fix missing newline
[acx-mac80211.git] / pci.c
blob1726fe2371c98d4d041917ec09c3e654a14a2b67
1 /**** (legal) claimer in README
2 ** Copyright (C) 2003 ACX100 Open Source Project
3 */
4 #define ACX_MAC80211_PCI 1
6 #include <linux/version.h>
8 /* Linux 2.6.18+ uses <linux/utsrelease.h> */
9 #ifndef UTS_RELEASE
10 #include <linux/utsrelease.h>
11 #endif
13 #include <linux/compiler.h> /* required for Lx 2.6.8 ?? */
14 #include <linux/kernel.h>
15 #include <linux/module.h>
16 #include <linux/moduleparam.h>
17 #include <linux/sched.h>
18 #include <linux/types.h>
19 #include <linux/skbuff.h>
20 #include <linux/slab.h>
21 #include <linux/if_arp.h>
22 #include <linux/rtnetlink.h>
23 #include <linux/wireless.h>
24 #include <net/iw_handler.h>
25 #include <linux/netdevice.h>
26 #include <linux/ioport.h>
27 #include <linux/pci.h>
28 #include <linux/pm.h>
29 #include <linux/vmalloc.h>
30 #include <linux/ethtool.h>
31 #include <linux/dma-mapping.h>
32 #include <linux/workqueue.h>
33 #ifdef CONFIG_VLYNQ
34 #include <linux/vlynq.h>
35 #endif
37 #include "acx.h"
39 /***********************************************************************
41 #ifdef CONFIG_PCI
42 #define PCI_TYPE (PCI_USES_MEM | PCI_ADDR0 | PCI_NO_ACPI_WAKE)
43 #define PCI_ACX100_REGION1 0x01
44 #define PCI_ACX100_REGION1_SIZE 0x1000 /* Memory size - 4K bytes */
45 #define PCI_ACX100_REGION2 0x02
46 #define PCI_ACX100_REGION2_SIZE 0x10000 /* Memory size - 64K bytes */
48 #define PCI_ACX111_REGION1 0x00
49 #define PCI_ACX111_REGION1_SIZE 0x2000 /* Memory size - 8K bytes */
50 #define PCI_ACX111_REGION2 0x01
51 #define PCI_ACX111_REGION2_SIZE 0x20000 /* Memory size - 128K bytes */
53 /* Texas Instruments Vendor ID */
54 #define PCI_VENDOR_ID_TI 0x104c
56 /* ACX100 22Mb/s WLAN controller */
57 #define PCI_DEVICE_ID_TI_TNETW1100A 0x8400
58 #define PCI_DEVICE_ID_TI_TNETW1100B 0x8401
60 /* ACX111 54Mb/s WLAN controller */
61 #define PCI_DEVICE_ID_TI_TNETW1130 0x9066
63 /* PCI Class & Sub-Class code, Network-'Other controller' */
64 #define PCI_CLASS_NETWORK_OTHERS 0x0280
66 #define CARD_EEPROM_ID_SIZE 6
68 #ifndef PCI_D0
69 /* From include/linux/pci.h */
70 #define PCI_D0 0
71 #define PCI_D1 1
72 #define PCI_D2 2
73 #define PCI_D3hot 3
74 #define PCI_D3cold 4
75 #define PCI_UNKNOWN 5
76 #define PCI_POWER_ERROR -1
77 #endif
78 #endif /* CONFIG_PCI */
80 /***********************************************************************
83 static irqreturn_t acxpci_i_interrupt(int irq, void *dev_id);
85 static void disable_acx_irq(acx_device_t * adev);
87 static int acxpci_e_open(struct ieee80211_hw *hw);
88 static void acxpci_e_close(struct ieee80211_hw *hw);
89 static void acxpci_s_up(struct ieee80211_hw *hw);
90 static void acxpci_s_down(struct ieee80211_hw *hw);
92 /***********************************************************************
93 ** Register access
95 **
98 /* OS I/O routines *always* be endianness-clean but having them doesn't hurt */
99 #define acx_readl(v) le32_to_cpu(readl((v)))
100 #define acx_readw(v) le16_to_cpu(readw((v)))
101 #define acx_writew(v,r) writew(le16_to_cpu((v)), r)
102 #define acx_writel(v,r) writel(le32_to_cpu((v)), r)
104 /* Pick one */
105 /* #define INLINE_IO static */
106 #define INLINE_IO static inline
108 INLINE_IO u32 read_reg32(acx_device_t * adev, unsigned int offset)
110 #if ACX_IO_WIDTH == 32
111 return acx_readl((u8 *) adev->iobase + adev->io[offset]);
112 #else
113 return acx_readw((u8 *) adev->iobase + adev->io[offset])
114 + (acx_readw((u8 *) adev->iobase + adev->io[offset] + 2) << 16);
115 #endif
118 INLINE_IO u16 read_reg16(acx_device_t * adev, unsigned int offset)
120 return acx_readw((u8 *) adev->iobase + adev->io[offset]);
123 INLINE_IO u8 read_reg8(acx_device_t * adev, unsigned int offset)
125 return readb((u8 *) adev->iobase + adev->io[offset]);
128 INLINE_IO void write_reg32(acx_device_t * adev, unsigned int offset, u32 val)
130 #if ACX_IO_WIDTH == 32
131 acx_writel(val, (u8 *) adev->iobase + adev->io[offset]);
132 #else
133 acx_writew(val & 0xffff, (u8 *) adev->iobase + adev->io[offset]);
134 acx_writew(val >> 16, (u8 *) adev->iobase + adev->io[offset] + 2);
135 #endif
138 INLINE_IO void write_reg16(acx_device_t * adev, unsigned int offset, u16 val)
140 acx_writew(val, (u8 *) adev->iobase + adev->io[offset]);
143 INLINE_IO void write_reg8(acx_device_t * adev, unsigned int offset, u8 val)
145 writeb(val, (u8 *) adev->iobase + adev->io[offset]);
148 /* Handle PCI posting properly:
149 * Make sure that writes reach the adapter in case they require to be executed
150 * *before* the next write, by reading a random (and safely accessible) register.
151 * This call has to be made if there is no read following (which would flush the data
152 * to the adapter), yet the written data has to reach the adapter immediately. */
153 INLINE_IO void write_flush(acx_device_t * adev)
155 /* readb(adev->iobase + adev->io[IO_ACX_INFO_MAILBOX_OFFS]); */
156 /* faster version (accesses the first register, IO_ACX_SOFT_RESET,
157 * which should also be safe): */
158 readb(adev->iobase);
161 INLINE_IO int adev_present(acx_device_t * adev)
163 /* fast version (accesses the first register, IO_ACX_SOFT_RESET,
164 * which should be safe): */
165 return acx_readl(adev->iobase) != 0xffffffff;
169 /***********************************************************************
171 static inline txdesc_t *get_txdesc(acx_device_t * adev, int index)
173 return (txdesc_t *) (((u8 *) adev->txdesc_start) +
174 index * adev->txdesc_size);
177 static inline txdesc_t *advance_txdesc(acx_device_t * adev, txdesc_t * txdesc,
178 int inc)
180 return (txdesc_t *) (((u8 *) txdesc) + inc * adev->txdesc_size);
183 static txhostdesc_t *get_txhostdesc(acx_device_t * adev, txdesc_t * txdesc)
185 int index = (u8 *) txdesc - (u8 *) adev->txdesc_start;
187 FN_ENTER;
189 if (unlikely(ACX_DEBUG && (index % adev->txdesc_size))) {
190 printk("bad txdesc ptr %p\n", txdesc);
191 return NULL;
193 index /= adev->txdesc_size;
194 if (unlikely(ACX_DEBUG && (index >= TX_CNT))) {
195 printk("bad txdesc ptr %p\n", txdesc);
196 return NULL;
199 FN_EXIT0;
201 return &adev->txhostdesc_start[index * 2];
208 /***********************************************************************
209 ** EEPROM and PHY read/write helpers
211 /***********************************************************************
212 ** acxpci_read_eeprom_byte
214 ** Function called to read an octet in the EEPROM.
216 ** This function is used by acxpci_e_probe to check if the
217 ** connected card is a legal one or not.
219 ** Arguments:
220 ** adev ptr to acx_device structure
221 ** addr address to read in the EEPROM
222 ** charbuf ptr to a char. This is where the read octet
223 ** will be stored
226 int acxpci_read_eeprom_byte(acx_device_t * adev, u32 addr, u8 * charbuf)
228 int result;
229 int count;
231 FN_ENTER;
233 write_reg32(adev, IO_ACX_EEPROM_CFG, 0);
234 write_reg32(adev, IO_ACX_EEPROM_ADDR, addr);
235 write_flush(adev);
236 write_reg32(adev, IO_ACX_EEPROM_CTL, 2);
238 count = 0xffff;
239 while (read_reg16(adev, IO_ACX_EEPROM_CTL)) {
240 /* scheduling away instead of CPU burning loop
241 * doesn't seem to work here at all:
242 * awful delay, sometimes also failure.
243 * Doesn't matter anyway (only small delay). */
244 if (unlikely(!--count)) {
245 printk("%s: timeout waiting for EEPROM read\n",
246 wiphy_name(adev->ieee->wiphy));
247 result = NOT_OK;
248 goto fail;
250 cpu_relax();
253 *charbuf = read_reg8(adev, IO_ACX_EEPROM_DATA);
254 log(L_DEBUG, "EEPROM at 0x%04X = 0x%02X\n", addr, *charbuf);
255 result = OK;
257 fail:
258 FN_EXIT1(result);
259 return result;
263 /***********************************************************************
264 ** We don't lock hw accesses here since we never r/w eeprom in IRQ
265 ** Note: this function sleeps only because of GFP_KERNEL alloc
267 #ifdef UNUSED
269 acxpci_s_write_eeprom(acx_device_t * adev, u32 addr, u32 len,
270 const u8 * charbuf)
272 u8 *data_verify = NULL;
273 unsigned long flags;
274 int count, i;
275 int result = NOT_OK;
276 u16 gpio_orig;
278 printk("acx: WARNING! I would write to EEPROM now. "
279 "Since I really DON'T want to unless you know "
280 "what you're doing (THIS CODE WILL PROBABLY "
281 "NOT WORK YET!), I will abort that now. And "
282 "definitely make sure to make a "
283 "/proc/driver/acx_wlan0_eeprom backup copy first!!! "
284 "(the EEPROM content includes the PCI config header!! "
285 "If you kill important stuff, then you WILL "
286 "get in trouble and people DID get in trouble already)\n");
287 return OK;
289 FN_ENTER;
291 data_verify = kmalloc(len, GFP_KERNEL);
292 if (!data_verify) {
293 goto end;
296 /* first we need to enable the OE (EEPROM Output Enable) GPIO line
297 * to be able to write to the EEPROM.
298 * NOTE: an EEPROM writing success has been reported,
299 * but you probably have to modify GPIO_OUT, too,
300 * and you probably need to activate a different GPIO
301 * line instead! */
302 gpio_orig = read_reg16(adev, IO_ACX_GPIO_OE);
303 write_reg16(adev, IO_ACX_GPIO_OE, gpio_orig & ~1);
304 write_flush(adev);
306 /* ok, now start writing the data out */
307 for (i = 0; i < len; i++) {
308 write_reg32(adev, IO_ACX_EEPROM_CFG, 0);
309 write_reg32(adev, IO_ACX_EEPROM_ADDR, addr + i);
310 write_reg32(adev, IO_ACX_EEPROM_DATA, *(charbuf + i));
311 write_flush(adev);
312 write_reg32(adev, IO_ACX_EEPROM_CTL, 1);
314 count = 0xffff;
315 while (read_reg16(adev, IO_ACX_EEPROM_CTL)) {
316 if (unlikely(!--count)) {
317 printk("WARNING, DANGER!!! "
318 "Timeout waiting for EEPROM write\n");
319 goto end;
321 cpu_relax();
325 /* disable EEPROM writing */
326 write_reg16(adev, IO_ACX_GPIO_OE, gpio_orig);
327 write_flush(adev);
329 /* now start a verification run */
330 for (i = 0; i < len; i++) {
331 write_reg32(adev, IO_ACX_EEPROM_CFG, 0);
332 write_reg32(adev, IO_ACX_EEPROM_ADDR, addr + i);
333 write_flush(adev);
334 write_reg32(adev, IO_ACX_EEPROM_CTL, 2);
336 count = 0xffff;
337 while (read_reg16(adev, IO_ACX_EEPROM_CTL)) {
338 if (unlikely(!--count)) {
339 printk("timeout waiting for EEPROM read\n");
340 goto end;
342 cpu_relax();
345 data_verify[i] = read_reg16(adev, IO_ACX_EEPROM_DATA);
348 if (0 == memcmp(charbuf, data_verify, len))
349 result = OK; /* read data matches, success */
351 end:
352 kfree(data_verify);
353 FN_EXIT1(result);
354 return result;
356 #endif /* UNUSED */
359 /***********************************************************************
360 ** acxpci_s_read_phy_reg
362 ** Messing with rx/tx disabling and enabling here
363 ** (write_reg32(adev, IO_ACX_ENABLE, 0b000000xx)) kills traffic
365 int acxpci_s_read_phy_reg(acx_device_t * adev, u32 reg, u8 * charbuf)
367 int result = NOT_OK;
368 int count;
370 FN_ENTER;
372 write_reg32(adev, IO_ACX_PHY_ADDR, reg);
373 write_flush(adev);
374 write_reg32(adev, IO_ACX_PHY_CTL, 2);
376 count = 0xffff;
377 while (read_reg32(adev, IO_ACX_PHY_CTL)) {
378 /* scheduling away instead of CPU burning loop
379 * doesn't seem to work here at all:
380 * awful delay, sometimes also failure.
381 * Doesn't matter anyway (only small delay). */
382 if (unlikely(!--count)) {
383 printk("%s: timeout waiting for phy read\n",
384 wiphy_name(adev->ieee->wiphy));
385 *charbuf = 0;
386 goto fail;
388 cpu_relax();
391 log(L_DEBUG, "count was %u\n", count);
392 *charbuf = read_reg8(adev, IO_ACX_PHY_DATA);
394 log(L_DEBUG, "radio PHY at 0x%04X = 0x%02X\n", *charbuf, reg);
395 result = OK;
396 goto fail; /* silence compiler warning */
397 fail:
398 FN_EXIT1(result);
399 return result;
403 /***********************************************************************
405 int acxpci_s_write_phy_reg(acx_device_t * adev, u32 reg, u8 value)
407 FN_ENTER;
409 /* mprusko said that 32bit accesses result in distorted sensitivity
410 * on his card. Unconfirmed, looks like it's not true (most likely since we
411 * now properly flush writes). */
412 write_reg32(adev, IO_ACX_PHY_DATA, value);
413 write_reg32(adev, IO_ACX_PHY_ADDR, reg);
414 write_flush(adev);
415 write_reg32(adev, IO_ACX_PHY_CTL, 1);
416 write_flush(adev);
417 log(L_DEBUG, "radio PHY write 0x%02X at 0x%04X\n", value, reg);
419 FN_EXIT0;
420 return OK;
424 #define NO_AUTO_INCREMENT 1
426 /***********************************************************************
427 ** acxpci_s_write_fw
429 ** Write the firmware image into the card.
431 ** Arguments:
432 ** adev wlan device structure
433 ** fw_image firmware image.
435 ** Returns:
436 ** 1 firmware image corrupted
437 ** 0 success
439 ** Standard csum implementation + write to IO
441 static int
442 acxpci_s_write_fw(acx_device_t * adev, const firmware_image_t *fw_image,
443 u32 offset)
445 int len, size;
446 u32 sum, v32;
447 /* we skip the first four bytes which contain the control sum */
449 const u8 *p = (u8 *) fw_image + 4;
451 FN_ENTER;
453 /* start the image checksum by adding the image size value */
454 sum = p[0] + p[1] + p[2] + p[3];
455 p += 4;
457 write_reg32(adev, IO_ACX_SLV_END_CTL, 0);
459 #if NO_AUTO_INCREMENT
460 write_reg32(adev, IO_ACX_SLV_MEM_CTL, 0); /* use basic mode */
461 #else
462 write_reg32(adev, IO_ACX_SLV_MEM_CTL, 1); /* use autoincrement mode */
463 write_reg32(adev, IO_ACX_SLV_MEM_ADDR, offset); /* configure start address */
464 write_flush(adev);
465 #endif
467 len = 0;
468 size = le32_to_cpu(fw_image->size) & (~3);
470 while (likely(len < size)) {
471 v32 = be32_to_cpu(*(u32 *) p);
472 sum += p[0] + p[1] + p[2] + p[3];
473 p += 4;
474 len += 4;
476 #if NO_AUTO_INCREMENT
477 write_reg32(adev, IO_ACX_SLV_MEM_ADDR, offset + len - 4);
478 write_flush(adev);
479 #endif
480 write_reg32(adev, IO_ACX_SLV_MEM_DATA, v32);
483 log(L_DEBUG, "firmware written, size:%d sum1:%x sum2:%x\n",
484 size, sum, le32_to_cpu(fw_image->chksum));
486 /* compare our checksum with the stored image checksum */
487 FN_EXIT1(sum != le32_to_cpu(fw_image->chksum));
488 return (sum != le32_to_cpu(fw_image->chksum));
492 /***********************************************************************
493 ** acxpci_s_validate_fw
495 ** Compare the firmware image given with
496 ** the firmware image written into the card.
498 ** Arguments:
499 ** adev wlan device structure
500 ** fw_image firmware image.
502 ** Returns:
503 ** NOT_OK firmware image corrupted or not correctly written
504 ** OK success
506 ** Origin: Standard csum + Read IO
508 static int
509 acxpci_s_validate_fw(acx_device_t * adev, const firmware_image_t *fw_image,
510 u32 offset)
512 u32 sum, v32, w32;
513 int len, size;
514 int result = OK;
515 /* we skip the first four bytes which contain the control sum */
516 const u8 *p = (u8 *) fw_image + 4;
518 FN_ENTER;
520 /* start the image checksum by adding the image size value */
521 sum = p[0] + p[1] + p[2] + p[3];
522 p += 4;
524 write_reg32(adev, IO_ACX_SLV_END_CTL, 0);
526 #if NO_AUTO_INCREMENT
527 write_reg32(adev, IO_ACX_SLV_MEM_CTL, 0); /* use basic mode */
528 #else
529 write_reg32(adev, IO_ACX_SLV_MEM_CTL, 1); /* use autoincrement mode */
530 write_reg32(adev, IO_ACX_SLV_MEM_ADDR, offset); /* configure start address */
531 #endif
533 len = 0;
534 size = le32_to_cpu(fw_image->size) & (~3);
536 while (likely(len < size)) {
537 v32 = be32_to_cpu(*(u32 *) p);
538 p += 4;
539 len += 4;
541 #if NO_AUTO_INCREMENT
542 write_reg32(adev, IO_ACX_SLV_MEM_ADDR, offset + len - 4);
543 #endif
544 w32 = read_reg32(adev, IO_ACX_SLV_MEM_DATA);
546 if (unlikely(w32 != v32)) {
547 printk("acx: FATAL: firmware upload: "
548 "data parts at offset %d don't match (0x%08X vs. 0x%08X)! "
549 "I/O timing issues or defective memory, with DWL-xx0+? "
550 "ACX_IO_WIDTH=16 may help. Please report\n",
551 len, v32, w32);
552 result = NOT_OK;
553 break;
556 sum +=
557 (u8) w32 + (u8) (w32 >> 8) + (u8) (w32 >> 16) +
558 (u8) (w32 >> 24);
561 /* sum control verification */
562 if (result != NOT_OK) {
563 if (sum != le32_to_cpu(fw_image->chksum)) {
564 printk("acx: FATAL: firmware upload: "
565 "checksums don't match!\n");
566 result = NOT_OK;
570 FN_EXIT1(result);
571 return result;
575 /***********************************************************************
576 ** acxpci_s_upload_fw
578 ** Called from acx_reset_dev
580 ** Origin: Derived from FW dissection
582 static int acxpci_s_upload_fw(acx_device_t * adev)
584 firmware_image_t *fw_image = NULL;
585 int res = NOT_OK;
586 int try;
587 u32 file_size;
588 char filename[sizeof("tiacx1NNcNN")];
590 FN_ENTER;
592 /* print exact chipset and radio ID to make sure people
593 * really get a clue on which files exactly they need to provide.
594 * Firmware loading is a frequent end-user PITA with these chipsets.
596 printk( "acx: need firmware for acx1%02d chipset with radio ID %02X\n"
597 "Please provide via firmware hotplug:\n"
598 "either combined firmware (single file named 'tiacx1%02dc%02X')\n"
599 "or two files (base firmware file 'tiacx1%02d' "
600 "+ radio fw 'tiacx1%02dr%02X')\n",
601 IS_ACX111(adev)*11, adev->radio_type,
602 IS_ACX111(adev)*11, adev->radio_type,
603 IS_ACX111(adev)*11,
604 IS_ACX111(adev)*11, adev->radio_type
607 /* print exact chipset and radio ID to make sure people really get a clue on which files exactly they are supposed to provide,
608 * since firmware loading is the biggest enduser PITA with these chipsets.
