[PATCH] orinoco: Remove inneeded system includes.
[linux-2.6/sactl.git] / drivers / net / wireless / spectrum_cs.c
blob61199543aeb71ce1297e8461d88005bb02935818
1 /*
2 * Driver for 802.11b cards using RAM-loadable Symbol firmware, such as
3 * Symbol Wireless Networker LA4100, CompactFlash cards by Socket
4 * Communications and Intel PRO/Wireless 2011B.
6 * The driver implements Symbol firmware download. The rest is handled
7 * in hermes.c and orinoco.c.
9 * Utilities for downloading the Symbol firmware are available at
10 * http://sourceforge.net/projects/orinoco/
12 * Copyright (C) 2002-2005 Pavel Roskin <proski@gnu.org>
13 * Portions based on orinoco_cs.c:
14 * Copyright (C) David Gibson, Linuxcare Australia
15 * Portions based on Spectrum24tDnld.c from original spectrum24 driver:
16 * Copyright (C) Symbol Technologies.
18 * See copyright notice in file orinoco.c.
21 #define DRIVER_NAME "spectrum_cs"
22 #define PFX DRIVER_NAME ": "
24 #include <linux/config.h>
25 #include <linux/module.h>
26 #include <linux/kernel.h>
27 #include <linux/init.h>
28 #include <linux/delay.h>
29 #include <linux/firmware.h>
30 #include <pcmcia/cs_types.h>
31 #include <pcmcia/cs.h>
32 #include <pcmcia/cistpl.h>
33 #include <pcmcia/cisreg.h>
34 #include <pcmcia/ds.h>
36 #include "orinoco.h"
38 static unsigned char *primsym;
39 static unsigned char *secsym;
40 static const char primary_fw_name[] = "symbol_sp24t_prim_fw";
41 static const char secondary_fw_name[] = "symbol_sp24t_sec_fw";
43 /********************************************************************/
44 /* Module stuff */
45 /********************************************************************/
47 MODULE_AUTHOR("Pavel Roskin <proski@gnu.org>");
48 MODULE_DESCRIPTION("Driver for Symbol Spectrum24 Trilogy cards with firmware downloader");
49 MODULE_LICENSE("Dual MPL/GPL");
51 /* Module parameters */
53 /* Some D-Link cards have buggy CIS. They do work at 5v properly, but
54 * don't have any CIS entry for it. This workaround it... */
55 static int ignore_cis_vcc; /* = 0 */
56 module_param(ignore_cis_vcc, int, 0);
57 MODULE_PARM_DESC(ignore_cis_vcc, "Allow voltage mismatch between card and socket");
59 /********************************************************************/
60 /* Magic constants */
61 /********************************************************************/
64 * The dev_info variable is the "key" that is used to match up this
65 * device driver with appropriate cards, through the card
66 * configuration database.
68 static dev_info_t dev_info = DRIVER_NAME;
70 /********************************************************************/
71 /* Data structures */
72 /********************************************************************/
74 /* PCMCIA specific device information (goes in the card field of
75 * struct orinoco_private */
76 struct orinoco_pccard {
77 dev_link_t link;
78 dev_node_t node;
82 * A linked list of "instances" of the device. Each actual PCMCIA
83 * card corresponds to one device instance, and is described by one
84 * dev_link_t structure (defined in ds.h).
86 static dev_link_t *dev_list; /* = NULL */
88 /********************************************************************/
89 /* Function prototypes */
90 /********************************************************************/
92 /* device methods */
93 static int spectrum_cs_hard_reset(struct orinoco_private *priv);
95 /* PCMCIA gumpf */
96 static void spectrum_cs_config(dev_link_t * link);
97 static void spectrum_cs_release(dev_link_t * link);
98 static int spectrum_cs_event(event_t event, int priority,
99 event_callback_args_t * args);
101 static dev_link_t *spectrum_cs_attach(void);
102 static void spectrum_cs_detach(dev_link_t *);
104 /********************************************************************/
105 /* Firmware downloader */
106 /********************************************************************/
108 /* Position of PDA in the adapter memory */
109 #define EEPROM_ADDR 0x3000
110 #define EEPROM_LEN 0x200
111 #define PDA_OFFSET 0x100
113 #define PDA_ADDR (EEPROM_ADDR + PDA_OFFSET)
114 #define PDA_WORDS ((EEPROM_LEN - PDA_OFFSET) / 2)
116 /* Constants for the CISREG_CCSR register */
117 #define HCR_RUN 0x07 /* run firmware after reset */
118 #define HCR_IDLE 0x0E /* don't run firmware after reset */
119 #define HCR_MEM16 0x10 /* memory width bit, should be preserved */
122 * AUX port access. To unlock the AUX port write the access keys to the
123 * PARAM0-2 registers, then write HERMES_AUX_ENABLE to the HERMES_CONTROL
124 * register. Then read it and make sure it's HERMES_AUX_ENABLED.
