1 /*
2 * Wavelan Pcmcia driver
3 *
4 * Jean II - HPLB '96
5 *
6 * Reorganisation and extension of the driver.
7 * Original copyright follow. See wavelan_cs.h for details.
8 *
9 * This code is derived from Anthony D. Joseph's code and all the changes here
10 * are also under the original copyright below.
11 *
12 * This code supports version 2.00 of WaveLAN/PCMCIA cards (2.4GHz), and
13 * can work on Linux 2.0.36 with support of David Hinds' PCMCIA Card Services
14 *
15 * Joe Finney (joe@comp.lancs.ac.uk) at Lancaster University in UK added
16 * critical code in the routine to initialize the Modem Management Controller.
17 *
18 * Thanks to Alan Cox and Bruce Janson for their advice.
19 *
20 * -- Yunzhou Li (scip4166@nus.sg)
21 *
22 #ifdef WAVELAN_ROAMING
23 * Roaming support added 07/22/98 by Justin Seger (jseger@media.mit.edu)
24 * based on patch by Joe Finney from Lancaster University.
25 #endif
26 *
27 * Lucent (formerly AT&T GIS, formerly NCR) WaveLAN PCMCIA card: An
28 * Ethernet-like radio transceiver controlled by an Intel 82593 coprocessor.
29 *
30 * A non-shared memory PCMCIA ethernet driver for linux
31 *
32 * ISA version modified to support PCMCIA by Anthony Joseph (adj@lcs.mit.edu)
33 *
34 *
35 * Joseph O'Sullivan & John Langford (josullvn@cs.cmu.edu & jcl@cs.cmu.edu)
36 *
37 * Apr 2 '98 made changes to bring the i82593 control/int handling in line
38 * with offical specs...
39 *
40 * Changes:
41 * Arnaldo Carvalho de Melo <acme@conectiva.com.br> - 08/08/2000
42 * - reorganize kmallocs in wavelan_attach, checking all for failure
43 * and releasing the previous allocations if one fails
44 * <No longer true, we reverted to the version in the Pcmcia package
45 * which was correct in the first place - Jean II>
46 *
47 ****************************************************************************
48 * Copyright 1995
49 * Anthony D. Joseph
50 * Massachusetts Institute of Technology
51 *
52 * Permission to use, copy, modify, and distribute this program
53 * for any purpose and without fee is hereby granted, provided
54 * that this copyright and permission notice appear on all copies
55 * and supporting documentation, the name of M.I.T. not be used
56 * in advertising or publicity pertaining to distribution of the
57 * program without specific prior permission, and notice be given
58 * in supporting documentation that copying and distribution is
59 * by permission of M.I.T. M.I.T. makes no representations about
60 * the suitability of this software for any purpose. It is pro-
61 * vided "as is" without express or implied warranty.
62 ****************************************************************************
63 *
64 */
65
66 /* Do *NOT* add other headers here, you are guaranteed to be wrong - Jean II */
67 #include "wavelan_cs.h" /* Private header */
68
69 /************************* MISC SUBROUTINES **************************/
70 /*
71 * Subroutines which won't fit in one of the following category
72 * (wavelan modem or i82593)
73 */
74
75 /*------------------------------------------------------------------*/
76 /*
77 * Wrapper for disabling interrupts.
78 * (note : inline, so optimised away)
79 */
80 static inline void
wv_splhi(net_local * lp,unsigned long * pflags)81 wv_splhi(net_local * lp,
82 unsigned long * pflags)
83 {
84 spin_lock_irqsave(&lp->spinlock, *pflags);
85 /* Note : above does the cli(); itself */
86 }
87
88 /*------------------------------------------------------------------*/
89 /*
90 * Wrapper for re-enabling interrupts.
91 */
92 static inline void
wv_splx(net_local * lp,unsigned long * pflags)93 wv_splx(net_local * lp,
94 unsigned long * pflags)
95 {
96 spin_unlock_irqrestore(&lp->spinlock, *pflags);
97
98 /* Note : enabling interrupts on the hardware is done in wv_ru_start()
99 * via : outb(OP1_INT_ENABLE, LCCR(base));
100 */
101 }
102
103 /*------------------------------------------------------------------*/
104 /*
105 * Wrapper for reporting error to cardservices
106 */
cs_error(client_handle_t handle,int func,int ret)107 static void cs_error(client_handle_t handle, int func, int ret)
108 {
109 error_info_t err = { func, ret };
110 CardServices(ReportError, handle, &err);
111 }
112
113 #ifdef STRUCT_CHECK
114 /*------------------------------------------------------------------*/
115 /*
116 * Sanity routine to verify the sizes of the various WaveLAN interface
117 * structures.
118 */
119 static char *
wv_structuct_check(void)120 wv_structuct_check(void)
121 {
122 #define SC(t,s,n) if (sizeof(t) != s) return(n);
123
124 SC(psa_t, PSA_SIZE, "psa_t");
125 SC(mmw_t, MMW_SIZE, "mmw_t");
126 SC(mmr_t, MMR_SIZE, "mmr_t");
127
128 #undef SC
129
130 return((char *) NULL);
131 } /* wv_structuct_check */
132 #endif /* STRUCT_CHECK */
133
134 /******************* MODEM MANAGEMENT SUBROUTINES *******************/
135 /*
136 * Useful subroutines to manage the modem of the wavelan
137 */
138
139 /*------------------------------------------------------------------*/
140 /*
141 * Read from card's Host Adaptor Status Register.
142 */
143 static inline u_char
hasr_read(u_long base)144 hasr_read(u_long base)
145 {
146 return(inb(HASR(base)));
147 } /* hasr_read */
148
149 /*------------------------------------------------------------------*/
150 /*
151 * Write to card's Host Adapter Command Register.
152 */
153 static inline void
hacr_write(u_long base,u_char hacr)154 hacr_write(u_long base,
155 u_char hacr)
156 {
157 outb(hacr, HACR(base));
158 } /* hacr_write */
159
160 /*------------------------------------------------------------------*/
161 /*
162 * Write to card's Host Adapter Command Register. Include a delay for
163 * those times when it is needed.
164 */
165 static inline void
hacr_write_slow(u_long base,u_char hacr)166 hacr_write_slow(u_long base,
167 u_char hacr)
168 {
169 hacr_write(base, hacr);
170 /* delay might only be needed sometimes */
171 mdelay(1);
172 } /* hacr_write_slow */
173
174 /*------------------------------------------------------------------*/
175 /*
176 * Read the Parameter Storage Area from the WaveLAN card's memory
177 */
178 static void
psa_read(device * dev,int o,u_char * b,int n)179 psa_read(device * dev,
180 int o, /* offset in PSA */
181 u_char * b, /* buffer to fill */
182 int n) /* size to read */
183 {
184 u_char * ptr = ((u_char *)dev->mem_start) + PSA_ADDR + (o << 1);
185
186 while(n-- > 0)
187 {
188 *b++ = readb(ptr);
189 /* Due to a lack of address decode pins, the WaveLAN PCMCIA card
190 * only supports reading even memory addresses. That means the
191 * increment here MUST be two.
192 * Because of that, we can't use memcpy_fromio()...
193 */
194 ptr += 2;
195 }
196 } /* psa_read */
197
198 /*------------------------------------------------------------------*/
199 /*
200 * Write the Paramter Storage Area to the WaveLAN card's memory
201 */
202 static void
psa_write(device * dev,int o,u_char * b,int n)203 psa_write(device * dev,
204 int o, /* Offset in psa */
205 u_char * b, /* Buffer in memory */
206 int n) /* Length of buffer */
207 {
208 u_char * ptr = ((u_char *) dev->mem_start) + PSA_ADDR + (o << 1);
209 int count = 0;
210 ioaddr_t base = dev->base_addr;
211 /* As there seem to have no flag PSA_BUSY as in the ISA model, we are
212 * oblige to verify this address to know when the PSA is ready... */
213 volatile u_char * verify = ((u_char *) dev->mem_start) + PSA_ADDR +
214 (psaoff(0, psa_comp_number) << 1);
215
216 /* Authorize writting to PSA */
217 hacr_write(base, HACR_PWR_STAT | HACR_ROM_WEN);
218
219 while(n-- > 0)
220 {
221 /* write to PSA */
222 writeb(*b++, ptr);
223 ptr += 2;
224
225 /* I don't have the spec, so I don't know what the correct
226 * sequence to write is. This hack seem to work for me... */
227 count = 0;
228 while((readb(verify) != PSA_COMP_PCMCIA_915) && (count++ < 100))
229 mdelay(1);
230 }
231
232 /* Put the host interface back in standard state */
233 hacr_write(base, HACR_DEFAULT);
234 } /* psa_write */
235
236 #ifdef SET_PSA_CRC
237 /*------------------------------------------------------------------*/
238 /*
239 * Calculate the PSA CRC
240 * Thanks to Valster, Nico <NVALSTER@wcnd.nl.lucent.com> for the code
241 * NOTE: By specifying a length including the CRC position the
242 * returned value should be zero. (i.e. a correct checksum in the PSA)
243 *
244 * The Windows drivers don't use the CRC, but the AP and the PtP tool
245 * depend on it.
246 */
247 static u_short
psa_crc(unsigned char * psa,int size)248 psa_crc(unsigned char * psa, /* The PSA */
249 int size) /* Number of short for CRC */
250 {
251 int byte_cnt; /* Loop on the PSA */
252 u_short crc_bytes = 0; /* Data in the PSA */
253 int bit_cnt; /* Loop on the bits of the short */
254
255 for(byte_cnt = 0; byte_cnt < size; byte_cnt++ )
256 {
257 crc_bytes ^= psa[byte_cnt]; /* Its an xor */
258
259 for(bit_cnt = 1; bit_cnt < 9; bit_cnt++ )
260 {
261 if(crc_bytes & 0x0001)
262 crc_bytes = (crc_bytes >> 1) ^ 0xA001;
263 else
264 crc_bytes >>= 1 ;
265 }
266 }
267
268 return crc_bytes;
269 } /* psa_crc */
270 #endif /* SET_PSA_CRC */
271
272 /*------------------------------------------------------------------*/
273 /*
274 * update the checksum field in the Wavelan's PSA
275 */
276 static void
update_psa_checksum(device * dev)277 update_psa_checksum(device * dev)
278 {
279 #ifdef SET_PSA_CRC
280 psa_t psa;
281 u_short crc;
282
283 /* read the parameter storage area */
284 psa_read(dev, 0, (unsigned char *) &psa, sizeof(psa));
285
286 /* update the checksum */
287 crc = psa_crc((unsigned char *) &psa,
288 sizeof(psa) - sizeof(psa.psa_crc[0]) - sizeof(psa.psa_crc[1])
289 - sizeof(psa.psa_crc_status));
290
291 psa.psa_crc[0] = crc & 0xFF;
292 psa.psa_crc[1] = (crc & 0xFF00) >> 8;
293
294 /* Write it ! */
295 psa_write(dev, (char *)&psa.psa_crc - (char *)&psa,
296 (unsigned char *)&psa.psa_crc, 2);
297
298 #ifdef DEBUG_IOCTL_INFO
299 printk (KERN_DEBUG "%s: update_psa_checksum(): crc = 0x%02x%02x\n",
300 dev->name, psa.psa_crc[0], psa.psa_crc[1]);
301
302 /* Check again (luxury !) */
303 crc = psa_crc((unsigned char *) &psa,
304 sizeof(psa) - sizeof(psa.psa_crc_status));
305
306 if(crc != 0)
307 printk(KERN_WARNING "%s: update_psa_checksum(): CRC does not agree with PSA data (even after recalculating)\n", dev->name);
308 #endif /* DEBUG_IOCTL_INFO */
309 #endif /* SET_PSA_CRC */
310 } /* update_psa_checksum */
311
312 /*------------------------------------------------------------------*/
313 /*
314 * Write 1 byte to the MMC.
315 */
316 static inline void
mmc_out(u_long base,u_short o,u_char d)317 mmc_out(u_long base,
318 u_short o,
319 u_char d)
320 {
321 /* Wait for MMC to go idle */
322 while(inb(HASR(base)) & HASR_MMI_BUSY)
323 ;
324
325 outb((u_char)((o << 1) | MMR_MMI_WR), MMR(base));
326 outb(d, MMD(base));
327 }
328
329 /*------------------------------------------------------------------*/
330 /*
331 * Routine to write bytes to the Modem Management Controller.
332 * We start by the end because it is the way it should be !
333 */
334 static inline void
mmc_write(u_long base,u_char o,u_char * b,int n)335 mmc_write(u_long base,
336 u_char o,
337 u_char * b,
338 int n)
339 {
340 o += n;
341 b += n;
342
343 while(n-- > 0 )
344 mmc_out(base, --o, *(--b));
345 } /* mmc_write */
346
347 /*------------------------------------------------------------------*/
348 /*
349 * Read 1 byte from the MMC.
350 * Optimised version for 1 byte, avoid using memory...
351 */
352 static inline u_char
mmc_in(u_long base,u_short o)353 mmc_in(u_long base,
354 u_short o)
355 {
356 while(inb(HASR(base)) & HASR_MMI_BUSY)
357 ;
358 outb(o << 1, MMR(base)); /* Set the read address */
359
360 outb(0, MMD(base)); /* Required dummy write */
361
362 while(inb(HASR(base)) & HASR_MMI_BUSY)
363 ;
364 return (u_char) (inb(MMD(base))); /* Now do the actual read */
365 }
366
367 /*------------------------------------------------------------------*/
368 /*
369 * Routine to read bytes from the Modem Management Controller.
370 * The implementation is complicated by a lack of address lines,
371 * which prevents decoding of the low-order bit.
372 * (code has just been moved in the above function)
373 * We start by the end because it is the way it should be !
374 */
375 static inline void
mmc_read(u_long base,u_char o,u_char * b,int n)376 mmc_read(u_long base,
377 u_char o,
378 u_char * b,
379 int n)
380 {
381 o += n;
382 b += n;
383
384 while(n-- > 0)
385 *(--b) = mmc_in(base, --o);
386 } /* mmc_read */
387
388 /*------------------------------------------------------------------*/
389 /*
390 * Get the type of encryption available...
391 */
392 static inline int
mmc_encr(u_long base)393 mmc_encr(u_long base) /* i/o port of the card */
394 {
395 int temp;
396
397 temp = mmc_in(base, mmroff(0, mmr_des_avail));
398 if((temp != MMR_DES_AVAIL_DES) && (temp != MMR_DES_AVAIL_AES))
399 return 0;
400 else
401 return temp;
402 }
403
404 /*------------------------------------------------------------------*/
405 /*
406 * Wait for the frequency EEprom to complete a command...
407 * I hope this one will be optimally inlined...
408 */
409 static inline void
fee_wait(u_long base,int delay,int number)410 fee_wait(u_long base, /* i/o port of the card */
411 int delay, /* Base delay to wait for */
412 int number) /* Number of time to wait */
413 {
414 int count = 0; /* Wait only a limited time */
415
416 while((count++ < number) &&
417 (mmc_in(base, mmroff(0, mmr_fee_status)) & MMR_FEE_STATUS_BUSY))
418 udelay(delay);
419 }
420
421 /*------------------------------------------------------------------*/
422 /*
423 * Read bytes from the Frequency EEprom (frequency select cards).
424 */
425 static void
fee_read(u_long base,u_short o,u_short * b,int n)426 fee_read(u_long base, /* i/o port of the card */
427 u_short o, /* destination offset */
428 u_short * b, /* data buffer */
429 int n) /* number of registers */
430 {
431 b += n; /* Position at the end of the area */
432
433 /* Write the address */
434 mmc_out(base, mmwoff(0, mmw_fee_addr), o + n - 1);
435
436 /* Loop on all buffer */
437 while(n-- > 0)
438 {
439 /* Write the read command */
440 mmc_out(base, mmwoff(0, mmw_fee_ctrl), MMW_FEE_CTRL_READ);
441
442 /* Wait until EEprom is ready (should be quick !) */
443 fee_wait(base, 10, 100);
444
445 /* Read the value */
446 *--b = ((mmc_in(base, mmroff(0, mmr_fee_data_h)) << 8) |
447 mmc_in(base, mmroff(0, mmr_fee_data_l)));
448 }
449 }
450
451 #ifdef WIRELESS_EXT /* If wireless extension exist in the kernel */
452
453 /*------------------------------------------------------------------*/
454 /*
455 * Write bytes from the Frequency EEprom (frequency select cards).
456 * This is a bit complicated, because the frequency eeprom has to
457 * be unprotected and the write enabled.
458 * Jean II
459 */
460 static void
fee_write(u_long base,u_short o,u_short * b,int n)461 fee_write(u_long base, /* i/o port of the card */
462 u_short o, /* destination offset */
463 u_short * b, /* data buffer */
464 int n) /* number of registers */
465 {
466 b += n; /* Position at the end of the area */
467
468 #ifdef EEPROM_IS_PROTECTED /* disabled */
469 #ifdef DOESNT_SEEM_TO_WORK /* disabled */
470 /* Ask to read the protected register */
471 mmc_out(base, mmwoff(0, mmw_fee_ctrl), MMW_FEE_CTRL_PRREAD);
472
473 fee_wait(base, 10, 100);
474
475 /* Read the protected register */
476 printk("Protected 2 : %02X-%02X\n",
477 mmc_in(base, mmroff(0, mmr_fee_data_h)),
478 mmc_in(base, mmroff(0, mmr_fee_data_l)));
479 #endif /* DOESNT_SEEM_TO_WORK */
480
481 /* Enable protected register */
482 mmc_out(base, mmwoff(0, mmw_fee_addr), MMW_FEE_ADDR_EN);
483 mmc_out(base, mmwoff(0, mmw_fee_ctrl), MMW_FEE_CTRL_PREN);
484
485 fee_wait(base, 10, 100);
486
487 /* Unprotect area */
488 mmc_out(base, mmwoff(0, mmw_fee_addr), o + n);
489 mmc_out(base, mmwoff(0, mmw_fee_ctrl), MMW_FEE_CTRL_PRWRITE);
490 #ifdef DOESNT_SEEM_TO_WORK /* disabled */
491 /* Or use : */
492 mmc_out(base, mmwoff(0, mmw_fee_ctrl), MMW_FEE_CTRL_PRCLEAR);
493 #endif /* DOESNT_SEEM_TO_WORK */
494
495 fee_wait(base, 10, 100);
496 #endif /* EEPROM_IS_PROTECTED */
497
498 /* Write enable */
499 mmc_out(base, mmwoff(0, mmw_fee_addr), MMW_FEE_ADDR_EN);
500 mmc_out(base, mmwoff(0, mmw_fee_ctrl), MMW_FEE_CTRL_WREN);
501
502 fee_wait(base, 10, 100);
503
504 /* Write the EEprom address */
505 mmc_out(base, mmwoff(0, mmw_fee_addr), o + n - 1);
506
507 /* Loop on all buffer */
508 while(n-- > 0)
509 {
510 /* Write the value */
511 mmc_out(base, mmwoff(0, mmw_fee_data_h), (*--b) >> 8);
512 mmc_out(base, mmwoff(0, mmw_fee_data_l), *b & 0xFF);
513
514 /* Write the write command */
515 mmc_out(base, mmwoff(0, mmw_fee_ctrl), MMW_FEE_CTRL_WRITE);
516
517 /* Wavelan doc says : wait at least 10 ms for EEBUSY = 0 */
518 mdelay(10);
519 fee_wait(base, 10, 100);
520 }
521
522 /* Write disable */
523 mmc_out(base, mmwoff(0, mmw_fee_addr), MMW_FEE_ADDR_DS);
524 mmc_out(base, mmwoff(0, mmw_fee_ctrl), MMW_FEE_CTRL_WDS);
525
526 fee_wait(base, 10, 100);
527
528 #ifdef EEPROM_IS_PROTECTED /* disabled */
529 /* Reprotect EEprom */
530 mmc_out(base, mmwoff(0, mmw_fee_addr), 0x00);
531 mmc_out(base, mmwoff(0, mmw_fee_ctrl), MMW_FEE_CTRL_PRWRITE);
532
533 fee_wait(base, 10, 100);
534 #endif /* EEPROM_IS_PROTECTED */
535 }
536 #endif /* WIRELESS_EXT */
537
538 /******************* WaveLAN Roaming routines... ********************/
539
540 #ifdef WAVELAN_ROAMING /* Conditional compile, see wavelan_cs.h */
541
542 unsigned char WAVELAN_BEACON_ADDRESS[]= {0x09,0x00,0x0e,0x20,0x03,0x00};
543
wv_roam_init(struct net_device * dev)544 void wv_roam_init(struct net_device *dev)
545 {
546 net_local *lp= (net_local *)dev->priv;
547
548 /* Do not remove this unless you have a good reason */
549 printk(KERN_NOTICE "%s: Warning, you have enabled roaming on"
550 " device %s !\n", dev->name, dev->name);
551 printk(KERN_NOTICE "Roaming is currently an experimental unsupported feature"
552 " of the Wavelan driver.\n");
553 printk(KERN_NOTICE "It may work, but may also make the driver behave in"
554 " erratic ways or crash.\n");
555
556 lp->wavepoint_table.head=NULL; /* Initialise WavePoint table */
557 lp->wavepoint_table.num_wavepoints=0;
558 lp->wavepoint_table.locked=0;
559 lp->curr_point=NULL; /* No default WavePoint */
560 lp->cell_search=0;
561
562 lp->cell_timer.data=(unsigned long)lp; /* Start cell expiry timer */
563 lp->cell_timer.function=wl_cell_expiry;
564 lp->cell_timer.expires=jiffies+CELL_TIMEOUT;
565 add_timer(&lp->cell_timer);
566
567 wv_nwid_filter(NWID_PROMISC,lp) ; /* Enter NWID promiscuous mode */
568 /* to build up a good WavePoint */
569 /* table... */
570 printk(KERN_DEBUG "WaveLAN: Roaming enabled on device %s\n",dev->name);
571 }
572
wv_roam_cleanup(struct net_device * dev)573 void wv_roam_cleanup(struct net_device *dev)
574 {
575 wavepoint_history *ptr,*old_ptr;
576 net_local *lp= (net_local *)dev->priv;
577
578 printk(KERN_DEBUG "WaveLAN: Roaming Disabled on device %s\n",dev->name);
579
580 /* Fixme : maybe we should check that the timer exist before deleting it */
581 del_timer(&lp->cell_timer); /* Remove cell expiry timer */
582 ptr=lp->wavepoint_table.head; /* Clear device's WavePoint table */
583 while(ptr!=NULL)
584 {
585 old_ptr=ptr;
586 ptr=ptr->next;
587 wl_del_wavepoint(old_ptr,lp);
588 }
589 }
590
591 /* Enable/Disable NWID promiscuous mode on a given device */
wv_nwid_filter(unsigned char mode,net_local * lp)592 void wv_nwid_filter(unsigned char mode, net_local *lp)
593 {
594 mm_t m;
595 unsigned long flags;
596
597 #ifdef WAVELAN_ROAMING_DEBUG
598 printk(KERN_DEBUG "WaveLAN: NWID promisc %s, device %s\n",(mode==NWID_PROMISC) ? "on" : "off", lp->dev->name);
599 #endif
600
601 /* Disable interrupts & save flags */
602 wv_splhi(lp, &flags);
603
604 m.w.mmw_loopt_sel = (mode==NWID_PROMISC) ? MMW_LOOPT_SEL_DIS_NWID : 0x00;
605 mmc_write(lp->dev->base_addr, (char *)&m.w.mmw_loopt_sel - (char *)&m, (unsigned char *)&m.w.mmw_loopt_sel, 1);
606
607 if(mode==NWID_PROMISC)
608 lp->cell_search=1;
609 else
610 lp->cell_search=0;
611
612 /* ReEnable interrupts & restore flags */
613 wv_splx(lp, &flags);
614 }
615
616 /* Find a record in the WavePoint table matching a given NWID */
wl_roam_check(unsigned short nwid,net_local * lp)617 wavepoint_history *wl_roam_check(unsigned short nwid, net_local *lp)
618 {
619 wavepoint_history *ptr=lp->wavepoint_table.head;