609 * Not printing radio ID in 0xHEX in order to not confuse them into wrong file naming */
610 printk( "acx: need to load firmware for acx1%02d chipset with radio ID %02x, please provide via firmware hotplug:\n"
611 "acx: either one file only (<c>ombined firmware image file, radio-specific) or two files (radio-less base image file *plus* separate <r>adio-specific extension file)\n",
612 IS_ACX111(adev)*11, adev->radio_type);
614 /* Try combined, then main image */
615 adev->need_radio_fw = 0;
616 snprintf(filename, sizeof(filename), "tiacx1%02dc%02X",
617 IS_ACX111(adev) * 11, adev->radio_type);
619 fw_image = acx_s_read_fw(adev->bus_dev, filename, &file_size);
620 if (!fw_image) {
621 adev->need_radio_fw = 1;
622 filename[sizeof("tiacx1NN") - 1] = '\0';
623 fw_image =
624 acx_s_read_fw(adev->bus_dev, filename, &file_size);
625 if (!fw_image) {
626 FN_EXIT1(NOT_OK);
627 return NOT_OK;
631 for (try = 1; try <= 5; try++) {
632 res = acxpci_s_write_fw(adev, fw_image, 0);
633 log(L_DEBUG | L_INIT, "acx_write_fw (main/combined): %d\n", res);
634 if (OK == res) {
635 res = acxpci_s_validate_fw(adev, fw_image, 0);
636 log(L_DEBUG | L_INIT, "acx_validate_fw "
637 "(main/combined): %d\n", res);
640 if (OK == res) {
641 SET_BIT(adev->dev_state_mask, ACX_STATE_FW_LOADED);
642 break;
644 printk("acx: firmware upload attempt #%d FAILED, "
645 "retrying...\n", try);
646 acx_s_mwait(1000); /* better wait for a while... */
649 vfree(fw_image);
651 FN_EXIT1(res);
652 return res;
656 /***********************************************************************
657 ** acxpci_s_upload_radio
659 ** Uploads the appropriate radio module firmware into the card.
661 ** Origin: Standard Read/Write to IO
663 int acxpci_s_upload_radio(acx_device_t * adev)
665 acx_ie_memmap_t mm;
666 firmware_image_t *radio_image;
667 acx_cmd_radioinit_t radioinit;
668 int res = NOT_OK;
669 int try;
670 u32 offset;
671 u32 size;
672 char filename[sizeof("tiacx1NNrNN")];
674 if (!adev->need_radio_fw)
675 return OK;
677 FN_ENTER;
679 acx_s_interrogate(adev, &mm, ACX1xx_IE_MEMORY_MAP);
680 offset = le32_to_cpu(mm.CodeEnd);
682 snprintf(filename, sizeof(filename), "tiacx1%02dr%02X",
683 IS_ACX111(adev) * 11, adev->radio_type);
684 radio_image = acx_s_read_fw(adev->bus_dev, filename, &size);
685 if (!radio_image) {
686 printk("acx: can't load radio module '%s'\n", filename);
687 goto fail;
690 acx_s_issue_cmd(adev, ACX1xx_CMD_SLEEP, NULL, 0);
692 for (try = 1; try <= 5; try++) {
693 res = acxpci_s_write_fw(adev, radio_image, offset);
694 log(L_DEBUG | L_INIT, "acx_write_fw (radio): %d\n", res);
695 if (OK == res) {
696 res = acxpci_s_validate_fw(adev, radio_image, offset);
697 log(L_DEBUG | L_INIT, "acx_validate_fw (radio): %d\n",
698 res);
701 if (OK == res)
702 break;
703 printk("acx: radio firmware upload attempt #%d FAILED, "
704 "retrying...\n", try);
705 acx_s_mwait(1000); /* better wait for a while... */
708 acx_s_issue_cmd(adev, ACX1xx_CMD_WAKE, NULL, 0);
709 radioinit.offset = cpu_to_le32(offset);
710 /* no endian conversion needed, remains in card CPU area: */
711 radioinit.len = radio_image->size;
713 vfree(radio_image);
715 if (OK != res)
716 goto fail;
718 /* will take a moment so let's have a big timeout */
719 acx_s_issue_cmd_timeo(adev, ACX1xx_CMD_RADIOINIT,
720 &radioinit, sizeof(radioinit),
721 CMD_TIMEOUT_MS(1000));
723 res = acx_s_interrogate(adev, &mm, ACX1xx_IE_MEMORY_MAP);
724 fail:
725 FN_EXIT1(res);
726 return res;
730 /***********************************************************************
731 ** acxpci_l_reset_mac
733 ** MAC will be reset
734 ** Call context: reset_dev
736 ** Origin: Standard Read/Write to IO
738 static void acxpci_l_reset_mac(acx_device_t * adev)
740 u16 temp;
742 FN_ENTER;
744 /* halt eCPU */
745 temp = read_reg16(adev, IO_ACX_ECPU_CTRL) | 0x1;
746 write_reg16(adev, IO_ACX_ECPU_CTRL, temp);
748 /* now do soft reset of eCPU, set bit */
749 temp = read_reg16(adev, IO_ACX_SOFT_RESET) | 0x1;
750 log(L_DEBUG, "enable soft reset\n");
751 write_reg16(adev, IO_ACX_SOFT_RESET, temp);
752 write_flush(adev);
754 /* now clear bit again: deassert eCPU reset */
755 log(L_DEBUG, "disable soft reset and go to init mode\n");
756 write_reg16(adev, IO_ACX_SOFT_RESET, temp & ~0x1);
758 /* now start a burst read from initial EEPROM */
759 temp = read_reg16(adev, IO_ACX_EE_START) | 0x1;
760 write_reg16(adev, IO_ACX_EE_START, temp);
761 write_flush(adev);
763 FN_EXIT0;
767 /***********************************************************************
768 ** acxpci_s_verify_init
770 static int acxpci_s_verify_init(acx_device_t * adev)
772 int result = NOT_OK;
773 unsigned long timeout;
775 FN_ENTER;
777 timeout = jiffies + 2 * HZ;
778 for (;;) {
779 u16 irqstat = read_reg16(adev, IO_ACX_IRQ_STATUS_NON_DES);
780 if (irqstat & HOST_INT_FCS_THRESHOLD) {
781 result = OK;
782 write_reg16(adev, IO_ACX_IRQ_ACK,
783 HOST_INT_FCS_THRESHOLD);
784 break;
786 if (time_after(jiffies, timeout))
787 break;
788 /* Init may take up to ~0.5 sec total */
789 acx_s_mwait(50);
792 FN_EXIT1(result);
793 return result;
797 /***********************************************************************
798 ** A few low-level helpers
800 ** Note: these functions are not protected by lock
801 ** and thus are never allowed to be called from IRQ.
802 ** Also they must not race with fw upload which uses same hw regs
805 /***********************************************************************
806 ** acxpci_write_cmd_type_status
808 ** Origin: Common linux implementation
811 static inline void
812 acxpci_write_cmd_type_status(acx_device_t * adev, u16 type, u16 status)
814 FN_ENTER;
815 acx_writel(type | (status << 16), adev->cmd_area);
816 write_flush(adev);
817 FN_EXIT0;
821 /***********************************************************************
822 ** acxpci_read_cmd_type_status
824 ** Origin: Common linux implementation
826 static u32 acxpci_read_cmd_type_status(acx_device_t * adev)
828 u32 cmd_type, cmd_status;
830 FN_ENTER;
832 cmd_type = acx_readl(adev->cmd_area);
833 cmd_status = (cmd_type >> 16);
834 cmd_type = (u16) cmd_type;
836 log(L_CTL, "cmd_type:%04X cmd_status:%04X [%s]\n",
837 cmd_type, cmd_status, acx_cmd_status_str(cmd_status));
839 FN_EXIT1(cmd_status);
840 return cmd_status;
844 /***********************************************************************
845 ** acxpci_s_reset_dev
847 ** Arguments:
848 ** netdevice that contains the adev variable
849 ** Returns:
850 ** NOT_OK on fail
851 ** OK on success
852 ** Side effects:
853 ** device is hard reset
854 ** Call context:
855 ** acxpci_e_probe
856 ** Comment:
857 ** This resets the device using low level hardware calls
858 ** as well as uploads and verifies the firmware to the card
861 static inline void init_mboxes(acx_device_t * adev)
863 u32 cmd_offs, info_offs;
865 FN_ENTER;
867 cmd_offs = read_reg32(adev, IO_ACX_CMD_MAILBOX_OFFS);
868 info_offs = read_reg32(adev, IO_ACX_INFO_MAILBOX_OFFS);
869 adev->cmd_area = (u8 *) adev->iobase2 + cmd_offs;
870 adev->info_area = (u8 *) adev->iobase2 + info_offs;
871 log(L_DEBUG, "iobase2=%p\n"
872 "cmd_mbox_offset=%X cmd_area=%p\n"
873 "info_mbox_offset=%X info_area=%p\n",
874 adev->iobase2,
875 cmd_offs, adev->cmd_area, info_offs, adev->info_area);
876 FN_EXIT0;
880 static inline void read_eeprom_area(acx_device_t * adev)
882 #if ACX_DEBUG > 1
883 int offs;
884 u8 tmp;
886 FN_ENTER;
888 for (offs = 0x8c; offs < 0xb9; offs++)
889 acxpci_read_eeprom_byte(adev, offs, &tmp);
891 FN_EXIT0;
892 #endif
896 int acxpci_s_reset_dev(acx_device_t * adev)
898 const char *msg = "";
899 unsigned long flags;
900 int result = NOT_OK;
901 u16 hardware_info;
902 u16 ecpu_ctrl;
903 int count;
905 FN_ENTER;
907 /* reset the device to make sure the eCPU is stopped
908 * to upload the firmware correctly */
910 acx_lock(adev, flags);
912 #ifdef CONFIG_PCI
913 acxpci_l_reset_mac(adev);
914 #endif
916 ecpu_ctrl = read_reg16(adev, IO_ACX_ECPU_CTRL) & 1;
917 if (!ecpu_ctrl) {
918 msg = "eCPU is already running. ";
919 goto end_unlock;
921 #if 0
922 if (read_reg16(adev, IO_ACX_SOR_CFG) & 2) {
923 /* eCPU most likely means "embedded CPU" */
924 msg = "eCPU did not start after boot from flash. ";
925 goto end_unlock;
928 /* check sense on reset flags */
929 if (read_reg16(adev, IO_ACX_SOR_CFG) & 0x10) {
930 printk("%s: eCPU did not start after boot (SOR), "
931 "is this fatal?\n", wiphy_name(adev->ieee->wiphy));
933 #endif
934 /* scan, if any, is stopped now, setting corresponding IRQ bit */
935 SET_BIT(adev->irq_status, HOST_INT_SCAN_COMPLETE);
937 acx_unlock(adev, flags);
939 /* need to know radio type before fw load */
940 /* Need to wait for arrival of this information in a loop,
941 * most probably since eCPU runs some init code from EEPROM
942 * (started burst read in reset_mac()) which also
943 * sets the radio type ID */
945 count = 0xffff;
946 do {
947 hardware_info = read_reg16(adev, IO_ACX_EEPROM_INFORMATION);
948 if (!--count) {
949 msg = "eCPU didn't indicate radio type";
950 goto end_fail;
952 cpu_relax();
953 } while (!(hardware_info & 0xff00)); /* radio type still zero? */
955 /* printk("DEBUG: count %d\n", count); */
956 adev->form_factor = hardware_info & 0xff;
957 adev->radio_type = hardware_info >> 8;
959 /* load the firmware */
960 if (OK != acxpci_s_upload_fw(adev))
961 goto end_fail;
963 /* acx_s_mwait(10); this one really shouldn't be required */
965 /* now start eCPU by clearing bit */
966 write_reg16(adev, IO_ACX_ECPU_CTRL, ecpu_ctrl & ~0x1);
967 log(L_DEBUG, "booted eCPU up and waiting for completion...\n");
969 /* wait for eCPU bootup */
970 if (OK != acxpci_s_verify_init(adev)) {
971 msg = "timeout waiting for eCPU. ";
972 goto end_fail;
974 log(L_DEBUG, "eCPU has woken up, card is ready to be configured\n");
976 init_mboxes(adev);
977 acxpci_write_cmd_type_status(adev, 0, 0);
979 /* test that EEPROM is readable */
980 read_eeprom_area(adev);
982 result = OK;
983 goto end;
985 /* Finish error message. Indicate which function failed */
986 end_unlock:
987 acx_unlock(adev, flags);
988 end_fail:
989 printk("acx: %sreset_dev() FAILED\n", msg);
990 end:
991 FN_EXIT1(result);
992 return result;
996 /***********************************************************************
997 ** acxpci_s_issue_cmd_timeo
999 ** Sends command to fw, extract result
1001 ** NB: we do _not_ take lock inside, so be sure to not touch anything
1002 ** which may interfere with IRQ handler operation
1004 ** TODO: busy wait is a bit silly, so:
1005 ** 1) stop doing many iters - go to sleep after first
1006 ** 2) go to waitqueue based approach: wait, not poll!
1008 #undef FUNC
1009 #define FUNC "issue_cmd"
1011 #if !ACX_DEBUG
1013 acxpci_s_issue_cmd_timeo(acx_device_t * adev,
1014 unsigned int cmd,
1015 void *buffer, unsigned buflen, unsigned cmd_timeout)
1017 #else
1019 acxpci_s_issue_cmd_timeo_debug(acx_device_t * adev,
1020 unsigned cmd,
1021 void *buffer,
1022 unsigned buflen,
1023 unsigned cmd_timeout, const char *cmdstr)
1025 unsigned long start = jiffies;
1026 #endif
1027 const char *devname;
1028 unsigned counter;
1029 u16 irqtype;
1030 u16 cmd_status;
1031 unsigned long timeout;
1033 FN_ENTER;
1035 devname = wiphy_name(adev->ieee->wiphy);
1036 if (!devname || !devname[0] || devname[4] == '%')
1037 devname = "acx";
1039 log(L_CTL, FUNC "(cmd:%s,buflen:%u,timeout:%ums,type:0x%04X)\n",
1040 cmdstr, buflen, cmd_timeout,
1041 buffer ? le16_to_cpu(((acx_ie_generic_t *) buffer)->type) : -1);
1043 if (!(adev->dev_state_mask & ACX_STATE_FW_LOADED)) {
1044 printk("%s: " FUNC "(): firmware is not loaded yet, "
1045 "cannot execute commands!\n", devname);
1046 goto bad;
1049 if ((acx_debug & L_DEBUG) && (cmd != ACX1xx_CMD_INTERROGATE)) {
1050 printk("input buffer (len=%u):\n", buflen);
1051 acx_dump_bytes(buffer, buflen);
1054 /* wait for firmware to become idle for our command submission */
1055 timeout = HZ / 5;
1056 counter = (timeout * 1000 / HZ) - 1; /* in ms */
1057 timeout += jiffies;
1058 do {
1059 cmd_status = acxpci_read_cmd_type_status(adev);
1060 /* Test for IDLE state */
1061 if (!cmd_status)
1062 break;
1063 if (counter % 8 == 0) {
1064 if (time_after(jiffies, timeout)) {
1065 counter = 0;
1066 break;
1068 /* we waited 8 iterations, no luck. Sleep 8 ms */
1069 acx_s_mwait(8);
1071 } while (likely(--counter));
1073 if (!counter) {
1074 /* the card doesn't get idle, we're in trouble */
1075 printk("%s: " FUNC "(): cmd_status is not IDLE: 0x%04X!=0\n",
1076 devname, cmd_status);
1077 goto bad;
1078 } else if (counter < 190) { /* if waited >10ms... */
1079 log(L_CTL | L_DEBUG, FUNC "(): waited for IDLE %dms. "
1080 "Please report\n", 199 - counter);
1083 /* now write the parameters of the command if needed */
1084 if (buffer && buflen) {
1085 /* if it's an INTERROGATE command, just pass the length
1086 * of parameters to read, as data */
1087 #if CMD_DISCOVERY
1088 if (cmd == ACX1xx_CMD_INTERROGATE)
1089 memset_io(adev->cmd_area + 4, 0xAA, buflen);
1090 #endif
1091 /* adev->cmd_area points to PCI device's memory, not to RAM! */
1092 memcpy_toio(adev->cmd_area + 4, buffer,
1093 (cmd == ACX1xx_CMD_INTERROGATE) ? 4 : buflen);
1095 /* now write the actual command type */
1096 acxpci_write_cmd_type_status(adev, cmd, 0);
1097 /* execute command */
1098 write_reg16(adev, IO_ACX_INT_TRIG, INT_TRIG_CMD);
1099 write_flush(adev);
1101 /* wait for firmware to process command */
1103 /* Ensure nonzero and not too large timeout.
1104 ** Also converts e.g. 100->99, 200->199
1105 ** which is nice but not essential */
1106 cmd_timeout = (cmd_timeout - 1) | 1;
1107 if (unlikely(cmd_timeout > 1199))
1108 cmd_timeout = 1199;
1109 /* clear CMD_COMPLETE bit. can be set only by IRQ handler: */
1110 CLEAR_BIT(adev->irq_status, HOST_INT_CMD_COMPLETE);
1111 /* we schedule away sometimes (timeout can be large) */
1112 counter = cmd_timeout;
1113 timeout = jiffies + HZ;
1114 do {
1115 if (!adev->irqs_active) { /* IRQ disabled: poll */
1116 irqtype = read_reg16(adev, IO_ACX_IRQ_STATUS_NON_DES);
1117 if (irqtype & HOST_INT_CMD_COMPLETE) {
1118 write_reg16(adev, IO_ACX_IRQ_ACK,
1119 HOST_INT_CMD_COMPLETE);
1120 break;
1122 } else { /* Wait when IRQ will set the bit */
1123 irqtype = adev->irq_status;
1124 if (irqtype & HOST_INT_CMD_COMPLETE)
1125 break;
1128 if (counter % 8 == 0) {
1129 if (time_after(jiffies, timeout)) {
1130 counter = 0;
1131 break;
1133 /* we waited 8 iterations, no luck. Sleep 8 ms */
1134 acx_s_mwait(8);
1136 } while (likely(--counter));
1138 /* save state for debugging */
1139 cmd_status = acxpci_read_cmd_type_status(adev);
1141 /* put the card in IDLE state */
1142 acxpci_write_cmd_type_status(adev, 0, 0);
1144 if ((cmd_timeout - counter) == 0) { /* timed out! */
1145 printk("%s: " FUNC "(): timed out %s for CMD_COMPLETE. "
1146 "irq bits:0x%04X irq_status:0x%04X timeout:%dms "
1147 "cmd_status:%d (%s)\n",
1148 devname, (adev->irqs_active) ? "waiting" : "polling",
1149 irqtype, adev->irq_status, cmd_timeout,
1150 cmd_status, acx_cmd_status_str(cmd_status));
1151 printk("hack: don't do: 'goto bad;'\ncounter: %d cmd_timeout: %d cmd_timeout-counter: %d\n",counter, cmd_timeout, cmd_timeout - counter);
1152 } else if (counter == 0) { /* maybe timed out! */
1153 log(L_CTL | L_DEBUG, FUNC "(): %s for CMD_COMPLETE %dms. "
1154 "count:%d. Please report\n",
1155 (adev->irqs_active) ? "waited" : "polled",
1156 cmd_timeout - counter, counter);
1157 } else if ((cmd_timeout - counter) > 30) { /* if waited >30ms... */
1158 log(L_CTL | L_DEBUG, FUNC "(): %s for CMD_COMPLETE %dms. "
1159 "count:%d. Please report\n",
1160 (adev->irqs_active) ? "waited" : "polled",
1161 cmd_timeout - counter, counter);
1164 if (1 != cmd_status) { /* it is not a 'Success' */
1165 printk("%s: " FUNC "(): cmd_status is not SUCCESS: %d (%s). "
1166 "Took %dms of %d\n",
1167 devname, cmd_status, acx_cmd_status_str(cmd_status),
1168 cmd_timeout - counter, cmd_timeout);
1169 /* zero out result buffer
1170 * WARNING: this will trash stack in case of illegally large input
1171 * length! */
1172 if (buffer && buflen)
1173 memset(buffer, 0, buflen);
1174 goto bad;
1177 /* read in result parameters if needed */
1178 if (buffer && buflen && (cmd == ACX1xx_CMD_INTERROGATE)) {
1179 /* adev->cmd_area points to PCI device's memory, not to RAM! */
1180 memcpy_fromio(buffer, adev->cmd_area + 4, buflen);
1181 if (acx_debug & L_DEBUG) {
1182 printk("output buffer (len=%u): ", buflen);
1183 acx_dump_bytes(buffer, buflen);
1186 /* ok: */
1187 log(L_CTL, FUNC "(%s): took %ld jiffies to complete\n",
1188 cmdstr, jiffies - start);
1189 FN_EXIT1(OK);
1190 return OK;
1192 bad:
1193 /* Give enough info so that callers can avoid
1194 ** printing their own diagnostic messages */
1195 #if ACX_DEBUG
1196 printk("%s: " FUNC "(cmd:%s) FAILED\n", devname, cmdstr);
1197 #else
1198 printk("%s: " FUNC "(cmd:0x%04X) FAILED\n", devname, cmd);
1199 #endif
1200 dump_stack();
1201 FN_EXIT1(NOT_OK);
1202 return NOT_OK;
1206 /***********************************************************************
1208 #ifdef NONESSENTIAL_FEATURES
1209 typedef struct device_id {
1210 unsigned char id[6];
1211 char *descr;
1212 char *type;
1213 } device_id_t;
1215 static const device_id_t device_ids[] = {
1217 {'G', 'l', 'o', 'b', 'a', 'l'},
1218 NULL,
1219 NULL,
1222 {0xff, 0xff, 0xff, 0xff, 0xff, 0xff},
1223 "uninitialized",
1224 "SpeedStream SS1021 or Gigafast WF721-AEX"},
1226 {0x80, 0x81, 0x82, 0x83, 0x84, 0x85},
1227 "non-standard",
1228 "DrayTek Vigor 520"},
1230 {'?', '?', '?', '?', '?', '?'},
1231 "non-standard",
1232 "Level One WPC-0200"},
1234 {0x00, 0x00, 0x00, 0x00, 0x00, 0x00},
1235 "empty",
1236 "DWL-650+ variant"}
1239 static void acx_show_card_eeprom_id(acx_device_t * adev)
1241 unsigned char buffer[CARD_EEPROM_ID_SIZE];
1242 int i;
1244 FN_ENTER;
1246 memset(&buffer, 0, CARD_EEPROM_ID_SIZE);
1247 /* use direct EEPROM access */
1248 for (i = 0; i < CARD_EEPROM_ID_SIZE; i++) {
1249 if (OK != acxpci_read_eeprom_byte(adev,
1250 ACX100_EEPROM_ID_OFFSET + i,
1251 &buffer[i])) {
1252 printk("acx: reading EEPROM FAILED\n");
1253 break;
1257 for (i = 0; i < ARRAY_SIZE(device_ids); i++) {
1258 if (!memcmp(&buffer, device_ids[i].id, CARD_EEPROM_ID_SIZE)) {
1259 if (device_ids[i].descr) {
1260 printk("acx: EEPROM card ID string check "
1261 "found %s card ID: is this %s?\n",
1262 device_ids[i].descr, device_ids[i].type);
1264 break;
1267 if (i == ARRAY_SIZE(device_ids)) {
1268 printk("acx: EEPROM card ID string check found "
1269 "unknown card: expected 'Global', got '%.*s\'. "
1270 "Please report\n", CARD_EEPROM_ID_SIZE, buffer);
1272 FN_EXIT0;
1274 #endif /* NONESSENTIAL_FEATURES */
1277 /***********************************************************************
1278 ** acxpci_free_desc_queues
1280 ** Releases the queues that have been allocated, the
1281 ** others have been initialised to NULL so this
1282 ** function can be used if only part of the queues were allocated.
