spi-topcliff-pch: supports a spi mode setup and bit order setup by IO control
[zen-stable.git] / arch / arm / kernel / ecard.c
blob1651d49507444267e1d5bf5783837e0f1d483420
1 /*
2 * linux/arch/arm/kernel/ecard.c
4 * Copyright 1995-2001 Russell King
6 * This program is free software; you can redistribute it and/or modify
7 * it under the terms of the GNU General Public License version 2 as
8 * published by the Free Software Foundation.
10 * Find all installed expansion cards, and handle interrupts from them.
12 * Created from information from Acorns RiscOS3 PRMs
14 * 08-Dec-1996 RMK Added code for the 9'th expansion card - the ether
15 * podule slot.
16 * 06-May-1997 RMK Added blacklist for cards whose loader doesn't work.
17 * 12-Sep-1997 RMK Created new handling of interrupt enables/disables
18 * - cards can now register their own routine to control
19 * interrupts (recommended).
20 * 29-Sep-1997 RMK Expansion card interrupt hardware not being re-enabled
21 * on reset from Linux. (Caused cards not to respond
22 * under RiscOS without hard reset).
23 * 15-Feb-1998 RMK Added DMA support
24 * 12-Sep-1998 RMK Added EASI support
25 * 10-Jan-1999 RMK Run loaders in a simulated RISC OS environment.
26 * 17-Apr-1999 RMK Support for EASI Type C cycles.
28 #define ECARD_C
30 #include <linux/module.h>
31 #include <linux/kernel.h>
32 #include <linux/types.h>
33 #include <linux/sched.h>
34 #include <linux/interrupt.h>
35 #include <linux/completion.h>
36 #include <linux/reboot.h>
37 #include <linux/mm.h>
38 #include <linux/slab.h>
39 #include <linux/proc_fs.h>
40 #include <linux/seq_file.h>
41 #include <linux/device.h>
42 #include <linux/init.h>
43 #include <linux/mutex.h>
44 #include <linux/kthread.h>
45 #include <linux/io.h>
47 #include <asm/dma.h>
48 #include <asm/ecard.h>
49 #include <mach/hardware.h>
50 #include <asm/irq.h>
51 #include <asm/mmu_context.h>
52 #include <asm/mach/irq.h>
53 #include <asm/tlbflush.h>
55 #include "ecard.h"
57 #ifndef CONFIG_ARCH_RPC
58 #define HAVE_EXPMASK
59 #endif
61 struct ecard_request {
62 void (*fn)(struct ecard_request *);
63 ecard_t *ec;
64 unsigned int address;
65 unsigned int length;
66 unsigned int use_loader;
67 void *buffer;
68 struct completion *complete;
71 struct expcard_blacklist {
72 unsigned short manufacturer;
73 unsigned short product;
74 const char *type;
77 static ecard_t *cards;
78 static ecard_t *slot_to_expcard[MAX_ECARDS];
79 static unsigned int ectcr;
80 #ifdef HAS_EXPMASK
81 static unsigned int have_expmask;
82 #endif
84 /* List of descriptions of cards which don't have an extended
85 * identification, or chunk directories containing a description.
87 static struct expcard_blacklist __initdata blacklist[] = {
88 { MANU_ACORN, PROD_ACORN_ETHER1, "Acorn Ether1" }
91 asmlinkage extern int
92 ecard_loader_reset(unsigned long base, loader_t loader);
93 asmlinkage extern int
94 ecard_loader_read(int off, unsigned long base, loader_t loader);
96 static inline unsigned short ecard_getu16(unsigned char *v)
98 return v[0] | v[1] << 8;
101 static inline signed long ecard_gets24(unsigned char *v)
103 return v[0] | v[1] << 8 | v[2] << 16 | ((v[2] & 0x80) ? 0xff000000 : 0);
106 static inline ecard_t *slot_to_ecard(unsigned int slot)
108 return slot < MAX_ECARDS ? slot_to_expcard[slot] : NULL;
111 /* ===================== Expansion card daemon ======================== */
113 * Since the loader programs on the expansion cards need to be run
114 * in a specific environment, create a separate task with this
115 * environment up, and pass requests to this task as and when we
116 * need to.
118 * This should allow 99% of loaders to be called from Linux.
120 * From a security standpoint, we trust the card vendors. This
121 * may be a misplaced trust.
