6 * Reorganisation and extension of the driver.
7 * Original copyright follows (also see the end of this file).
8 * See wavelan.p.h for details.
12 * AT&T GIS (nee NCR) WaveLAN card:
13 * An Ethernet-like radio transceiver
14 * controlled by an Intel 82586 coprocessor.
17 #include "wavelan.p.h" /* Private header */
19 /************************* MISC SUBROUTINES **************************/
21 * Subroutines which won't fit in one of the following category
22 * (WaveLAN modem or i82586)
25 /*------------------------------------------------------------------*/
27 * Translate irq number to PSA irq parameter
29 static u8 wv_irq_to_psa(int irq)
31 if (irq < 0 || irq >= ARRAY_SIZE(irqvals))
37 /*------------------------------------------------------------------*/
39 * Translate PSA irq parameter to irq number
41 static int __init wv_psa_to_irq(u8 irqval)
45 for (irq = 0; irq < ARRAY_SIZE(irqvals); irq++)
46 if (irqvals[irq] == irqval)
53 /*------------------------------------------------------------------*/
55 * Sanity routine to verify the sizes of the various WaveLAN interface
58 static char *wv_struct_check(void)
60 #define SC(t,s,n) if (sizeof(t) != s) return(n);
62 SC(psa_t, PSA_SIZE, "psa_t");
63 SC(mmw_t, MMW_SIZE, "mmw_t");
64 SC(mmr_t, MMR_SIZE, "mmr_t");
65 SC(ha_t, HA_SIZE, "ha_t");
69 return ((char *) NULL);
70 } /* wv_struct_check */
71 #endif /* STRUCT_CHECK */
73 /********************* HOST ADAPTER SUBROUTINES *********************/
75 * Useful subroutines to manage the WaveLAN ISA interface
77 * One major difference with the PCMCIA hardware (except the port mapping)
78 * is that we have to keep the state of the Host Control Register
79 * because of the interrupt enable & bus size flags.
82 /*------------------------------------------------------------------*/
84 * Read from card's Host Adaptor Status Register.
86 static inline u16 hasr_read(unsigned long ioaddr)
88 return (inw(HASR(ioaddr)));
91 /*------------------------------------------------------------------*/
93 * Write to card's Host Adapter Command Register.
95 static inline void hacr_write(unsigned long ioaddr, u16 hacr)
97 outw(hacr, HACR(ioaddr));
100 /*------------------------------------------------------------------*/
102 * Write to card's Host Adapter Command Register. Include a delay for
103 * those times when it is needed.
105 static void hacr_write_slow(unsigned long ioaddr, u16 hacr)
107 hacr_write(ioaddr, hacr);
108 /* delay might only be needed sometimes */
110 } /* hacr_write_slow */
112 /*------------------------------------------------------------------*/
114 * Set the channel attention bit.
116 static inline void set_chan_attn(unsigned long ioaddr, u16 hacr)
118 hacr_write(ioaddr, hacr | HACR_CA);
119 } /* set_chan_attn */
121 /*------------------------------------------------------------------*/
123 * Reset, and then set host adaptor into default mode.
125 static inline void wv_hacr_reset(unsigned long ioaddr)
127 hacr_write_slow(ioaddr, HACR_RESET);
128 hacr_write(ioaddr, HACR_DEFAULT);
129 } /* wv_hacr_reset */
131 /*------------------------------------------------------------------*/
133 * Set the I/O transfer over the ISA bus to 8-bit mode
135 static inline void wv_16_off(unsigned long ioaddr, u16 hacr)
137 hacr &= ~HACR_16BITS;
138 hacr_write(ioaddr, hacr);
141 /*------------------------------------------------------------------*/
143 * Set the I/O transfer over the ISA bus to 8-bit mode
145 static inline void wv_16_on(unsigned long ioaddr, u16 hacr)
148 hacr_write(ioaddr, hacr);
151 /*------------------------------------------------------------------*/
153 * Disable interrupts on the WaveLAN hardware.
154 * (called by wv_82586_stop())
156 static inline void wv_ints_off(struct net_device * dev)
158 net_local *lp = (net_local *) dev->priv;
159 unsigned long ioaddr = dev->base_addr;
161 lp->hacr &= ~HACR_INTRON;
162 hacr_write(ioaddr, lp->hacr);
165 /*------------------------------------------------------------------*/
167 * Enable interrupts on the WaveLAN hardware.
168 * (called by wv_hw_reset())
170 static inline void wv_ints_on(struct net_device * dev)
172 net_local *lp = (net_local *) dev->priv;
173 unsigned long ioaddr = dev->base_addr;
175 lp->hacr |= HACR_INTRON;
176 hacr_write(ioaddr, lp->hacr);
179 /******************* MODEM MANAGEMENT SUBROUTINES *******************/
181 * Useful subroutines to manage the modem of the WaveLAN
184 /*------------------------------------------------------------------*/
186 * Read the Parameter Storage Area from the WaveLAN card's memory
189 * Read bytes from the PSA.
191 static void psa_read(unsigned long ioaddr, u16 hacr, int o, /* offset in PSA */
192 u8 * b, /* buffer to fill */
195 wv_16_off(ioaddr, hacr);
198 outw(o, PIOR2(ioaddr));
200 *b++ = inb(PIOP2(ioaddr));
203 wv_16_on(ioaddr, hacr);
206 /*------------------------------------------------------------------*/
208 * Write the Parameter Storage Area to the WaveLAN card's memory.
210 static void psa_write(unsigned long ioaddr, u16 hacr, int o, /* Offset in PSA */
211 u8 * b, /* Buffer in memory */
213 { /* Length of buffer */
216 wv_16_off(ioaddr, hacr);
219 outw(o, PIOR2(ioaddr));
222 outb(*b, PIOP2(ioaddr));
225 /* Wait for the memory to finish its write cycle */
227 while ((count++ < 100) &&
228 (hasr_read(ioaddr) & HASR_PSA_BUSY)) mdelay(1);
231 wv_16_on(ioaddr, hacr);
235 /*------------------------------------------------------------------*/
237 * Calculate the PSA CRC
238 * Thanks to Valster, Nico <NVALSTER@wcnd.nl.lucent.com> for the code
239 * NOTE: By specifying a length including the CRC position the
240 * returned value should be zero. (i.e. a correct checksum in the PSA)
242 * The Windows drivers don't use the CRC, but the AP and the PtP tool
245 static u16 psa_crc(u8 * psa, /* The PSA */
247 { /* Number of short for CRC */
248 int byte_cnt; /* Loop on the PSA */
249 u16 crc_bytes = 0; /* Data in the PSA */
250 int bit_cnt; /* Loop on the bits of the short */
252 for (byte_cnt = 0; byte_cnt < size; byte_cnt++) {
253 crc_bytes ^= psa[byte_cnt]; /* Its an xor */
255 for (bit_cnt = 1; bit_cnt < 9; bit_cnt++) {
256 if (crc_bytes & 0x0001)
257 crc_bytes = (crc_bytes >> 1) ^ 0xA001;
265 #endif /* SET_PSA_CRC */
267 /*------------------------------------------------------------------*/
269 * update the checksum field in the Wavelan's PSA
271 static void update_psa_checksum(struct net_device * dev, unsigned long ioaddr, u16 hacr)
277 /* read the parameter storage area */
278 psa_read(ioaddr, hacr, 0, (unsigned char *) &psa, sizeof(psa));
280 /* update the checksum */
281 crc = psa_crc((unsigned char *) &psa,
282 sizeof(psa) - sizeof(psa.psa_crc[0]) -
283 sizeof(psa.psa_crc[1])
284 - sizeof(psa.psa_crc_status));
286 psa.psa_crc[0] = crc & 0xFF;
287 psa.psa_crc[1] = (crc & 0xFF00) >> 8;
290 psa_write(ioaddr, hacr, (char *) &psa.psa_crc - (char *) &psa,
291 (unsigned char *) &psa.psa_crc, 2);
293 #ifdef DEBUG_IOCTL_INFO
294 printk(KERN_DEBUG "%s: update_psa_checksum(): crc = 0x%02x%02x\n",
295 dev->name, psa.psa_crc[0], psa.psa_crc[1]);
297 /* Check again (luxury !) */
298 crc = psa_crc((unsigned char *) &psa,
299 sizeof(psa) - sizeof(psa.psa_crc_status));
303 "%s: update_psa_checksum(): CRC does not agree with PSA data (even after recalculating)\n",
305 #endif /* DEBUG_IOCTL_INFO */
306 #endif /* SET_PSA_CRC */
307 } /* update_psa_checksum */
309 /*------------------------------------------------------------------*/
311 * Write 1 byte to the MMC.
313 static void mmc_out(unsigned long ioaddr, u16 o, u8 d)
317 /* Wait for MMC to go idle */
318 while ((count++ < 100) && (inw(HASR(ioaddr)) & HASR_MMC_BUSY))
321 outw((u16) (((u16) d << 8) | (o << 1) | 1), MMCR(ioaddr));
324 /*------------------------------------------------------------------*/
326 * Routine to write bytes to the Modem Management Controller.
327 * We start at the end because it is the way it should be!
329 static void mmc_write(unsigned long ioaddr, u8 o, u8 * b, int n)
335 mmc_out(ioaddr, --o, *(--b));
338 /*------------------------------------------------------------------*/
340 * Read a byte from the MMC.
341 * Optimised version for 1 byte, avoid using memory.
343 static u8 mmc_in(unsigned long ioaddr, u16 o)
347 while ((count++ < 100) && (inw(HASR(ioaddr)) & HASR_MMC_BUSY))
349 outw(o << 1, MMCR(ioaddr));
351 while ((count++ < 100) && (inw(HASR(ioaddr)) & HASR_MMC_BUSY))
353 return (u8) (inw(MMCR(ioaddr)) >> 8);
356 /*------------------------------------------------------------------*/
358 * Routine to read bytes from the Modem Management Controller.
359 * The implementation is complicated by a lack of address lines,
360 * which prevents decoding of the low-order bit.
361 * (code has just been moved in the above function)
362 * We start at the end because it is the way it should be!
364 static inline void mmc_read(unsigned long ioaddr, u8 o, u8 * b, int n)
370 *(--b) = mmc_in(ioaddr, --o);
373 /*------------------------------------------------------------------*/
375 * Get the type of encryption available.
377 static inline int mmc_encr(unsigned long ioaddr)
378 { /* I/O port of the card */
381 temp = mmc_in(ioaddr, mmroff(0, mmr_des_avail));
382 if ((temp != MMR_DES_AVAIL_DES) && (temp != MMR_DES_AVAIL_AES))
388 /*------------------------------------------------------------------*/
390 * Wait for the frequency EEPROM to complete a command.
391 * I hope this one will be optimally inlined.
393 static inline void fee_wait(unsigned long ioaddr, /* I/O port of the card */
394 int delay, /* Base delay to wait for */
396 { /* Number of time to wait */
397 int count = 0; /* Wait only a limited time */
399 while ((count++ < number) &&
400 (mmc_in(ioaddr, mmroff(0, mmr_fee_status)) &
401 MMR_FEE_STATUS_BUSY)) udelay(delay);
404 /*------------------------------------------------------------------*/
406 * Read bytes from the Frequency EEPROM (frequency select cards).
408 static void fee_read(unsigned long ioaddr, /* I/O port of the card */
409 u16 o, /* destination offset */
410 u16 * b, /* data buffer */
412 { /* number of registers */
413 b += n; /* Position at the end of the area */
415 /* Write the address */
416 mmc_out(ioaddr, mmwoff(0, mmw_fee_addr), o + n - 1);
418 /* Loop on all buffer */
420 /* Write the read command */
421 mmc_out(ioaddr, mmwoff(0, mmw_fee_ctrl),
424 /* Wait until EEPROM is ready (should be quick). */
425 fee_wait(ioaddr, 10, 100);
427 /* Read the value. */
428 *--b = ((mmc_in(ioaddr, mmroff(0, mmr_fee_data_h)) << 8) |
429 mmc_in(ioaddr, mmroff(0, mmr_fee_data_l)));
434 /*------------------------------------------------------------------*/
436 * Write bytes from the Frequency EEPROM (frequency select cards).
437 * This is a bit complicated, because the frequency EEPROM has to
438 * be unprotected and the write enabled.
441 static void fee_write(unsigned long ioaddr, /* I/O port of the card */
442 u16 o, /* destination offset */
443 u16 * b, /* data buffer */
445 { /* number of registers */
446 b += n; /* Position at the end of the area. */
448 #ifdef EEPROM_IS_PROTECTED /* disabled */
449 #ifdef DOESNT_SEEM_TO_WORK /* disabled */
450 /* Ask to read the protected register */
451 mmc_out(ioaddr, mmwoff(0, mmw_fee_ctrl), MMW_FEE_CTRL_PRREAD);
453 fee_wait(ioaddr, 10, 100);
455 /* Read the protected register. */
456 printk("Protected 2: %02X-%02X\n",
457 mmc_in(ioaddr, mmroff(0, mmr_fee_data_h)),
458 mmc_in(ioaddr, mmroff(0, mmr_fee_data_l)));
459 #endif /* DOESNT_SEEM_TO_WORK */
461 /* Enable protected register. */
462 mmc_out(ioaddr, mmwoff(0, mmw_fee_addr), MMW_FEE_ADDR_EN);
463 mmc_out(ioaddr, mmwoff(0, mmw_fee_ctrl), MMW_FEE_CTRL_PREN);
465 fee_wait(ioaddr, 10, 100);
467 /* Unprotect area. */
468 mmc_out(ioaddr, mmwoff(0, mmw_fee_addr), o + n);
469 mmc_out(ioaddr, mmwoff(0, mmw_fee_ctrl), MMW_FEE_CTRL_PRWRITE);
470 #ifdef DOESNT_SEEM_TO_WORK /* disabled */
472 mmc_out(ioaddr, mmwoff(0, mmw_fee_ctrl), MMW_FEE_CTRL_PRCLEAR);
473 #endif /* DOESNT_SEEM_TO_WORK */
475 fee_wait(ioaddr, 10, 100);
476 #endif /* EEPROM_IS_PROTECTED */
479 mmc_out(ioaddr, mmwoff(0, mmw_fee_addr), MMW_FEE_ADDR_EN);
480 mmc_out(ioaddr, mmwoff(0, mmw_fee_ctrl), MMW_FEE_CTRL_WREN);
482 fee_wait(ioaddr, 10, 100);
484 /* Write the EEPROM address. */
485 mmc_out(ioaddr, mmwoff(0, mmw_fee_addr), o + n - 1);
487 /* Loop on all buffer */
489 /* Write the value. */
490 mmc_out(ioaddr, mmwoff(0, mmw_fee_data_h), (*--b) >> 8);
491 mmc_out(ioaddr, mmwoff(0, mmw_fee_data_l), *b & 0xFF);
493 /* Write the write command. */
494 mmc_out(ioaddr, mmwoff(0, mmw_fee_ctrl),
497 /* WaveLAN documentation says to wait at least 10 ms for EEBUSY = 0 */
499 fee_wait(ioaddr, 10, 100);
503 mmc_out(ioaddr, mmwoff(0, mmw_fee_addr), MMW_FEE_ADDR_DS);
504 mmc_out(ioaddr, mmwoff(0, mmw_fee_ctrl), MMW_FEE_CTRL_WDS);
506 fee_wait(ioaddr, 10, 100);
508 #ifdef EEPROM_IS_PROTECTED /* disabled */
509 /* Reprotect EEPROM. */
510 mmc_out(ioaddr, mmwoff(0, mmw_fee_addr), 0x00);
511 mmc_out(ioaddr, mmwoff(0, mmw_fee_ctrl), MMW_FEE_CTRL_PRWRITE);
513 fee_wait(ioaddr, 10, 100);
514 #endif /* EEPROM_IS_PROTECTED */
517 /************************ I82586 SUBROUTINES *************************/
519 * Useful subroutines to manage the Ethernet controller
522 /*------------------------------------------------------------------*/
524 * Read bytes from the on-board RAM.
525 * Why does inlining this function make it fail?
527 static /*inline */ void obram_read(unsigned long ioaddr,
528 u16 o, u8 * b, int n)
530 outw(o, PIOR1(ioaddr));
531 insw(PIOP1(ioaddr), (unsigned short *) b, (n + 1) >> 1);
534 /*------------------------------------------------------------------*/
536 * Write bytes to the on-board RAM.
538 static inline void obram_write(unsigned long ioaddr, u16 o, u8 * b, int n)
540 outw(o, PIOR1(ioaddr));
541 outsw(PIOP1(ioaddr), (unsigned short *) b, (n + 1) >> 1);
544 /*------------------------------------------------------------------*/
546 * Acknowledge the reading of the status issued by the i82586.
548 static void wv_ack(struct net_device * dev)
550 net_local *lp = (net_local *) dev->priv;
551 unsigned long ioaddr = dev->base_addr;
555 obram_read(ioaddr, scboff(OFFSET_SCB, scb_status),
556 (unsigned char *) &scb_cs, sizeof(scb_cs));
557 scb_cs &= SCB_ST_INT;
562 obram_write(ioaddr, scboff(OFFSET_SCB, scb_command),
563 (unsigned char *) &scb_cs, sizeof(scb_cs));
565 set_chan_attn(ioaddr, lp->hacr);
567 for (i = 1000; i > 0; i--) {
568 obram_read(ioaddr, scboff(OFFSET_SCB, scb_command),
569 (unsigned char *) &scb_cs, sizeof(scb_cs));
577 #ifdef DEBUG_CONFIG_ERROR
580 "%s: wv_ack(): board not accepting command.\n",
585 /*------------------------------------------------------------------*/
587 * Set channel attention bit and busy wait until command has
588 * completed, then acknowledge completion of the command.
590 static int wv_synchronous_cmd(struct net_device * dev, const char *str)
592 net_local *lp = (net_local *) dev->priv;
593 unsigned long ioaddr = dev->base_addr;
598 scb_cmd = SCB_CMD_CUC & SCB_CMD_CUC_GO;
599 obram_write(ioaddr, scboff(OFFSET_SCB, scb_command),
600 (unsigned char *) &scb_cmd, sizeof(scb_cmd));
602 set_chan_attn(ioaddr, lp->hacr);
604 for (i = 1000; i > 0; i--) {
605 obram_read(ioaddr, OFFSET_CU, (unsigned char *) &cb,
607 if (cb.ac_status & AC_SFLD_C)
614 if (i <= 0 || !(cb.ac_status & AC_SFLD_OK)) {
615 #ifdef DEBUG_CONFIG_ERROR
616 printk(KERN_INFO "%s: %s failed; status = 0x%x\n",
617 dev->name, str, cb.ac_status);
619 #ifdef DEBUG_I82586_SHOW
631 /*------------------------------------------------------------------*/
633 * Configuration commands completion interrupt.
634 * Check if done, and if OK.