620
621 while(ptr!=NULL){
622 if(ptr->nwid==nwid)
623 return ptr;
624 ptr=ptr->next;
625 }
626 return NULL;
627 }
628
629 /* Create a new wavepoint table entry */
wl_new_wavepoint(unsigned short nwid,unsigned char seq,net_local * lp)630 wavepoint_history *wl_new_wavepoint(unsigned short nwid, unsigned char seq, net_local* lp)
631 {
632 wavepoint_history *new_wavepoint;
633
634 #ifdef WAVELAN_ROAMING_DEBUG
635 printk(KERN_DEBUG "WaveLAN: New Wavepoint, NWID:%.4X\n",nwid);
636 #endif
637
638 if(lp->wavepoint_table.num_wavepoints==MAX_WAVEPOINTS)
639 return NULL;
640
641 new_wavepoint=(wavepoint_history *) kmalloc(sizeof(wavepoint_history),GFP_ATOMIC);
642 if(new_wavepoint==NULL)
643 return NULL;
644
645 new_wavepoint->nwid=nwid; /* New WavePoints NWID */
646 new_wavepoint->average_fast=0; /* Running Averages..*/
647 new_wavepoint->average_slow=0;
648 new_wavepoint->qualptr=0; /* Start of ringbuffer */
649 new_wavepoint->last_seq=seq-1; /* Last sequence no.seen */
650 memset(new_wavepoint->sigqual,0,WAVEPOINT_HISTORY);/* Empty ringbuffer */
651
652 new_wavepoint->next=lp->wavepoint_table.head;/* Add to wavepoint table */
653 new_wavepoint->prev=NULL;
654
655 if(lp->wavepoint_table.head!=NULL)
656 lp->wavepoint_table.head->prev=new_wavepoint;
657
658 lp->wavepoint_table.head=new_wavepoint;
659
660 lp->wavepoint_table.num_wavepoints++; /* no. of visible wavepoints */
661
662 return new_wavepoint;
663 }
664
665 /* Remove a wavepoint entry from WavePoint table */
wl_del_wavepoint(wavepoint_history * wavepoint,struct net_local * lp)666 void wl_del_wavepoint(wavepoint_history *wavepoint, struct net_local *lp)
667 {
668 if(wavepoint==NULL)
669 return;
670
671 if(lp->curr_point==wavepoint)
672 lp->curr_point=NULL;
673
674 if(wavepoint->prev!=NULL)
675 wavepoint->prev->next=wavepoint->next;
676
677 if(wavepoint->next!=NULL)
678 wavepoint->next->prev=wavepoint->prev;
679
680 if(lp->wavepoint_table.head==wavepoint)
681 lp->wavepoint_table.head=wavepoint->next;
682
683 lp->wavepoint_table.num_wavepoints--;
684 kfree(wavepoint);
685 }
686
687 /* Timer callback function - checks WavePoint table for stale entries */
wl_cell_expiry(unsigned long data)688 void wl_cell_expiry(unsigned long data)
689 {
690 net_local *lp=(net_local *)data;
691 wavepoint_history *wavepoint=lp->wavepoint_table.head,*old_point;
692
693 #if WAVELAN_ROAMING_DEBUG > 1
694 printk(KERN_DEBUG "WaveLAN: Wavepoint timeout, dev %s\n",lp->dev->name);
695 #endif
696
697 if(lp->wavepoint_table.locked)
698 {
699 #if WAVELAN_ROAMING_DEBUG > 1
700 printk(KERN_DEBUG "WaveLAN: Wavepoint table locked...\n");
701 #endif
702
703 lp->cell_timer.expires=jiffies+1; /* If table in use, come back later */
704 add_timer(&lp->cell_timer);
705 return;
706 }
707
708 while(wavepoint!=NULL)
709 {
710 if(time_after(jiffies, wavepoint->last_seen + CELL_TIMEOUT))
711 {
712 #ifdef WAVELAN_ROAMING_DEBUG
713 printk(KERN_DEBUG "WaveLAN: Bye bye %.4X\n",wavepoint->nwid);
714 #endif
715
716 old_point=wavepoint;
717 wavepoint=wavepoint->next;
718 wl_del_wavepoint(old_point,lp);
719 }
720 else
721 wavepoint=wavepoint->next;
722 }
723 lp->cell_timer.expires=jiffies+CELL_TIMEOUT;
724 add_timer(&lp->cell_timer);
725 }
726
727 /* Update SNR history of a wavepoint */
wl_update_history(wavepoint_history * wavepoint,unsigned char sigqual,unsigned char seq)728 void wl_update_history(wavepoint_history *wavepoint, unsigned char sigqual, unsigned char seq)
729 {
730 int i=0,num_missed=0,ptr=0;
731 int average_fast=0,average_slow=0;
732
733 num_missed=(seq-wavepoint->last_seq)%WAVEPOINT_HISTORY;/* Have we missed
734 any beacons? */
735 if(num_missed)
736 for(i=0;i<num_missed;i++)
737 {
738 wavepoint->sigqual[wavepoint->qualptr++]=0; /* If so, enter them as 0's */
739 wavepoint->qualptr %=WAVEPOINT_HISTORY; /* in the ringbuffer. */
740 }
741 wavepoint->last_seen=jiffies; /* Add beacon to history */
742 wavepoint->last_seq=seq;
743 wavepoint->sigqual[wavepoint->qualptr++]=sigqual;
744 wavepoint->qualptr %=WAVEPOINT_HISTORY;
745 ptr=(wavepoint->qualptr-WAVEPOINT_FAST_HISTORY+WAVEPOINT_HISTORY)%WAVEPOINT_HISTORY;
746
747 for(i=0;i<WAVEPOINT_FAST_HISTORY;i++) /* Update running averages */
748 {
749 average_fast+=wavepoint->sigqual[ptr++];
750 ptr %=WAVEPOINT_HISTORY;
751 }
752
753 average_slow=average_fast;
754 for(i=WAVEPOINT_FAST_HISTORY;i<WAVEPOINT_HISTORY;i++)
755 {
756 average_slow+=wavepoint->sigqual[ptr++];
757 ptr %=WAVEPOINT_HISTORY;
758 }
759
760 wavepoint->average_fast=average_fast/WAVEPOINT_FAST_HISTORY;
761 wavepoint->average_slow=average_slow/WAVEPOINT_HISTORY;
762 }
763
764 /* Perform a handover to a new WavePoint */
wv_roam_handover(wavepoint_history * wavepoint,net_local * lp)765 void wv_roam_handover(wavepoint_history *wavepoint, net_local *lp)
766 {
767 ioaddr_t base = lp->dev->base_addr;
768 mm_t m;
769 unsigned long flags;
770
771 if(wavepoint==lp->curr_point) /* Sanity check... */
772 {
773 wv_nwid_filter(!NWID_PROMISC,lp);
774 return;
775 }
776
777 #ifdef WAVELAN_ROAMING_DEBUG
778 printk(KERN_DEBUG "WaveLAN: Doing handover to %.4X, dev %s\n",wavepoint->nwid,lp->dev->name);
779 #endif
780
781 /* Disable interrupts & save flags */
782 wv_splhi(lp, &flags);
783
784 m.w.mmw_netw_id_l = wavepoint->nwid & 0xFF;
785 m.w.mmw_netw_id_h = (wavepoint->nwid & 0xFF00) >> 8;
786
787 mmc_write(base, (char *)&m.w.mmw_netw_id_l - (char *)&m, (unsigned char *)&m.w.mmw_netw_id_l, 2);
788
789 /* ReEnable interrupts & restore flags */
790 wv_splx(lp, &flags);
791
792 wv_nwid_filter(!NWID_PROMISC,lp);
793 lp->curr_point=wavepoint;
794 }
795
796 /* Called when a WavePoint beacon is received */
wl_roam_gather(device * dev,u_char * hdr,u_char * stats)797 static inline void wl_roam_gather(device * dev,
798 u_char * hdr, /* Beacon header */
799 u_char * stats) /* SNR, Signal quality
800 of packet */
801 {
802 wavepoint_beacon *beacon= (wavepoint_beacon *)hdr; /* Rcvd. Beacon */
803 unsigned short nwid=ntohs(beacon->nwid);
804 unsigned short sigqual=stats[2] & MMR_SGNL_QUAL; /* SNR of beacon */
805 wavepoint_history *wavepoint=NULL; /* WavePoint table entry */
806 net_local *lp=(net_local *)dev->priv; /* Device info */
807
808 #ifdef I_NEED_THIS_FEATURE
809 /* Some people don't need this, some other may need it */
810 nwid=nwid^ntohs(beacon->domain_id);
811 #endif
812
813 #if WAVELAN_ROAMING_DEBUG > 1
814 printk(KERN_DEBUG "WaveLAN: beacon, dev %s:\n",dev->name);
815 printk(KERN_DEBUG "Domain: %.4X NWID: %.4X SigQual=%d\n",ntohs(beacon->domain_id),nwid,sigqual);
816 #endif
817
818 lp->wavepoint_table.locked=1; /* <Mutex> */
819
820 wavepoint=wl_roam_check(nwid,lp); /* Find WavePoint table entry */
821 if(wavepoint==NULL) /* If no entry, Create a new one... */
822 {
823 wavepoint=wl_new_wavepoint(nwid,beacon->seq,lp);
824 if(wavepoint==NULL)
825 goto out;
826 }
827 if(lp->curr_point==NULL) /* If this is the only WavePoint, */
828 wv_roam_handover(wavepoint, lp); /* Jump on it! */
829
830 wl_update_history(wavepoint, sigqual, beacon->seq); /* Update SNR history
831 stats. */
832
833 if(lp->curr_point->average_slow < SEARCH_THRESH_LOW) /* If our current */
834 if(!lp->cell_search) /* WavePoint is getting faint, */
835 wv_nwid_filter(NWID_PROMISC,lp); /* start looking for a new one */
836
837 if(wavepoint->average_slow >
838 lp->curr_point->average_slow + WAVELAN_ROAMING_DELTA)
839 wv_roam_handover(wavepoint, lp); /* Handover to a better WavePoint */
840
841 if(lp->curr_point->average_slow > SEARCH_THRESH_HIGH) /* If our SNR is */
842 if(lp->cell_search) /* getting better, drop out of cell search mode */
843 wv_nwid_filter(!NWID_PROMISC,lp);
844
845 out:
846 lp->wavepoint_table.locked=0; /* </MUTEX> :-) */
847 }
848
849 /* Test this MAC frame a WavePoint beacon */
WAVELAN_BEACON(unsigned char * data)850 static inline int WAVELAN_BEACON(unsigned char *data)
851 {
852 wavepoint_beacon *beacon= (wavepoint_beacon *)data;
853 static wavepoint_beacon beacon_template={0xaa,0xaa,0x03,0x08,0x00,0x0e,0x20,0x03,0x00};
854
855 if(memcmp(beacon,&beacon_template,9)==0)
856 return 1;
857 else
858 return 0;
859 }
860 #endif /* WAVELAN_ROAMING */
861
862 /************************ I82593 SUBROUTINES *************************/
863 /*
864 * Useful subroutines to manage the Ethernet controller
865 */
866
867 /*------------------------------------------------------------------*/
868 /*
869 * Routine to synchronously send a command to the i82593 chip.
870 * Should be called with interrupts disabled.
871 * (called by wv_packet_write(), wv_ru_stop(), wv_ru_start(),
872 * wv_82593_config() & wv_diag())
873 */
874 static int
wv_82593_cmd(device * dev,char * str,int cmd,int result)875 wv_82593_cmd(device * dev,
876 char * str,
877 int cmd,
878 int result)
879 {
880 ioaddr_t base = dev->base_addr;
881 int status;
882 int wait_completed;
883 long spin;
884
885 /* Spin until the chip finishes executing its current command (if any) */
886 spin = 1000;
887 do
888 {
889 /* Time calibration of the loop */
890 udelay(10);
891
892 /* Read the interrupt register */
893 outb(OP0_NOP | CR0_STATUS_3, LCCR(base));
894 status = inb(LCSR(base));
895 }
896 while(((status & SR3_EXEC_STATE_MASK) != SR3_EXEC_IDLE) && (spin-- > 0));
897
898 /* If the interrupt hasn't be posted */
899 if(spin <= 0)
900 {
901 #ifdef DEBUG_INTERRUPT_ERROR
902 printk(KERN_INFO "wv_82593_cmd: %s timeout (previous command), status 0x%02x\n",
903 str, status);
904 #endif
905 return(FALSE);
906 }
907
908 /* Issue the command to the controller */
909 outb(cmd, LCCR(base));
910
911 /* If we don't have to check the result of the command
912 * Note : this mean that the irq handler will deal with that */
913 if(result == SR0_NO_RESULT)
914 return(TRUE);
915
916 /* We are waiting for command completion */
917 wait_completed = TRUE;
918
919 /* Busy wait while the LAN controller executes the command. */
920 spin = 1000;
921 do
922 {
923 /* Time calibration of the loop */
924 udelay(10);
925
926 /* Read the interrupt register */
927 outb(CR0_STATUS_0 | OP0_NOP, LCCR(base));
928 status = inb(LCSR(base));
929
930 /* Check if there was an interrupt posted */
931 if((status & SR0_INTERRUPT))
932 {
933 /* Acknowledge the interrupt */
934 outb(CR0_INT_ACK | OP0_NOP, LCCR(base));
935
936 /* Check if interrupt is a command completion */
937 if(((status & SR0_BOTH_RX_TX) != SR0_BOTH_RX_TX) &&
938 ((status & SR0_BOTH_RX_TX) != 0x0) &&
939 !(status & SR0_RECEPTION))
940 {
941 /* Signal command completion */
942 wait_completed = FALSE;
943 }
944 else
945 {
946 /* Note : Rx interrupts will be handled later, because we can
947 * handle multiple Rx packets at once */
948 #ifdef DEBUG_INTERRUPT_INFO
949 printk(KERN_INFO "wv_82593_cmd: not our interrupt\n");
950 #endif
951 }
952 }
953 }
954 while(wait_completed && (spin-- > 0));
955
956 /* If the interrupt hasn't be posted */
957 if(wait_completed)
958 {
959 #ifdef DEBUG_INTERRUPT_ERROR
960 printk(KERN_INFO "wv_82593_cmd: %s timeout, status 0x%02x\n",
961 str, status);
962 #endif
963 return(FALSE);
964 }
965
966 /* Check the return code returned by the card (see above) against
967 * the expected return code provided by the caller */
968 if((status & SR0_EVENT_MASK) != result)
969 {
970 #ifdef DEBUG_INTERRUPT_ERROR
971 printk(KERN_INFO "wv_82593_cmd: %s failed, status = 0x%x\n",
972 str, status);
973 #endif
974 return(FALSE);
975 }
976
977 return(TRUE);
978 } /* wv_82593_cmd */
979
980 /*------------------------------------------------------------------*/
981 /*
982 * This routine does a 593 op-code number 7, and obtains the diagnose
983 * status for the WaveLAN.
984 */
985 static inline int
wv_diag(device * dev)986 wv_diag(device * dev)
987 {
988 int ret = FALSE;
989
990 if(wv_82593_cmd(dev, "wv_diag(): diagnose",
991 OP0_DIAGNOSE, SR0_DIAGNOSE_PASSED))
992 ret = TRUE;
993
994 #ifdef DEBUG_CONFIG_ERROR
995 printk(KERN_INFO "wavelan_cs: i82593 Self Test failed!\n");
996 #endif
997 return(ret);
998 } /* wv_diag */
999
1000 /*------------------------------------------------------------------*/
1001 /*
1002 * Routine to read len bytes from the i82593's ring buffer, starting at
1003 * chip address addr. The results read from the chip are stored in buf.
1004 * The return value is the address to use for next the call.
1005 */
1006 static int
read_ringbuf(device * dev,int addr,char * buf,int len)1007 read_ringbuf(device * dev,
1008 int addr,
1009 char * buf,
1010 int len)
1011 {
1012 ioaddr_t base = dev->base_addr;
1013 int ring_ptr = addr;
1014 int chunk_len;
1015 char * buf_ptr = buf;
1016
1017 /* Get all the buffer */
1018 while(len > 0)
1019 {
1020 /* Position the Program I/O Register at the ring buffer pointer */
1021 outb(ring_ptr & 0xff, PIORL(base));
1022 outb(((ring_ptr >> 8) & PIORH_MASK), PIORH(base));
1023
1024 /* First, determine how much we can read without wrapping around the
1025 ring buffer */
1026 if((addr + len) < (RX_BASE + RX_SIZE))
1027 chunk_len = len;
1028 else
1029 chunk_len = RX_BASE + RX_SIZE - addr;
1030 insb(PIOP(base), buf_ptr, chunk_len);
1031 buf_ptr += chunk_len;
1032 len -= chunk_len;
1033 ring_ptr = (ring_ptr - RX_BASE + chunk_len) % RX_SIZE + RX_BASE;
1034 }
1035 return(ring_ptr);
1036 } /* read_ringbuf */
1037
1038 /*------------------------------------------------------------------*/
1039 /*
1040 * Reconfigure the i82593, or at least ask for it...
1041 * Because wv_82593_config use the transmission buffer, we must do it
1042 * when we are sure that there is no transmission, so we do it now
1043 * or in wavelan_packet_xmit() (I can't find any better place,
1044 * wavelan_interrupt is not an option...), so you may experience
1045 * some delay sometime...
1046 */
1047 static inline void
wv_82593_reconfig(device * dev)1048 wv_82593_reconfig(device * dev)
1049 {
1050 net_local * lp = (net_local *)dev->priv;
1051 dev_link_t * link = ((net_local *) dev->priv)->link;
1052 unsigned long flags;
1053
1054 /* Arm the flag, will be cleard in wv_82593_config() */
1055 lp->reconfig_82593 = TRUE;
1056
1057 /* Check if we can do it now ! */
1058 if((link->open) && (netif_running(dev)) && !(netif_queue_stopped(dev)))
1059 {
1060 wv_splhi(lp, &flags); /* Disable interrupts */
1061 wv_82593_config(dev);
1062 wv_splx(lp, &flags); /* Re-enable interrupts */
1063 }
1064 else
1065 {
1066 #ifdef DEBUG_IOCTL_INFO
1067 printk(KERN_DEBUG
1068 "%s: wv_82593_reconfig(): delayed (state = %lX, link = %d)\n",
1069 dev->name, dev->state, link->open);
1070 #endif
1071 }
1072 }
1073
1074 /********************* DEBUG & INFO SUBROUTINES *********************/
1075 /*
1076 * This routines are used in the code to show debug informations.
1077 * Most of the time, it dump the content of hardware structures...
1078 */
1079
1080 #ifdef DEBUG_PSA_SHOW
1081 /*------------------------------------------------------------------*/
1082 /*
1083 * Print the formatted contents of the Parameter Storage Area.
1084 */
1085 static void
wv_psa_show(psa_t * p)1086 wv_psa_show(psa_t * p)
1087 {
1088 printk(KERN_DEBUG "##### wavelan psa contents: #####\n");
1089 printk(KERN_DEBUG "psa_io_base_addr_1: 0x%02X %02X %02X %02X\n",
1090 p->psa_io_base_addr_1,
1091 p->psa_io_base_addr_2,
1092 p->psa_io_base_addr_3,
1093 p->psa_io_base_addr_4);
1094 printk(KERN_DEBUG "psa_rem_boot_addr_1: 0x%02X %02X %02X\n",
1095 p->psa_rem_boot_addr_1,
1096 p->psa_rem_boot_addr_2,
1097 p->psa_rem_boot_addr_3);
1098 printk(KERN_DEBUG "psa_holi_params: 0x%02x, ", p->psa_holi_params);
1099 printk("psa_int_req_no: %d\n", p->psa_int_req_no);
1100 #ifdef DEBUG_SHOW_UNUSED
1101 printk(KERN_DEBUG "psa_unused0[]: %02X:%02X:%02X:%02X:%02X:%02X:%02X\n",
1102 p->psa_unused0[0],
1103 p->psa_unused0[1],
1104 p->psa_unused0[2],
1105 p->psa_unused0[3],
1106 p->psa_unused0[4],
1107 p->psa_unused0[5],
1108 p->psa_unused0[6]);
1109 #endif /* DEBUG_SHOW_UNUSED */
1110 printk(KERN_DEBUG "psa_univ_mac_addr[]: %02x:%02x:%02x:%02x:%02x:%02x\n",
1111 p->psa_univ_mac_addr[0],
1112 p->psa_univ_mac_addr[1],
1113 p->psa_univ_mac_addr[2],
1114 p->psa_univ_mac_addr[3],
1115 p->psa_univ_mac_addr[4],
1116 p->psa_univ_mac_addr[5]);
1117 printk(KERN_DEBUG "psa_local_mac_addr[]: %02x:%02x:%02x:%02x:%02x:%02x\n",
1118 p->psa_local_mac_addr[0],
1119 p->psa_local_mac_addr[1],
1120 p->psa_local_mac_addr[2],
1121 p->psa_local_mac_addr[3],
1122 p->psa_local_mac_addr[4],
1123 p->psa_local_mac_addr[5]);
1124 printk(KERN_DEBUG "psa_univ_local_sel: %d, ", p->psa_univ_local_sel);
1125 printk("psa_comp_number: %d, ", p->psa_comp_number);
1126 printk("psa_thr_pre_set: 0x%02x\n", p->psa_thr_pre_set);
1127 printk(KERN_DEBUG "psa_feature_select/decay_prm: 0x%02x, ",
1128 p->psa_feature_select);
1129 printk("psa_subband/decay_update_prm: %d\n", p->psa_subband);
1130 printk(KERN_DEBUG "psa_quality_thr: 0x%02x, ", p->psa_quality_thr);
1131 printk("psa_mod_delay: 0x%02x\n", p->psa_mod_delay);
1132 printk(KERN_DEBUG "psa_nwid: 0x%02x%02x, ", p->psa_nwid[0], p->psa_nwid[1]);
1133 printk("psa_nwid_select: %d\n", p->psa_nwid_select);
1134 printk(KERN_DEBUG "psa_encryption_select: %d, ", p->psa_encryption_select);
1135 printk("psa_encryption_key[]: %02x:%02x:%02x:%02x:%02x:%02x:%02x:%02x\n",
1136 p->psa_encryption_key[0],
1137 p->psa_encryption_key[1],
1138 p->psa_encryption_key[2],
1139 p->psa_encryption_key[3],
1140 p->psa_encryption_key[4],
1141 p->psa_encryption_key[5],
1142 p->psa_encryption_key[6],
1143 p->psa_encryption_key[7]);
1144 printk(KERN_DEBUG "psa_databus_width: %d\n", p->psa_databus_width);
1145 printk(KERN_DEBUG "psa_call_code/auto_squelch: 0x%02x, ",
1146 p->psa_call_code[0]);
1147 printk("psa_call_code[]: %02X:%02X:%02X:%02X:%02X:%02X:%02X:%02X\n",
1148 p->psa_call_code[0],
1149 p->psa_call_code[1],
1150 p->psa_call_code[2],
1151 p->psa_call_code[3],
1152 p->psa_call_code[4],
1153 p->psa_call_code[5],
1154 p->psa_call_code[6],
1155 p->psa_call_code[7]);
1156 #ifdef DEBUG_SHOW_UNUSED
1157 printk(KERN_DEBUG "psa_reserved[]: %02X:%02X:%02X:%02X\n",
1158 p->psa_reserved[0],
1159 p->psa_reserved[1],
1160 p->psa_reserved[2],
1161 p->psa_reserved[3]);
1162 #endif /* DEBUG_SHOW_UNUSED */
1163 printk(KERN_DEBUG "psa_conf_status: %d, ", p->psa_conf_status);
1164 printk("psa_crc: 0x%02x%02x, ", p->psa_crc[0], p->psa_crc[1]);
1165 printk("psa_crc_status: 0x%02x\n", p->psa_crc_status);
1166 } /* wv_psa_show */
1167 #endif /* DEBUG_PSA_SHOW */
1168
1169 #ifdef DEBUG_MMC_SHOW
1170 /*------------------------------------------------------------------*/
1171 /*
1172 * Print the formatted status of the Modem Management Controller.
1173 * This function need to be completed...
1174 */
1175 static void
wv_mmc_show(device * dev)1176 wv_mmc_show(device * dev)
1177 {
1178 ioaddr_t base = dev->base_addr;
1179 net_local * lp = (net_local *)dev->priv;
1180 mmr_t m;
1181
1182 /* Basic check */
1183 if(hasr_read(base) & HASR_NO_CLK)
1184 {
1185 printk(KERN_WARNING "%s: wv_mmc_show: modem not connected\n",
1186 dev->name);
1187 return;
1188 }
1189
1190 wv_splhi(lp, &flags);
1191
1192 /* Read the mmc */
1193 mmc_out(base, mmwoff(0, mmw_freeze), 1);
1194 mmc_read(base, 0, (u_char *)&m, sizeof(m));
1195 mmc_out(base, mmwoff(0, mmw_freeze), 0);
1196
1197 #ifdef WIRELESS_EXT /* If wireless extension exist in the kernel */
1198 /* Don't forget to update statistics */
1199 lp->wstats.discard.nwid += (m.mmr_wrong_nwid_h << 8) | m.mmr_wrong_nwid_l;
1200 #endif /* WIRELESS_EXT */
1201
1202 wv_splx(lp, &flags);
1203
1204 printk(KERN_DEBUG "##### wavelan modem status registers: #####\n");
1205 #ifdef DEBUG_SHOW_UNUSED
1206 printk(KERN_DEBUG "mmc_unused0[]: %02X:%02X:%02X:%02X:%02X:%02X:%02X:%02X\n",
1207 m.mmr_unused0[0],
1208 m.mmr_unused0[1],
1209 m.mmr_unused0[2],
1210 m.mmr_unused0[3],
1211 m.mmr_unused0[4],
1212 m.mmr_unused0[5],
1213 m.mmr_unused0[6],
1214 m.mmr_unused0[7]);
1215 #endif /* DEBUG_SHOW_UNUSED */
1216 printk(KERN_DEBUG "Encryption algorythm: %02X - Status: %02X\n",
1217 m.mmr_des_avail, m.mmr_des_status);
1218 #ifdef DEBUG_SHOW_UNUSED
1219 printk(KERN_DEBUG "mmc_unused1[]: %02X:%02X:%02X:%02X:%02X\n",
1220 m.mmr_unused1[0],
1221 m.mmr_unused1[1],
1222 m.mmr_unused1[2],
1223 m.mmr_unused1[3],
1224 m.mmr_unused1[4]);
1225 #endif /* DEBUG_SHOW_UNUSED */
1226 printk(KERN_DEBUG "dce_status: 0x%x [%s%s%s%s]\n",
1227 m.mmr_dce_status,
1228 (m.mmr_dce_status & MMR_DCE_STATUS_RX_BUSY) ? "energy detected,":"",
1229 (m.mmr_dce_status & MMR_DCE_STATUS_LOOPT_IND) ?