126 #define HERMES_AUX_ENABLE 0x8000 /* Enable auxiliary port access */
127 #define HERMES_AUX_DISABLE 0x4000 /* Disable to auxiliary port access */
128 #define HERMES_AUX_ENABLED 0xC000 /* Auxiliary port is open */
130 #define HERMES_AUX_PW0 0xFE01
131 #define HERMES_AUX_PW1 0xDC23
132 #define HERMES_AUX_PW2 0xBA45
134 /* End markers */
135 #define PDI_END 0x00000000 /* End of PDA */
136 #define BLOCK_END 0xFFFFFFFF /* Last image block */
137 #define TEXT_END 0x1A /* End of text header */
140 * The following structures have little-endian fields denoted by
141 * the leading underscore. Don't access them directly - use inline
142 * functions defined below.
146 * The binary image to be downloaded consists of series of data blocks.
147 * Each block has the following structure.
149 struct dblock {
150 u32 _addr; /* adapter address where to write the block */
151 u16 _len; /* length of the data only, in bytes */
152 char data[0]; /* data to be written */
153 } __attribute__ ((packed));
156 * Plug Data References are located in in the image after the last data
157 * block. They refer to areas in the adapter memory where the plug data
158 * items with matching ID should be written.
160 struct pdr {
161 u32 _id; /* record ID */
162 u32 _addr; /* adapter address where to write the data */
163 u32 _len; /* expected length of the data, in bytes */
164 char next[0]; /* next PDR starts here */
165 } __attribute__ ((packed));
169 * Plug Data Items are located in the EEPROM read from the adapter by
170 * primary firmware. They refer to the device-specific data that should
171 * be plugged into the secondary firmware.
173 struct pdi {
174 u16 _len; /* length of ID and data, in words */
175 u16 _id; /* record ID */
176 char data[0]; /* plug data */
177 } __attribute__ ((packed));;
180 /* Functions for access to little-endian data */
181 static inline u32
182 dblock_addr(const struct dblock *blk)
184 return le32_to_cpu(blk->_addr);
187 static inline u32
188 dblock_len(const struct dblock *blk)
190 return le16_to_cpu(blk->_len);
193 static inline u32
194 pdr_id(const struct pdr *pdr)
196 return le32_to_cpu(pdr->_id);
199 static inline u32
200 pdr_addr(const struct pdr *pdr)
202 return le32_to_cpu(pdr->_addr);
205 static inline u32
206 pdr_len(const struct pdr *pdr)
208 return le32_to_cpu(pdr->_len);
211 static inline u32
212 pdi_id(const struct pdi *pdi)
214 return le16_to_cpu(pdi->_id);
217 /* Return length of the data only, in bytes */
218 static inline u32
219 pdi_len(const struct pdi *pdi)
221 return 2 * (le16_to_cpu(pdi->_len) - 1);
225 /* Set address of the auxiliary port */
226 static inline void
227 spectrum_aux_setaddr(hermes_t *hw, u32 addr)
229 hermes_write_reg(hw, HERMES_AUXPAGE, (u16) (addr >> 7));
230 hermes_write_reg(hw, HERMES_AUXOFFSET, (u16) (addr & 0x7F));
234 /* Open access to the auxiliary port */
235 static int
236 spectrum_aux_open(hermes_t *hw)
238 int i;
240 /* Already open? */
241 if (hermes_read_reg(hw, HERMES_CONTROL) == HERMES_AUX_ENABLED)
242 return 0;
244 hermes_write_reg(hw, HERMES_PARAM0, HERMES_AUX_PW0);
245 hermes_write_reg(hw, HERMES_PARAM1, HERMES_AUX_PW1);
246 hermes_write_reg(hw, HERMES_PARAM2, HERMES_AUX_PW2);
247 hermes_write_reg(hw, HERMES_CONTROL, HERMES_AUX_ENABLE);
249 for (i = 0; i < 20; i++) {
250 udelay(10);
251 if (hermes_read_reg(hw, HERMES_CONTROL) ==
252 HERMES_AUX_ENABLED)
253 return 0;
256 return -EBUSY;
260 #define CS_CHECK(fn, ret) \
261 do { last_fn = (fn); if ((last_ret = (ret)) != 0) goto cs_failed; } while (0)
264 * Reset the card using configuration registers COR and CCSR.
265 * If IDLE is 1, stop the firmware, so that it can be safely rewritten.