637 wv_config_complete(struct net_device * dev, unsigned long ioaddr, net_local * lp)
639 unsigned short mcs_addr;
640 unsigned short status;
643 #ifdef DEBUG_INTERRUPT_TRACE
644 printk(KERN_DEBUG "%s: ->wv_config_complete()\n", dev->name);
647 mcs_addr = lp->tx_first_in_use + sizeof(ac_tx_t) + sizeof(ac_nop_t)
648 + sizeof(tbd_t) + sizeof(ac_cfg_t) + sizeof(ac_ias_t);
650 /* Read the status of the last command (set mc list). */
651 obram_read(ioaddr, acoff(mcs_addr, ac_status),
652 (unsigned char *) &status, sizeof(status));
654 /* If not completed -> exit */
655 if ((status & AC_SFLD_C) == 0)
656 ret = 0; /* Not ready to be scrapped */
658 #ifdef DEBUG_CONFIG_ERROR
659 unsigned short cfg_addr;
660 unsigned short ias_addr;
662 /* Check mc_config command */
663 if ((status & AC_SFLD_OK) != AC_SFLD_OK)
665 "%s: wv_config_complete(): set_multicast_address failed; status = 0x%x\n",
668 /* check ia-config command */
669 ias_addr = mcs_addr - sizeof(ac_ias_t);
670 obram_read(ioaddr, acoff(ias_addr, ac_status),
671 (unsigned char *) &status, sizeof(status));
672 if ((status & AC_SFLD_OK) != AC_SFLD_OK)
674 "%s: wv_config_complete(): set_MAC_address failed; status = 0x%x\n",
677 /* Check config command. */
678 cfg_addr = ias_addr - sizeof(ac_cfg_t);
679 obram_read(ioaddr, acoff(cfg_addr, ac_status),
680 (unsigned char *) &status, sizeof(status));
681 if ((status & AC_SFLD_OK) != AC_SFLD_OK)
683 "%s: wv_config_complete(): configure failed; status = 0x%x\n",
685 #endif /* DEBUG_CONFIG_ERROR */
687 ret = 1; /* Ready to be scrapped */
690 #ifdef DEBUG_INTERRUPT_TRACE
691 printk(KERN_DEBUG "%s: <-wv_config_complete() - %d\n", dev->name,
697 /*------------------------------------------------------------------*/
699 * Command completion interrupt.
700 * Reclaim as many freed tx buffers as we can.
701 * (called in wavelan_interrupt()).
702 * Note : the spinlock is already grabbed for us.
704 static int wv_complete(struct net_device * dev, unsigned long ioaddr, net_local * lp)
708 #ifdef DEBUG_INTERRUPT_TRACE
709 printk(KERN_DEBUG "%s: ->wv_complete()\n", dev->name);
712 /* Loop on all the transmit buffers */
713 while (lp->tx_first_in_use != I82586NULL) {
714 unsigned short tx_status;
716 /* Read the first transmit buffer */
717 obram_read(ioaddr, acoff(lp->tx_first_in_use, ac_status),
718 (unsigned char *) &tx_status,
721 /* If not completed -> exit */
722 if ((tx_status & AC_SFLD_C) == 0)
725 /* Hack for reconfiguration */
726 if (tx_status == 0xFFFF)
727 if (!wv_config_complete(dev, ioaddr, lp))
728 break; /* Not completed */
730 /* We now remove this buffer */
735 if (lp->tx_n_in_use > 0)
736 printk("%c", "0123456789abcdefghijk"[lp->tx_n_in_use]);
739 /* Was it the last one? */
740 if (lp->tx_n_in_use <= 0)
741 lp->tx_first_in_use = I82586NULL;
743 /* Next one in the chain */
744 lp->tx_first_in_use += TXBLOCKZ;
745 if (lp->tx_first_in_use >=
747 NTXBLOCKS * TXBLOCKZ) lp->tx_first_in_use -=
748 NTXBLOCKS * TXBLOCKZ;
751 /* Hack for reconfiguration */
752 if (tx_status == 0xFFFF)
755 /* Now, check status of the finished command */
756 if (tx_status & AC_SFLD_OK) {
759 lp->stats.tx_packets++;
760 ncollisions = tx_status & AC_SFLD_MAXCOL;
761 lp->stats.collisions += ncollisions;
765 "%s: wv_complete(): tx completed after %d collisions.\n",
766 dev->name, ncollisions);
769 lp->stats.tx_errors++;
770 if (tx_status & AC_SFLD_S10) {
771 lp->stats.tx_carrier_errors++;
774 "%s: wv_complete(): tx error: no CS.\n",
778 if (tx_status & AC_SFLD_S9) {
779 lp->stats.tx_carrier_errors++;
782 "%s: wv_complete(): tx error: lost CTS.\n",
786 if (tx_status & AC_SFLD_S8) {
787 lp->stats.tx_fifo_errors++;
790 "%s: wv_complete(): tx error: slow DMA.\n",
794 if (tx_status & AC_SFLD_S6) {
795 lp->stats.tx_heartbeat_errors++;
798 "%s: wv_complete(): tx error: heart beat.\n",
802 if (tx_status & AC_SFLD_S5) {
803 lp->stats.tx_aborted_errors++;
806 "%s: wv_complete(): tx error: too many collisions.\n",
814 "%s: wv_complete(): tx completed, tx_status 0x%04x\n",
815 dev->name, tx_status);
819 #ifdef DEBUG_INTERRUPT_INFO
821 printk(KERN_DEBUG "%s: wv_complete(): reaped %d\n",
826 * Inform upper layers.
828 if (lp->tx_n_in_use < NTXBLOCKS - 1) {
829 netif_wake_queue(dev);
831 #ifdef DEBUG_INTERRUPT_TRACE
832 printk(KERN_DEBUG "%s: <-wv_complete()\n", dev->name);
837 /*------------------------------------------------------------------*/
839 * Reconfigure the i82586, or at least ask for it.
840 * Because wv_82586_config uses a transmission buffer, we must do it
841 * when we are sure that there is one left, so we do it now
842 * or in wavelan_packet_xmit() (I can't find any better place,
843 * wavelan_interrupt is not an option), so you may experience
846 static void wv_82586_reconfig(struct net_device * dev)
848 net_local *lp = (net_local *) dev->priv;
851 /* Arm the flag, will be cleard in wv_82586_config() */
852 lp->reconfig_82586 = 1;
854 /* Check if we can do it now ! */
855 if((netif_running(dev)) && !(netif_queue_stopped(dev))) {
856 spin_lock_irqsave(&lp->spinlock, flags);
858 wv_82586_config(dev);
859 spin_unlock_irqrestore(&lp->spinlock, flags);
862 #ifdef DEBUG_CONFIG_INFO
864 "%s: wv_82586_reconfig(): delayed (state = %lX)\n",
865 dev->name, dev->state);
870 /********************* DEBUG & INFO SUBROUTINES *********************/
872 * This routine is used in the code to show information for debugging.
873 * Most of the time, it dumps the contents of hardware structures.
876 #ifdef DEBUG_PSA_SHOW
877 /*------------------------------------------------------------------*/
879 * Print the formatted contents of the Parameter Storage Area.
881 static void wv_psa_show(psa_t * p)
883 DECLARE_MAC_BUF(mac);
885 printk(KERN_DEBUG "##### WaveLAN PSA contents: #####\n");
886 printk(KERN_DEBUG "psa_io_base_addr_1: 0x%02X %02X %02X %02X\n",
887 p->psa_io_base_addr_1,
888 p->psa_io_base_addr_2,
889 p->psa_io_base_addr_3, p->psa_io_base_addr_4);
890 printk(KERN_DEBUG "psa_rem_boot_addr_1: 0x%02X %02X %02X\n",
891 p->psa_rem_boot_addr_1,
892 p->psa_rem_boot_addr_2, p->psa_rem_boot_addr_3);
893 printk(KERN_DEBUG "psa_holi_params: 0x%02x, ", p->psa_holi_params);
894 printk("psa_int_req_no: %d\n", p->psa_int_req_no);
895 #ifdef DEBUG_SHOW_UNUSED
896 printk(KERN_DEBUG "psa_unused0[]: %s\n",
897 print_mac(mac, p->psa_unused0));
898 #endif /* DEBUG_SHOW_UNUSED */
899 printk(KERN_DEBUG "psa_univ_mac_addr[]: %s\n",
900 print_mac(mac, p->psa_univ_mac_addr));
901 printk(KERN_DEBUG "psa_local_mac_addr[]: %s\n",
902 print_mac(mac, p->psa_local_mac_addr));
903 printk(KERN_DEBUG "psa_univ_local_sel: %d, ",
904 p->psa_univ_local_sel);
905 printk("psa_comp_number: %d, ", p->psa_comp_number);
906 printk("psa_thr_pre_set: 0x%02x\n", p->psa_thr_pre_set);
907 printk(KERN_DEBUG "psa_feature_select/decay_prm: 0x%02x, ",
908 p->psa_feature_select);
909 printk("psa_subband/decay_update_prm: %d\n", p->psa_subband);
910 printk(KERN_DEBUG "psa_quality_thr: 0x%02x, ", p->psa_quality_thr);
911 printk("psa_mod_delay: 0x%02x\n", p->psa_mod_delay);
912 printk(KERN_DEBUG "psa_nwid: 0x%02x%02x, ", p->psa_nwid[0],
914 printk("psa_nwid_select: %d\n", p->psa_nwid_select);
915 printk(KERN_DEBUG "psa_encryption_select: %d, ",
916 p->psa_encryption_select);
918 ("psa_encryption_key[]: %02x:%02x:%02x:%02x:%02x:%02x:%02x:%02x\n",
919 p->psa_encryption_key[0], p->psa_encryption_key[1],
920 p->psa_encryption_key[2], p->psa_encryption_key[3],
921 p->psa_encryption_key[4], p->psa_encryption_key[5],
922 p->psa_encryption_key[6], p->psa_encryption_key[7]);
923 printk(KERN_DEBUG "psa_databus_width: %d\n", p->psa_databus_width);
924 printk(KERN_DEBUG "psa_call_code/auto_squelch: 0x%02x, ",
925 p->psa_call_code[0]);
927 ("psa_call_code[]: %02X:%02X:%02X:%02X:%02X:%02X:%02X:%02X\n",
928 p->psa_call_code[0], p->psa_call_code[1], p->psa_call_code[2],
929 p->psa_call_code[3], p->psa_call_code[4], p->psa_call_code[5],
930 p->psa_call_code[6], p->psa_call_code[7]);
931 #ifdef DEBUG_SHOW_UNUSED
932 printk(KERN_DEBUG "psa_reserved[]: %02X:%02X:%02X:%02X\n",
934 p->psa_reserved[1], p->psa_reserved[2], p->psa_reserved[3]);
935 #endif /* DEBUG_SHOW_UNUSED */
936 printk(KERN_DEBUG "psa_conf_status: %d, ", p->psa_conf_status);
937 printk("psa_crc: 0x%02x%02x, ", p->psa_crc[0], p->psa_crc[1]);
938 printk("psa_crc_status: 0x%02x\n", p->psa_crc_status);
940 #endif /* DEBUG_PSA_SHOW */
942 #ifdef DEBUG_MMC_SHOW
943 /*------------------------------------------------------------------*/
945 * Print the formatted status of the Modem Management Controller.
946 * This function needs to be completed.
948 static void wv_mmc_show(struct net_device * dev)
950 unsigned long ioaddr = dev->base_addr;
951 net_local *lp = (net_local *) dev->priv;
955 if (hasr_read(ioaddr) & HASR_NO_CLK) {
957 "%s: wv_mmc_show: modem not connected\n",
963 mmc_out(ioaddr, mmwoff(0, mmw_freeze), 1);
964 mmc_read(ioaddr, 0, (u8 *) & m, sizeof(m));
965 mmc_out(ioaddr, mmwoff(0, mmw_freeze), 0);
967 /* Don't forget to update statistics */
968 lp->wstats.discard.nwid +=
969 (m.mmr_wrong_nwid_h << 8) | m.mmr_wrong_nwid_l;
971 printk(KERN_DEBUG "##### WaveLAN modem status registers: #####\n");
972 #ifdef DEBUG_SHOW_UNUSED
974 "mmc_unused0[]: %02X:%02X:%02X:%02X:%02X:%02X:%02X:%02X\n",
975 m.mmr_unused0[0], m.mmr_unused0[1], m.mmr_unused0[2],
976 m.mmr_unused0[3], m.mmr_unused0[4], m.mmr_unused0[5],
977 m.mmr_unused0[6], m.mmr_unused0[7]);
978 #endif /* DEBUG_SHOW_UNUSED */
979 printk(KERN_DEBUG "Encryption algorithm: %02X - Status: %02X\n",
980 m.mmr_des_avail, m.mmr_des_status);
981 #ifdef DEBUG_SHOW_UNUSED
982 printk(KERN_DEBUG "mmc_unused1[]: %02X:%02X:%02X:%02X:%02X\n",
985 m.mmr_unused1[2], m.mmr_unused1[3], m.mmr_unused1[4]);
986 #endif /* DEBUG_SHOW_UNUSED */
987 printk(KERN_DEBUG "dce_status: 0x%x [%s%s%s%s]\n",
990 mmr_dce_status & MMR_DCE_STATUS_RX_BUSY) ?
991 "energy detected," : "",
993 mmr_dce_status & MMR_DCE_STATUS_LOOPT_IND) ?
994 "loop test indicated," : "",
996 mmr_dce_status & MMR_DCE_STATUS_TX_BUSY) ?
997 "transmitter on," : "",
999 mmr_dce_status & MMR_DCE_STATUS_JBR_EXPIRED) ?
1000 "jabber timer expired," : "");
1001 printk(KERN_DEBUG "Dsp ID: %02X\n", m.mmr_dsp_id);
1002 #ifdef DEBUG_SHOW_UNUSED
1003 printk(KERN_DEBUG "mmc_unused2[]: %02X:%02X\n",
1004 m.mmr_unused2[0], m.mmr_unused2[1]);
1005 #endif /* DEBUG_SHOW_UNUSED */
1006 printk(KERN_DEBUG "# correct_nwid: %d, # wrong_nwid: %d\n",
1007 (m.mmr_correct_nwid_h << 8) | m.mmr_correct_nwid_l,
1008 (m.mmr_wrong_nwid_h << 8) | m.mmr_wrong_nwid_l);
1009 printk(KERN_DEBUG "thr_pre_set: 0x%x [current signal %s]\n",
1010 m.mmr_thr_pre_set & MMR_THR_PRE_SET,
1012 mmr_thr_pre_set & MMR_THR_PRE_SET_CUR) ? "above" :
1014 printk(KERN_DEBUG "signal_lvl: %d [%s], ",
1015 m.mmr_signal_lvl & MMR_SIGNAL_LVL,
1017 mmr_signal_lvl & MMR_SIGNAL_LVL_VALID) ? "new msg" :
1019 printk("silence_lvl: %d [%s], ",
1020 m.mmr_silence_lvl & MMR_SILENCE_LVL,
1022 mmr_silence_lvl & MMR_SILENCE_LVL_VALID) ? "update done" :
1024 printk("sgnl_qual: 0x%x [%s]\n", m.mmr_sgnl_qual & MMR_SGNL_QUAL,
1026 mmr_sgnl_qual & MMR_SGNL_QUAL_ANT) ? "Antenna 1" :
1028 #ifdef DEBUG_SHOW_UNUSED
1029 printk(KERN_DEBUG "netw_id_l: %x\n", m.mmr_netw_id_l);
1030 #endif /* DEBUG_SHOW_UNUSED */
1032 #endif /* DEBUG_MMC_SHOW */
1034 #ifdef DEBUG_I82586_SHOW
1035 /*------------------------------------------------------------------*/
1037 * Print the last block of the i82586 memory.
1039 static void wv_scb_show(unsigned long ioaddr)
1043 obram_read(ioaddr, OFFSET_SCB, (unsigned char *) &scb,
1046 printk(KERN_DEBUG "##### WaveLAN system control block: #####\n");
1048 printk(KERN_DEBUG "status: ");
1049 printk("stat 0x%x[%s%s%s%s] ",
1051 scb_status & (SCB_ST_CX | SCB_ST_FR | SCB_ST_CNA |
1054 scb_status & SCB_ST_CX) ? "command completion interrupt," :
1055 "", (scb.scb_status & SCB_ST_FR) ? "frame received," : "",
1057 scb_status & SCB_ST_CNA) ? "command unit not active," : "",
1059 scb_status & SCB_ST_RNR) ? "receiving unit not ready," :
1061 printk("cus 0x%x[%s%s%s] ", (scb.scb_status & SCB_ST_CUS) >> 8,
1062 ((scb.scb_status & SCB_ST_CUS) ==
1063 SCB_ST_CUS_IDLE) ? "idle" : "",
1064 ((scb.scb_status & SCB_ST_CUS) ==
1065 SCB_ST_CUS_SUSP) ? "suspended" : "",
1066 ((scb.scb_status & SCB_ST_CUS) ==
1067 SCB_ST_CUS_ACTV) ? "active" : "");
1068 printk("rus 0x%x[%s%s%s%s]\n", (scb.scb_status & SCB_ST_RUS) >> 4,
1069 ((scb.scb_status & SCB_ST_RUS) ==
1070 SCB_ST_RUS_IDLE) ? "idle" : "",
1071 ((scb.scb_status & SCB_ST_RUS) ==
1072 SCB_ST_RUS_SUSP) ? "suspended" : "",
1073 ((scb.scb_status & SCB_ST_RUS) ==
1074 SCB_ST_RUS_NRES) ? "no resources" : "",
1075 ((scb.scb_status & SCB_ST_RUS) ==
1076 SCB_ST_RUS_RDY) ? "ready" : "");
1078 printk(KERN_DEBUG "command: ");
1079 printk("ack 0x%x[%s%s%s%s] ",
1081 scb_command & (SCB_CMD_ACK_CX | SCB_CMD_ACK_FR |
1082 SCB_CMD_ACK_CNA | SCB_CMD_ACK_RNR)) >> 12,
1084 scb_command & SCB_CMD_ACK_CX) ? "ack cmd completion," : "",
1086 scb_command & SCB_CMD_ACK_FR) ? "ack frame received," : "",
1088 scb_command & SCB_CMD_ACK_CNA) ? "ack CU not active," : "",
1090 scb_command & SCB_CMD_ACK_RNR) ? "ack RU not ready," : "");
1091 printk("cuc 0x%x[%s%s%s%s%s] ",
1092 (scb.scb_command & SCB_CMD_CUC) >> 8,
1093 ((scb.scb_command & SCB_CMD_CUC) ==
1094 SCB_CMD_CUC_NOP) ? "nop" : "",
1095 ((scb.scb_command & SCB_CMD_CUC) ==
1096 SCB_CMD_CUC_GO) ? "start cbl_offset" : "",
1097 ((scb.scb_command & SCB_CMD_CUC) ==
1098 SCB_CMD_CUC_RES) ? "resume execution" : "",
1099 ((scb.scb_command & SCB_CMD_CUC) ==
1100 SCB_CMD_CUC_SUS) ? "suspend execution" : "",
1101 ((scb.scb_command & SCB_CMD_CUC) ==
1102 SCB_CMD_CUC_ABT) ? "abort execution" : "");
1103 printk("ruc 0x%x[%s%s%s%s%s]\n",
1104 (scb.scb_command & SCB_CMD_RUC) >> 4,
1105 ((scb.scb_command & SCB_CMD_RUC) ==
1106 SCB_CMD_RUC_NOP) ? "nop" : "",
1107 ((scb.scb_command & SCB_CMD_RUC) ==
1108 SCB_CMD_RUC_GO) ? "start rfa_offset" : "",
1109 ((scb.scb_command & SCB_CMD_RUC) ==
1110 SCB_CMD_RUC_RES) ? "resume reception" : "",
1111 ((scb.scb_command & SCB_CMD_RUC) ==
1112 SCB_CMD_RUC_SUS) ? "suspend reception" : "",
1113 ((scb.scb_command & SCB_CMD_RUC) ==
1114 SCB_CMD_RUC_ABT) ? "abort reception" : "");
1116 printk(KERN_DEBUG "cbl_offset 0x%x ", scb.scb_cbl_offset);
1117 printk("rfa_offset 0x%x\n", scb.scb_rfa_offset);
1119 printk(KERN_DEBUG "crcerrs %d ", scb.scb_crcerrs);
1120 printk("alnerrs %d ", scb.scb_alnerrs);
1121 printk("rscerrs %d ", scb.scb_rscerrs);
1122 printk("ovrnerrs %d\n", scb.scb_ovrnerrs);
1125 /*------------------------------------------------------------------*/
1127 * Print the formatted status of the i82586's receive unit.