1230 "loop test indicated," : "",
1231 (m.mmr_dce_status & MMR_DCE_STATUS_TX_BUSY) ? "transmitter on," : "",
1232 (m.mmr_dce_status & MMR_DCE_STATUS_JBR_EXPIRED) ?
1233 "jabber timer expired," : "");
1234 printk(KERN_DEBUG "Dsp ID: %02X\n",
1235 m.mmr_dsp_id);
1236 #ifdef DEBUG_SHOW_UNUSED
1237 printk(KERN_DEBUG "mmc_unused2[]: %02X:%02X\n",
1238 m.mmr_unused2[0],
1239 m.mmr_unused2[1]);
1240 #endif /* DEBUG_SHOW_UNUSED */
1241 printk(KERN_DEBUG "# correct_nwid: %d, # wrong_nwid: %d\n",
1242 (m.mmr_correct_nwid_h << 8) | m.mmr_correct_nwid_l,
1243 (m.mmr_wrong_nwid_h << 8) | m.mmr_wrong_nwid_l);
1244 printk(KERN_DEBUG "thr_pre_set: 0x%x [current signal %s]\n",
1245 m.mmr_thr_pre_set & MMR_THR_PRE_SET,
1246 (m.mmr_thr_pre_set & MMR_THR_PRE_SET_CUR) ? "above" : "below");
1247 printk(KERN_DEBUG "signal_lvl: %d [%s], ",
1248 m.mmr_signal_lvl & MMR_SIGNAL_LVL,
1249 (m.mmr_signal_lvl & MMR_SIGNAL_LVL_VALID) ? "new msg" : "no new msg");
1250 printk("silence_lvl: %d [%s], ", m.mmr_silence_lvl & MMR_SILENCE_LVL,
1251 (m.mmr_silence_lvl & MMR_SILENCE_LVL_VALID) ? "update done" : "no new update");
1252 printk("sgnl_qual: 0x%x [%s]\n", m.mmr_sgnl_qual & MMR_SGNL_QUAL,
1253 (m.mmr_sgnl_qual & MMR_SGNL_QUAL_ANT) ? "Antenna 1" : "Antenna 0");
1254 #ifdef DEBUG_SHOW_UNUSED
1255 printk(KERN_DEBUG "netw_id_l: %x\n", m.mmr_netw_id_l);
1256 #endif /* DEBUG_SHOW_UNUSED */
1257 } /* wv_mmc_show */
1258 #endif /* DEBUG_MMC_SHOW */
1259
1260 #ifdef DEBUG_I82593_SHOW
1261 /*------------------------------------------------------------------*/
1262 /*
1263 * Print the formatted status of the i82593's receive unit.
1264 */
1265 static void
wv_ru_show(device * dev)1266 wv_ru_show(device * dev)
1267 {
1268 net_local *lp = (net_local *) dev->priv;
1269
1270 printk(KERN_DEBUG "##### wavelan i82593 receiver status: #####\n");
1271 printk(KERN_DEBUG "ru: rfp %d stop %d", lp->rfp, lp->stop);
1272 /*
1273 * Not implemented yet...
1274 */
1275 printk("\n");
1276 } /* wv_ru_show */
1277 #endif /* DEBUG_I82593_SHOW */
1278
1279 #ifdef DEBUG_DEVICE_SHOW
1280 /*------------------------------------------------------------------*/
1281 /*
1282 * Print the formatted status of the WaveLAN PCMCIA device driver.
1283 */
1284 static void
wv_dev_show(device * dev)1285 wv_dev_show(device * dev)
1286 {
1287 printk(KERN_DEBUG "dev:");
1288 printk(" state=%lX,", dev->state);
1289 printk(" trans_start=%ld,", dev->trans_start);
1290 printk(" flags=0x%x,", dev->flags);
1291 printk("\n");
1292 } /* wv_dev_show */
1293
1294 /*------------------------------------------------------------------*/
1295 /*
1296 * Print the formatted status of the WaveLAN PCMCIA device driver's
1297 * private information.
1298 */
1299 static void
wv_local_show(device * dev)1300 wv_local_show(device * dev)
1301 {
1302 net_local *lp;
1303
1304 lp = (net_local *)dev->priv;
1305
1306 printk(KERN_DEBUG "local:");
1307 /*
1308 * Not implemented yet...
1309 */
1310 printk("\n");
1311 } /* wv_local_show */
1312 #endif /* DEBUG_DEVICE_SHOW */
1313
1314 #if defined(DEBUG_RX_INFO) || defined(DEBUG_TX_INFO)
1315 /*------------------------------------------------------------------*/
1316 /*
1317 * Dump packet header (and content if necessary) on the screen
1318 */
1319 static inline void
wv_packet_info(u_char * p,int length,char * msg1,char * msg2)1320 wv_packet_info(u_char * p, /* Packet to dump */
1321 int length, /* Length of the packet */
1322 char * msg1, /* Name of the device */
1323 char * msg2) /* Name of the function */
1324 {
1325 int i;
1326 int maxi;
1327
1328 printk(KERN_DEBUG "%s: %s(): dest %02X:%02X:%02X:%02X:%02X:%02X, length %d\n",
1329 msg1, msg2, p[0], p[1], p[2], p[3], p[4], p[5], length);
1330 printk(KERN_DEBUG "%s: %s(): src %02X:%02X:%02X:%02X:%02X:%02X, type 0x%02X%02X\n",
1331 msg1, msg2, p[6], p[7], p[8], p[9], p[10], p[11], p[12], p[13]);
1332
1333 #ifdef DEBUG_PACKET_DUMP
1334
1335 printk(KERN_DEBUG "data=\"");
1336
1337 if((maxi = length) > DEBUG_PACKET_DUMP)
1338 maxi = DEBUG_PACKET_DUMP;
1339 for(i = 14; i < maxi; i++)
1340 if(p[i] >= ' ' && p[i] <= '~')
1341 printk(" %c", p[i]);
1342 else
1343 printk("%02X", p[i]);
1344 if(maxi < length)
1345 printk("..");
1346 printk("\"\n");
1347 printk(KERN_DEBUG "\n");
1348 #endif /* DEBUG_PACKET_DUMP */
1349 }
1350 #endif /* defined(DEBUG_RX_INFO) || defined(DEBUG_TX_INFO) */
1351
1352 /*------------------------------------------------------------------*/
1353 /*
1354 * This is the information which is displayed by the driver at startup
1355 * There is a lot of flag to configure it at your will...
1356 */
1357 static inline void
wv_init_info(device * dev)1358 wv_init_info(device * dev)
1359 {
1360 ioaddr_t base = dev->base_addr;
1361 psa_t psa;
1362 int i;
1363
1364 /* Read the parameter storage area */
1365 psa_read(dev, 0, (unsigned char *) &psa, sizeof(psa));
1366
1367 #ifdef DEBUG_PSA_SHOW
1368 wv_psa_show(&psa);
1369 #endif
1370 #ifdef DEBUG_MMC_SHOW
1371 wv_mmc_show(dev);
1372 #endif
1373 #ifdef DEBUG_I82593_SHOW
1374 wv_ru_show(dev);
1375 #endif
1376
1377 #ifdef DEBUG_BASIC_SHOW
1378 /* Now, let's go for the basic stuff */
1379 printk(KERN_NOTICE "%s: WaveLAN: port %#x, irq %d, hw_addr",
1380 dev->name, base, dev->irq);
1381 for(i = 0; i < WAVELAN_ADDR_SIZE; i++)
1382 printk("%s%02X", (i == 0) ? " " : ":", dev->dev_addr[i]);
1383
1384 /* Print current network id */
1385 if(psa.psa_nwid_select)
1386 printk(", nwid 0x%02X-%02X", psa.psa_nwid[0], psa.psa_nwid[1]);
1387 else
1388 printk(", nwid off");
1389
1390 /* If 2.00 card */
1391 if(!(mmc_in(base, mmroff(0, mmr_fee_status)) &
1392 (MMR_FEE_STATUS_DWLD | MMR_FEE_STATUS_BUSY)))
1393 {
1394 unsigned short freq;
1395
1396 /* Ask the EEprom to read the frequency from the first area */
1397 fee_read(base, 0x00 /* 1st area - frequency... */,
1398 &freq, 1);
1399
1400 /* Print frequency */
1401 printk(", 2.00, %ld", (freq >> 6) + 2400L);
1402
1403 /* Hack !!! */
1404 if(freq & 0x20)
1405 printk(".5");
1406 }
1407 else
1408 {
1409 printk(", PCMCIA, ");
1410 switch (psa.psa_subband)
1411 {
1412 case PSA_SUBBAND_915:
1413 printk("915");
1414 break;
1415 case PSA_SUBBAND_2425:
1416 printk("2425");
1417 break;
1418 case PSA_SUBBAND_2460:
1419 printk("2460");
1420 break;
1421 case PSA_SUBBAND_2484:
1422 printk("2484");
1423 break;
1424 case PSA_SUBBAND_2430_5:
1425 printk("2430.5");
1426 break;
1427 default:
1428 printk("unknown");
1429 }
1430 }
1431
1432 printk(" MHz\n");
1433 #endif /* DEBUG_BASIC_SHOW */
1434
1435 #ifdef DEBUG_VERSION_SHOW
1436 /* Print version information */
1437 printk(KERN_NOTICE "%s", version);
1438 #endif
1439 } /* wv_init_info */
1440
1441 /********************* IOCTL, STATS & RECONFIG *********************/
1442 /*
1443 * We found here routines that are called by Linux on differents
1444 * occasions after the configuration and not for transmitting data
1445 * These may be called when the user use ifconfig, /proc/net/dev
1446 * or wireless extensions
1447 */
1448
1449 /*------------------------------------------------------------------*/
1450 /*
1451 * Get the current ethernet statistics. This may be called with the
1452 * card open or closed.
1453 * Used when the user read /proc/net/dev
1454 */
1455 static en_stats *
wavelan_get_stats(device * dev)1456 wavelan_get_stats(device * dev)
1457 {
1458 #ifdef DEBUG_IOCTL_TRACE
1459 printk(KERN_DEBUG "%s: <>wavelan_get_stats()\n", dev->name);
1460 #endif
1461
1462 return(&((net_local *) dev->priv)->stats);
1463 }
1464
1465 /*------------------------------------------------------------------*/
1466 /*
1467 * Set or clear the multicast filter for this adaptor.
1468 * num_addrs == -1 Promiscuous mode, receive all packets
1469 * num_addrs == 0 Normal mode, clear multicast list
1470 * num_addrs > 0 Multicast mode, receive normal and MC packets,
1471 * and do best-effort filtering.
1472 */
1473
1474 static void
wavelan_set_multicast_list(device * dev)1475 wavelan_set_multicast_list(device * dev)
1476 {
1477 net_local * lp = (net_local *) dev->priv;
1478
1479 #ifdef DEBUG_IOCTL_TRACE
1480 printk(KERN_DEBUG "%s: ->wavelan_set_multicast_list()\n", dev->name);
1481 #endif
1482
1483 #ifdef DEBUG_IOCTL_INFO
1484 printk(KERN_DEBUG "%s: wavelan_set_multicast_list(): setting Rx mode %02X to %d addresses.\n",
1485 dev->name, dev->flags, dev->mc_count);
1486 #endif
1487
1488 if(dev->flags & IFF_PROMISC)
1489 {
1490 /*
1491 * Enable promiscuous mode: receive all packets.
1492 */
1493 if(!lp->promiscuous)
1494 {
1495 lp->promiscuous = 1;
1496 lp->allmulticast = 0;
1497 lp->mc_count = 0;
1498
1499 wv_82593_reconfig(dev);
1500
1501 /* Tell the kernel that we are doing a really bad job... */
1502 dev->flags |= IFF_PROMISC;
1503 }
1504 }
1505 else
1506 /* If all multicast addresses
1507 * or too much multicast addresses for the hardware filter */
1508 if((dev->flags & IFF_ALLMULTI) ||
1509 (dev->mc_count > I82593_MAX_MULTICAST_ADDRESSES))
1510 {
1511 /*
1512 * Disable promiscuous mode, but active the all multicast mode
1513 */
1514 if(!lp->allmulticast)
1515 {
1516 lp->promiscuous = 0;
1517 lp->allmulticast = 1;
1518 lp->mc_count = 0;
1519
1520 wv_82593_reconfig(dev);
1521
1522 /* Tell the kernel that we are doing a really bad job... */
1523 dev->flags |= IFF_ALLMULTI;
1524 }
1525 }
1526 else
1527 /* If there is some multicast addresses to send */
1528 if(dev->mc_list != (struct dev_mc_list *) NULL)
1529 {
1530 /*
1531 * Disable promiscuous mode, but receive all packets
1532 * in multicast list
1533 */
1534 #ifdef MULTICAST_AVOID
1535 if(lp->promiscuous || lp->allmulticast ||
1536 (dev->mc_count != lp->mc_count))
1537 #endif
1538 {
1539 lp->promiscuous = 0;
1540 lp->allmulticast = 0;
1541 lp->mc_count = dev->mc_count;
1542
1543 wv_82593_reconfig(dev);
1544 }
1545 }
1546 else
1547 {
1548 /*
1549 * Switch to normal mode: disable promiscuous mode and
1550 * clear the multicast list.
1551 */
1552 if(lp->promiscuous || lp->mc_count == 0)
1553 {
1554 lp->promiscuous = 0;
1555 lp->allmulticast = 0;
1556 lp->mc_count = 0;
1557
1558 wv_82593_reconfig(dev);
1559 }
1560 }
1561 #ifdef DEBUG_IOCTL_TRACE
1562 printk(KERN_DEBUG "%s: <-wavelan_set_multicast_list()\n", dev->name);
1563 #endif
1564 }
1565
1566 /*------------------------------------------------------------------*/
1567 /*
1568 * This function doesn't exist...
1569 * (Note : it was a nice way to test the reconfigure stuff...)
1570 */
1571 #ifdef SET_MAC_ADDRESS
1572 static int
wavelan_set_mac_address(device * dev,void * addr)1573 wavelan_set_mac_address(device * dev,
1574 void * addr)
1575 {
1576 struct sockaddr * mac = addr;
1577
1578 /* Copy the address */
1579 memcpy(dev->dev_addr, mac->sa_data, WAVELAN_ADDR_SIZE);
1580
1581 /* Reconfig the beast */
1582 wv_82593_reconfig(dev);
1583
1584 return 0;
1585 }
1586 #endif /* SET_MAC_ADDRESS */
1587
1588 #ifdef WIRELESS_EXT /* If wireless extension exist in the kernel */
1589
1590 /*------------------------------------------------------------------*/
1591 /*
1592 * Frequency setting (for hardware able of it)
1593 * It's a bit complicated and you don't really want to look into it...
1594 * (called in wavelan_ioctl)
1595 */
1596 static inline int
wv_set_frequency(u_long base,iw_freq * frequency)1597 wv_set_frequency(u_long base, /* i/o port of the card */
1598 iw_freq * frequency)
1599 {
1600 const int BAND_NUM = 10; /* Number of bands */
1601 long freq = 0L; /* offset to 2.4 GHz in .5 MHz */
1602 #ifdef DEBUG_IOCTL_INFO
1603 int i;
1604 #endif
1605
1606 /* Setting by frequency */
1607 /* Theoritically, you may set any frequency between
1608 * the two limits with a 0.5 MHz precision. In practice,
1609 * I don't want you to have trouble with local
1610 * regulations... */
1611 if((frequency->e == 1) &&
1612 (frequency->m >= (int) 2.412e8) && (frequency->m <= (int) 2.487e8))
1613 {
1614 freq = ((frequency->m / 10000) - 24000L) / 5;
1615 }
1616
1617 /* Setting by channel (same as wfreqsel) */
1618 /* Warning : each channel is 22MHz wide, so some of the channels
1619 * will interfere... */
1620 if((frequency->e == 0) &&
1621 (frequency->m >= 0) && (frequency->m < BAND_NUM))
1622 {
1623 /* Get frequency offset. */
1624 freq = channel_bands[frequency->m] >> 1;
1625 }
1626
1627 /* Verify if the frequency is allowed */
1628 if(freq != 0L)
1629 {
1630 u_short table[10]; /* Authorized frequency table */
1631
1632 /* Read the frequency table */
1633 fee_read(base, 0x71 /* frequency table */,
1634 table, 10);
1635
1636 #ifdef DEBUG_IOCTL_INFO
1637 printk(KERN_DEBUG "Frequency table :");
1638 for(i = 0; i < 10; i++)
1639 {
1640 printk(" %04X",
1641 table[i]);
1642 }
1643 printk("\n");
1644 #endif
1645
1646 /* Look in the table if the frequency is allowed */
1647 if(!(table[9 - ((freq - 24) / 16)] &
1648 (1 << ((freq - 24) % 16))))
1649 return -EINVAL; /* not allowed */
1650 }
1651 else
1652 return -EINVAL;
1653
1654 /* If we get a usable frequency */
1655 if(freq != 0L)
1656 {
1657 unsigned short area[16];
1658 unsigned short dac[2];
1659 unsigned short area_verify[16];
1660 unsigned short dac_verify[2];
1661 /* Corresponding gain (in the power adjust value table)
1662 * see AT&T Wavelan Data Manual, REF 407-024689/E, page 3-8
1663 * & WCIN062D.DOC, page 6.2.9 */
1664 unsigned short power_limit[] = { 40, 80, 120, 160, 0 };
1665 int power_band = 0; /* Selected band */
1666 unsigned short power_adjust; /* Correct value */
1667
1668 /* Search for the gain */
1669 power_band = 0;
1670 while((freq > power_limit[power_band]) &&
1671 (power_limit[++power_band] != 0))
1672 ;
1673
1674 /* Read the first area */
1675 fee_read(base, 0x00,
1676 area, 16);
1677
1678 /* Read the DAC */
1679 fee_read(base, 0x60,
1680 dac, 2);
1681
1682 /* Read the new power adjust value */
1683 fee_read(base, 0x6B - (power_band >> 1),
1684 &power_adjust, 1);
1685 if(power_band & 0x1)
1686 power_adjust >>= 8;
1687 else
1688 power_adjust &= 0xFF;
1689
1690 #ifdef DEBUG_IOCTL_INFO
1691 printk(KERN_DEBUG "Wavelan EEprom Area 1 :");
1692 for(i = 0; i < 16; i++)
1693 {
1694 printk(" %04X",
1695 area[i]);
1696 }
1697 printk("\n");
1698
1699 printk(KERN_DEBUG "Wavelan EEprom DAC : %04X %04X\n",
1700 dac[0], dac[1]);
1701 #endif
1702
1703 /* Frequency offset (for info only...) */
1704 area[0] = ((freq << 5) & 0xFFE0) | (area[0] & 0x1F);
1705
1706 /* Receiver Principle main divider coefficient */
1707 area[3] = (freq >> 1) + 2400L - 352L;
1708 area[2] = ((freq & 0x1) << 4) | (area[2] & 0xFFEF);
1709
1710 /* Transmitter Main divider coefficient */
1711 area[13] = (freq >> 1) + 2400L;
1712 area[12] = ((freq & 0x1) << 4) | (area[2] & 0xFFEF);
1713
1714 /* Others part of the area are flags, bit streams or unused... */
1715
1716 /* Set the value in the DAC */
1717 dac[1] = ((power_adjust >> 1) & 0x7F) | (dac[1] & 0xFF80);
1718 dac[0] = ((power_adjust & 0x1) << 4) | (dac[0] & 0xFFEF);
1719
1720 /* Write the first area */
1721 fee_write(base, 0x00,
1722 area, 16);
1723
1724 /* Write the DAC */
1725 fee_write(base, 0x60,
1726 dac, 2);
1727
1728 /* We now should verify here that the EEprom writting was ok */
1729
1730 /* ReRead the first area */
1731 fee_read(base, 0x00,
1732 area_verify, 16);
1733
1734 /* ReRead the DAC */
1735 fee_read(base, 0x60,
1736 dac_verify, 2);
1737
1738 /* Compare */
1739 if(memcmp(area, area_verify, 16 * 2) ||
1740 memcmp(dac, dac_verify, 2 * 2))
1741 {
1742 #ifdef DEBUG_IOCTL_ERROR
1743 printk(KERN_INFO "Wavelan: wv_set_frequency : unable to write new frequency to EEprom (?)\n");
1744 #endif
1745 return -EOPNOTSUPP;
1746 }
1747
1748 /* We must download the frequency parameters to the
1749 * synthetisers (from the EEprom - area 1)
1750 * Note : as the EEprom is auto decremented, we set the end
1751 * if the area... */
1752 mmc_out(base, mmwoff(0, mmw_fee_addr), 0x0F);
1753 mmc_out(base, mmwoff(0, mmw_fee_ctrl),
1754 MMW_FEE_CTRL_READ | MMW_FEE_CTRL_DWLD);
1755
1756 /* Wait until the download is finished */
1757 fee_wait(base, 100, 100);
1758
1759 /* We must now download the power adjust value (gain) to
1760 * the synthetisers (from the EEprom - area 7 - DAC) */
1761 mmc_out(base, mmwoff(0, mmw_fee_addr), 0x61);
1762 mmc_out(base, mmwoff(0, mmw_fee_ctrl),
1763 MMW_FEE_CTRL_READ | MMW_FEE_CTRL_DWLD);
1764
1765 /* Wait until the download is finished */
1766 fee_wait(base, 100, 100);
1767
1768 #ifdef DEBUG_IOCTL_INFO
1769 /* Verification of what we have done... */
1770
1771 printk(KERN_DEBUG "Wavelan EEprom Area 1 :");
1772 for(i = 0; i < 16; i++)
1773 {
1774 printk(" %04X",
1775 area_verify[i]);
1776 }
1777 printk("\n");
1778
1779 printk(KERN_DEBUG "Wavelan EEprom DAC : %04X %04X\n",
1780 dac_verify[0], dac_verify[1]);
1781 #endif
1782
1783 return 0;
1784 }
1785 else
1786 return -EINVAL; /* Bah, never get there... */
1787 }
1788
1789 /*------------------------------------------------------------------*/
1790 /*
1791 * Give the list of available frequencies
1792 */
1793 static inline int
wv_frequency_list(u_long base,iw_freq * list,int max)1794 wv_frequency_list(u_long base, /* i/o port of the card */
1795 iw_freq * list, /* List of frequency to fill */
1796 int max) /* Maximum number of frequencies */
1797 {
1798 u_short table[10]; /* Authorized frequency table */
1799 long freq = 0L; /* offset to 2.4 GHz in .5 MHz + 12 MHz */
1800 int i; /* index in the table */
1801 #if WIRELESS_EXT > 7
1802 const int BAND_NUM = 10; /* Number of bands */
1803 int c = 0; /* Channel number */
1804 #endif /* WIRELESS_EXT */
1805
1806 /* Read the frequency table */
1807 fee_read(base, 0x71 /* frequency table */,
1808 table, 10);
1809
1810 /* Look all frequencies */
1811 i = 0;
1812 for(freq = 0; freq < 150; freq++)
1813 /* Look in the table if the frequency is allowed */
1814 if(table[9 - (freq / 16)] & (1 << (freq % 16)))
1815 {
1816 #if WIRELESS_EXT > 7
1817 /* Compute approximate channel number */
1818 while((((channel_bands[c] >> 1) - 24) < freq) &&
1819 (c < BAND_NUM))
1820 c++;
1821 list[i].i = c; /* Set the list index */
1822 #endif /* WIRELESS_EXT */
1823
1824 /* put in the list */
1825 list[i].m = (((freq + 24) * 5) + 24000L) * 10000;
1826 list[i++].e = 1;
1827
1828 /* Check number */
1829 if(i >= max)
1830 return(i);
1831 }
1832
1833 return(i);
1834 }
1835
1836 #ifdef WIRELESS_SPY
1837 /*------------------------------------------------------------------*/
1838 /*
1839 * Gather wireless spy statistics : for each packet, compare the source
1840 * address with out list, and if match, get the stats...
