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path: root/arch/m32r/lib/usercopy.c
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/*
 * User address space access functions.
 * The non inlined parts of asm-m32r/uaccess.h are here.
 *
 * Copyright 1997 Andi Kleen <ak@muc.de>
 * Copyright 1997 Linus Torvalds
 * Copyright 2001, 2002, 2004 Hirokazu Takata
 */
#include <linux/config.h>
#include <linux/prefetch.h>
#include <linux/string.h>
#include <linux/thread_info.h>
#include <asm/uaccess.h>

unsigned long
__generic_copy_to_user(void *to, const void *from, unsigned long n)
{
	prefetch(from);
	if (access_ok(VERIFY_WRITE, to, n))
		__copy_user(to,from,n);
	return n;
}

unsigned long
__generic_copy_from_user(void *to, const void *from, unsigned long n)
{
	prefetchw(to);
	if (access_ok(VERIFY_READ, from, n))
		__copy_user_zeroing(to,from,n);
	else
		memset(to, 0, n);
	return n;
}


/*
 * Copy a null terminated string from userspace.
 */

#ifdef CONFIG_ISA_DUAL_ISSUE

#define __do_strncpy_from_user(dst,src,count,res)			\
do {									\
	int __d0, __d1, __d2;						\
	__asm__ __volatile__(						\
		"	beqz	%1, 2f\n"				\
		"	.fillinsn\n"					\
		"0:	ldb	r14, @%3    ||	addi	%3, #1\n"	\
		"	stb	r14, @%4    ||	addi	%4, #1\n"	\
		"	beqz	r14, 1f\n"				\
		"	addi	%1, #-1\n"				\
		"	bnez	%1, 0b\n"				\
		"	.fillinsn\n"					\
		"1:	sub	%0, %1\n"				\
		"	.fillinsn\n"					\
		"2:\n"							\
		".section .fixup,\"ax\"\n"				\
		"	.balign 4\n"					\
		"3:	seth	r14, #high(2b)\n"			\
		"	or3	r14, r14, #low(2b)\n"			\
		"	jmp	r14	    ||	ldi	%0, #%5\n"	\
		".previous\n"						\
		".section __ex_table,\"a\"\n"				\
		"	.balign 4\n"					\
		"	.long 0b,3b\n"					\
		".previous"						\
		: "=r"(res), "=r"(count), "=&r" (__d0), "=&r" (__d1),	\
		  "=&r" (__d2)						\
		: "i"(-EFAULT), "0"(count), "1"(count), "3"(src), 	\
		  "4"(dst)						\
		: "r14", "cbit", "memory");				\
} while (0)

#else /* not CONFIG_ISA_DUAL_ISSUE */

#define __do_strncpy_from_user(dst,src,count,res)			\
do {									\
	int __d0, __d1, __d2;						\
	__asm__ __volatile__(						\
		"	beqz	%1, 2f\n"				\
		"	.fillinsn\n"					\
		"0:	ldb	r14, @%3\n"				\
		"	stb	r14, @%4\n"				\
		"	addi	%3, #1\n"				\
		"	addi	%4, #1\n"				\
		"	beqz	r14, 1f\n"				\
		"	addi	%1, #-1\n"				\
		"	bnez	%1, 0b\n"				\
		"	.fillinsn\n"					\
		"1:	sub	%0, %1\n"				\
		"	.fillinsn\n"					\
		"2:\n"							\
		".section .fixup,\"ax\"\n"				\
		"	.balign 4\n"					\
		"3:	ldi	%0, #%5\n"				\
		"	seth	r14, #high(2b)\n"			\
		"	or3	r14, r14, #low(2b)\n"			\
		"	jmp	r14\n"					\
		".previous\n"						\
		".section __ex_table,\"a\"\n"				\
		"	.balign 4\n"					\
		"	.long 0b,3b\n"					\
		".previous"						\
		: "=r"(res), "=r"(count), "=&r" (__d0), "=&r" (__d1),	\
		  "=&r" (__d2)						\
		: "i"(-EFAULT), "0"(count), "1"(count), "3"(src),	\
		  "4"(dst)						\
		: "r14", "cbit", "memory");				\
} while (0)

#endif /* CONFIG_ISA_DUAL_ISSUE */

long
__strncpy_from_user(char *dst, const char *src, long count)
{
	long res;
	__do_strncpy_from_user(dst, src, count, res);
	return res;
}

long
strncpy_from_user(char *dst, const char *src, long count)
{
	long res = -EFAULT;
	if (access_ok(VERIFY_READ, src, 1))
		__do_strncpy_from_user(dst, src, count, res);
	return res;
}