1129 static void wv_ru_show(struct net_device * dev)
1131 /* net_local *lp = (net_local *) dev->priv; */
1134 "##### WaveLAN i82586 receiver unit status: #####\n");
1135 printk(KERN_DEBUG "ru:");
1137 * Not implemented yet
1142 /*------------------------------------------------------------------*/
1144 * Display info about one control block of the i82586 memory.
1146 static void wv_cu_show_one(struct net_device * dev, net_local * lp, int i, u16 p)
1148 unsigned long ioaddr;
1151 ioaddr = dev->base_addr;
1153 printk("%d: 0x%x:", i, p);
1155 obram_read(ioaddr, p, (unsigned char *) &actx, sizeof(actx));
1156 printk(" status=0x%x,", actx.tx_h.ac_status);
1157 printk(" command=0x%x,", actx.tx_h.ac_command);
1163 obram_read(ioaddr, actx.tx_tbd_offset, (unsigned char *)&tbd, sizeof(tbd));
1164 printk(" tbd_status=0x%x,", tbd.tbd_status);
1171 /*------------------------------------------------------------------*/
1173 * Print status of the command unit of the i82586.
1175 static void wv_cu_show(struct net_device * dev)
1177 net_local *lp = (net_local *) dev->priv;
1182 "##### WaveLAN i82586 command unit status: #####\n");
1185 for (i = 0, p = lp->tx_first_in_use; i < NTXBLOCKS; i++) {
1186 wv_cu_show_one(dev, lp, i, p);
1189 if (p >= OFFSET_CU + NTXBLOCKS * TXBLOCKZ)
1190 p -= NTXBLOCKS * TXBLOCKZ;
1194 #endif /* DEBUG_I82586_SHOW */
1196 #ifdef DEBUG_DEVICE_SHOW
1197 /*------------------------------------------------------------------*/
1199 * Print the formatted status of the WaveLAN PCMCIA device driver.
1201 static void wv_dev_show(struct net_device * dev)
1203 printk(KERN_DEBUG "dev:");
1204 printk(" state=%lX,", dev->state);
1205 printk(" trans_start=%ld,", dev->trans_start);
1206 printk(" flags=0x%x,", dev->flags);
1210 /*------------------------------------------------------------------*/
1212 * Print the formatted status of the WaveLAN PCMCIA device driver's
1213 * private information.
1215 static void wv_local_show(struct net_device * dev)
1219 lp = (net_local *) dev->priv;
1221 printk(KERN_DEBUG "local:");
1222 printk(" tx_n_in_use=%d,", lp->tx_n_in_use);
1223 printk(" hacr=0x%x,", lp->hacr);
1224 printk(" rx_head=0x%x,", lp->rx_head);
1225 printk(" rx_last=0x%x,", lp->rx_last);
1226 printk(" tx_first_free=0x%x,", lp->tx_first_free);
1227 printk(" tx_first_in_use=0x%x,", lp->tx_first_in_use);
1229 } /* wv_local_show */
1230 #endif /* DEBUG_DEVICE_SHOW */
1232 #if defined(DEBUG_RX_INFO) || defined(DEBUG_TX_INFO)
1233 /*------------------------------------------------------------------*/
1235 * Dump packet header (and content if necessary) on the screen
1237 static inline void wv_packet_info(u8 * p, /* Packet to dump */
1238 int length, /* Length of the packet */
1239 char *msg1, /* Name of the device */
1241 { /* Name of the function */
1244 DECLARE_MAC_BUF(mac);
1247 "%s: %s(): dest %s, length %d\n",
1248 msg1, msg2, print_mac(mac, p), length);
1250 "%s: %s(): src %s, type 0x%02X%02X\n",
1251 msg1, msg2, print_mac(mac, &p[6]), p[12], p[13]);
1253 #ifdef DEBUG_PACKET_DUMP
1255 printk(KERN_DEBUG "data=\"");
1257 if ((maxi = length) > DEBUG_PACKET_DUMP)
1258 maxi = DEBUG_PACKET_DUMP;
1259 for (i = 14; i < maxi; i++)
1260 if (p[i] >= ' ' && p[i] <= '~')
1261 printk(" %c", p[i]);
1263 printk("%02X", p[i]);
1267 printk(KERN_DEBUG "\n");
1268 #endif /* DEBUG_PACKET_DUMP */
1270 #endif /* defined(DEBUG_RX_INFO) || defined(DEBUG_TX_INFO) */
1272 /*------------------------------------------------------------------*/
1274 * This is the information which is displayed by the driver at startup.
1275 * There are lots of flags for configuring it to your liking.
1277 static void wv_init_info(struct net_device * dev)
1279 short ioaddr = dev->base_addr;
1280 net_local *lp = (net_local *) dev->priv;
1282 #ifdef DEBUG_BASIC_SHOW
1283 DECLARE_MAC_BUF(mac);
1286 /* Read the parameter storage area */
1287 psa_read(ioaddr, lp->hacr, 0, (unsigned char *) &psa, sizeof(psa));
1289 #ifdef DEBUG_PSA_SHOW
1292 #ifdef DEBUG_MMC_SHOW
1295 #ifdef DEBUG_I82586_SHOW
1299 #ifdef DEBUG_BASIC_SHOW
1300 /* Now, let's go for the basic stuff. */
1301 printk(KERN_NOTICE "%s: WaveLAN at %#x, %s, IRQ %d",
1302 dev->name, ioaddr, print_mac(mac, dev->dev_addr), dev->irq);
1304 /* Print current network ID. */
1305 if (psa.psa_nwid_select)
1306 printk(", nwid 0x%02X-%02X", psa.psa_nwid[0],
1309 printk(", nwid off");
1312 if (!(mmc_in(ioaddr, mmroff(0, mmr_fee_status)) &
1313 (MMR_FEE_STATUS_DWLD | MMR_FEE_STATUS_BUSY))) {
1314 unsigned short freq;
1316 /* Ask the EEPROM to read the frequency from the first area. */
1317 fee_read(ioaddr, 0x00, &freq, 1);
1319 /* Print frequency */
1320 printk(", 2.00, %ld", (freq >> 6) + 2400L);
1327 switch (psa.psa_comp_number) {
1328 case PSA_COMP_PC_AT_915:
1329 case PSA_COMP_PC_AT_2400:
1332 case PSA_COMP_PC_MC_915:
1333 case PSA_COMP_PC_MC_2400:
1336 case PSA_COMP_PCMCIA_915:
1343 switch (psa.psa_subband) {
1344 case PSA_SUBBAND_915:
1347 case PSA_SUBBAND_2425:
1350 case PSA_SUBBAND_2460:
1353 case PSA_SUBBAND_2484:
1356 case PSA_SUBBAND_2430_5:
1365 #endif /* DEBUG_BASIC_SHOW */
1367 #ifdef DEBUG_VERSION_SHOW
1368 /* Print version information */
1369 printk(KERN_NOTICE "%s", version);
1371 } /* wv_init_info */
1373 /********************* IOCTL, STATS & RECONFIG *********************/
1375 * We found here routines that are called by Linux on different
1376 * occasions after the configuration and not for transmitting data
1377 * These may be called when the user use ifconfig, /proc/net/dev
1378 * or wireless extensions
1381 /*------------------------------------------------------------------*/
1383 * Get the current Ethernet statistics. This may be called with the
1384 * card open or closed.
1385 * Used when the user read /proc/net/dev
1387 static en_stats *wavelan_get_stats(struct net_device * dev)
1389 #ifdef DEBUG_IOCTL_TRACE
1390 printk(KERN_DEBUG "%s: <>wavelan_get_stats()\n", dev->name);
1393 return (&((net_local *) dev->priv)->stats);
1396 /*------------------------------------------------------------------*/
1398 * Set or clear the multicast filter for this adaptor.
1399 * num_addrs == -1 Promiscuous mode, receive all packets
1400 * num_addrs == 0 Normal mode, clear multicast list
1401 * num_addrs > 0 Multicast mode, receive normal and MC packets,
1402 * and do best-effort filtering.
1404 static void wavelan_set_multicast_list(struct net_device * dev)
1406 net_local *lp = (net_local *) dev->priv;
1408 #ifdef DEBUG_IOCTL_TRACE
1409 printk(KERN_DEBUG "%s: ->wavelan_set_multicast_list()\n",
1413 #ifdef DEBUG_IOCTL_INFO
1415 "%s: wavelan_set_multicast_list(): setting Rx mode %02X to %d addresses.\n",
1416 dev->name, dev->flags, dev->mc_count);
1419 /* Are we asking for promiscuous mode,
1420 * or all multicast addresses (we don't have that!)
1421 * or too many multicast addresses for the hardware filter? */
1422 if ((dev->flags & IFF_PROMISC) ||
1423 (dev->flags & IFF_ALLMULTI) ||
1424 (dev->mc_count > I82586_MAX_MULTICAST_ADDRESSES)) {
1426 * Enable promiscuous mode: receive all packets.
1428 if (!lp->promiscuous) {
1429 lp->promiscuous = 1;
1432 wv_82586_reconfig(dev);
1434 /* Tell the kernel that we are doing a really bad job. */
1435 dev->flags |= IFF_PROMISC;
1438 /* Are there multicast addresses to send? */
1439 if (dev->mc_list != (struct dev_mc_list *) NULL) {
1441 * Disable promiscuous mode, but receive all packets
1444 #ifdef MULTICAST_AVOID
1445 if (lp->promiscuous || (dev->mc_count != lp->mc_count))
1448 lp->promiscuous = 0;
1449 lp->mc_count = dev->mc_count;
1451 wv_82586_reconfig(dev);
1455 * Switch to normal mode: disable promiscuous mode and
1456 * clear the multicast list.
1458 if (lp->promiscuous || lp->mc_count == 0) {
1459 lp->promiscuous = 0;
1462 wv_82586_reconfig(dev);
1465 #ifdef DEBUG_IOCTL_TRACE
1466 printk(KERN_DEBUG "%s: <-wavelan_set_multicast_list()\n",
1471 /*------------------------------------------------------------------*/
1473 * This function doesn't exist.
1474 * (Note : it was a nice way to test the reconfigure stuff...)
1476 #ifdef SET_MAC_ADDRESS
1477 static int wavelan_set_mac_address(struct net_device * dev, void *addr)
1479 struct sockaddr *mac = addr;
1481 /* Copy the address. */
1482 memcpy(dev->dev_addr, mac->sa_data, WAVELAN_ADDR_SIZE);
1484 /* Reconfigure the beast. */
1485 wv_82586_reconfig(dev);
1489 #endif /* SET_MAC_ADDRESS */
1492 /*------------------------------------------------------------------*/
1494 * Frequency setting (for hardware capable of it)
1495 * It's a bit complicated and you don't really want to look into it.
1496 * (called in wavelan_ioctl)
1498 static int wv_set_frequency(unsigned long ioaddr, /* I/O port of the card */
1499 iw_freq * frequency)
1501 const int BAND_NUM = 10; /* Number of bands */
1502 long freq = 0L; /* offset to 2.4 GHz in .5 MHz */
1503 #ifdef DEBUG_IOCTL_INFO
1507 /* Setting by frequency */
1508 /* Theoretically, you may set any frequency between
1509 * the two limits with a 0.5 MHz precision. In practice,
1510 * I don't want you to have trouble with local regulations.
1512 if ((frequency->e == 1) &&
1513 (frequency->m >= (int) 2.412e8)
1514 && (frequency->m <= (int) 2.487e8)) {
1515 freq = ((frequency->m / 10000) - 24000L) / 5;
1518 /* Setting by channel (same as wfreqsel) */
1519 /* Warning: each channel is 22 MHz wide, so some of the channels
1520 * will interfere. */
1521 if ((frequency->e == 0) && (frequency->m < BAND_NUM)) {
1522 /* Get frequency offset. */
1523 freq = channel_bands[frequency->m] >> 1;
1526 /* Verify that the frequency is allowed. */
1528 u16 table[10]; /* Authorized frequency table */
1530 /* Read the frequency table. */
1531 fee_read(ioaddr, 0x71, table, 10);
1533 #ifdef DEBUG_IOCTL_INFO
1534 printk(KERN_DEBUG "Frequency table: ");
1535 for (i = 0; i < 10; i++) {
1536 printk(" %04X", table[i]);
1541 /* Look in the table to see whether the frequency is allowed. */
1542 if (!(table[9 - ((freq - 24) / 16)] &
1543 (1 << ((freq - 24) % 16)))) return -EINVAL; /* not allowed */
1547 /* if we get a usable frequency */
1549 unsigned short area[16];
1550 unsigned short dac[2];
1551 unsigned short area_verify[16];
1552 unsigned short dac_verify[2];
1553 /* Corresponding gain (in the power adjust value table)
1554 * See AT&T WaveLAN Data Manual, REF 407-024689/E, page 3-8
1555 * and WCIN062D.DOC, page 6.2.9. */
1556 unsigned short power_limit[] = { 40, 80, 120, 160, 0 };
1557 int power_band = 0; /* Selected band */
1558 unsigned short power_adjust; /* Correct value */
1560 /* Search for the gain. */
1562 while ((freq > power_limit[power_band]) &&
1563 (power_limit[++power_band] != 0));
1565 /* Read the first area. */
1566 fee_read(ioaddr, 0x00, area, 16);
1569 fee_read(ioaddr, 0x60, dac, 2);
1571 /* Read the new power adjust value. */
1572 fee_read(ioaddr, 0x6B - (power_band >> 1), &power_adjust,
1574 if (power_band & 0x1)
1577 power_adjust &= 0xFF;
1579 #ifdef DEBUG_IOCTL_INFO
1580 printk(KERN_DEBUG "WaveLAN EEPROM Area 1: ");
1581 for (i = 0; i < 16; i++) {
1582 printk(" %04X", area[i]);
1586 printk(KERN_DEBUG "WaveLAN EEPROM DAC: %04X %04X\n",
1590 /* Frequency offset (for info only) */
1591 area[0] = ((freq << 5) & 0xFFE0) | (area[0] & 0x1F);
1593 /* Receiver Principle main divider coefficient */
1594 area[3] = (freq >> 1) + 2400L - 352L;
1595 area[2] = ((freq & 0x1) << 4) | (area[2] & 0xFFEF);
1597 /* Transmitter Main divider coefficient */
1598 area[13] = (freq >> 1) + 2400L;
1599 area[12] = ((freq & 0x1) << 4) | (area[2] & 0xFFEF);
1601 /* Other parts of the area are flags, bit streams or unused. */
1603 /* Set the value in the DAC. */
1604 dac[1] = ((power_adjust >> 1) & 0x7F) | (dac[1] & 0xFF80);
1605 dac[0] = ((power_adjust & 0x1) << 4) | (dac[0] & 0xFFEF);
1607 /* Write the first area. */
1608 fee_write(ioaddr, 0x00, area, 16);
1610 /* Write the DAC. */
1611 fee_write(ioaddr, 0x60, dac, 2);
1613 /* We now should verify here that the writing of the EEPROM went OK. */
1615 /* Reread the first area. */
1616 fee_read(ioaddr, 0x00, area_verify, 16);
1618 /* Reread the DAC. */
1619 fee_read(ioaddr, 0x60, dac_verify, 2);
1622 if (memcmp(area, area_verify, 16 * 2) ||
1623 memcmp(dac, dac_verify, 2 * 2)) {
1624 #ifdef DEBUG_IOCTL_ERROR
1626 "WaveLAN: wv_set_frequency: unable to write new frequency to EEPROM(?).\n");
1631 /* We must download the frequency parameters to the
1632 * synthesizers (from the EEPROM - area 1)
1633 * Note: as the EEPROM is automatically decremented, we set the end
1635 mmc_out(ioaddr, mmwoff(0, mmw_fee_addr), 0x0F);
1636 mmc_out(ioaddr, mmwoff(0, mmw_fee_ctrl),
1637 MMW_FEE_CTRL_READ | MMW_FEE_CTRL_DWLD);
1639 /* Wait until the download is finished. */
1640 fee_wait(ioaddr, 100, 100);
1642 /* We must now download the power adjust value (gain) to
1643 * the synthesizers (from the EEPROM - area 7 - DAC). */
1644 mmc_out(ioaddr, mmwoff(0, mmw_fee_addr), 0x61);
1645 mmc_out(ioaddr, mmwoff(0, mmw_fee_ctrl),
1646 MMW_FEE_CTRL_READ | MMW_FEE_CTRL_DWLD);
1648 /* Wait for the download to finish. */
1649 fee_wait(ioaddr, 100, 100);
1651 #ifdef DEBUG_IOCTL_INFO
1652 /* Verification of what we have done */
1654 printk(KERN_DEBUG "WaveLAN EEPROM Area 1: ");
1655 for (i = 0; i < 16; i++) {
1656 printk(" %04X", area_verify[i]);
1660 printk(KERN_DEBUG "WaveLAN EEPROM DAC: %04X %04X\n",
1661 dac_verify[0], dac_verify[1]);
1666 return -EINVAL; /* Bah, never get there... */
1669 /*------------------------------------------------------------------*/
1671 * Give the list of available frequencies.