1841 * Sorry, but this function really need wireless extensions...
1842 */
1843 static inline void
wl_spy_gather(device * dev,u_char * mac,u_char * stats)1844 wl_spy_gather(device * dev,
1845 u_char * mac, /* MAC address */
1846 u_char * stats) /* Statistics to gather */
1847 {
1848 net_local * lp = (net_local *) dev->priv;
1849 int i;
1850
1851 /* Look all addresses */
1852 for(i = 0; i < lp->spy_number; i++)
1853 /* If match */
1854 if(!memcmp(mac, lp->spy_address[i], WAVELAN_ADDR_SIZE))
1855 {
1856 /* Update statistics */
1857 lp->spy_stat[i].qual = stats[2] & MMR_SGNL_QUAL;
1858 lp->spy_stat[i].level = stats[0] & MMR_SIGNAL_LVL;
1859 lp->spy_stat[i].noise = stats[1] & MMR_SILENCE_LVL;
1860 lp->spy_stat[i].updated = 0x7;
1861 }
1862 }
1863 #endif /* WIRELESS_SPY */
1864
1865 #ifdef HISTOGRAM
1866 /*------------------------------------------------------------------*/
1867 /*
1868 * This function calculate an histogram on the signal level.
1869 * As the noise is quite constant, it's like doing it on the SNR.
1870 * We have defined a set of interval (lp->his_range), and each time
1871 * the level goes in that interval, we increment the count (lp->his_sum).
1872 * With this histogram you may detect if one wavelan is really weak,
1873 * or you may also calculate the mean and standard deviation of the level...
1874 */
1875 static inline void
wl_his_gather(device * dev,u_char * stats)1876 wl_his_gather(device * dev,
1877 u_char * stats) /* Statistics to gather */
1878 {
1879 net_local * lp = (net_local *) dev->priv;
1880 u_char level = stats[0] & MMR_SIGNAL_LVL;
1881 int i;
1882
1883 /* Find the correct interval */
1884 i = 0;
1885 while((i < (lp->his_number - 1)) && (level >= lp->his_range[i++]))
1886 ;
1887
1888 /* Increment interval counter */
1889 (lp->his_sum[i])++;
1890 }
1891 #endif /* HISTOGRAM */
1892
1893
netdev_get_drvinfo(struct net_device * dev,struct ethtool_drvinfo * info)1894 static void netdev_get_drvinfo(struct net_device *dev,
1895 struct ethtool_drvinfo *info)
1896 {
1897 strcpy(info->driver, "wavelan_cs");
1898 }
1899
1900 static struct ethtool_ops netdev_ethtool_ops = {
1901 .get_drvinfo = netdev_get_drvinfo,
1902 };
1903
1904 /*------------------------------------------------------------------*/
1905 /*
1906 * Perform ioctl : config & info stuff
1907 * This is here that are treated the wireless extensions (iwconfig)
1908 */
1909 static int
wavelan_ioctl(struct net_device * dev,struct ifreq * rq,int cmd)1910 wavelan_ioctl(struct net_device * dev, /* Device on wich the ioctl apply */
1911 struct ifreq * rq, /* Data passed */
1912 int cmd) /* Ioctl number */
1913 {
1914 ioaddr_t base = dev->base_addr;
1915 net_local * lp = (net_local *)dev->priv; /* lp is not unused */
1916 struct iwreq * wrq = (struct iwreq *) rq;
1917 psa_t psa;
1918 mm_t m;
1919 unsigned long flags;
1920 int ret = 0;
1921
1922 #ifdef DEBUG_IOCTL_TRACE
1923 printk(KERN_DEBUG "%s: ->wavelan_ioctl(cmd=0x%X)\n", dev->name, cmd);
1924 #endif
1925
1926 /* Disable interrupts & save flags */
1927 wv_splhi(lp, &flags);
1928
1929 /* Look what is the request */
1930 switch(cmd)
1931 {
1932 /* --------------- WIRELESS EXTENSIONS --------------- */
1933
1934 case SIOCGIWNAME:
1935 strcpy(wrq->u.name, "Wavelan");
1936 break;
1937
1938 case SIOCSIWNWID:
1939 /* Set NWID in wavelan */
1940 #if WIRELESS_EXT > 8
1941 if(!wrq->u.nwid.disabled)
1942 {
1943 /* Set NWID in psa */
1944 psa.psa_nwid[0] = (wrq->u.nwid.value & 0xFF00) >> 8;
1945 psa.psa_nwid[1] = wrq->u.nwid.value & 0xFF;
1946 #else /* WIRELESS_EXT > 8 */
1947 if(wrq->u.nwid.on)
1948 {
1949 /* Set NWID in psa */
1950 psa.psa_nwid[0] = (wrq->u.nwid.nwid & 0xFF00) >> 8;
1951 psa.psa_nwid[1] = wrq->u.nwid.nwid & 0xFF;
1952 #endif /* WIRELESS_EXT > 8 */
1953 psa.psa_nwid_select = 0x01;
1954 psa_write(dev, (char *)psa.psa_nwid - (char *)&psa,
1955 (unsigned char *)psa.psa_nwid, 3);
1956
1957 /* Set NWID in mmc */
1958 m.w.mmw_netw_id_l = psa.psa_nwid[1];
1959 m.w.mmw_netw_id_h = psa.psa_nwid[0];
1960 mmc_write(base, (char *)&m.w.mmw_netw_id_l - (char *)&m,
1961 (unsigned char *)&m.w.mmw_netw_id_l, 2);
1962 mmc_out(base, mmwoff(0, mmw_loopt_sel), 0x00);
1963 }
1964 else
1965 {
1966 /* Disable nwid in the psa */
1967 psa.psa_nwid_select = 0x00;
1968 psa_write(dev, (char *)&psa.psa_nwid_select - (char *)&psa,
1969 (unsigned char *)&psa.psa_nwid_select, 1);
1970
1971 /* Disable nwid in the mmc (no filtering) */
1972 mmc_out(base, mmwoff(0, mmw_loopt_sel), MMW_LOOPT_SEL_DIS_NWID);
1973 }
1974 /* update the Wavelan checksum */
1975 update_psa_checksum(dev);
1976 break;
1977
1978 case SIOCGIWNWID:
1979 /* Read the NWID */
1980 psa_read(dev, (char *)psa.psa_nwid - (char *)&psa,
1981 (unsigned char *)psa.psa_nwid, 3);
1982 #if WIRELESS_EXT > 8
1983 wrq->u.nwid.value = (psa.psa_nwid[0] << 8) + psa.psa_nwid[1];
1984 wrq->u.nwid.disabled = !(psa.psa_nwid_select);
1985 wrq->u.nwid.fixed = 1; /* Superfluous */
1986 #else /* WIRELESS_EXT > 8 */
1987 wrq->u.nwid.nwid = (psa.psa_nwid[0] << 8) + psa.psa_nwid[1];
1988 wrq->u.nwid.on = psa.psa_nwid_select;
1989 #endif /* WIRELESS_EXT > 8 */
1990 break;
1991
1992 case SIOCSIWFREQ:
1993 /* Attempt to recognise 2.00 cards (2.4 GHz frequency selectable) */
1994 if(!(mmc_in(base, mmroff(0, mmr_fee_status)) &
1995 (MMR_FEE_STATUS_DWLD | MMR_FEE_STATUS_BUSY)))
1996 ret = wv_set_frequency(base, &(wrq->u.freq));
1997 else
1998 ret = -EOPNOTSUPP;
1999 break;
2000
2001 case SIOCGIWFREQ:
2002 /* Attempt to recognise 2.00 cards (2.4 GHz frequency selectable)
2003 * (does it work for everybody ? - especially old cards...) */
2004 if(!(mmc_in(base, mmroff(0, mmr_fee_status)) &
2005 (MMR_FEE_STATUS_DWLD | MMR_FEE_STATUS_BUSY)))
2006 {
2007 unsigned short freq;
2008
2009 /* Ask the EEprom to read the frequency from the first area */
2010 fee_read(base, 0x00 /* 1st area - frequency... */,
2011 &freq, 1);
2012 wrq->u.freq.m = ((freq >> 5) * 5 + 24000L) * 10000;
2013 wrq->u.freq.e = 1;
2014 }
2015 else
2016 {
2017 psa_read(dev, (char *)&psa.psa_subband - (char *)&psa,
2018 (unsigned char *)&psa.psa_subband, 1);
2019
2020 if(psa.psa_subband <= 4)
2021 {
2022 wrq->u.freq.m = fixed_bands[psa.psa_subband];
2023 wrq->u.freq.e = (psa.psa_subband != 0);
2024 }
2025 else
2026 ret = -EOPNOTSUPP;
2027 }
2028 break;
2029
2030 case SIOCSIWSENS:
2031 /* Set the level threshold */
2032 #if WIRELESS_EXT > 7
2033 /* We should complain loudly if wrq->u.sens.fixed = 0, because we
2034 * can't set auto mode... */
2035 psa.psa_thr_pre_set = wrq->u.sens.value & 0x3F;
2036 #else /* WIRELESS_EXT > 7 */
2037 psa.psa_thr_pre_set = wrq->u.sensitivity & 0x3F;
2038 #endif /* WIRELESS_EXT > 7 */
2039 psa_write(dev, (char *)&psa.psa_thr_pre_set - (char *)&psa,
2040 (unsigned char *)&psa.psa_thr_pre_set, 1);
2041 /* update the Wavelan checksum */
2042 update_psa_checksum(dev);
2043 mmc_out(base, mmwoff(0, mmw_thr_pre_set), psa.psa_thr_pre_set);
2044 break;
2045
2046 case SIOCGIWSENS:
2047 /* Read the level threshold */
2048 psa_read(dev, (char *)&psa.psa_thr_pre_set - (char *)&psa,
2049 (unsigned char *)&psa.psa_thr_pre_set, 1);
2050 #if WIRELESS_EXT > 7
2051 wrq->u.sens.value = psa.psa_thr_pre_set & 0x3F;
2052 wrq->u.sens.fixed = 1;
2053 #else /* WIRELESS_EXT > 7 */
2054 wrq->u.sensitivity = psa.psa_thr_pre_set & 0x3F;
2055 #endif /* WIRELESS_EXT > 7 */
2056 break;
2057
2058 #if WIRELESS_EXT > 8
2059 case SIOCSIWENCODE:
2060 /* Set encryption key */
2061 if(!mmc_encr(base))
2062 {
2063 ret = -EOPNOTSUPP;
2064 break;
2065 }
2066
2067 /* Basic checking... */
2068 if(wrq->u.encoding.pointer != (caddr_t) 0)
2069 {
2070 /* Check the size of the key */
2071 if(wrq->u.encoding.length != 8)
2072 {
2073 ret = -EINVAL;
2074 break;
2075 }
2076
2077 /* Copy the key in the driver */
2078 if(copy_from_user(psa.psa_encryption_key, wrq->u.encoding.pointer,
2079 wrq->u.encoding.length))
2080 {
2081 ret = -EFAULT;
2082 break;
2083 }
2084
2085 psa.psa_encryption_select = 1;
2086 psa_write(dev, (char *) &psa.psa_encryption_select - (char *) &psa,
2087 (unsigned char *) &psa.psa_encryption_select, 8+1);
2088
2089 mmc_out(base, mmwoff(0, mmw_encr_enable),
2090 MMW_ENCR_ENABLE_EN | MMW_ENCR_ENABLE_MODE);
2091 mmc_write(base, mmwoff(0, mmw_encr_key),
2092 (unsigned char *) &psa.psa_encryption_key, 8);
2093 }
2094
2095 if(wrq->u.encoding.flags & IW_ENCODE_DISABLED)
2096 { /* disable encryption */
2097 psa.psa_encryption_select = 0;
2098 psa_write(dev, (char *) &psa.psa_encryption_select - (char *) &psa,
2099 (unsigned char *) &psa.psa_encryption_select, 1);
2100
2101 mmc_out(base, mmwoff(0, mmw_encr_enable), 0);
2102 }
2103 /* update the Wavelan checksum */
2104 update_psa_checksum(dev);
2105 break;
2106
2107 case SIOCGIWENCODE:
2108 /* Read the encryption key */
2109 if(!mmc_encr(base))
2110 {
2111 ret = -EOPNOTSUPP;
2112 break;
2113 }
2114
2115 /* only super-user can see encryption key */
2116 if(!capable(CAP_NET_ADMIN))
2117 {
2118 ret = -EPERM;
2119 break;
2120 }
2121
2122 /* Basic checking... */
2123 if(wrq->u.encoding.pointer != (caddr_t) 0)
2124 {
2125 psa_read(dev, (char *) &psa.psa_encryption_select - (char *) &psa,
2126 (unsigned char *) &psa.psa_encryption_select, 1+8);
2127
2128 /* encryption is enabled ? */
2129 if(psa.psa_encryption_select)
2130 wrq->u.encoding.flags = IW_ENCODE_ENABLED;
2131 else
2132 wrq->u.encoding.flags = IW_ENCODE_DISABLED;
2133 wrq->u.encoding.flags |= mmc_encr(base);
2134
2135 /* Copy the key to the user buffer */
2136 wrq->u.encoding.length = 8;
2137 if(copy_to_user(wrq->u.encoding.pointer, psa.psa_encryption_key, 8))
2138 ret = -EFAULT;
2139 }
2140 break;
2141 #endif /* WIRELESS_EXT > 8 */
2142
2143 #ifdef WAVELAN_ROAMING_EXT
2144 #if WIRELESS_EXT > 5
2145 case SIOCSIWESSID:
2146 /* Check if disable */
2147 if(wrq->u.data.flags == 0)
2148 lp->filter_domains = 0;
2149 else
2150 /* Basic checking... */
2151 if(wrq->u.data.pointer != (caddr_t) 0)
2152 {
2153 char essid[IW_ESSID_MAX_SIZE + 1];
2154 char * endp;
2155
2156 /* Check the size of the string */
2157 if(wrq->u.data.length > IW_ESSID_MAX_SIZE + 1)
2158 {
2159 ret = -E2BIG;
2160 break;
2161 }
2162
2163 /* Copy the string in the driver */
2164 if(copy_from_user(essid, wrq->u.data.pointer, wrq->u.data.length))
2165 {
2166 ret = -EFAULT;
2167 break;
2168 }
2169 essid[IW_ESSID_MAX_SIZE] = '\0';
2170
2171 #ifdef DEBUG_IOCTL_INFO
2172 printk(KERN_DEBUG "SetEssid : ``%s''\n", essid);
2173 #endif /* DEBUG_IOCTL_INFO */
2174
2175 /* Convert to a number (note : Wavelan specific) */
2176 lp->domain_id = simple_strtoul(essid, &endp, 16);
2177 /* Has it worked ? */
2178 if(endp > essid)
2179 lp->filter_domains = 1;
2180 else
2181 {
2182 lp->filter_domains = 0;
2183 ret = -EINVAL;
2184 }
2185 }
2186 break;
2187
2188 case SIOCGIWESSID:
2189 /* Basic checking... */
2190 if(wrq->u.data.pointer != (caddr_t) 0)
2191 {
2192 char essid[IW_ESSID_MAX_SIZE + 1];
2193
2194 /* Is the domain ID active ? */
2195 wrq->u.data.flags = lp->filter_domains;
2196
2197 /* Copy Domain ID into a string (Wavelan specific) */
2198 /* Sound crazy, be we can't have a snprintf in the kernel !!! */
2199 sprintf(essid, "%lX", lp->domain_id);
2200 essid[IW_ESSID_MAX_SIZE] = '\0';
2201
2202 /* Set the length */
2203 wrq->u.data.length = strlen(essid) + 1;
2204
2205 /* Copy structure to the user buffer */
2206 if(copy_to_user(wrq->u.data.pointer, essid, wrq->u.data.length))
2207 ret = -EFAULT;
2208 }
2209 break;
2210
2211 case SIOCSIWAP:
2212 #ifdef DEBUG_IOCTL_INFO
2213 printk(KERN_DEBUG "Set AP to : %02X:%02X:%02X:%02X:%02X:%02X\n",
2214 wrq->u.ap_addr.sa_data[0],
2215 wrq->u.ap_addr.sa_data[1],
2216 wrq->u.ap_addr.sa_data[2],
2217 wrq->u.ap_addr.sa_data[3],
2218 wrq->u.ap_addr.sa_data[4],
2219 wrq->u.ap_addr.sa_data[5]);
2220 #endif /* DEBUG_IOCTL_INFO */
2221
2222 ret = -EOPNOTSUPP; /* Not supported yet */
2223 break;
2224
2225 case SIOCGIWAP:
2226 /* Should get the real McCoy instead of own Ethernet address */
2227 memcpy(wrq->u.ap_addr.sa_data, dev->dev_addr, WAVELAN_ADDR_SIZE);
2228 wrq->u.ap_addr.sa_family = ARPHRD_ETHER;
2229
2230 ret = -EOPNOTSUPP; /* Not supported yet */
2231 break;
2232 #endif /* WIRELESS_EXT > 5 */
2233 #endif /* WAVELAN_ROAMING_EXT */
2234
2235 #if WIRELESS_EXT > 8
2236 #ifdef WAVELAN_ROAMING
2237 case SIOCSIWMODE:
2238 switch(wrq->u.mode)
2239 {
2240 case IW_MODE_ADHOC:
2241 if(do_roaming)
2242 {
2243 wv_roam_cleanup(dev);
2244 do_roaming = 0;
2245 }
2246 break;
2247 case IW_MODE_INFRA:
2248 if(!do_roaming)
2249 {
2250 wv_roam_init(dev);
2251 do_roaming = 1;
2252 }
2253 break;
2254 default:
2255 ret = -EINVAL;
2256 }
2257 break;
2258
2259 case SIOCGIWMODE:
2260 if(do_roaming)
2261 wrq->u.mode = IW_MODE_INFRA;
2262 else
2263 wrq->u.mode = IW_MODE_ADHOC;
2264 break;
2265 #endif /* WAVELAN_ROAMING */
2266 #endif /* WIRELESS_EXT > 8 */
2267
2268 case SIOCGIWRANGE:
2269 /* Basic checking... */
2270 if(wrq->u.data.pointer != (caddr_t) 0)
2271 {
2272 struct iw_range range;
2273
2274 /* Set the length (very important for backward compatibility) */
2275 wrq->u.data.length = sizeof(struct iw_range);
2276
2277 /* Set all the info we don't care or don't know about to zero */
2278 memset(&range, 0, sizeof(range));
2279
2280 #if WIRELESS_EXT > 10
2281 /* Set the Wireless Extension versions */
2282 range.we_version_compiled = WIRELESS_EXT;
2283 range.we_version_source = 9; /* Nothing for us in v10 and v11 */
2284 #endif /* WIRELESS_EXT > 10 */
2285
2286 /* Set information in the range struct */
2287 range.throughput = 1.4 * 1000 * 1000; /* don't argue on this ! */
2288 range.min_nwid = 0x0000;
2289 range.max_nwid = 0xFFFF;
2290
2291 /* Attempt to recognise 2.00 cards (2.4 GHz frequency selectable) */
2292 if(!(mmc_in(base, mmroff(0, mmr_fee_status)) &
2293 (MMR_FEE_STATUS_DWLD | MMR_FEE_STATUS_BUSY)))
2294 {
2295 range.num_channels = 10;
2296 range.num_frequency = wv_frequency_list(base, range.freq,
2297 IW_MAX_FREQUENCIES);
2298 }
2299 else
2300 range.num_channels = range.num_frequency = 0;
2301
2302 range.sensitivity = 0x3F;
2303 range.max_qual.qual = MMR_SGNL_QUAL;
2304 range.max_qual.level = MMR_SIGNAL_LVL;
2305 range.max_qual.noise = MMR_SILENCE_LVL;
2306 #if WIRELESS_EXT > 11
2307 range.avg_qual.qual = MMR_SGNL_QUAL; /* Always max */
2308 /* Need to get better values for those two */
2309 range.avg_qual.level = 30;
2310 range.avg_qual.noise = 8;
2311 #endif /* WIRELESS_EXT > 11 */
2312
2313 #if WIRELESS_EXT > 7
2314 range.num_bitrates = 1;
2315 range.bitrate[0] = 2000000; /* 2 Mb/s */
2316 #endif /* WIRELESS_EXT > 7 */
2317
2318 #if WIRELESS_EXT > 8
2319 /* Encryption supported ? */
2320 if(mmc_encr(base))
2321 {
2322 range.encoding_size[0] = 8; /* DES = 64 bits key */
2323 range.num_encoding_sizes = 1;
2324 range.max_encoding_tokens = 1; /* Only one key possible */
2325 }
2326 else
2327 {
2328 range.num_encoding_sizes = 0;
2329 range.max_encoding_tokens = 0;
2330 }
2331 #endif /* WIRELESS_EXT > 8 */
2332
2333 /* Copy structure to the user buffer */
2334 if(copy_to_user(wrq->u.data.pointer, &range,
2335 sizeof(struct iw_range)))
2336 ret = -EFAULT;
2337 }
2338 break;
2339
2340 case SIOCGIWPRIV:
2341 /* Basic checking... */
2342 if(wrq->u.data.pointer != (caddr_t) 0)
2343 {
2344 struct iw_priv_args priv[] =
2345 { /* cmd, set_args, get_args, name */
2346 { SIOCSIPQTHR, IW_PRIV_TYPE_BYTE | IW_PRIV_SIZE_FIXED | 1, 0, "setqualthr" },
2347 { SIOCGIPQTHR, 0, IW_PRIV_TYPE_BYTE | IW_PRIV_SIZE_FIXED | 1, "getqualthr" },
2348 { SIOCSIPHISTO, IW_PRIV_TYPE_BYTE | 16, 0, "sethisto" },
2349 { SIOCGIPHISTO, 0, IW_PRIV_TYPE_INT | 16, "gethisto" },
2350 { SIOCSIPROAM, IW_PRIV_TYPE_BYTE | IW_PRIV_SIZE_FIXED | 1 , 0, "setroam" },
2351 { SIOCGIPROAM, 0, IW_PRIV_TYPE_BYTE | IW_PRIV_SIZE_FIXED | 1, "getroam" },
2352 };
2353
2354 /* Set the number of ioctl available */
2355 wrq->u.data.length = 6;
2356
2357 /* Copy structure to the user buffer */
2358 if(copy_to_user(wrq->u.data.pointer, (u_char *) priv,
2359 sizeof(priv)))
2360 ret = -EFAULT;
2361 }
2362 break;
2363
2364 #ifdef WIRELESS_SPY
2365 case SIOCSIWSPY:
2366 /* Set the spy list */
2367
2368 /* Check the number of addresses */
2369 if(wrq->u.data.length > IW_MAX_SPY)
2370 {
2371 ret = -E2BIG;
2372 break;
2373 }
2374 lp->spy_number = wrq->u.data.length;
2375
2376 /* If there is some addresses to copy */
2377 if(lp->spy_number > 0)
2378 {
2379 struct sockaddr address[IW_MAX_SPY];
2380 int i;
2381
2382 /* Copy addresses to the driver */
2383 if(copy_from_user(address, wrq->u.data.pointer,
2384 sizeof(struct sockaddr) * lp->spy_number))
2385 {
2386 ret = -EFAULT;
2387 break;
2388 }
2389
2390 /* Copy addresses to the lp structure */
2391 for(i = 0; i < lp->spy_number; i++)
2392 {
2393 memcpy(lp->spy_address[i], address[i].sa_data,
2394 WAVELAN_ADDR_SIZE);
2395 }
2396
2397 /* Reset structure... */
2398 memset(lp->spy_stat, 0x00, sizeof(iw_qual) * IW_MAX_SPY);
2399
2400 #ifdef DEBUG_IOCTL_INFO
2401 printk(KERN_DEBUG "SetSpy - Set of new addresses is :\n");
2402 for(i = 0; i < wrq->u.data.length; i++)
2403 printk(KERN_DEBUG "%02X:%02X:%02X:%02X:%02X:%02X\n",
2404 lp->spy_address[i][0],
2405 lp->spy_address[i][1],
2406 lp->spy_address[i][2],
2407 lp->spy_address[i][3],
2408 lp->spy_address[i][4],
2409 lp->spy_address[i][5]);
2410 #endif /* DEBUG_IOCTL_INFO */
2411 }
2412
2413 break;
2414
2415 case SIOCGIWSPY:
2416 /* Get the spy list and spy stats */
2417
2418 /* Set the number of addresses */
2419 wrq->u.data.length = lp->spy_number;
2420
2421 /* If the user want to have the addresses back... */
2422 if((lp->spy_number > 0) && (wrq->u.data.pointer != (caddr_t) 0))
2423 {
2424 struct sockaddr address[IW_MAX_SPY];
2425 int i;
2426
2427 /* Copy addresses from the lp structure */
2428 for(i = 0; i < lp->spy_number; i++)
2429 {
2430 memcpy(address[i].sa_data, lp->spy_address[i],
2431 WAVELAN_ADDR_SIZE);
2432 address[i].sa_family = ARPHRD_ETHER;
2433 }
2434
2435 /* Copy addresses to the user buffer */
2436 if(copy_to_user(wrq->u.data.pointer, address,
2437 sizeof(struct sockaddr) * lp->spy_number))
2438 {
2439 ret = -EFAULT;
2440 break;
2441 }
2442
2443 /* Copy stats to the user buffer (just after) */
2444 if(copy_to_user(wrq->u.data.pointer +
2445 (sizeof(struct sockaddr) * lp->spy_number),
2446 lp->spy_stat, sizeof(iw_qual) * lp->spy_number))
2447 {
2448 ret = -EFAULT;
2449 break;
2450 }
2451
2452 /* Reset updated flags */
2453 for(i = 0; i < lp->spy_number; i++)
2454 lp->spy_stat[i].updated = 0x0;
2455 } /* if(pointer != NULL) */
2456
2457 break;
2458 #endif /* WIRELESS_SPY */
2459
2460 /* ------------------ PRIVATE IOCTL ------------------ */
2461
2462 case SIOCSIPQTHR:
2463 if(!capable(CAP_NET_ADMIN))
2464 {
2465 ret = -EPERM;
2466 break;
2467 }
2468 psa.psa_quality_thr = *(wrq->u.name) & 0x0F;
2469 psa_write(dev, (char *)&psa.psa_quality_thr - (char *)&psa,
2470 (unsigned char *)&psa.psa_quality_thr, 1);
2471 /* update the Wavelan checksum */
2472 update_psa_checksum(dev);
2473 mmc_out(base, mmwoff(0, mmw_quality_thr), psa.psa_quality_thr);
2474 break;
2475
2476 case SIOCGIPQTHR:
2477 psa_read(dev, (char *)&psa.psa_quality_thr - (char *)&psa,
2478 (unsigned char *)&psa.psa_quality_thr, 1);
2479 *(wrq->u.name) = psa.psa_quality_thr & 0x0F;
2480 break;
2481
2482 #ifdef WAVELAN_ROAMING
2483 case SIOCSIPROAM:
2484 /* Note : should check if user == root */
2485 if(do_roaming && (*wrq->u.name)==0)
2486 wv_roam_cleanup(dev);
2487 else if(do_roaming==0 && (*wrq->u.name)!=0)
2488 wv_roam_init(dev);
2489
2490 do_roaming = (*wrq->u.name);
2491
2492 break;
2493
2494 case SIOCGIPROAM:
2495 *(wrq->u.name) = do_roaming;
2496 break;
2497 #endif /* WAVELAN_ROAMING */
2498
2499 #ifdef HISTOGRAM
2500 case SIOCSIPHISTO:
2501 /* Verif if the user is root */
2502 if(!capable(CAP_NET_ADMIN))
2503 {
2504 ret = -EPERM;
2505 }
2506
2507 /* Check the number of intervals */
2508 if(wrq->u.data.length > 16)
2509 {
2510 ret = -E2BIG;
2511 break;
2512 }
2513 lp->his_number = wrq->u.data.length;
2514
2515 /* If there is some addresses to copy */
2516 if(lp->his_number > 0)
2517 {
2518 /* Copy interval ranges to the driver */
2519 if(copy_from_user(lp->his_range, wrq->u.data.pointer,
2520 sizeof(char) * lp->his_number))
2521 {
2522 ret = -EFAULT;
2523 break;
2524 }
2525
2526 /* Reset structure... */
2527 memset(lp->his_sum, 0x00, sizeof(long) * 16);
2528 }
2529 break;
2530
2531 case SIOCGIPHISTO:
2532 /* Set the number of intervals */
2533 wrq->u.data.length = lp->his_number;
2534
2535 /* Give back the distribution statistics */
2536 if((lp->his_number > 0) && (wrq->u.data.pointer != (caddr_t) 0))
2537 {
2538 /* Copy data to the user buffer */
2539 if(copy_to_user(wrq->u.data.pointer, lp->his_sum,
2540 sizeof(long) * lp->his_number))
2541 ret = -EFAULT;
2542
2543 } /* if(pointer != NULL) */
2544 break;
2545 #endif /* HISTOGRAM */
2546
2547 /* ------------------- OTHER IOCTL ------------------- */
2548
2549 default:
2550 ret = -EOPNOTSUPP;
2551 }
2552
2553 /* ReEnable interrupts & restore flags */
2554 wv_splx(lp, &flags);
2555
2556 #ifdef DEBUG_IOCTL_TRACE
2557 printk(KERN_DEBUG "%s: <-wavelan_ioctl()\n", dev->name);
2558 #endif
2559 return ret;
2560 }
2561
2562 /*------------------------------------------------------------------*/
2563 /*
2564 * Get wireless statistics
2565 * Called by /proc/net/wireless...