123 static void ecard_task_reset(struct ecard_request *req)
125 struct expansion_card *ec = req->ec;
126 struct resource *res;
128 res = ec->slot_no == 8
129 ? &ec->resource[ECARD_RES_MEMC]
130 : ec->easi
131 ? &ec->resource[ECARD_RES_EASI]
132 : &ec->resource[ECARD_RES_IOCSYNC];
134 ecard_loader_reset(res->start, ec->loader);
137 static void ecard_task_readbytes(struct ecard_request *req)
139 struct expansion_card *ec = req->ec;
140 unsigned char *buf = req->buffer;
141 unsigned int len = req->length;
142 unsigned int off = req->address;
144 if (ec->slot_no == 8) {
145 void __iomem *base = (void __iomem *)
146 ec->resource[ECARD_RES_MEMC].start;
149 * The card maintains an index which increments the address
150 * into a 4096-byte page on each access. We need to keep
151 * track of the counter.
153 static unsigned int index;
154 unsigned int page;
156 page = (off >> 12) * 4;
157 if (page > 256 * 4)
158 return;
160 off &= 4095;
163 * If we are reading offset 0, or our current index is
164 * greater than the offset, reset the hardware index counter.
166 if (off == 0 || index > off) {
167 writeb(0, base);
168 index = 0;
172 * Increment the hardware index counter until we get to the
173 * required offset. The read bytes are discarded.
175 while (index < off) {
176 readb(base + page);
177 index += 1;
180 while (len--) {
181 *buf++ = readb(base + page);
182 index += 1;
184 } else {
185 unsigned long base = (ec->easi
186 ? &ec->resource[ECARD_RES_EASI]
187 : &ec->resource[ECARD_RES_IOCSYNC])->start;
188 void __iomem *pbase = (void __iomem *)base;
190 if (!req->use_loader || !ec->loader) {
191 off *= 4;
192 while (len--) {
193 *buf++ = readb(pbase + off);
194 off += 4;
196 } else {
197 while(len--) {
199 * The following is required by some
200 * expansion card loader programs.
202 *(unsigned long *)0x108 = 0;
203 *buf++ = ecard_loader_read(off++, base,
204 ec->loader);
211 static DECLARE_WAIT_QUEUE_HEAD(ecard_wait);
212 static struct ecard_request *ecard_req;
213 static DEFINE_MUTEX(ecard_mutex);
216 * Set up the expansion card daemon's page tables.
218 static void ecard_init_pgtables(struct mm_struct *mm)
220 struct vm_area_struct vma;
222 /* We want to set up the page tables for the following mapping:
223 * Virtual Physical
224 * 0x03000000 0x03000000
225 * 0x03010000 unmapped
226 * 0x03210000 0x03210000
227 * 0x03400000 unmapped
228 * 0x08000000 0x08000000
229 * 0x10000000 unmapped
231 * FIXME: we don't follow this 100% yet.
233 pgd_t *src_pgd, *dst_pgd;
235 src_pgd = pgd_offset(mm, (unsigned long)IO_BASE);
236 dst_pgd = pgd_offset(mm, IO_START);
238 memcpy(dst_pgd, src_pgd, sizeof(pgd_t) * (IO_SIZE / PGDIR_SIZE));
240 src_pgd = pgd_offset(mm, (unsigned long)EASI_BASE);
241 dst_pgd = pgd_offset(mm, EASI_START);
243 memcpy(dst_pgd, src_pgd, sizeof(pgd_t) * (EASI_SIZE / PGDIR_SIZE));
245 vma.vm_flags = VM_EXEC;
246 vma.vm_mm = mm;
248 flush_tlb_range(&vma, IO_START, IO_START + IO_SIZE);
249 flush_tlb_range(&vma, EASI_START, EASI_START + EASI_SIZE);
252 static int ecard_init_mm(void)
254 struct mm_struct * mm = mm_alloc();
255 struct mm_struct *active_mm = current->active_mm;
257 if (!mm)
258 return -ENOMEM;
260 current->mm = mm;
261 current->active_mm = mm;
262 activate_mm(active_mm, mm);
263 mmdrop(active_mm);
264 ecard_init_pgtables(mm);
265 return 0;
268 static int
269 ecard_task(void * unused)
272 * Allocate a mm. We're not a lazy-TLB kernel task since we need
273 * to set page table entries where the user space would be. Note
274 * that this also creates the page tables. Failure is not an
275 * option here.
277 if (ecard_init_mm())
278 panic("kecardd: unable to alloc mm\n");
280 while (1) {
281 struct ecard_request *req;
283 wait_event_interruptible(ecard_wait, ecard_req != NULL);
285 req = xchg(&ecard_req, NULL);
286 if (req != NULL) {
287 req->fn(req);
288 complete(req->complete);
294 * Wake the expansion card daemon to action our request.
296 * FIXME: The test here is not sufficient to detect if the
297 * kcardd is running.
299 static void ecard_call(struct ecard_request *req)
301 DECLARE_COMPLETION_ONSTACK(completion);
303 req->complete = &completion;
305 mutex_lock(&ecard_mutex);
306 ecard_req = req;
307 wake_up(&ecard_wait);
310 * Now wait for kecardd to run.