1673 static int wv_frequency_list(unsigned long ioaddr, /* I/O port of the card */
1674 iw_freq * list, /* List of frequencies to fill */
1676 { /* Maximum number of frequencies */
1677 u16 table[10]; /* Authorized frequency table */
1678 long freq = 0L; /* offset to 2.4 GHz in .5 MHz + 12 MHz */
1679 int i; /* index in the table */
1680 int c = 0; /* Channel number */
1682 /* Read the frequency table. */
1683 fee_read(ioaddr, 0x71 /* frequency table */ , table, 10);
1685 /* Check all frequencies. */
1687 for (freq = 0; freq < 150; freq++)
1688 /* Look in the table if the frequency is allowed */
1689 if (table[9 - (freq / 16)] & (1 << (freq % 16))) {
1690 /* Compute approximate channel number */
1691 while ((c < ARRAY_SIZE(channel_bands)) &&
1692 (((channel_bands[c] >> 1) - 24) < freq))
1694 list[i].i = c; /* Set the list index */
1696 /* put in the list */
1697 list[i].m = (((freq + 24) * 5) + 24000L) * 10000;
1708 #ifdef IW_WIRELESS_SPY
1709 /*------------------------------------------------------------------*/
1711 * Gather wireless spy statistics: for each packet, compare the source
1712 * address with our list, and if they match, get the statistics.
1713 * Sorry, but this function really needs the wireless extensions.
1715 static inline void wl_spy_gather(struct net_device * dev,
1716 u8 * mac, /* MAC address */
1717 u8 * stats) /* Statistics to gather */
1719 struct iw_quality wstats;
1721 wstats.qual = stats[2] & MMR_SGNL_QUAL;
1722 wstats.level = stats[0] & MMR_SIGNAL_LVL;
1723 wstats.noise = stats[1] & MMR_SILENCE_LVL;
1724 wstats.updated = 0x7;
1726 /* Update spy records */
1727 wireless_spy_update(dev, mac, &wstats);
1729 #endif /* IW_WIRELESS_SPY */
1732 /*------------------------------------------------------------------*/
1734 * This function calculates a histogram of the signal level.
1735 * As the noise is quite constant, it's like doing it on the SNR.
1736 * We have defined a set of interval (lp->his_range), and each time
1737 * the level goes in that interval, we increment the count (lp->his_sum).
1738 * With this histogram you may detect if one WaveLAN is really weak,
1739 * or you may also calculate the mean and standard deviation of the level.
1741 static inline void wl_his_gather(struct net_device * dev, u8 * stats)
1742 { /* Statistics to gather */
1743 net_local *lp = (net_local *) dev->priv;
1744 u8 level = stats[0] & MMR_SIGNAL_LVL;
1747 /* Find the correct interval. */
1749 while ((i < (lp->his_number - 1))
1750 && (level >= lp->his_range[i++]));
1752 /* Increment interval counter. */
1755 #endif /* HISTOGRAM */
1757 /*------------------------------------------------------------------*/
1759 * Wireless Handler : get protocol name
1761 static int wavelan_get_name(struct net_device *dev,
1762 struct iw_request_info *info,
1763 union iwreq_data *wrqu,
1766 strcpy(wrqu->name, "WaveLAN");
1770 /*------------------------------------------------------------------*/
1772 * Wireless Handler : set NWID
1774 static int wavelan_set_nwid(struct net_device *dev,
1775 struct iw_request_info *info,
1776 union iwreq_data *wrqu,
1779 unsigned long ioaddr = dev->base_addr;
1780 net_local *lp = (net_local *) dev->priv; /* lp is not unused */
1783 unsigned long flags;
1786 /* Disable interrupts and save flags. */
1787 spin_lock_irqsave(&lp->spinlock, flags);
1789 /* Set NWID in WaveLAN. */
1790 if (!wrqu->nwid.disabled) {
1791 /* Set NWID in psa */
1792 psa.psa_nwid[0] = (wrqu->nwid.value & 0xFF00) >> 8;
1793 psa.psa_nwid[1] = wrqu->nwid.value & 0xFF;
1794 psa.psa_nwid_select = 0x01;
1795 psa_write(ioaddr, lp->hacr,
1796 (char *) psa.psa_nwid - (char *) &psa,
1797 (unsigned char *) psa.psa_nwid, 3);
1799 /* Set NWID in mmc. */
1800 m.w.mmw_netw_id_l = psa.psa_nwid[1];
1801 m.w.mmw_netw_id_h = psa.psa_nwid[0];
1803 (char *) &m.w.mmw_netw_id_l -
1805 (unsigned char *) &m.w.mmw_netw_id_l, 2);
1806 mmc_out(ioaddr, mmwoff(0, mmw_loopt_sel), 0x00);
1808 /* Disable NWID in the psa. */
1809 psa.psa_nwid_select = 0x00;
1810 psa_write(ioaddr, lp->hacr,
1811 (char *) &psa.psa_nwid_select -
1813 (unsigned char *) &psa.psa_nwid_select,
1816 /* Disable NWID in the mmc (no filtering). */
1817 mmc_out(ioaddr, mmwoff(0, mmw_loopt_sel),
1818 MMW_LOOPT_SEL_DIS_NWID);
1820 /* update the Wavelan checksum */
1821 update_psa_checksum(dev, ioaddr, lp->hacr);
1823 /* Enable interrupts and restore flags. */
1824 spin_unlock_irqrestore(&lp->spinlock, flags);
1829 /*------------------------------------------------------------------*/
1831 * Wireless Handler : get NWID
1833 static int wavelan_get_nwid(struct net_device *dev,
1834 struct iw_request_info *info,
1835 union iwreq_data *wrqu,
1838 unsigned long ioaddr = dev->base_addr;
1839 net_local *lp = (net_local *) dev->priv; /* lp is not unused */
1841 unsigned long flags;
1844 /* Disable interrupts and save flags. */
1845 spin_lock_irqsave(&lp->spinlock, flags);
1847 /* Read the NWID. */
1848 psa_read(ioaddr, lp->hacr,
1849 (char *) psa.psa_nwid - (char *) &psa,
1850 (unsigned char *) psa.psa_nwid, 3);
1851 wrqu->nwid.value = (psa.psa_nwid[0] << 8) + psa.psa_nwid[1];
1852 wrqu->nwid.disabled = !(psa.psa_nwid_select);
1853 wrqu->nwid.fixed = 1; /* Superfluous */
1855 /* Enable interrupts and restore flags. */
1856 spin_unlock_irqrestore(&lp->spinlock, flags);
1861 /*------------------------------------------------------------------*/
1863 * Wireless Handler : set frequency
1865 static int wavelan_set_freq(struct net_device *dev,
1866 struct iw_request_info *info,
1867 union iwreq_data *wrqu,
1870 unsigned long ioaddr = dev->base_addr;
1871 net_local *lp = (net_local *) dev->priv; /* lp is not unused */
1872 unsigned long flags;
1875 /* Disable interrupts and save flags. */
1876 spin_lock_irqsave(&lp->spinlock, flags);
1878 /* Attempt to recognise 2.00 cards (2.4 GHz frequency selectable). */
1879 if (!(mmc_in(ioaddr, mmroff(0, mmr_fee_status)) &
1880 (MMR_FEE_STATUS_DWLD | MMR_FEE_STATUS_BUSY)))
1881 ret = wv_set_frequency(ioaddr, &(wrqu->freq));
1885 /* Enable interrupts and restore flags. */
1886 spin_unlock_irqrestore(&lp->spinlock, flags);
1891 /*------------------------------------------------------------------*/
1893 * Wireless Handler : get frequency
1895 static int wavelan_get_freq(struct net_device *dev,
1896 struct iw_request_info *info,
1897 union iwreq_data *wrqu,
1900 unsigned long ioaddr = dev->base_addr;
1901 net_local *lp = (net_local *) dev->priv; /* lp is not unused */
1903 unsigned long flags;
1906 /* Disable interrupts and save flags. */
1907 spin_lock_irqsave(&lp->spinlock, flags);
1909 /* Attempt to recognise 2.00 cards (2.4 GHz frequency selectable).
1910 * Does it work for everybody, especially old cards? */
1911 if (!(mmc_in(ioaddr, mmroff(0, mmr_fee_status)) &
1912 (MMR_FEE_STATUS_DWLD | MMR_FEE_STATUS_BUSY))) {
1913 unsigned short freq;
1915 /* Ask the EEPROM to read the frequency from the first area. */
1916 fee_read(ioaddr, 0x00, &freq, 1);
1917 wrqu->freq.m = ((freq >> 5) * 5 + 24000L) * 10000;
1920 psa_read(ioaddr, lp->hacr,
1921 (char *) &psa.psa_subband - (char *) &psa,
1922 (unsigned char *) &psa.psa_subband, 1);
1924 if (psa.psa_subband <= 4) {
1925 wrqu->freq.m = fixed_bands[psa.psa_subband];
1926 wrqu->freq.e = (psa.psa_subband != 0);
1931 /* Enable interrupts and restore flags. */
1932 spin_unlock_irqrestore(&lp->spinlock, flags);
1937 /*------------------------------------------------------------------*/
1939 * Wireless Handler : set level threshold
1941 static int wavelan_set_sens(struct net_device *dev,
1942 struct iw_request_info *info,
1943 union iwreq_data *wrqu,
1946 unsigned long ioaddr = dev->base_addr;
1947 net_local *lp = (net_local *) dev->priv; /* lp is not unused */
1949 unsigned long flags;
1952 /* Disable interrupts and save flags. */
1953 spin_lock_irqsave(&lp->spinlock, flags);
1955 /* Set the level threshold. */
1956 /* We should complain loudly if wrqu->sens.fixed = 0, because we
1957 * can't set auto mode... */
1958 psa.psa_thr_pre_set = wrqu->sens.value & 0x3F;
1959 psa_write(ioaddr, lp->hacr,
1960 (char *) &psa.psa_thr_pre_set - (char *) &psa,
1961 (unsigned char *) &psa.psa_thr_pre_set, 1);
1962 /* update the Wavelan checksum */
1963 update_psa_checksum(dev, ioaddr, lp->hacr);
1964 mmc_out(ioaddr, mmwoff(0, mmw_thr_pre_set),
1965 psa.psa_thr_pre_set);
1967 /* Enable interrupts and restore flags. */
1968 spin_unlock_irqrestore(&lp->spinlock, flags);
1973 /*------------------------------------------------------------------*/
1975 * Wireless Handler : get level threshold
1977 static int wavelan_get_sens(struct net_device *dev,
1978 struct iw_request_info *info,
1979 union iwreq_data *wrqu,
1982 unsigned long ioaddr = dev->base_addr;
1983 net_local *lp = (net_local *) dev->priv; /* lp is not unused */
1985 unsigned long flags;
1988 /* Disable interrupts and save flags. */
1989 spin_lock_irqsave(&lp->spinlock, flags);
1991 /* Read the level threshold. */
1992 psa_read(ioaddr, lp->hacr,
1993 (char *) &psa.psa_thr_pre_set - (char *) &psa,
1994 (unsigned char *) &psa.psa_thr_pre_set, 1);
1995 wrqu->sens.value = psa.psa_thr_pre_set & 0x3F;
1996 wrqu->sens.fixed = 1;
1998 /* Enable interrupts and restore flags. */
1999 spin_unlock_irqrestore(&lp->spinlock, flags);
2004 /*------------------------------------------------------------------*/
2006 * Wireless Handler : set encryption key
2008 static int wavelan_set_encode(struct net_device *dev,
2009 struct iw_request_info *info,
2010 union iwreq_data *wrqu,
2013 unsigned long ioaddr = dev->base_addr;
2014 net_local *lp = (net_local *) dev->priv; /* lp is not unused */
2015 unsigned long flags;
2019 /* Disable interrupts and save flags. */
2020 spin_lock_irqsave(&lp->spinlock, flags);
2022 /* Check if capable of encryption */
2023 if (!mmc_encr(ioaddr)) {
2027 /* Check the size of the key */
2028 if((wrqu->encoding.length != 8) && (wrqu->encoding.length != 0)) {
2033 /* Basic checking... */
2034 if (wrqu->encoding.length == 8) {
2035 /* Copy the key in the driver */
2036 memcpy(psa.psa_encryption_key, extra,
2037 wrqu->encoding.length);
2038 psa.psa_encryption_select = 1;
2040 psa_write(ioaddr, lp->hacr,
2041 (char *) &psa.psa_encryption_select -
2043 (unsigned char *) &psa.
2044 psa_encryption_select, 8 + 1);
2046 mmc_out(ioaddr, mmwoff(0, mmw_encr_enable),
2047 MMW_ENCR_ENABLE_EN | MMW_ENCR_ENABLE_MODE);
2048 mmc_write(ioaddr, mmwoff(0, mmw_encr_key),
2049 (unsigned char *) &psa.
2050 psa_encryption_key, 8);
2053 /* disable encryption */
2054 if (wrqu->encoding.flags & IW_ENCODE_DISABLED) {
2055 psa.psa_encryption_select = 0;
2056 psa_write(ioaddr, lp->hacr,
2057 (char *) &psa.psa_encryption_select -
2059 (unsigned char *) &psa.
2060 psa_encryption_select, 1);
2062 mmc_out(ioaddr, mmwoff(0, mmw_encr_enable), 0);
2064 /* update the Wavelan checksum */
2065 update_psa_checksum(dev, ioaddr, lp->hacr);
2068 /* Enable interrupts and restore flags. */
2069 spin_unlock_irqrestore(&lp->spinlock, flags);
2074 /*------------------------------------------------------------------*/
2076 * Wireless Handler : get encryption key
2078 static int wavelan_get_encode(struct net_device *dev,
2079 struct iw_request_info *info,
2080 union iwreq_data *wrqu,
2083 unsigned long ioaddr = dev->base_addr;
2084 net_local *lp = (net_local *) dev->priv; /* lp is not unused */
2086 unsigned long flags;
2089 /* Disable interrupts and save flags. */
2090 spin_lock_irqsave(&lp->spinlock, flags);
2092 /* Check if encryption is available */
2093 if (!mmc_encr(ioaddr)) {
2096 /* Read the encryption key */
2097 psa_read(ioaddr, lp->hacr,
2098 (char *) &psa.psa_encryption_select -
2100 (unsigned char *) &psa.
2101 psa_encryption_select, 1 + 8);
2103 /* encryption is enabled ? */
2104 if (psa.psa_encryption_select)
2105 wrqu->encoding.flags = IW_ENCODE_ENABLED;
2107 wrqu->encoding.flags = IW_ENCODE_DISABLED;
2108 wrqu->encoding.flags |= mmc_encr(ioaddr);
2110 /* Copy the key to the user buffer */
2111 wrqu->encoding.length = 8;
2112 memcpy(extra, psa.psa_encryption_key, wrqu->encoding.length);
2115 /* Enable interrupts and restore flags. */
2116 spin_unlock_irqrestore(&lp->spinlock, flags);
2121 /*------------------------------------------------------------------*/
2123 * Wireless Handler : get range info
2125 static int wavelan_get_range(struct net_device *dev,
2126 struct iw_request_info *info,
2127 union iwreq_data *wrqu,
2130 unsigned long ioaddr = dev->base_addr;
2131 net_local *lp = (net_local *) dev->priv; /* lp is not unused */
2132 struct iw_range *range = (struct iw_range *) extra;
2133 unsigned long flags;
2136 /* Set the length (very important for backward compatibility) */
2137 wrqu->data.length = sizeof(struct iw_range);
2139 /* Set all the info we don't care or don't know about to zero */
2140 memset(range, 0, sizeof(struct iw_range));
2142 /* Set the Wireless Extension versions */
2143 range->we_version_compiled = WIRELESS_EXT;
2144 range->we_version_source = 9;
2146 /* Set information in the range struct. */
2147 range->throughput = 1.6 * 1000 * 1000; /* don't argue on this ! */
2148 range->min_nwid = 0x0000;
2149 range->max_nwid = 0xFFFF;
2151 range->sensitivity = 0x3F;
2152 range->max_qual.qual = MMR_SGNL_QUAL;
2153 range->max_qual.level = MMR_SIGNAL_LVL;
2154 range->max_qual.noise = MMR_SILENCE_LVL;
2155 range->avg_qual.qual = MMR_SGNL_QUAL; /* Always max */
2156 /* Need to get better values for those two */
2157 range->avg_qual.level = 30;
2158 range->avg_qual.noise = 8;
2160 range->num_bitrates = 1;
2161 range->bitrate[0] = 2000000; /* 2 Mb/s */
2163 /* Event capability (kernel + driver) */
2164 range->event_capa[0] = (IW_EVENT_CAPA_MASK(0x8B02) |
2165 IW_EVENT_CAPA_MASK(0x8B04));
2166 range->event_capa[1] = IW_EVENT_CAPA_K_1;
2168 /* Disable interrupts and save flags. */
2169 spin_lock_irqsave(&lp->spinlock, flags);
2171 /* Attempt to recognise 2.00 cards (2.4 GHz frequency selectable). */
2172 if (!(mmc_in(ioaddr, mmroff(0, mmr_fee_status)) &
2173 (MMR_FEE_STATUS_DWLD | MMR_FEE_STATUS_BUSY))) {
2174 range->num_channels = 10;
2175 range->num_frequency = wv_frequency_list(ioaddr, range->freq,
2176 IW_MAX_FREQUENCIES);
2178 range->num_channels = range->num_frequency = 0;
2180 /* Encryption supported ? */
2181 if (mmc_encr(ioaddr)) {
2182 range->encoding_size[0] = 8; /* DES = 64 bits key */
2183 range->num_encoding_sizes = 1;
2184 range->max_encoding_tokens = 1; /* Only one key possible */
2186 range->num_encoding_sizes = 0;
2187 range->max_encoding_tokens = 0;
2190 /* Enable interrupts and restore flags. */
2191 spin_unlock_irqrestore(&lp->spinlock, flags);
2196 /*------------------------------------------------------------------*/
2198 * Wireless Private Handler : set quality threshold
2200 static int wavelan_set_qthr(struct net_device *dev,
2201 struct iw_request_info *info,
2202 union iwreq_data *wrqu,
2205 unsigned long ioaddr = dev->base_addr;
2206 net_local *lp = (net_local *) dev->priv; /* lp is not unused */
2208 unsigned long flags;
2210 /* Disable interrupts and save flags. */
2211 spin_lock_irqsave(&lp->spinlock, flags);
2213 psa.psa_quality_thr = *(extra) & 0x0F;
2214 psa_write(ioaddr, lp->hacr,
2215 (char *) &psa.psa_quality_thr - (char *) &psa,
2216 (unsigned char *) &psa.psa_quality_thr, 1);
2217 /* update the Wavelan checksum */
2218 update_psa_checksum(dev, ioaddr, lp->hacr);
2219 mmc_out(ioaddr, mmwoff(0, mmw_quality_thr),
2220 psa.psa_quality_thr);
2222 /* Enable interrupts and restore flags. */
2223 spin_unlock_irqrestore(&lp->spinlock, flags);
2228 /*------------------------------------------------------------------*/
2230 * Wireless Private Handler : get quality threshold
2232 static int wavelan_get_qthr(struct net_device *dev,
2233 struct iw_request_info *info,
2234 union iwreq_data *wrqu,
2237 unsigned long ioaddr = dev->base_addr;
2238 net_local *lp = (net_local *) dev->priv; /* lp is not unused */
2240 unsigned long flags;
2242 /* Disable interrupts and save flags. */
2243 spin_lock_irqsave(&lp->spinlock, flags);
2245 psa_read(ioaddr, lp->hacr,
2246 (char *) &psa.psa_quality_thr - (char *) &psa,
2247 (unsigned char *) &psa.psa_quality_thr, 1);
2248 *(extra) = psa.psa_quality_thr & 0x0F;
2250 /* Enable interrupts and restore flags. */
2251 spin_unlock_irqrestore(&lp->spinlock, flags);
2257 /*------------------------------------------------------------------*/
2259 * Wireless Private Handler : set histogram
2261 static int wavelan_set_histo(struct net_device *dev,
2262 struct iw_request_info *info,
2263 union iwreq_data *wrqu,
2266 net_local *lp = (net_local *) dev->priv; /* lp is not unused */
2268 /* Check the number of intervals. */
2269 if (wrqu->data.length > 16) {
2273 /* Disable histo while we copy the addresses.