1285 static inline void
1286 free_coherent(struct pci_dev *hwdev, size_t size,
1287 void *vaddr, dma_addr_t dma_handle)
1289 dma_free_coherent(hwdev == NULL ? NULL : &hwdev->dev,
1290 size, vaddr, dma_handle);
1294 void acxpci_free_desc_queues(acx_device_t * adev)
1296 unsigned long flags;
1298 #define ACX_FREE_QUEUE(size, ptr, phyaddr) \
1299 if (ptr) { \
1300 free_coherent(NULL, size, ptr, phyaddr); \
1301 ptr = NULL; \
1302 size = 0; \
1305 FN_ENTER;
1307 ACX_FREE_QUEUE(adev->txhostdesc_area_size, adev->txhostdesc_start,
1308 adev->txhostdesc_startphy);
1309 ACX_FREE_QUEUE(adev->txbuf_area_size, adev->txbuf_start,
1310 adev->txbuf_startphy);
1312 acx_lock(adev, flags);
1313 adev->txdesc_start = NULL;
1314 acx_unlock(adev, flags);
1316 ACX_FREE_QUEUE(adev->rxhostdesc_area_size, adev->rxhostdesc_start,
1317 adev->rxhostdesc_startphy);
1318 ACX_FREE_QUEUE(adev->rxbuf_area_size, adev->rxbuf_start,
1319 adev->rxbuf_startphy);
1321 acx_lock(adev, flags);
1322 adev->rxdesc_start = NULL;
1323 acx_unlock(adev, flags);
1325 FN_EXIT0;
1329 /***********************************************************************
1330 ** acxpci_s_delete_dma_regions
1332 static void acxpci_s_delete_dma_regions(acx_device_t * adev)
1334 FN_ENTER;
1335 /* disable radio Tx/Rx. Shouldn't we use the firmware commands
1336 * here instead? Or are we that much down the road that it's no
1337 * longer possible here? */
1338 write_reg16(adev, IO_ACX_ENABLE, 0);
1340 acx_s_mwait(100);
1342 /* NO locking for all parts of acxpci_free_desc_queues because:
1343 * while calling dma_free_coherent() interrupts need to be 'free'
1344 * but if you spinlock the whole function (acxpci_free_desc_queues)
1345 * you'll get an error */
1346 acxpci_free_desc_queues(adev);
1348 FN_EXIT0;
1352 /***********************************************************************
1353 ** acxpci_e_probe
1355 ** Probe routine called when a PCI device w/ matching ID is found.
1356 ** Here's the sequence:
1357 ** - Allocate the PCI resources.
1358 ** - Read the PCMCIA attribute memory to make sure we have a WLAN card
1359 ** - Reset the MAC
1360 ** - Initialize the dev and wlan data
1361 ** - Initialize the MAC
1363 ** pdev - ptr to pci device structure containing info about pci configuration
1364 ** id - ptr to the device id entry that matched this device
1366 static const u16 IO_ACX100[] = {
1367 0x0000, /* IO_ACX_SOFT_RESET */
1369 0x0014, /* IO_ACX_SLV_MEM_ADDR */
1370 0x0018, /* IO_ACX_SLV_MEM_DATA */
1371 0x001c, /* IO_ACX_SLV_MEM_CTL */
1372 0x0020, /* IO_ACX_SLV_END_CTL */
1374 0x0034, /* IO_ACX_FEMR */
1376 0x007c, /* IO_ACX_INT_TRIG */
1377 0x0098, /* IO_ACX_IRQ_MASK */
1378 0x00a4, /* IO_ACX_IRQ_STATUS_NON_DES */
1379 0x00a8, /* IO_ACX_IRQ_STATUS_CLEAR */
1380 0x00ac, /* IO_ACX_IRQ_ACK */
1381 0x00b0, /* IO_ACX_HINT_TRIG */
1383 0x0104, /* IO_ACX_ENABLE */
1385 0x0250, /* IO_ACX_EEPROM_CTL */
1386 0x0254, /* IO_ACX_EEPROM_ADDR */
1387 0x0258, /* IO_ACX_EEPROM_DATA */
1388 0x025c, /* IO_ACX_EEPROM_CFG */
1390 0x0268, /* IO_ACX_PHY_ADDR */
1391 0x026c, /* IO_ACX_PHY_DATA */
1392 0x0270, /* IO_ACX_PHY_CTL */
1394 0x0290, /* IO_ACX_GPIO_OE */
1396 0x0298, /* IO_ACX_GPIO_OUT */
1398 0x02a4, /* IO_ACX_CMD_MAILBOX_OFFS */
1399 0x02a8, /* IO_ACX_INFO_MAILBOX_OFFS */
1400 0x02ac, /* IO_ACX_EEPROM_INFORMATION */
1402 0x02d0, /* IO_ACX_EE_START */
1403 0x02d4, /* IO_ACX_SOR_CFG */
1404 0x02d8 /* IO_ACX_ECPU_CTRL */
1407 static const u16 IO_ACX111[] = {
1408 0x0000, /* IO_ACX_SOFT_RESET */
1410 0x0014, /* IO_ACX_SLV_MEM_ADDR */
1411 0x0018, /* IO_ACX_SLV_MEM_DATA */
1412 0x001c, /* IO_ACX_SLV_MEM_CTL */
1413 0x0020, /* IO_ACX_SLV_END_CTL */
1415 0x0034, /* IO_ACX_FEMR */
1417 0x00b4, /* IO_ACX_INT_TRIG */
1418 0x00d4, /* IO_ACX_IRQ_MASK */
1419 /* we do mean NON_DES (0xf0), not NON_DES_MASK which is at 0xe0: */
1420 0x00f0, /* IO_ACX_IRQ_STATUS_NON_DES */
1421 0x00e4, /* IO_ACX_IRQ_STATUS_CLEAR */
1422 0x00e8, /* IO_ACX_IRQ_ACK */
1423 0x00ec, /* IO_ACX_HINT_TRIG */
1425 0x01d0, /* IO_ACX_ENABLE */
1427 0x0338, /* IO_ACX_EEPROM_CTL */
1428 0x033c, /* IO_ACX_EEPROM_ADDR */
1429 0x0340, /* IO_ACX_EEPROM_DATA */
1430 0x0344, /* IO_ACX_EEPROM_CFG */
1432 0x0350, /* IO_ACX_PHY_ADDR */
1433 0x0354, /* IO_ACX_PHY_DATA */
1434 0x0358, /* IO_ACX_PHY_CTL */
1436 0x0374, /* IO_ACX_GPIO_OE */
1438 0x037c, /* IO_ACX_GPIO_OUT */
1440 0x0388, /* IO_ACX_CMD_MAILBOX_OFFS */
1441 0x038c, /* IO_ACX_INFO_MAILBOX_OFFS */
1442 0x0390, /* IO_ACX_EEPROM_INFORMATION */
1444 0x0100, /* IO_ACX_EE_START */
1445 0x0104, /* IO_ACX_SOR_CFG */
1446 0x0108, /* IO_ACX_ECPU_CTRL */
1449 static const struct ieee80211_ops acxpci_hw_ops = {
1450 .tx = acx_i_start_xmit,
1451 .conf_tx = acx_net_conf_tx,
1452 .add_interface = acx_add_interface,
1453 .remove_interface = acx_remove_interface,
1454 .start = acxpci_e_open,
1455 .configure_filter = acx_i_set_multicast_list,
1456 .stop = acxpci_e_close,
1457 .config = acx_net_config,
1458 .config_interface = acx_config_interface,
1459 .set_key = acx_net_set_key,
1460 .get_stats = acx_e_get_stats,
1461 .get_tx_stats = acx_net_get_tx_stats,
1465 #ifdef CONFIG_PCI
1466 static int __devinit
1467 acxpci_e_probe(struct pci_dev *pdev, const struct pci_device_id *id)
1469 acx111_ie_configoption_t co;
1470 unsigned long mem_region1 = 0;
1471 unsigned long mem_region2 = 0;
1472 unsigned long mem_region1_size;
1473 unsigned long mem_region2_size;
1474 unsigned long phymem1;
1475 unsigned long phymem2;
1476 void *mem1 = NULL;
1477 void *mem2 = NULL;
1478 acx_device_t *adev = NULL;
1479 const char *chip_name;
1480 int result = -EIO;
1481 int err;
1482 u8 chip_type;
1483 struct ieee80211_hw *ieee;
1485 FN_ENTER;
1487 ieee = ieee80211_alloc_hw(sizeof(struct acx_device), &acxpci_hw_ops);
1488 if (!ieee) {
1489 printk("acx: could not allocate ieee80211 structure %s\n",
1490 pci_name(pdev));
1491 goto fail_alloc_netdev;
1493 ieee->flags &= ~IEEE80211_HW_RX_INCLUDES_FCS;
1494 /* TODO: mainline doesn't support the following flags yet */
1496 ~IEEE80211_HW_MONITOR_DURING_OPER &
1497 ~IEEE80211_HW_WEP_INCLUDE_IV;
1499 ieee->queues = 1;
1501 /* (NB: memsets to 0 entire area) */
1502 if (!ieee) {
1503 printk("acx: could not allocate ieee structure %s\n",
1504 pci_name(pdev));
1505 goto fail_alloc_netdev;
1508 adev = ieee2adev(ieee);
1510 memset(adev, 0, sizeof(*adev));
1511 /** Set up our private interface **/
1512 spin_lock_init(&adev->spinlock); /* initial state: unlocked */
1513 /* We do not start with downed sem: we want PARANOID_LOCKING to work */
1514 printk("mutex_init(&adev->mutex); // adev = 0x%px\n", adev);
1515 mutex_init(&adev->mutex);
1516 /* since nobody can see new netdev yet, we can as well
1517 ** just _presume_ that we're under sem (instead of actually taking it): */
1518 /* acx_sem_lock(adev); */
1519 adev->ieee = ieee;
1520 adev->pdev = pdev;
1521 adev->bus_dev = &pdev->dev;
1522 adev->dev_type = DEVTYPE_PCI;
1524 /** Finished with private interface **/
1526 /** begin board specific inits **/
1527 pci_set_drvdata(pdev, ieee);
1529 /* Enable the PCI device */
1530 if (pci_enable_device(pdev)) {
1531 printk("acx: pci_enable_device() FAILED\n");
1532 result = -ENODEV;
1533 goto fail_pci_enable_device;
1536 /* enable busmastering (required for CardBus) */
1537 pci_set_master(pdev);
1540 /* chiptype is u8 but id->driver_data is ulong
1541 ** Works for now (possible values are 1 and 2) */
1542 chip_type = (u8) id->driver_data;
1543 /* acx100 and acx111 have different PCI memory regions */
1544 if (chip_type == CHIPTYPE_ACX100) {
1545 chip_name = "ACX100";
1546 mem_region1 = PCI_ACX100_REGION1;
1547 mem_region1_size = PCI_ACX100_REGION1_SIZE;
1549 mem_region2 = PCI_ACX100_REGION2;
1550 mem_region2_size = PCI_ACX100_REGION2_SIZE;
1551 } else if (chip_type == CHIPTYPE_ACX111) {
1552 chip_name = "ACX111";
1553 mem_region1 = PCI_ACX111_REGION1;
1554 mem_region1_size = PCI_ACX111_REGION1_SIZE;
1556 mem_region2 = PCI_ACX111_REGION2;
1557 mem_region2_size = PCI_ACX111_REGION2_SIZE;
1558 } else {
1559 printk("acx: unknown chip type 0x%04X\n", chip_type);
1560 goto fail_unknown_chiptype;
1563 /* Figure out our resources */
1564 phymem1 = pci_resource_start(pdev, mem_region1);
1565 phymem2 = pci_resource_start(pdev, mem_region2);
1566 if (!request_mem_region
1567 (phymem1, pci_resource_len(pdev, mem_region1), "acx_1")) {
1568 printk("acx: cannot reserve PCI memory region 1 (are you sure "
1569 "you have CardBus support in kernel?)\n");
1570 goto fail_request_mem_region1;
1572 if (!request_mem_region
1573 (phymem2, pci_resource_len(pdev, mem_region2), "acx_2")) {
1574 printk("acx: cannot reserve PCI memory region 2\n");
1575 goto fail_request_mem_region2;
1577 /* this used to be ioremap(), but ioremap_nocache()
1578 * is much less risky, right? (and slower?)
1579 * FIXME: we may want to go back to cached variant if it's
1580 * certain that our code really properly handles
1581 * cached operation (memory barriers, volatile?, ...)
1582 * (but always keep this comment here regardless!)
1583 * Possibly make this a driver config setting?
1586 mem1 = ioremap_nocache(phymem1, mem_region1_size);
1587 if (!mem1) {
1588 printk("acx: ioremap() FAILED\n");
1589 goto fail_ioremap1;
1591 mem2 = ioremap_nocache(phymem2, mem_region2_size);
1592 if (!mem2) {
1593 printk("acx: ioremap() #2 FAILED\n");
1594 goto fail_ioremap2;
1597 printk("acx: found %s-based wireless network card at %s, irq:%d, "
1598 "phymem1:0x%lX, phymem2:0x%lX, mem1:0x%p, mem1_size:%ld, "
1599 "mem2:0x%p, mem2_size:%ld\n",
1600 chip_name, pci_name(pdev), pdev->irq, phymem1, phymem2,
1601 mem1, mem_region1_size, mem2, mem_region2_size);
1602 log(L_ANY, "initial debug setting is 0x%04X\n", acx_debug);
1603 adev->chip_type = chip_type;
1604 adev->chip_name = chip_name;
1605 adev->io = (CHIPTYPE_ACX100 == chip_type) ? IO_ACX100 : IO_ACX111;
1606 adev->membase = phymem1;
1607 adev->iobase = mem1;
1608 adev->membase2 = phymem2;
1609 adev->iobase2 = mem2;
1610 adev->irq = pdev->irq;
1613 if (0 == pdev->irq) {
1614 printk("acx: can't use IRQ 0\n");
1615 goto fail_irq;
1617 SET_IEEE80211_DEV(ieee, &pdev->dev);
1620 /* to find crashes due to weird driver access
1621 * to unconfigured interface (ifup) */
1622 adev->mgmt_timer.function = (void (*)(unsigned long))0x0000dead;
1625 #ifdef NONESSENTIAL_FEATURES
1626 acx_show_card_eeprom_id(adev);
1627 #endif /* NONESSENTIAL_FEATURES */
1630 /* ok, pci setup is finished, now start initializing the card */
1632 /* NB: read_reg() reads may return bogus data before reset_dev(),
1633 * since the firmware which directly controls large parts of the I/O
1634 * registers isn't initialized yet.
1635 * acx100 seems to be more affected than acx111 */
1636 if (OK != acxpci_s_reset_dev(adev))
1637 goto fail_reset;
1639 if (IS_ACX100(adev)) {
1640 /* ACX100: configopt struct in cmd mailbox - directly after reset */
1641 memcpy_fromio(&co, adev->cmd_area, sizeof(co));
1644 if (OK != acx_s_init_mac(adev))
1645 goto fail_init_mac;
1647 if (IS_ACX111(adev)) {
1648 /* ACX111: configopt struct needs to be queried after full init */
1649 acx_s_interrogate(adev, &co, ACX111_IE_CONFIG_OPTIONS);
1651 /* TODO: merge them into one function, they are called just once and are the same for pci & usb */
1652 if (OK != acxpci_read_eeprom_byte(adev, 0x05, &adev->eeprom_version))
1653 goto fail_read_eeprom_version;
1655 acx_s_parse_configoption(adev, &co);
1656 acx_s_set_defaults(adev);
1657 acx_s_get_firmware_version(adev); /* needs to be after acx_s_init_mac() */
1658 acx_display_hardware_details(adev);
1660 /* Register the card, AFTER everything else has been set up,
1661 * since otherwise an ioctl could step on our feet due to
1662 * firmware operations happening in parallel or uninitialized data */
1665 acx_proc_register_entries(ieee);
1667 /* Now we have our device, so make sure the kernel doesn't try
1668 * to send packets even though we're not associated to a network yet */
1670 /* after register_netdev() userspace may start working with dev
1671 * (in particular, on other CPUs), we only need to up the sem */
1672 /* acx_sem_unlock(adev); */
1674 printk("acx " ACX_RELEASE ": net device %s, driver compiled "
1675 "against wireless extensions %d and Linux %s\n",
1676 wiphy_name(adev->ieee->wiphy), WIRELESS_EXT, UTS_RELEASE);
1678 MAC_COPY(adev->ieee->wiphy->perm_addr, adev->dev_addr);
1680 log(L_IRQ | L_INIT, "using IRQ %d\n", pdev->irq);
1682 /** done with board specific setup **/
1684 /* need to be able to restore PCI state after a suspend */
1685 #ifdef CONFIG_PM
1686 pci_save_state(pdev);
1687 #endif
1689 err = acx_setup_modes(adev);
1690 if (err) {
1691 printk("can't register hwmode\n");
1692 goto fail_register_netdev;
1695 acx_init_task_scheduler(adev);
1696 err = ieee80211_register_hw(ieee);
1697 if (OK != err) {
1698 printk("acx: ieee80211_register_hw() FAILED: %d\n", err);
1699 goto fail_register_netdev;
1701 #if CMD_DISCOVERY
1702 great_inquisitor(adev);
1703 #endif
1705 result = OK;
1706 goto done;
1708 /* error paths: undo everything in reverse order... */
1711 acxpci_s_delete_dma_regions(adev);
1712 pci_set_drvdata(pdev, NULL);
1714 fail_init_mac:
1715 fail_read_eeprom_version:
1716 fail_reset:
1718 fail_alloc_netdev:
1719 fail_irq:
1721 iounmap(mem2);
1722 fail_ioremap2:
1724 iounmap(mem1);
1725 fail_ioremap1:
1727 release_mem_region(pci_resource_start(pdev, mem_region2),
1728 pci_resource_len(pdev, mem_region2));
1729 fail_request_mem_region2:
1731 release_mem_region(pci_resource_start(pdev, mem_region1),
1732 pci_resource_len(pdev, mem_region1));
1733 fail_request_mem_region1:
1734 fail_unknown_chiptype:
1736 pci_disable_device(pdev);
1737 fail_pci_enable_device:
1739 #ifdef CONFIG_PM
1740 pci_set_power_state(pdev, PCI_D3hot);
1741 #endif
1742 fail_register_netdev:
1743 ieee80211_free_hw(ieee);
1744 done:
1745 FN_EXIT1(result);
1746 return result;
1750 /***********************************************************************
1751 ** acxpci_e_remove
1753 ** Shut device down (if not hot unplugged)
1754 ** and deallocate PCI resources for the acx chip.
1756 ** pdev - ptr to PCI device structure containing info about pci configuration
1758 static void __devexit acxpci_e_remove(struct pci_dev *pdev)
1760 struct ieee80211_hw *hw = (struct ieee80211_hw *)pci_get_drvdata(pdev);
1761 acx_device_t *adev = ieee2adev(hw);
1762 unsigned long mem_region1, mem_region2;
1763 unsigned long flags;
1764 FN_ENTER;
1766 if (!hw) {
1767 log(L_DEBUG, "%s: card is unused. Skipping any release code\n",
1768 __func__);
1769 goto end;
1773 adev->initialized = 0;
1775 /* If device wasn't hot unplugged... */
1776 if (adev_present(adev)) {
1778 /* disable both Tx and Rx to shut radio down properly */
1779 if (adev->initialized) {
1780 acx_s_issue_cmd(adev, ACX1xx_CMD_DISABLE_TX, NULL, 0);
1781 acx_s_issue_cmd(adev, ACX1xx_CMD_DISABLE_RX, NULL, 0);
1783 #ifdef REDUNDANT
1784 /* put the eCPU to sleep to save power
1785 * Halting is not possible currently,
1786 * since not supported by all firmware versions */
1787 acx_s_issue_cmd(adev, ACX100_CMD_SLEEP, NULL, 0);
1788 #endif
1789 acx_lock(adev, flags);
1790 /* disable power LED to save power :-) */
1791 log(L_INIT, "switching off power LED to save power\n");
1792 acxpci_l_power_led(adev, 0);
1793 /* stop our eCPU */
1794 if (IS_ACX111(adev)) {
1795 /* FIXME: does this actually keep halting the eCPU?