312 wait_for_completion(&completion);
313 mutex_unlock(&ecard_mutex);
316 /* ======================= Mid-level card control ===================== */
318 static void
319 ecard_readbytes(void *addr, ecard_t *ec, int off, int len, int useld)
321 struct ecard_request req;
323 req.fn = ecard_task_readbytes;
324 req.ec = ec;
325 req.address = off;
326 req.length = len;
327 req.use_loader = useld;
328 req.buffer = addr;
330 ecard_call(&req);
333 int ecard_readchunk(struct in_chunk_dir *cd, ecard_t *ec, int id, int num)
335 struct ex_chunk_dir excd;
336 int index = 16;
337 int useld = 0;
339 if (!ec->cid.cd)
340 return 0;
342 while(1) {
343 ecard_readbytes(&excd, ec, index, 8, useld);
344 index += 8;
345 if (c_id(&excd) == 0) {
346 if (!useld && ec->loader) {
347 useld = 1;
348 index = 0;
349 continue;
351 return 0;
353 if (c_id(&excd) == 0xf0) { /* link */
354 index = c_start(&excd);
355 continue;
357 if (c_id(&excd) == 0x80) { /* loader */
358 if (!ec->loader) {
359 ec->loader = kmalloc(c_len(&excd),
360 GFP_KERNEL);
361 if (ec->loader)
362 ecard_readbytes(ec->loader, ec,
363 (int)c_start(&excd),
364 c_len(&excd), useld);
365 else
366 return 0;
368 continue;
370 if (c_id(&excd) == id && num-- == 0)
371 break;
374 if (c_id(&excd) & 0x80) {
375 switch (c_id(&excd) & 0x70) {
376 case 0x70:
377 ecard_readbytes((unsigned char *)excd.d.string, ec,
378 (int)c_start(&excd), c_len(&excd),
379 useld);
380 break;
381 case 0x00:
382 break;
385 cd->start_offset = c_start(&excd);
386 memcpy(cd->d.string, excd.d.string, 256);
387 return 1;
390 /* ======================= Interrupt control ============================ */
392 static void ecard_def_irq_enable(ecard_t *ec, int irqnr)
394 #ifdef HAS_EXPMASK
395 if (irqnr < 4 && have_expmask) {
396 have_expmask |= 1 << irqnr;
397 __raw_writeb(have_expmask, EXPMASK_ENABLE);
399 #endif
402 static void ecard_def_irq_disable(ecard_t *ec, int irqnr)
404 #ifdef HAS_EXPMASK
405 if (irqnr < 4 && have_expmask) {
406 have_expmask &= ~(1 << irqnr);
407 __raw_writeb(have_expmask, EXPMASK_ENABLE);
409 #endif
412 static int ecard_def_irq_pending(ecard_t *ec)
414 return !ec->irqmask || readb(ec->irqaddr) & ec->irqmask;
417 static void ecard_def_fiq_enable(ecard_t *ec, int fiqnr)
419 panic("ecard_def_fiq_enable called - impossible");
422 static void ecard_def_fiq_disable(ecard_t *ec, int fiqnr)
424 panic("ecard_def_fiq_disable called - impossible");
427 static int ecard_def_fiq_pending(ecard_t *ec)
429 return !ec->fiqmask || readb(ec->fiqaddr) & ec->fiqmask;
432 static expansioncard_ops_t ecard_default_ops = {
433 ecard_def_irq_enable,
434 ecard_def_irq_disable,
435 ecard_def_irq_pending,
436 ecard_def_fiq_enable,
437 ecard_def_fiq_disable,
438 ecard_def_fiq_pending
442 * Enable and disable interrupts from expansion cards.
443 * (interrupts are disabled for these functions).
445 * They are not meant to be called directly, but via enable/disable_irq.