/*
 * Zero Userspace
 */

#ifdef CONFIG_ISA_DUAL_ISSUE

#define __do_clear_user(addr,size)					\
do {									\
	int __dst, __c;							\
  	__asm__ __volatile__(						\
		"	beqz	%1, 9f\n"				\
		"	and3	r14, %0, #3\n"				\
		"	bnez	r14, 2f\n"				\
		"	and3	r14, %1, #3\n"				\
		"	bnez	r14, 2f\n"				\
		"	and3	%1, %1, #3\n"				\
		"	beqz	%2, 2f\n"				\
		"	addi	%0, #-4\n"				\
		"	.fillinsn\n"					\
		"0:	; word clear \n"				\
		"	st	%6, @+%0    ||	addi	%2, #-1\n"	\
		"	bnez	%2, 0b\n"				\
		"	beqz	%1, 9f\n"				\
		"	.fillinsn\n"					\
		"2:	; byte clear \n"				\
		"	stb	%6, @%0	    ||	addi	%1, #-1\n"	\
		"	addi	%0, #1\n"				\
		"	bnez	%1, 2b\n"				\
		"	.fillinsn\n"					\
		"9:\n"							\
		".section .fixup,\"ax\"\n"				\
		"	.balign 4\n"					\
		"4:	slli	%2, #2\n"				\
		"	seth	r14, #high(9b)\n"			\
		"	or3	r14, r14, #low(9b)\n"			\
		"	jmp	r14	    ||	add	%1, %2\n"	\
		".previous\n"						\
		".section __ex_table,\"a\"\n"				\
		"	.balign 4\n"					\
		"	.long 0b,4b\n"					\
		"	.long 2b,9b\n"					\
		".previous\n"						\
		: "=&r"(__dst), "=&r"(size), "=&r"(__c)			\
		: "0"(addr), "1"(size), "2"(size / 4), "r"(0)		\
		: "r14", "cbit", "memory");				\
} while (0)

#else /* not CONFIG_ISA_DUAL_ISSUE */

#define __do_clear_user(addr,size)					\
do {									\
	int __dst, __c;							\
  	__asm__ __volatile__(						\
		"	beqz	%1, 9f\n"				\
		"	and3	r14, %0, #3\n"				\
		"	bnez	r14, 2f\n"				\
		"	and3	r14, %1, #3\n"				\
		"	bnez	r14, 2f\n"				\
		"	and3	%1, %1, #3\n"				\
		"	beqz	%2, 2f\n"				\
		"	addi	%0, #-4\n"				\
		"	.fillinsn\n"					\
		"0:	st	%6, @+%0	; word clear \n"	\
		"	addi	%2, #-1\n"				\
		"	bnez	%2, 0b\n"				\
		"	beqz	%1, 9f\n"				\
		"	.fillinsn\n"					\
		"2:	stb	%6, @%0		; byte clear \n"	\
		"	addi	%1, #-1\n"				\
		"	addi	%0, #1\n"				\
		"	bnez	%1, 2b\n"				\
		"	.fillinsn\n"					\
		"9:\n"							\
		".section .fixup,\"ax\"\n"				\
		"	.balign 4\n"					\
		"4:	slli	%2, #2\n"				\
		"	add	%1, %2\n"				\
		"	seth	r14, #high(9b)\n"			\
		"	or3	r14, r14, #low(9b)\n"			\
		"	jmp	r14\n"					\
		".previous\n"						\
		".section __ex_table,\"a\"\n"				\
		"	.balign 4\n"					\
		"	.long 0b,4b\n"					\
		"	.long 2b,9b\n"					\
		".previous\n"						\
		: "=&r"(__dst), "=&r"(size), "=&r"(__c)			\
		: "0"(addr), "1"(size), "2"(size / 4), "r"(0)		\
		: "r14", "cbit", "memory");				\
} while (0)

#endif /* not CONFIG_ISA_DUAL_ISSUE */

unsigned long
clear_user(void *to, unsigned long n)
{
	if (access_ok(VERIFY_WRITE, to, n))
		__do_clear_user(to, n);
	return n;
}

unsigned long
__clear_user(void *to, unsigned long n)
{
	__do_clear_user(to, n);
	return n;
}

/*
 * Return the size of a string (including the ending 0)
 *
 * Return 0 on exception, a value greater than N if too long
 */

#ifdef CONFIG_ISA_DUAL_ISSUE

long strnlen_user(const char *s, long n)
{
	unsigned long mask = -__addr_ok(s);
	unsigned long res;

	__asm__ __volatile__(
		"	and	%0, %5	    ||	mv	r1, %1\n"
		"	beqz	%0, strnlen_exit\n"
		"	and3	r0, %1, #3\n"
		"	bnez	r0, strnlen_byte_loop\n"
		"	cmpui	%0, #4\n"
		"	bc	strnlen_byte_loop\n"
		"strnlen_word_loop:\n"
		"0:	ld	r0, @%1+\n"
		"	pcmpbz	r0\n"
		"	bc	strnlen_last_bytes_fixup\n"
		"	addi	%0, #-4\n"
		"	beqz	%0, strnlen_exit\n"
		"	bgtz	%0, strnlen_word_loop\n"
		"strnlen_last_bytes:\n"
		"	mv	%0, %4\n"
		"strnlen_last_bytes_fixup:\n"
		"	addi	%1, #-4\n"
		"strnlen_byte_loop:\n"
		"1:	ldb	r0, @%1	    ||	addi	%0, #-1\n"
		"	beqz	r0, strnlen_exit\n"
		"	addi	%1, #1\n"
		"	bnez	%0, strnlen_byte_loop\n"
		"strnlen_exit:\n"
		"	sub	%1, r1\n"
		"	add3	%0, %1, #1\n"
		"	.fillinsn\n"
		"9:\n"
		".section .fixup,\"ax\"\n"
		"	.balign 4\n"
		"4:	addi	%1, #-4\n"
		"	.fillinsn\n"
		"5:	seth	r1, #high(9b)\n"
		"	or3	r1, r1, #low(9b)\n"
		"	jmp	r1	    ||	ldi	%0, #0\n"
		".previous\n"
		".section __ex_table,\"a\"\n"
		"	.balign 4\n"
		"	.long 0b,4b\n"
		"	.long 1b,5b\n"
		".previous"
		: "=&r" (res), "=r" (s)
		: "0" (n), "1" (s), "r" (n & 3), "r" (mask), "r"(0x01010101)
		: "r0", "r1", "cbit");