1796 * I don't think so...
1798 acxpci_l_reset_mac(adev);
1799 } else {
1800 u16 temp;
1801 /* halt eCPU */
1802 temp = read_reg16(adev, IO_ACX_ECPU_CTRL) | 0x1;
1803 write_reg16(adev, IO_ACX_ECPU_CTRL, temp);
1804 write_flush(adev);
1806 acx_unlock(adev, flags);
1810 /* unregister the device to not let the kernel
1811 * (e.g. ioctls) access a half-deconfigured device
1812 * NB: this will cause acxpci_e_close() to be called,
1813 * thus we shouldn't call it under sem!
1814 * Well, netdev did, but ieee80211 stack does not, so we
1815 * have to do so manually...
1817 acxpci_e_close(hw);
1818 log(L_INIT, "removing device %s\n", wiphy_name(adev->ieee->wiphy));
1819 ieee80211_unregister_hw(adev->ieee);
1821 /* unregister_netdev ensures that no references to us left.
1822 * For paranoid reasons we continue to follow the rules */
1823 acx_sem_lock(adev);
1825 if (adev->dev_state_mask & ACX_STATE_IFACE_UP) {
1826 acxpci_s_down(hw);
1827 CLEAR_BIT(adev->dev_state_mask, ACX_STATE_IFACE_UP);
1830 acx_proc_unregister_entries(adev->ieee);
1832 if (IS_ACX100(adev)) {
1833 mem_region1 = PCI_ACX100_REGION1;
1834 mem_region2 = PCI_ACX100_REGION2;
1835 } else {
1836 mem_region1 = PCI_ACX111_REGION1;
1837 mem_region2 = PCI_ACX111_REGION2;
1840 /* finally, clean up PCI bus state */
1841 acxpci_s_delete_dma_regions(adev);
1842 if (adev->iobase)
1843 iounmap(adev->iobase);
1844 if (adev->iobase2)
1845 iounmap(adev->iobase2);
1846 release_mem_region(pci_resource_start(pdev, mem_region1),
1847 pci_resource_len(pdev, mem_region1));
1848 release_mem_region(pci_resource_start(pdev, mem_region2),
1849 pci_resource_len(pdev, mem_region2));
1850 pci_disable_device(pdev);
1852 /* remove dev registration */
1854 free_irq(adev->irq, adev);
1855 acx_sem_unlock(adev);
1857 /* Free netdev (quite late,
1858 * since otherwise we might get caught off-guard
1859 * by a netdev timeout handler execution
1860 * expecting to see a working dev...) */
1861 ieee80211_free_hw(adev->ieee);
1863 /* put device into ACPI D3 mode (shutdown) */
1864 #ifdef CONFIG_PM
1865 pci_set_power_state(pdev, PCI_D3hot);
1866 #endif
1867 end:
1868 FN_EXIT0;
1872 /***********************************************************************
1873 ** TODO: PM code needs to be fixed / debugged / tested.
1875 #ifdef CONFIG_PM
1876 static int
1877 acxpci_e_suspend(struct pci_dev *pdev, pm_message_t state)
1879 struct ieee80211_hw *hw = pci_get_drvdata(pdev);
1880 acx_device_t *adev;
1882 FN_ENTER;
1883 printk("acx: suspend handler is experimental!\n");
1884 printk("sus: dev %p\n", hw);
1886 /* if (!netif_running(ndev))
1887 goto end;
1889 adev = ieee2adev(hw);
1890 printk("sus: adev %p\n", adev);
1892 acx_sem_lock(adev);
1894 ieee80211_unregister_hw(hw); /* this one cannot sleep */
1895 acxpci_s_down(hw);
1896 /* down() does not set it to 0xffff, but here we really want that */
1897 write_reg16(adev, IO_ACX_IRQ_MASK, 0xffff);
1898 write_reg16(adev, IO_ACX_FEMR, 0x0);
1899 acxpci_s_delete_dma_regions(adev);
1900 pci_save_state(pdev);
1901 pci_set_power_state(pdev, PCI_D3hot);
1903 acx_sem_unlock(adev);
1904 FN_EXIT0;
1905 return OK;
1909 static int acxpci_e_resume(struct pci_dev *pdev)
1911 struct ieee80211_hw *hw = pci_get_drvdata(pdev);
1912 acx_device_t *adev;
1914 FN_ENTER;
1916 printk("acx: resume handler is experimental!\n");
1917 printk("rsm: got dev %p\n", hw);
1920 adev = ieee2adev(hw);
1921 printk("rsm: got adev %p\n", adev);
1923 acx_sem_lock(adev);
1925 pci_set_power_state(pdev, PCI_D0);
1926 printk("rsm: power state PCI_D0 set\n");
1927 pci_restore_state(pdev);
1928 printk("rsm: PCI state restored\n");
1930 if (OK != acxpci_s_reset_dev(adev))
1931 goto end_unlock;
1932 printk("rsm: device reset done\n");
1933 if (OK != acx_s_init_mac(adev))
1934 goto end_unlock;
1935 printk("rsm: init MAC done\n");
1937 acxpci_s_up(hw);
1938 printk("rsm: acx up done\n");
1940 /* now even reload all card parameters as they were before suspend,
1941 * and possibly be back in the network again already :-) */
1942 if (ACX_STATE_IFACE_UP & adev->dev_state_mask) {
1943 adev->set_mask = GETSET_ALL;
1944 acx_s_update_card_settings(adev);
1945 printk("rsm: settings updated\n");
1947 ieee80211_register_hw(hw);
1948 printk("rsm: device attached\n");
1950 end_unlock:
1951 acx_sem_unlock(adev);
1952 /* we need to return OK here anyway, right? */
1953 FN_EXIT0;
1954 return OK;
1956 #endif /* CONFIG_PM */
1957 #endif /* CONFIG_PCI */
1959 /***********************************************************************
1960 ** acxpci_s_up
1962 ** This function is called by acxpci_e_open (when ifconfig sets the device as up)
1964 ** Side effects:
1965 ** - Enables on-card interrupt requests
1966 ** - calls acx_s_start
1969 static void enable_acx_irq(acx_device_t * adev)
1971 FN_ENTER;
1972 write_reg16(adev, IO_ACX_IRQ_MASK, adev->irq_mask);
1973 write_reg16(adev, IO_ACX_FEMR, 0x8000);
1974 adev->irqs_active = 1;
1975 FN_EXIT0;
1978 static void acxpci_s_up(struct ieee80211_hw *hw)
1980 acx_device_t *adev = ieee2adev(hw);
1981 unsigned long flags;
1983 FN_ENTER;
1985 acx_lock(adev, flags);
1986 enable_acx_irq(adev);
1987 acx_unlock(adev, flags);
1989 /* acx fw < 1.9.3.e has a hardware timer, and older drivers
1990 ** used to use it. But we don't do that anymore, our OS
1991 ** has reliable software timers */
1992 init_timer(&adev->mgmt_timer);
1993 adev->mgmt_timer.function = acx_i_timer;
1994 adev->mgmt_timer.data = (unsigned long)adev;
1996 /* Need to set ACX_STATE_IFACE_UP first, or else
1997 ** timer won't be started by acx_set_status() */
1998 SET_BIT(adev->dev_state_mask, ACX_STATE_IFACE_UP);
2000 acx_s_start(adev);
2002 FN_EXIT0;
2006 /***********************************************************************
2007 ** acxpci_s_down
2009 ** NB: device may be already hot unplugged if called from acxpci_e_remove()
2011 ** Disables on-card interrupt request, stops softirq and timer, stops queue,
2012 ** sets status == STOPPED
2015 static void disable_acx_irq(acx_device_t * adev)
2017 FN_ENTER;
2019 /* I guess mask is not 0xffff because acx100 won't signal
2020 ** cmd completion then (needed for ifup).
2021 ** I can't ifconfig up after ifconfig down'ing on my acx100 */
2022 write_reg16(adev, IO_ACX_IRQ_MASK, adev->irq_mask_off);
2023 write_reg16(adev, IO_ACX_FEMR, 0x0);
2024 adev->irqs_active = 0;
2026 FN_EXIT0;
2029 static void acxpci_s_down(struct ieee80211_hw *hw)
2031 acx_device_t *adev = ieee2adev(hw);
2033 FN_ENTER;
2035 /* Disable IRQs first, so that IRQs cannot race with us */
2036 /* then wait until interrupts have finished executing on other CPUs */
2037 disable_acx_irq(adev); /* NO sem-locking here? */
2038 synchronize_irq(adev->irq);
2040 /* we really don't want to have an asynchronous tasklet disturb us
2041 ** after something vital for its job has been shut down, so
2042 ** end all remaining work now.
2044 ** NB: carrier_off (done by set_status below) would lead to
2045 ** not yet fully understood deadlock in flush_scheduled_work().
2046 ** That's why we do FLUSH first.
2048 ** NB2: we have a bad locking bug here: flush_scheduled_work()
2049 ** waits for acx_e_after_interrupt_task to complete if it is running
2050 ** on another CPU, but acx_e_after_interrupt_task
2051 ** will sleep on sem forever, because it is taken by us!
2052 ** Work around that by temporary sem unlock.
2053 ** This will fail miserably if we'll be hit by concurrent
2054 ** iwconfig or something in between. TODO! */
2055 acx_sem_unlock(adev);
2056 flush_scheduled_work();
2057 acx_sem_lock(adev);
2059 /* This is possible:
2060 ** flush_scheduled_work -> acx_e_after_interrupt_task ->
2061 ** -> set_status(ASSOCIATED) -> wake_queue()
2062 ** That's why we stop queue _after_ flush_scheduled_work
2063 ** lock/unlock is just paranoia, maybe not needed */
2065 /* kernel/timer.c says it's illegal to del_timer_sync()
2066 ** a timer which restarts itself. We guarantee this cannot
2067 ** ever happen because acx_i_timer() never does this if
2068 ** status is ACX_STATUS_0_STOPPED */
2069 del_timer_sync(&adev->mgmt_timer);
2071 FN_EXIT0;
2074 #ifdef CONFIG_NET_POLL_CONTROLLER
2075 void acxpci_net_poll_controller(struct net_device *net_dev)
2077 acx_device_t *adev = ndev2adev(net_dev);
2078 unsigned long flags;
2080 local_irq_save(flags);
2081 acxpci_i_interrupt(adev->irq, adev);
2082 local_irq_restore(flags);
2084 #endif*/ /* CONFIG_NET_POLL_CONTROLLER */
2086 /***********************************************************************
2087 ** acxpci_e_open
2089 ** Called as a result of SIOCSIFFLAGS ioctl changing the flags bit IFF_UP
2090 ** from clear to set. In other words: ifconfig up.
2092 ** Returns:
2093 ** 0 success
2094 ** >0 f/w reported error
2095 ** <0 driver reported error
2097 static int acxpci_e_open(struct ieee80211_hw *hw)
2099 acx_device_t *adev = ieee2adev(hw);
2100 int result = OK;
2102 FN_ENTER;
2104 acx_sem_lock(adev);
2106 adev->initialized = 0;
2108 /* TODO: pci_set_power_state(pdev, PCI_D0); ? */
2110 /* request shared IRQ handler */
2111 if (request_irq
2112 (adev->irq, acxpci_i_interrupt, IRQF_SHARED, KBUILD_MODNAME, adev)) {
2113 printk("%s: request_irq FAILED\n", wiphy_name(adev->ieee->wiphy));
2114 result = -EAGAIN;
2115 goto done;
2117 log(L_DEBUG | L_IRQ, "request_irq %d successful\n", adev->irq);
2119 /* ifup device */
2120 acxpci_s_up(hw);
2122 /* We don't currently have to do anything else.
2123 * The setup of the MAC should be subsequently completed via
2124 * the mlme commands.
2125 * Higher layers know we're ready from dev->start==1 and
2126 * dev->tbusy==0. Our rx path knows to pass up received/
2127 * frames because of dev->flags&IFF_UP is true.
2129 ieee80211_start_queues(adev->ieee);
2131 adev->initialized = 1;
2132 done:
2133 acx_sem_unlock(adev);
2135 FN_EXIT1(result);
2136 return result;
2140 /***********************************************************************
2141 ** acxpci_e_close
2143 ** This function stops the network functionality of the interface (invoked
2144 ** when the user calls ifconfig <wlan> down). The tx queue is halted and
2145 ** the device is marked as down.
2147 ** Called as a result of SIOCSIIFFLAGS ioctl changing the flags bit IFF_UP
2148 ** from set to clear. I.e. called by "ifconfig DEV down"
2150 ** Returns:
2151 ** 0 success
2152 ** >0 f/w reported error
2153 ** <0 driver reported error
2155 static void acxpci_e_close(struct ieee80211_hw *hw)
2157 acx_device_t *adev = ieee2adev(hw);
2159 FN_ENTER;
2161 acx_sem_lock(adev);
2163 /* ifdown device */
2164 CLEAR_BIT(adev->dev_state_mask, ACX_STATE_IFACE_UP);
2165 if (adev->initialized) {
2166 acxpci_s_down(hw);
2169 if (adev->modes)
2170 acx_free_modes(adev);
2171 /* disable all IRQs, release shared IRQ handler */
2172 write_reg16(adev, IO_ACX_IRQ_MASK, 0xffff);
2173 write_reg16(adev, IO_ACX_FEMR, 0x0);
2175 /* TODO: pci_set_power_state(pdev, PCI_D3hot); ? */
2177 /* We currently don't have to do anything else.
2178 * Higher layers know we're not ready from dev->start==0 and
2179 * dev->tbusy==1. Our rx path knows to not pass up received
2180 * frames because of dev->flags&IFF_UP is false.
2182 acx_sem_unlock(adev);
2184 log(L_INIT, "closed device\n");
2185 FN_EXIT0;
2191 /***************************************************************
2192 ** acxpci_l_process_rxdesc
2194 ** Called directly and only from the IRQ handler
2197 #if !ACX_DEBUG
2198 static inline void log_rxbuffer(const acx_device_t * adev)
2201 #else
2202 static void log_rxbuffer(const acx_device_t * adev)
2204 register const struct rxhostdesc *rxhostdesc;
2205 int i;
2207 /* no FN_ENTER here, we don't want that */
2209 rxhostdesc = adev->rxhostdesc_start;
2210 if (unlikely(!rxhostdesc))
2211 return;
2212 for (i = 0; i < RX_CNT; i++) {
2213 if ((rxhostdesc->Ctl_16 & cpu_to_le16(DESC_CTL_HOSTOWN))
2214 && (rxhostdesc->Status & cpu_to_le32(DESC_STATUS_FULL)))
2215 printk("rx: buf %d full\n", i);
2216 rxhostdesc++;
2219 #endif
2221 static void acxpci_l_process_rxdesc(acx_device_t * adev)
2223 register rxhostdesc_t *hostdesc;
2224 unsigned count, tail;
2226 FN_ENTER;
2228 if (unlikely(acx_debug & L_BUFR))
2229 log_rxbuffer(adev);
2231 /* First, have a loop to determine the first descriptor that's
2232 * full, just in case there's a mismatch between our current
2233 * rx_tail and the full descriptor we're supposed to handle. */
2234 tail = adev->rx_tail;
2235 count = RX_CNT;
2236 while (1) {
2237 hostdesc = &adev->rxhostdesc_start[tail];
2238 /* advance tail regardless of outcome of the below test */
2239 tail = (tail + 1) % RX_CNT;
2241 if ((hostdesc->Ctl_16 & cpu_to_le16(DESC_CTL_HOSTOWN))
2242 && (hostdesc->Status & cpu_to_le32(DESC_STATUS_FULL)))
2243 break; /* found it! */
2245 if (unlikely(!--count)) /* hmm, no luck: all descs empty, bail out */
2246 goto end;
2249 /* now process descriptors, starting with the first we figured out */
2250 while (1) {
2251 log(L_BUFR, "rx: tail=%u Ctl_16=%04X Status=%08X\n",
2252 tail, hostdesc->Ctl_16, hostdesc->Status);
2254 acx_l_process_rxbuf(adev, hostdesc->data);
2255 hostdesc->Status = 0;
2256 /* flush all writes before adapter sees CTL_HOSTOWN change */
2257 wmb();
2258 /* Host no longer owns this, needs to be LAST */
2259 CLEAR_BIT(hostdesc->Ctl_16, cpu_to_le16(DESC_CTL_HOSTOWN));
2261 /* ok, descriptor is handled, now check the next descriptor */
2262 hostdesc = &adev->rxhostdesc_start[tail];
2264 /* if next descriptor is empty, then bail out */
2265 if (!(hostdesc->Ctl_16 & cpu_to_le16(DESC_CTL_HOSTOWN))
2266 || !(hostdesc->Status & cpu_to_le32(DESC_STATUS_FULL)))
2267 break;
2269 tail = (tail + 1) % RX_CNT;
2271 end:
2272 adev->rx_tail = tail;
2273 FN_EXIT0;
2278 /***********************************************************************
2279 ** acxpci_i_interrupt
2281 ** IRQ handler (atomic context, must not sleep, blah, blah)
2284 /* scan is complete. all frames now on the receive queue are valid */
2285 #define INFO_SCAN_COMPLETE 0x0001
2286 #define INFO_WEP_KEY_NOT_FOUND 0x0002
2287 /* hw has been reset as the result of a watchdog timer timeout */
2288 #define INFO_WATCH_DOG_RESET 0x0003
2289 /* failed to send out NULL frame from PS mode notification to AP */
2290 /* recommended action: try entering 802.11 PS mode again */
2291 #define INFO_PS_FAIL 0x0004
2292 /* encryption/decryption process on a packet failed */
2293 #define INFO_IV_ICV_FAILURE 0x0005
2295 /* Info mailbox format:
2296 2 bytes: type
2297 2 bytes: status
2298 more bytes may follow
2299 rumors say about status:
2300 0x0000 info available (set by hw)
2301 0x0001 information received (must be set by host)
2302 0x1000 info available, mailbox overflowed (messages lost) (set by hw)
2303 but in practice we've seen:
2304 0x9000 when we did not set status to 0x0001 on prev message
2305 0x1001 when we did set it
2306 0x0000 was never seen
2307 conclusion: this is really a bitfield:
2308 0x1000 is 'info available' bit
2309 'mailbox overflowed' bit is 0x8000, not 0x1000
2310 value of 0x0000 probably means that there are no messages at all
2311 P.S. I dunno how in hell hw is supposed to notice that messages are lost -
2312 it does NOT clear bit 0x0001, and this bit will probably stay forever set
2313 after we set it once. Let's hope this will be fixed in firmware someday
2316 static void handle_info_irq(acx_device_t * adev)
2318 #if ACX_DEBUG
2319 static const char *const info_type_msg[] = {
2320 "(unknown)",
2321 "scan complete",
2322 "WEP key not found",
2323 "internal watchdog reset was done",
2324 "failed to send powersave (NULL frame) notification to AP",
2325 "encrypt/decrypt on a packet has failed",
2326 "TKIP tx keys disabled",
2327 "TKIP rx keys disabled",
2328 "TKIP rx: key ID not found",
2329 "???",
2330 "???",
2331 "???",
2332 "???",
2333 "???",
2334 "???",
2335 "???",
2336 "TKIP IV value exceeds thresh"
2338 #endif
2339 u32 info_type, info_status;
2341 info_type = acx_readl(adev->info_area);
2342 info_status = (info_type >> 16);
2343 info_type = (u16) info_type;
2345 /* inform fw that we have read this info message */
2346 acx_writel(info_type | 0x00010000, adev->info_area);
2347 write_reg16(adev, IO_ACX_INT_TRIG, INT_TRIG_INFOACK);
2348 write_flush(adev);
2350 log(L_CTL, "info_type:%04X info_status:%04X\n", info_type, info_status);
2352 log(L_IRQ, "got Info IRQ: status %04X type %04X: %s\n",
2353 info_status, info_type,
2354 info_type_msg[(info_type >= ARRAY_SIZE(info_type_msg)) ?
