mirror of
https://gitlab.com/qemu-project/openbios.git
synced 2024-02-13 08:34:06 +08:00
git-svn-id: svn://coreboot.org/openbios/openbios-devel@274 f158a5a8-5612-0410-a976-696ce0be7e32
532 lines
13 KiB
C
532 lines
13 KiB
C
/*
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* OpenBIOS ESP driver
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*
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* Copyright (C) 2004 Jens Axboe <axboe@suse.de>
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* Copyright (C) 2005 Stefan Reinauer <stepan@openbios.org>
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*
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* Credit goes to Hale Landis for his excellent ata demo software
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* OF node handling and some fixes by Stefan Reinauer
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*
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* This program is free software; you can redistribute it and/or
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* modify it under the terms of the GNU General Public License
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* version 2
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*
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*/
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#include "openbios/config.h"
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#include "openbios/bindings.h"
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#include "openbios/kernel.h"
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#include "libc/byteorder.h"
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#include "libc/vsprintf.h"
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#include "openbios/drivers.h"
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#include "asm/io.h"
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#include "scsi.h"
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#include "asm/dma.h"
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#include "esp.h"
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#define BUFSIZE 4096
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#ifdef CONFIG_DEBUG_ESP
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#define DPRINTF(fmt, args...) \
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do { printk(fmt , ##args); } while (0)
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#else
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#define DPRINTF(fmt, args...)
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#endif
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struct esp_dma {
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volatile struct sparc_dma_registers *regs;
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enum dvma_rev revision;
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};
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typedef struct sd_private {
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unsigned int bs;
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char *media_str;
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uint32_t sectors;
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uint8_t media;
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uint8_t id;
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uint8_t present;
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char model[40];
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} sd_private_t;
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struct esp_regs {
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unsigned char regs[ESP_REG_SIZE];
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};
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typedef struct esp_private {
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volatile struct esp_regs *ll;
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uint32_t buffer_dvma;
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unsigned int irq; /* device IRQ number */
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struct esp_dma espdma;
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unsigned char *buffer;
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sd_private_t sd[8];
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} esp_private_t;
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static esp_private_t *global_esp;
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/* DECLARE data structures for the nodes. */
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DECLARE_UNNAMED_NODE(ob_sd, INSTALL_OPEN, sizeof(sd_private_t *));
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DECLARE_UNNAMED_NODE(ob_esp, INSTALL_OPEN, sizeof(esp_private_t *));
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#ifdef CONFIG_DEBUG_ESP
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static void dump_drive(sd_private_t *drive)
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{
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printk("SCSI DRIVE @%lx:\n", (unsigned long)drive);
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printk("id: %d\n", drive->id);
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printk("media: %s\n", drive->media_str);
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printk("model: %s\n", drive->model);
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printk("sectors: %d\n", drive->sectors);
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printk("present: %d\n", drive->present);
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printk("bs: %d\n", drive->bs);
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}
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#endif
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static int
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do_command(esp_private_t *esp, sd_private_t *sd, int cmdlen, int replylen)
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{
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int status;
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// Set SCSI target
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esp->ll->regs[ESP_BUSID] = sd->id & 7;
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// Set DMA address
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esp->espdma.regs->st_addr = esp->buffer_dvma;
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// Set DMA length
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esp->ll->regs[ESP_TCLOW] = cmdlen & 0xff;
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esp->ll->regs[ESP_TCMED] = (cmdlen >> 8) & 0xff;
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// Set DMA direction
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esp->espdma.regs->cond_reg = 0;
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// Set ATN, issue command
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esp->ll->regs[ESP_CMD] = ESP_CMD_SELA | ESP_CMD_DMA;
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// Wait for DMA to complete. Can this fail?
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while ((esp->espdma.regs->cond_reg & DMA_HNDL_INTR) == 0) /* no-op */;
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// Check status
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status = esp->ll->regs[ESP_STATUS];
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DPRINTF("do_command: id %d, cmd[0] 0x%x, status 0x%x\n", sd->id, esp->buffer[0], status);
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// Target didn't want all command data or went to status phase
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// instead of data phase?