267 static int
268 spectrum_reset(dev_link_t *link, int idle)
270 int last_ret, last_fn;
271 conf_reg_t reg;
272 u_int save_cor;
274 /* Doing it if hardware is gone is guaranteed crash */
275 if (!(link->state & DEV_CONFIG))
276 return -ENODEV;
278 /* Save original COR value */
279 reg.Function = 0;
280 reg.Action = CS_READ;
281 reg.Offset = CISREG_COR;
282 CS_CHECK(AccessConfigurationRegister,
283 pcmcia_access_configuration_register(link->handle, &reg));
284 save_cor = reg.Value;
286 /* Soft-Reset card */
287 reg.Action = CS_WRITE;
288 reg.Offset = CISREG_COR;
289 reg.Value = (save_cor | COR_SOFT_RESET);
290 CS_CHECK(AccessConfigurationRegister,
291 pcmcia_access_configuration_register(link->handle, &reg));
292 udelay(1000);
294 /* Read CCSR */
295 reg.Action = CS_READ;
296 reg.Offset = CISREG_CCSR;
297 CS_CHECK(AccessConfigurationRegister,
298 pcmcia_access_configuration_register(link->handle, &reg));
301 * Start or stop the firmware. Memory width bit should be
302 * preserved from the value we've just read.
304 reg.Action = CS_WRITE;
305 reg.Offset = CISREG_CCSR;
306 reg.Value = (idle ? HCR_IDLE : HCR_RUN) | (reg.Value & HCR_MEM16);
307 CS_CHECK(AccessConfigurationRegister,
308 pcmcia_access_configuration_register(link->handle, &reg));
309 udelay(1000);
311 /* Restore original COR configuration index */
312 reg.Action = CS_WRITE;
313 reg.Offset = CISREG_COR;
314 reg.Value = (save_cor & ~COR_SOFT_RESET);
315 CS_CHECK(AccessConfigurationRegister,
316 pcmcia_access_configuration_register(link->handle, &reg));
317 udelay(1000);
318 return 0;
320 cs_failed:
321 cs_error(link->handle, last_fn, last_ret);
322 return -ENODEV;
327 * Scan PDR for the record with the specified RECORD_ID.
328 * If it's not found, return NULL.
330 static struct pdr *
331 spectrum_find_pdr(struct pdr *first_pdr, u32 record_id)
333 struct pdr *pdr = first_pdr;
335 while (pdr_id(pdr) != PDI_END) {
337 * PDR area is currently not terminated by PDI_END.
338 * It's followed by CRC records, which have the type
339 * field where PDR has length. The type can be 0 or 1.
341 if (pdr_len(pdr) < 2)
342 return NULL;
344 /* If the record ID matches, we are done */
345 if (pdr_id(pdr) == record_id)
346 return pdr;
348 pdr = (struct pdr *) pdr->next;
350 return NULL;
354 /* Process one Plug Data Item - find corresponding PDR and plug it */
355 static int
356 spectrum_plug_pdi(hermes_t *hw, struct pdr *first_pdr, struct pdi *pdi)
358 struct pdr *pdr;
360 /* Find the PDI corresponding to this PDR */
361 pdr = spectrum_find_pdr(first_pdr, pdi_id(pdi));
363 /* No match is found, safe to ignore */
364 if (!pdr)
365 return 0;
367 /* Lengths of the data in PDI and PDR must match */
368 if (pdi_len(pdi) != pdr_len(pdr))
369 return -EINVAL;
371 /* do the actual plugging */
372 spectrum_aux_setaddr(hw, pdr_addr(pdr));
373 hermes_write_words(hw, HERMES_AUXDATA, pdi->data,
374 pdi_len(pdi) / 2);
376 return 0;
380 /* Read PDA from the adapter */
381 static int
382 spectrum_read_pda(hermes_t *hw, u16 *pda, int pda_len)
384 int ret;
385 int pda_size;
387 /* Issue command to read EEPROM */
388 ret = hermes_docmd_wait(hw, HERMES_CMD_READMIF, 0, NULL);
389 if (ret)
390 return ret;
392 /* Open auxiliary port */
393 ret = spectrum_aux_open(hw);
394 if (ret)
395 return ret;
397 /* read PDA from EEPROM */
398 spectrum_aux_setaddr(hw, PDA_ADDR);
399 hermes_read_words(hw, HERMES_AUXDATA, pda, pda_len / 2);
401 /* Check PDA length */
402 pda_size = le16_to_cpu(pda[0]);
403 if (pda_size > pda_len)
404 return -EINVAL;
406 return 0;
410 /* Parse PDA and write the records into the adapter */
411 static int
412 spectrum_apply_pda(hermes_t *hw, const struct dblock *first_block,
413 u16 *pda)
415 int ret;
416 struct pdi *pdi;
417 struct pdr *first_pdr;
418 const struct dblock *blk = first_block;
420 /* Skip all blocks to locate Plug Data References */
421 while (dblock_addr(blk) != BLOCK_END)
422 blk = (struct dblock *) &blk->data[dblock_len(blk)];
424 first_pdr = (struct pdr *) blk;
426 /* Go through every PDI and plug them into the adapter */
427 pdi = (struct pdi *) (pda + 2);
428 while (pdi_id(pdi) != PDI_END) {
429 ret = spectrum_plug_pdi(hw, first_pdr, pdi);
430 if (ret)
431 return ret;
433 /* Increment to the next PDI */