	/* NOTE: strnlen_user() algorism:
	 * {
	 *   char *p;
	 *   for (p = s; n-- && *p != '\0'; ++p)
	 *     ;
	 *   return p - s + 1;
	 * }
	 */

	/* NOTE: If a null char. exists, return 0.
	 * if ((x - 0x01010101) & ~x & 0x80808080)\n"
	 *   return 0;\n"
	 */

	return res & mask;
}

#else /* not CONFIG_ISA_DUAL_ISSUE */

long strnlen_user(const char *s, long n)
{
	unsigned long mask = -__addr_ok(s);
	unsigned long res;

	__asm__ __volatile__(
		"	and	%0, %5\n"
		"	mv	r1, %1\n"
		"	beqz	%0, strnlen_exit\n"
		"	and3	r0, %1, #3\n"
		"	bnez	r0, strnlen_byte_loop\n"
		"	cmpui	%0, #4\n"
		"	bc	strnlen_byte_loop\n"
		"	sll3	r3, %6, #7\n"
		"strnlen_word_loop:\n"
		"0:	ld	r0, @%1+\n"
		"	not	r2, r0\n"
		"	sub	r0, %6\n"
		"	and	r2, r3\n"
		"	and	r2, r0\n"
		"	bnez	r2, strnlen_last_bytes_fixup\n"
		"	addi	%0, #-4\n"
		"	beqz	%0, strnlen_exit\n"
		"	bgtz	%0, strnlen_word_loop\n"
		"strnlen_last_bytes:\n"
		"	mv	%0, %4\n"
		"strnlen_last_bytes_fixup:\n"
		"	addi	%1, #-4\n"
		"strnlen_byte_loop:\n"
		"1:	ldb	r0, @%1\n"
		"	addi	%0, #-1\n"
		"	beqz	r0, strnlen_exit\n"
		"	addi	%1, #1\n"
		"	bnez	%0, strnlen_byte_loop\n"
		"strnlen_exit:\n"
		"	sub	%1, r1\n"
		"	add3	%0, %1, #1\n"
		"	.fillinsn\n"
		"9:\n"
		".section .fixup,\"ax\"\n"
		"	.balign 4\n"
		"4:	addi	%1, #-4\n"
		"	.fillinsn\n"
		"5:	ldi	%0, #0\n"
		"	seth	r1, #high(9b)\n"
		"	or3	r1, r1, #low(9b)\n"
		"	jmp	r1\n"
		".previous\n"
		".section __ex_table,\"a\"\n"
		"	.balign 4\n"
		"	.long 0b,4b\n"
		"	.long 1b,5b\n"
		".previous"
		: "=&r" (res), "=r" (s)
		: "0" (n), "1" (s), "r" (n & 3), "r" (mask), "r"(0x01010101)
		: "r0", "r1", "r2", "r3", "cbit");

	/* NOTE: strnlen_user() algorism:
	 * {
	 *   char *p;
	 *   for (p = s; n-- && *p != '\0'; ++p)
	 *     ;
	 *   return p - s + 1;
	 * }
	 */

	/* NOTE: If a null char. exists, return 0.
	 * if ((x - 0x01010101) & ~x & 0x80808080)\n"
	 *   return 0;\n"
	 */

