
3480 DBG_LEAVE( DbgInfo );
3481 return;
3482 } // wl_wds_netdev_register
3483 /*============================================================================*/
3486 /*******************************************************************************
3487 * wl_wds_netdev_deregister()
3488 *******************************************************************************
3490 * DESCRIPTION:
3492 * This function deregisters the WDS net_device structures used by the
3493 * system's network layer.
3496 * PARAMETERS:
3498 * lp - pointer to the device's private adapter structure
3500 * RETURNS:
3502 * N/A
3504 ******************************************************************************/
3505 void wl_wds_netdev_deregister( struct wl_private *lp )
3507 int count;
3508 /*------------------------------------------------------------------------*/
3509 DBG_FUNC( "wl_wds_netdev_deregister" );
3510 DBG_ENTER( DbgInfo );
3511 if ( CNV_INT_TO_LITTLE( lp->hcfCtx.IFB_FWIdentity.comp_id ) == COMP_ID_FW_AP ) {
3512 for( count = 0; count < NUM_WDS_PORTS; count++ ) {
3513 if ( WVLAN_VALID_MAC_ADDRESS( lp->wds_port[count].wdsAddress )) {
3514 unregister_netdev( lp->wds_port[count].dev );
3516 lp->wds_port[count].is_registered = FALSE;
3519 DBG_LEAVE( DbgInfo );
3520 return;
3521 } // wl_wds_netdev_deregister
3522 /*============================================================================*/
3523 #endif /* USE_WDS */
3526 #if 0 //SCULL_USE_PROC /* don't waste space if unused */
3528 * The proc filesystem: function to read and entry
3530 int printf_hcf_16( char *s, char *buf, hcf_16* p, int n );
3531 int printf_hcf_16( char *s, char *buf, hcf_16* p, int n ) {
3533 int i, len;
3535 len = sprintf(buf, "%s", s );
3536 while ( len < 20 ) len += sprintf(buf+len, " " );
3537 len += sprintf(buf+len,": " );
3538 for ( i = 0; i < n; i++ ) {
3539 if ( len % 80 > 75 ) {
3540 len += sprintf(buf+len,"\n" );
3542 len += sprintf(buf+len,"%04X ", p[i] );
3544 len += sprintf(buf+len,"\n" );
3545 return len;
3546 } // printf_hcf_16
3548 int printf_hcf_8( char *s, char *buf, hcf_8* p, int n );
3549 int printf_hcf_8( char *s, char *buf, hcf_8* p, int n ) {
3551 int i, len;
3553 len = sprintf(buf, "%s", s );
3554 while ( len < 20 ) len += sprintf(buf+len, " " );
3555 len += sprintf(buf+len,": " );
3556 for ( i = 0; i <= n; i++ ) {
3557 if ( len % 80 > 77 ) {
3558 len += sprintf(buf+len,"\n" );
3560 len += sprintf(buf+len,"%02X ", p[i] );
3562 len += sprintf(buf+len,"\n" );
3563 return len;
3564 } // printf_hcf8
3566 int printf_strct( char *s, char *buf, hcf_16* p );
3567 int printf_strct( char *s, char *buf, hcf_16* p ) {
3569 int i, len;
3571 len = sprintf(buf, "%s", s );
3572 while ( len < 20 ) len += sprintf(buf+len, " " );
3573 len += sprintf(buf+len,": " );
3574 for ( i = 0; i <= *p; i++ ) {
3575 if ( len % 80 > 75 ) {
3576 len += sprintf(buf+len,"\n" );
3578 len += sprintf(buf+len,"%04X ", p[i] );
3580 len += sprintf(buf+len,"\n" );
3581 return len;