2355 0 : info_type]
2360 static void log_unusual_irq(u16 irqtype)
2363 if (!printk_ratelimit())
2364 return;
2367 printk("acx: got");
2368 if (irqtype & HOST_INT_RX_DATA) {
2369 printk(" Rx_Data");
2371 /* HOST_INT_TX_COMPLETE */
2372 if (irqtype & HOST_INT_TX_XFER) {
2373 printk(" Tx_Xfer");
2375 /* HOST_INT_RX_COMPLETE */
2376 if (irqtype & HOST_INT_DTIM) {
2377 printk(" DTIM");
2379 if (irqtype & HOST_INT_BEACON) {
2380 printk(" Beacon");
2382 if (irqtype & HOST_INT_TIMER) {
2383 log(L_IRQ, " Timer");
2385 if (irqtype & HOST_INT_KEY_NOT_FOUND) {
2386 printk(" Key_Not_Found");
2388 if (irqtype & HOST_INT_IV_ICV_FAILURE) {
2389 printk(" IV_ICV_Failure (crypto)");
2391 /* HOST_INT_CMD_COMPLETE */
2392 /* HOST_INT_INFO */
2393 if (irqtype & HOST_INT_OVERFLOW) {
2394 printk(" Overflow");
2396 if (irqtype & HOST_INT_PROCESS_ERROR) {
2397 printk(" Process_Error");
2399 /* HOST_INT_SCAN_COMPLETE */
2400 if (irqtype & HOST_INT_FCS_THRESHOLD) {
2401 printk(" FCS_Threshold");
2403 if (irqtype & HOST_INT_UNKNOWN) {
2404 printk(" Unknown");
2406 printk(" IRQ(s)\n");
2409 /* FIXME: update_link_quality_led was a stub - let's comment it and avoid
2410 * compiler warnings */
2412 static void update_link_quality_led(acx_device_t * adev)
2414 int qual;
2416 qual =
2417 acx_signal_determine_quality(adev->wstats.qual.level,
2418 adev->wstats.qual.noise);
2419 if (qual > adev->brange_max_quality)
2420 qual = adev->brange_max_quality;
2422 if (time_after(jiffies, adev->brange_time_last_state_change +
2423 (HZ / 2 -
2424 HZ / 2 * (unsigned long)qual /
2425 adev->brange_max_quality))) {
2426 acxpci_l_power_led(adev, (adev->brange_last_state == 0));
2427 adev->brange_last_state ^= 1; // toggle
2428 adev->brange_time_last_state_change = jiffies;
2433 #define MAX_IRQLOOPS_PER_JIFFY (20000/HZ) /* a la orinoco.c */
2435 /* Interrupt handler bottom-half */
2436 void acx_interrupt_tasklet(struct work_struct *work)
2439 #ifdef CONFIG_ACX_MAC80211_DEBUG
2440 u32 _handled = 0x00000000;
2441 # define acxirq_handled(irq) do { _handled |= (irq); } while (0)
2442 #else
2443 # define acxirq_handled(irq) do { /* nothing */ } while (0)
2444 #endif /* CONFIG_ACX_MAC80211_DEBUG */
2445 acx_device_t *adev = container_of(work,struct acx_device, after_interrupt_task);
2446 // unsigned int irqcount = MAX_IRQLOOPS_PER_JIFFY;
2447 int irqtype;
2449 #define IRQ_ITERATE 0
2450 #if IRQ_ITERATE
2451 unsigned int irqcount = MAX_IRQLOOPS_PER_JIFFY;
2452 u16 unmasked;
2453 #endif
2455 FN_ENTER;
2457 /* LOCKING: can just spin_lock() since IRQs are disabled anyway.
2458 * I am paranoid */
2459 acx_sem_lock(adev);
2461 irqtype = adev->irq_reason;
2462 adev->irq_reason = 0;
2464 #if IRQ_ITERATE
2465 if (jiffies != adev->irq_last_jiffies) {
2466 adev->irq_loops_this_jiffy = 0;
2467 adev->irq_last_jiffies = jiffies;
2470 /* safety condition; we'll normally abort loop below
2471 * in case no IRQ type occurred */
2472 while (likely(--irqcount)) {
2473 #endif
2474 /* ACK all IRQs ASAP */
2476 /* Handle most important IRQ types first */
2477 if (irqtype & HOST_INT_RX_COMPLETE) {
2478 log(L_IRQ, "got Rx_Complete IRQ\n");
2479 acxpci_l_process_rxdesc(adev);
2481 if (irqtype & HOST_INT_TX_COMPLETE) {
2482 log(L_IRQ, "got Tx_Complete IRQ\n");
2483 /* don't clean up on each Tx complete, wait a bit
2484 * unless we're going towards full, in which case
2485 * we do it immediately, too (otherwise we might lockup
2486 * with a full Tx buffer if we go into
2487 * acxpci_l_clean_txdesc() at a time when we won't wakeup
2488 * the net queue in there for some reason...) */
2489 // if (adev->tx_free <= TX_START_CLEAN) {
2490 acxpci_l_clean_txdesc(adev);
2491 // }
2494 /* Less frequent ones */
2495 if (irqtype & (0
2496 | HOST_INT_CMD_COMPLETE
2497 | HOST_INT_INFO | HOST_INT_SCAN_COMPLETE)) {
2498 if (irqtype & HOST_INT_INFO) {
2499 handle_info_irq(adev);
2501 if (irqtype & HOST_INT_SCAN_COMPLETE) {
2502 log(L_IRQ, "got Scan_Complete IRQ\n");
2503 /* need to do that in process context */
2504 /* remember that fw is not scanning anymore */
2505 SET_BIT(adev->irq_status,
2506 HOST_INT_SCAN_COMPLETE);
2510 /* These we just log, but either they happen rarely
2511 * or we keep them masked out */
2512 if (irqtype & (0 | HOST_INT_RX_DATA
2513 /* | HOST_INT_TX_COMPLETE */
2514 | HOST_INT_TX_XFER
2515 /* | HOST_INT_RX_COMPLETE */
2516 | HOST_INT_DTIM
2517 | HOST_INT_BEACON
2518 | HOST_INT_TIMER
2519 | HOST_INT_KEY_NOT_FOUND
2520 | HOST_INT_IV_ICV_FAILURE
2521 /* | HOST_INT_CMD_COMPLETE */
2522 /* | HOST_INT_INFO */
2523 | HOST_INT_OVERFLOW
2524 | HOST_INT_PROCESS_ERROR
2525 /* | HOST_INT_SCAN_COMPLETE */
2526 | HOST_INT_FCS_THRESHOLD
2527 | HOST_INT_UNKNOWN)) {
2528 log_unusual_irq(irqtype);
2530 #if IRQ_ITERATE
2531 unmasked = read_reg16(adev, IO_ACX_IRQ_STATUS_CLEAR);
2532 irqtype = unmasked & ~adev->irq_mask;
2533 /* Bail out if no new IRQ bits or if all are masked out */
2534 if (!irqtype)
2535 break;
2537 if (unlikely
2538 (++adev->irq_loops_this_jiffy > MAX_IRQLOOPS_PER_JIFFY)) {
2539 printk(KERN_ERR
2540 "acx: too many interrupts per jiffy!\n");
2541 /* Looks like card floods us with IRQs! Try to stop that */
2542 write_reg16(adev, IO_ACX_IRQ_MASK, 0xffff);
2543 /* This will short-circuit all future attempts to handle IRQ.
2544 * We cant do much more... */
2545 adev->irq_mask = 0;
2546 break;
2549 #endif
2550 /* Routine to perform blink with range
2551 * FIXME: update_link_quality_led is a stub - add proper code and enable this again:
2552 if (unlikely(adev->led_power == 2))
2553 update_link_quality_led(adev);
2556 /* write_flush(adev); - not needed, last op was read anyway */
2557 acx_sem_unlock(adev);
2559 /* handled: */
2560 if (adev->after_interrupt_jobs)
2561 acx_e_after_interrupt_task(&adev->after_interrupt_task);
2563 FN_EXIT0;
2564 return;
2569 static irqreturn_t acxpci_i_interrupt(int irq, void *dev_id)
2571 acx_device_t *adev = dev_id;
2572 unsigned long flags;
2573 register u16 irqtype;
2574 u16 unmasked;
2576 FN_ENTER;
2578 if (!adev)
2579 return IRQ_NONE;
2581 /* LOCKING: can just spin_lock() since IRQs are disabled anyway.
2582 * I am paranoid */
2584 acx_lock(adev, flags);
2586 unmasked = read_reg16(adev, IO_ACX_IRQ_STATUS_CLEAR);
2587 if (unlikely(0xffff == unmasked)) {
2588 /* 0xffff value hints at missing hardware,
2589 * so don't do anything.
2590 * Not very clean, but other drivers do the same... */
2591 log(L_IRQ, "IRQ type:FFFF - device removed? IRQ_NONE\n");
2592 goto none;
2595 /* We will check only "interesting" IRQ types */
2596 irqtype = unmasked & ~adev->irq_mask;
2597 if (!irqtype) {
2598 /* We are on a shared IRQ line and it wasn't our IRQ */
2599 log(L_IRQ,
2600 "IRQ type:%04X, mask:%04X - all are masked, IRQ_NONE\n",
2601 unmasked, adev->irq_mask);
2602 goto none;
2605 /* Go ahead and ACK our interrupt */
2606 write_reg16(adev, IO_ACX_IRQ_ACK, 0xffff);
2607 if (irqtype & HOST_INT_CMD_COMPLETE) {
2608 log(L_IRQ, "got Command_Complete IRQ\n");
2609 /* save the state for the running issue_cmd() */
2610 SET_BIT(adev->irq_status, HOST_INT_CMD_COMPLETE);
2613 /* Only accept IRQs, if we are initialized properly.
2614 * This avoids an RX race while initializing.
2615 * We should probably not enable IRQs before we are initialized
2616 * completely, but some careful work is needed to fix this. I think it
2617 * is best to stay with this cheap workaround for now... .
2619 if (likely(adev->initialized)) {
2620 /* disable all IRQs. They are enabled again in the bottom half. */
2621 /* save the reason code and call our bottom half. */
2622 adev->irq_reason = irqtype;
2624 if ((irqtype & HOST_INT_RX_COMPLETE) || (irqtype & HOST_INT_TX_COMPLETE))
2625 acx_schedule_task(adev, 0);
2628 acx_unlock(adev, flags);
2629 FN_EXIT0;
2630 return IRQ_HANDLED;
2631 none:
2632 acx_unlock(adev, flags);
2633 FN_EXIT0;
2634 return IRQ_NONE;
2639 /***********************************************************************
2640 ** acxpci_l_power_led
2642 void acxpci_l_power_led(acx_device_t * adev, int enable)
2644 u16 gpio_pled = IS_ACX111(adev) ? 0x0040 : 0x0800;
2646 /* A hack. Not moving message rate limiting to adev->xxx
2647 * (it's only a debug message after all) */
2648 static int rate_limit = 0;
2650 if (rate_limit++ < 3)
2651 log(L_IOCTL, "Please report in case toggling the power "
2652 "LED doesn't work for your card!\n");
2653 if (enable)
2654 write_reg16(adev, IO_ACX_GPIO_OUT,
2655 read_reg16(adev, IO_ACX_GPIO_OUT) & ~gpio_pled);
2656 else
2657 write_reg16(adev, IO_ACX_GPIO_OUT,
2658 read_reg16(adev, IO_ACX_GPIO_OUT) | gpio_pled);
2662 /***********************************************************************
2663 ** Ioctls
2666 /***********************************************************************
2668 #if 0
2670 acx111pci_ioctl_info(struct net_device *ndev,
2671 struct iw_request_info *info,
2672 struct iw_param *vwrq, char *extra)
2674 #if ACX_DEBUG > 1
2675 acx_device_t *adev = ndev2adev(ndev);
2676 rxdesc_t *rxdesc;
2677 txdesc_t *txdesc;
2678 rxhostdesc_t *rxhostdesc;
2679 txhostdesc_t *txhostdesc;
2680 struct acx111_ie_memoryconfig memconf;
2681 struct acx111_ie_queueconfig queueconf;
2682 unsigned long flags;
2683 int i;
2684 char memmap[0x34];
2685 char rxconfig[0x8];
2686 char fcserror[0x8];
2687 char ratefallback[0x5];
2689 if (!(acx_debug & (L_IOCTL | L_DEBUG)))
2690 return OK;
2691 /* using printk() since we checked debug flag already */
2693 acx_sem_lock(adev);
2695 if (!IS_ACX111(adev)) {
2696 printk("acx111-specific function called "
2697 "with non-acx111 chip, aborting\n");
2698 goto end_ok;
2701 /* get Acx111 Memory Configuration */
2702 memset(&memconf, 0, sizeof(memconf));
2703 /* BTW, fails with 12 (Write only) error code.
2704 ** Retained for easy testing of issue_cmd error handling :) */
2705 acx_s_interrogate(adev, &memconf, ACX1xx_IE_QUEUE_CONFIG);
2707 /* get Acx111 Queue Configuration */
2708 memset(&queueconf, 0, sizeof(queueconf));
2709 acx_s_interrogate(adev, &queueconf, ACX1xx_IE_MEMORY_CONFIG_OPTIONS);
2711 /* get Acx111 Memory Map */
2712 memset(memmap, 0, sizeof(memmap));
2713 acx_s_interrogate(adev, &memmap, ACX1xx_IE_MEMORY_MAP);
2715 /* get Acx111 Rx Config */
2716 memset(rxconfig, 0, sizeof(rxconfig));
2717 acx_s_interrogate(adev, &rxconfig, ACX1xx_IE_RXCONFIG);
2719 /* get Acx111 fcs error count */
2720 memset(fcserror, 0, sizeof(fcserror));
2721 acx_s_interrogate(adev, &fcserror, ACX1xx_IE_FCS_ERROR_COUNT);
2723 /* get Acx111 rate fallback */
2724 memset(ratefallback, 0, sizeof(ratefallback));
2725 acx_s_interrogate(adev, &ratefallback, ACX1xx_IE_RATE_FALLBACK);
2727 /* force occurrence of a beacon interrupt */
2728 /* TODO: comment why is this necessary */
2729 write_reg16(adev, IO_ACX_HINT_TRIG, HOST_INT_BEACON);
2731 /* dump Acx111 Mem Configuration */
2732 printk("dump mem config:\n"
2733 "data read: %d, struct size: %d\n"
2734 "Number of stations: %1X\n"
2735 "Memory block size: %1X\n"
2736 "tx/rx memory block allocation: %1X\n"
2737 "count rx: %X / tx: %X queues\n"
2738 "options %1X\n"
2739 "fragmentation %1X\n"
2740 "Rx Queue 1 Count Descriptors: %X\n"
2741 "Rx Queue 1 Host Memory Start: %X\n"
2742 "Tx Queue 1 Count Descriptors: %X\n"
2743 "Tx Queue 1 Attributes: %X\n",
2744 memconf.len, (int)sizeof(memconf),
2745 memconf.no_of_stations,
2746 memconf.memory_block_size,
2747 memconf.tx_rx_memory_block_allocation,
2748 memconf.count_rx_queues, memconf.count_tx_queues,
2749 memconf.options,
2750 memconf.fragmentation,
2751 memconf.rx_queue1_count_descs,
2752 acx2cpu(memconf.rx_queue1_host_rx_start),
2753 memconf.tx_queue1_count_descs, memconf.tx_queue1_attributes);
2755 /* dump Acx111 Queue Configuration */
2756 printk("dump queue head:\n"
2757 "data read: %d, struct size: %d\n"
2758 "tx_memory_block_address (from card): %X\n"
2759 "rx_memory_block_address (from card): %X\n"
2760 "rx1_queue address (from card): %X\n"
2761 "tx1_queue address (from card): %X\n"
2762 "tx1_queue attributes (from card): %X\n",
2763 queueconf.len, (int)sizeof(queueconf),
2764 queueconf.tx_memory_block_address,
2765 queueconf.rx_memory_block_address,
2766 queueconf.rx1_queue_address,
2767 queueconf.tx1_queue_address, queueconf.tx1_attributes);
2769 /* dump Acx111 Mem Map */
2770 printk("dump mem map:\n"
2771 "data read: %d, struct size: %d\n"
2772 "Code start: %X\n"
2773 "Code end: %X\n"
2774 "WEP default key start: %X\n"
2775 "WEP default key end: %X\n"
2776 "STA table start: %X\n"
2777 "STA table end: %X\n"
2778 "Packet template start: %X\n"
2779 "Packet template end: %X\n"
2780 "Queue memory start: %X\n"
2781 "Queue memory end: %X\n"
2782 "Packet memory pool start: %X\n"
2783 "Packet memory pool end: %X\n"
2784 "iobase: %p\n"
2785 "iobase2: %p\n",
2786 *((u16 *) & memmap[0x02]), (int)sizeof(memmap),
2787 *((u32 *) & memmap[0x04]),
2788 *((u32 *) & memmap[0x08]),
2789 *((u32 *) & memmap[0x0C]),
2790 *((u32 *) & memmap[0x10]),
2791 *((u32 *) & memmap[0x14]),
2792 *((u32 *) & memmap[0x18]),
2793 *((u32 *) & memmap[0x1C]),
2794 *((u32 *) & memmap[0x20]),
2795 *((u32 *) & memmap[0x24]),
2796 *((u32 *) & memmap[0x28]),
2797 *((u32 *) & memmap[0x2C]),
2798 *((u32 *) & memmap[0x30]), adev->iobase, adev->iobase2);
2800 /* dump Acx111 Rx Config */
2801 printk("dump rx config:\n"
2802 "data read: %d, struct size: %d\n"
2803 "rx config: %X\n"
2804 "rx filter config: %X\n",
2805 *((u16 *) & rxconfig[0x02]), (int)sizeof(rxconfig),
2806 *((u16 *) & rxconfig[0x04]), *((u16 *) & rxconfig[0x06]));
2808 /* dump Acx111 fcs error */
2809 printk("dump fcserror:\n"
2810 "data read: %d, struct size: %d\n"
2811 "fcserrors: %X\n",
2812 *((u16 *) & fcserror[0x02]), (int)sizeof(fcserror),
2813 *((u32 *) & fcserror[0x04]));
2815 /* dump Acx111 rate fallback */
2816 printk("dump rate fallback:\n"
2817 "data read: %d, struct size: %d\n"
2818 "ratefallback: %X\n",
2819 *((u16 *) & ratefallback[0x02]), (int)sizeof(ratefallback),
2820 *((u8 *) & ratefallback[0x04]));
2822 /* protect against IRQ */
2823 acx_lock(adev, flags);
2825 /* dump acx111 internal rx descriptor ring buffer */
2826 rxdesc = adev->rxdesc_start;
2828 /* loop over complete receive pool */
2829 if (rxdesc)
2830 for (i = 0; i < RX_CNT; i++) {
2831 printk("\ndump internal rxdesc %d:\n"
2832 "mem pos %p\n"
2833 "next 0x%X\n"
2834 "acx mem pointer (dynamic) 0x%X\n"
2835 "CTL (dynamic) 0x%X\n"
2836 "Rate (dynamic) 0x%X\n"
2837 "RxStatus (dynamic) 0x%X\n"
2838 "Mod/Pre (dynamic) 0x%X\n",
2840 rxdesc,
2841 acx2cpu(rxdesc->pNextDesc),
2842 acx2cpu(rxdesc->ACXMemPtr),
2843 rxdesc->Ctl_8,
2844 rxdesc->rate, rxdesc->error, rxdesc->SNR);
2845 rxdesc++;
2848 /* dump host rx descriptor ring buffer */
2850 rxhostdesc = adev->rxhostdesc_start;
2852 /* loop over complete receive pool */
2853 if (rxhostdesc)
2854 for (i = 0; i < RX_CNT; i++) {
2855 printk("\ndump host rxdesc %d:\n"
2856 "mem pos %p\n"
2857 "buffer mem pos 0x%X\n"
2858 "buffer mem offset 0x%X\n"
2859 "CTL 0x%X\n"
2860 "Length 0x%X\n"
2861 "next 0x%X\n"
2862 "Status 0x%X\n",
2864 rxhostdesc,
2865 acx2cpu(rxhostdesc->data_phy),
2866 rxhostdesc->data_offset,
2867 le16_to_cpu(rxhostdesc->Ctl_16),
2868 le16_to_cpu(rxhostdesc->length),
2869 acx2cpu(rxhostdesc->desc_phy_next),
2870 rxhostdesc->Status);
2871 rxhostdesc++;
2874 /* dump acx111 internal tx descriptor ring buffer */
2875 txdesc = adev->txdesc_start;
2877 /* loop over complete transmit pool */
2878 if (txdesc)
2879 for (i = 0; i < TX_CNT; i++) {
2880 printk("\ndump internal txdesc %d:\n"
2881 "size 0x%X\n"
2882 "mem pos %p\n"
2883 "next 0x%X\n"
2884 "acx mem pointer (dynamic) 0x%X\n"
2885 "host mem pointer (dynamic) 0x%X\n"
2886 "length (dynamic) 0x%X\n"
2887 "CTL (dynamic) 0x%X\n"
2888 "CTL2 (dynamic) 0x%X\n"
2889 "Status (dynamic) 0x%X\n"
2890 "Rate (dynamic) 0x%X\n",
2892 (int)sizeof(struct txdesc),
2893 txdesc,
2894 acx2cpu(txdesc->pNextDesc),
2895 acx2cpu(txdesc->AcxMemPtr),
2896 acx2cpu(txdesc->HostMemPtr),
2897 le16_to_cpu(txdesc->total_length),
2898 txdesc->Ctl_8,
2899 txdesc->Ctl2_8, txdesc->error,
2900 txdesc->u.r1.rate);
2901 txdesc = advance_txdesc(adev, txdesc, 1);
2904 /* dump host tx descriptor ring buffer */
2906 txhostdesc = adev->txhostdesc_start;
2908 /* loop over complete host send pool */
2909 if (txhostdesc)
2910 for (i = 0; i < TX_CNT * 2; i++) {
2911 printk("\ndump host txdesc %d:\n"
2912 "mem pos %p\n"
2913 "buffer mem pos 0x%X\n"
2914 "buffer mem offset 0x%X\n"
2915 "CTL 0x%X\n"
2916 "Length 0x%X\n"
2917 "next 0x%X\n"
2918 "Status 0x%X\n",
2920 txhostdesc,
2921 acx2cpu(txhostdesc->data_phy),
2922 txhostdesc->data_offset,
2923 le16_to_cpu(txhostdesc->Ctl_16),
2924 le16_to_cpu(txhostdesc->length),
2925 acx2cpu(txhostdesc->desc_phy_next),
2926 le32_to_cpu(txhostdesc->Status));
2927 txhostdesc++;
2930 /* write_reg16(adev, 0xb4, 0x4); */
2932 acx_unlock(adev, flags);
2933 end_ok:
2935 acx_sem_unlock(adev);
2936 #endif /* ACX_DEBUG */
2937 return OK;
2941 /***********************************************************************
2944 acx100pci_ioctl_set_phy_amp_bias(struct net_device *ndev,
2945 struct iw_request_info *info,
2946 struct iw_param *vwrq, char *extra)
2948 acx_device_t *adev = ndev2adev(ndev);
2949 unsigned long flags;
2950 u16 gpio_old;
2952 if (!IS_ACX100(adev)) {
2953 /* WARNING!!!