2566 */
2567 static iw_stats *
2568 wavelan_get_wireless_stats(device * dev)
2569 {
2570 ioaddr_t base = dev->base_addr;
2571 net_local * lp = (net_local *) dev->priv;
2572 mmr_t m;
2573 iw_stats * wstats;
2574 unsigned long flags;
2575
2576 #ifdef DEBUG_IOCTL_TRACE
2577 printk(KERN_DEBUG "%s: ->wavelan_get_wireless_stats()\n", dev->name);
2578 #endif
2579
2580 /* Disable interrupts & save flags */
2581 wv_splhi(lp, &flags);
2582
2583 wstats = &lp->wstats;
2584
2585 /* Get data from the mmc */
2586 mmc_out(base, mmwoff(0, mmw_freeze), 1);
2587
2588 mmc_read(base, mmroff(0, mmr_dce_status), &m.mmr_dce_status, 1);
2589 mmc_read(base, mmroff(0, mmr_wrong_nwid_l), &m.mmr_wrong_nwid_l, 2);
2590 mmc_read(base, mmroff(0, mmr_thr_pre_set), &m.mmr_thr_pre_set, 4);
2591
2592 mmc_out(base, mmwoff(0, mmw_freeze), 0);
2593
2594 /* Copy data to wireless stuff */
2595 wstats->status = m.mmr_dce_status & MMR_DCE_STATUS;
2596 wstats->qual.qual = m.mmr_sgnl_qual & MMR_SGNL_QUAL;
2597 wstats->qual.level = m.mmr_signal_lvl & MMR_SIGNAL_LVL;
2598 wstats->qual.noise = m.mmr_silence_lvl & MMR_SILENCE_LVL;
2599 wstats->qual.updated = (((m.mmr_signal_lvl & MMR_SIGNAL_LVL_VALID) >> 7) |
2600 ((m.mmr_signal_lvl & MMR_SIGNAL_LVL_VALID) >> 6) |
2601 ((m.mmr_silence_lvl & MMR_SILENCE_LVL_VALID) >> 5));
2602 wstats->discard.nwid += (m.mmr_wrong_nwid_h << 8) | m.mmr_wrong_nwid_l;
2603 wstats->discard.code = 0L;
2604 wstats->discard.misc = 0L;
2605
2606 /* ReEnable interrupts & restore flags */
2607 wv_splx(lp, &flags);
2608
2609 #ifdef DEBUG_IOCTL_TRACE
2610 printk(KERN_DEBUG "%s: <-wavelan_get_wireless_stats()\n", dev->name);
2611 #endif
2612 return &lp->wstats;
2613 }
2614 #endif /* WIRELESS_EXT */
2615
2616 /************************* PACKET RECEPTION *************************/
2617 /*
2618 * This part deal with receiving the packets.
2619 * The interrupt handler get an interrupt when a packet has been
2620 * successfully received and called this part...
2621 */
2622
2623 /*------------------------------------------------------------------*/
2624 /*
2625 * Calculate the starting address of the frame pointed to by the receive
2626 * frame pointer and verify that the frame seem correct
2627 * (called by wv_packet_rcv())
2628 */
2629 static inline int
2630 wv_start_of_frame(device * dev,
2631 int rfp, /* end of frame */
2632 int wrap) /* start of buffer */
2633 {
2634 ioaddr_t base = dev->base_addr;
2635 int rp;
2636 int len;
2637
2638 rp = (rfp - 5 + RX_SIZE) % RX_SIZE;
2639 outb(rp & 0xff, PIORL(base));
2640 outb(((rp >> 8) & PIORH_MASK), PIORH(base));
2641 len = inb(PIOP(base));
2642 len |= inb(PIOP(base)) << 8;
2643
2644 /* Sanity checks on size */
2645 /* Frame too big */
2646 if(len > MAXDATAZ + 100)
2647 {
2648 #ifdef DEBUG_RX_ERROR
2649 printk(KERN_INFO "%s: wv_start_of_frame: Received frame too large, rfp %d len 0x%x\n",
2650 dev->name, rfp, len);
2651 #endif
2652 return(-1);
2653 }
2654
2655 /* Frame too short */
2656 if(len < 7)
2657 {
2658 #ifdef DEBUG_RX_ERROR
2659 printk(KERN_INFO "%s: wv_start_of_frame: Received null frame, rfp %d len 0x%x\n",
2660 dev->name, rfp, len);
2661 #endif
2662 return(-1);
2663 }
2664
2665 /* Wrap around buffer */
2666 if(len > ((wrap - (rfp - len) + RX_SIZE) % RX_SIZE)) /* magic formula ! */
2667 {
2668 #ifdef DEBUG_RX_ERROR
2669 printk(KERN_INFO "%s: wv_start_of_frame: wrap around buffer, wrap %d rfp %d len 0x%x\n",
2670 dev->name, wrap, rfp, len);
2671 #endif
2672 return(-1);
2673 }
2674
2675 return((rp - len + RX_SIZE) % RX_SIZE);
2676 } /* wv_start_of_frame */
2677
2678 /*------------------------------------------------------------------*/
2679 /*
2680 * This routine does the actual copy of data (including the ethernet
2681 * header structure) from the WaveLAN card to an sk_buff chain that
2682 * will be passed up to the network interface layer. NOTE: We
2683 * currently don't handle trailer protocols (neither does the rest of
2684 * the network interface), so if that is needed, it will (at least in
2685 * part) be added here. The contents of the receive ring buffer are
2686 * copied to a message chain that is then passed to the kernel.
2687 *
2688 * Note: if any errors occur, the packet is "dropped on the floor"
2689 * (called by wv_packet_rcv())
2690 */
2691 static inline void
2692 wv_packet_read(device * dev,
2693 int fd_p,
2694 int sksize)
2695 {
2696 net_local * lp = (net_local *) dev->priv;
2697 struct sk_buff * skb;
2698
2699 #ifdef DEBUG_RX_TRACE
2700 printk(KERN_DEBUG "%s: ->wv_packet_read(0x%X, %d)\n",
2701 dev->name, fd_p, sksize);
2702 #endif
2703
2704 /* Allocate some buffer for the new packet */
2705 if((skb = dev_alloc_skb(sksize+2)) == (struct sk_buff *) NULL)
2706 {
2707 #ifdef DEBUG_RX_ERROR
2708 printk(KERN_INFO "%s: wv_packet_read(): could not alloc_skb(%d, GFP_ATOMIC)\n",
2709 dev->name, sksize);
2710 #endif
2711 lp->stats.rx_dropped++;
2712 /*
2713 * Not only do we want to return here, but we also need to drop the
2714 * packet on the floor to clear the interrupt.
2715 */
2716 return;
2717 }
2718
2719 skb->dev = dev;
2720
2721 skb_reserve(skb, 2);
2722 fd_p = read_ringbuf(dev, fd_p, (char *) skb_put(skb, sksize), sksize);
2723 skb->protocol = eth_type_trans(skb, dev);
2724
2725 #ifdef DEBUG_RX_INFO
2726 wv_packet_info(skb->mac.raw, sksize, dev->name, "wv_packet_read");
2727 #endif /* DEBUG_RX_INFO */
2728
2729 /* Statistics gathering & stuff associated.
2730 * It seem a bit messy with all the define, but it's really simple... */
2731 if(
2732 #ifdef WIRELESS_SPY
2733 (lp->spy_number > 0) ||
2734 #endif /* WIRELESS_SPY */
2735 #ifdef HISTOGRAM
2736 (lp->his_number > 0) ||
2737 #endif /* HISTOGRAM */
2738 #ifdef WAVELAN_ROAMING
2739 (do_roaming) ||
2740 #endif /* WAVELAN_ROAMING */
2741 0)
2742 {
2743 u_char stats[3]; /* Signal level, Noise level, Signal quality */
2744
2745 /* read signal level, silence level and signal quality bytes */
2746 fd_p = read_ringbuf(dev, (fd_p + 4) % RX_SIZE + RX_BASE,
2747 stats, 3);
2748 #ifdef DEBUG_RX_INFO
2749 printk(KERN_DEBUG "%s: wv_packet_read(): Signal level %d/63, Silence level %d/63, signal quality %d/16\n",
2750 dev->name, stats[0] & 0x3F, stats[1] & 0x3F, stats[2] & 0x0F);
2751 #endif
2752
2753 #ifdef WAVELAN_ROAMING
2754 if(do_roaming)
2755 if(WAVELAN_BEACON(skb->data))
2756 wl_roam_gather(dev, skb->data, stats);
2757 #endif /* WAVELAN_ROAMING */
2758
2759 #ifdef WIRELESS_SPY
2760 wl_spy_gather(dev, skb->mac.raw + WAVELAN_ADDR_SIZE, stats);
2761 #endif /* WIRELESS_SPY */
2762 #ifdef HISTOGRAM
2763 wl_his_gather(dev, stats);
2764 #endif /* HISTOGRAM */
2765 }
2766
2767 /*
2768 * Hand the packet to the Network Module
2769 */
2770 netif_rx(skb);
2771
2772 /* Keep stats up to date */
2773 dev->last_rx = jiffies;
2774 lp->stats.rx_packets++;
2775 lp->stats.rx_bytes += sksize;
2776
2777 #ifdef DEBUG_RX_TRACE
2778 printk(KERN_DEBUG "%s: <-wv_packet_read()\n", dev->name);
2779 #endif
2780 return;
2781 }
2782
2783 /*------------------------------------------------------------------*/
2784 /*
2785 * This routine is called by the interrupt handler to initiate a
2786 * packet transfer from the card to the network interface layer above
2787 * this driver. This routine checks if a buffer has been successfully
2788 * received by the WaveLAN card. If so, the routine wv_packet_read is
2789 * called to do the actual transfer of the card's data including the
2790 * ethernet header into a packet consisting of an sk_buff chain.
2791 * (called by wavelan_interrupt())
2792 * Note : the spinlock is already grabbed for us and irq are disabled.
2793 */
2794 static inline void
2795 wv_packet_rcv(device * dev)
2796 {
2797 ioaddr_t base = dev->base_addr;
2798 net_local * lp = (net_local *) dev->priv;
2799 int newrfp;
2800 int rp;
2801 int len;
2802 int f_start;
2803 int status;
2804 int i593_rfp;
2805 int stat_ptr;
2806 u_char c[4];
2807
2808 #ifdef DEBUG_RX_TRACE
2809 printk(KERN_DEBUG "%s: ->wv_packet_rcv()\n", dev->name);
2810 #endif
2811
2812 /* Get the new receive frame pointer from the i82593 chip */
2813 outb(CR0_STATUS_2 | OP0_NOP, LCCR(base));
2814 i593_rfp = inb(LCSR(base));
2815 i593_rfp |= inb(LCSR(base)) << 8;
2816 i593_rfp %= RX_SIZE;
2817
2818 /* Get the new receive frame pointer from the WaveLAN card.
2819 * It is 3 bytes more than the increment of the i82593 receive
2820 * frame pointer, for each packet. This is because it includes the
2821 * 3 roaming bytes added by the mmc.
2822 */
2823 newrfp = inb(RPLL(base));
2824 newrfp |= inb(RPLH(base)) << 8;
2825 newrfp %= RX_SIZE;
2826
2827 #ifdef DEBUG_RX_INFO
2828 printk(KERN_DEBUG "%s: wv_packet_rcv(): i593_rfp %d stop %d newrfp %d lp->rfp %d\n",
2829 dev->name, i593_rfp, lp->stop, newrfp, lp->rfp);
2830 #endif
2831
2832 #ifdef DEBUG_RX_ERROR
2833 /* If no new frame pointer... */
2834 if(lp->overrunning || newrfp == lp->rfp)
2835 printk(KERN_INFO "%s: wv_packet_rcv(): no new frame: i593_rfp %d stop %d newrfp %d lp->rfp %d\n",
2836 dev->name, i593_rfp, lp->stop, newrfp, lp->rfp);
2837 #endif
2838
2839 /* Read all frames (packets) received */
2840 while(newrfp != lp->rfp)
2841 {
2842 /* A frame is composed of the packet, followed by a status word,
2843 * the length of the frame (word) and the mmc info (SNR & qual).
2844 * It's because the length is at the end that we can only scan
2845 * frames backward. */
2846
2847 /* Find the first frame by skipping backwards over the frames */
2848 rp = newrfp; /* End of last frame */
2849 while(((f_start = wv_start_of_frame(dev, rp, newrfp)) != lp->rfp) &&
2850 (f_start != -1))
2851 rp = f_start;
2852
2853 /* If we had a problem */
2854 if(f_start == -1)
2855 {
2856 #ifdef DEBUG_RX_ERROR
2857 printk(KERN_INFO "wavelan_cs: cannot find start of frame ");
2858 printk(" i593_rfp %d stop %d newrfp %d lp->rfp %d\n",
2859 i593_rfp, lp->stop, newrfp, lp->rfp);
2860 #endif
2861 lp->rfp = rp; /* Get to the last usable frame */
2862 continue;
2863 }
2864
2865 /* f_start point to the beggining of the first frame received
2866 * and rp to the beggining of the next one */
2867
2868 /* Read status & length of the frame */
2869 stat_ptr = (rp - 7 + RX_SIZE) % RX_SIZE;
2870 stat_ptr = read_ringbuf(dev, stat_ptr, c, 4);
2871 status = c[0] | (c[1] << 8);
2872 len = c[2] | (c[3] << 8);
2873
2874 /* Check status */
2875 if((status & RX_RCV_OK) != RX_RCV_OK)
2876 {
2877 lp->stats.rx_errors++;
2878 if(status & RX_NO_SFD)
2879 lp->stats.rx_frame_errors++;
2880 if(status & RX_CRC_ERR)
2881 lp->stats.rx_crc_errors++;
2882 if(status & RX_OVRRUN)
2883 lp->stats.rx_over_errors++;
2884
2885 #ifdef DEBUG_RX_FAIL
2886 printk(KERN_DEBUG "%s: wv_packet_rcv(): packet not received ok, status = 0x%x\n",
2887 dev->name, status);
2888 #endif
2889 }
2890 else
2891 /* Read the packet and transmit to Linux */
2892 wv_packet_read(dev, f_start, len - 2);
2893
2894 /* One frame has been processed, skip it */
2895 lp->rfp = rp;
2896 }
2897
2898 /*
2899 * Update the frame stop register, but set it to less than
2900 * the full 8K to allow space for 3 bytes of signal strength
2901 * per packet.
2902 */
2903 lp->stop = (i593_rfp + RX_SIZE - ((RX_SIZE / 64) * 3)) % RX_SIZE;
2904 outb(OP0_SWIT_TO_PORT_1 | CR0_CHNL, LCCR(base));
2905 outb(CR1_STOP_REG_UPDATE | (lp->stop >> RX_SIZE_SHIFT), LCCR(base));
2906 outb(OP1_SWIT_TO_PORT_0, LCCR(base));
2907
2908 #ifdef DEBUG_RX_TRACE
2909 printk(KERN_DEBUG "%s: <-wv_packet_rcv()\n", dev->name);
2910 #endif
2911 }
2912
2913 /*********************** PACKET TRANSMISSION ***********************/
2914 /*
2915 * This part deal with sending packet through the wavelan
2916 * We copy the packet to the send buffer and then issue the send
2917 * command to the i82593. The result of this operation will be
2918 * checked in wavelan_interrupt()
2919 */
2920
2921 /*------------------------------------------------------------------*/
2922 /*
2923 * This routine fills in the appropriate registers and memory
2924 * locations on the WaveLAN card and starts the card off on
2925 * the transmit.
2926 * (called in wavelan_packet_xmit())
2927 */
2928 static inline void
2929 wv_packet_write(device * dev,
2930 void * buf,
2931 short length)
2932 {
2933 net_local * lp = (net_local *) dev->priv;
2934 ioaddr_t base = dev->base_addr;
2935 unsigned long flags;
2936 int clen = length;
2937 register u_short xmtdata_base = TX_BASE;
2938
2939 #ifdef DEBUG_TX_TRACE
2940 printk(KERN_DEBUG "%s: ->wv_packet_write(%d)\n", dev->name, length);
2941 #endif
2942
2943 wv_splhi(lp, &flags);
2944
2945 /* Check if we need some padding */
2946 if(clen < ETH_ZLEN)
2947 clen = ETH_ZLEN;
2948
2949 /* Write the length of data buffer followed by the buffer */
2950 outb(xmtdata_base & 0xff, PIORL(base));
2951 outb(((xmtdata_base >> 8) & PIORH_MASK) | PIORH_SEL_TX, PIORH(base));
2952 outb(clen & 0xff, PIOP(base)); /* lsb */
2953 outb(clen >> 8, PIOP(base)); /* msb */
2954
2955 /* Send the data */
2956 outsb(PIOP(base), buf, clen);
2957
2958 /* Indicate end of transmit chain */
2959 outb(OP0_NOP, PIOP(base));
2960 /* josullvn@cs.cmu.edu: need to send a second NOP for alignment... */
2961 outb(OP0_NOP, PIOP(base));
2962
2963 /* Reset the transmit DMA pointer */
2964 hacr_write_slow(base, HACR_PWR_STAT | HACR_TX_DMA_RESET);
2965 hacr_write(base, HACR_DEFAULT);
2966 /* Send the transmit command */
2967 wv_82593_cmd(dev, "wv_packet_write(): transmit",
2968 OP0_TRANSMIT, SR0_NO_RESULT);
2969
2970 /* Make sure the watchdog will keep quiet for a while */
2971 dev->trans_start = jiffies;
2972
2973 /* Keep stats up to date */
2974 lp->stats.tx_bytes += length;
2975
2976 wv_splx(lp, &flags);
2977
2978 #ifdef DEBUG_TX_INFO
2979 wv_packet_info((u_char *) buf, length, dev->name, "wv_packet_write");
2980 #endif /* DEBUG_TX_INFO */
2981
2982 #ifdef DEBUG_TX_TRACE
2983 printk(KERN_DEBUG "%s: <-wv_packet_write()\n", dev->name);
2984 #endif
2985 }
2986
2987 /*------------------------------------------------------------------*/
2988 /*
2989 * This routine is called when we want to send a packet (NET3 callback)
2990 * In this routine, we check if the harware is ready to accept
2991 * the packet. We also prevent reentrance. Then, we call the function
2992 * to send the packet...
2993 */
2994 static int
2995 wavelan_packet_xmit(struct sk_buff * skb,
2996 device * dev)
2997 {
2998 net_local * lp = (net_local *)dev->priv;
2999 unsigned long flags;
3000
3001 #ifdef DEBUG_TX_TRACE
3002 printk(KERN_DEBUG "%s: ->wavelan_packet_xmit(0x%X)\n", dev->name,
3003 (unsigned) skb);
3004 #endif
3005
3006 /*
3007 * Block a timer-based transmit from overlapping a previous transmit.
3008 * In other words, prevent reentering this routine.
3009 */
3010 netif_stop_queue(dev);
3011
3012 /* If somebody has asked to reconfigure the controller,
3013 * we can do it now */
3014 if(lp->reconfig_82593)
3015 {
3016 wv_splhi(lp, &flags); /* Disable interrupts */
3017 wv_82593_config(dev);
3018 wv_splx(lp, &flags); /* Re-enable interrupts */
3019 /* Note : the configure procedure was totally synchronous,
3020 * so the Tx buffer is now free */
3021 }
3022
3023 #ifdef DEBUG_TX_ERROR
3024 if (skb->next)
3025 printk(KERN_INFO "skb has next\n");
3026 #endif
3027
3028 wv_packet_write(dev, skb->data, skb->len);
3029
3030 dev_kfree_skb(skb);
3031
3032 #ifdef DEBUG_TX_TRACE
3033 printk(KERN_DEBUG "%s: <-wavelan_packet_xmit()\n", dev->name);
3034 #endif
3035 return(0);
3036 }
3037
3038 /********************** HARDWARE CONFIGURATION **********************/
3039 /*
3040 * This part do the real job of starting and configuring the hardware.
3041 */
3042
3043 /*------------------------------------------------------------------*/
3044 /*
3045 * Routine to initialize the Modem Management Controller.