3582 } // printf_strct
3584 int scull_read_procmem(char *buf, char **start, off_t offset, int len, int *eof, void *data )
3586 struct wl_private *lp = NULL;
3587 IFBP ifbp;
3588 CFG_HERMES_TALLIES_STRCT *p;
3590 #define LIMIT (PAGE_SIZE-80) /* don't print any more after this size */
3592 len=0;
3594 if ( ( lp = ((struct net_device *)data)->priv ) == NULL ) {
3595 len += sprintf(buf+len,"No wl_private in scull_read_procmem\n" );
3596 } else if ( lp->wlags49_type == 0 ){
3597 ifbp = &lp->hcfCtx;
3598 len += sprintf(buf+len,"Magic: 0x%04X\n", ifbp->IFB_Magic );
3599 len += sprintf(buf+len,"IOBase: 0x%04X\n", ifbp->IFB_IOBase );
3600 len += sprintf(buf+len,"LinkStat: 0x%04X\n", ifbp->IFB_LinkStat );
3601 len += sprintf(buf+len,"DSLinkStat: 0x%04X\n", ifbp->IFB_DSLinkStat );
3602 len += sprintf(buf+len,"TickIni: 0x%08lX\n", ifbp->IFB_TickIni );
3603 len += sprintf(buf+len,"TickCnt: 0x%04X\n", ifbp->IFB_TickCnt );
3604 len += sprintf(buf+len,"IntOffCnt: 0x%04X\n", ifbp->IFB_IntOffCnt );
3605 len += printf_hcf_16( "IFB_FWIdentity", &buf[len],
3606 &ifbp->IFB_FWIdentity.len, ifbp->IFB_FWIdentity.len + 1 );
3607 } else if ( lp->wlags49_type == 1 ) {
3608 len += sprintf(buf+len,"Channel: 0x%04X\n", lp->Channel );
3609 /****** len += sprintf(buf+len,"slock: %d\n", lp->slock ); */
3610 //x struct tq_struct "task: 0x%04X\n", lp->task );
3611 //x struct net_device_stats "stats: 0x%04X\n", lp->stats );
3612 #ifdef WIRELESS_EXT
3613 //x struct iw_statistics "wstats: 0x%04X\n", lp->wstats );
3614 //x len += sprintf(buf+len,"spy_number: 0x%04X\n", lp->spy_number );
3615 //x u_char spy_address[IW_MAX_SPY][ETH_ALEN];
3616 //x struct iw_quality spy_stat[IW_MAX_SPY];
3617 #endif // WIRELESS_EXT
3618 len += sprintf(buf+len,"IFB: 0x%p\n", &lp->hcfCtx );
3619 len += sprintf(buf+len,"flags: %#.8lX\n", lp->flags ); //;?use this format from now on
3620 len += sprintf(buf+len,"DebugFlag(wl_private) 0x%04X\n", lp->DebugFlag );
3621 #if DBG
3622 len += sprintf(buf+len,"DebugFlag (DbgInfo): 0x%08lX\n", DbgInfo->DebugFlag );
3623 #endif // DBG
3624 len += sprintf(buf+len,"is_registered: 0x%04X\n", lp->is_registered );
3625 //x CFG_DRV_INFO_STRCT "driverInfo: 0x%04X\n", lp->driverInfo );
3626 len += printf_strct( "driverInfo", &buf[len], (hcf_16*)&lp->driverInfo );
3627 //x CFG_IDENTITY_STRCT "driverIdentity: 0x%04X\n", lp->driverIdentity );
3628 len += printf_strct( "driverIdentity", &buf[len], (hcf_16*)&lp->driverIdentity );
3629 //x CFG_FW_IDENTITY_STRCT "StationIdentity: 0x%04X\n", lp->StationIdentity );
3630 len += printf_strct( "StationIdentity", &buf[len], (hcf_16*)&lp->StationIdentity );
3631 //x CFG_PRI_IDENTITY_STRCT "PrimaryIdentity: 0x%04X\n", lp->PrimaryIdentity );
3632 len += printf_strct( "PrimaryIdentity", &buf[len], (hcf_16*)&lp->hcfCtx.IFB_PRIIdentity );
3633 len += printf_strct( "PrimarySupplier", &buf[len], (hcf_16*)&lp->hcfCtx.IFB_PRISup );
3634 //x CFG_PRI_IDENTITY_STRCT "NICIdentity: 0x%04X\n", lp->NICIdentity );