447 static void ecard_irq_unmask(struct irq_data *d)
449 ecard_t *ec = slot_to_ecard(d->irq - 32);
451 if (ec) {
452 if (!ec->ops)
453 ec->ops = &ecard_default_ops;
455 if (ec->claimed && ec->ops->irqenable)
456 ec->ops->irqenable(ec, d->irq);
457 else
458 printk(KERN_ERR "ecard: rejecting request to "
459 "enable IRQs for %d\n", d->irq);
463 static void ecard_irq_mask(struct irq_data *d)
465 ecard_t *ec = slot_to_ecard(d->irq - 32);
467 if (ec) {
468 if (!ec->ops)
469 ec->ops = &ecard_default_ops;
471 if (ec->ops && ec->ops->irqdisable)
472 ec->ops->irqdisable(ec, d->irq);
476 static struct irq_chip ecard_chip = {
477 .name = "ECARD",
478 .irq_ack = ecard_irq_mask,
479 .irq_mask = ecard_irq_mask,
480 .irq_unmask = ecard_irq_unmask,
483 void ecard_enablefiq(unsigned int fiqnr)
485 ecard_t *ec = slot_to_ecard(fiqnr);
487 if (ec) {
488 if (!ec->ops)
489 ec->ops = &ecard_default_ops;
491 if (ec->claimed && ec->ops->fiqenable)
492 ec->ops->fiqenable(ec, fiqnr);
493 else
494 printk(KERN_ERR "ecard: rejecting request to "
495 "enable FIQs for %d\n", fiqnr);
499 void ecard_disablefiq(unsigned int fiqnr)
501 ecard_t *ec = slot_to_ecard(fiqnr);
503 if (ec) {
504 if (!ec->ops)
505 ec->ops = &ecard_default_ops;
507 if (ec->ops->fiqdisable)
508 ec->ops->fiqdisable(ec, fiqnr);
512 static void ecard_dump_irq_state(void)
514 ecard_t *ec;
516 printk("Expansion card IRQ state:\n");
518 for (ec = cards; ec; ec = ec->next) {
519 if (ec->slot_no == 8)
520 continue;
522 printk(" %d: %sclaimed, ",
523 ec->slot_no, ec->claimed ? "" : "not ");
525 if (ec->ops && ec->ops->irqpending &&
526 ec->ops != &ecard_default_ops)
527 printk("irq %spending\n",
528 ec->ops->irqpending(ec) ? "" : "not ");
529 else
530 printk("irqaddr %p, mask = %02X, status = %02X\n",
531 ec->irqaddr, ec->irqmask, readb(ec->irqaddr));
535 static void ecard_check_lockup(struct irq_desc *desc)
537 static unsigned long last;
538 static int lockup;
541 * If the timer interrupt has not run since the last million
542 * unrecognised expansion card interrupts, then there is
543 * something seriously wrong. Disable the expansion card
544 * interrupts so at least we can continue.
546 * Maybe we ought to start a timer to re-enable them some time
547 * later?
549 if (last == jiffies) {
550 lockup += 1;
551 if (lockup > 1000000) {
552 printk(KERN_ERR "\nInterrupt lockup detected - "
553 "disabling all expansion card interrupts\n");
555 desc->irq_data.chip->irq_mask(&desc->irq_data);
556 ecard_dump_irq_state();
558 } else
559 lockup = 0;
562 * If we did not recognise the source of this interrupt,
563 * warn the user, but don't flood the user with these messages.
565 if (!last || time_after(jiffies, last + 5*HZ)) {
566 last = jiffies;
567 printk(KERN_WARNING "Unrecognised interrupt from backplane\n");
568 ecard_dump_irq_state();
572 static void
573 ecard_irq_handler(unsigned int irq, struct irq_desc *desc)
575 ecard_t *ec;
576 int called = 0;
578 desc->irq_data.chip->irq_mask(&desc->irq_data);
579 for (ec = cards; ec; ec = ec->next) {
580 int pending;
582 if (!ec->claimed || ec->irq == NO_IRQ || ec->slot_no == 8)
583 continue;
585 if (ec->ops && ec->ops->irqpending)
586 pending = ec->ops->irqpending(ec);
587 else
588 pending = ecard_default_ops.irqpending(ec);
590 if (pending) {
591 generic_handle_irq(ec->irq);
592 called ++;
595 desc->irq_data.chip->irq_unmask(&desc->irq_data);
597 if (called == 0)
598 ecard_check_lockup(desc);
601 #ifdef HAS_EXPMASK
602 static unsigned char priority_masks[] =
604 0xf0, 0xf1, 0xf3, 0xf7, 0xff, 0xff, 0xff, 0xff
607 static unsigned char first_set[] =
609 0x00, 0x00, 0x01, 0x00, 0x02, 0x00, 0x01, 0x00,
610 0x03, 0x00, 0x01, 0x00, 0x02, 0x00, 0x01, 0x00
613 static void
614 ecard_irqexp_handler(unsigned int irq, struct irq_desc *desc)
616 const unsigned int statusmask = 15;
617 unsigned int status;
619 status = __raw_readb(EXPMASK_STATUS) & statusmask;
620 if (status) {
621 unsigned int slot = first_set[status];
622 ecard_t *ec = slot_to_ecard(slot);
624 if (ec->claimed) {
626 * this ugly code is so that we can operate a
627 * prioritorising system:
629 * Card 0 highest priority
630 * Card 1
631 * Card 2
632 * Card 3 lowest priority
634 * Serial cards should go in 0/1, ethernet/scsi in 2/3
635 * otherwise you will lose serial data at high speeds!