2274 * As we don't disable interrupts, we need to do this */
2277 /* Are there ranges to copy? */
2278 if (wrqu->data.length > 0) {
2279 /* Copy interval ranges to the driver */
2280 memcpy(lp->his_range, extra, wrqu->data.length);
2284 printk(KERN_DEBUG "Histo :");
2285 for(i = 0; i < wrqu->data.length; i++)
2286 printk(" %d", lp->his_range[i]);
2290 /* Reset result structure. */
2291 memset(lp->his_sum, 0x00, sizeof(long) * 16);
2294 /* Now we can set the number of ranges */
2295 lp->his_number = wrqu->data.length;
2300 /*------------------------------------------------------------------*/
2302 * Wireless Private Handler : get histogram
2304 static int wavelan_get_histo(struct net_device *dev,
2305 struct iw_request_info *info,
2306 union iwreq_data *wrqu,
2309 net_local *lp = (net_local *) dev->priv; /* lp is not unused */
2311 /* Set the number of intervals. */
2312 wrqu->data.length = lp->his_number;
2314 /* Give back the distribution statistics */
2315 if(lp->his_number > 0)
2316 memcpy(extra, lp->his_sum, sizeof(long) * lp->his_number);
2320 #endif /* HISTOGRAM */
2322 /*------------------------------------------------------------------*/
2324 * Structures to export the Wireless Handlers
2327 static const iw_handler wavelan_handler[] =
2329 NULL, /* SIOCSIWNAME */
2330 wavelan_get_name, /* SIOCGIWNAME */
2331 wavelan_set_nwid, /* SIOCSIWNWID */
2332 wavelan_get_nwid, /* SIOCGIWNWID */
2333 wavelan_set_freq, /* SIOCSIWFREQ */
2334 wavelan_get_freq, /* SIOCGIWFREQ */
2335 NULL, /* SIOCSIWMODE */
2336 NULL, /* SIOCGIWMODE */
2337 wavelan_set_sens, /* SIOCSIWSENS */
2338 wavelan_get_sens, /* SIOCGIWSENS */
2339 NULL, /* SIOCSIWRANGE */
2340 wavelan_get_range, /* SIOCGIWRANGE */
2341 NULL, /* SIOCSIWPRIV */
2342 NULL, /* SIOCGIWPRIV */
2343 NULL, /* SIOCSIWSTATS */
2344 NULL, /* SIOCGIWSTATS */
2345 iw_handler_set_spy, /* SIOCSIWSPY */
2346 iw_handler_get_spy, /* SIOCGIWSPY */
2347 iw_handler_set_thrspy, /* SIOCSIWTHRSPY */
2348 iw_handler_get_thrspy, /* SIOCGIWTHRSPY */
2349 NULL, /* SIOCSIWAP */
2350 NULL, /* SIOCGIWAP */
2351 NULL, /* -- hole -- */
2352 NULL, /* SIOCGIWAPLIST */
2353 NULL, /* -- hole -- */
2354 NULL, /* -- hole -- */
2355 NULL, /* SIOCSIWESSID */
2356 NULL, /* SIOCGIWESSID */
2357 NULL, /* SIOCSIWNICKN */
2358 NULL, /* SIOCGIWNICKN */
2359 NULL, /* -- hole -- */
2360 NULL, /* -- hole -- */
2361 NULL, /* SIOCSIWRATE */
2362 NULL, /* SIOCGIWRATE */
2363 NULL, /* SIOCSIWRTS */
2364 NULL, /* SIOCGIWRTS */
2365 NULL, /* SIOCSIWFRAG */
2366 NULL, /* SIOCGIWFRAG */
2367 NULL, /* SIOCSIWTXPOW */
2368 NULL, /* SIOCGIWTXPOW */
2369 NULL, /* SIOCSIWRETRY */
2370 NULL, /* SIOCGIWRETRY */
2371 /* Bummer ! Why those are only at the end ??? */
2372 wavelan_set_encode, /* SIOCSIWENCODE */
2373 wavelan_get_encode, /* SIOCGIWENCODE */
2376 static const iw_handler wavelan_private_handler[] =
2378 wavelan_set_qthr, /* SIOCIWFIRSTPRIV */
2379 wavelan_get_qthr, /* SIOCIWFIRSTPRIV + 1 */
2381 wavelan_set_histo, /* SIOCIWFIRSTPRIV + 2 */
2382 wavelan_get_histo, /* SIOCIWFIRSTPRIV + 3 */
2383 #endif /* HISTOGRAM */
2386 static const struct iw_priv_args wavelan_private_args[] = {
2387 /*{ cmd, set_args, get_args, name } */
2388 { SIOCSIPQTHR, IW_PRIV_TYPE_BYTE | IW_PRIV_SIZE_FIXED | 1, 0, "setqualthr" },
2389 { SIOCGIPQTHR, 0, IW_PRIV_TYPE_BYTE | IW_PRIV_SIZE_FIXED | 1, "getqualthr" },
2390 { SIOCSIPHISTO, IW_PRIV_TYPE_BYTE | 16, 0, "sethisto" },
2391 { SIOCGIPHISTO, 0, IW_PRIV_TYPE_INT | 16, "gethisto" },
2394 static const struct iw_handler_def wavelan_handler_def =
2396 .num_standard = ARRAY_SIZE(wavelan_handler),
2397 .num_private = ARRAY_SIZE(wavelan_private_handler),
2398 .num_private_args = ARRAY_SIZE(wavelan_private_args),
2399 .standard = wavelan_handler,
2400 .private = wavelan_private_handler,
2401 .private_args = wavelan_private_args,
2402 .get_wireless_stats = wavelan_get_wireless_stats,
2405 /*------------------------------------------------------------------*/
2407 * Get wireless statistics.
2408 * Called by /proc/net/wireless
2410 static iw_stats *wavelan_get_wireless_stats(struct net_device * dev)
2412 unsigned long ioaddr = dev->base_addr;
2413 net_local *lp = (net_local *) dev->priv;
2416 unsigned long flags;
2418 #ifdef DEBUG_IOCTL_TRACE
2419 printk(KERN_DEBUG "%s: ->wavelan_get_wireless_stats()\n",
2424 if (lp == (net_local *) NULL)
2425 return (iw_stats *) NULL;
2427 /* Disable interrupts and save flags. */
2428 spin_lock_irqsave(&lp->spinlock, flags);
2430 wstats = &lp->wstats;
2432 /* Get data from the mmc. */
2433 mmc_out(ioaddr, mmwoff(0, mmw_freeze), 1);
2435 mmc_read(ioaddr, mmroff(0, mmr_dce_status), &m.mmr_dce_status, 1);
2436 mmc_read(ioaddr, mmroff(0, mmr_wrong_nwid_l), &m.mmr_wrong_nwid_l,
2438 mmc_read(ioaddr, mmroff(0, mmr_thr_pre_set), &m.mmr_thr_pre_set,
2441 mmc_out(ioaddr, mmwoff(0, mmw_freeze), 0);
2443 /* Copy data to wireless stuff. */
2444 wstats->status = m.mmr_dce_status & MMR_DCE_STATUS;
2445 wstats->qual.qual = m.mmr_sgnl_qual & MMR_SGNL_QUAL;
2446 wstats->qual.level = m.mmr_signal_lvl & MMR_SIGNAL_LVL;
2447 wstats->qual.noise = m.mmr_silence_lvl & MMR_SILENCE_LVL;
2448 wstats->qual.updated = (((m. mmr_signal_lvl & MMR_SIGNAL_LVL_VALID) >> 7)
2449 | ((m.mmr_signal_lvl & MMR_SIGNAL_LVL_VALID) >> 6)
2450 | ((m.mmr_silence_lvl & MMR_SILENCE_LVL_VALID) >> 5));
2451 wstats->discard.nwid += (m.mmr_wrong_nwid_h << 8) | m.mmr_wrong_nwid_l;
2452 wstats->discard.code = 0L;
2453 wstats->discard.misc = 0L;
2455 /* Enable interrupts and restore flags. */
2456 spin_unlock_irqrestore(&lp->spinlock, flags);
2458 #ifdef DEBUG_IOCTL_TRACE
2459 printk(KERN_DEBUG "%s: <-wavelan_get_wireless_stats()\n",
2465 /************************* PACKET RECEPTION *************************/
2467 * This part deals with receiving the packets.
2468 * The interrupt handler gets an interrupt when a packet has been
2469 * successfully received and calls this part.
2472 /*------------------------------------------------------------------*/
2474 * This routine does the actual copying of data (including the Ethernet
2475 * header structure) from the WaveLAN card to an sk_buff chain that
2476 * will be passed up to the network interface layer. NOTE: we
2477 * currently don't handle trailer protocols (neither does the rest of
2478 * the network interface), so if that is needed, it will (at least in
2479 * part) be added here. The contents of the receive ring buffer are
2480 * copied to a message chain that is then passed to the kernel.
2482 * Note: if any errors occur, the packet is "dropped on the floor".
2483 * (called by wv_packet_rcv())
2486 wv_packet_read(struct net_device * dev, u16 buf_off, int sksize)
2488 net_local *lp = (net_local *) dev->priv;
2489 unsigned long ioaddr = dev->base_addr;
2490 struct sk_buff *skb;
2492 #ifdef DEBUG_RX_TRACE
2493 printk(KERN_DEBUG "%s: ->wv_packet_read(0x%X, %d)\n",
2494 dev->name, buf_off, sksize);
2497 /* Allocate buffer for the data */
2498 if ((skb = dev_alloc_skb(sksize)) == (struct sk_buff *) NULL) {
2499 #ifdef DEBUG_RX_ERROR
2501 "%s: wv_packet_read(): could not alloc_skb(%d, GFP_ATOMIC).\n",
2504 lp->stats.rx_dropped++;
2508 /* Copy the packet to the buffer. */
2509 obram_read(ioaddr, buf_off, skb_put(skb, sksize), sksize);
2510 skb->protocol = eth_type_trans(skb, dev);
2512 #ifdef DEBUG_RX_INFO
2513 wv_packet_info(skb_mac_header(skb), sksize, dev->name,
2515 #endif /* DEBUG_RX_INFO */
2517 /* Statistics-gathering and associated stuff.
2518 * It seem a bit messy with all the define, but it's really
2521 #ifdef IW_WIRELESS_SPY /* defined in iw_handler.h */
2522 (lp->spy_data.spy_number > 0) ||
2523 #endif /* IW_WIRELESS_SPY */
2525 (lp->his_number > 0) ||
2526 #endif /* HISTOGRAM */
2528 u8 stats[3]; /* signal level, noise level, signal quality */
2530 /* Read signal level, silence level and signal quality bytes */
2531 /* Note: in the PCMCIA hardware, these are part of the frame.
2532 * It seems that for the ISA hardware, it's nowhere to be
2533 * found in the frame, so I'm obliged to do this (it has a
2534 * side effect on /proc/net/wireless).
2537 mmc_out(ioaddr, mmwoff(0, mmw_freeze), 1);
2538 mmc_read(ioaddr, mmroff(0, mmr_signal_lvl), stats, 3);
2539 mmc_out(ioaddr, mmwoff(0, mmw_freeze), 0);
2541 #ifdef DEBUG_RX_INFO
2543 "%s: wv_packet_read(): Signal level %d/63, Silence level %d/63, signal quality %d/16\n",
2544 dev->name, stats[0] & 0x3F, stats[1] & 0x3F,
2549 #ifdef IW_WIRELESS_SPY
2550 wl_spy_gather(dev, skb_mac_header(skb) + WAVELAN_ADDR_SIZE,
2552 #endif /* IW_WIRELESS_SPY */
2554 wl_his_gather(dev, stats);
2555 #endif /* HISTOGRAM */
2559 * Hand the packet to the network module.
2563 /* Keep statistics up to date */
2564 dev->last_rx = jiffies;
2565 lp->stats.rx_packets++;
2566 lp->stats.rx_bytes += sksize;
2568 #ifdef DEBUG_RX_TRACE
2569 printk(KERN_DEBUG "%s: <-wv_packet_read()\n", dev->name);
2573 /*------------------------------------------------------------------*/
2575 * Transfer as many packets as we can
2576 * from the device RAM.
2577 * (called in wavelan_interrupt()).
2578 * Note : the spinlock is already grabbed for us.
2580 static void wv_receive(struct net_device * dev)
2582 unsigned long ioaddr = dev->base_addr;
2583 net_local *lp = (net_local *) dev->priv;
2588 #ifdef DEBUG_RX_TRACE
2589 printk(KERN_DEBUG "%s: ->wv_receive()\n", dev->name);
2592 /* Loop on each received packet. */
2594 obram_read(ioaddr, lp->rx_head, (unsigned char *) &fd,
2597 /* Note about the status :
2598 * It start up to be 0 (the value we set). Then, when the RU
2599 * grab the buffer to prepare for reception, it sets the
2600 * FD_STATUS_B flag. When the RU has finished receiving the
2601 * frame, it clears FD_STATUS_B, set FD_STATUS_C to indicate
2602 * completion and set the other flags to indicate the eventual
2603 * errors. FD_STATUS_OK indicates that the reception was OK.
2606 /* If the current frame is not complete, we have reached the end. */
2607 if ((fd.fd_status & FD_STATUS_C) != FD_STATUS_C)
2608 break; /* This is how we exit the loop. */
2612 /* Check whether frame was correctly received. */
2613 if ((fd.fd_status & FD_STATUS_OK) == FD_STATUS_OK) {
2614 /* Does the frame contain a pointer to the data? Let's check. */
2615 if (fd.fd_rbd_offset != I82586NULL) {
2616 /* Read the receive buffer descriptor */
2617 obram_read(ioaddr, fd.fd_rbd_offset,
2618 (unsigned char *) &rbd,
2621 #ifdef DEBUG_RX_ERROR
2622 if ((rbd.rbd_status & RBD_STATUS_EOF) !=
2623 RBD_STATUS_EOF) printk(KERN_INFO
2624 "%s: wv_receive(): missing EOF flag.\n",
2627 if ((rbd.rbd_status & RBD_STATUS_F) !=
2628 RBD_STATUS_F) printk(KERN_INFO
2629 "%s: wv_receive(): missing F flag.\n",
2631 #endif /* DEBUG_RX_ERROR */
2633 /* Read the packet and transmit to Linux */
2634 wv_packet_read(dev, rbd.rbd_bufl,
2639 #ifdef DEBUG_RX_ERROR
2640 else /* if frame has no data */
2642 "%s: wv_receive(): frame has no data.\n",
2645 } else { /* If reception was no successful */
2647 lp->stats.rx_errors++;
2649 #ifdef DEBUG_RX_INFO
2651 "%s: wv_receive(): frame not received successfully (%X).\n",
2652 dev->name, fd.fd_status);
2655 #ifdef DEBUG_RX_ERROR
2656 if ((fd.fd_status & FD_STATUS_S6) != 0)
2658 "%s: wv_receive(): no EOF flag.\n",
2662 if ((fd.fd_status & FD_STATUS_S7) != 0) {
2663 lp->stats.rx_length_errors++;
2664 #ifdef DEBUG_RX_FAIL
2666 "%s: wv_receive(): frame too short.\n",
2671 if ((fd.fd_status & FD_STATUS_S8) != 0) {
2672 lp->stats.rx_over_errors++;
2673 #ifdef DEBUG_RX_FAIL
2675 "%s: wv_receive(): rx DMA overrun.\n",
2680 if ((fd.fd_status & FD_STATUS_S9) != 0) {
2681 lp->stats.rx_fifo_errors++;
2682 #ifdef DEBUG_RX_FAIL
2684 "%s: wv_receive(): ran out of resources.\n",
2689 if ((fd.fd_status & FD_STATUS_S10) != 0) {
2690 lp->stats.rx_frame_errors++;
2691 #ifdef DEBUG_RX_FAIL
2693 "%s: wv_receive(): alignment error.\n",
2698 if ((fd.fd_status & FD_STATUS_S11) != 0) {
2699 lp->stats.rx_crc_errors++;
2700 #ifdef DEBUG_RX_FAIL
2702 "%s: wv_receive(): CRC error.\n",
2709 obram_write(ioaddr, fdoff(lp->rx_head, fd_status),
2710 (unsigned char *) &fd.fd_status,
2711 sizeof(fd.fd_status));
2713 fd.fd_command = FD_COMMAND_EL;
2714 obram_write(ioaddr, fdoff(lp->rx_head, fd_command),
2715 (unsigned char *) &fd.fd_command,
2716 sizeof(fd.fd_command));
2719 obram_write(ioaddr, fdoff(lp->rx_last, fd_command),
2720 (unsigned char *) &fd.fd_command,
2721 sizeof(fd.fd_command));
2723 lp->rx_last = lp->rx_head;
2724 lp->rx_head = fd.fd_link_offset;
2725 } /* for(;;) -> loop on all frames */
2727 #ifdef DEBUG_RX_INFO
2729 printk(KERN_DEBUG "%s: wv_receive(): reaped %d\n",
2730 dev->name, nreaped);
2732 #ifdef DEBUG_RX_TRACE
2733 printk(KERN_DEBUG "%s: <-wv_receive()\n", dev->name);
2737 /*********************** PACKET TRANSMISSION ***********************/
2739 * This part deals with sending packets through the WaveLAN.
2743 /*------------------------------------------------------------------*/
2745 * This routine fills in the appropriate registers and memory
2746 * locations on the WaveLAN card and starts the card off on
2750 * Each block contains a transmit command, a NOP command,
2751 * a transmit block descriptor and a buffer.
2752 * The CU read the transmit block which point to the tbd,
2753 * read the tbd and the content of the buffer.
2754 * When it has finish with it, it goes to the next command
2755 * which in our case is the NOP. The NOP points on itself,
2756 * so the CU stop here.
2757 * When we add the next block, we modify the previous nop
2758 * to make it point on the new tx command.
2759 * Simple, isn't it ?