3635 len += printf_strct( "NICIdentity", &buf[len], (hcf_16*)&lp->NICIdentity );
3636 //x ltv_t "ltvRecord: 0x%04X\n", lp->ltvRecord );
3637 len += sprintf(buf+len,"txBytes: 0x%08lX\n", lp->txBytes );
3638 len += sprintf(buf+len,"maxPort: 0x%04X\n", lp->maxPort ); /* 0 for STA, 6 for AP */
3639 /* Elements used for async notification from hardware */
3640 //x RID_LOG_STRCT RidList[10];
3641 //x ltv_t "updatedRecord: 0x%04X\n", lp->updatedRecord );
3642 //x PROBE_RESP "ProbeResp: 0x%04X\n", lp->ProbeResp );
3643 //x ASSOC_STATUS_STRCT "assoc_stat: 0x%04X\n", lp->assoc_stat );
3644 //x SECURITY_STATUS_STRCT "sec_stat: 0x%04X\n", lp->sec_stat );
3645 //x u_char lookAheadBuf[WVLAN_MAX_LOOKAHEAD];
3646 len += sprintf(buf+len,"PortType: 0x%04X\n", lp->PortType ); // 1 - 3 (1 [Normal] | 3 [AdHoc])
3647 len += sprintf(buf+len,"Channel: 0x%04X\n", lp->Channel ); // 0 - 14 (0)
3648 //x hcf_16 TxRateControl[2];
3649 len += sprintf(buf+len,"TxRateControl[2]: 0x%04X 0x%04X\n",
3650 lp->TxRateControl[0], lp->TxRateControl[1] );
3651 len += sprintf(buf+len,"DistanceBetweenAPs: 0x%04X\n", lp->DistanceBetweenAPs ); // 1 - 3 (1)
3652 len += sprintf(buf+len,"RTSThreshold: 0x%04X\n", lp->RTSThreshold ); // 0 - 2347 (2347)
3653 len += sprintf(buf+len,"PMEnabled: 0x%04X\n", lp->PMEnabled ); // 0 - 2, 8001 - 8002 (0)
3654 len += sprintf(buf+len,"MicrowaveRobustness: 0x%04X\n", lp->MicrowaveRobustness );// 0 - 1 (0)
3655 len += sprintf(buf+len,"CreateIBSS: 0x%04X\n", lp->CreateIBSS ); // 0 - 1 (0)
3656 len += sprintf(buf+len,"MulticastReceive: 0x%04X\n", lp->MulticastReceive ); // 0 - 1 (1)
3657 len += sprintf(buf+len,"MaxSleepDuration: 0x%04X\n", lp->MaxSleepDuration ); // 0 - 65535 (100)
3658 //x hcf_8 MACAddress[ETH_ALEN];
3659 len += printf_hcf_8( "MACAddress", &buf[len], lp->MACAddress, ETH_ALEN );
3660 //x char NetworkName[HCF_MAX_NAME_LEN+1];
3661 len += sprintf(buf+len,"NetworkName: %.32s\n", lp->NetworkName );
3662 //x char StationName[HCF_MAX_NAME_LEN+1];
3663 len += sprintf(buf+len,"EnableEncryption: 0x%04X\n", lp->EnableEncryption ); // 0 - 1 (0)
3664 //x char Key1[MAX_KEY_LEN+1];
3665 len += printf_hcf_8( "Key1", &buf[len], lp->Key1, MAX_KEY_LEN );
3666 //x char Key2[MAX_KEY_LEN+1];
3667 //x char Key3[MAX_KEY_LEN+1];
3668 //x char Key4[MAX_KEY_LEN+1];
3669 len += sprintf(buf+len,"TransmitKeyID: 0x%04X\n", lp->TransmitKeyID ); // 1 - 4 (1)
3670 //x CFG_DEFAULT_KEYS_STRCT "DefaultKeys: 0x%04X\n", lp->DefaultKeys );
3671 //x u_char mailbox[MB_SIZE];
3672 //x char szEncryption[MAX_ENC_LEN];
3673 len += sprintf(buf+len,"driverEnable: 0x%04X\n", lp->driverEnable );
3674 len += sprintf(buf+len,"wolasEnable: 0x%04X\n", lp->wolasEnable );
3675 len += sprintf(buf+len,"atimWindow: 0x%04X\n", lp->atimWindow );
3676 len += sprintf(buf+len,"holdoverDuration: 0x%04X\n", lp->holdoverDuration );
3677 //x hcf_16 MulticastRate[2];
3678 len += sprintf(buf+len,"authentication: 0x%04X\n", lp->authentication ); // is this AP specific?