2954 * Removing this check *might* damage
2955 * hardware, since we're tweaking GPIOs here after all!!!
2956 * You've been warned...
2957 * WARNING!!! */
2958 printk("acx: sorry, setting bias level for non-acx100 "
2959 "is not supported yet\n");
2960 return OK;
2963 if (*extra > 7) {
2964 printk("acx: invalid bias parameter, range is 0-7\n");
2965 return -EINVAL;
2968 acx_sem_lock(adev);
2970 /* Need to lock accesses to [IO_ACX_GPIO_OUT]:
2971 * IRQ handler uses it to update LED */
2972 acx_lock(adev, flags);
2973 gpio_old = read_reg16(adev, IO_ACX_GPIO_OUT);
2974 write_reg16(adev, IO_ACX_GPIO_OUT,
2975 (gpio_old & 0xf8ff) | ((u16) * extra << 8));
2976 acx_unlock(adev, flags);
2978 log(L_DEBUG, "gpio_old: 0x%04X\n", gpio_old);
2979 printk("%s: PHY power amplifier bias: old:%d, new:%d\n",
2980 ndev->name, (gpio_old & 0x0700) >> 8, (unsigned char)*extra);
2982 acx_sem_unlock(adev);
2984 return OK;
2986 #endif
2988 /***************************************************************
2989 ** acxpci_l_alloc_tx
2990 ** Actually returns a txdesc_t* ptr
2992 ** FIXME: in case of fragments, should allocate multiple descrs
2993 ** after figuring out how many we need and whether we still have
2994 ** sufficiently many.
2996 tx_t *acxpci_l_alloc_tx(acx_device_t * adev)
2998 struct txdesc *txdesc;
2999 unsigned head;
3000 u8 ctl8;
3002 FN_ENTER;
3004 if (unlikely(!adev->tx_free)) {
3005 printk("acx: BUG: no free txdesc left\n");
3006 txdesc = NULL;
3007 goto end;
3010 head = adev->tx_head;
3011 txdesc = get_txdesc(adev, head);
3012 ctl8 = txdesc->Ctl_8;
3014 /* 2005-10-11: there were several bug reports on this happening
3015 ** but now cause seems to be understood & fixed */
3016 if (unlikely(DESC_CTL_HOSTOWN != (ctl8 & DESC_CTL_ACXDONE_HOSTOWN))) {
3017 /* whoops, descr at current index is not free, so probably
3018 * ring buffer already full */
3019 printk("acx: BUG: tx_head:%d Ctl8:0x%02X - failed to find "
3020 "free txdesc\n", head, ctl8);
3021 txdesc = NULL;
3022 goto end;
3025 /* Needed in case txdesc won't be eventually submitted for tx */
3026 txdesc->Ctl_8 = DESC_CTL_ACXDONE_HOSTOWN;
3028 adev->tx_free--;
3029 log(L_BUFT, "tx: got desc %u, %u remain\n", head, adev->tx_free);
3030 /* Keep a few free descs between head and tail of tx ring.
3031 ** It is not absolutely needed, just feels safer */
3032 if (adev->tx_free < TX_STOP_QUEUE) {
3033 log(L_BUF, "stop queue (%u tx desc left)\n", adev->tx_free);
3034 acx_stop_queue(adev->ieee, NULL);
3037 /* returning current descriptor, so advance to next free one */
3038 adev->tx_head = (head + 1) % TX_CNT;
3039 end:
3040 FN_EXIT0;
3042 return (tx_t *) txdesc;
3046 /***********************************************************************
3048 void *acxpci_l_get_txbuf(acx_device_t * adev, tx_t * tx_opaque)
3050 return get_txhostdesc(adev, (txdesc_t *) tx_opaque)->data;
3054 /***********************************************************************
3055 ** acxpci_l_tx_data
3057 ** Can be called from IRQ (rx -> (AP bridging or mgmt response) -> tx).
3058 ** Can be called from acx_i_start_xmit (data frames from net core).
3060 ** FIXME: in case of fragments, should loop over the number of
3061 ** pre-allocated tx descrs, properly setting up transfer data and
3062 ** CTL_xxx flags according to fragment number.
3064 void
3065 acxpci_l_tx_data(acx_device_t * adev, tx_t * tx_opaque, int len,
3066 struct ieee80211_tx_control *ieeectl,struct sk_buff* skb)
3068 txdesc_t *txdesc = (txdesc_t *) tx_opaque;
3069 struct ieee80211_hdr *wireless_header;
3070 txhostdesc_t *hostdesc1, *hostdesc2;
3071 int rate_cur;
3072 u8 Ctl_8, Ctl2_8;
3073 int wlhdr_len;
3075 FN_ENTER;
3077 /* fw doesn't tx such packets anyhow */
3078 /* if (unlikely(len < WLAN_HDR_A3_LEN))
3079 goto end;
3081 hostdesc1 = get_txhostdesc(adev, txdesc);
3082 wireless_header = (struct ieee80211_hdr *)hostdesc1->data;
3083 /* modify flag status in separate variable to be able to write it back
3084 * in one big swoop later (also in order to have less device memory
3085 * accesses) */
3086 Ctl_8 = txdesc->Ctl_8;
3087 Ctl2_8 = 0; /* really need to init it to 0, not txdesc->Ctl2_8, it seems */
3089 hostdesc2 = hostdesc1 + 1;
3091 /* DON'T simply set Ctl field to 0 here globally,
3092 * it needs to maintain a consistent flag status (those are state flags!!),
3093 * otherwise it may lead to severe disruption. Only set or reset particular
3094 * flags at the exact moment this is needed... */
3096 /* let chip do RTS/CTS handshaking before sending
3097 * in case packet size exceeds threshold */
3098 if (ieeectl->flags & IEEE80211_TXCTL_USE_RTS_CTS)
3099 SET_BIT(Ctl2_8, DESC_CTL2_RTS);
3100 else
3101 CLEAR_BIT(Ctl2_8, DESC_CTL2_RTS);
3103 rate_cur = ieeectl->tx_rate;
3104 if (unlikely(!rate_cur)) {
3105 printk("acx: driver bug! bad ratemask\n");
3106 goto end;
3109 /* used in tx cleanup routine for auto rate and accounting: */
3110 /* put_txcr(adev, txdesc, clt, rate_cur); deprecated by mac80211 */
3112 txdesc->total_length = cpu_to_le16(len);
3113 wlhdr_len = ieee80211_get_hdrlen(le16_to_cpu(wireless_header->frame_control));
3114 hostdesc2->length = cpu_to_le16(len - wlhdr_len);
3116 if (!ieeectl->do_not_encrypt && ieeectl->key_idx>= 0)
3118 u16 key_idx = (u16)(ieeectl->key_idx);
3119 struct acx_key* key = &(adev->key[key_idx]);
3120 int wlhdr_len;
3121 if (key->enabled)
3123 memcpy(ieeehdr->wep_iv, ((u8*)wireless_header) + wlhdr_len, 4);
3127 if (IS_ACX111(adev)) {
3128 /* note that if !txdesc->do_auto, txrate->cur
3129 ** has only one nonzero bit */
3130 txdesc->u.r2.rate111 = cpu_to_le16(rate_cur
3131 /* WARNING: I was never able to make it work with prism54 AP.
3132 ** It was falling down to 1Mbit where shortpre is not applicable,
3133 ** and not working at all at "5,11 basic rates only" setting.
3134 ** I even didn't see tx packets in radio packet capture.
3135 ** Disabled for now --vda */
3136 /*| ((clt->shortpre && clt->cur!=RATE111_1) ? RATE111_SHORTPRE : 0) */
3138 #ifdef TODO_FIGURE_OUT_WHEN_TO_SET_THIS
3139 /* should add this to rate111 above as necessary */
3140 |(clt->pbcc511 ? RATE111_PBCC511 : 0)
3141 #endif
3142 hostdesc1->length = cpu_to_le16(len);
3143 } else { /* ACX100 */
3144 u8 rate_100 = ieeectl->tx_rate;
3145 txdesc->u.r1.rate = rate_100;
3146 #ifdef TODO_FIGURE_OUT_WHEN_TO_SET_THIS
3147 if (clt->pbcc511) {
3148 if (n == RATE100_5 || n == RATE100_11)
3149 n |= RATE100_PBCC511;
3152 if (clt->shortpre && (clt->cur != RATE111_1))
3153 SET_BIT(Ctl_8, DESC_CTL_SHORT_PREAMBLE); /* set Short Preamble */
3154 #endif
3155 /* set autodma and reclaim and 1st mpdu */
3156 SET_BIT(Ctl_8,
3157 DESC_CTL_AUTODMA | DESC_CTL_RECLAIM |
3158 DESC_CTL_FIRSTFRAG);
3159 #if ACX_FRAGMENTATION
3160 /* SET_BIT(Ctl2_8, DESC_CTL2_MORE_FRAG); cannot set it unconditionally, needs to be set for all non-last fragments */
3161 #endif
3162 hostdesc1->length = cpu_to_le16(wlhdr_len);
3164 /* don't need to clean ack/rts statistics here, already
3165 * done on descr cleanup */
3167 /* clears HOSTOWN and ACXDONE bits, thus telling that the descriptors
3168 * are now owned by the acx100; do this as LAST operation */
3169 CLEAR_BIT(Ctl_8, DESC_CTL_ACXDONE_HOSTOWN);
3170 /* flush writes before we release hostdesc to the adapter here */
3171 wmb();
3172 CLEAR_BIT(hostdesc1->Ctl_16, cpu_to_le16(DESC_CTL_HOSTOWN));
3173 CLEAR_BIT(hostdesc2->Ctl_16, cpu_to_le16(DESC_CTL_HOSTOWN));
3175 /* write back modified flags */
3176 CLEAR_BIT(Ctl2_8, DESC_CTL2_WEP);
3177 txdesc->Ctl2_8 = Ctl2_8;
3178 txdesc->Ctl_8 = Ctl_8;
3179 /* unused: txdesc->tx_time = cpu_to_le32(jiffies); */
3181 /* flush writes before we tell the adapter that it's its turn now */
3182 write_reg16(adev, IO_ACX_INT_TRIG, INT_TRIG_TXPRC);
3183 write_flush(adev);
3184 /* log the packet content AFTER sending it,
3185 * in order to not delay sending any further than absolutely needed
3186 * Do separate logs for acx100/111 to have human-readable rates */
3187 memcpy(&(hostdesc1->txstatus.control),ieeectl,sizeof(struct ieee80211_tx_control));
3188 hostdesc1->skb = skb;
3189 end:
3190 FN_EXIT0;
3194 /***********************************************************************
3195 ** acxpci_l_clean_txdesc
3197 ** This function resets the txdescs' status when the ACX100
3198 ** signals the TX done IRQ (txdescs have been processed), starting with
3199 ** the pool index of the descriptor which we would use next,
3200 ** in order to make sure that we can be as fast as possible
3201 ** in filling new txdescs.
3202 ** Everytime we get called we know where the next packet to be cleaned is.
3205 #if !ACX_DEBUG
3206 static inline void log_txbuffer(const acx_device_t * adev)
3209 #else
3210 static void log_txbuffer(acx_device_t * adev)
3212 txdesc_t *txdesc;
3213 int i;
3215 /* no FN_ENTER here, we don't want that */
3216 /* no locks here, since it's entirely non-critical code */
3217 txdesc = adev->txdesc_start;
3218 if (unlikely(!txdesc))
3219 return;
3220 printk("tx: desc->Ctl8's:");
3221 for (i = 0; i < TX_CNT; i++) {
3222 printk(" %02X", txdesc->Ctl_8);
3223 txdesc = advance_txdesc(adev, txdesc, 1);
3225 printk("\n");
3227 #endif
3230 static void handle_tx_error(acx_device_t * adev, u8 error, unsigned int finger,
3231 struct ieee80211_tx_status *status)
3233 const char *err = "unknown error";
3235 /* hmm, should we handle this as a mask
3236 * of *several* bits?
3237 * For now I think only caring about
3238 * individual bits is ok... */
3239 switch (error) {
3240 case 0x01:
3241 err = "no Tx due to error in other fragment";
3242 /* adev->wstats.discard.fragment++; */
3243 break;
3244 case 0x02:
3245 err = "Tx aborted";
3246 adev->stats.tx_aborted_errors++;
3247 break;
3248 case 0x04:
3249 err = "Tx desc wrong parameters";
3250 /* adev->wstats.discard.misc++; */
3251 break;
3252 case 0x08:
3253 err = "WEP key not found";
3254 /* adev->wstats.discard.misc++; */
3255 break;
3256 case 0x10:
3257 err = "MSDU lifetime timeout? - try changing "
3258 "'iwconfig retry lifetime XXX'";
3259 /* adev->wstats.discard.misc++; */
3260 break;
3261 case 0x20:
3262 err = "excessive Tx retries due to either distance "
3263 "too high or unable to Tx or Tx frame error - "
3264 "try changing 'iwconfig txpower XXX' or "
3265 "'sens'itivity or 'retry'";
3266 /* adev->wstats.discard.retries++; */
3267 /* Tx error 0x20 also seems to occur on
3268 * overheating, so I'm not sure whether we
3269 * actually want to do aggressive radio recalibration,
3270 * since people maybe won't notice then that their hardware
3271 * is slowly getting cooked...
3272 * Or is it still a safe long distance from utter
3273 * radio non-functionality despite many radio recalibs
3274 * to final destructive overheating of the hardware?
3275 * In this case we really should do recalib here...
3276 * I guess the only way to find out is to do a
3277 * potentially fatal self-experiment :-\
3278 * Or maybe only recalib in case we're using Tx
3279 * rate auto (on errors switching to lower speed
3280 * --> less heat?) or 802.11 power save mode?
3282 * ok, just do it. */
3283 if (++adev->retry_errors_msg_ratelimit % 4 == 0) {
3284 if (adev->retry_errors_msg_ratelimit <= 20) {
3285 printk("%s: several excessive Tx "
3286 "retry errors occurred, attempting "
3287 "to recalibrate radio. Radio "
3288 "drift might be caused by increasing "
3289 "card temperature, please check the card "
3290 "before it's too late!\n",
3291 wiphy_name(adev->ieee->wiphy));
3292 if (adev->retry_errors_msg_ratelimit == 20)
3293 printk("disabling above message\n");
3296 acx_schedule_task(adev,
3297 ACX_AFTER_IRQ_CMD_RADIO_RECALIB);
3299 status->excessive_retries++;
3300 break;
3301 case 0x40:
3302 err = "Tx buffer overflow";
3303 adev->stats.tx_fifo_errors++;
3304 break;
3305 case 0x80:
3306 /* possibly ACPI C-state powersaving related!!!
3307 * (DMA timeout due to excessively high wakeup
3308 * latency after C-state activation!?)
3309 * Disable C-State powersaving and try again,
3310 * then PLEASE REPORT, I'm VERY interested in
3311 * whether my theory is correct that this is
3312 * actually the problem here.
3313 * In that case, use new Linux idle wakeup latency
3314 * requirements kernel API to prevent this issue. */
3315 err = "DMA error";
3316 /* adev->wstats.discard.misc++; */
3317 break;
3319 adev->stats.tx_errors++;
3320 if (adev->stats.tx_errors <= 20)
3321 printk("%s: tx error 0x%02X, buf %02u! (%s)\n",
3322 wiphy_name(adev->ieee->wiphy), error, finger, err);
3323 else
3324 printk("%s: tx error 0x%02X, buf %02u!\n",
3325 wiphy_name(adev->ieee->wiphy), error, finger);
3329 unsigned int acxpci_l_clean_txdesc(acx_device_t * adev)
3331 txdesc_t *txdesc;
3332 txhostdesc_t *hostdesc;
3333 unsigned finger;
3334 int num_cleaned;
3335 u16 r111;
3336 u8 error, ack_failures, rts_failures, rts_ok, r100;
3338 FN_ENTER;
3340 if (unlikely(acx_debug & L_DEBUG))
3341 log_txbuffer(adev);
3343 log(L_BUFT, "tx: cleaning up bufs from %u\n", adev->tx_tail);
3345 /* We know first descr which is not free yet. We advance it as far
3346 ** as we see correct bits set in following descs (if next desc
3347 ** is NOT free, we shouldn't advance at all). We know that in
3348 ** front of tx_tail may be "holes" with isolated free descs.
3349 ** We will catch up when all intermediate descs will be freed also */
3351 finger = adev->tx_tail;
3352 num_cleaned = 0;
3353 while (likely(finger != adev->tx_head)) {
3354 txdesc = get_txdesc(adev, finger);
3356 /* If we allocated txdesc on tx path but then decided
3357 ** to NOT use it, then it will be left as a free "bubble"
3358 ** in the "allocated for tx" part of the ring.
3359 ** We may meet it on the next ring pass here. */
3361 /* stop if not marked as "tx finished" and "host owned" */
3362 if ((txdesc->Ctl_8 & DESC_CTL_ACXDONE_HOSTOWN)
3363 != DESC_CTL_ACXDONE_HOSTOWN) {
3364 if (unlikely(!num_cleaned)) { /* maybe remove completely */
3365 log(L_BUFT, "clean_txdesc: tail isn't free. "
3366 "tail:%d head:%d\n",
3367 adev->tx_tail, adev->tx_head);
3369 break;
3372 /* remember desc values... */
3373 error = txdesc->error;
3374 ack_failures = txdesc->ack_failures;
3375 rts_failures = txdesc->rts_failures;
3376 rts_ok = txdesc->rts_ok;
3377 r100 = txdesc->u.r1.rate;
3378 r111 = le16_to_cpu(txdesc->u.r2.rate111);
3380 /* need to check for certain error conditions before we
3381 * clean the descriptor: we still need valid descr data here */
3382 hostdesc = get_txhostdesc(adev, txdesc);
3384 hostdesc->txstatus.flags |= IEEE80211_TX_STATUS_ACK;
3385 if (unlikely(0x30 & error)) {
3386 /* only send IWEVTXDROP in case of retry or lifetime exceeded;
3387 * all other errors mean we screwed up locally */
3388 /* union iwreq_data wrqu;
3389 struct ieee80211_hdr_3addr *hdr;
3390 hdr = (struct ieee80211_hdr_3addr *) hostdesc->data;
3391 MAC_COPY(wrqu.addr.sa_data, hdr->addr1);
3393 hostdesc->txstatus.flags &= ~IEEE80211_TX_STATUS_ACK;
3396 /* ...and free the desc */
3397 txdesc->error = 0;
3398 txdesc->ack_failures = 0;
3399 txdesc->rts_failures = 0;
3400 txdesc->rts_ok = 0;
3401 /* signal host owning it LAST, since ACX already knows that this
3402 ** descriptor is finished since it set Ctl_8 accordingly. */
3403 txdesc->Ctl_8 = DESC_CTL_HOSTOWN;
3405 adev->tx_free++;
3406 num_cleaned++;
3408 if ((adev->tx_free >= TX_START_QUEUE)
3409 /* && (adev->status == ACX_STATUS_4_ASSOCIATED) */
3410 /*&& (acx_queue_stopped(adev->ieee))*/
3412 log(L_BUF, "tx: wake queue (avail. Tx desc %u)\n",
3413 adev->tx_free);
3414 acx_wake_queue(adev->ieee, NULL);
3417 /* do error checking, rate handling and logging
3418 * AFTER having done the work, it's faster */
3420 /* Rate handling is done in mac80211 */
3421 /* if (adev->rate_auto) {
3422 struct client *clt = get_txc(adev, txdesc);
3423 if (clt) {
3424 u16 cur = get_txr(adev, txdesc);
3425 if (clt->rate_cur == cur) {
3426 acx_l_handle_txrate_auto(adev, clt, cur,*/ /* intended rate */
3427 /*r100, r111,*/ /* actually used rate */
3428 /*(error & 0x30),*/ /* was there an error? */
3429 /* TX_CNT +
3430 TX_CLEAN_BACKLOG
3432 adev->tx_free);
3437 if (unlikely(error))
3438 handle_tx_error(adev, error, finger, &hostdesc->txstatus);
3440 if (IS_ACX111(adev))
3441 log(L_BUFT,
3442 "tx: cleaned %u: !ACK=%u !RTS=%u RTS=%u r111=%04X tx_free=%u\n",
3443 finger, ack_failures, rts_failures, rts_ok, r111, adev->tx_free);
3444 else
3445 log(L_BUFT,
3446 "tx: cleaned %u: !ACK=%u !RTS=%u RTS=%u rate=%u\n",
3447 finger, ack_failures, rts_failures, rts_ok, r100);
3449 /* And finally report upstream */
3450 if (hostdesc)
3452 hostdesc->txstatus.excessive_retries = rts_failures ;
3453 hostdesc->txstatus.retry_count = ack_failures;
3454 ieee80211_tx_status(adev->ieee,hostdesc->skb,&hostdesc->txstatus);
3455 memset(&hostdesc->txstatus, 0, sizeof(struct ieee80211_tx_status));
3457 /* update pointer for descr to be cleaned next */
3458 finger = (finger + 1) % TX_CNT;
3460 /* remember last position */
3461 adev->tx_tail = finger;
3462 /* end: */
3463 FN_EXIT1(num_cleaned);
3464 return num_cleaned;
3467 /* clean *all* Tx descriptors, and regardless of their previous state.