2761 * (called in wavelan_packet_xmit())
2763 static int wv_packet_write(struct net_device * dev, void *buf, short length)
2765 net_local *lp = (net_local *) dev->priv;
2766 unsigned long ioaddr = dev->base_addr;
2767 unsigned short txblock;
2768 unsigned short txpred;
2769 unsigned short tx_addr;
2770 unsigned short nop_addr;
2771 unsigned short tbd_addr;
2772 unsigned short buf_addr;
2777 unsigned long flags;
2779 #ifdef DEBUG_TX_TRACE
2780 printk(KERN_DEBUG "%s: ->wv_packet_write(%d)\n", dev->name,
2784 spin_lock_irqsave(&lp->spinlock, flags);
2786 /* Check nothing bad has happened */
2787 if (lp->tx_n_in_use == (NTXBLOCKS - 1)) {
2788 #ifdef DEBUG_TX_ERROR
2789 printk(KERN_INFO "%s: wv_packet_write(): Tx queue full.\n",
2792 spin_unlock_irqrestore(&lp->spinlock, flags);
2796 /* Calculate addresses of next block and previous block. */
2797 txblock = lp->tx_first_free;
2798 txpred = txblock - TXBLOCKZ;
2799 if (txpred < OFFSET_CU)
2800 txpred += NTXBLOCKS * TXBLOCKZ;
2801 lp->tx_first_free += TXBLOCKZ;
2802 if (lp->tx_first_free >= OFFSET_CU + NTXBLOCKS * TXBLOCKZ)
2803 lp->tx_first_free -= NTXBLOCKS * TXBLOCKZ;
2807 /* Calculate addresses of the different parts of the block. */
2809 nop_addr = tx_addr + sizeof(tx);
2810 tbd_addr = nop_addr + sizeof(nop);
2811 buf_addr = tbd_addr + sizeof(tbd);
2816 tx.tx_h.ac_status = 0;
2817 obram_write(ioaddr, toff(ac_tx_t, tx_addr, tx_h.ac_status),
2818 (unsigned char *) &tx.tx_h.ac_status,
2819 sizeof(tx.tx_h.ac_status));
2824 nop.nop_h.ac_status = 0;
2825 obram_write(ioaddr, toff(ac_nop_t, nop_addr, nop_h.ac_status),
2826 (unsigned char *) &nop.nop_h.ac_status,
2827 sizeof(nop.nop_h.ac_status));
2828 nop.nop_h.ac_link = nop_addr;
2829 obram_write(ioaddr, toff(ac_nop_t, nop_addr, nop_h.ac_link),
2830 (unsigned char *) &nop.nop_h.ac_link,
2831 sizeof(nop.nop_h.ac_link));
2834 * Transmit buffer descriptor
2836 tbd.tbd_status = TBD_STATUS_EOF | (TBD_STATUS_ACNT & clen);
2837 tbd.tbd_next_bd_offset = I82586NULL;
2838 tbd.tbd_bufl = buf_addr;
2840 obram_write(ioaddr, tbd_addr, (unsigned char *) &tbd, sizeof(tbd));
2845 obram_write(ioaddr, buf_addr, buf, length);
2848 * Overwrite the predecessor NOP link
2849 * so that it points to this txblock.
2851 nop_addr = txpred + sizeof(tx);
2852 nop.nop_h.ac_status = 0;
2853 obram_write(ioaddr, toff(ac_nop_t, nop_addr, nop_h.ac_status),
2854 (unsigned char *) &nop.nop_h.ac_status,
2855 sizeof(nop.nop_h.ac_status));
2856 nop.nop_h.ac_link = txblock;
2857 obram_write(ioaddr, toff(ac_nop_t, nop_addr, nop_h.ac_link),
2858 (unsigned char *) &nop.nop_h.ac_link,
2859 sizeof(nop.nop_h.ac_link));
2861 /* Make sure the watchdog will keep quiet for a while */
2862 dev->trans_start = jiffies;
2864 /* Keep stats up to date. */
2865 lp->stats.tx_bytes += length;
2867 if (lp->tx_first_in_use == I82586NULL)
2868 lp->tx_first_in_use = txblock;
2870 if (lp->tx_n_in_use < NTXBLOCKS - 1)
2871 netif_wake_queue(dev);
2873 spin_unlock_irqrestore(&lp->spinlock, flags);
2875 #ifdef DEBUG_TX_INFO
2876 wv_packet_info((u8 *) buf, length, dev->name,
2878 #endif /* DEBUG_TX_INFO */
2880 #ifdef DEBUG_TX_TRACE
2881 printk(KERN_DEBUG "%s: <-wv_packet_write()\n", dev->name);
2887 /*------------------------------------------------------------------*/
2889 * This routine is called when we want to send a packet (NET3 callback)
2890 * In this routine, we check if the harware is ready to accept
2891 * the packet. We also prevent reentrance. Then we call the function
2892 * to send the packet.
2894 static int wavelan_packet_xmit(struct sk_buff *skb, struct net_device * dev)
2896 net_local *lp = (net_local *) dev->priv;
2897 unsigned long flags;
2898 char data[ETH_ZLEN];
2900 #ifdef DEBUG_TX_TRACE
2901 printk(KERN_DEBUG "%s: ->wavelan_packet_xmit(0x%X)\n", dev->name,
2906 * Block a timer-based transmit from overlapping.
2907 * In other words, prevent reentering this routine.
2909 netif_stop_queue(dev);
2911 /* If somebody has asked to reconfigure the controller,
2914 if (lp->reconfig_82586) {
2915 spin_lock_irqsave(&lp->spinlock, flags);
2916 wv_82586_config(dev);
2917 spin_unlock_irqrestore(&lp->spinlock, flags);
2918 /* Check that we can continue */
2919 if (lp->tx_n_in_use == (NTXBLOCKS - 1))
2922 #ifdef DEBUG_TX_ERROR
2924 printk(KERN_INFO "skb has next\n");
2927 /* Do we need some padding? */
2928 /* Note : on wireless the propagation time is in the order of 1us,
2929 * and we don't have the Ethernet specific requirement of beeing
2930 * able to detect collisions, therefore in theory we don't really
2931 * need to pad. Jean II */
2932 if (skb->len < ETH_ZLEN) {
2933 memset(data, 0, ETH_ZLEN);
2934 skb_copy_from_linear_data(skb, data, skb->len);
2935 /* Write packet on the card */
2936 if(wv_packet_write(dev, data, ETH_ZLEN))
2937 return 1; /* We failed */
2939 else if(wv_packet_write(dev, skb->data, skb->len))
2940 return 1; /* We failed */
2945 #ifdef DEBUG_TX_TRACE
2946 printk(KERN_DEBUG "%s: <-wavelan_packet_xmit()\n", dev->name);
2951 /*********************** HARDWARE CONFIGURATION ***********************/
2953 * This part does the real job of starting and configuring the hardware.
2956 /*--------------------------------------------------------------------*/
2958 * Routine to initialize the Modem Management Controller.
2959 * (called by wv_hw_reset())
2961 static int wv_mmc_init(struct net_device * dev)
2963 unsigned long ioaddr = dev->base_addr;
2964 net_local *lp = (net_local *) dev->priv;
2969 #ifdef DEBUG_CONFIG_TRACE
2970 printk(KERN_DEBUG "%s: ->wv_mmc_init()\n", dev->name);
2973 /* Read the parameter storage area. */
2974 psa_read(ioaddr, lp->hacr, 0, (unsigned char *) &psa, sizeof(psa));
2976 #ifdef USE_PSA_CONFIG
2977 configured = psa.psa_conf_status & 1;
2982 /* Is the PSA is not configured */
2984 /* User will be able to configure NWID later (with iwconfig). */
2985 psa.psa_nwid[0] = 0;
2986 psa.psa_nwid[1] = 0;
2988 /* no NWID checking since NWID is not set */
2989 psa.psa_nwid_select = 0;
2991 /* Disable encryption */
2992 psa.psa_encryption_select = 0;
2994 /* Set to standard values:
2997 * 0x04 for PCMCIA and 2.00 card (AT&T 407-024689/E document)
2999 if (psa.psa_comp_number & 1)
3000 psa.psa_thr_pre_set = 0x01;
3002 psa.psa_thr_pre_set = 0x04;
3003 psa.psa_quality_thr = 0x03;
3005 /* It is configured */
3006 psa.psa_conf_status |= 1;
3008 #ifdef USE_PSA_CONFIG
3009 /* Write the psa. */
3010 psa_write(ioaddr, lp->hacr,
3011 (char *) psa.psa_nwid - (char *) &psa,
3012 (unsigned char *) psa.psa_nwid, 4);
3013 psa_write(ioaddr, lp->hacr,
3014 (char *) &psa.psa_thr_pre_set - (char *) &psa,
3015 (unsigned char *) &psa.psa_thr_pre_set, 1);
3016 psa_write(ioaddr, lp->hacr,
3017 (char *) &psa.psa_quality_thr - (char *) &psa,
3018 (unsigned char *) &psa.psa_quality_thr, 1);
3019 psa_write(ioaddr, lp->hacr,
3020 (char *) &psa.psa_conf_status - (char *) &psa,
3021 (unsigned char *) &psa.psa_conf_status, 1);
3022 /* update the Wavelan checksum */
3023 update_psa_checksum(dev, ioaddr, lp->hacr);
3027 /* Zero the mmc structure. */
3028 memset(&m, 0x00, sizeof(m));
3030 /* Copy PSA info to the mmc. */
3031 m.mmw_netw_id_l = psa.psa_nwid[1];
3032 m.mmw_netw_id_h = psa.psa_nwid[0];
3034 if (psa.psa_nwid_select & 1)
3035 m.mmw_loopt_sel = 0x00;
3037 m.mmw_loopt_sel = MMW_LOOPT_SEL_DIS_NWID;
3039 memcpy(&m.mmw_encr_key, &psa.psa_encryption_key,
3040 sizeof(m.mmw_encr_key));
3042 if (psa.psa_encryption_select)
3044 MMW_ENCR_ENABLE_EN | MMW_ENCR_ENABLE_MODE;
3046 m.mmw_encr_enable = 0;
3048 m.mmw_thr_pre_set = psa.psa_thr_pre_set & 0x3F;
3049 m.mmw_quality_thr = psa.psa_quality_thr & 0x0F;
3052 * Set default modem control parameters.
3053 * See NCR document 407-0024326 Rev. A.
3055 m.mmw_jabber_enable = 0x01;
3057 m.mmw_anten_sel = MMW_ANTEN_SEL_ALG_EN;
3059 m.mmw_mod_delay = 0x04;
3060 m.mmw_jam_time = 0x38;
3062 m.mmw_des_io_invert = 0;
3063 m.mmw_decay_prm = 0;
3064 m.mmw_decay_updat_prm = 0;
3066 /* Write all info to MMC. */
3067 mmc_write(ioaddr, 0, (u8 *) & m, sizeof(m));
3069 /* The following code starts the modem of the 2.00 frequency
3070 * selectable cards at power on. It's not strictly needed for the
3072 * The original patch was by Joe Finney for the PCMCIA driver, but
3073 * I've cleaned it up a bit and added documentation.
3074 * Thanks to Loeke Brederveld from Lucent for the info.
3077 /* Attempt to recognise 2.00 cards (2.4 GHz frequency selectable)
3078 * Does it work for everybody, especially old cards? */
3079 /* Note: WFREQSEL verifies that it is able to read a sensible
3080 * frequency from EEPROM (address 0x00) and that MMR_FEE_STATUS_ID
3081 * is 0xA (Xilinx version) or 0xB (Ariadne version).
3082 * My test is more crude but does work. */
3083 if (!(mmc_in(ioaddr, mmroff(0, mmr_fee_status)) &
3084 (MMR_FEE_STATUS_DWLD | MMR_FEE_STATUS_BUSY))) {
3085 /* We must download the frequency parameters to the
3086 * synthesizers (from the EEPROM - area 1)
3087 * Note: as the EEPROM is automatically decremented, we set the end
3089 m.mmw_fee_addr = 0x0F;
3090 m.mmw_fee_ctrl = MMW_FEE_CTRL_READ | MMW_FEE_CTRL_DWLD;
3091 mmc_write(ioaddr, (char *) &m.mmw_fee_ctrl - (char *) &m,
3092 (unsigned char *) &m.mmw_fee_ctrl, 2);
3094 /* Wait until the download is finished. */
3095 fee_wait(ioaddr, 100, 100);
3097 #ifdef DEBUG_CONFIG_INFO
3098 /* The frequency was in the last word downloaded. */
3099 mmc_read(ioaddr, (char *) &m.mmw_fee_data_l - (char *) &m,
3100 (unsigned char *) &m.mmw_fee_data_l, 2);
3102 /* Print some info for the user. */
3104 "%s: WaveLAN 2.00 recognised (frequency select). Current frequency = %ld\n",
3107 mmw_fee_data_h << 4) | (m.mmw_fee_data_l >> 4)) *
3111 /* We must now download the power adjust value (gain) to
3112 * the synthesizers (from the EEPROM - area 7 - DAC). */
3113 m.mmw_fee_addr = 0x61;
3114 m.mmw_fee_ctrl = MMW_FEE_CTRL_READ | MMW_FEE_CTRL_DWLD;
3115 mmc_write(ioaddr, (char *) &m.mmw_fee_ctrl - (char *) &m,
3116 (unsigned char *) &m.mmw_fee_ctrl, 2);
3118 /* Wait until the download is finished. */
3121 #ifdef DEBUG_CONFIG_TRACE
3122 printk(KERN_DEBUG "%s: <-wv_mmc_init()\n", dev->name);
3127 /*------------------------------------------------------------------*/
3129 * Construct the fd and rbd structures.
3130 * Start the receive unit.
3131 * (called by wv_hw_reset())
3133 static int wv_ru_start(struct net_device * dev)
3135 net_local *lp = (net_local *) dev->priv;
3136 unsigned long ioaddr = dev->base_addr;
3144 #ifdef DEBUG_CONFIG_TRACE
3145 printk(KERN_DEBUG "%s: ->wv_ru_start()\n", dev->name);
3148 obram_read(ioaddr, scboff(OFFSET_SCB, scb_status),
3149 (unsigned char *) &scb_cs, sizeof(scb_cs));
3150 if ((scb_cs & SCB_ST_RUS) == SCB_ST_RUS_RDY)
3153 lp->rx_head = OFFSET_RU;
3155 for (i = 0, rx = lp->rx_head; i < NRXBLOCKS; i++, rx = rx_next) {
3157 (i == NRXBLOCKS - 1) ? lp->rx_head : rx + RXBLOCKZ;
3160 fd.fd_command = (i == NRXBLOCKS - 1) ? FD_COMMAND_EL : 0;
3161 fd.fd_link_offset = rx_next;
3162 fd.fd_rbd_offset = rx + sizeof(fd);
3163 obram_write(ioaddr, rx, (unsigned char *) &fd, sizeof(fd));
3166 rbd.rbd_next_rbd_offset = I82586NULL;
3167 rbd.rbd_bufl = rx + sizeof(fd) + sizeof(rbd);
3169 rbd.rbd_el_size = RBD_EL | (RBD_SIZE & MAXDATAZ);
3170 obram_write(ioaddr, rx + sizeof(fd),
3171 (unsigned char *) &rbd, sizeof(rbd));
3176 obram_write(ioaddr, scboff(OFFSET_SCB, scb_rfa_offset),
3177 (unsigned char *) &lp->rx_head, sizeof(lp->rx_head));
3179 scb_cs = SCB_CMD_RUC_GO;
3180 obram_write(ioaddr, scboff(OFFSET_SCB, scb_command),
3181 (unsigned char *) &scb_cs, sizeof(scb_cs));
3183 set_chan_attn(ioaddr, lp->hacr);
3185 for (i = 1000; i > 0; i--) {
3186 obram_read(ioaddr, scboff(OFFSET_SCB, scb_command),
3187 (unsigned char *) &scb_cs, sizeof(scb_cs));
3195 #ifdef DEBUG_CONFIG_ERROR
3197 "%s: wavelan_ru_start(): board not accepting command.\n",
3202 #ifdef DEBUG_CONFIG_TRACE
3203 printk(KERN_DEBUG "%s: <-wv_ru_start()\n", dev->name);
3208 /*------------------------------------------------------------------*/
3210 * Initialise the transmit blocks.
3211 * Start the command unit executing the NOP
3212 * self-loop of the first transmit block.
3214 * Here we create the list of send buffers used to transmit packets
3215 * between the PC and the command unit. For each buffer, we create a
3216 * buffer descriptor (pointing on the buffer), a transmit command
3217 * (pointing to the buffer descriptor) and a NOP command.
3218 * The transmit command is linked to the NOP, and the NOP to itself.
3219 * When we will have finished executing the transmit command, we will
3220 * then loop on the NOP. By releasing the NOP link to a new command,
3221 * we may send another buffer.
3223 * (called by wv_hw_reset())
3225 static int wv_cu_start(struct net_device * dev)
3227 net_local *lp = (net_local *) dev->priv;
3228 unsigned long ioaddr = dev->base_addr;
3234 #ifdef DEBUG_CONFIG_TRACE
3235 printk(KERN_DEBUG "%s: ->wv_cu_start()\n", dev->name);
3238 lp->tx_first_free = OFFSET_CU;
3239 lp->tx_first_in_use = I82586NULL;
3241 for (i = 0, txblock = OFFSET_CU;
3242 i < NTXBLOCKS; i++, txblock += TXBLOCKZ) {
3246 unsigned short tx_addr;
3247 unsigned short nop_addr;
3248 unsigned short tbd_addr;
3249 unsigned short buf_addr;
3252 nop_addr = tx_addr + sizeof(tx);
3253 tbd_addr = nop_addr + sizeof(nop);
3254 buf_addr = tbd_addr + sizeof(tbd);
3256 tx.tx_h.ac_status = 0;
3257 tx.tx_h.ac_command = acmd_transmit | AC_CFLD_I;
3258 tx.tx_h.ac_link = nop_addr;
3259 tx.tx_tbd_offset = tbd_addr;
3260 obram_write(ioaddr, tx_addr, (unsigned char *) &tx,
3263 nop.nop_h.ac_status = 0;
3264 nop.nop_h.ac_command = acmd_nop;
3265 nop.nop_h.ac_link = nop_addr;
3266 obram_write(ioaddr, nop_addr, (unsigned char *) &nop,
3269 tbd.tbd_status = TBD_STATUS_EOF;
3270 tbd.tbd_next_bd_offset = I82586NULL;
3271 tbd.tbd_bufl = buf_addr;
3273 obram_write(ioaddr, tbd_addr, (unsigned char *) &tbd,
3278 OFFSET_CU + (NTXBLOCKS - 1) * TXBLOCKZ + sizeof(ac_tx_t);
3279 obram_write(ioaddr, scboff(OFFSET_SCB, scb_cbl_offset),
3280 (unsigned char *) &first_nop, sizeof(first_nop));
3282 scb_cs = SCB_CMD_CUC_GO;
3283 obram_write(ioaddr, scboff(OFFSET_SCB, scb_command),
3284 (unsigned char *) &scb_cs, sizeof(scb_cs));
3286 set_chan_attn(ioaddr, lp->hacr);
3288 for (i = 1000; i > 0; i--) {
3289 obram_read(ioaddr, scboff(OFFSET_SCB, scb_command),
3290 (unsigned char *) &scb_cs, sizeof(scb_cs));
3298 #ifdef DEBUG_CONFIG_ERROR
3300 "%s: wavelan_cu_start(): board not accepting command.\n",
3306 lp->tx_n_in_use = 0;
3307 netif_start_queue(dev);
3308 #ifdef DEBUG_CONFIG_TRACE
3309 printk(KERN_DEBUG "%s: <-wv_cu_start()\n", dev->name);
3314 /*------------------------------------------------------------------*/
3316 * This routine does a standard configuration of the WaveLAN
3317 * controller (i82586).