637 generic_handle_irq(ec->irq);
638 } else {
639 printk(KERN_WARNING "card%d: interrupt from unclaimed "
640 "card???\n", slot);
641 have_expmask &= ~(1 << slot);
642 __raw_writeb(have_expmask, EXPMASK_ENABLE);
644 } else
645 printk(KERN_WARNING "Wild interrupt from backplane (masks)\n");
648 static int __init ecard_probeirqhw(void)
650 ecard_t *ec;
651 int found;
653 __raw_writeb(0x00, EXPMASK_ENABLE);
654 __raw_writeb(0xff, EXPMASK_STATUS);
655 found = (__raw_readb(EXPMASK_STATUS) & 15) == 0;
656 __raw_writeb(0xff, EXPMASK_ENABLE);
658 if (found) {
659 printk(KERN_DEBUG "Expansion card interrupt "
660 "management hardware found\n");
662 /* for each card present, set a bit to '1' */
663 have_expmask = 0x80000000;
665 for (ec = cards; ec; ec = ec->next)
666 have_expmask |= 1 << ec->slot_no;
668 __raw_writeb(have_expmask, EXPMASK_ENABLE);
671 return found;
673 #else
674 #define ecard_irqexp_handler NULL
675 #define ecard_probeirqhw() (0)
676 #endif
678 static void __iomem *__ecard_address(ecard_t *ec, card_type_t type, card_speed_t speed)
680 void __iomem *address = NULL;
681 int slot = ec->slot_no;
683 if (ec->slot_no == 8)
684 return ECARD_MEMC8_BASE;
686 ectcr &= ~(1 << slot);
688 switch (type) {
689 case ECARD_MEMC:
690 if (slot < 4)
691 address = ECARD_MEMC_BASE + (slot << 14);
692 break;
694 case ECARD_IOC:
695 if (slot < 4)
696 address = ECARD_IOC_BASE + (slot << 14);
697 else
698 address = ECARD_IOC4_BASE + ((slot - 4) << 14);
699 if (address)
700 address += speed << 19;
701 break;
703 case ECARD_EASI:
704 address = ECARD_EASI_BASE + (slot << 24);
705 if (speed == ECARD_FAST)
706 ectcr |= 1 << slot;
707 break;
709 default:
710 break;
713 #ifdef IOMD_ECTCR
714 iomd_writeb(ectcr, IOMD_ECTCR);
715 #endif
716 return address;
719 static int ecard_prints(struct seq_file *m, ecard_t *ec)
721 seq_printf(m, " %d: %s ", ec->slot_no, ec->easi ? "EASI" : " ");
723 if (ec->cid.id == 0) {
724 struct in_chunk_dir incd;
726 seq_printf(m, "[%04X:%04X] ",
727 ec->cid.manufacturer, ec->cid.product);
729 if (!ec->card_desc && ec->cid.cd &&
730 ecard_readchunk(&incd, ec, 0xf5, 0)) {
731 ec->card_desc = kmalloc(strlen(incd.d.string)+1, GFP_KERNEL);
733 if (ec->card_desc)
734 strcpy((char *)ec->card_desc, incd.d.string);
737 seq_printf(m, "%s\n", ec->card_desc ? ec->card_desc : "*unknown*");
738 } else
739 seq_printf(m, "Simple card %d\n", ec->cid.id);
741 return 0;
744 static int ecard_devices_proc_show(struct seq_file *m, void *v)
746 ecard_t *ec = cards;
748 while (ec) {
749 ecard_prints(m, ec);
750 ec = ec->next;
752 return 0;
755 static int ecard_devices_proc_open(struct inode *inode, struct file *file)
757 return single_open(file, ecard_devices_proc_show, NULL);
760 static const struct file_operations bus_ecard_proc_fops = {
761 .owner = THIS_MODULE,
762 .open = ecard_devices_proc_open,
763 .read = seq_read,
764 .llseek = seq_lseek,
765 .release = single_release,
768 static struct proc_dir_entry *proc_bus_ecard_dir = NULL;
770 static void ecard_proc_init(void)
772 proc_bus_ecard_dir = proc_mkdir("bus/ecard", NULL);
773 proc_create("devices", 0, proc_bus_ecard_dir, &bus_ecard_proc_fops);
776 #define ec_set_resource(ec,nr,st,sz) \
777 do { \
778 (ec)->resource[nr].name = dev_name(&ec->dev); \
779 (ec)->resource[nr].start = st; \
780 (ec)->resource[nr].end = (st) + (sz) - 1; \
781 (ec)->resource[nr].flags = IORESOURCE_MEM; \
782 } while (0)
784 static void __init ecard_free_card(struct expansion_card *ec)
786 int i;
788 for (i = 0; i < ECARD_NUM_RESOURCES; i++)