	return res & mask;
}

#endif /* CONFIG_ISA_DUAL_ISSUE */

">, err, nr_bytes); if (rc) return true; fs->cur_req = NULL; return false; } static void swim3_select(struct floppy_state *fs, int sel) { struct swim3 __iomem *sw = fs->swim3; out_8(&sw->select, RELAX); if (sel & 8) out_8(&sw->control_bis, SELECT); else out_8(&sw->control_bic, SELECT); out_8(&sw->select, sel & CA_MASK); } static void swim3_action(struct floppy_state *fs, int action) { struct swim3 __iomem *sw = fs->swim3; swim3_select(fs, action); udelay(1); out_8(&sw->select, sw->select | LSTRB); udelay(2); out_8(&sw->select, sw->select & ~LSTRB); udelay(1); } static int swim3_readbit(struct floppy_state *fs, int bit) { struct swim3 __iomem *sw = fs->swim3; int stat; swim3_select(fs, bit); udelay(1); stat = in_8(&sw->status); return (stat & DATA) == 0; } static void start_request(struct floppy_state *fs) { struct request *req; unsigned long x; swim3_dbg("start request, initial state=%d\n", fs->state); if (fs->state == idle && fs->wanted) { fs->state = available; wake_up(&fs->wait); return; } while (fs->state == idle) { swim3_dbg("start request, idle loop, cur_req=%p\n", fs->cur_req); if (!fs->cur_req) { fs->cur_req = blk_fetch_request(disks[fs->index]->queue); swim3_dbg(" fetched request %p\n", fs->cur_req); if (!fs->cur_req) break; } req = fs->cur_req; if (fs->mdev->media_bay && check_media_bay(fs->mdev->media_bay) != MB_FD) { swim3_dbg("%s", " media bay absent, dropping req\n"); swim3_end_request(fs, -ENODEV, 0); continue; } #if 0 /* This is really too verbose */ swim3_dbg("do_fd_req: dev=%s cmd=%d sec=%ld nr_sec=%u buf=%p\n", req->rq_disk->disk_name, req->cmd, (long)blk_rq_pos(req), blk_rq_sectors(req), req->buffer); swim3_dbg(" errors=%d current_nr_sectors=%u\n", req->errors, blk_rq_cur_sectors(req)); #endif if (blk_rq_pos(req) >= fs->total_secs) { swim3_dbg(" pos out of bounds (%ld, max is %ld)\n", (long)blk_rq_pos(req), (long)fs->total_secs); swim3_end_request(fs, -EIO, 0); continue; } if (fs->ejected) { swim3_dbg("%s", " disk ejected\n"); swim3_end_request(fs, -EIO, 0); continue; } if (rq_data_dir(req) == WRITE) { if (fs->write_prot < 0) fs->write_prot = swim3_readbit(fs, WRITE_PROT); if (fs->write_prot) { swim3_dbg("%s", " try to write, disk write protected\n"); swim3_end_request(fs, -EIO, 0); continue; } } /* Do not remove the cast. blk_rq_pos(req) is now a * sector_t and can be 64 bits, but it will never go * past 32 bits for this driver anyway, so we can * safely cast it down and not have to do a 64/32 * division */ fs->req_cyl = ((long)blk_rq_pos(req)) / fs->secpercyl; x = ((long)blk_rq_pos(req)) % fs->secpercyl; fs->head = x / fs->secpertrack; fs->req_sector = x % fs->secpertrack + 1; fs->state = do_transfer; fs->retries = 0; act(fs); } } static void do_fd_request(struct request_queue * q) { start_request(q->queuedata); } static void set_timeout(struct floppy_state *fs, int nticks, void (*proc)(unsigned long)) { if (fs->timeout_pending) del_timer(&fs->timeout); fs->timeout.expires = jiffies + nticks; fs->timeout.function = proc; fs->timeout.data = (unsigned long) fs; add_timer(&fs->timeout); fs->timeout_pending = 1; } static inline void scan_track(struct floppy_state *fs) { struct swim3 __iomem *sw = fs->swim3; swim3_select(fs, READ_DATA_0); in_8(&sw->intr); /* clear SEEN_SECTOR bit */ in_8(&sw->error); out_8(&sw->intr_enable, SEEN_SECTOR); out_8(&sw->control_bis, DO_ACTION); /* enable intr when track found */ set_timeout(fs, HZ, scan_timeout); /* enable timeout */ } static inline void seek_track(struct floppy_state *fs, int n) { struct swim3 __iomem *sw = fs->swim3; if (n >= 0) { swim3_action(fs, SEEK_POSITIVE); sw->nseek = n; } else { swim3_action(fs, SEEK_NEGATIVE); sw->nseek = -n; } fs->expect_cyl = (fs->cur_cyl >= 0)? fs->cur_cyl + n: -1; swim3_select(fs, STEP); in_8(&sw->error); /* enable intr when seek finished */ out_8(&sw->intr_enable, SEEK_DONE); out_8(&sw->control_bis, DO_SEEK); set_timeout(fs, 3*HZ, seek_timeout); /* enable timeout */ fs->settle_time = 0; } static inline void init_dma(struct dbdma_cmd *cp, int cmd, void *buf, int count) { st_le16(&cp->req_count, count); st_le16(&cp->command, cmd); st_le32(&cp->phy_addr, virt_to_bus(buf)); cp->xfer_status = 0; } static inline void setup_transfer(struct floppy_state *fs) { int n; struct swim3 __iomem *sw = fs->swim3; struct dbdma_cmd *cp = fs->dma_cmd; struct dbdma_regs __iomem *dr = fs->dma; struct request *req = fs->cur_req; if (blk_rq_cur_sectors(req) <= 0) { swim3_warn("%s", "Transfer 0 sectors ?