3046 * (called by wv_hw_config())
3047 */
3048 static inline int
3049 wv_mmc_init(device * dev)
3050 {
3051 ioaddr_t base = dev->base_addr;
3052 psa_t psa;
3053 mmw_t m;
3054 int configured;
3055 int i; /* Loop counter */
3056
3057 #ifdef DEBUG_CONFIG_TRACE
3058 printk(KERN_DEBUG "%s: ->wv_mmc_init()\n", dev->name);
3059 #endif
3060
3061 /* Read the parameter storage area */
3062 psa_read(dev, 0, (unsigned char *) &psa, sizeof(psa));
3063
3064 /*
3065 * Check the first three octets of the MAC addr for the manufacturer's code.
3066 * Note: If you get the error message below, you've got a
3067 * non-NCR/AT&T/Lucent PCMCIA cards, see wavelan_cs.h for detail on
3068 * how to configure your card...
3069 */
3070 for(i = 0; i < (sizeof(MAC_ADDRESSES) / sizeof(char) / 3); i++)
3071 if((psa.psa_univ_mac_addr[0] == MAC_ADDRESSES[i][0]) &&
3072 (psa.psa_univ_mac_addr[1] == MAC_ADDRESSES[i][1]) &&
3073 (psa.psa_univ_mac_addr[2] == MAC_ADDRESSES[i][2]))
3074 break;
3075
3076 /* If we have not found it... */
3077 if(i == (sizeof(MAC_ADDRESSES) / sizeof(char) / 3))
3078 {
3079 #ifdef DEBUG_CONFIG_ERRORS
3080 printk(KERN_WARNING "%s: wv_mmc_init(): Invalid MAC address: %02X:%02X:%02X:...\n",
3081 dev->name, psa.psa_univ_mac_addr[0],
3082 psa.psa_univ_mac_addr[1], psa.psa_univ_mac_addr[2]);
3083 #endif
3084 return FALSE;
3085 }
3086
3087 /* Get the MAC address */
3088 memcpy(&dev->dev_addr[0], &psa.psa_univ_mac_addr[0], WAVELAN_ADDR_SIZE);
3089
3090 #ifdef USE_PSA_CONFIG
3091 configured = psa.psa_conf_status & 1;
3092 #else
3093 configured = 0;
3094 #endif
3095
3096 /* Is the PSA is not configured */
3097 if(!configured)
3098 {
3099 /* User will be able to configure NWID after (with iwconfig) */
3100 psa.psa_nwid[0] = 0;
3101 psa.psa_nwid[1] = 0;
3102
3103 /* As NWID is not set : no NWID checking */
3104 psa.psa_nwid_select = 0;
3105
3106 /* Disable encryption */
3107 psa.psa_encryption_select = 0;
3108
3109 /* Set to standard values
3110 * 0x04 for AT,
3111 * 0x01 for MCA,
3112 * 0x04 for PCMCIA and 2.00 card (AT&T 407-024689/E document)
3113 */
3114 if (psa.psa_comp_number & 1)
3115 psa.psa_thr_pre_set = 0x01;
3116 else
3117 psa.psa_thr_pre_set = 0x04;
3118 psa.psa_quality_thr = 0x03;
3119
3120 /* It is configured */
3121 psa.psa_conf_status |= 1;
3122
3123 #ifdef USE_PSA_CONFIG
3124 /* Write the psa */
3125 psa_write(dev, (char *)psa.psa_nwid - (char *)&psa,
3126 (unsigned char *)psa.psa_nwid, 4);
3127 psa_write(dev, (char *)&psa.psa_thr_pre_set - (char *)&psa,
3128 (unsigned char *)&psa.psa_thr_pre_set, 1);
3129 psa_write(dev, (char *)&psa.psa_quality_thr - (char *)&psa,
3130 (unsigned char *)&psa.psa_quality_thr, 1);
3131 psa_write(dev, (char *)&psa.psa_conf_status - (char *)&psa,
3132 (unsigned char *)&psa.psa_conf_status, 1);
3133 /* update the Wavelan checksum */
3134 update_psa_checksum(dev);
3135 #endif /* USE_PSA_CONFIG */
3136 }
3137
3138 /* Zero the mmc structure */
3139 memset(&m, 0x00, sizeof(m));
3140
3141 /* Copy PSA info to the mmc */
3142 m.mmw_netw_id_l = psa.psa_nwid[1];
3143 m.mmw_netw_id_h = psa.psa_nwid[0];
3144
3145 if(psa.psa_nwid_select & 1)
3146 m.mmw_loopt_sel = 0x00;
3147 else
3148 m.mmw_loopt_sel = MMW_LOOPT_SEL_DIS_NWID;
3149
3150 memcpy(&m.mmw_encr_key, &psa.psa_encryption_key,
3151 sizeof(m.mmw_encr_key));
3152
3153 if(psa.psa_encryption_select)
3154 m.mmw_encr_enable = MMW_ENCR_ENABLE_EN | MMW_ENCR_ENABLE_MODE;
3155 else
3156 m.mmw_encr_enable = 0;
3157
3158 m.mmw_thr_pre_set = psa.psa_thr_pre_set & 0x3F;
3159 m.mmw_quality_thr = psa.psa_quality_thr & 0x0F;
3160
3161 /*
3162 * Set default modem control parameters.
3163 * See NCR document 407-0024326 Rev. A.
3164 */
3165 m.mmw_jabber_enable = 0x01;
3166 m.mmw_anten_sel = MMW_ANTEN_SEL_ALG_EN;
3167 m.mmw_ifs = 0x20;
3168 m.mmw_mod_delay = 0x04;
3169 m.mmw_jam_time = 0x38;
3170
3171 m.mmw_des_io_invert = 0;
3172 m.mmw_freeze = 0;
3173 m.mmw_decay_prm = 0;
3174 m.mmw_decay_updat_prm = 0;
3175
3176 /* Write all info to mmc */
3177 mmc_write(base, 0, (u_char *)&m, sizeof(m));
3178
3179 /* The following code start the modem of the 2.00 frequency
3180 * selectable cards at power on. It's not strictly needed for the
3181 * following boots...
3182 * The original patch was by Joe Finney for the PCMCIA driver, but
3183 * I've cleaned it a bit and add documentation.
3184 * Thanks to Loeke Brederveld from Lucent for the info.
3185 */
3186
3187 /* Attempt to recognise 2.00 cards (2.4 GHz frequency selectable)
3188 * (does it work for everybody ? - especially old cards...) */
3189 /* Note : WFREQSEL verify that it is able to read from EEprom
3190 * a sensible frequency (address 0x00) + that MMR_FEE_STATUS_ID
3191 * is 0xA (Xilinx version) or 0xB (Ariadne version).
3192 * My test is more crude but do work... */
3193 if(!(mmc_in(base, mmroff(0, mmr_fee_status)) &
3194 (MMR_FEE_STATUS_DWLD | MMR_FEE_STATUS_BUSY)))
3195 {
3196 /* We must download the frequency parameters to the
3197 * synthetisers (from the EEprom - area 1)
3198 * Note : as the EEprom is auto decremented, we set the end
3199 * if the area... */
3200 m.mmw_fee_addr = 0x0F;
3201 m.mmw_fee_ctrl = MMW_FEE_CTRL_READ | MMW_FEE_CTRL_DWLD;
3202 mmc_write(base, (char *)&m.mmw_fee_ctrl - (char *)&m,
3203 (unsigned char *)&m.mmw_fee_ctrl, 2);
3204
3205 /* Wait until the download is finished */
3206 fee_wait(base, 100, 100);
3207
3208 #ifdef DEBUG_CONFIG_INFO
3209 /* The frequency was in the last word downloaded... */
3210 mmc_read(base, (char *)&m.mmw_fee_data_l - (char *)&m,
3211 (unsigned char *)&m.mmw_fee_data_l, 2);
3212
3213 /* Print some info for the user */
3214 printk(KERN_DEBUG "%s: Wavelan 2.00 recognised (frequency select) : Current frequency = %ld\n",
3215 dev->name,
3216 ((m.mmw_fee_data_h << 4) |
3217 (m.mmw_fee_data_l >> 4)) * 5 / 2 + 24000L);
3218 #endif
3219
3220 /* We must now download the power adjust value (gain) to
3221 * the synthetisers (from the EEprom - area 7 - DAC) */
3222 m.mmw_fee_addr = 0x61;
3223 m.mmw_fee_ctrl = MMW_FEE_CTRL_READ | MMW_FEE_CTRL_DWLD;
3224 mmc_write(base, (char *)&m.mmw_fee_ctrl - (char *)&m,
3225 (unsigned char *)&m.mmw_fee_ctrl, 2);
3226
3227 /* Wait until the download is finished */
3228 } /* if 2.00 card */
3229
3230 #ifdef DEBUG_CONFIG_TRACE
3231 printk(KERN_DEBUG "%s: <-wv_mmc_init()\n", dev->name);
3232 #endif
3233 return TRUE;
3234 }
3235
3236 /*------------------------------------------------------------------*/
3237 /*
3238 * Routine to gracefully turn off reception, and wait for any commands
3239 * to complete.
3240 * (called in wv_ru_start() and wavelan_close() and wavelan_event())
3241 */
3242 static int
3243 wv_ru_stop(device * dev)
3244 {
3245 ioaddr_t base = dev->base_addr;
3246 net_local * lp = (net_local *) dev->priv;
3247 unsigned long flags;
3248 int status;
3249 int spin;
3250
3251 #ifdef DEBUG_CONFIG_TRACE
3252 printk(KERN_DEBUG "%s: ->wv_ru_stop()\n", dev->name);
3253 #endif
3254
3255 wv_splhi(lp, &flags);
3256
3257 /* First, send the LAN controller a stop receive command */
3258 wv_82593_cmd(dev, "wv_graceful_shutdown(): stop-rcv",
3259 OP0_STOP_RCV, SR0_NO_RESULT);
3260
3261 /* Then, spin until the receive unit goes idle */
3262 spin = 300;
3263 do
3264 {
3265 udelay(10);
3266 outb(OP0_NOP | CR0_STATUS_3, LCCR(base));
3267 status = inb(LCSR(base));
3268 }
3269 while(((status & SR3_RCV_STATE_MASK) != SR3_RCV_IDLE) && (spin-- > 0));
3270
3271 /* Now, spin until the chip finishes executing its current command */
3272 do
3273 {
3274 udelay(10);
3275 outb(OP0_NOP | CR0_STATUS_3, LCCR(base));
3276 status = inb(LCSR(base));
3277 }
3278 while(((status & SR3_EXEC_STATE_MASK) != SR3_EXEC_IDLE) && (spin-- > 0));
3279
3280 wv_splx(lp, &flags);
3281
3282 /* If there was a problem */
3283 if(spin <= 0)
3284 {
3285 #ifdef DEBUG_CONFIG_ERROR
3286 printk(KERN_INFO "%s: wv_ru_stop(): The chip doesn't want to stop...\n",
3287 dev->name);
3288 #endif
3289 return FALSE;
3290 }
3291
3292 #ifdef DEBUG_CONFIG_TRACE
3293 printk(KERN_DEBUG "%s: <-wv_ru_stop()\n", dev->name);
3294 #endif
3295 return TRUE;
3296 } /* wv_ru_stop */
3297
3298 /*------------------------------------------------------------------*/
3299 /*
3300 * This routine starts the receive unit running. First, it checks if
3301 * the card is actually ready. Then the card is instructed to receive
3302 * packets again.
3303 * (called in wv_hw_reset() & wavelan_open())
3304 */
3305 static int
3306 wv_ru_start(device * dev)
3307 {
3308 ioaddr_t base = dev->base_addr;
3309 net_local * lp = (net_local *) dev->priv;
3310 unsigned long flags;
3311
3312 #ifdef DEBUG_CONFIG_TRACE
3313 printk(KERN_DEBUG "%s: ->wv_ru_start()\n", dev->name);
3314 #endif
3315
3316 /*
3317 * We need to start from a quiescent state. To do so, we could check
3318 * if the card is already running, but instead we just try to shut
3319 * it down. First, we disable reception (in case it was already enabled).
3320 */
3321 if(!wv_ru_stop(dev))
3322 return FALSE;
3323
3324 wv_splhi(lp, &flags);
3325
3326 /* Now we know that no command is being executed. */
3327
3328 /* Set the receive frame pointer and stop pointer */
3329 lp->rfp = 0;
3330 outb(OP0_SWIT_TO_PORT_1 | CR0_CHNL, LCCR(base));
3331
3332 /* Reset ring management. This sets the receive frame pointer to 1 */
3333 outb(OP1_RESET_RING_MNGMT, LCCR(base));
3334
3335 #if 0
3336 /* XXX the i82593 manual page 6-4 seems to indicate that the stop register
3337 should be set as below */
3338 /* outb(CR1_STOP_REG_UPDATE|((RX_SIZE - 0x40)>> RX_SIZE_SHIFT),LCCR(base));*/
3339 #elif 0
3340 /* but I set it 0 instead */
3341 lp->stop = 0;
3342 #else
3343 /* but I set it to 3 bytes per packet less than 8K */
3344 lp->stop = (0 + RX_SIZE - ((RX_SIZE / 64) * 3)) % RX_SIZE;
3345 #endif
3346 outb(CR1_STOP_REG_UPDATE | (lp->stop >> RX_SIZE_SHIFT), LCCR(base));
3347 outb(OP1_INT_ENABLE, LCCR(base));
3348 outb(OP1_SWIT_TO_PORT_0, LCCR(base));
3349
3350 /* Reset receive DMA pointer */
3351 hacr_write_slow(base, HACR_PWR_STAT | HACR_TX_DMA_RESET);
3352 hacr_write_slow(base, HACR_DEFAULT);
3353
3354 /* Receive DMA on channel 1 */
3355 wv_82593_cmd(dev, "wv_ru_start(): rcv-enable",
3356 CR0_CHNL | OP0_RCV_ENABLE, SR0_NO_RESULT);
3357
3358 #ifdef DEBUG_I82593_SHOW
3359 {
3360 int status;
3361 int opri;
3362 int spin = 10000;
3363
3364 /* spin until the chip starts receiving */
3365 do
3366 {
3367 outb(OP0_NOP | CR0_STATUS_3, LCCR(base));
3368 status = inb(LCSR(base));
3369 if(spin-- <= 0)
3370 break;
3371 }
3372 while(((status & SR3_RCV_STATE_MASK) != SR3_RCV_ACTIVE) &&
3373 ((status & SR3_RCV_STATE_MASK) != SR3_RCV_READY));
3374 printk(KERN_DEBUG "rcv status is 0x%x [i:%d]\n",
3375 (status & SR3_RCV_STATE_MASK), i);
3376 }
3377 #endif
3378
3379 wv_splx(lp, &flags);
3380
3381 #ifdef DEBUG_CONFIG_TRACE
3382 printk(KERN_DEBUG "%s: <-wv_ru_start()\n", dev->name);
3383 #endif
3384 return TRUE;
3385 }
3386
3387 /*------------------------------------------------------------------*/
3388 /*
3389 * This routine does a standard config of the WaveLAN controller (i82593).
3390 * In the ISA driver, this is integrated in wavelan_hardware_reset()
3391 * (called by wv_hw_config(), wv_82593_reconfig() & wavelan_packet_xmit())
3392 */
3393 static int
3394 wv_82593_config(device * dev)
3395 {
3396 ioaddr_t base = dev->base_addr;
3397 net_local * lp = (net_local *) dev->priv;
3398 struct i82593_conf_block cfblk;
3399 int ret = TRUE;
3400
3401 #ifdef DEBUG_CONFIG_TRACE
3402 printk(KERN_DEBUG "%s: ->wv_82593_config()\n", dev->name);
3403 #endif
3404
3405 /* Create & fill i82593 config block
3406 *
3407 * Now conform to Wavelan document WCIN085B
3408 */
3409 memset(&cfblk, 0x00, sizeof(struct i82593_conf_block));
3410 cfblk.d6mod = FALSE; /* Run in i82593 advanced mode */
3411 cfblk.fifo_limit = 5; /* = 56 B rx and 40 B tx fifo thresholds */
3412 cfblk.forgnesi = FALSE; /* 0=82C501, 1=AMD7992B compatibility */
3413 cfblk.fifo_32 = 1;
3414 cfblk.throttle_enb = FALSE;
3415 cfblk.contin = TRUE; /* enable continuous mode */
3416 cfblk.cntrxint = FALSE; /* enable continuous mode receive interrupts */
3417 cfblk.addr_len = WAVELAN_ADDR_SIZE;
3418 cfblk.acloc = TRUE; /* Disable source addr insertion by i82593 */
3419 cfblk.preamb_len = 0; /* 2 bytes preamble (SFD) */
3420 cfblk.loopback = FALSE;
3421 cfblk.lin_prio = 0; /* conform to 802.3 backoff algoritm */
3422 cfblk.exp_prio = 5; /* conform to 802.3 backoff algoritm */
3423 cfblk.bof_met = 1; /* conform to 802.3 backoff algoritm */
3424 cfblk.ifrm_spc = 0x20; /* 32 bit times interframe spacing */
3425 cfblk.slottim_low = 0x20; /* 32 bit times slot time */
3426 cfblk.slottim_hi = 0x0;
3427 cfblk.max_retr = 15;
3428 cfblk.prmisc = ((lp->promiscuous) ? TRUE: FALSE); /* Promiscuous mode */
3429 cfblk.bc_dis = FALSE; /* Enable broadcast reception */
3430 cfblk.crs_1 = TRUE; /* Transmit without carrier sense */
3431 cfblk.nocrc_ins = FALSE; /* i82593 generates CRC */
3432 cfblk.crc_1632 = FALSE; /* 32-bit Autodin-II CRC */
3433 cfblk.crs_cdt = FALSE; /* CD not to be interpreted as CS */
3434 cfblk.cs_filter = 0; /* CS is recognized immediately */
3435 cfblk.crs_src = FALSE; /* External carrier sense */
3436 cfblk.cd_filter = 0; /* CD is recognized immediately */
3437 cfblk.min_fr_len = ETH_ZLEN >> 2; /* Minimum frame length 64 bytes */
3438 cfblk.lng_typ = FALSE; /* Length field > 1500 = type field */
3439 cfblk.lng_fld = TRUE; /* Disable 802.3 length field check */
3440 cfblk.rxcrc_xf = TRUE; /* Don't transfer CRC to memory */
3441 cfblk.artx = TRUE; /* Disable automatic retransmission */
3442 cfblk.sarec = TRUE; /* Disable source addr trig of CD */
3443 cfblk.tx_jabber = TRUE; /* Disable jabber jam sequence */
3444 cfblk.hash_1 = FALSE; /* Use bits 0-5 in mc address hash */
3445 cfblk.lbpkpol = TRUE; /* Loopback pin active high */
3446 cfblk.fdx = FALSE; /* Disable full duplex operation */
3447 cfblk.dummy_6 = 0x3f; /* all ones */
3448 cfblk.mult_ia = FALSE; /* No multiple individual addresses */
3449 cfblk.dis_bof = FALSE; /* Disable the backoff algorithm ?! */
3450 cfblk.dummy_1 = TRUE; /* set to 1 */
3451 cfblk.tx_ifs_retrig = 3; /* Hmm... Disabled */
3452 #ifdef MULTICAST_ALL
3453 cfblk.mc_all = (lp->allmulticast ? TRUE: FALSE); /* Allow all multicasts */
3454 #else
3455 cfblk.mc_all = FALSE; /* No multicast all mode */
3456 #endif
3457 cfblk.rcv_mon = 0; /* Monitor mode disabled */
3458 cfblk.frag_acpt = TRUE; /* Do not accept fragments */
3459 cfblk.tstrttrs = FALSE; /* No start transmission threshold */
3460 cfblk.fretx = TRUE; /* FIFO automatic retransmission */
3461 cfblk.syncrqs = FALSE; /* Synchronous DRQ deassertion... */
3462 cfblk.sttlen = TRUE; /* 6 byte status registers */
3463 cfblk.rx_eop = TRUE; /* Signal EOP on packet reception */
3464 cfblk.tx_eop = TRUE; /* Signal EOP on packet transmission */
3465 cfblk.rbuf_size = RX_SIZE>>11; /* Set receive buffer size */
3466 cfblk.rcvstop = TRUE; /* Enable Receive Stop Register */
3467
3468 #ifdef DEBUG_I82593_SHOW
3469 {
3470 u_char *c = (u_char *) &cfblk;
3471 int i;
3472 printk(KERN_DEBUG "wavelan_cs: config block:");
3473 for(i = 0; i < sizeof(struct i82593_conf_block); i++,c++)
3474 {
3475 if((i % 16) == 0) printk("\n" KERN_DEBUG);
3476 printk("%02x ", *c);
3477 }
3478 printk("\n");
3479 }
3480 #endif
3481
3482 /* Copy the config block to the i82593 */
3483 outb(TX_BASE & 0xff, PIORL(base));
3484 outb(((TX_BASE >> 8) & PIORH_MASK) | PIORH_SEL_TX, PIORH(base));
3485 outb(sizeof(struct i82593_conf_block) & 0xff, PIOP(base)); /* lsb */
3486 outb(sizeof(struct i82593_conf_block) >> 8, PIOP(base)); /* msb */
3487 outsb(PIOP(base), (char *) &cfblk, sizeof(struct i82593_conf_block));
3488
3489 /* reset transmit DMA pointer */
3490 hacr_write_slow(base, HACR_PWR_STAT | HACR_TX_DMA_RESET);
3491 hacr_write(base, HACR_DEFAULT);
3492 if(!wv_82593_cmd(dev, "wv_82593_config(): configure",
3493 OP0_CONFIGURE, SR0_CONFIGURE_DONE))
3494 ret = FALSE;
3495
3496 /* Initialize adapter's ethernet MAC address */
3497 outb(TX_BASE & 0xff, PIORL(base));
3498 outb(((TX_BASE >> 8) & PIORH_MASK) | PIORH_SEL_TX, PIORH(base));
3499 outb(WAVELAN_ADDR_SIZE, PIOP(base)); /* byte count lsb */
3500 outb(0, PIOP(base)); /* byte count msb */
3501 outsb(PIOP(base), &dev->dev_addr[0], WAVELAN_ADDR_SIZE);
3502
3503 /* reset transmit DMA pointer */
3504 hacr_write_slow(base, HACR_PWR_STAT | HACR_TX_DMA_RESET);
3505 hacr_write(base, HACR_DEFAULT);
3506 if(!wv_82593_cmd(dev, "wv_82593_config(): ia-setup",
3507 OP0_IA_SETUP, SR0_IA_SETUP_DONE))
3508 ret = FALSE;
3509
3510 #ifdef WAVELAN_ROAMING
3511 /* If roaming is enabled, join the "Beacon Request" multicast group... */
3512 /* But only if it's not in there already! */
3513 if(do_roaming)
3514 dev_mc_add(dev,WAVELAN_BEACON_ADDRESS, WAVELAN_ADDR_SIZE, 1);
3515 #endif /* WAVELAN_ROAMING */
3516
3517 /* If any multicast address to set */
3518 if(lp->mc_count)
3519 {
3520 struct dev_mc_list * dmi;
3521 int addrs_len = WAVELAN_ADDR_SIZE * lp->mc_count;
3522
3523 #ifdef DEBUG_CONFIG_INFO
3524 printk(KERN_DEBUG "%s: wv_hw_config(): set %d multicast addresses:\n",
3525 dev->name, lp->mc_count);
3526 for(dmi=dev->mc_list; dmi; dmi=dmi->next)
3527 printk(KERN_DEBUG " %02x:%02x:%02x:%02x:%02x:%02x\n",
3528 dmi->dmi_addr[0], dmi->dmi_addr[1], dmi->dmi_addr[2],
3529 dmi->dmi_addr[3], dmi->dmi_addr[4], dmi->dmi_addr[5] );
3530 #endif
3531
3532 /* Initialize adapter's ethernet multicast addresses */
3533 outb(TX_BASE & 0xff, PIORL(base));
3534 outb(((TX_BASE >> 8) & PIORH_MASK) | PIORH_SEL_TX, PIORH(base));
3535 outb(addrs_len & 0xff, PIOP(base)); /* byte count lsb */
3536 outb((addrs_len >> 8), PIOP(base)); /* byte count msb */
3537 for(dmi=dev->mc_list; dmi; dmi=dmi->next)
3538 outsb(PIOP(base), dmi->dmi_addr, dmi->dmi_addrlen);
3539
3540 /* reset transmit DMA pointer */
3541 hacr_write_slow(base, HACR_PWR_STAT | HACR_TX_DMA_RESET);
3542 hacr_write(base, HACR_DEFAULT);
3543 if(!wv_82593_cmd(dev, "wv_82593_config(): mc-setup",
3544 OP0_MC_SETUP, SR0_MC_SETUP_DONE))
3545 ret = FALSE;
3546 lp->mc_count = dev->mc_count; /* remember to avoid repeated reset */
3547 }
3548
3549 /* Job done, clear the flag */
3550 lp->reconfig_82593 = FALSE;
3551
3552 #ifdef DEBUG_CONFIG_TRACE
3553 printk(KERN_DEBUG "%s: <-wv_82593_config()\n", dev->name);
3554 #endif
3555 return(ret);
3556 }
3557
3558 /*------------------------------------------------------------------*/
3559 /*
3560 * Read the Access Configuration Register, perform a software reset,
3561 * and then re-enable the card's software.