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if ((status & ESP_STAT_TCNT) != ESP_STAT_TCNT
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|| (status & ESP_STAT_PMASK) == ESP_STATP)
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return status;
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// Get reply
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// Set DMA address
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esp->espdma.regs->st_addr = esp->buffer_dvma;
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// Set DMA length
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esp->ll->regs[ESP_TCLOW] = replylen & 0xff;
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esp->ll->regs[ESP_TCMED] = (replylen >> 8) & 0xff;
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// Set DMA direction
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esp->espdma.regs->cond_reg = DMA_ST_WRITE;
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// Transfer
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esp->ll->regs[ESP_CMD] = ESP_CMD_TI | ESP_CMD_DMA;
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// Wait for DMA to complete
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while ((esp->espdma.regs->cond_reg & DMA_HNDL_INTR) == 0) /* no-op */;
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// Check status
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status = esp->ll->regs[ESP_STATUS];
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DPRINTF("do_command_reply: status 0x%x\n", status);
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if ((status & ESP_STAT_TCNT) != ESP_STAT_TCNT)
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return status;
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else
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return 0; // OK
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}
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// offset is in sectors
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static int
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ob_sd_read_sector(esp_private_t *esp, sd_private_t *sd, int offset)
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{
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DPRINTF("ob_sd_read_sector id %d %lx sector=%d\n",
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sd->id, (unsigned long)dest, offset);
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// Setup command = Read(10)
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memset(esp->buffer, 0, 10);
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esp->buffer[0] = 0x80;
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esp->buffer[1] = READ_10;
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esp->buffer[3] = (offset >> 24) & 0xff;
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esp->buffer[4] = (offset >> 16) & 0xff;
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esp->buffer[5] = (offset >> 8) & 0xff;
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esp->buffer[6] = offset & 0xff;
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esp->buffer[8] = 0;
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esp->buffer[9] = 1;
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if (do_command(esp, sd, 10, sd->bs))
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return 0;
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return 0;
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}
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static unsigned int
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read_capacity(esp_private_t *esp, sd_private_t *sd)
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{
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// Setup command = Read Capacity
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memset(esp->buffer, 0, 11);
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esp->buffer[0] = 0x80;
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esp->buffer[1] = READ_CAPACITY;
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if (do_command(esp, sd, 11, 8)) {
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sd->sectors = 0;
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sd->bs = 0;
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return 0;
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}
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sd->bs = (esp->buffer[4] << 24) | (esp->buffer[5] << 16) | (esp->buffer[6] << 8) | esp->buffer[7];
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sd->sectors = ((esp->buffer[0] << 24) | (esp->buffer[1] << 16) | (esp->buffer[2] << 8) | esp->buffer[3]) * (sd->bs / 512);
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return 1;
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}
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static unsigned int
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inquiry(esp_private_t *esp, sd_private_t *sd)
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{
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char *media = "UNKNOWN";
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// Setup command = Inquiry
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memset(esp->buffer, 0, 7);
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esp->buffer[0] = 0x80;
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esp->buffer[1] = INQUIRY;
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esp->buffer[5] = 36;
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if (do_command(esp, sd, 7, 36)) {
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sd->present = 0;
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sd->media = -1;
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return 0;
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}
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sd->present = 1;
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sd->media = esp->buffer[0];
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switch (sd->media) {
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case TYPE_DISK:
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media = "disk";
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break;
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case TYPE_ROM:
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media = "cdrom";
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break;
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}
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sd->media_str = media;
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memcpy(sd->model, &esp->buffer[16], 16);
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sd->model[17] = '\0';
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return 1;
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}
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static void
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ob_sd_read_blocks(sd_private_t **sd)
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{
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cell n = POP(), cnt = n;
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ucell blk = POP();
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char *dest = (char*)POP();
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int pos, spb, sect_offset;
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DPRINTF("ob_sd_read_blocks id %d %lx block=%d n=%d\n", (*sd)->id, (unsigned long)dest, blk, n );
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spb = (*sd)->bs / 512;
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while (n) {
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sect_offset = blk / spb;
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pos = (blk - sect_offset * spb) * 512;
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if (ob_sd_read_sector(global_esp, *sd, sect_offset)) {
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DPRINTF("ob_sd_read_blocks: error\n");
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RET(0);
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}
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while (n && pos < spb * 512) {
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memcpy(dest, global_esp->buffer + pos, 512);
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pos += 512;
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dest += 512;
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n--;
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blk++;
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}
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}
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PUSH(cnt);
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}
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static void
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ob_sd_block_size(__attribute__((unused))sd_private_t **sd)
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{
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PUSH(512);
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}
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static void
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ob_sd_open(__attribute__((unused))sd_private_t **sd)
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{
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int ret = 1, id;
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phandle_t ph;
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fword("my-unit");
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id = POP();
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//POP(); // unit id is 2 ints but we only need one.