3319 * It initialises the scp, iscp and scb structure
3320 * The first two are just pointers to the next.
3321 * The last one is used for basic configuration and for basic
3322 * communication (interrupt status).
3324 * (called by wv_hw_reset())
3326 static int wv_82586_start(struct net_device * dev)
3328 net_local *lp = (net_local *) dev->priv;
3329 unsigned long ioaddr = dev->base_addr;
3330 scp_t scp; /* system configuration pointer */
3331 iscp_t iscp; /* intermediate scp */
3332 scb_t scb; /* system control block */
3333 ach_t cb; /* Action command header */
3337 #ifdef DEBUG_CONFIG_TRACE
3338 printk(KERN_DEBUG "%s: ->wv_82586_start()\n", dev->name);
3342 * Clear the onboard RAM.
3344 memset(&zeroes[0], 0x00, sizeof(zeroes));
3345 for (i = 0; i < I82586_MEMZ; i += sizeof(zeroes))
3346 obram_write(ioaddr, i, &zeroes[0], sizeof(zeroes));
3349 * Construct the command unit structures:
3350 * scp, iscp, scb, cb.
3352 memset(&scp, 0x00, sizeof(scp));
3353 scp.scp_sysbus = SCP_SY_16BBUS;
3354 scp.scp_iscpl = OFFSET_ISCP;
3355 obram_write(ioaddr, OFFSET_SCP, (unsigned char *) &scp,
3358 memset(&iscp, 0x00, sizeof(iscp));
3360 iscp.iscp_offset = OFFSET_SCB;
3361 obram_write(ioaddr, OFFSET_ISCP, (unsigned char *) &iscp,
3364 /* Our first command is to reset the i82586. */
3365 memset(&scb, 0x00, sizeof(scb));
3366 scb.scb_command = SCB_CMD_RESET;
3367 scb.scb_cbl_offset = OFFSET_CU;
3368 scb.scb_rfa_offset = OFFSET_RU;
3369 obram_write(ioaddr, OFFSET_SCB, (unsigned char *) &scb,
3372 set_chan_attn(ioaddr, lp->hacr);
3374 /* Wait for command to finish. */
3375 for (i = 1000; i > 0; i--) {
3376 obram_read(ioaddr, OFFSET_ISCP, (unsigned char *) &iscp,
3379 if (iscp.iscp_busy == (unsigned short) 0)
3386 #ifdef DEBUG_CONFIG_ERROR
3388 "%s: wv_82586_start(): iscp_busy timeout.\n",
3394 /* Check command completion. */
3395 for (i = 15; i > 0; i--) {
3396 obram_read(ioaddr, OFFSET_SCB, (unsigned char *) &scb,
3399 if (scb.scb_status == (SCB_ST_CX | SCB_ST_CNA))
3406 #ifdef DEBUG_CONFIG_ERROR
3408 "%s: wv_82586_start(): status: expected 0x%02x, got 0x%02x.\n",
3409 dev->name, SCB_ST_CX | SCB_ST_CNA, scb.scb_status);
3416 /* Set the action command header. */
3417 memset(&cb, 0x00, sizeof(cb));
3418 cb.ac_command = AC_CFLD_EL | (AC_CFLD_CMD & acmd_diagnose);
3419 cb.ac_link = OFFSET_CU;
3420 obram_write(ioaddr, OFFSET_CU, (unsigned char *) &cb, sizeof(cb));
3422 if (wv_synchronous_cmd(dev, "diag()") == -1)
3425 obram_read(ioaddr, OFFSET_CU, (unsigned char *) &cb, sizeof(cb));
3426 if (cb.ac_status & AC_SFLD_FAIL) {
3427 #ifdef DEBUG_CONFIG_ERROR
3429 "%s: wv_82586_start(): i82586 Self Test failed.\n",
3434 #ifdef DEBUG_I82586_SHOW
3435 wv_scb_show(ioaddr);
3438 #ifdef DEBUG_CONFIG_TRACE
3439 printk(KERN_DEBUG "%s: <-wv_82586_start()\n", dev->name);
3444 /*------------------------------------------------------------------*/
3446 * This routine does a standard configuration of the WaveLAN
3447 * controller (i82586).
3449 * This routine is a violent hack. We use the first free transmit block
3450 * to make our configuration. In the buffer area, we create the three
3451 * configuration commands (linked). We make the previous NOP point to
3452 * the beginning of the buffer instead of the tx command. After, we go
3453 * as usual to the NOP command.
3454 * Note that only the last command (mc_set) will generate an interrupt.
3456 * (called by wv_hw_reset(), wv_82586_reconfig(), wavelan_packet_xmit())
3458 static void wv_82586_config(struct net_device * dev)
3460 net_local *lp = (net_local *) dev->priv;
3461 unsigned long ioaddr = dev->base_addr;
3462 unsigned short txblock;
3463 unsigned short txpred;
3464 unsigned short tx_addr;
3465 unsigned short nop_addr;
3466 unsigned short tbd_addr;
3467 unsigned short cfg_addr;
3468 unsigned short ias_addr;
3469 unsigned short mcs_addr;
3472 ac_cfg_t cfg; /* Configure action */
3473 ac_ias_t ias; /* IA-setup action */
3474 ac_mcs_t mcs; /* Multicast setup */
3475 struct dev_mc_list *dmi;
3477 #ifdef DEBUG_CONFIG_TRACE
3478 printk(KERN_DEBUG "%s: ->wv_82586_config()\n", dev->name);
3481 /* Check nothing bad has happened */
3482 if (lp->tx_n_in_use == (NTXBLOCKS - 1)) {
3483 #ifdef DEBUG_CONFIG_ERROR
3484 printk(KERN_INFO "%s: wv_82586_config(): Tx queue full.\n",
3490 /* Calculate addresses of next block and previous block. */
3491 txblock = lp->tx_first_free;
3492 txpred = txblock - TXBLOCKZ;
3493 if (txpred < OFFSET_CU)
3494 txpred += NTXBLOCKS * TXBLOCKZ;
3495 lp->tx_first_free += TXBLOCKZ;
3496 if (lp->tx_first_free >= OFFSET_CU + NTXBLOCKS * TXBLOCKZ)
3497 lp->tx_first_free -= NTXBLOCKS * TXBLOCKZ;
3501 /* Calculate addresses of the different parts of the block. */
3503 nop_addr = tx_addr + sizeof(tx);
3504 tbd_addr = nop_addr + sizeof(nop);
3505 cfg_addr = tbd_addr + sizeof(tbd_t); /* beginning of the buffer */
3506 ias_addr = cfg_addr + sizeof(cfg);
3507 mcs_addr = ias_addr + sizeof(ias);
3512 tx.tx_h.ac_status = 0xFFFF; /* Fake completion value */
3513 obram_write(ioaddr, toff(ac_tx_t, tx_addr, tx_h.ac_status),
3514 (unsigned char *) &tx.tx_h.ac_status,
3515 sizeof(tx.tx_h.ac_status));
3520 nop.nop_h.ac_status = 0;
3521 obram_write(ioaddr, toff(ac_nop_t, nop_addr, nop_h.ac_status),
3522 (unsigned char *) &nop.nop_h.ac_status,
3523 sizeof(nop.nop_h.ac_status));
3524 nop.nop_h.ac_link = nop_addr;
3525 obram_write(ioaddr, toff(ac_nop_t, nop_addr, nop_h.ac_link),
3526 (unsigned char *) &nop.nop_h.ac_link,
3527 sizeof(nop.nop_h.ac_link));
3529 /* Create a configure action. */
3530 memset(&cfg, 0x00, sizeof(cfg));
3533 * For Linux we invert AC_CFG_ALOC() so as to conform
3534 * to the way that net packets reach us from above.
3535 * (See also ac_tx_t.)
3537 * Updated from Wavelan Manual WCIN085B
3540 AC_CFG_BYTE_CNT(sizeof(ac_cfg_t) - sizeof(ach_t));
3541 cfg.cfg_fifolim = AC_CFG_FIFOLIM(4);
3542 cfg.cfg_byte8 = AC_CFG_SAV_BF(1) | AC_CFG_SRDY(0);
3543 cfg.cfg_byte9 = AC_CFG_ELPBCK(0) |
3545 AC_CFG_PRELEN(AC_CFG_PLEN_2) |
3546 AC_CFG_ALOC(1) | AC_CFG_ADDRLEN(WAVELAN_ADDR_SIZE);
3547 cfg.cfg_byte10 = AC_CFG_BOFMET(1) |
3548 AC_CFG_ACR(6) | AC_CFG_LINPRIO(0);
3550 cfg.cfg_slotl = 0x0C;
3551 cfg.cfg_byte13 = AC_CFG_RETRYNUM(15) | AC_CFG_SLTTMHI(0);
3552 cfg.cfg_byte14 = AC_CFG_FLGPAD(0) |
3558 AC_CFG_BCDIS(0) | AC_CFG_PRM(lp->promiscuous);
3559 cfg.cfg_byte15 = AC_CFG_ICDS(0) |
3560 AC_CFG_CDTF(0) | AC_CFG_ICSS(0) | AC_CFG_CSTF(0);
3562 cfg.cfg_min_frm_len = AC_CFG_MNFRM(64);
3564 cfg.cfg_min_frm_len = AC_CFG_MNFRM(8);
3566 cfg.cfg_h.ac_command = (AC_CFLD_CMD & acmd_configure);
3567 cfg.cfg_h.ac_link = ias_addr;
3568 obram_write(ioaddr, cfg_addr, (unsigned char *) &cfg, sizeof(cfg));
3570 /* Set up the MAC address */
3571 memset(&ias, 0x00, sizeof(ias));
3572 ias.ias_h.ac_command = (AC_CFLD_CMD & acmd_ia_setup);
3573 ias.ias_h.ac_link = mcs_addr;
3574 memcpy(&ias.ias_addr[0], (unsigned char *) &dev->dev_addr[0],
3575 sizeof(ias.ias_addr));
3576 obram_write(ioaddr, ias_addr, (unsigned char *) &ias, sizeof(ias));
3578 /* Initialize adapter's Ethernet multicast addresses */
3579 memset(&mcs, 0x00, sizeof(mcs));
3580 mcs.mcs_h.ac_command = AC_CFLD_I | (AC_CFLD_CMD & acmd_mc_setup);
3581 mcs.mcs_h.ac_link = nop_addr;
3582 mcs.mcs_cnt = WAVELAN_ADDR_SIZE * lp->mc_count;
3583 obram_write(ioaddr, mcs_addr, (unsigned char *) &mcs, sizeof(mcs));
3585 /* Any address to set? */
3587 for (dmi = dev->mc_list; dmi; dmi = dmi->next)
3588 outsw(PIOP1(ioaddr), (u16 *) dmi->dmi_addr,
3589 WAVELAN_ADDR_SIZE >> 1);
3591 #ifdef DEBUG_CONFIG_INFO
3593 DECLARE_MAC_BUF(mac);
3595 "%s: wv_82586_config(): set %d multicast addresses:\n",
3596 dev->name, lp->mc_count);
3597 for (dmi = dev->mc_list; dmi; dmi = dmi->next)
3598 printk(KERN_DEBUG " %s\n",
3599 print_mac(mac, dmi->dmi_addr));
3605 * Overwrite the predecessor NOP link
3606 * so that it points to the configure action.
3608 nop_addr = txpred + sizeof(tx);
3609 nop.nop_h.ac_status = 0;
3610 obram_write(ioaddr, toff(ac_nop_t, nop_addr, nop_h.ac_status),
3611 (unsigned char *) &nop.nop_h.ac_status,
3612 sizeof(nop.nop_h.ac_status));
3613 nop.nop_h.ac_link = cfg_addr;
3614 obram_write(ioaddr, toff(ac_nop_t, nop_addr, nop_h.ac_link),
3615 (unsigned char *) &nop.nop_h.ac_link,
3616 sizeof(nop.nop_h.ac_link));
3618 /* Job done, clear the flag */
3619 lp->reconfig_82586 = 0;
3621 if (lp->tx_first_in_use == I82586NULL)
3622 lp->tx_first_in_use = txblock;
3624 if (lp->tx_n_in_use == (NTXBLOCKS - 1))
3625 netif_stop_queue(dev);
3627 #ifdef DEBUG_CONFIG_TRACE
3628 printk(KERN_DEBUG "%s: <-wv_82586_config()\n", dev->name);
3632 /*------------------------------------------------------------------*/
3634 * This routine, called by wavelan_close(), gracefully stops the
3635 * WaveLAN controller (i82586).
3636 * (called by wavelan_close())
3638 static void wv_82586_stop(struct net_device * dev)
3640 net_local *lp = (net_local *) dev->priv;
3641 unsigned long ioaddr = dev->base_addr;
3644 #ifdef DEBUG_CONFIG_TRACE
3645 printk(KERN_DEBUG "%s: ->wv_82586_stop()\n", dev->name);
3648 /* Suspend both command unit and receive unit. */
3650 (SCB_CMD_CUC & SCB_CMD_CUC_SUS) | (SCB_CMD_RUC &
3652 obram_write(ioaddr, scboff(OFFSET_SCB, scb_command),
3653 (unsigned char *) &scb_cmd, sizeof(scb_cmd));
3654 set_chan_attn(ioaddr, lp->hacr);
3656 /* No more interrupts */
3659 #ifdef DEBUG_CONFIG_TRACE
3660 printk(KERN_DEBUG "%s: <-wv_82586_stop()\n", dev->name);
3664 /*------------------------------------------------------------------*/
3666 * Totally reset the WaveLAN and restart it.
3667 * Performs the following actions:
3668 * 1. A power reset (reset DMA)
3669 * 2. Initialize the radio modem (using wv_mmc_init)
3670 * 3. Reset & Configure LAN controller (using wv_82586_start)
3671 * 4. Start the LAN controller's command unit
3672 * 5. Start the LAN controller's receive unit
3673 * (called by wavelan_interrupt(), wavelan_watchdog() & wavelan_open())
3675 static int wv_hw_reset(struct net_device * dev)
3677 net_local *lp = (net_local *) dev->priv;
3678 unsigned long ioaddr = dev->base_addr;
3680 #ifdef DEBUG_CONFIG_TRACE
3681 printk(KERN_DEBUG "%s: ->wv_hw_reset(dev=0x%x)\n", dev->name,
3682 (unsigned int) dev);
3685 /* Increase the number of resets done. */
3688 wv_hacr_reset(ioaddr);
3689 lp->hacr = HACR_DEFAULT;
3691 if ((wv_mmc_init(dev) < 0) || (wv_82586_start(dev) < 0))
3694 /* Enable the card to send interrupts. */
3697 /* Start card functions */
3698 if (wv_cu_start(dev) < 0)
3701 /* Setup the controller and parameters */
3702 wv_82586_config(dev);
3704 /* Finish configuration with the receive unit */
3705 if (wv_ru_start(dev) < 0)
3708 #ifdef DEBUG_CONFIG_TRACE
3709 printk(KERN_DEBUG "%s: <-wv_hw_reset()\n", dev->name);
3714 /*------------------------------------------------------------------*/
3716 * Check if there is a WaveLAN at the specific base address.
3717 * As a side effect, this reads the MAC address.
3718 * (called in wavelan_probe() and init_module())
3720 static int wv_check_ioaddr(unsigned long ioaddr, u8 * mac)
3722 int i; /* Loop counter */
3724 /* Check if the base address if available. */
3725 if (!request_region(ioaddr, sizeof(ha_t), "wavelan probe"))
3726 return -EBUSY; /* ioaddr already used */
3728 /* Reset host interface */
3729 wv_hacr_reset(ioaddr);
3731 /* Read the MAC address from the parameter storage area. */
3732 psa_read(ioaddr, HACR_DEFAULT, psaoff(0, psa_univ_mac_addr),
3735 release_region(ioaddr, sizeof(ha_t));
3738 * Check the first three octets of the address for the manufacturer's code.
3739 * Note: if this can't find your WaveLAN card, you've got a
3740 * non-NCR/AT&T/Lucent ISA card. See wavelan.p.h for detail on
3741 * how to configure your card.
3743 for (i = 0; i < (sizeof(MAC_ADDRESSES) / sizeof(char) / 3); i++)
3744 if ((mac[0] == MAC_ADDRESSES[i][0]) &&
3745 (mac[1] == MAC_ADDRESSES[i][1]) &&
3746 (mac[2] == MAC_ADDRESSES[i][2]))
3749 #ifdef DEBUG_CONFIG_INFO
3751 "WaveLAN (0x%3X): your MAC address might be %02X:%02X:%02X.\n",
3752 ioaddr, mac[0], mac[1], mac[2]);
3757 /************************ INTERRUPT HANDLING ************************/
3760 * This function is the interrupt handler for the WaveLAN card. This
3761 * routine will be called whenever:
3763 static irqreturn_t wavelan_interrupt(int irq, void *dev_id)
3765 struct net_device *dev;
3766 unsigned long ioaddr;
3774 #ifdef DEBUG_INTERRUPT_TRACE
3775 printk(KERN_DEBUG "%s: ->wavelan_interrupt()\n", dev->name);
3778 lp = (net_local *) dev->priv;
3779 ioaddr = dev->base_addr;
3781 #ifdef DEBUG_INTERRUPT_INFO
3782 /* Check state of our spinlock */
3783 if(spin_is_locked(&lp->spinlock))
3785 "%s: wavelan_interrupt(): spinlock is already locked !!!\n",
3789 /* Prevent reentrancy. We need to do that because we may have
3790 * multiple interrupt handler running concurrently.
3791 * It is safe because interrupts are disabled before acquiring
3793 spin_lock(&lp->spinlock);
3795 /* We always had spurious interrupts at startup, but lately I
3796 * saw them comming *between* the request_irq() and the
3797 * spin_lock_irqsave() in wavelan_open(), so the spinlock
3798 * protection is no enough.
3799 * So, we also check lp->hacr that will tell us is we enabled
3800 * irqs or not (see wv_ints_on()).