\n"); return; } if (rq_data_dir(req) == WRITE) n = 1; else { n = fs->secpertrack - fs->req_sector + 1; if (n > blk_rq_cur_sectors(req)) n = blk_rq_cur_sectors(req); } swim3_dbg(" setup xfer at sect %d (of %d) head %d for %d\n", fs->req_sector, fs->secpertrack, fs->head, n); fs->scount = n; swim3_select(fs, fs->head? READ_DATA_1: READ_DATA_0); out_8(&sw->sector, fs->req_sector); out_8(&sw->nsect, n); out_8(&sw->gap3, 0); out_le32(&dr->cmdptr, virt_to_bus(cp)); if (rq_data_dir(req) == WRITE) { /* Set up 3 dma commands: write preamble, data, postamble */ init_dma(cp, OUTPUT_MORE, write_preamble, sizeof(write_preamble)); ++cp; init_dma(cp, OUTPUT_MORE, req->buffer, 512); ++cp; init_dma(cp, OUTPUT_LAST, write_postamble, sizeof(write_postamble)); } else { init_dma(cp, INPUT_LAST, req->buffer, n * 512); } ++cp; out_le16(&cp->command, DBDMA_STOP); out_8(&sw->control_bic, DO_ACTION | WRITE_SECTORS); in_8(&sw->error); out_8(&sw->control_bic, DO_ACTION | WRITE_SECTORS); if (rq_data_dir(req) == WRITE) out_8(&sw->control_bis, WRITE_SECTORS); in_8(&sw->intr); out_le32(&dr->control, (RUN << 16) | RUN); /* enable intr when transfer complete */ out_8(&sw->intr_enable, TRANSFER_DONE); out_8(&sw->control_bis, DO_ACTION); set_timeout(fs, 2*HZ, xfer_timeout); /* enable timeout */ } static void act(struct floppy_state *fs) { for (;;) { swim3_dbg(" act loop, state=%d, req_cyl=%d, cur_cyl=%d\n", fs->state, fs->req_cyl, fs->cur_cyl); switch (fs->state) { case idle: return; /* XXX shouldn't get here */ case locating: if (swim3_readbit(fs, TRACK_ZERO)) { swim3_dbg("%s", " locate track 0\n"); fs->cur_cyl = 0; if (fs->req_cyl == 0) fs->state = do_transfer; else fs->state = seeking; break; } scan_track(fs); return; case seeking: if (fs->cur_cyl < 0) { fs->expect_cyl = -1; fs->state = locating; break; } if (fs->req_cyl == fs->cur_cyl) { swim3_warn("%s", "Whoops, seeking 0\n"); fs->state = do_transfer; break; } seek_track(fs, fs->req_cyl - fs->cur_cyl); return; case settling: /* check for SEEK_COMPLETE after 30ms */ fs->settle_time = (HZ + 32) / 33; set_timeout(fs, fs->settle_time, settle_timeout); return; case do_transfer: if (fs->cur_cyl != fs->req_cyl) { if (fs->retries > 5) { swim3_err("Wrong cylinder in transfer, want: %d got %d\n", fs->req_cyl, fs->cur_cyl); swim3_end_request(fs, -EIO, 0); fs->state = idle; return; } fs->state = seeking; break; } setup_transfer(fs); return; case jogging: seek_track(fs, -5); return; default: swim3_err("Unknown state %d\n", fs->state); return; } } } static void scan_timeout(unsigned long data) { struct floppy_state *fs = (struct floppy_state *) data; struct swim3 __iomem *sw = fs->swim3; unsigned long flags; swim3_dbg("* scan timeout, state=%d\n", fs->state); spin_lock_irqsave(&swim3_lock, flags); fs->timeout_pending = 0; out_8(&sw->control_bic, DO_ACTION | WRITE_SECTORS); out_8(&sw->select, RELAX); out_8(&sw->intr_enable, 0); fs->cur_cyl = -1; if (fs->retries > 5) { swim3_end_request(fs, -EIO, 0); fs->state = idle; start_request(fs); } else { fs->state = jogging; act(fs); } spin_unlock_irqrestore(&swim3_lock, flags); } static void seek_timeout(unsigned long data) { struct floppy_state *fs = (struct floppy_state *) data; struct swim3 __iomem *sw = fs->swim3; unsigned long flags; swim3_dbg("* seek timeout, state=%d\n", fs->state); spin_lock_irqsave(&swim3_lock, flags); fs->timeout_pending = 0; out_8(&sw->control_bic, DO_SEEK); out_8(&sw->select, RELAX); out_8(&sw->intr_enable, 0); swim3_err("%s", "Seek timeout\n"); swim3_end_request(fs, -EIO, 0); fs->state = idle; start_request(fs); spin_unlock_irqrestore(&swim3_lock, flags); } static void settle_timeout(unsigned long data) { struct floppy_state *fs = (struct floppy_state *) data; struct swim3 __iomem *sw = fs->swim3; unsigned long flags; swim3_dbg("* settle timeout, state=%d\n", fs->state); spin_lock_irqsave(&swim3_lock, flags); fs->timeout_pending = 0; if (swim3_readbit(fs, SEEK_COMPLETE)) { out_8(&sw->select, RELAX); fs->state = locating; act(fs); goto unlock; } out_8(&sw->select, RELAX); if (fs->settle_time < 2*HZ) { ++fs->settle_time; set_timeout(fs, 1, settle_timeout); goto unlock; } swim3_err("%s", "Seek settle timeout\n"); swim3_end_request(fs, -EIO, 0); fs->state = idle; start_request(fs); unlock: spin_unlock_irqrestore(&swim3_lock, flags); } static void xfer_timeout(unsigned long data) { struct floppy_state *fs = (struct floppy_state *) data; struct swim3 __iomem *sw = fs->swim3; struct dbdma_regs __iomem *dr = fs->dma; unsigned long flags; int n; swim3_dbg("* xfer timeout, state=%d\n", fs->state); spin_lock_irqsave(&swim3_lock, flags); fs->timeout_pending = 0; out_le32(&dr->control, RUN << 16); /* We must wait a bit for dbdma to stop */ for (n = 