3679 len += sprintf(buf+len,"promiscuousMode: 0x%04X\n", lp->promiscuousMode );
3680 len += sprintf(buf+len,"DownloadFirmware: 0x%04X\n", lp->DownloadFirmware ); // 0 - 2 (0 [None] | 1 [STA] | 2 [AP])
3681 len += sprintf(buf+len,"AuthKeyMgmtSuite: 0x%04X\n", lp->AuthKeyMgmtSuite );
3682 len += sprintf(buf+len,"loadBalancing: 0x%04X\n", lp->loadBalancing );
3683 len += sprintf(buf+len,"mediumDistribution: 0x%04X\n", lp->mediumDistribution );
3684 len += sprintf(buf+len,"txPowLevel: 0x%04X\n", lp->txPowLevel );
3685 // len += sprintf(buf+len,"shortRetryLimit: 0x%04X\n", lp->shortRetryLimit );
3686 // len += sprintf(buf+len,"longRetryLimit: 0x%04X\n", lp->longRetryLimit );
3687 //x hcf_16 srsc[2];
3688 //x hcf_16 brsc[2];
3689 len += sprintf(buf+len,"connectionControl: 0x%04X\n", lp->connectionControl );
3690 //x //hcf_16 probeDataRates[2];
3691 len += sprintf(buf+len,"ownBeaconInterval: 0x%04X\n", lp->ownBeaconInterval );
3692 len += sprintf(buf+len,"coexistence: 0x%04X\n", lp->coexistence );
3693 //x WVLAN_FRAME "txF: 0x%04X\n", lp->txF );
3694 //x WVLAN_LFRAME txList[DEFAULT_NUM_TX_FRAMES];
3695 //x struct list_head "txFree: 0x%04X\n", lp->txFree );
3696 //x struct list_head txQ[WVLAN_MAX_TX_QUEUES];
3697 len += sprintf(buf+len,"netif_queue_on: 0x%04X\n", lp->netif_queue_on );
3698 len += sprintf(buf+len,"txQ_count: 0x%04X\n", lp->txQ_count );
3699 //x DESC_STRCT "desc_rx: 0x%04X\n", lp->desc_rx );
3700 //x DESC_STRCT "desc_tx: 0x%04X\n", lp->desc_tx );
3701 //x WVLAN_PORT_STATE "portState: 0x%04X\n", lp->portState );
3702 //x ScanResult "scan_results: 0x%04X\n", lp->scan_results );
3703 //x ProbeResult "probe_results: 0x%04X\n", lp->probe_results );
3704 len += sprintf(buf+len,"probe_num_aps: 0x%04X\n", lp->probe_num_aps );
3705 len += sprintf(buf+len,"use_dma: 0x%04X\n", lp->use_dma );
3706 //x DMA_STRCT "dma: 0x%04X\n", lp->dma );
3707 #ifdef USE_RTS
3708 len += sprintf(buf+len,"useRTS: 0x%04X\n", lp->useRTS );
3709 #endif // USE_RTS
3710 #if 1 //;? (HCF_TYPE) & HCF_TYPE_AP
3711 //;?should we restore this to allow smaller memory footprint
3712 //;?I guess not. This should be brought under Debug mode only
3713 len += sprintf(buf+len,"DTIMPeriod: 0x%04X\n", lp->DTIMPeriod ); // 1 - 255 (1)
3714 len += sprintf(buf+len,"multicastPMBuffering: 0x%04X\n", lp->multicastPMBuffering );
3715 len += sprintf(buf+len,"RejectAny: 0x%04X\n", lp->RejectAny ); // 0 - 1 (0)
3716 len += sprintf(buf+len,"ExcludeUnencrypted: 0x%04X\n", lp->ExcludeUnencrypted ); // 0 - 1 (1)
3717 len += sprintf(buf+len,"intraBSSRelay: 0x%04X\n", lp->intraBSSRelay );