789 if (ec->resource[i].flags)
790 release_resource(&ec->resource[i]);
792 kfree(ec);
795 static struct expansion_card *__init ecard_alloc_card(int type, int slot)
797 struct expansion_card *ec;
798 unsigned long base;
799 int i;
801 ec = kzalloc(sizeof(ecard_t), GFP_KERNEL);
802 if (!ec) {
803 ec = ERR_PTR(-ENOMEM);
804 goto nomem;
807 ec->slot_no = slot;
808 ec->easi = type == ECARD_EASI;
809 ec->irq = NO_IRQ;
810 ec->fiq = NO_IRQ;
811 ec->dma = NO_DMA;
812 ec->ops = &ecard_default_ops;
814 dev_set_name(&ec->dev, "ecard%d", slot);
815 ec->dev.parent = NULL;
816 ec->dev.bus = &ecard_bus_type;
817 ec->dev.dma_mask = &ec->dma_mask;
818 ec->dma_mask = (u64)0xffffffff;
819 ec->dev.coherent_dma_mask = ec->dma_mask;
821 if (slot < 4) {
822 ec_set_resource(ec, ECARD_RES_MEMC,
823 PODSLOT_MEMC_BASE + (slot << 14),
824 PODSLOT_MEMC_SIZE);
825 base = PODSLOT_IOC0_BASE + (slot << 14);
826 } else
827 base = PODSLOT_IOC4_BASE + ((slot - 4) << 14);
829 #ifdef CONFIG_ARCH_RPC
830 if (slot < 8) {
831 ec_set_resource(ec, ECARD_RES_EASI,
832 PODSLOT_EASI_BASE + (slot << 24),
833 PODSLOT_EASI_SIZE);
836 if (slot == 8) {
837 ec_set_resource(ec, ECARD_RES_MEMC, NETSLOT_BASE, NETSLOT_SIZE);
838 } else
839 #endif
841 for (i = 0; i <= ECARD_RES_IOCSYNC - ECARD_RES_IOCSLOW; i++)
842 ec_set_resource(ec, i + ECARD_RES_IOCSLOW,
843 base + (i << 19), PODSLOT_IOC_SIZE);
845 for (i = 0; i < ECARD_NUM_RESOURCES; i++) {
846 if (ec->resource[i].flags &&
847 request_resource(&iomem_resource, &ec->resource[i])) {
848 dev_err(&ec->dev, "resource(s) not available\n");
849 ec->resource[i].end -= ec->resource[i].start;
850 ec->resource[i].start = 0;
851 ec->resource[i].flags = 0;
855 nomem:
856 return ec;
859 static ssize_t ecard_show_irq(struct device *dev, struct device_attribute *attr, char *buf)
861 struct expansion_card *ec = ECARD_DEV(dev);
862 return sprintf(buf, "%u\n", ec->irq);
865 static ssize_t ecard_show_dma(struct device *dev, struct device_attribute *attr, char *buf)
867 struct expansion_card *ec = ECARD_DEV(dev);
868 return sprintf(buf, "%u\n", ec->dma);
871 static ssize_t ecard_show_resources(struct device *dev, struct device_attribute *attr, char *buf)
873 struct expansion_card *ec = ECARD_DEV(dev);
874 char *str = buf;
875 int i;
877 for (i = 0; i < ECARD_NUM_RESOURCES; i++)
878 str += sprintf(str, "%08x %08x %08lx\n",
879 ec->resource[i].start,
880 ec->resource[i].end,
881 ec->resource[i].flags);
883 return str - buf;
886 static ssize_t ecard_show_vendor(struct device *dev, struct device_attribute *attr, char *buf)
888 struct expansion_card *ec = ECARD_DEV(dev);
889 return sprintf(buf, "%u\n", ec->cid.manufacturer);
892 static ssize_t ecard_show_device(struct device *dev, struct device_attribute *attr, char *buf)
894 struct expansion_card *ec = ECARD_DEV(dev);
895 return sprintf(buf, "%u\n", ec->cid.product);
898 static ssize_t ecard_show_type(struct device *dev, struct device_attribute *attr, char *buf)
900 struct expansion_card *ec = ECARD_DEV(dev);
901 return sprintf(buf, "%s\n", ec->easi ? "EASI" : "IOC");
904 static struct device_attribute ecard_dev_attrs[] = {
905 __ATTR(device, S_IRUGO, ecard_show_device, NULL),
906 __ATTR(dma, S_IRUGO, ecard_show_dma, NULL),
907 __ATTR(irq, S_IRUGO, ecard_show_irq, NULL),
908 __ATTR(resource, S_IRUGO, ecard_show_resources, NULL),
909 __ATTR(type, S_IRUGO, ecard_show_type, NULL),
910 __ATTR(vendor, S_IRUGO, ecard_show_vendor, NULL),
911 __ATTR_NULL,
915 int ecard_request_resources(struct expansion_card *ec)
917 int i, err = 0;