3468 * Used for brute-force reset handling. */
3469 void acxpci_l_clean_txdesc_emergency(acx_device_t * adev)
3471 txdesc_t *txdesc;
3472 int i;
3474 FN_ENTER;
3476 for (i = 0; i < TX_CNT; i++) {
3477 txdesc = get_txdesc(adev, i);
3479 /* free it */
3480 txdesc->ack_failures = 0;
3481 txdesc->rts_failures = 0;
3482 txdesc->rts_ok = 0;
3483 txdesc->error = 0;
3484 txdesc->Ctl_8 = DESC_CTL_HOSTOWN;
3487 adev->tx_free = TX_CNT;
3489 FN_EXIT0;
3493 /***********************************************************************
3494 ** acxpci_s_create_tx_host_desc_queue
3497 static void *allocate(acx_device_t * adev, size_t size, dma_addr_t * phy,
3498 const char *msg)
3500 void *ptr;
3502 ptr = dma_alloc_coherent(adev->bus_dev, size, phy, GFP_KERNEL);
3504 if (ptr) {
3505 log(L_DEBUG, "%s sz=%d adr=0x%p phy=0x%08llx\n",
3506 msg, (int)size, ptr, (unsigned long long)*phy);
3507 memset(ptr, 0, size);
3508 return ptr;
3510 printk(KERN_ERR "acx: %s allocation FAILED (%d bytes)\n",
3511 msg, (int)size);
3512 return NULL;
3516 static int acxpci_s_create_tx_host_desc_queue(acx_device_t * adev)
3518 txhostdesc_t *hostdesc;
3519 u8 *txbuf;
3520 dma_addr_t hostdesc_phy;
3521 dma_addr_t txbuf_phy;
3522 int i;
3524 FN_ENTER;
3526 /* allocate TX buffer */
3527 adev->txbuf_area_size = TX_CNT * /*WLAN_A4FR_MAXLEN_WEP_FCS*/ (30 + 2312 + 4);
3528 adev->txbuf_start = allocate(adev, adev->txbuf_area_size,
3529 &adev->txbuf_startphy, "txbuf_start");
3530 if (!adev->txbuf_start)
3531 goto fail;
3533 /* allocate the TX host descriptor queue pool */
3534 adev->txhostdesc_area_size = TX_CNT * 2 * sizeof(*hostdesc);
3535 adev->txhostdesc_start = allocate(adev, adev->txhostdesc_area_size,
3536 &adev->txhostdesc_startphy,
3537 "txhostdesc_start");
3538 if (!adev->txhostdesc_start)
3539 goto fail;
3540 /* check for proper alignment of TX host descriptor pool */
3541 if ((long)adev->txhostdesc_start & 3) {
3542 printk
3543 ("acx: driver bug: dma alloc returns unaligned address\n");
3544 goto fail;
3547 hostdesc = adev->txhostdesc_start;
3548 hostdesc_phy = adev->txhostdesc_startphy;
3549 txbuf = adev->txbuf_start;
3550 txbuf_phy = adev->txbuf_startphy;
3552 #if 0
3553 /* Each tx buffer is accessed by hardware via
3554 ** txdesc -> txhostdesc(s) -> txbuffer(s).
3555 ** We use only one txhostdesc per txdesc, but it looks like
3556 ** acx111 is buggy: it accesses second txhostdesc
3557 ** (via hostdesc.desc_phy_next field) even if
3558 ** txdesc->length == hostdesc->length and thus
3559 ** entire packet was placed into first txhostdesc.
3560 ** Due to this bug acx111 hangs unless second txhostdesc
3561 ** has le16_to_cpu(hostdesc.length) = 3 (or larger)
3562 ** Storing NULL into hostdesc.desc_phy_next
3563 ** doesn't seem to help.
3565 ** Update: although it worked on Xterasys XN-2522g
3566 ** with len=3 trick, WG311v2 is even more bogus, doesn't work.
3567 ** Keeping this code (#ifdef'ed out) for documentational purposes.
3569 for (i = 0; i < TX_CNT * 2; i++) {
3570 hostdesc_phy += sizeof(*hostdesc);
3571 if (!(i & 1)) {
3572 hostdesc->data_phy = cpu2acx(txbuf_phy);
3573 /* hostdesc->data_offset = ... */
3574 /* hostdesc->reserved = ... */
3575 hostdesc->Ctl_16 = cpu_to_le16(DESC_CTL_HOSTOWN);
3576 /* hostdesc->length = ... */
3577 hostdesc->desc_phy_next = cpu2acx(hostdesc_phy);
3578 hostdesc->pNext = ptr2acx(NULL);
3579 /* hostdesc->Status = ... */
3580 /* below: non-hardware fields */
3581 hostdesc->data = txbuf;
3583 txbuf += WLAN_A4FR_MAXLEN_WEP_FCS;
3584 txbuf_phy += WLAN_A4FR_MAXLEN_WEP_FCS;
3585 } else {
3586 /* hostdesc->data_phy = ... */
3587 /* hostdesc->data_offset = ... */
3588 /* hostdesc->reserved = ... */
3589 /* hostdesc->Ctl_16 = ... */
3590 hostdesc->length = cpu_to_le16(3); /* bug workaround */
3591 /* hostdesc->desc_phy_next = ... */
3592 /* hostdesc->pNext = ... */
3593 /* hostdesc->Status = ... */
3594 /* below: non-hardware fields */
3595 /* hostdesc->data = ... */
3597 hostdesc++;
3599 #endif
3600 /* We initialize two hostdescs so that they point to adjacent
3601 ** memory areas. Thus txbuf is really just a contiguous memory area */
3602 for (i = 0; i < TX_CNT * 2; i++) {
3603 hostdesc_phy += sizeof(*hostdesc);
3605 hostdesc->data_phy = cpu2acx(txbuf_phy);
3606 /* done by memset(0): hostdesc->data_offset = 0; */
3607 /* hostdesc->reserved = ... */
3608 hostdesc->Ctl_16 = cpu_to_le16(DESC_CTL_HOSTOWN);
3609 /* hostdesc->length = ... */
3610 hostdesc->desc_phy_next = cpu2acx(hostdesc_phy);
3611 /* done by memset(0): hostdesc->pNext = ptr2acx(NULL); */
3612 /* hostdesc->Status = ... */
3613 /* ->data is a non-hardware field: */
3614 hostdesc->data = txbuf;
3616 if (!(i & 1)) {
3617 txbuf += 24 /*WLAN_HDR_A3_LEN*/;
3618 txbuf_phy += 24 /*WLAN_HDR_A3_LEN*/;
3619 } else {
3620 txbuf += 30 + 2132 + 4 - 24/*WLAN_A4FR_MAXLEN_WEP_FCS - WLAN_HDR_A3_LEN*/;
3621 txbuf_phy += 30 + 2132 +4 - 24/*WLAN_A4FR_MAXLEN_WEP_FCS - WLAN_HDR_A3_LEN*/;
3623 hostdesc++;
3625 hostdesc--;
3626 hostdesc->desc_phy_next = cpu2acx(adev->txhostdesc_startphy);
3628 FN_EXIT1(OK);
3629 return OK;
3630 fail:
3631 printk("acx: create_tx_host_desc_queue FAILED\n");
3632 /* dealloc will be done by free function on error case */
3633 FN_EXIT1(NOT_OK);
3634 return NOT_OK;
3638 /***************************************************************
3639 ** acxpci_s_create_rx_host_desc_queue
3641 /* the whole size of a data buffer (header plus data body)
3642 * plus 32 bytes safety offset at the end */
3643 #define RX_BUFFER_SIZE (sizeof(rxbuffer_t) + 32)
3645 static int acxpci_s_create_rx_host_desc_queue(acx_device_t * adev)
3647 rxhostdesc_t *hostdesc;
3648 rxbuffer_t *rxbuf;
3649 dma_addr_t hostdesc_phy;
3650 dma_addr_t rxbuf_phy;
3651 int i;
3653 FN_ENTER;
3655 /* allocate the RX host descriptor queue pool */
3656 adev->rxhostdesc_area_size = RX_CNT * sizeof(*hostdesc);
3657 adev->rxhostdesc_start = allocate(adev, adev->rxhostdesc_area_size,
3658 &adev->rxhostdesc_startphy,
3659 "rxhostdesc_start");
3660 if (!adev->rxhostdesc_start)
3661 goto fail;
3662 /* check for proper alignment of RX host descriptor pool */
3663 if ((long)adev->rxhostdesc_start & 3) {
3664 printk
3665 ("acx: driver bug: dma alloc returns unaligned address\n");
3666 goto fail;
3669 /* allocate Rx buffer pool which will be used by the acx
3670 * to store the whole content of the received frames in it */
3671 adev->rxbuf_area_size = RX_CNT * RX_BUFFER_SIZE;
3672 adev->rxbuf_start = allocate(adev, adev->rxbuf_area_size,
3673 &adev->rxbuf_startphy, "rxbuf_start");
3674 if (!adev->rxbuf_start)
3675 goto fail;
3677 rxbuf = adev->rxbuf_start;
3678 rxbuf_phy = adev->rxbuf_startphy;
3679 hostdesc = adev->rxhostdesc_start;
3680 hostdesc_phy = adev->rxhostdesc_startphy;
3682 /* don't make any popular C programming pointer arithmetic mistakes
3683 * here, otherwise I'll kill you...
3684 * (and don't dare asking me why I'm warning you about that...) */
3685 for (i = 0; i < RX_CNT; i++) {
3686 hostdesc->data = rxbuf;
3687 hostdesc->data_phy = cpu2acx(rxbuf_phy);
3688 hostdesc->length = cpu_to_le16(RX_BUFFER_SIZE);
3689 CLEAR_BIT(hostdesc->Ctl_16, cpu_to_le16(DESC_CTL_HOSTOWN));
3690 rxbuf++;
3691 rxbuf_phy += sizeof(*rxbuf);
3692 hostdesc_phy += sizeof(*hostdesc);
3693 hostdesc->desc_phy_next = cpu2acx(hostdesc_phy);
3694 hostdesc++;
3696 hostdesc--;
3697 hostdesc->desc_phy_next = cpu2acx(adev->rxhostdesc_startphy);
3698 FN_EXIT1(OK);
3699 return OK;
3700 fail:
3701 printk("acx: create_rx_host_desc_queue FAILED\n");
3702 /* dealloc will be done by free function on error case */
3703 FN_EXIT1(NOT_OK);
3704 return NOT_OK;
3708 /***************************************************************
3709 ** acxpci_s_create_hostdesc_queues
3711 int acxpci_s_create_hostdesc_queues(acx_device_t * adev)
3713 int result;
3714 result = acxpci_s_create_tx_host_desc_queue(adev);
3715 if (OK != result)
3716 return result;
3717 result = acxpci_s_create_rx_host_desc_queue(adev);
3718 return result;
3722 /***************************************************************
3723 ** acxpci_create_tx_desc_queue
3725 static void acxpci_create_tx_desc_queue(acx_device_t * adev, u32 tx_queue_start)
3727 txdesc_t *txdesc;
3728 txhostdesc_t *hostdesc;
3729 dma_addr_t hostmemptr;
3730 u32 mem_offs;
3731 int i;
3733 FN_ENTER;
3735 if (IS_ACX100(adev))
3736 adev->txdesc_size = sizeof(*txdesc);
3737 else
3738 /* the acx111 txdesc is 4 bytes larger */
3739 adev->txdesc_size = sizeof(*txdesc) + 4;
3741 adev->txdesc_start = (txdesc_t *) (adev->iobase2 + tx_queue_start);
3743 log(L_DEBUG, "adev->iobase2=%p\n"
3744 "tx_queue_start=%08X\n"
3745 "adev->txdesc_start=%p\n",
3746 adev->iobase2, tx_queue_start, adev->txdesc_start);
3748 adev->tx_free = TX_CNT;
3749 /* done by memset: adev->tx_head = 0; */
3750 /* done by memset: adev->tx_tail = 0; */
3751 txdesc = adev->txdesc_start;
3752 mem_offs = tx_queue_start;
3753 hostmemptr = adev->txhostdesc_startphy;
3754 hostdesc = adev->txhostdesc_start;
3756 if (IS_ACX111(adev)) {
3757 /* ACX111 has a preinitialized Tx buffer! */
3758 /* loop over whole send pool */
3759 /* FIXME: do we have to do the hostmemptr stuff here?? */
3760 for (i = 0; i < TX_CNT; i++) {
3761 txdesc->HostMemPtr = ptr2acx(hostmemptr);
3762 txdesc->Ctl_8 = DESC_CTL_HOSTOWN;
3763 /* reserve two (hdr desc and payload desc) */
3764 hostdesc += 2;
3765 hostmemptr += 2 * sizeof(*hostdesc);
3766 txdesc = advance_txdesc(adev, txdesc, 1);
3768 } else {
3769 /* ACX100 Tx buffer needs to be initialized by us */
3770 /* clear whole send pool. sizeof is safe here (we are acx100) */
3771 memset(adev->txdesc_start, 0, TX_CNT * sizeof(*txdesc));
3773 /* loop over whole send pool */
3774 for (i = 0; i < TX_CNT; i++) {
3775 log(L_DEBUG, "configure card tx descriptor: 0x%p, "
3776 "size: 0x%X\n", txdesc, adev->txdesc_size);
3778 /* pointer to hostdesc memory */
3779 txdesc->HostMemPtr = ptr2acx(hostmemptr);
3780 /* initialise ctl */
3781 txdesc->Ctl_8 = (DESC_CTL_HOSTOWN | DESC_CTL_RECLAIM
3782 | DESC_CTL_AUTODMA |
3783 DESC_CTL_FIRSTFRAG);
3784 /* done by memset(0): txdesc->Ctl2_8 = 0; */
3785 /* point to next txdesc */
3786 txdesc->pNextDesc =
3787 cpu2acx(mem_offs + adev->txdesc_size);
3788 /* reserve two (hdr desc and payload desc) */
3789 hostdesc += 2;
3790 hostmemptr += 2 * sizeof(*hostdesc);
3791 /* go to the next one */
3792 mem_offs += adev->txdesc_size;
3793 /* ++ is safe here (we are acx100) */
3794 txdesc++;
3796 /* go back to the last one */
3797 txdesc--;
3798 /* and point to the first making it a ring buffer */
3799 txdesc->pNextDesc = cpu2acx(tx_queue_start);
3801 FN_EXIT0;
3805 /***************************************************************
3806 ** acxpci_create_rx_desc_queue
3808 static void acxpci_create_rx_desc_queue(acx_device_t * adev, u32 rx_queue_start)
3810 rxdesc_t *rxdesc;
3811 u32 mem_offs;
3812 int i;
3814 FN_ENTER;
3816 /* done by memset: adev->rx_tail = 0; */
3818 /* ACX111 doesn't need any further config: preconfigures itself.
3819 * Simply print ring buffer for debugging */
3820 if (IS_ACX111(adev)) {
3821 /* rxdesc_start already set here */
3823 adev->rxdesc_start =
3824 (rxdesc_t *) ((u8 *) adev->iobase2 + rx_queue_start);
3826 rxdesc = adev->rxdesc_start;
3827 for (i = 0; i < RX_CNT; i++) {
3828 log(L_DEBUG, "rx descriptor %d @ 0x%p\n", i, rxdesc);
3829 rxdesc = adev->rxdesc_start = (rxdesc_t *)
3830 (adev->iobase2 + acx2cpu(rxdesc->pNextDesc));
3832 } else {
3833 /* we didn't pre-calculate rxdesc_start in case of ACX100 */
3834 /* rxdesc_start should be right AFTER Tx pool */
3835 adev->rxdesc_start = (rxdesc_t *)
3836 ((u8 *) adev->txdesc_start + (TX_CNT * sizeof(txdesc_t)));
3837 /* NB: sizeof(txdesc_t) above is valid because we know
3838 ** we are in if (acx100) block. Beware of cut-n-pasting elsewhere!
3839 ** acx111's txdesc is larger! */
3841 memset(adev->rxdesc_start, 0, RX_CNT * sizeof(*rxdesc));
3843 /* loop over whole receive pool */
3844 rxdesc = adev->rxdesc_start;
3845 mem_offs = rx_queue_start;
3846 for (i = 0; i < RX_CNT; i++) {
3847 log(L_DEBUG, "rx descriptor @ 0x%p\n", rxdesc);
3848 rxdesc->Ctl_8 = DESC_CTL_RECLAIM | DESC_CTL_AUTODMA;
3849 /* point to next rxdesc */
3850 rxdesc->pNextDesc = cpu2acx(mem_offs + sizeof(*rxdesc));
3851 /* go to the next one */
3852 mem_offs += sizeof(*rxdesc);
3853 rxdesc++;
3855 /* go to the last one */
3856 rxdesc--;
3858 /* and point to the first making it a ring buffer */
3859 rxdesc->pNextDesc = cpu2acx(rx_queue_start);
3861 FN_EXIT0;
3865 /***************************************************************
3866 ** acxpci_create_desc_queues
3868 void
3869 acxpci_create_desc_queues(acx_device_t * adev, u32 tx_queue_start,
3870 u32 rx_queue_start)
3872 acxpci_create_tx_desc_queue(adev, tx_queue_start);
3873 acxpci_create_rx_desc_queue(adev, rx_queue_start);
3877 /***************************************************************
3878 ** acxpci_s_proc_diag_output
3880 char *acxpci_s_proc_diag_output(char *p, acx_device_t * adev)
3882 const char *rtl, *thd, *ttl;
3883 rxhostdesc_t *rxhostdesc;
3884 txdesc_t *txdesc;
3885 int i;
3887 FN_ENTER;
3889 p += sprintf(p, "** Rx buf **\n");
3890 rxhostdesc = adev->rxhostdesc_start;
3891 if (rxhostdesc)
3892 for (i = 0; i < RX_CNT; i++) {
3893 rtl = (i == adev->rx_tail) ? " [tail]" : "";
3894 if ((rxhostdesc->Ctl_16 & cpu_to_le16(DESC_CTL_HOSTOWN))
3895 && (rxhostdesc->
3896 Status & cpu_to_le32(DESC_STATUS_FULL)))
3897 p += sprintf(p, "%02u FULL%s\n", i, rtl);
3898 else
3899 p += sprintf(p, "%02u empty%s\n", i, rtl);
3900 rxhostdesc++;
3902 /* p += sprintf(p, "** Tx buf (free %d, Linux netqueue %s) **\n",
3903 adev->tx_free,
3904 acx_queue_stopped(adev->ieee) ? "STOPPED" : "running");*/
3905 txdesc = adev->txdesc_start;
3906 if (txdesc)
3907 for (i = 0; i < TX_CNT; i++) {
3908 thd = (i == adev->tx_head) ? " [head]" : "";
3909 ttl = (i == adev->tx_tail) ? " [tail]" : "";
3910 if (txdesc->Ctl_8 & DESC_CTL_ACXDONE)
3911 p += sprintf(p, "%02u free (%02X)%s%s\n", i,
3912 txdesc->Ctl_8, thd, ttl);
3913 else
3914 p += sprintf(p, "%02u tx (%02X)%s%s\n", i,
3915 txdesc->Ctl_8, thd, ttl);
3916 txdesc = advance_txdesc(adev, txdesc, 1);
3918 p += sprintf(p,
3919 "\n"
3920 "** PCI data **\n"
3921 "txbuf_start %p, txbuf_area_size %u, txbuf_startphy %08llx\n"
3922 "txdesc_size %u, txdesc_start %p\n"
3923 "txhostdesc_start %p, txhostdesc_area_size %u, txhostdesc_startphy %08llx\n"
3924 "rxdesc_start %p\n"
3925 "rxhostdesc_start %p, rxhostdesc_area_size %u, rxhostdesc_startphy %08llx\n"
3926 "rxbuf_start %p, rxbuf_area_size %u, rxbuf_startphy %08llx\n",
3927 adev->txbuf_start, adev->txbuf_area_size,
3928 (unsigned long long)adev->txbuf_startphy,
3929 adev->txdesc_size, adev->txdesc_start,
3930 adev->txhostdesc_start, adev->txhostdesc_area_size,
3931 (unsigned long long)adev->txhostdesc_startphy,
3932 adev->rxdesc_start,
3933 adev->rxhostdesc_start, adev->rxhostdesc_area_size,
3934 (unsigned long long)adev->rxhostdesc_startphy,
3935 adev->rxbuf_start, adev->rxbuf_area_size,
3936 (unsigned long long)adev->rxbuf_startphy);
3938 FN_EXIT0;
3939 return p;
3943 /***********************************************************************
3945 int acxpci_proc_eeprom_output(char *buf, acx_device_t * adev)
3947 char *p = buf;
3948 int i;
3950 FN_ENTER;
3952 for (i = 0; i < 0x400; i++) {
3953 acxpci_read_eeprom_byte(adev, i, p++);
3956 FN_EXIT1(p - buf);
3957 return p - buf;
3961 /***********************************************************************
3962 ** Obvious
3964 void acxpci_set_interrupt_mask(acx_device_t * adev)
3966 if (IS_ACX111(adev)) {
3967 adev->irq_mask = (u16) ~ (0
3968 /* | HOST_INT_RX_DATA */
3969 | HOST_INT_TX_COMPLETE
3970 /* | HOST_INT_TX_XFER */
3971 | HOST_INT_RX_COMPLETE
3972 /* | HOST_INT_DTIM */
3973 /* | HOST_INT_BEACON */
3974 /* | HOST_INT_TIMER */
3975 /* | HOST_INT_KEY_NOT_FOUND */
3976 | HOST_INT_IV_ICV_FAILURE
3977 | HOST_INT_CMD_COMPLETE
3978 | HOST_INT_INFO
3979 /* | HOST_INT_OVERFLOW */
3980 /* | HOST_INT_PROCESS_ERROR */
3981 | HOST_INT_SCAN_COMPLETE
3982 | HOST_INT_FCS_THRESHOLD
3983 /* | HOST_INT_UNKNOWN */
3985 /* Or else acx100 won't signal cmd completion, right? */
3986 adev->irq_mask_off = (u16) ~ (HOST_INT_CMD_COMPLETE); /* 0xfdff */
3987 } else {
3988 adev->irq_mask = (u16) ~ (0
3989 /* | HOST_INT_RX_DATA */
3990 | HOST_INT_TX_COMPLETE
3991 /* | HOST_INT_TX_XFER */
3992 | HOST_INT_RX_COMPLETE
3993 /* | HOST_INT_DTIM */
3994 /* | HOST_INT_BEACON */
3995 /* | HOST_INT_TIMER */
3996 /* | HOST_INT_KEY_NOT_FOUND */
3997 /* | HOST_INT_IV_ICV_FAILURE */
3998 | HOST_INT_CMD_COMPLETE
3999 | HOST_INT_INFO
4000 /* | HOST_INT_OVERFLOW */
4001 /* | HOST_INT_PROCESS_ERROR */
4002 | HOST_INT_SCAN_COMPLETE
4003 /* | HOST_INT_FCS_THRESHOLD */
4004 /* | HOST_INT_UNKNOWN */
4006 adev->irq_mask_off = (u16) ~ (HOST_INT_UNKNOWN); /* 0x7fff */
4011 /***********************************************************************
4013 int acx100pci_s_set_tx_level(acx_device_t * adev, u8 level_dbm)
4015 /* since it can be assumed that at least the Maxim radio has a
4016 * maximum power output of 20dBm and since it also can be
4017 * assumed that these values drive the DAC responsible for
4018 * setting the linear Tx level, I'd guess that these values
4019 * should be the corresponding linear values for a dBm value,
4020 * in other words: calculate the values from that formula:
4021 * Y [dBm] = 10 * log (X [mW])
4022 * then scale the 0..63 value range onto the 1..100mW range (0..20 dBm)
4023 * and you're done...