0; (in_le32(&dr->status) & ACTIVE) && n < 1000; n++) udelay(1); out_8(&sw->intr_enable, 0); out_8(&sw->control_bic, WRITE_SECTORS | DO_ACTION); out_8(&sw->select, RELAX); swim3_err("Timeout %sing sector %ld\n", (rq_data_dir(fs->cur_req)==WRITE? "writ": "read"), (long)blk_rq_pos(fs->cur_req)); swim3_end_request(fs, -EIO, 0); fs->state = idle; start_request(fs); spin_unlock_irqrestore(&swim3_lock, flags); } static irqreturn_t swim3_interrupt(int irq, void *dev_id) { struct floppy_state *fs = (struct floppy_state *) dev_id; struct swim3 __iomem *sw = fs->swim3; int intr, err, n; int stat, resid; struct dbdma_regs __iomem *dr; struct dbdma_cmd *cp; unsigned long flags; struct request *req = fs->cur_req; swim3_dbg("* interrupt, state=%d\n", fs->state); spin_lock_irqsave(&swim3_lock, flags); intr = in_8(&sw->intr); err = (intr & ERROR_INTR)? in_8(&sw->error): 0; if ((intr & ERROR_INTR) && fs->state != do_transfer) swim3_err("Non-transfer error interrupt: state=%d, dir=%x, intr=%x, err=%x\n", fs->state, rq_data_dir(req), intr, err); switch (fs->state) { case locating: if (intr & SEEN_SECTOR) { out_8(&sw->control_bic, DO_ACTION | WRITE_SECTORS); out_8(&sw->select, RELAX); out_8(&sw->intr_enable, 0); del_timer(&fs->timeout); fs->timeout_pending = 0; if (sw->ctrack == 0xff) { swim3_err("%s", "Seen sector but cyl=ff?\n"); fs->cur_cyl = -1; if (fs->retries > 5) { swim3_end_request(fs, -EIO, 0); fs->state = idle; start_request(fs); } else { fs->state = jogging; act(fs); } break; } fs->cur_cyl = sw->ctrack; fs->cur_sector = sw->csect; if (fs->expect_cyl != -1 && fs->expect_cyl != fs->cur_cyl) swim3_err("Expected cyl %d, got %d\n", fs->expect_cyl, fs->cur_cyl); fs->state = do_transfer; act(fs); } break; case seeking: case jogging: if (sw->nseek == 0) { out_8(&sw->control_bic, DO_SEEK); out_8(&sw->select, RELAX); out_8(&sw->intr_enable, 0); del_timer(&fs->timeout); fs->timeout_pending = 0; if (fs->state == seeking) ++fs->retries; fs->state = settling; act(fs); } break; case settling: out_8(&sw->intr_enable, 0); del_timer(&fs->timeout); fs->timeout_pending = 0; act(fs); break; case do_transfer: if ((intr & (ERROR_INTR | TRANSFER_DONE)) == 0) break; out_8(&sw->intr_enable, 0); out_8(&sw->control_bic, WRITE_SECTORS | DO_ACTION); out_8(&sw->select, RELAX); del_timer(&fs->timeout); fs->timeout_pending = 0; dr = fs->dma; cp = fs->dma_cmd; if (rq_data_dir(req) == WRITE) ++cp; /* * Check that the main data transfer has finished. * On writing, the swim3 sometimes doesn't use * up all the bytes of the postamble, so we can still * see DMA active here. That doesn't matter as long * as all the sector data has been transferred. */ if ((intr & ERROR_INTR) == 0 && cp->xfer_status == 0) { /* wait a little while for DMA to complete */ for (n = 0; n < 100; ++n) { if (cp->xfer_status != 0) break; udelay(1); barrier(); } } /* turn off DMA */ out_le32(&dr->control, (RUN | PAUSE) << 16); stat = ld_le16(&cp->xfer_status); resid = ld_le16(&cp->res_count); if (intr & ERROR_INTR) { n = fs->scount - 1 - resid / 512; if (n > 0) { blk_update_request(req, 0, n << 9); fs->req_sector += n; } if (fs->retries < 5) { ++fs->retries; act(fs); } else { swim3_err("Error %sing block %ld (err=%x)\n", rq_data_dir(req) == WRITE? "writ": "read", (long)blk_rq_pos(req), err); swim3_end_request(fs, -EIO, 0); fs->state = idle; } } else { if ((stat & ACTIVE) == 0 || resid != 0) { /* musta been an error */ swim3_err("fd dma error: stat=%x resid=%d\n", stat, resid); swim3_err(" state=%d, dir=%x, intr=%x, err=%x\n", fs->state, rq_data_dir(req), intr, err); swim3_end_request(fs, -EIO, 0); fs->state = idle; start_request(fs); break; } fs->retries = 0; if (swim3_end_request(fs, 0, fs->scount << 9)) { fs->req_sector += fs->scount; if (fs->req_sector > fs->secpertrack) { fs->req_sector -= fs->secpertrack; if (++fs->head > 1) { fs->head = 0; ++fs->req_cyl; } } act(fs); } else fs->state = idle; } if (fs->state == idle) start_request(fs); break; default: swim3_err("Don't know what to do in state %d\n", fs->state); } spin_unlock_irqrestore(&swim3_lock, flags); return IRQ_HANDLED; } /* static void fd_dma_interrupt(int irq, void *dev_id) { } */ /* Called under the mutex to grab exclusive access to a drive */ static int grab_drive(struct floppy_state *fs, enum swim_state state, int interruptible) { unsigned long flags; swim3_dbg("%s", "-> grab drive\n"); spin_lock_irqsave(&swim3_lock, flags); if (fs->state != idle && fs->state != available) { ++fs->wanted; while (fs->state != available) { spin_unlock_irqrestore(&swim3_lock, flags); if (interruptible && signal_pending(current)) { --fs->wanted; return -EINTR; } interruptible_sleep_on(&fs->wait); spin_lock_irqsave(&swim3_lock, flags); } --fs->wanted; } fs->state = state; spin_unlock_irqrestore(&swim3_lock, flags); return 0; } static void release_drive(struct floppy_state *fs) { unsigned long flags; swim3_dbg("%s", "-> release drive\n"); spin_lock_irqsave(&swim3_lock, flags); fs->state = idle; start_request(fs); spin_unlock_irqrestore(&swim3_lock, flags); } static int fd_eject(struct floppy_state *fs) { int err, n; err = grab_drive(fs, ejecting, 1); if (err) return err; swim3_action(fs, EJECT); for (n = 20; n > 0; --n) { if (signal_pending(current)) { err = -EINTR; break; } swim3_select(fs, RELAX); schedule_timeout_interruptible(1); if (swim3_readbit(fs, DISK_IN) == 0) break; } swim3_select(fs, RELAX); udelay(150); fs->ejected = 1; release_drive(fs); return err; } static struct floppy_struct floppy_type = { 2880,18,2,80,0,0x1B,0x00,0xCF,0x6C,NULL }; /* 7 1.44MB 3.5" */ static int floppy_locked_ioctl(struct block_device *bdev, fmode_t mode, unsigned int cmd, unsigned long param) { struct floppy_state *fs = bdev->bd_disk->private_data; int err; if ((cmd & 0x80) && !capable(CAP_SYS_ADMIN)) return -EPERM; if (fs->mdev->media_bay && check_media_bay(fs->mdev->media_bay) != MB_FD) return -ENXIO; switch (cmd) { case FDEJECT: if (fs->ref_count != 1) return -EBUSY; err = fd_eject(fs); return err; case FDGETPRM: if (copy_to_user((void __user *) param, &floppy_type, sizeof(struct floppy_struct))) return -EFAULT; return 0; } return -ENOTTY; } static int floppy_ioctl(struct block_device *bdev, fmode_t mode, unsigned int cmd, unsigned long param) { int ret; mutex_lock(&swim3_mutex); ret = floppy_locked_ioctl(bdev, mode, cmd, param); mutex_unlock(&swim3_mutex); return ret; } static int floppy_open(struct block_device *bdev, fmode_t mode) { struct floppy_state *fs = bdev->bd_disk->private_data; struct swim3 __iomem *sw = fs->swim3; int n, err = 0; if (fs->ref_count == 0) { if (fs->mdev->media_bay && check_media_bay(fs->mdev->media_bay) != MB_FD) return -ENXIO; out_8(&sw->setup, S_IBM_DRIVE | S_FCLK_DIV2); out_8(&sw->control_bic, 0xff); out_8(&sw->mode, 0x95); udelay(10); out_8(&sw->intr_enable, 0); out_8(&sw->control_bis, DRIVE_ENABLE | INTR_ENABLE); swim3_action(fs, MOTOR_ON); fs->write_prot = -1; fs->cur_cyl = -1; for (n = 0; n < 2 * HZ; ++n) { if (n >= HZ/30 && swim3_readbit(fs, SEEK_COMPLETE)) break; if (signal_pending(current)) { err = -EINTR; break; } swim3_select(fs, RELAX); schedule_timeout_interruptible(1); } if (err == 0 && (swim3_readbit(fs, SEEK_COMPLETE) == 0 || swim3_readbit(fs, DISK_IN) == 0)) err = -ENXIO; swim3_action(fs, SETMFM); swim3_select(fs, RELAX); } else if (fs->ref_count == -1 || mode & FMODE_EXCL) return -EBUSY; if (err == 0 && (mode & FMODE_NDELAY) == 0 && (mode & (FMODE_READ|FMODE_WRITE))) { check_disk_change(bdev); if (fs->ejected) err = -ENXIO; } if (err == 0 && (mode & FMODE_WRITE)) { if (fs->write_prot < 0) fs->write_prot = swim3_readbit(fs, WRITE_PROT); if (fs->write_prot) err = -EROFS; } if (err) { if (fs->ref_count == 0) { swim3_action(fs, MOTOR_OFF); out_8(&sw->control_bic, DRIVE_ENABLE | INTR_ENABLE); swim3_select(fs, RELAX); } return err; } if (mode & FMODE_EXCL) fs->ref_count = -1; else ++fs->ref_count; return 0; } static int floppy_unlocked_open(struct block_device *bdev, fmode_t mode) { int ret; mutex_lock(&swim3_mutex); ret = floppy_open(bdev, mode); mutex_unlock(&swim3_mutex); return ret; } static int floppy_release(struct gendisk *disk, fmode_t mode) { struct floppy_state *fs = disk->private_data; struct swim3 __iomem *sw = fs->swim3; mutex_lock(&swim3_mutex); if (fs->ref_count > 0 && --fs->ref_count == 0) { swim3_action(fs, MOTOR_OFF); out_8(&sw->control_bic, 0xff); swim3_select(fs, RELAX); } mutex_unlock(&swim3_mutex); return 0; } static unsigned int floppy_check_events(struct gendisk *disk, unsigned int clearing) { struct floppy_state *fs = disk->private_data; return fs->ejected ? DISK_EVENT_MEDIA_CHANGE : 0; } static int floppy_revalidate(struct gendisk *disk) { struct floppy_state *fs = disk->private_data; struct swim3 __iomem *sw; int ret, n; if (fs->mdev->media_bay && check_media_bay(fs->mdev->media_bay) != MB_FD) return -ENXIO; sw = fs->swim3; grab_drive(fs, revalidating, 0); out_8(&sw->intr_enable, 0); out_8(&sw->control_bis, DRIVE_ENABLE); swim3_action(fs, MOTOR_ON); /* necessary? */ fs->write_prot = -1; fs->cur_cyl = -1; mdelay(1); for (n = HZ; n > 0; --n) { if (swim3_readbit(fs, SEEK_COMPLETE)) break; if (signal_pending(current)) break; swim3_select(fs, RELAX); schedule_timeout_interruptible(1); } ret = swim3_readbit(fs, SEEK_COMPLETE) == 