434 pdi = (struct pdi *) &pdi->data[pdi_len(pdi)];
436 return 0;
440 /* Load firmware blocks into the adapter */
441 static int
442 spectrum_load_blocks(hermes_t *hw, const struct dblock *first_block)
444 const struct dblock *blk;
445 u32 blkaddr;
446 u32 blklen;
448 blk = first_block;
449 blkaddr = dblock_addr(blk);
450 blklen = dblock_len(blk);
452 while (dblock_addr(blk) != BLOCK_END) {
453 spectrum_aux_setaddr(hw, blkaddr);
454 hermes_write_words(hw, HERMES_AUXDATA, blk->data,
455 blklen / 2);
457 blk = (struct dblock *) &blk->data[blklen];
458 blkaddr = dblock_addr(blk);
459 blklen = dblock_len(blk);
461 return 0;
466 * Process a firmware image - stop the card, load the firmware, reset
467 * the card and make sure it responds. For the secondary firmware take
468 * care of the PDA - read it and then write it on top of the firmware.
470 static int
471 spectrum_dl_image(hermes_t *hw, dev_link_t *link,
472 const unsigned char *image)
474 int ret;
475 const unsigned char *ptr;
476 const struct dblock *first_block;
478 /* Plug Data Area (PDA) */
479 u16 pda[PDA_WORDS];
481 /* Binary block begins after the 0x1A marker */
482 ptr = image;
483 while (*ptr++ != TEXT_END);
484 first_block = (const struct dblock *) ptr;
486 /* Read the PDA */
487 if (image != primsym) {
488 ret = spectrum_read_pda(hw, pda, sizeof(pda));
489 if (ret)
490 return ret;
493 /* Stop the firmware, so that it can be safely rewritten */
494 ret = spectrum_reset(link, 1);
495 if (ret)
496 return ret;
498 /* Program the adapter with new firmware */
499 ret = spectrum_load_blocks(hw, first_block);
500 if (ret)
501 return ret;
503 /* Write the PDA to the adapter */
504 if (image != primsym) {
505 ret = spectrum_apply_pda(hw, first_block, pda);
506 if (ret)
507 return ret;
510 /* Run the firmware */
511 ret = spectrum_reset(link, 0);
512 if (ret)
513 return ret;
515 /* Reset hermes chip and make sure it responds */
516 ret = hermes_init(hw);
518 /* hermes_reset() should return 0 with the secondary firmware */
519 if (image != primsym && ret != 0)
520 return -ENODEV;
522 /* And this should work with any firmware */
523 if (!hermes_present(hw))
524 return -ENODEV;
526 return 0;
531 * Download the firmware into the card, this also does a PCMCIA soft
532 * reset on the card, to make sure it's in a sane state.
534 static int
535 spectrum_dl_firmware(hermes_t *hw, dev_link_t *link)
537 int ret;
538 client_handle_t handle = link->handle;
539 const struct firmware *fw_entry;
541 if (request_firmware(&fw_entry, primary_fw_name,
542 &handle_to_dev(handle)) == 0) {
543 primsym = fw_entry->data;
544 } else {
545 printk(KERN_ERR PFX "Cannot find firmware: %s\n",
546 primary_fw_name);
547 return -ENOENT;
550 if (request_firmware(&fw_entry, secondary_fw_name,
551 &handle_to_dev(handle)) == 0) {
552 secsym = fw_entry->data;
553 } else {
554 printk(KERN_ERR PFX "Cannot find firmware: %s\n",
555 secondary_fw_name);
556 return -ENOENT;
559 /* Load primary firmware */
560 ret = spectrum_dl_image(hw, link, primsym);
561 if (ret) {
562 printk(KERN_ERR PFX "Primary firmware download failed\n");
563 return ret;
566 /* Load secondary firmware */
567 ret = spectrum_dl_image(hw, link, secsym);
569 if (ret) {
570 printk(KERN_ERR PFX "Secondary firmware download failed\n");
573 return ret;
576 /********************************************************************/
577 /* Device methods */
578 /********************************************************************/
580 static int
581 spectrum_cs_hard_reset(struct orinoco_private *priv)
583 struct orinoco_pccard *card = priv->card;
584 dev_link_t *link = &card->link;
585 int err;
587 if (!hermes_present(&priv->hw)) {
588 /* The firmware needs to be reloaded */
589 if (spectrum_dl_firmware(&priv->hw, &card->link) != 0) {
590 printk(KERN_ERR PFX "Firmware download failed\n");
591 err = -ENODEV;
593 } else {
594 /* Soft reset using COR and HCR */
595 spectrum_reset(link, 0);
598 return 0;
601 /********************************************************************/
602 /* PCMCIA stuff */
603 /********************************************************************/
606 * This creates an "instance" of the driver, allocating local data
607 * structures for one device. The device is registered with Card
608 * Services.