3562 *
3563 * If I understand correctly : reset the pcmcia interface of the
3564 * wavelan.
3565 * (called by wv_config())
3566 */
3567 static inline int
3568 wv_pcmcia_reset(device * dev)
3569 {
3570 int i;
3571 conf_reg_t reg = { 0, CS_READ, CISREG_COR, 0 };
3572 dev_link_t * link = ((net_local *) dev->priv)->link;
3573
3574 #ifdef DEBUG_CONFIG_TRACE
3575 printk(KERN_DEBUG "%s: ->wv_pcmcia_reset()\n", dev->name);
3576 #endif
3577
3578 i = CardServices(AccessConfigurationRegister, link->handle, ®);
3579 if(i != CS_SUCCESS)
3580 {
3581 cs_error(link->handle, AccessConfigurationRegister, i);
3582 return FALSE;
3583 }
3584
3585 #ifdef DEBUG_CONFIG_INFO
3586 printk(KERN_DEBUG "%s: wavelan_pcmcia_reset(): Config reg is 0x%x\n",
3587 dev->name, (u_int) reg.Value);
3588 #endif
3589
3590 reg.Action = CS_WRITE;
3591 reg.Value = reg.Value | COR_SW_RESET;
3592 i = CardServices(AccessConfigurationRegister, link->handle, ®);
3593 if(i != CS_SUCCESS)
3594 {
3595 cs_error(link->handle, AccessConfigurationRegister, i);
3596 return FALSE;
3597 }
3598
3599 reg.Action = CS_WRITE;
3600 reg.Value = COR_LEVEL_IRQ | COR_CONFIG;
3601 i = CardServices(AccessConfigurationRegister, link->handle, ®);
3602 if(i != CS_SUCCESS)
3603 {
3604 cs_error(link->handle, AccessConfigurationRegister, i);
3605 return FALSE;
3606 }
3607
3608 #ifdef DEBUG_CONFIG_TRACE
3609 printk(KERN_DEBUG "%s: <-wv_pcmcia_reset()\n", dev->name);
3610 #endif
3611 return TRUE;
3612 }
3613
3614 /*------------------------------------------------------------------*/
3615 /*
3616 * wavelan_hw_config() is called after a CARD_INSERTION event is
3617 * received, to configure the wavelan hardware.
3618 * Note that the reception will be enabled in wavelan->open(), so the
3619 * device is configured but idle...
3620 * Performs the following actions:
3621 * 1. A pcmcia software reset (using wv_pcmcia_reset())
3622 * 2. A power reset (reset DMA)
3623 * 3. Reset the LAN controller
3624 * 4. Initialize the radio modem (using wv_mmc_init)
3625 * 5. Configure LAN controller (using wv_82593_config)
3626 * 6. Perform a diagnostic on the LAN controller
3627 * (called by wavelan_event() & wv_hw_reset())
3628 */
3629 static int
3630 wv_hw_config(device * dev)
3631 {
3632 net_local * lp = (net_local *) dev->priv;
3633 ioaddr_t base = dev->base_addr;
3634 unsigned long flags;
3635 int ret = FALSE;
3636
3637 #ifdef DEBUG_CONFIG_TRACE
3638 printk(KERN_DEBUG "%s: ->wv_hw_config()\n", dev->name);
3639 #endif
3640
3641 #ifdef STRUCT_CHECK
3642 if(wv_structuct_check() != (char *) NULL)
3643 {
3644 printk(KERN_WARNING "%s: wv_hw_config: structure/compiler botch: \"%s\"\n",
3645 dev->name, wv_structuct_check());
3646 return FALSE;
3647 }
3648 #endif /* STRUCT_CHECK == 1 */
3649
3650 /* Reset the pcmcia interface */
3651 if(wv_pcmcia_reset(dev) == FALSE)
3652 return FALSE;
3653
3654 /* Disable interrupts */
3655 wv_splhi(lp, &flags);
3656
3657 /* Disguised goto ;-) */
3658 do
3659 {
3660 /* Power UP the module + reset the modem + reset host adapter
3661 * (in fact, reset DMA channels) */
3662 hacr_write_slow(base, HACR_RESET);
3663 hacr_write(base, HACR_DEFAULT);
3664
3665 /* Check if the module has been powered up... */
3666 if(hasr_read(base) & HASR_NO_CLK)
3667 {
3668 #ifdef DEBUG_CONFIG_ERRORS
3669 printk(KERN_WARNING "%s: wv_hw_config(): modem not connected or not a wavelan card\n",
3670 dev->name);
3671 #endif
3672 break;
3673 }
3674
3675 /* initialize the modem */
3676 if(wv_mmc_init(dev) == FALSE)
3677 {
3678 #ifdef DEBUG_CONFIG_ERRORS
3679 printk(KERN_WARNING "%s: wv_hw_config(): Can't configure the modem\n",
3680 dev->name);
3681 #endif
3682 break;
3683 }
3684
3685 /* reset the LAN controller (i82593) */
3686 outb(OP0_RESET, LCCR(base));
3687 mdelay(1); /* A bit crude ! */
3688
3689 /* Initialize the LAN controller */
3690 if(wv_82593_config(dev) == FALSE)
3691 {
3692 #ifdef DEBUG_CONFIG_ERRORS
3693 printk(KERN_INFO "%s: wv_hw_config(): i82593 init failed\n",
3694 dev->name);
3695 #endif
3696 break;
3697 }
3698
3699 /* Diagnostic */
3700 if(wv_diag(dev) == FALSE)
3701 {
3702 #ifdef DEBUG_CONFIG_ERRORS
3703 printk(KERN_INFO "%s: wv_hw_config(): i82593 diagnostic failed\n",
3704 dev->name);
3705 #endif
3706 break;
3707 }
3708
3709 /*
3710 * insert code for loopback test here
3711 */
3712
3713 /* The device is now configured */
3714 lp->configured = 1;
3715 ret = TRUE;
3716 }
3717 while(0);
3718
3719 /* Re-enable interrupts */
3720 wv_splx(lp, &flags);
3721
3722 #ifdef DEBUG_CONFIG_TRACE
3723 printk(KERN_DEBUG "%s: <-wv_hw_config()\n", dev->name);
3724 #endif
3725 return(ret);
3726 }
3727
3728 /*------------------------------------------------------------------*/
3729 /*
3730 * Totally reset the wavelan and restart it.
3731 * Performs the following actions:
3732 * 1. Call wv_hw_config()
3733 * 2. Start the LAN controller's receive unit
3734 * (called by wavelan_event(), wavelan_watchdog() and wavelan_open())
3735 */
3736 static inline void
3737 wv_hw_reset(device * dev)
3738 {
3739 net_local * lp = (net_local *) dev->priv;
3740
3741 #ifdef DEBUG_CONFIG_TRACE
3742 printk(KERN_DEBUG "%s: ->wv_hw_reset()\n", dev->name);
3743 #endif
3744
3745 lp->nresets++;
3746 lp->configured = 0;
3747
3748 /* Call wv_hw_config() for most of the reset & init stuff */
3749 if(wv_hw_config(dev) == FALSE)
3750 return;
3751
3752 /* start receive unit */
3753 wv_ru_start(dev);
3754
3755 #ifdef DEBUG_CONFIG_TRACE
3756 printk(KERN_DEBUG "%s: <-wv_hw_reset()\n", dev->name);
3757 #endif
3758 }
3759
3760 /*------------------------------------------------------------------*/
3761 /*
3762 * wv_pcmcia_config() is called after a CARD_INSERTION event is
3763 * received, to configure the PCMCIA socket, and to make the ethernet
3764 * device available to the system.
3765 * (called by wavelan_event())
3766 */
3767 static inline int
3768 wv_pcmcia_config(dev_link_t * link)
3769 {
3770 client_handle_t handle;
3771 tuple_t tuple;
3772 cisparse_t parse;
3773 struct net_device * dev;
3774 int i;
3775 u_char buf[64];
3776 win_req_t req;
3777 memreq_t mem;
3778
3779 handle = link->handle;
3780 dev = (device *) link->priv;
3781
3782 #ifdef DEBUG_CONFIG_TRACE
3783 printk(KERN_DEBUG "->wv_pcmcia_config(0x%p)\n", link);
3784 #endif
3785
3786 /*
3787 * This reads the card's CONFIG tuple to find its configuration
3788 * registers.
3789 */
3790 do
3791 {
3792 tuple.Attributes = 0;
3793 tuple.DesiredTuple = CISTPL_CONFIG;
3794 i = CardServices(GetFirstTuple, handle, &tuple);
3795 if(i != CS_SUCCESS)
3796 break;
3797 tuple.TupleData = (cisdata_t *)buf;
3798 tuple.TupleDataMax = 64;
3799 tuple.TupleOffset = 0;
3800 i = CardServices(GetTupleData, handle, &tuple);
3801 if(i != CS_SUCCESS)
3802 break;
3803 i = CardServices(ParseTuple, handle, &tuple, &parse);
3804 if(i != CS_SUCCESS)
3805 break;
3806 link->conf.ConfigBase = parse.config.base;
3807 link->conf.Present = parse.config.rmask[0];
3808 }
3809 while(0);
3810 if(i != CS_SUCCESS)
3811 {
3812 cs_error(link->handle, ParseTuple, i);
3813 link->state &= ~DEV_CONFIG_PENDING;
3814 return FALSE;
3815 }
3816
3817 /* Configure card */
3818 link->state |= DEV_CONFIG;
3819 do
3820 {
3821 i = CardServices(RequestIO, link->handle, &link->io);
3822 if(i != CS_SUCCESS)
3823 {
3824 cs_error(link->handle, RequestIO, i);
3825 break;
3826 }
3827
3828 /*
3829 * Now allocate an interrupt line. Note that this does not
3830 * actually assign a handler to the interrupt.
3831 */
3832 i = CardServices(RequestIRQ, link->handle, &link->irq);
3833 if(i != CS_SUCCESS)
3834 {
3835 cs_error(link->handle, RequestIRQ, i);
3836 break;
3837 }
3838
3839 /*
3840 * This actually configures the PCMCIA socket -- setting up
3841 * the I/O windows and the interrupt mapping.
3842 */
3843 link->conf.ConfigIndex = 1;
3844 i = CardServices(RequestConfiguration, link->handle, &link->conf);
3845 if(i != CS_SUCCESS)
3846 {
3847 cs_error(link->handle, RequestConfiguration, i);
3848 break;
3849 }
3850
3851 /*
3852 * Allocate a small memory window. Note that the dev_link_t
3853 * structure provides space for one window handle -- if your
3854 * device needs several windows, you'll need to keep track of
3855 * the handles in your private data structure, link->priv.
3856 */
3857 req.Attributes = WIN_DATA_WIDTH_8|WIN_MEMORY_TYPE_AM|WIN_ENABLE;
3858 req.Base = req.Size = 0;
3859 req.AccessSpeed = mem_speed;
3860 link->win = (window_handle_t)link->handle;
3861 i = CardServices(RequestWindow, &link->win, &req);
3862 if(i != CS_SUCCESS)
3863 {
3864 cs_error(link->handle, RequestWindow, i);
3865 break;
3866 }
3867
3868 dev->rmem_start = dev->mem_start =
3869 (u_long)ioremap(req.Base, req.Size);
3870 dev->rmem_end = dev->mem_end = dev->mem_start + req.Size;
3871
3872 mem.CardOffset = 0; mem.Page = 0;
3873 i = CardServices(MapMemPage, link->win, &mem);
3874 if(i != CS_SUCCESS)
3875 {
3876 cs_error(link->handle, MapMemPage, i);
3877 break;
3878 }
3879
3880 /* Feed device with this info... */
3881 dev->irq = link->irq.AssignedIRQ;
3882 dev->base_addr = link->io.BasePort1;
3883 netif_start_queue(dev);
3884
3885 #ifdef DEBUG_CONFIG_INFO
3886 printk(KERN_DEBUG "wv_pcmcia_config: MEMSTART 0x%x IRQ %d IOPORT 0x%x\n",
3887 (u_int) dev->mem_start, dev->irq, (u_int) dev->base_addr);
3888 #endif
3889
3890 i = register_netdev(dev);
3891 if(i != 0)
3892 {
3893 #ifdef DEBUG_CONFIG_ERRORS
3894 printk(KERN_INFO "wv_pcmcia_config(): register_netdev() failed\n");
3895 #endif
3896 break;
3897 }
3898 }
3899 while(0); /* Humm... Disguised goto !!! */
3900
3901 link->state &= ~DEV_CONFIG_PENDING;
3902 /* If any step failed, release any partially configured state */
3903 if(i != 0)
3904 {
3905 wv_pcmcia_release((u_long) link);
3906 return FALSE;
3907 }
3908
3909 strcpy(((net_local *) dev->priv)->node.dev_name, dev->name);
3910 link->dev = &((net_local *) dev->priv)->node;
3911
3912 #ifdef DEBUG_CONFIG_TRACE
3913 printk(KERN_DEBUG "<-wv_pcmcia_config()\n");
3914 #endif
3915 return TRUE;
3916 }
3917
3918 /*------------------------------------------------------------------*/
3919 /*
3920 * After a card is removed, wv_pcmcia_release() will unregister the net
3921 * device, and release the PCMCIA configuration. If the device is
3922 * still open, this will be postponed until it is closed.
3923 */
3924 static void
3925 wv_pcmcia_release(u_long arg) /* Address of the interface struct */
3926 {
3927 dev_link_t * link = (dev_link_t *) arg;
3928 device * dev = (device *) link->priv;
3929
3930 #ifdef DEBUG_CONFIG_TRACE
3931 printk(KERN_DEBUG "%s: -> wv_pcmcia_release(0x%p)\n", dev->name, link);
3932 #endif
3933
3934 /* If the device is currently in use, we won't release until it is
3935 * actually closed. */
3936 if(link->open)
3937 {
3938 #ifdef DEBUG_CONFIG_INFO
3939 printk(KERN_DEBUG "%s: wv_pcmcia_release: release postponed, device still open\n",
3940 dev->name);
3941 #endif
3942 link->state |= DEV_STALE_CONFIG;
3943 return;
3944 }
3945
3946 /* Don't bother checking to see if these succeed or not */
3947 iounmap((u_char *)dev->mem_start);
3948 CardServices(ReleaseWindow, link->win);
3949 CardServices(ReleaseConfiguration, link->handle);
3950 CardServices(ReleaseIO, link->handle, &link->io);
3951 CardServices(ReleaseIRQ, link->handle, &link->irq);
3952
3953 link->state &= ~(DEV_CONFIG | DEV_STALE_CONFIG);
3954
3955 #ifdef DEBUG_CONFIG_TRACE
3956 printk(KERN_DEBUG "%s: <- wv_pcmcia_release()\n", dev->name);
3957 #endif
3958 } /* wv_pcmcia_release */
3959
3960 /*------------------------------------------------------------------*/
3961 /*
3962 * Sometimes, wavelan_detach can't be performed following a call from
3963 * cardmgr (device still open, pcmcia_release not done) and the device
3964 * is put in a STALE_LINK state and remains in memory.
3965 *
3966 * This function run through our current list of device and attempt
3967 * another time to remove them. We hope that since last time the
3968 * device has properly been closed.
3969 *
3970 * (called by wavelan_attach() & cleanup_module())
3971 */
3972 static void
3973 wv_flush_stale_links(void)
3974 {
3975 dev_link_t * link; /* Current node in linked list */
3976 dev_link_t * next; /* Next node in linked list */
3977
3978 #ifdef DEBUG_CONFIG_TRACE
3979 printk(KERN_DEBUG "-> wv_flush_stale_links(0x%p)\n", dev_list);
3980 #endif
3981
3982 /* Go through the list */
3983 for (link = dev_list; link; link = next)
3984 {
3985 next = link->next;
3986
3987 /* Check if in need of being removed */
3988 if((link->state & DEV_STALE_LINK) ||
3989 (! (link->state & DEV_PRESENT)))
3990 wavelan_detach(link);
3991
3992 }
3993
3994 #ifdef DEBUG_CONFIG_TRACE
3995 printk(KERN_DEBUG "<- wv_flush_stale_links()\n");
3996 #endif
3997 }
3998
3999 /************************ INTERRUPT HANDLING ************************/
4000
4001 /*
4002 * This function is the interrupt handler for the WaveLAN card. This
4003 * routine will be called whenever:
4004 * 1. A packet is received.
4005 * 2. A packet has successfully been transferred and the unit is
4006 * ready to transmit another packet.
4007 * 3. A command has completed execution.
4008 */
4009 static void
4010 wavelan_interrupt(int irq,
4011 void * dev_id,
4012 struct pt_regs * regs)
4013 {
4014 device * dev;
4015 net_local * lp;
4016 ioaddr_t base;
4017 int status0;
4018 u_int tx_status;
4019
4020 if((dev = (device *)dev_id) == (device *) NULL)
4021 {
4022 #ifdef DEBUG_INTERRUPT_ERROR
4023 printk(KERN_WARNING "wavelan_interrupt(): irq %d for unknown device.\n",
4024 irq);
4025 #endif
4026 return;
4027 }
4028
4029 #ifdef DEBUG_INTERRUPT_TRACE
4030 printk(KERN_DEBUG "%s: ->wavelan_interrupt()\n", dev->name);
4031 #endif
4032
4033 lp = (net_local *) dev->priv;
4034 base = dev->base_addr;
4035
4036 #ifdef DEBUG_INTERRUPT_INFO
4037 /* Check state of our spinlock (it should be cleared) */
4038 if(spin_is_locked(&lp->spinlock))
4039 printk(KERN_DEBUG
4040 "%s: wavelan_interrupt(): spinlock is already locked !!!\n",
4041 dev->name);
4042 #endif
4043
4044 /* Prevent reentrancy. We need to do that because we may have
4045 * multiple interrupt handler running concurently.
4046 * It is safe because wv_splhi() disable interrupts before aquiring
4047 * the spinlock. */
4048 spin_lock(&lp->spinlock);
4049
4050 /* Treat all pending interrupts */
4051 while(1)
4052 {
4053 /* ---------------- INTERRUPT CHECKING ---------------- */
4054 /*
4055 * Look for the interrupt and verify the validity
4056 */
4057 outb(CR0_STATUS_0 | OP0_NOP, LCCR(base));
4058 status0 = inb(LCSR(base));
4059
4060 #ifdef DEBUG_INTERRUPT_INFO
4061 printk(KERN_DEBUG "status0 0x%x [%s => 0x%x]", status0,
4062 (status0&SR0_INTERRUPT)?"int":"no int",status0&~SR0_INTERRUPT);
4063 if(status0&SR0_INTERRUPT)
4064 {
4065 printk(" [%s => %d]\n", (status0 & SR0_CHNL) ? "chnl" :
4066 ((status0 & SR0_EXECUTION) ? "cmd" :
4067 ((status0 & SR0_RECEPTION) ? "recv" : "unknown")),
4068 (status0 & SR0_EVENT_MASK));
4069 }
4070 else
4071 printk("\n");
4072 #endif
4073
4074 /* Return if no actual interrupt from i82593 (normal exit) */
4075 if(!(status0 & SR0_INTERRUPT))
4076 break;
4077
4078 /* If interrupt is both Rx and Tx or none...
4079 * This code in fact is there to catch the spurious interrupt
4080 * when you remove the wavelan pcmcia card from the socket */
4081 if(((status0 & SR0_BOTH_RX_TX) == SR0_BOTH_RX_TX) ||
4082 ((status0 & SR0_BOTH_RX_TX) == 0x0))
4083 {
4084 #ifdef DEBUG_INTERRUPT_INFO
4085 printk(KERN_INFO "%s: wv_interrupt(): bogus interrupt (or from dead card) : %X\n",
4086 dev->name, status0);
4087 #endif
4088 /* Acknowledge the interrupt */
4089 outb(CR0_INT_ACK | OP0_NOP, LCCR(base));
4090 break;
4091 }
4092
4093 /* ----------------- RECEIVING PACKET ----------------- */
4094 /*
4095 * When the wavelan signal the reception of a new packet,
4096 * we call wv_packet_rcv() to copy if from the buffer and
4097 * send it to NET3
4098 */
4099 if(status0 & SR0_RECEPTION)
4100 {
4101 #ifdef DEBUG_INTERRUPT_INFO
4102 printk(KERN_DEBUG "%s: wv_interrupt(): receive\n", dev->name);
4103 #endif
4104
4105 if((status0 & SR0_EVENT_MASK) == SR0_STOP_REG_HIT)
4106 {
4107 #ifdef DEBUG_INTERRUPT_ERROR
4108 printk(KERN_INFO "%s: wv_interrupt(): receive buffer overflow\n",
4109 dev->name);
4110 #endif
4111 lp->stats.rx_over_errors++;
4112 lp->overrunning = 1;
4113 }
4114
4115 /* Get the packet */
4116 wv_packet_rcv(dev);
4117 lp->overrunning = 0;
4118
4119 /* Acknowledge the interrupt */
4120 outb(CR0_INT_ACK | OP0_NOP, LCCR(base));
4121 continue;
4122 }
4123
4124 /* ---------------- COMMAND COMPLETION ---------------- */
4125 /*
4126 * Interrupts issued when the i82593 has completed a command.
4127 * Most likely : transmission done
4128 */
4129
4130 /* If a transmission has been done */
4131 if((status0 & SR0_EVENT_MASK) == SR0_TRANSMIT_DONE ||
4132 (status0 & SR0_EVENT_MASK) == SR0_RETRANSMIT_DONE ||
4133 (status0 & SR0_EVENT_MASK) == SR0_TRANSMIT_NO_CRC_DONE)
4134 {
4135 #ifdef DEBUG_TX_ERROR
4136 if((status0 & SR0_EVENT_MASK) == SR0_TRANSMIT_NO_CRC_DONE)
4137 printk(KERN_INFO "%s: wv_interrupt(): packet transmitted without CRC.\n",
4138 dev->name);
4139 #endif
4140
4141 /* Get transmission status */
4142 tx_status = inb(LCSR(base));
4143 tx_status |= (inb(LCSR(base)) << 8);
4144 #ifdef DEBUG_INTERRUPT_INFO
4145 printk(KERN_DEBUG "%s: wv_interrupt(): transmission done\n",
4146 dev->name);
4147 {
4148 u_int rcv_bytes;
4149 u_char status3;
4150 rcv_bytes = inb(LCSR(base));
4151 rcv_bytes |= (inb(LCSR(base)) << 8);
4152 status3 = inb(LCSR(base));
4153 printk(KERN_DEBUG "tx_status 0x%02x rcv_bytes 0x%02x status3 0x%x\n",
4154 tx_status, rcv_bytes, (u_int) status3);
4155 }
4156 #endif
4157 /* Check for possible errors */
4158 if((tx_status & TX_OK) != TX_OK)
4159 {
4160 lp->stats.tx_errors++;
4161
4162 if(tx_status & TX_FRTL)
4163 {
4164 #ifdef DEBUG_TX_ERROR
4165 printk(KERN_INFO "%s: wv_interrupt(): frame too long\n",
4166 dev->name);
4167 #endif
4168 }
4169 if(tx_status & TX_UND_RUN)
4170 {
4171 #ifdef DEBUG_TX_FAIL
4172 printk(KERN_DEBUG "%s: wv_interrupt(): DMA underrun\n",
4173 dev->name);
4174 #endif
4175 lp->stats.tx_aborted_errors++;
4176 }
4177 if(tx_status & TX_LOST_CTS)
4178 {
4179 #ifdef DEBUG_TX_FAIL
4180 printk(KERN_DEBUG "%s: wv_interrupt(): no CTS\n", dev->name);
4181 #endif
4182 lp->stats.tx_carrier_errors++;
4183 }
4184 if(tx_status & TX_LOST_CRS)
4185 {
4186 #ifdef DEBUG_TX_FAIL
4187 printk(KERN_DEBUG "%s: wv_interrupt(): no carrier\n",
4188 dev->name);
4189 #endif
4190 lp->stats.tx_carrier_errors++;
4191 }
4192 if(tx_status & TX_HRT_BEAT)
4193 {
4194 #ifdef DEBUG_TX_FAIL
4195 printk(KERN_DEBUG "%s: wv_interrupt(): heart beat\n", dev->name);
4196 #endif
4197 lp->stats.tx_heartbeat_errors++;
4198 }
4199 if(tx_status & TX_DEFER)
4200 {
4201 #ifdef DEBUG_TX_FAIL
4202 printk(KERN_DEBUG "%s: wv_interrupt(): channel jammed\n",
4203 dev->name);
4204 #endif
4205 }
4206 /* Ignore late collisions since they're more likely to happen
4207 * here (the WaveLAN design prevents the LAN controller from
4208 * receiving while it is transmitting). We take action only when
4209 * the maximum retransmit attempts is exceeded.