4024 * Hopefully that's ok, but you never know if we're actually
4025 * right... (especially since Windows XP doesn't seem to show
4026 * actual Tx dBm values :-P) */
4028 /* NOTE: on Maxim, value 30 IS 30mW, and value 10 IS 10mW - so the
4029 * values are EXACTLY mW!!! Not sure about RFMD and others,
4030 * though... */
4031 static const u8 dbm2val_maxim[21] = {
4032 63, 63, 63, 62,
4033 61, 61, 60, 60,
4034 59, 58, 57, 55,
4035 53, 50, 47, 43,
4036 38, 31, 23, 13,
4039 static const u8 dbm2val_rfmd[21] = {
4040 0, 0, 0, 1,
4041 2, 2, 3, 3,
4042 4, 5, 6, 8,
4043 10, 13, 16, 20,
4044 25, 32, 41, 50,
4047 const u8 *table;
4049 switch (adev->radio_type) {
4050 case RADIO_MAXIM_0D:
4051 table = &dbm2val_maxim[0];
4052 break;
4053 case RADIO_RFMD_11:
4054 case RADIO_RALINK_15:
4055 table = &dbm2val_rfmd[0];
4056 break;
4057 default:
4058 printk("%s: unknown/unsupported radio type, "
4059 "cannot modify tx power level yet!\n", wiphy_name(adev->ieee->wiphy));
4060 return NOT_OK;
4062 printk("%s: changing radio power level to %u dBm (%u)\n",
4063 wiphy_name(adev->ieee->wiphy), level_dbm, table[level_dbm]);
4064 acxpci_s_write_phy_reg(adev, 0x11, table[level_dbm]);
4065 return OK;
4068 #ifdef CONFIG_VLYNQ
4069 struct vlynq_reg_config {
4070 u32 offset;
4071 u32 value;
4074 struct vlynq_known {
4075 u32 chip_id;
4076 char name[32];
4077 struct vlynq_mapping rx_mapping[4];
4078 int irq;
4079 int irq_type;
4080 int num_regs;
4081 struct vlynq_reg_config regs[10];
4084 #define CHIP_TNETW1130 0x00000009
4085 #define CHIP_TNETW1350 0x00000029
4087 static struct vlynq_known known_devices[] = {
4089 .chip_id = CHIP_TNETW1130, .name = "TI TNETW1130",
4090 .rx_mapping = {
4091 { .size = 0x22000, .offset = 0xf0000000 },
4092 { .size = 0x40000, .offset = 0xc0000000 },
4093 { .size = 0x0, .offset = 0x0 },
4094 { .size = 0x0, .offset = 0x0 },
4096 .irq = 0,
4097 .irq_type = IRQ_TYPE_EDGE_RISING,
4098 .num_regs = 5,
4099 .regs = {
4101 .offset = 0x790,
4102 .value = (0xd0000000 - PHYS_OFFSET)
4105 .offset = 0x794,
4106 .value = (0xd0000000 - PHYS_OFFSET)
4108 { .offset = 0x740, .value = 0 },
4109 { .offset = 0x744, .value = 0x00010000 },
4110 { .offset = 0x764, .value = 0x00010000 },
4114 .chip_id = CHIP_TNETW1350, .name = "TI TNETW1350",
4115 .rx_mapping = {
4116 { .size = 0x100000, .offset = 0x00300000 },
4117 { .size = 0x80000, .offset = 0x00000000 },
4118 { .size = 0x0, .offset = 0x0 },
4119 { .size = 0x0, .offset = 0x0 },
4121 .irq = 0,
4122 .irq_type = IRQ_TYPE_EDGE_RISING,
4123 .num_regs = 5,
4124 .regs = {
4126 .offset = 0x790,
4127 .value = (0x60000000 - PHYS_OFFSET)
4130 .offset = 0x794,
4131 .value = (0x60000000 - PHYS_OFFSET)
4133 { .offset = 0x740, .value = 0 },
4134 { .offset = 0x744, .value = 0x00010000 },
4135 { .offset = 0x764, .value = 0x00010000 },
4140 static struct vlynq_device_id acx_vlynq_id[] = {
4141 { CHIP_TNETW1130, vlynq_div_auto, 0 },
4142 { CHIP_TNETW1350, vlynq_div_auto, 1 },
4143 { 0, 0, 0 },
4146 static __devinit int vlynq_probe(struct vlynq_device *vdev,
4147 struct vlynq_device_id *id)
4149 int result = -EIO, i;
4150 u32 addr;
4151 struct ieee80211_hw *ieee;
4152 acx_device_t *adev = NULL;
4153 acx111_ie_configoption_t co;
4154 struct vlynq_mapping mapping[4] = { { 0, }, };
4155 struct vlynq_known *match = NULL;
4157 FN_ENTER;
4158 result = vlynq_enable_device(vdev);
4159 if (result)
4160 return result;
4162 match = &known_devices[id->driver_data];
4164 if (!match) {
4165 result = -ENODEV;
4166 goto fail;
4169 mapping[0].offset = ARCH_PFN_OFFSET << PAGE_SHIFT;
4170 mapping[0].size = 0x02000000;
4171 vlynq_set_local_mapping(vdev, vdev->mem_start, mapping);
4172 vlynq_set_remote_mapping(vdev, 0, match->rx_mapping);
4174 set_irq_type(vlynq_virq_to_irq(vdev, match->irq), match->irq_type);
4176 addr = (u32)ioremap(vdev->mem_start, 0x1000);
4177 if (!addr) {
4178 printk(KERN_ERR "%s: failed to remap io memory\n",
4179 vdev->dev.bus_id);
4180 result = -ENXIO;
4181 goto fail;
4184 for (i = 0; i < match->num_regs; i++)
4185 iowrite32(match->regs[i].value,
4186 (u32 *)(addr + match->regs[i].offset));
4188 iounmap((void *)addr);
4190 ieee = ieee80211_alloc_hw(sizeof(struct acx_device), &acxpci_hw_ops);
4191 if (!ieee) {
4192 printk("acx: could not allocate ieee80211 structure %s\n",
4193 vdev->dev.bus_id);
4194 goto fail_alloc_netdev;
4196 ieee->flags &= ~IEEE80211_HW_RX_INCLUDES_FCS;
4197 ieee->queues = 1;
4199 adev = ieee2adev(ieee);
4201 memset(adev, 0, sizeof(*adev));
4202 /** Set up our private interface **/
4203 spin_lock_init(&adev->spinlock); /* initial state: unlocked */
4204 /* We do not start with downed sem: we want PARANOID_LOCKING to work */
4205 mutex_init(&adev->mutex);
4206 /* since nobody can see new netdev yet, we can as well
4207 ** just _presume_ that we're under sem (instead of actually taking it): */
4208 /* acx_sem_lock(adev); */
4209 adev->ieee = ieee;
4210 adev->vdev = vdev;
4211 adev->bus_dev = &vdev->dev;
4212 adev->dev_type = DEVTYPE_PCI;
4214 /** Finished with private interface **/
4216 vlynq_set_drvdata(vdev, ieee);
4217 if (!request_mem_region(vdev->mem_start, vdev->mem_end - vdev->mem_start, "acx")) {
4218 printk("acx: cannot reserve VLYNQ memory region\n");
4219 goto fail_request_mem_region;
4221 adev->iobase = ioremap(vdev->mem_start, vdev->mem_end - vdev->mem_start);
4222 if (!adev->iobase) {
4223 printk("acx: ioremap() FAILED\n");
4224 goto fail_ioremap;
4226 adev->iobase2 = adev->iobase + match->rx_mapping[0].size;
4227 adev->chip_type = CHIPTYPE_ACX111;
4228 adev->chip_name = match->name;
4229 adev->io = IO_ACX111;
4230 adev->irq = vlynq_virq_to_irq(vdev, match->irq);
4232 printk("acx: found %s-based wireless network card at %s, irq:%d, "
4233 "phymem:0x%x, mem:0x%p\n",
4234 match->name, vdev->dev.bus_id, adev->irq,
4235 vdev->mem_start, adev->iobase);
4236 log(L_ANY, "initial debug setting is 0x%04X\n", acx_debug);
4238 if (0 == adev->irq) {
4239 printk("acx: can't use IRQ 0\n");
4240 goto fail_irq;
4242 SET_IEEE80211_DEV(ieee, &vdev->dev);
4245 /* to find crashes due to weird driver access
4246 * to unconfigured interface (ifup) */
4247 adev->mgmt_timer.function = (void (*)(unsigned long))0x0000dead;
4250 /* ok, pci setup is finished, now start initializing the card */
4252 /* NB: read_reg() reads may return bogus data before reset_dev(),
4253 * since the firmware which directly controls large parts of the I/O
4254 * registers isn't initialized yet.
4255 * acx100 seems to be more affected than acx111 */
4256 if (OK != acxpci_s_reset_dev(adev))
4257 goto fail_reset;
4259 if (OK != acx_s_init_mac(adev))
4260 goto fail_init_mac;
4262 acx_s_interrogate(adev, &co, ACX111_IE_CONFIG_OPTIONS);
4263 /* TODO: merge them into one function, they are called just once and are the same for pci & usb */
4264 if (OK != acxpci_read_eeprom_byte(adev, 0x05, &adev->eeprom_version))
4265 goto fail_read_eeprom_version;
4267 acx_s_parse_configoption(adev, &co);
4268 acx_s_set_defaults(adev);
4269 acx_s_get_firmware_version(adev); /* needs to be after acx_s_init_mac() */
4270 acx_display_hardware_details(adev);
4272 /* Register the card, AFTER everything else has been set up,
4273 * since otherwise an ioctl could step on our feet due to
4274 * firmware operations happening in parallel or uninitialized data */
4277 acx_proc_register_entries(ieee);
4279 /* Now we have our device, so make sure the kernel doesn't try
4280 * to send packets even though we're not associated to a network yet */
4282 /* after register_netdev() userspace may start working with dev
4283 * (in particular, on other CPUs), we only need to up the sem */
4284 /* acx_sem_unlock(adev); */
4286 printk("acx " ACX_RELEASE ": net device %s, driver compiled "
4287 "against wireless extensions %d and Linux %s\n",
4288 wiphy_name(adev->ieee->wiphy), WIRELESS_EXT, UTS_RELEASE);
4290 MAC_COPY(adev->ieee->wiphy->perm_addr, adev->dev_addr);
4292 log(L_IRQ | L_INIT, "using IRQ %d\n", adev->irq);
4294 /** done with board specific setup **/
4296 result = acx_setup_modes(adev);
4297 if (result) {
4298 printk("can't register hwmode\n");
4299 goto fail_register_netdev;
4302 acx_init_task_scheduler(adev);
4303 result = ieee80211_register_hw(adev->ieee);
4304 if (OK != result) {
4305 printk("acx: ieee80211_register_hw() FAILED: %d\n", result);
4306 goto fail_register_netdev;
4308 #if CMD_DISCOVERY
4309 great_inquisitor(adev);
4310 #endif
4312 result = OK;
4313 goto done;
4315 /* error paths: undo everything in reverse order... */
4318 acxpci_s_delete_dma_regions(adev);
4320 fail_init_mac:
4321 fail_read_eeprom_version:
4322 fail_reset:
4324 fail_alloc_netdev:
4325 fail_irq:
4327 iounmap(adev->iobase);
4328 fail_ioremap:
4330 release_mem_region(vdev->mem_start, vdev->mem_end - vdev->mem_start);
4331 fail_request_mem_region:
4332 fail_register_netdev:
4333 ieee80211_free_hw(ieee);
4334 fail:
4335 vlynq_disable_device(vdev);
4336 done:
4337 FN_EXIT1(result);
4338 return result;
4341 static void vlynq_remove(struct vlynq_device *vdev)
4343 struct ieee80211_hw *hw = vlynq_get_drvdata(vdev);
4344 acx_device_t *adev = ieee2adev(hw);
4345 unsigned long flags;
4346 FN_ENTER;
4348 if (!hw) {
4349 log(L_DEBUG, "%s: card is unused. Skipping any release code\n",
4350 __func__);
4351 goto end;
4355 acx_lock(adev, flags);
4356 acx_unlock(adev, flags);
4357 adev->initialized = 0;
4359 /* If device wasn't hot unplugged... */
4360 if (adev_present(adev)) {
4362 acx_sem_lock(adev);
4364 /* disable both Tx and Rx to shut radio down properly */
4365 if (adev->initialized) {
4366 acx_s_issue_cmd(adev, ACX1xx_CMD_DISABLE_TX, NULL, 0);
4367 acx_s_issue_cmd(adev, ACX1xx_CMD_DISABLE_RX, NULL, 0);
4369 acx_lock(adev, flags);
4370 /* disable power LED to save power :-) */
4371 log(L_INIT, "switching off power LED to save power\n");
4372 acxpci_l_power_led(adev, 0);
4373 /* stop our eCPU */
4374 acx_unlock(adev, flags);
4376 acx_sem_unlock(adev);
4379 /* unregister the device to not let the kernel
4380 * (e.g. ioctls) access a half-deconfigured device
4381 * NB: this will cause acxpci_e_close() to be called,
4382 * thus we shouldn't call it under sem!
4383 * Well, netdev did, but ieee80211 stack does not, so we
4384 * have to do so manually...
4386 acxpci_e_close(hw);
4387 log(L_INIT, "removing device %s\n", wiphy_name(adev->ieee->wiphy));
4388 ieee80211_unregister_hw(adev->ieee);
4390 /* unregister_netdev ensures that no references to us left.
4391 * For paranoid reasons we continue to follow the rules */
4392 acx_sem_lock(adev);
4394 if (adev->dev_state_mask & ACX_STATE_IFACE_UP) {
4395 acxpci_s_down(hw);
4396 CLEAR_BIT(adev->dev_state_mask, ACX_STATE_IFACE_UP);
4399 acx_proc_unregister_entries(adev->ieee);
4401 /* finally, clean up PCI bus state */
4402 acxpci_s_delete_dma_regions(adev);
4403 if (adev->iobase)
4404 iounmap(adev->iobase);
4405 if (adev->iobase2)
4406 iounmap(adev->iobase2);
4407 release_mem_region(vdev->mem_start, vdev->mem_end - vdev->mem_start);
4409 /* remove dev registration */
4411 acx_sem_unlock(adev);
4412 vlynq_disable_device(vdev);
4414 /* Free netdev (quite late,
4415 * since otherwise we might get caught off-guard
4416 * by a netdev timeout handler execution
4417 * expecting to see a working dev...) */
4418 ieee80211_free_hw(adev->ieee);
4420 end:
4421 FN_EXIT0;
4424 static struct vlynq_driver vlynq_acx = {
4425 .name = "acx_vlynq",
4426 .id_table = acx_vlynq_id,
4427 .probe = vlynq_probe,
4428 .remove = __devexit_p(vlynq_remove),
4430 #endif /* CONFIG_VLYNQ */
4433 /***********************************************************************
4434 ** Data for init_module/cleanup_module
4436 #ifdef CONFIG_PCI
4437 static const struct pci_device_id acxpci_id_tbl[] __devinitdata = {
4439 .vendor = PCI_VENDOR_ID_TI,
4440 .device = PCI_DEVICE_ID_TI_TNETW1100A,
4441 .subvendor = PCI_ANY_ID,
4442 .subdevice = PCI_ANY_ID,
4443 .driver_data = CHIPTYPE_ACX100,
4446 .vendor = PCI_VENDOR_ID_TI,
4447 .device = PCI_DEVICE_ID_TI_TNETW1100B,
4448 .subvendor = PCI_ANY_ID,
4449 .subdevice = PCI_ANY_ID,
4450 .driver_data = CHIPTYPE_ACX100,
4453 .vendor = PCI_VENDOR_ID_TI,
4454 .device = PCI_DEVICE_ID_TI_TNETW1130,
4455 .subvendor = PCI_ANY_ID,
4456 .subdevice = PCI_ANY_ID,
4457 .driver_data = CHIPTYPE_ACX111,
4460 .vendor = 0,
4461 .device = 0,
4462 .subvendor = 0,
4463 .subdevice = 0,
4464 .driver_data = 0,
4468 MODULE_DEVICE_TABLE(pci, acxpci_id_tbl);
4470 static struct pci_driver
4471 acxpci_drv_id = {
4472 .name = "acx_pci",
4473 .id_table = acxpci_id_tbl,
4474 .probe = acxpci_e_probe,
4475 .remove = __devexit_p(acxpci_e_remove),
4476 #ifdef CONFIG_PM
4477 .suspend = acxpci_e_suspend,
4478 .resume = acxpci_e_resume
4479 #endif /* CONFIG_PM */
4481 #endif /* CONFIG_PCI */
4483 /***********************************************************************
4484 ** acxpci_e_init_module
4486 ** Module initialization routine, called once at module load time
4488 int __init acxpci_e_init_module(void)
4490 int res;
4492 FN_ENTER;
4494 #if (ACX_IO_WIDTH==32)
4495 printk("acx: compiled to use 32bit I/O access. "
4496 "I/O timing issues might occur, such as "
4497 "non-working firmware upload. Report them\n");
4498 #else
4499 printk("acx: compiled to use 16bit I/O access only "
4500 "(compatibility mode)\n");
4501 #endif
4503 #ifdef __LITTLE_ENDIAN
4504 #define ENDIANNESS_STRING "running on a little-endian CPU\n"
4505 #else
4506 #define ENDIANNESS_STRING "running on a BIG-ENDIAN CPU\n"
4507 #endif
4508 log(L_INIT,
4509 "acx: " ENDIANNESS_STRING
4510 "acx: PCI/VLYNQ module " ACX_RELEASE " initialized, "
4511 "waiting for cards to probe...\n");
4513 #ifdef CONFIG_PCI
4514 res = pci_register_driver(&acxpci_drv_id);
4515 #elif CONFIG_VLYNQ
4516 res = vlynq_register_driver(&vlynq_acx);
4517 #endif
4518 FN_EXIT1(res);
4519 return res;
4523 /***********************************************************************
4524 ** acxpci_e_cleanup_module
4526 ** Called at module unload time. This is our last chance to
4527 ** clean up after ourselves.
4529 void __exit acxpci_e_cleanup_module(void)
4531 FN_ENTER;
4533 #ifdef CONFIG_PCI
4534 pci_unregister_driver(&acxpci_drv_id);
4535 #elif CONFIG_VLYNQ
4536 vlynq_unregister_driver(&vlynq_acx);
4537 #endif
4538 log(L_INIT,
4539 "acx: PCI module " ACX_RELEASE " unloaded\n");
4540 FN_EXIT0;