610 * The dev_link structure is initialized, but we don't actually
611 * configure the card at this point -- we wait until we receive a card
612 * insertion event. */
613 static dev_link_t *
614 spectrum_cs_attach(void)
616 struct net_device *dev;
617 struct orinoco_private *priv;
618 struct orinoco_pccard *card;
619 dev_link_t *link;
620 client_reg_t client_reg;
621 int ret;
623 dev = alloc_orinocodev(sizeof(*card), spectrum_cs_hard_reset);
624 if (! dev)
625 return NULL;
626 priv = netdev_priv(dev);
627 card = priv->card;
629 /* Link both structures together */
630 link = &card->link;
631 link->priv = dev;
633 /* Interrupt setup */
634 link->irq.Attributes = IRQ_TYPE_EXCLUSIVE | IRQ_HANDLE_PRESENT;
635 link->irq.IRQInfo1 = IRQ_LEVEL_ID;
636 link->irq.Handler = orinoco_interrupt;
637 link->irq.Instance = dev;
639 /* General socket configuration defaults can go here. In this
640 * client, we assume very little, and rely on the CIS for
641 * almost everything. In most clients, many details (i.e.,
642 * number, sizes, and attributes of IO windows) are fixed by
643 * the nature of the device, and can be hard-wired here. */
644 link->conf.Attributes = 0;
645 link->conf.IntType = INT_MEMORY_AND_IO;
647 /* Register with Card Services */
648 /* FIXME: need a lock? */
649 link->next = dev_list;
650 dev_list = link;
652 client_reg.dev_info = &dev_info;
653 client_reg.Version = 0x0210; /* FIXME: what does this mean? */
654 client_reg.event_callback_args.client_data = link;
656 ret = pcmcia_register_client(&link->handle, &client_reg);
657 if (ret != CS_SUCCESS) {
658 cs_error(link->handle, RegisterClient, ret);
659 spectrum_cs_detach(link);
660 return NULL;
663 return link;
664 } /* spectrum_cs_attach */
667 * This deletes a driver "instance". The device is de-registered with
668 * Card Services. If it has been released, all local data structures
669 * are freed. Otherwise, the structures will be freed when the device
670 * is released.
672 static void spectrum_cs_detach(dev_link_t *link)
674 dev_link_t **linkp;
675 struct net_device *dev = link->priv;
677 /* Locate device structure */
678 for (linkp = &dev_list; *linkp; linkp = &(*linkp)->next)
679 if (*linkp == link)
680 break;
682 BUG_ON(*linkp == NULL);
684 if (link->state & DEV_CONFIG)
685 spectrum_cs_release(link);
687 /* Break the link with Card Services */
688 if (link->handle)
689 pcmcia_deregister_client(link->handle);
691 /* Unlink device structure, and free it */
692 *linkp = link->next;
693 DEBUG(0, PFX "detach: link=%p link->dev=%p\n", link, link->dev);
694 if (link->dev) {
695 DEBUG(0, PFX "About to unregister net device %p\n",
696 dev);
697 unregister_netdev(dev);
699 free_orinocodev(dev);
700 } /* spectrum_cs_detach */
703 * spectrum_cs_config() is scheduled to run after a CARD_INSERTION
704 * event is received, to configure the PCMCIA socket, and to make the
705 * device available to the system.
708 static void
709 spectrum_cs_config(dev_link_t *link)
711 struct net_device *dev = link->priv;
712 client_handle_t handle = link->handle;
713 struct orinoco_private *priv = netdev_priv(dev);
714 struct orinoco_pccard *card = priv->card;
715 hermes_t *hw = &priv->hw;
716 int last_fn, last_ret;
717 u_char buf[64];
718 config_info_t conf;
719 cisinfo_t info;
720 tuple_t tuple;
721 cisparse_t parse;
722 void __iomem *mem;
724 CS_CHECK(ValidateCIS, pcmcia_validate_cis(handle, &info));
727 * This reads the card's CONFIG tuple to find its
728 * configuration registers.