3801 * We can't use netif_running(dev) because we depend on the
3802 * proper processing of the irq generated during the config. */
3804 /* Which interrupt it is ? */
3805 hasr = hasr_read(ioaddr);
3807 #ifdef DEBUG_INTERRUPT_INFO
3809 "%s: wavelan_interrupt(): hasr 0x%04x; hacr 0x%04x.\n",
3810 dev->name, hasr, lp->hacr);
3813 /* Check modem interrupt */
3814 if ((hasr & HASR_MMC_INTR) && (lp->hacr & HACR_MMC_INT_ENABLE)) {
3818 * Interrupt from the modem management controller.
3819 * This will clear it -- ignored for now.
3821 mmc_read(ioaddr, mmroff(0, mmr_dce_status), &dce_status,
3822 sizeof(dce_status));
3824 #ifdef DEBUG_INTERRUPT_ERROR
3826 "%s: wavelan_interrupt(): unexpected mmc interrupt: status 0x%04x.\n",
3827 dev->name, dce_status);
3831 /* Check if not controller interrupt */
3832 if (((hasr & HASR_82586_INTR) == 0) ||
3833 ((lp->hacr & HACR_82586_INT_ENABLE) == 0)) {
3834 #ifdef DEBUG_INTERRUPT_ERROR
3836 "%s: wavelan_interrupt(): interrupt not coming from i82586 - hasr 0x%04x.\n",
3839 spin_unlock (&lp->spinlock);
3843 /* Read interrupt data. */
3844 obram_read(ioaddr, scboff(OFFSET_SCB, scb_status),
3845 (unsigned char *) &status, sizeof(status));
3848 * Acknowledge the interrupt(s).
3850 ack_cmd = status & SCB_ST_INT;
3851 obram_write(ioaddr, scboff(OFFSET_SCB, scb_command),
3852 (unsigned char *) &ack_cmd, sizeof(ack_cmd));
3853 set_chan_attn(ioaddr, lp->hacr);
3855 #ifdef DEBUG_INTERRUPT_INFO
3856 printk(KERN_DEBUG "%s: wavelan_interrupt(): status 0x%04x.\n",
3860 /* Command completed. */
3861 if ((status & SCB_ST_CX) == SCB_ST_CX) {
3862 #ifdef DEBUG_INTERRUPT_INFO
3864 "%s: wavelan_interrupt(): command completed.\n",
3867 wv_complete(dev, ioaddr, lp);
3870 /* Frame received. */
3871 if ((status & SCB_ST_FR) == SCB_ST_FR) {
3872 #ifdef DEBUG_INTERRUPT_INFO
3874 "%s: wavelan_interrupt(): received packet.\n",
3880 /* Check the state of the command unit. */
3881 if (((status & SCB_ST_CNA) == SCB_ST_CNA) ||
3882 (((status & SCB_ST_CUS) != SCB_ST_CUS_ACTV) &&
3883 (netif_running(dev)))) {
3884 #ifdef DEBUG_INTERRUPT_ERROR
3886 "%s: wavelan_interrupt(): CU inactive -- restarting\n",
3892 /* Check the state of the command unit. */
3893 if (((status & SCB_ST_RNR) == SCB_ST_RNR) ||
3894 (((status & SCB_ST_RUS) != SCB_ST_RUS_RDY) &&
3895 (netif_running(dev)))) {
3896 #ifdef DEBUG_INTERRUPT_ERROR
3898 "%s: wavelan_interrupt(): RU not ready -- restarting\n",
3904 /* Release spinlock */
3905 spin_unlock (&lp->spinlock);
3907 #ifdef DEBUG_INTERRUPT_TRACE
3908 printk(KERN_DEBUG "%s: <-wavelan_interrupt()\n", dev->name);
3913 /*------------------------------------------------------------------*/
3915 * Watchdog: when we start a transmission, a timer is set for us in the
3916 * kernel. If the transmission completes, this timer is disabled. If
3917 * the timer expires, we are called and we try to unlock the hardware.
3919 static void wavelan_watchdog(struct net_device * dev)
3921 net_local * lp = (net_local *)dev->priv;
3922 u_long ioaddr = dev->base_addr;
3923 unsigned long flags;
3924 unsigned int nreaped;
3926 #ifdef DEBUG_INTERRUPT_TRACE
3927 printk(KERN_DEBUG "%s: ->wavelan_watchdog()\n", dev->name);
3930 #ifdef DEBUG_INTERRUPT_ERROR
3931 printk(KERN_INFO "%s: wavelan_watchdog: watchdog timer expired\n",
3935 /* Check that we came here for something */
3936 if (lp->tx_n_in_use <= 0) {
3940 spin_lock_irqsave(&lp->spinlock, flags);
3942 /* Try to see if some buffers are not free (in case we missed
3944 nreaped = wv_complete(dev, ioaddr, lp);
3946 #ifdef DEBUG_INTERRUPT_INFO
3948 "%s: wavelan_watchdog(): %d reaped, %d remain.\n",
3949 dev->name, nreaped, lp->tx_n_in_use);
3952 #ifdef DEBUG_PSA_SHOW
3955 psa_read(dev, 0, (unsigned char *) &psa, sizeof(psa));
3959 #ifdef DEBUG_MMC_SHOW
3962 #ifdef DEBUG_I82586_SHOW
3966 /* If no buffer has been freed */
3968 #ifdef DEBUG_INTERRUPT_ERROR
3970 "%s: wavelan_watchdog(): cleanup failed, trying reset\n",
3976 /* At this point, we should have some free Tx buffer ;-) */
3977 if (lp->tx_n_in_use < NTXBLOCKS - 1)
3978 netif_wake_queue(dev);
3980 spin_unlock_irqrestore(&lp->spinlock, flags);
3982 #ifdef DEBUG_INTERRUPT_TRACE
3983 printk(KERN_DEBUG "%s: <-wavelan_watchdog()\n", dev->name);
3987 /********************* CONFIGURATION CALLBACKS *********************/
3989 * Here are the functions called by the Linux networking code (NET3)
3990 * for initialization, configuration and deinstallations of the
3991 * WaveLAN ISA hardware.
3994 /*------------------------------------------------------------------*/
3996 * Configure and start up the WaveLAN PCMCIA adaptor.
3997 * Called by NET3 when it "opens" the device.
3999 static int wavelan_open(struct net_device * dev)
4001 net_local * lp = (net_local *)dev->priv;
4002 unsigned long flags;
4004 #ifdef DEBUG_CALLBACK_TRACE
4005 printk(KERN_DEBUG "%s: ->wavelan_open(dev=0x%x)\n", dev->name,
4006 (unsigned int) dev);
4010 if (dev->irq == 0) {
4011 #ifdef DEBUG_CONFIG_ERROR
4012 printk(KERN_WARNING "%s: wavelan_open(): no IRQ\n",
4018 if (request_irq(dev->irq, &wavelan_interrupt, 0, "WaveLAN", dev) != 0)
4020 #ifdef DEBUG_CONFIG_ERROR
4021 printk(KERN_WARNING "%s: wavelan_open(): invalid IRQ\n",
4027 spin_lock_irqsave(&lp->spinlock, flags);
4029 if (wv_hw_reset(dev) != -1) {
4030 netif_start_queue(dev);
4032 free_irq(dev->irq, dev);
4033 #ifdef DEBUG_CONFIG_ERROR
4035 "%s: wavelan_open(): impossible to start the card\n",
4038 spin_unlock_irqrestore(&lp->spinlock, flags);
4041 spin_unlock_irqrestore(&lp->spinlock, flags);
4043 #ifdef DEBUG_CALLBACK_TRACE
4044 printk(KERN_DEBUG "%s: <-wavelan_open()\n", dev->name);
4049 /*------------------------------------------------------------------*/
4051 * Shut down the WaveLAN ISA card.
4052 * Called by NET3 when it "closes" the device.
4054 static int wavelan_close(struct net_device * dev)
4056 net_local *lp = (net_local *) dev->priv;
4057 unsigned long flags;
4059 #ifdef DEBUG_CALLBACK_TRACE
4060 printk(KERN_DEBUG "%s: ->wavelan_close(dev=0x%x)\n", dev->name,
4061 (unsigned int) dev);
4064 netif_stop_queue(dev);
4067 * Flush the Tx and disable Rx.
4069 spin_lock_irqsave(&lp->spinlock, flags);
4071 spin_unlock_irqrestore(&lp->spinlock, flags);
4073 free_irq(dev->irq, dev);
4075 #ifdef DEBUG_CALLBACK_TRACE
4076 printk(KERN_DEBUG "%s: <-wavelan_close()\n", dev->name);
4081 /*------------------------------------------------------------------*/
4083 * Probe an I/O address, and if the WaveLAN is there configure the
4085 * (called by wavelan_probe() and via init_module()).
4087 static int __init wavelan_config(struct net_device *dev, unsigned short ioaddr)
4095 if (!request_region(ioaddr, sizeof(ha_t), "wavelan"))
4098 err = wv_check_ioaddr(ioaddr, mac);
4102 memcpy(dev->dev_addr, mac, 6);
4104 dev->base_addr = ioaddr;
4106 #ifdef DEBUG_CALLBACK_TRACE
4107 printk(KERN_DEBUG "%s: ->wavelan_config(dev=0x%x, ioaddr=0x%lx)\n",
4108 dev->name, (unsigned int) dev, ioaddr);
4111 /* Check IRQ argument on command line. */
4112 if (dev->irq != 0) {
4113 irq_mask = wv_irq_to_psa(dev->irq);
4115 if (irq_mask == 0) {
4116 #ifdef DEBUG_CONFIG_ERROR
4118 "%s: wavelan_config(): invalid IRQ %d ignored.\n",
4119 dev->name, dev->irq);
4123 #ifdef DEBUG_CONFIG_INFO
4125 "%s: wavelan_config(): changing IRQ to %d\n",
4126 dev->name, dev->irq);
4128 psa_write(ioaddr, HACR_DEFAULT,
4129 psaoff(0, psa_int_req_no), &irq_mask, 1);
4130 /* update the Wavelan checksum */
4131 update_psa_checksum(dev, ioaddr, HACR_DEFAULT);
4132 wv_hacr_reset(ioaddr);
4136 psa_read(ioaddr, HACR_DEFAULT, psaoff(0, psa_int_req_no),
4138 if ((irq = wv_psa_to_irq(irq_mask)) == -1) {
4139 #ifdef DEBUG_CONFIG_ERROR
4141 "%s: wavelan_config(): could not wavelan_map_irq(%d).\n",
4142 dev->name, irq_mask);
4150 dev->mem_start = 0x0000;
4151 dev->mem_end = 0x0000;
4154 /* Initialize device structures */
4155 memset(dev->priv, 0, sizeof(net_local));
4156 lp = (net_local *) dev->priv;
4158 /* Back link to the device structure. */
4160 /* Add the device at the beginning of the linked list. */
4161 lp->next = wavelan_list;
4164 lp->hacr = HACR_DEFAULT;
4166 /* Multicast stuff */
4167 lp->promiscuous = 0;
4171 spin_lock_init(&lp->spinlock);
4173 dev->open = wavelan_open;
4174 dev->stop = wavelan_close;
4175 dev->hard_start_xmit = wavelan_packet_xmit;
4176 dev->get_stats = wavelan_get_stats;
4177 dev->set_multicast_list = &wavelan_set_multicast_list;
4178 dev->tx_timeout = &wavelan_watchdog;
4179 dev->watchdog_timeo = WATCHDOG_JIFFIES;
4180 #ifdef SET_MAC_ADDRESS
4181 dev->set_mac_address = &wavelan_set_mac_address;
4182 #endif /* SET_MAC_ADDRESS */
4184 dev->wireless_handlers = &wavelan_handler_def;
4185 lp->wireless_data.spy_data = &lp->spy_data;
4186 dev->wireless_data = &lp->wireless_data;
4188 dev->mtu = WAVELAN_MTU;
4190 /* Display nice information. */
4193 #ifdef DEBUG_CALLBACK_TRACE
4194 printk(KERN_DEBUG "%s: <-wavelan_config()\n", dev->name);
4198 release_region(ioaddr, sizeof(ha_t));
4202 /*------------------------------------------------------------------*/
4204 * Check for a network adaptor of this type. Return '0' iff one
4205 * exists. There seem to be different interpretations of
4206 * the initial value of dev->base_addr.
4207 * We follow the example in drivers/net/ne.c.
4208 * (called in "Space.c")
4210 struct net_device * __init wavelan_probe(int unit)
4212 struct net_device *dev;
4219 if (wv_struct_check() != (char *) NULL) {
4221 "%s: wavelan_probe(): structure/compiler botch: \"%s\"\n",
4222 dev->name, wv_struct_check());
4225 #endif /* STRUCT_CHECK */
4227 dev = alloc_etherdev(sizeof(net_local));
4229 return ERR_PTR(-ENOMEM);
4231 sprintf(dev->name, "eth%d", unit);
4232 netdev_boot_setup_check(dev);
4233 base_addr = dev->base_addr;
4236 #ifdef DEBUG_CALLBACK_TRACE
4238 "%s: ->wavelan_probe(dev=%p (base_addr=0x%x))\n",
4239 dev->name, dev, (unsigned int) dev->base_addr);
4242 /* Don't probe at all. */
4243 if (base_addr < 0) {
4244 #ifdef DEBUG_CONFIG_ERROR
4246 "%s: wavelan_probe(): invalid base address\n",
4250 } else if (base_addr > 0x100) { /* Check a single specified location. */
4251 r = wavelan_config(dev, base_addr);
4252 #ifdef DEBUG_CONFIG_INFO
4255 "%s: wavelan_probe(): no device at specified base address (0x%X) or address already in use\n",
4256 dev->name, base_addr);
4259 #ifdef DEBUG_CALLBACK_TRACE
4260 printk(KERN_DEBUG "%s: <-wavelan_probe()\n", dev->name);
4262 } else { /* Scan all possible addresses of the WaveLAN hardware. */
4263 for (i = 0; i < ARRAY_SIZE(iobase); i++) {
4265 if (wavelan_config(dev, iobase[i]) == 0) {
4266 #ifdef DEBUG_CALLBACK_TRACE
4268 "%s: <-wavelan_probe()\n",
4274 if (i == ARRAY_SIZE(iobase))
4279 r = register_netdev(dev);
4284 release_region(dev->base_addr, sizeof(ha_t));
4285 wavelan_list = wavelan_list->next;
4291 /****************************** MODULE ******************************/
4293 * Module entry point: insertion and removal
4297 /*------------------------------------------------------------------*/
4299 * Insertion of the module
4300 * I'm now quite proud of the multi-device support.
4302 int __init init_module(void)
4304 int ret = -EIO; /* Return error if no cards found */
4307 #ifdef DEBUG_MODULE_TRACE
4308 printk(KERN_DEBUG "-> init_module()\n");
4311 /* If probing is asked */
4313 #ifdef DEBUG_CONFIG_ERROR
4315 "WaveLAN init_module(): doing device probing (bad !)\n");
4317 "Specify base addresses while loading module to correct the problem\n");
4320 /* Copy the basic set of address to be probed. */
4321 for (i = 0; i < ARRAY_SIZE(iobase); i++)
4326 /* Loop on all possible base addresses. */
4328 while ((io[++i] != 0) && (i < ARRAY_SIZE(io))) {
4329 struct net_device *dev = alloc_etherdev(sizeof(net_local));
4333 strcpy(dev->name, name[i]); /* Copy name */
4334 dev->base_addr = io[i];
4337 /* Check if there is something at this base address. */
4338 if (wavelan_config(dev, io[i]) == 0) {
4339 if (register_netdev(dev) != 0) {
4340 release_region(dev->base_addr, sizeof(ha_t));
4341 wavelan_list = wavelan_list->next;
4350 #ifdef DEBUG_CONFIG_ERROR
4353 "WaveLAN init_module(): no device found\n");
4356 #ifdef DEBUG_MODULE_TRACE
4357 printk(KERN_DEBUG "<- init_module()\n");
4362 /*------------------------------------------------------------------*/
4364 * Removal of the module
4366 void cleanup_module(void)
4368 #ifdef DEBUG_MODULE_TRACE
4369 printk(KERN_DEBUG "-> cleanup_module()\n");
4372 /* Loop on all devices and release them. */
4373 while (wavelan_list) {
4374 struct net_device *dev = wavelan_list->dev;
4376 #ifdef DEBUG_CONFIG_INFO
4378 "%s: cleanup_module(): removing device at 0x%x\n",
4379 dev->name, (unsigned int) dev);
4381 unregister_netdev(dev);
4383 release_region(dev->base_addr, sizeof(ha_t));
4384 wavelan_list = wavelan_list->next;
4389 #ifdef DEBUG_MODULE_TRACE
4390 printk(KERN_DEBUG "<- cleanup_module()\n");
4394 MODULE_LICENSE("GPL");
4397 * This software may only be used and distributed
4398 * according to the terms of the GNU General Public License.
4400 * This software was developed as a component of the
4401 * Linux operating system.
4402 * It is based on other device drivers and information
4403 * either written or supplied by:
4404 * Ajay Bakre (bakre@paul.rutgers.edu),
4405 * Donald Becker (becker@scyld.com),
4406 * Loeke Brederveld (Loeke.Brederveld@Utrecht.NCR.com),
4407 * Anders Klemets (klemets@it.kth.se),
4408 * Vladimir V. Kolpakov (w@stier.koenig.ru),
4409 * Marc Meertens (Marc.Meertens@Utrecht.NCR.com),
4410 * Pauline Middelink (middelin@polyware.iaf.nl),
4411 * Robert Morris (rtm@das.harvard.edu),
4412 * Jean Tourrilhes (jt@hplb.hpl.hp.com),
4413 * Girish Welling (welling@paul.rutgers.edu),
4415 * Thanks go also to:
4416 * James Ashton (jaa101@syseng.anu.edu.au),
4417 * Alan Cox (alan@redhat.com),
4418 * Allan Creighton (allanc@cs.usyd.edu.au),
4419 * Matthew Geier (matthew@cs.usyd.edu.au),
4420 * Remo di Giovanni (remo@cs.usyd.edu.au),
4421 * Eckhard Grah (grah@wrcs1.urz.uni-wuppertal.de),
4422 * Vipul Gupta (vgupta@cs.binghamton.edu),
4423 * Mark Hagan (mhagan@wtcpost.daytonoh.NCR.COM),
4424 * Tim Nicholson (tim@cs.usyd.edu.au),
4425 * Ian Parkin (ian@cs.usyd.edu.au),
4426 * John Rosenberg (johnr@cs.usyd.edu.au),
4427 * George Rossi (george@phm.gov.au),
4428 * Arthur Scott (arthur@cs.usyd.edu.au),
4430 * for their assistance and advice.
4432 * Please send bug reports, updates, comments to:
4434 * Bruce Janson Email: bruce@cs.usyd.edu.au
4435 * Basser Department of Computer Science Phone: +61-2-9351-3423
4436 * University of Sydney, N.S.W., 2006, AUSTRALIA Fax: +61-2-9351-3838