3718 len += sprintf(buf+len,"wlags49_type: 0x%08lX\n", lp->wlags49_type );
3719 #ifdef USE_WDS
3720 //x WVLAN_WDS_IF wds_port[NUM_WDS_PORTS];
3721 #endif // USE_WDS
3722 #endif // HCF_AP
3723 } else if ( lp->wlags49_type == 2 ){
3724 len += sprintf(buf+len,"tallies to be added\n" );
3725 //Hermes Tallies (IFB substructure) {
3726 p = &lp->hcfCtx.IFB_NIC_Tallies;
3727 len += sprintf(buf+len,"TxUnicastFrames: %08lX\n", p->TxUnicastFrames );
3728 len += sprintf(buf+len,"TxMulticastFrames: %08lX\n", p->TxMulticastFrames );
3729 len += sprintf(buf+len,"TxFragments: %08lX\n", p->TxFragments );
3730 len += sprintf(buf+len,"TxUnicastOctets: %08lX\n", p->TxUnicastOctets );
3731 len += sprintf(buf+len,"TxMulticastOctets: %08lX\n", p->TxMulticastOctets );
3732 len += sprintf(buf+len,"TxDeferredTransmissions: %08lX\n", p->TxDeferredTransmissions );
3733 len += sprintf(buf+len,"TxSingleRetryFrames: %08lX\n", p->TxSingleRetryFrames );
3734 len += sprintf(buf+len,"TxMultipleRetryFrames: %08lX\n", p->TxMultipleRetryFrames );
3735 len += sprintf(buf+len,"TxRetryLimitExceeded: %08lX\n", p->TxRetryLimitExceeded );
3736 len += sprintf(buf+len,"TxDiscards: %08lX\n", p->TxDiscards );
3737 len += sprintf(buf+len,"RxUnicastFrames: %08lX\n", p->RxUnicastFrames );
3738 len += sprintf(buf+len,"RxMulticastFrames: %08lX\n", p->RxMulticastFrames );
3739 len += sprintf(buf+len,"RxFragments: %08lX\n", p->RxFragments );
3740 len += sprintf(buf+len,"RxUnicastOctets: %08lX\n", p->RxUnicastOctets );
3741 len += sprintf(buf+len,"RxMulticastOctets: %08lX\n", p->RxMulticastOctets );
3742 len += sprintf(buf+len,"RxFCSErrors: %08lX\n", p->RxFCSErrors );
3743 len += sprintf(buf+len,"RxDiscardsNoBuffer: %08lX\n", p->RxDiscardsNoBuffer );
3744 len += sprintf(buf+len,"TxDiscardsWrongSA: %08lX\n", p->TxDiscardsWrongSA );
3745 len += sprintf(buf+len,"RxWEPUndecryptable: %08lX\n", p->RxWEPUndecryptable );
3746 len += sprintf(buf+len,"RxMsgInMsgFragments: %08lX\n", p->RxMsgInMsgFragments );
3747 len += sprintf(buf+len,"RxMsgInBadMsgFragments: %08lX\n", p->RxMsgInBadMsgFragments );
3748 len += sprintf(buf+len,"RxDiscardsWEPICVError: %08lX\n", p->RxDiscardsWEPICVError );
3749 len += sprintf(buf+len,"RxDiscardsWEPExcluded: %08lX\n", p->RxDiscardsWEPExcluded );
3750 #if (HCF_EXT) & HCF_EXT_TALLIES_FW
3751 //to be added ;?
3752 #endif // HCF_EXT_TALLIES_FW
3753 } else if ( lp->wlags49_type & 0x8000 ) { //;?kludgy but it is unclear to me were else to place this
3754 #if DBG
3755 DbgInfo->DebugFlag = lp->wlags49_type & 0x7FFF;
3756 #endif // DBG
3757 lp->wlags49_type = 0; //default to IFB again ;?