730 tuple.DesiredTuple = CISTPL_CONFIG;
731 tuple.Attributes = 0;
732 tuple.TupleData = buf;
733 tuple.TupleDataMax = sizeof(buf);
734 tuple.TupleOffset = 0;
735 CS_CHECK(GetFirstTuple, pcmcia_get_first_tuple(handle, &tuple));
736 CS_CHECK(GetTupleData, pcmcia_get_tuple_data(handle, &tuple));
737 CS_CHECK(ParseTuple, pcmcia_parse_tuple(handle, &tuple, &parse));
738 link->conf.ConfigBase = parse.config.base;
739 link->conf.Present = parse.config.rmask[0];
741 /* Configure card */
742 link->state |= DEV_CONFIG;
744 /* Look up the current Vcc */
745 CS_CHECK(GetConfigurationInfo,
746 pcmcia_get_configuration_info(handle, &conf));
747 link->conf.Vcc = conf.Vcc;
750 * In this loop, we scan the CIS for configuration table
751 * entries, each of which describes a valid card
752 * configuration, including voltage, IO window, memory window,
753 * and interrupt settings.
755 * We make no assumptions about the card to be configured: we
756 * use just the information available in the CIS. In an ideal
757 * world, this would work for any PCMCIA card, but it requires
758 * a complete and accurate CIS. In practice, a driver usually
759 * "knows" most of these things without consulting the CIS,
760 * and most client drivers will only use the CIS to fill in
761 * implementation-defined details.
763 tuple.DesiredTuple = CISTPL_CFTABLE_ENTRY;
764 CS_CHECK(GetFirstTuple, pcmcia_get_first_tuple(handle, &tuple));
765 while (1) {
766 cistpl_cftable_entry_t *cfg = &(parse.cftable_entry);
767 cistpl_cftable_entry_t dflt = { .index = 0 };
769 if ( (pcmcia_get_tuple_data(handle, &tuple) != 0)
770 || (pcmcia_parse_tuple(handle, &tuple, &parse) != 0))
771 goto next_entry;
773 if (cfg->flags & CISTPL_CFTABLE_DEFAULT)
774 dflt = *cfg;
775 if (cfg->index == 0)
776 goto next_entry;
777 link->conf.ConfigIndex = cfg->index;
779 /* Does this card need audio output? */
780 if (cfg->flags & CISTPL_CFTABLE_AUDIO) {
781 link->conf.Attributes |= CONF_ENABLE_SPKR;
782 link->conf.Status = CCSR_AUDIO_ENA;
785 /* Use power settings for Vcc and Vpp if present */
786 /* Note that the CIS values need to be rescaled */
787 if (cfg->vcc.present & (1 << CISTPL_POWER_VNOM)) {
788 if (conf.Vcc != cfg->vcc.param[CISTPL_POWER_VNOM] / 10000) {
789 DEBUG(2, "spectrum_cs_config: Vcc mismatch (conf.Vcc = %d, CIS = %d)\n", conf.Vcc, cfg->vcc.param[CISTPL_POWER_VNOM] / 10000);
790 if (!ignore_cis_vcc)
791 goto next_entry;
793 } else if (dflt.vcc.present & (1 << CISTPL_POWER_VNOM)) {
794 if (conf.Vcc != dflt.vcc.param[CISTPL_POWER_VNOM] / 10000) {
795 DEBUG(2, "spectrum_cs_config: Vcc mismatch (conf.Vcc = %d, CIS = %d)\n", conf.Vcc, dflt.vcc.param[CISTPL_POWER_VNOM] / 10000);
796 if(!ignore_cis_vcc)
797 goto next_entry;
801 if (cfg->vpp1.present & (1 << CISTPL_POWER_VNOM))
802 link->conf.Vpp1 = link->conf.Vpp2 =
803 cfg->vpp1.param[CISTPL_POWER_VNOM] / 10000;
804 else if (dflt.vpp1.present & (1 << CISTPL_POWER_VNOM))
805 link->conf.Vpp1 = link->conf.Vpp2 =
806 dflt.vpp1.param[CISTPL_POWER_VNOM] / 10000;
808 /* Do we need to allocate an interrupt? */
809 link->conf.Attributes |= CONF_ENABLE_IRQ;
811 /* IO window settings */
812 link->io.NumPorts1 = link->io.NumPorts2 = 0;
813 if ((cfg->io.nwin > 0) || (dflt.io.nwin > 0)) {
814 cistpl_io_t *io =
815 (cfg->io.nwin) ? &cfg->io : &dflt.io;
816 link->io.Attributes1 = IO_DATA_PATH_WIDTH_AUTO;
817 if (!(io->flags & CISTPL_IO_8BIT))
818 link->io.Attributes1 =
819 IO_DATA_PATH_WIDTH_16;
820 if (!(io->flags & CISTPL_IO_16BIT))
821 link->io.Attributes1 =
822 IO_DATA_PATH_WIDTH_8;
823 link->io.IOAddrLines =
824 io->flags & CISTPL_IO_LINES_MASK;
825 link->io.BasePort1 = io->win[0].base;
826 link->io.NumPorts1 = io->win[0].len;
827 if (io->nwin > 1) {
828 link->io.Attributes2 =
829 link->io.Attributes1;
830 link->io.BasePort2 = io->win[1].base;
831 link->io.NumPorts2 = io->win[1].len;
834 /* This reserves IO space but doesn't actually enable it */
835 if (pcmcia_request_io(link->handle, &link->io) != 0)
836 goto next_entry;
840 /* If we got this far, we're cool! */
842 break;
844 next_entry:
845 if (link->io.NumPorts1)
846 pcmcia_release_io(link->handle, &link->io);
847 last_ret = pcmcia_get_next_tuple(handle, &tuple);
848 if (last_ret == CS_NO_MORE_ITEMS) {
849 printk(KERN_ERR PFX "GetNextTuple(): No matching "
850 "CIS configuration. Maybe you need the "
851 "ignore_cis_vcc=1 parameter.\n");
852 goto cs_failed;
857 * Allocate an interrupt line. Note that this does not assign
858 * a handler to the interrupt, unless the 'Handler' member of
859 * the irq structure is initialized.