919 for (i = 0; i < ECARD_NUM_RESOURCES; i++) {
920 if (ecard_resource_end(ec, i) &&
921 !request_mem_region(ecard_resource_start(ec, i),
922 ecard_resource_len(ec, i),
923 ec->dev.driver->name)) {
924 err = -EBUSY;
925 break;
929 if (err) {
930 while (i--)
931 if (ecard_resource_end(ec, i))
932 release_mem_region(ecard_resource_start(ec, i),
933 ecard_resource_len(ec, i));
935 return err;
937 EXPORT_SYMBOL(ecard_request_resources);
939 void ecard_release_resources(struct expansion_card *ec)
941 int i;
943 for (i = 0; i < ECARD_NUM_RESOURCES; i++)
944 if (ecard_resource_end(ec, i))
945 release_mem_region(ecard_resource_start(ec, i),
946 ecard_resource_len(ec, i));
948 EXPORT_SYMBOL(ecard_release_resources);
950 void ecard_setirq(struct expansion_card *ec, const struct expansion_card_ops *ops, void *irq_data)
952 ec->irq_data = irq_data;
953 barrier();
954 ec->ops = ops;
956 EXPORT_SYMBOL(ecard_setirq);
958 void __iomem *ecardm_iomap(struct expansion_card *ec, unsigned int res,
959 unsigned long offset, unsigned long maxsize)
961 unsigned long start = ecard_resource_start(ec, res);
962 unsigned long end = ecard_resource_end(ec, res);
964 if (offset > (end - start))
965 return NULL;
967 start += offset;
968 if (maxsize && end - start > maxsize)
969 end = start + maxsize;
971 return devm_ioremap(&ec->dev, start, end - start);
973 EXPORT_SYMBOL(ecardm_iomap);
976 * Probe for an expansion card.
978 * If bit 1 of the first byte of the card is set, then the
979 * card does not exist.
981 static int __init
982 ecard_probe(int slot, card_type_t type)
984 ecard_t **ecp;
985 ecard_t *ec;
986 struct ex_ecid cid;
987 void __iomem *addr;
988 int i, rc;
990 ec = ecard_alloc_card(type, slot);
991 if (IS_ERR(ec)) {
992 rc = PTR_ERR(ec);
993 goto nomem;
996 rc = -ENODEV;
997 if ((addr = __ecard_address(ec, type, ECARD_SYNC)) == NULL)
998 goto nodev;
1000 cid.r_zero = 1;
1001 ecard_readbytes(&cid, ec, 0, 16, 0);
1002 if (cid.r_zero)
1003 goto nodev;
1005 ec->cid.id = cid.r_id;
1006 ec->cid.cd = cid.r_cd;
1007 ec->cid.is = cid.r_is;
1008 ec->cid.w = cid.r_w;
1009 ec->cid.manufacturer = ecard_getu16(cid.r_manu);
1010 ec->cid.product = ecard_getu16(cid.r_prod);
1011 ec->cid.country = cid.r_country;
1012 ec->cid.irqmask = cid.r_irqmask;
1013 ec->cid.irqoff = ecard_gets24(cid.r_irqoff);
1014 ec->cid.fiqmask = cid.r_fiqmask;
1015 ec->cid.fiqoff = ecard_gets24(cid.r_fiqoff);
1016 ec->fiqaddr =
1017 ec->irqaddr = addr;
1019 if (ec->cid.is) {
1020 ec->irqmask = ec->cid.irqmask;
1021 ec->irqaddr += ec->cid.irqoff;
1022 ec->fiqmask = ec->cid.fiqmask;
1023 ec->fiqaddr += ec->cid.fiqoff;
1024 } else {
1025 ec->irqmask = 1;
1026 ec->fiqmask = 4;
1029 for (i = 0; i < ARRAY_SIZE(blacklist); i++)
1030 if (blacklist[i].manufacturer == ec->cid.manufacturer &&
1031 blacklist[i].product == ec->cid.product) {
1032 ec->card_desc = blacklist[i].type;
1033 break;
1037 * hook the interrupt handlers
1039 if (slot < 8) {
1040 ec->irq = 32 + slot;
1041 irq_set_chip_and_handler(ec->irq, &ecard_chip,
1042 handle_level_irq);
1043 set_irq_flags(ec->irq, IRQF_VALID);
1046 if (slot == 8)
1047 ec->irq = 11;
1048 #ifdef CONFIG_ARCH_RPC
1049 /* On RiscPC, only first two slots have DMA capability */
1050 if (slot < 2)
1051 ec->dma = 2 + slot;
1052 #endif
1054 for (ecp = &cards; *ecp; ecp = &(*ecp)->next);
1056 *ecp = ec;
1057 slot_to_expcard[slot] = ec;
1059 device_register(&ec->dev);
1061 return 0;
1063 nodev:
1064 ecard_free_card(ec);
1065 nomem:
1066 return rc;
1070 * Initialise the expansion card system.