3758 } else {
3759 len += sprintf(buf+len,"unknown value for wlags49_type: 0x%08lX\n", lp->wlags49_type );
3760 len += sprintf(buf+len,"0x0000 - IFB\n" );
3761 len += sprintf(buf+len,"0x0001 - wl_private\n" );
3762 len += sprintf(buf+len,"0x0002 - Tallies\n" );
3763 len += sprintf(buf+len,"0x8xxx - Change debufflag\n" );
3764 len += sprintf(buf+len,"ERROR 0001\nWARNING 0002\nNOTICE 0004\nTRACE 0008\n" );
3765 len += sprintf(buf+len,"VERBOSE 0010\nPARAM 0020\nBREAK 0040\nRX 0100\n" );
3766 len += sprintf(buf+len,"TX 0200\nDS 0400\n" );
3768 return len;
3769 } // scull_read_procmem
3771 static void proc_write(const char *name, write_proc_t *w, void *data)
3773 struct proc_dir_entry * entry = create_proc_entry(name, S_IFREG | S_IWUSR, NULL);
3774 if (entry) {
3775 entry->write_proc = w;
3776 entry->data = data;
3778 } // proc_write
3780 static int write_int(struct file *file, const char *buffer, unsigned long count, void *data)
3782 static char proc_number[11];
3783 unsigned int nr = 0;
3785 DBG_FUNC( "write_int" );
3786 DBG_ENTER( DbgInfo );
3788 if (count > 9) {
3789 count = -EINVAL;
3790 } else if ( copy_from_user(proc_number, buffer, count) ) {
3791 count = -EFAULT;
3793 if (count > 0 ) {
3794 proc_number[count] = 0;
3795 nr = simple_strtoul(proc_number , NULL, 0);
3796 *(unsigned int *)data = nr;
3797 if ( nr & 0x8000 ) { //;?kludgy but it is unclear to me were else to place this
3798 #if DBG
3799 DbgInfo->DebugFlag = nr & 0x7FFF;
3800 #endif // DBG
3803 DBG_PRINT( "value: %08X\n", nr );
3804 DBG_LEAVE( DbgInfo );
3805 return count;
3806 } // write_int
3808 #endif /* SCULL_USE_PROC */
3810 #ifdef DN554
3811 #define RUN_AT(x) (jiffies+(x)) //"borrowed" from include/pcmcia/k_compat.h
3812 #define DS_OOR 0x8000 //Deepsleep OutOfRange Status
3814 lp->timer_oor_cnt = DS_OOR;
3815 init_timer( &lp->timer_oor );
3816 lp->timer_oor.function = timer_oor;
3817 lp->timer_oor.data = (unsigned long)lp;
3818 lp->timer_oor.expires = RUN_AT( 3 * HZ );
3819 add_timer( &lp->timer_oor );
3820 printk( "<5>wl_enable: %ld\n", jiffies ); //;?remove me 1 day
3821 #endif //DN554
3822 #ifdef DN554
3823 /*******************************************************************************
3824 * timer_oor()
3825 *******************************************************************************
3827 * DESCRIPTION:
3830 * PARAMETERS:
3832 * arg - a u_long representing a pointer to a dev_link_t structure for the
3833 * device to be released.
3835 * RETURNS:
3837 * N/A
3839 ******************************************************************************/
3840 void timer_oor( u_long arg )
3842 struct wl_private *lp = (struct wl_private *)arg;
3844 /*------------------------------------------------------------------------*/
3846 DBG_FUNC( "timer_oor" );
3847 DBG_ENTER( DbgInfo );
3848 DBG_PARAM( DbgInfo, "arg", "0x%08lx", arg );
3850 printk( "<5>timer_oor: %ld 0x%04X\n", jiffies, lp->timer_oor_cnt ); //;?remove me 1 day
3851 lp->timer_oor_cnt += 10;
3852 if ( (lp->timer_oor_cnt & ~DS_OOR) > 300 ) {
3853 lp->timer_oor_cnt = 300;
3855 lp->timer_oor_cnt |= DS_OOR;
3856 init_timer( &lp->timer_oor );
3857 lp->timer_oor.function = timer_oor;
3858 lp->timer_oor.data = (unsigned long)lp;
3859 lp->timer_oor.expires = RUN_AT( (lp->timer_oor_cnt & ~DS_OOR) * HZ );
3860 add_timer( &lp->timer_oor );
3862 DBG_LEAVE( DbgInfo );
3863 } // timer_oor
3864 #endif //DN554
3866 MODULE_LICENSE("Dual BSD/GPL");