861 CS_CHECK(RequestIRQ, pcmcia_request_irq(link->handle, &link->irq));
863 /* We initialize the hermes structure before completing PCMCIA
864 * configuration just in case the interrupt handler gets
865 * called. */
866 mem = ioport_map(link->io.BasePort1, link->io.NumPorts1);
867 if (!mem)
868 goto cs_failed;
870 hermes_struct_init(hw, mem, HERMES_16BIT_REGSPACING);
873 * This actually configures the PCMCIA socket -- setting up
874 * the I/O windows and the interrupt mapping, and putting the
875 * card and host interface into "Memory and IO" mode.
877 CS_CHECK(RequestConfiguration,
878 pcmcia_request_configuration(link->handle, &link->conf));
880 /* Ok, we have the configuration, prepare to register the netdev */
881 dev->base_addr = link->io.BasePort1;
882 dev->irq = link->irq.AssignedIRQ;
883 SET_MODULE_OWNER(dev);
884 card->node.major = card->node.minor = 0;
886 /* Reset card and download firmware */
887 if (spectrum_cs_hard_reset(priv) != 0) {
888 goto failed;
891 SET_NETDEV_DEV(dev, &handle_to_dev(handle));
892 /* Tell the stack we exist */
893 if (register_netdev(dev) != 0) {
894 printk(KERN_ERR PFX "register_netdev() failed\n");
895 goto failed;
898 /* At this point, the dev_node_t structure(s) needs to be
899 * initialized and arranged in a linked list at link->dev. */
900 strcpy(card->node.dev_name, dev->name);
901 link->dev = &card->node; /* link->dev being non-NULL is also
902 used to indicate that the
903 net_device has been registered */
904 link->state &= ~DEV_CONFIG_PENDING;
906 /* Finally, report what we've done */
907 printk(KERN_DEBUG "%s: index 0x%02x: Vcc %d.%d",
908 dev->name, link->conf.ConfigIndex,
909 link->conf.Vcc / 10, link->conf.Vcc % 10);
910 if (link->conf.Vpp1)
911 printk(", Vpp %d.%d", link->conf.Vpp1 / 10,
912 link->conf.Vpp1 % 10);
913 printk(", irq %d", link->irq.AssignedIRQ);
914 if (link->io.NumPorts1)
915 printk(", io 0x%04x-0x%04x", link->io.BasePort1,
916 link->io.BasePort1 + link->io.NumPorts1 - 1);
917 if (link->io.NumPorts2)
918 printk(" & 0x%04x-0x%04x", link->io.BasePort2,
919 link->io.BasePort2 + link->io.NumPorts2 - 1);
920 printk("\n");
922 return;
924 cs_failed:
925 cs_error(link->handle, last_fn, last_ret);
927 failed:
928 spectrum_cs_release(link);
929 } /* spectrum_cs_config */
932 * After a card is removed, spectrum_cs_release() will unregister the
933 * device, and release the PCMCIA configuration. If the device is
934 * still open, this will be postponed until it is closed.
936 static void
937 spectrum_cs_release(dev_link_t *link)
939 struct net_device *dev = link->priv;
940 struct orinoco_private *priv = netdev_priv(dev);
941 unsigned long flags;
943 /* We're committed to taking the device away now, so mark the
944 * hardware as unavailable */
945 spin_lock_irqsave(&priv->lock, flags);
946 priv->hw_unavailable++;
947 spin_unlock_irqrestore(&priv->lock, flags);
949 /* Don't bother checking to see if these succeed or not */
950 pcmcia_release_configuration(link->handle);
951 if (link->io.NumPorts1)
952 pcmcia_release_io(link->handle, &link->io);
953 if (link->irq.AssignedIRQ)
954 pcmcia_release_irq(link->handle, &link->irq);
955 link->state &= ~DEV_CONFIG;
956 if (priv->hw.iobase)
957 ioport_unmap(priv->hw.iobase);
958 } /* spectrum_cs_release */
961 * The card status event handler. Mostly, this schedules other stuff
962 * to run after an event is received.