1071 * Locate all hardware - interrupt management and
1072 * actual cards.
1074 static int __init ecard_init(void)
1076 struct task_struct *task;
1077 int slot, irqhw;
1079 task = kthread_run(ecard_task, NULL, "kecardd");
1080 if (IS_ERR(task)) {
1081 printk(KERN_ERR "Ecard: unable to create kernel thread: %ld\n",
1082 PTR_ERR(task));
1083 return PTR_ERR(task);
1086 printk("Probing expansion cards\n");
1088 for (slot = 0; slot < 8; slot ++) {
1089 if (ecard_probe(slot, ECARD_EASI) == -ENODEV)
1090 ecard_probe(slot, ECARD_IOC);
1093 ecard_probe(8, ECARD_IOC);
1095 irqhw = ecard_probeirqhw();
1097 irq_set_chained_handler(IRQ_EXPANSIONCARD,
1098 irqhw ? ecard_irqexp_handler : ecard_irq_handler);
1100 ecard_proc_init();
1102 return 0;
1105 subsys_initcall(ecard_init);
1108 * ECARD "bus"
1110 static const struct ecard_id *
1111 ecard_match_device(const struct ecard_id *ids, struct expansion_card *ec)
1113 int i;
1115 for (i = 0; ids[i].manufacturer != 65535; i++)
1116 if (ec->cid.manufacturer == ids[i].manufacturer &&
1117 ec->cid.product == ids[i].product)
1118 return ids + i;
1120 return NULL;
1123 static int ecard_drv_probe(struct device *dev)
1125 struct expansion_card *ec = ECARD_DEV(dev);
1126 struct ecard_driver *drv = ECARD_DRV(dev->driver);
1127 const struct ecard_id *id;
1128 int ret;
1130 id = ecard_match_device(drv->id_table, ec);
1132 ec->claimed = 1;
1133 ret = drv->probe(ec, id);
1134 if (ret)
1135 ec->claimed = 0;
1136 return ret;
1139 static int ecard_drv_remove(struct device *dev)
1141 struct expansion_card *ec = ECARD_DEV(dev);
1142 struct ecard_driver *drv = ECARD_DRV(dev->driver);
1144 drv->remove(ec);
1145 ec->claimed = 0;
1148 * Restore the default operations. We ensure that the
1149 * ops are set before we change the data.
1151 ec->ops = &ecard_default_ops;
1152 barrier();
1153 ec->irq_data = NULL;
1155 return 0;
1159 * Before rebooting, we must make sure that the expansion card is in a
1160 * sensible state, so it can be re-detected. This means that the first
1161 * page of the ROM must be visible. We call the expansion cards reset
1162 * handler, if any.
1164 static void ecard_drv_shutdown(struct device *dev)
1166 struct expansion_card *ec = ECARD_DEV(dev);
1167 struct ecard_driver *drv = ECARD_DRV(dev->driver);
1168 struct ecard_request req;
1170 if (dev->driver) {
1171 if (drv->shutdown)
1172 drv->shutdown(ec);
1173 ec->claimed = 0;
1177 * If this card has a loader, call the reset handler.
1179 if (ec->loader) {
1180 req.fn = ecard_task_reset;
1181 req.ec = ec;
1182 ecard_call(&req);
1186 int ecard_register_driver(struct ecard_driver *drv)
1188 drv->drv.bus = &ecard_bus_type;
1190 return driver_register(&drv->drv);
1193 void ecard_remove_driver(struct ecard_driver *drv)
1195 driver_unregister(&drv->drv);
1198 static int ecard_match(struct device *_dev, struct device_driver *_drv)
1200 struct expansion_card *ec = ECARD_DEV(_dev);
1201 struct ecard_driver *drv = ECARD_DRV(_drv);
1202 int ret;
1204 if (drv->id_table) {
1205 ret = ecard_match_device(drv->id_table, ec) != NULL;
1206 } else {
1207 ret = ec->cid.id == drv->id;
1210 return ret;
1213 struct bus_type ecard_bus_type = {
1214 .name = "ecard",
1215 .dev_attrs = ecard_dev_attrs,
1216 .match = ecard_match,
1217 .probe = ecard_drv_probe,
1218 .remove = ecard_drv_remove,
1219 .shutdown = ecard_drv_shutdown,
1222 static int ecard_bus_init(void)
1224 return bus_register(&ecard_bus_type);
1227 postcore_initcall(ecard_bus_init);
1229 EXPORT_SYMBOL(ecard_readchunk);
1230 EXPORT_SYMBOL(ecard_register_driver);
1231 EXPORT_SYMBOL(ecard_remove_driver);
1232 EXPORT_SYMBOL(ecard_bus_type);