4210 */
4211 if(tx_status & TX_COLL)
4212 {
4213 if(tx_status & TX_MAX_COL)
4214 {
4215 #ifdef DEBUG_TX_FAIL
4216 printk(KERN_DEBUG "%s: wv_interrupt(): channel congestion\n",
4217 dev->name);
4218 #endif
4219 if(!(tx_status & TX_NCOL_MASK))
4220 {
4221 lp->stats.collisions += 0x10;
4222 }
4223 }
4224 }
4225 } /* if(!(tx_status & TX_OK)) */
4226
4227 lp->stats.collisions += (tx_status & TX_NCOL_MASK);
4228 lp->stats.tx_packets++;
4229
4230 netif_wake_queue(dev);
4231 outb(CR0_INT_ACK | OP0_NOP, LCCR(base)); /* Acknowledge the interrupt */
4232 }
4233 else /* if interrupt = transmit done or retransmit done */
4234 {
4235 #ifdef DEBUG_INTERRUPT_ERROR
4236 printk(KERN_INFO "wavelan_cs: unknown interrupt, status0 = %02x\n",
4237 status0);
4238 #endif
4239 outb(CR0_INT_ACK | OP0_NOP, LCCR(base)); /* Acknowledge the interrupt */
4240 }
4241 } /* while(1) */
4242
4243 spin_unlock(&lp->spinlock);
4244
4245 #ifdef DEBUG_INTERRUPT_TRACE
4246 printk(KERN_DEBUG "%s: <-wavelan_interrupt()\n", dev->name);
4247 #endif
4248 } /* wv_interrupt */
4249
4250 /*------------------------------------------------------------------*/
4251 /*
4252 * Watchdog: when we start a transmission, a timer is set for us in the
4253 * kernel. If the transmission completes, this timer is disabled. If
4254 * the timer expires, we are called and we try to unlock the hardware.
4255 *
4256 * Note : This watchdog is move clever than the one in the ISA driver,
4257 * because it try to abort the current command before reseting
4258 * everything...
4259 * On the other hand, it's a bit simpler, because we don't have to
4260 * deal with the multiple Tx buffers...
4261 */
4262 static void
4263 wavelan_watchdog(device * dev)
4264 {
4265 net_local * lp = (net_local *) dev->priv;
4266 ioaddr_t base = dev->base_addr;
4267 unsigned long flags;
4268 int aborted = FALSE;
4269
4270 #ifdef DEBUG_INTERRUPT_TRACE
4271 printk(KERN_DEBUG "%s: ->wavelan_watchdog()\n", dev->name);
4272 #endif
4273
4274 #ifdef DEBUG_INTERRUPT_ERROR
4275 printk(KERN_INFO "%s: wavelan_watchdog: watchdog timer expired\n",
4276 dev->name);
4277 #endif
4278
4279 wv_splhi(lp, &flags);
4280
4281 /* Ask to abort the current command */
4282 outb(OP0_ABORT, LCCR(base));
4283
4284 /* Wait for the end of the command (a bit hackish) */
4285 if(wv_82593_cmd(dev, "wavelan_watchdog(): abort",
4286 OP0_NOP | CR0_STATUS_3, SR0_EXECUTION_ABORTED))
4287 aborted = TRUE;
4288
4289 /* Release spinlock here so that wv_hw_reset() can grab it */
4290 wv_splx(lp, &flags);
4291
4292 /* Check if we were successful in aborting it */
4293 if(!aborted)
4294 {
4295 /* It seem that it wasn't enough */
4296 #ifdef DEBUG_INTERRUPT_ERROR
4297 printk(KERN_INFO "%s: wavelan_watchdog: abort failed, trying reset\n",
4298 dev->name);
4299 #endif
4300 wv_hw_reset(dev);
4301 }
4302
4303 #ifdef DEBUG_PSA_SHOW
4304 {
4305 psa_t psa;
4306 psa_read(dev, 0, (unsigned char *) &psa, sizeof(psa));
4307 wv_psa_show(&psa);
4308 }
4309 #endif
4310 #ifdef DEBUG_MMC_SHOW
4311 wv_mmc_show(dev);
4312 #endif
4313 #ifdef DEBUG_I82593_SHOW
4314 wv_ru_show(dev);
4315 #endif
4316
4317 /* We are no more waiting for something... */
4318 netif_wake_queue(dev);
4319
4320 #ifdef DEBUG_INTERRUPT_TRACE
4321 printk(KERN_DEBUG "%s: <-wavelan_watchdog()\n", dev->name);
4322 #endif
4323 }
4324
4325 /********************* CONFIGURATION CALLBACKS *********************/
4326 /*
4327 * Here are the functions called by the pcmcia package (cardmgr) and
4328 * linux networking (NET3) for initialization, configuration and
4329 * deinstallations of the Wavelan Pcmcia Hardware.
4330 */
4331
4332 /*------------------------------------------------------------------*/
4333 /*
4334 * Configure and start up the WaveLAN PCMCIA adaptor.
4335 * Called by NET3 when it "open" the device.
4336 */
4337 static int
4338 wavelan_open(device * dev)
4339 {
4340 dev_link_t * link = ((net_local *) dev->priv)->link;
4341 net_local * lp = (net_local *)dev->priv;
4342 ioaddr_t base = dev->base_addr;
4343
4344 #ifdef DEBUG_CALLBACK_TRACE
4345 printk(KERN_DEBUG "%s: ->wavelan_open(dev=0x%x)\n", dev->name,
4346 (unsigned int) dev);
4347 #endif
4348
4349 /* Check if the modem is powered up (wavelan_close() power it down */
4350 if(hasr_read(base) & HASR_NO_CLK)
4351 {
4352 /* Power up (power up time is 250us) */
4353 hacr_write(base, HACR_DEFAULT);
4354
4355 /* Check if the module has been powered up... */
4356 if(hasr_read(base) & HASR_NO_CLK)
4357 {
4358 #ifdef DEBUG_CONFIG_ERRORS
4359 printk(KERN_WARNING "%s: wavelan_open(): modem not connected\n",
4360 dev->name);
4361 #endif
4362 return FALSE;
4363 }
4364 }
4365
4366 /* Start reception and declare the driver ready */
4367 if(!lp->configured)
4368 return FALSE;
4369 if(!wv_ru_start(dev))
4370 wv_hw_reset(dev); /* If problem : reset */
4371 netif_start_queue(dev);
4372
4373 /* Mark the device as used */
4374 link->open++;
4375 MOD_INC_USE_COUNT;
4376
4377 #ifdef WAVELAN_ROAMING
4378 if(do_roaming)
4379 wv_roam_init(dev);
4380 #endif /* WAVELAN_ROAMING */
4381
4382 #ifdef DEBUG_CALLBACK_TRACE
4383 printk(KERN_DEBUG "%s: <-wavelan_open()\n", dev->name);
4384 #endif
4385 return 0;
4386 }
4387
4388 /*------------------------------------------------------------------*/
4389 /*
4390 * Shutdown the WaveLAN PCMCIA adaptor.
4391 * Called by NET3 when it "close" the device.
4392 */
4393 static int
4394 wavelan_close(device * dev)
4395 {
4396 dev_link_t * link = ((net_local *) dev->priv)->link;
4397 ioaddr_t base = dev->base_addr;
4398
4399 #ifdef DEBUG_CALLBACK_TRACE
4400 printk(KERN_DEBUG "%s: ->wavelan_close(dev=0x%x)\n", dev->name,
4401 (unsigned int) dev);
4402 #endif
4403
4404 /* If the device isn't open, then nothing to do */
4405 if(!link->open)
4406 {
4407 #ifdef DEBUG_CONFIG_INFO
4408 printk(KERN_DEBUG "%s: wavelan_close(): device not open\n", dev->name);
4409 #endif
4410 return 0;
4411 }
4412
4413 #ifdef WAVELAN_ROAMING
4414 /* Cleanup of roaming stuff... */
4415 if(do_roaming)
4416 wv_roam_cleanup(dev);
4417 #endif /* WAVELAN_ROAMING */
4418
4419 link->open--;
4420 MOD_DEC_USE_COUNT;
4421
4422 /* If the card is still present */
4423 if(netif_running(dev))
4424 {
4425 netif_stop_queue(dev);
4426
4427 /* Stop receiving new messages and wait end of transmission */
4428 wv_ru_stop(dev);
4429
4430 /* Power down the module */
4431 hacr_write(base, HACR_DEFAULT & (~HACR_PWR_STAT));
4432 }
4433 else
4434 /* The card is no more there (flag is activated in wv_pcmcia_release) */
4435 if(link->state & DEV_STALE_CONFIG)
4436 wv_pcmcia_release((u_long)link);
4437
4438 #ifdef DEBUG_CALLBACK_TRACE
4439 printk(KERN_DEBUG "%s: <-wavelan_close()\n", dev->name);
4440 #endif
4441 return 0;
4442 }
4443
4444 /*------------------------------------------------------------------*/
4445 /*
4446 * wavelan_attach() creates an "instance" of the driver, allocating
4447 * local data structures for one device (one interface). The device
4448 * is registered with Card Services.
4449 *
4450 * The dev_link structure is initialized, but we don't actually
4451 * configure the card at this point -- we wait until we receive a
4452 * card insertion event.
4453 */
4454 static dev_link_t *
4455 wavelan_attach(void)
4456 {
4457 client_reg_t client_reg; /* Register with cardmgr */
4458 dev_link_t * link; /* Info for cardmgr */
4459 device * dev; /* Interface generic data */
4460 net_local * lp; /* Interface specific data */
4461 int i, ret;
4462
4463 #ifdef DEBUG_CALLBACK_TRACE
4464 printk(KERN_DEBUG "-> wavelan_attach()\n");
4465 #endif
4466
4467 /* Perform some cleanup */
4468 wv_flush_stale_links();
4469
4470 /* Initialize the dev_link_t structure */
4471 link = kmalloc(sizeof(struct dev_link_t), GFP_KERNEL);
4472 if (!link) return NULL;
4473 memset(link, 0, sizeof(struct dev_link_t));
4474
4475 /* Unused for the Wavelan */
4476 link->release.function = &wv_pcmcia_release;
4477 link->release.data = (u_long) link;
4478
4479 /* The io structure describes IO port mapping */
4480 link->io.NumPorts1 = 8;
4481 link->io.Attributes1 = IO_DATA_PATH_WIDTH_8;
4482 link->io.IOAddrLines = 3;
4483
4484 /* Interrupt setup */
4485 link->irq.Attributes = IRQ_TYPE_EXCLUSIVE | IRQ_HANDLE_PRESENT;
4486 link->irq.IRQInfo1 = IRQ_INFO2_VALID | IRQ_LEVEL_ID;
4487 if (irq_list[0] == -1)
4488 link->irq.IRQInfo2 = irq_mask;
4489 else
4490 for (i = 0; i < 4; i++)
4491 link->irq.IRQInfo2 |= 1 << irq_list[i];
4492 link->irq.Handler = wavelan_interrupt;
4493
4494 /* General socket configuration */
4495 link->conf.Attributes = CONF_ENABLE_IRQ;
4496 link->conf.Vcc = 50;
4497 link->conf.IntType = INT_MEMORY_AND_IO;
4498
4499 /* Chain drivers */
4500 link->next = dev_list;
4501 dev_list = link;
4502
4503 /* Allocate the generic data structure */
4504 dev = kmalloc(sizeof(struct net_device), GFP_KERNEL);
4505 if (!dev) {
4506 kfree(link);
4507 return NULL;
4508 }
4509 memset(dev, 0x00, sizeof(struct net_device));
4510 link->priv = link->irq.Instance = dev;
4511
4512 /* Allocate the wavelan-specific data structure. */
4513 dev->priv = lp = (net_local *) kmalloc(sizeof(net_local), GFP_KERNEL);
4514 if (!lp) {
4515 kfree(link);
4516 kfree(dev);
4517 return NULL;
4518 }
4519 memset(lp, 0x00, sizeof(net_local));
4520
4521 /* Init specific data */
4522 lp->configured = 0;
4523 lp->reconfig_82593 = FALSE;
4524 lp->nresets = 0;
4525 /* Multicast stuff */
4526 lp->promiscuous = 0;
4527 lp->allmulticast = 0;
4528 lp->mc_count = 0;
4529
4530 /* Init spinlock */
4531 spin_lock_init(&lp->spinlock);
4532
4533 /* back links */
4534 lp->link = link;
4535 lp->dev = dev;
4536
4537 /* Standard setup for generic data */
4538 ether_setup(dev);
4539
4540 /* wavelan NET3 callbacks */
4541 dev->open = &wavelan_open;
4542 dev->stop = &wavelan_close;
4543 dev->hard_start_xmit = &wavelan_packet_xmit;
4544 dev->get_stats = &wavelan_get_stats;
4545 dev->set_multicast_list = &wavelan_set_multicast_list;
4546 #ifdef SET_MAC_ADDRESS
4547 dev->set_mac_address = &wavelan_set_mac_address;
4548 #endif /* SET_MAC_ADDRESS */
4549
4550 /* Set the watchdog timer */
4551 dev->tx_timeout = &wavelan_watchdog;
4552 dev->watchdog_timeo = WATCHDOG_JIFFIES;
4553
4554 #ifdef WIRELESS_EXT /* If wireless extension exist in the kernel */
4555 dev->do_ioctl = wavelan_ioctl; /* wireless extensions */
4556 dev->get_wireless_stats = wavelan_get_wireless_stats;
4557 #endif
4558 SET_ETHTOOL_OPS(dev, &netdev_ethtool_ops);
4559
4560 /* Other specific data */
4561 dev->mtu = WAVELAN_MTU;
4562
4563 /* Register with Card Services */
4564 client_reg.dev_info = &dev_info;
4565 client_reg.Attributes = INFO_IO_CLIENT | INFO_CARD_SHARE;
4566 client_reg.EventMask =
4567 CS_EVENT_REGISTRATION_COMPLETE |
4568 CS_EVENT_CARD_INSERTION | CS_EVENT_CARD_REMOVAL |
4569 CS_EVENT_RESET_PHYSICAL | CS_EVENT_CARD_RESET |
4570 CS_EVENT_PM_SUSPEND | CS_EVENT_PM_RESUME;
4571 client_reg.event_handler = &wavelan_event;
4572 client_reg.Version = 0x0210;
4573 client_reg.event_callback_args.client_data = link;
4574
4575 #ifdef DEBUG_CONFIG_INFO
4576 printk(KERN_DEBUG "wavelan_attach(): almost done, calling CardServices\n");
4577 #endif
4578
4579 ret = CardServices(RegisterClient, &link->handle, &client_reg);
4580 if(ret != 0)
4581 {
4582 cs_error(link->handle, RegisterClient, ret);
4583 wavelan_detach(link);
4584 return NULL;
4585 }
4586
4587 #ifdef DEBUG_CALLBACK_TRACE
4588 printk(KERN_DEBUG "<- wavelan_attach()\n");
4589 #endif
4590
4591 return link;
4592 }
4593
4594 /*------------------------------------------------------------------*/
4595 /*
4596 * This deletes a driver "instance". The device is de-registered with
4597 * Card Services. If it has been released, all local data structures
4598 * are freed. Otherwise, the structures will be freed when the device
4599 * is released.
4600 */
4601 static void
4602 wavelan_detach(dev_link_t * link)
4603 {
4604 #ifdef DEBUG_CALLBACK_TRACE
4605 printk(KERN_DEBUG "-> wavelan_detach(0x%p)\n", link);
4606 #endif
4607
4608 /*
4609 * If the device is currently configured and active, we won't
4610 * actually delete it yet. Instead, it is marked so that when the
4611 * release() function is called, that will trigger a proper
4612 * detach().
4613 */
4614 if(link->state & DEV_CONFIG)
4615 {
4616 /* Some others haven't done their job : give them another chance */
4617 wv_pcmcia_release((u_long) link);
4618 if(link->state & DEV_STALE_CONFIG)
4619 {
4620 #ifdef DEBUG_CONFIG_INFO
4621 printk(KERN_DEBUG "wavelan_detach: detach postponed,"
4622 " '%s' still locked\n", link->dev->dev_name);
4623 #endif
4624 link->state |= DEV_STALE_LINK;
4625 return;
4626 }
4627 }
4628
4629 /* Break the link with Card Services */
4630 if(link->handle)
4631 CardServices(DeregisterClient, link->handle);
4632
4633 /* Remove the interface data from the linked list */
4634 if(dev_list == link)
4635 dev_list = link->next;
4636 else
4637 {
4638 dev_link_t * prev = dev_list;
4639
4640 while((prev != (dev_link_t *) NULL) && (prev->next != link))
4641 prev = prev->next;
4642
4643 if(prev == (dev_link_t *) NULL)
4644 {
4645 #ifdef DEBUG_CONFIG_ERRORS
4646 printk(KERN_WARNING "wavelan_detach : Attempting to remove a nonexistent device.\n");
4647 #endif
4648 return;
4649 }
4650
4651 prev->next = link->next;
4652 }
4653
4654 /* Free pieces */
4655 if(link->priv)
4656 {
4657 device * dev = (device *) link->priv;
4658
4659 /* Remove ourselves from the kernel list of ethernet devices */
4660 /* Warning : can't be called from interrupt, timer or wavelan_close() */
4661 if(link->dev != NULL)
4662 unregister_netdev(dev);
4663 link->dev = NULL;
4664
4665 if(dev->priv)
4666 {
4667 /* Sound strange, but safe... */
4668 ((net_local *) dev->priv)->link = (dev_link_t *) NULL;
4669 ((net_local *) dev->priv)->dev = (device *) NULL;
4670 kfree(dev->priv);
4671 }
4672 kfree(link->priv);
4673 }
4674 kfree(link);
4675
4676 #ifdef DEBUG_CALLBACK_TRACE
4677 printk(KERN_DEBUG "<- wavelan_detach()\n");
4678 #endif
4679 }
4680
4681 /*------------------------------------------------------------------*/
4682 /*
4683 * The card status event handler. Mostly, this schedules other stuff
4684 * to run after an event is received. A CARD_REMOVAL event also sets
4685 * some flags to discourage the net drivers from trying to talk to the
4686 * card any more.
4687 */
4688 static int
4689 wavelan_event(event_t event, /* The event received */
4690 int priority,
4691 event_callback_args_t * args)
4692 {
4693 dev_link_t * link = (dev_link_t *) args->client_data;
4694 device * dev = (device *) link->priv;
4695
4696 #ifdef DEBUG_CALLBACK_TRACE
4697 printk(KERN_DEBUG "->wavelan_event(): %s\n",
4698 ((event == CS_EVENT_REGISTRATION_COMPLETE)?"registration complete" :
4699 ((event == CS_EVENT_CARD_REMOVAL) ? "card removal" :
4700 ((event == CS_EVENT_CARD_INSERTION) ? "card insertion" :
4701 ((event == CS_EVENT_PM_SUSPEND) ? "pm suspend" :
4702 ((event == CS_EVENT_RESET_PHYSICAL) ? "physical reset" :
4703 ((event == CS_EVENT_PM_RESUME) ? "pm resume" :
4704 ((event == CS_EVENT_CARD_RESET) ? "card reset" :
4705 "unknown"))))))));
4706 #endif
4707
4708 switch(event)
4709 {
4710 case CS_EVENT_REGISTRATION_COMPLETE:
4711 #ifdef DEBUG_CONFIG_INFO
4712 printk(KERN_DEBUG "wavelan_cs: registration complete\n");
4713 #endif
4714 break;
4715
4716 case CS_EVENT_CARD_REMOVAL:
4717 /* Oups ! The card is no more there */
4718 link->state &= ~DEV_PRESENT;
4719 if(link->state & DEV_CONFIG)
4720 {
4721 /* Accept no more transmissions */
4722 netif_device_detach(dev);
4723
4724 /* Release the card */
4725 wv_pcmcia_release((u_long) link);
4726 }
4727 break;
4728
4729 case CS_EVENT_CARD_INSERTION:
4730 /* Reset and configure the card */
4731 link->state |= DEV_PRESENT | DEV_CONFIG_PENDING;
4732 if(wv_pcmcia_config(link) &&
4733 wv_hw_config(dev))
4734 wv_init_info(dev);
4735 else
4736 dev->irq = 0;
4737 break;
4738
4739 case CS_EVENT_PM_SUSPEND:
4740 /* NB: wavelan_close will be called, but too late, so we are
4741 * obliged to close nicely the wavelan here. David, could you
4742 * close the device before suspending them ? And, by the way,
4743 * could you, on resume, add a "route add -net ..." after the
4744 * ifconfig up ? Thanks... */
4745
4746 /* Stop receiving new messages and wait end of transmission */
4747 wv_ru_stop(dev);
4748
4749 /* Power down the module */
4750 hacr_write(dev->base_addr, HACR_DEFAULT & (~HACR_PWR_STAT));
4751
4752 /* The card is now suspended */
4753 link->state |= DEV_SUSPEND;
4754 /* Fall through... */
4755 case CS_EVENT_RESET_PHYSICAL:
4756 if(link->state & DEV_CONFIG)
4757 {
4758 if(link->open)
4759 netif_device_detach(dev);
4760 CardServices(ReleaseConfiguration, link->handle);
4761 }
4762 break;
4763
4764 case CS_EVENT_PM_RESUME:
4765 link->state &= ~DEV_SUSPEND;
4766 /* Fall through... */
4767 case CS_EVENT_CARD_RESET:
4768 if(link->state & DEV_CONFIG)
4769 {
4770 CardServices(RequestConfiguration, link->handle, &link->conf);
4771 if(link->open) /* If RESET -> True, If RESUME -> False ? */
4772 {
4773 wv_hw_reset(dev);
4774 netif_device_attach(dev);
4775 }
4776 }
4777 break;
4778 }
4779
4780 #ifdef DEBUG_CALLBACK_TRACE
4781 printk(KERN_DEBUG "<-wavelan_event()\n");
4782 #endif
4783 return 0;
4784 }
4785
4786 /****************************** MODULE ******************************/
4787 /*
4788 * Module entry points : insertion & removal
4789 */
4790
4791 /*------------------------------------------------------------------*/
4792 /*
4793 * Module insertion : initialisation of the module.
4794 * Register the card with cardmgr...
4795 */
4796 static int __init
4797 init_wavelan_cs(void)
4798 {
4799 servinfo_t serv;
4800
4801 #ifdef DEBUG_MODULE_TRACE
4802 printk(KERN_DEBUG "-> init_wavelan_cs()\n");
4803 #ifdef DEBUG_VERSION_SHOW
4804 printk(KERN_DEBUG "%s", version);
4805 #endif
4806 #endif
4807
4808 CardServices(GetCardServicesInfo, &serv);
4809 if(serv.Revision != CS_RELEASE_CODE)
4810 {
4811 #ifdef DEBUG_CONFIG_ERRORS
4812 printk(KERN_WARNING "init_wavelan_cs: Card Services release does not match!\n");
4813 #endif
4814 return -1;
4815 }
4816
4817 register_pccard_driver(&dev_info, &wavelan_attach, &wavelan_detach);
4818
4819 #ifdef DEBUG_MODULE_TRACE
4820 printk(KERN_DEBUG "<- init_wavelan_cs()\n");
4821 #endif
4822 return 0;
4823 }
4824
4825 /*------------------------------------------------------------------*/
4826 /*
4827 * Module removal
4828 */
4829 static void __exit
4830 exit_wavelan_cs(void)
4831 {
4832 #ifdef DEBUG_MODULE_TRACE
4833 printk(KERN_DEBUG "-> cleanup_module()\n");
4834 #endif
4835 #ifdef DEBUG_BASIC_SHOW
4836 printk(KERN_NOTICE "wavelan_cs: unloading\n");
4837 #endif
4838
4839 /* Do some cleanup of the device list */
4840 wv_flush_stale_links();
4841
4842 /* If there remain some devices... */
4843 #ifdef DEBUG_CONFIG_ERRORS
4844 if(dev_list != NULL)
4845 {
4846 /* Honestly, if this happen we are in a deep s**t */
4847 printk(KERN_INFO "wavelan_cs: devices remaining when removing module\n");
4848 printk(KERN_INFO "Please flush your disks and reboot NOW !\n");
4849 }
4850 #endif
4851
4852 unregister_pccard_driver(&dev_info);
4853
4854 #ifdef DEBUG_MODULE_TRACE
4855 printk(KERN_DEBUG "<- cleanup_module()\n");
4856 #endif
4857 }
4858
4859 module_init(init_wavelan_cs);
4860 module_exit(exit_wavelan_cs);
4861
4862 /* Note : Modules parameters are in wavelan_cs.h - Jean II */
4863