964 static int
965 spectrum_cs_event(event_t event, int priority,
966 event_callback_args_t * args)
968 dev_link_t *link = args->client_data;
969 struct net_device *dev = link->priv;
970 struct orinoco_private *priv = netdev_priv(dev);
971 int err = 0;
972 unsigned long flags;
974 switch (event) {
975 case CS_EVENT_CARD_REMOVAL:
976 link->state &= ~DEV_PRESENT;
977 if (link->state & DEV_CONFIG) {
978 unsigned long flags;
980 spin_lock_irqsave(&priv->lock, flags);
981 netif_device_detach(dev);
982 priv->hw_unavailable++;
983 spin_unlock_irqrestore(&priv->lock, flags);
985 break;
987 case CS_EVENT_CARD_INSERTION:
988 link->state |= DEV_PRESENT | DEV_CONFIG_PENDING;
989 spectrum_cs_config(link);
990 break;
992 case CS_EVENT_PM_SUSPEND:
993 link->state |= DEV_SUSPEND;
994 /* Fall through... */
995 case CS_EVENT_RESET_PHYSICAL:
996 /* Mark the device as stopped, to block IO until later */
997 if (link->state & DEV_CONFIG) {
998 /* This is probably racy, but I can't think of
999 a better way, short of rewriting the PCMCIA
1000 layer to not suck :-( */
1001 spin_lock_irqsave(&priv->lock, flags);
1003 err = __orinoco_down(dev);
1004 if (err)
1005 printk(KERN_WARNING "%s: %s: Error %d downing interface\n",
1006 dev->name,
1007 event == CS_EVENT_PM_SUSPEND ? "SUSPEND" : "RESET_PHYSICAL",
1008 err);
1010 netif_device_detach(dev);
1011 priv->hw_unavailable++;
1013 spin_unlock_irqrestore(&priv->lock, flags);
1015 pcmcia_release_configuration(link->handle);
1017 break;
1019 case CS_EVENT_PM_RESUME:
1020 link->state &= ~DEV_SUSPEND;
1021 /* Fall through... */
1022 case CS_EVENT_CARD_RESET:
1023 if (link->state & DEV_CONFIG) {
1024 /* FIXME: should we double check that this is
1025 * the same card as we had before */
1026 pcmcia_request_configuration(link->handle, &link->conf);
1027 netif_device_attach(dev);
1028 priv->hw_unavailable--;
1029 schedule_work(&priv->reset_work);
1031 break;
1034 return err;
1035 } /* spectrum_cs_event */
1037 /********************************************************************/
1038 /* Module initialization */
1039 /********************************************************************/
1041 /* Can't be declared "const" or the whole __initdata section will
1042 * become const */
1043 static char version[] __initdata = DRIVER_NAME " " DRIVER_VERSION
1044 " (Pavel Roskin <proski@gnu.org>,"
1045 " David Gibson <hermes@gibson.dropbear.id.au>, et al)";
1047 static struct pcmcia_device_id spectrum_cs_ids[] = {
1048 PCMCIA_DEVICE_MANF_CARD(0x026c, 0x0001), /* Symbol Spectrum24 LA4100 */
1049 PCMCIA_DEVICE_MANF_CARD(0x0104, 0x0001), /* Socket Communications CF */
1050 PCMCIA_DEVICE_PROD_ID12("Intel", "PRO/Wireless LAN PC Card", 0x816cc815, 0x6fbf459a), /* 2011B, not 2011 */
1051 PCMCIA_DEVICE_NULL,
1053 MODULE_DEVICE_TABLE(pcmcia, spectrum_cs_ids);
1055 static struct pcmcia_driver orinoco_driver = {
1056 .owner = THIS_MODULE,
1057 .drv = {
1058 .name = DRIVER_NAME,
1060 .attach = spectrum_cs_attach,
1061 .event = spectrum_cs_event,
1062 .detach = spectrum_cs_detach,
1063 .id_table = spectrum_cs_ids,
1066 static int __init
1067 init_spectrum_cs(void)
1069 printk(KERN_DEBUG "%s\n", version);
1071 return pcmcia_register_driver(&orinoco_driver);
1074 static void __exit
1075 exit_spectrum_cs(void)
1077 pcmcia_unregister_driver(&orinoco_driver);
1078 BUG_ON(dev_list != NULL);
1081 module_init(init_spectrum_cs);
1082 module_exit(exit_spectrum_cs);