0 || swim3_readbit(fs, DISK_IN) == 0; if (ret) swim3_action(fs, MOTOR_OFF); else { fs->ejected = 0; swim3_action(fs, SETMFM); } swim3_select(fs, RELAX); release_drive(fs); return ret; } static const struct block_device_operations floppy_fops = { .open = floppy_unlocked_open, .release = floppy_release, .ioctl = floppy_ioctl, .check_events = floppy_check_events, .revalidate_disk= floppy_revalidate, }; static void swim3_mb_event(struct macio_dev* mdev, int mb_state) { struct floppy_state *fs = macio_get_drvdata(mdev); struct swim3 __iomem *sw = fs->swim3; if (!fs) return; if (mb_state != MB_FD) return; /* Clear state */ out_8(&sw->intr_enable, 0); in_8(&sw->intr); in_8(&sw->error); } static int swim3_add_device(struct macio_dev *mdev, int index) { struct device_node *swim = mdev->ofdev.dev.of_node; struct floppy_state *fs = &floppy_states[index]; int rc = -EBUSY; /* Do this first for message macros */ memset(fs, 0, sizeof(*fs)); fs->mdev = mdev; fs->index = index; /* Check & Request resources */ if (macio_resource_count(mdev) < 2) { swim3_err("%s", "No address in device-tree\n"); return -ENXIO; } if (macio_irq_count(mdev) < 1) { swim3_err("%s", "No interrupt in device-tree\n"); return -ENXIO; } if (macio_request_resource(mdev, 0, "swim3 (mmio)")) { swim3_err("%s", "Can't request mmio resource\n"); return -EBUSY; } if (macio_request_resource(mdev, 1, "swim3 (dma)")) { swim3_err("%s", "Can't request dma resource\n"); macio_release_resource(mdev, 0); return -EBUSY; } dev_set_drvdata(&mdev->ofdev.dev, fs); if (mdev->media_bay == NULL) pmac_call_feature(PMAC_FTR_SWIM3_ENABLE, swim, 0, 1); fs->state = idle; fs->swim3 = (struct swim3 __iomem *) ioremap(macio_resource_start(mdev, 0), 0x200); if (fs->swim3 == NULL) { swim3_err("%s", "Couldn't map mmio registers\n"); rc = -ENOMEM; goto out_release; } fs->dma = (struct dbdma_regs __iomem *) ioremap(macio_resource_start(mdev, 1), 0x200); if (fs->dma == NULL) { swim3_err("%s", "Couldn't map dma registers\n"); iounmap(fs->swim3); rc = -ENOMEM; goto out_release; } fs->swim3_intr = macio_irq(mdev, 0); fs->dma_intr = macio_irq(mdev, 1); fs->cur_cyl = -1; fs->cur_sector = -1; fs->secpercyl = 36; fs->secpertrack = 18; fs->total_secs = 2880; init_waitqueue_head(&fs->wait); fs->dma_cmd = (struct dbdma_cmd *) DBDMA_ALIGN(fs->dbdma_cmd_space); memset(fs->dma_cmd, 0, 2 * sizeof(struct dbdma_cmd)); st_le16(&fs->dma_cmd[1].command, DBDMA_STOP); if (mdev->media_bay == NULL || check_media_bay(mdev->media_bay) == MB_FD) swim3_mb_event(mdev, MB_FD); if (request_irq(fs->swim3_intr, swim3_interrupt, 0, "SWIM3", fs)) { swim3_err("%s", "Couldn't request interrupt\n"); pmac_call_feature(PMAC_FTR_SWIM3_ENABLE, swim, 0, 0); goto out_unmap; return -EBUSY; } init_timer(&fs->timeout); swim3_info("SWIM3 floppy controller %s\n", mdev->media_bay ? "in media bay" : ""); return 0; out_unmap: iounmap(fs->dma); iounmap(fs->swim3); out_release: macio_release_resource(mdev, 0); macio_release_resource(mdev, 1); return rc; } static int __devinit swim3_attach(struct macio_dev *mdev, const struct of_device_id *match) { struct gendisk *disk; int index, rc; index = floppy_count++; if (index >= MAX_FLOPPIES) return -ENXIO; /* Add the drive */ rc = swim3_add_device(mdev, index); if (rc) return rc; /* Now register that disk. Same comment about failure handling */ disk = disks[index] = alloc_disk(1); if (disk == NULL) return -ENOMEM; disk->queue = blk_init_queue(do_fd_request, &swim3_lock); if (disk->queue == NULL) { put_disk(disk); return -ENOMEM; } disk->queue->queuedata = &floppy_states[index]; if (index == 0) { /* If we failed, there isn't much we can do as the driver is still * too dumb to remove the device, just bail out */ if (register_blkdev(FLOPPY_MAJOR, "fd")) return 0; } disk->major = FLOPPY_MAJOR; disk->first_minor = index; disk->fops = &floppy_fops; disk->private_data = &floppy_states[index]; disk->flags |= GENHD_FL_REMOVABLE; sprintf(disk->disk_name, "fd%d", index); set_capacity(disk, 2880); add_disk(disk); return 0; } static struct of_device_id swim3_match[] = { { .name = "swim3", }, { .compatible = "ohare-swim3" }, { .compatible = "swim3" }, { /* end of list */ } }; static struct macio_driver swim3_driver = { .driver = { .name = "swim3", .of_match_table = swim3_match, }, .probe = swim3_attach, #ifdef CONFIG_PMAC_MEDIABAY .mediabay_event = swim3_mb_event, #endif #if 0 .suspend = swim3_suspend, .resume = swim3_resume, #endif }; int swim3_init(void) { macio_register_driver(&swim3_driver); return 0; } module_init(swim3_init) MODULE_LICENSE("GPL"); MODULE_AUTHOR("Paul Mackerras"); MODULE_ALIAS_BLOCKDEV_MAJOR(FLOPPY_MAJOR);