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*sd = &global_esp->sd[id];
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#ifdef CONFIG_DEBUG_ESP
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{
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char *args;
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fword("my-args");
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args = pop_fstr_copy();
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DPRINTF("opening drive %d args %s\n", id, args);
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free(args);
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}
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#endif
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selfword("open-deblocker");
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/* interpose disk-label */
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ph = find_dev("/packages/disk-label");
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fword("my-args");
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PUSH_ph( ph );
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fword("interpose");
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RET ( -ret );
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}
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static void
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ob_sd_close(__attribute__((unused)) sd_private_t **sd)
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{
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selfword("close-deblocker");
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}
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NODE_METHODS(ob_sd) = {
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{ "open", ob_sd_open },
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{ "close", ob_sd_close },
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{ "read-blocks", ob_sd_read_blocks },
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{ "block-size", ob_sd_block_size },
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};
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static int
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espdma_init(unsigned int slot, uint64_t base, unsigned long offset,
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struct esp_dma *espdma)
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{
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espdma->regs = (void *)map_io(base + (uint64_t)offset, 0x10);
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if (espdma->regs == NULL) {
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DPRINTF("espdma_init: cannot map registers\n");
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return -1;
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}
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DPRINTF("dma1: ");
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switch ((espdma->regs->cond_reg) & DMA_DEVICE_ID) {
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case DMA_VERS0:
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espdma->revision = dvmarev0;
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DPRINTF("Revision 0 ");
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break;
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case DMA_ESCV1:
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espdma->revision = dvmaesc1;
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DPRINTF("ESC Revision 1 ");
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break;
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case DMA_VERS1:
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espdma->revision = dvmarev1;
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DPRINTF("Revision 1 ");
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break;
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case DMA_VERS2:
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espdma->revision = dvmarev2;
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DPRINTF("Revision 2 ");
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break;
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case DMA_VERHME:
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espdma->revision = dvmahme;
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DPRINTF("HME DVMA gate array ");
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break;
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case DMA_VERSPLUS:
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espdma->revision = dvmarevplus;
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DPRINTF("Revision 1 PLUS ");
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break;
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default:
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DPRINTF("unknown dma version %x",
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(espdma->regs->cond_reg) & DMA_DEVICE_ID);
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/* espdma->allocated = 1; */
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break;
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}
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DPRINTF("\n");
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push_str("/iommu/sbus/espdma");
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fword("find-device");
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/* set reg */
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PUSH(slot);
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fword("encode-int");
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PUSH(offset);
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fword("encode-int");
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fword("encode+");
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PUSH(0x00000010);
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fword("encode-int");
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fword("encode+");
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push_str("reg");
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fword("property");
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return 0;
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}
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static void
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ob_esp_initialize(__attribute__((unused)) esp_private_t **esp)
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{
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phandle_t ph = get_cur_dev();
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set_int_property(ph, "#address-cells", 2);
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set_int_property(ph, "#size-cells", 0);
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/* set device type */
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push_str("scsi");
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fword("device-type");
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PUSH(0x24);
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fword("encode-int");
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PUSH(0);
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fword("encode-int");
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fword("encode+");
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push_str("intr");
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fword("property");
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}
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static void
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ob_esp_decodeunit(__attribute__((unused)) esp_private_t **esp)
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{
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fword("decode-unit-scsi");
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}
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static void
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ob_esp_encodeunit(__attribute__((unused)) esp_private_t **esp)
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{
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fword("encode-unit-scsi");
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}
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NODE_METHODS(ob_esp) = {
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{ NULL, ob_esp_initialize },
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{ "decode-unit", ob_esp_decodeunit },
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{ "encode-unit", ob_esp_encodeunit },
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};
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static void
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add_alias(const char *device, const char *alias)
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{
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push_str("/aliases");
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fword("find-device");
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push_str(device);
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fword("encode-string");
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push_str(alias);
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fword("property");
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}
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int
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ob_esp_init(unsigned int slot, uint64_t base, unsigned long espoffset,
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unsigned long dmaoffset)
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{
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int id, diskcount = 0, cdcount = 0, *counter_ptr;
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char nodebuff[256], aliasbuff[256];
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esp_private_t *esp;
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DPRINTF("Initializing SCSI...");
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esp = malloc(sizeof(esp_private_t));
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if (!esp) {
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DPRINTF("Can't allocate ESP private structure\n");
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return -1;
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}
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global_esp = esp;
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if (espdma_init(slot, base, dmaoffset, &esp->espdma) != 0) {
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return -1;
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}
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/* Get the IO region */
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esp->ll = (void *)map_io(base + (uint64_t)espoffset,
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sizeof(struct esp_regs));
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if (esp->ll == NULL) {
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DPRINTF("Can't map ESP registers\n");
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return -1;
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}
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esp->buffer = (void *)dvma_alloc(BUFSIZE, &esp->buffer_dvma);
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if (!esp->buffer || !esp->buffer_dvma) {
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DPRINTF("Can't get a DVMA buffer\n");
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return -1;
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}
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// Chip reset
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esp->ll->regs[ESP_CMD] = ESP_CMD_RC;
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DPRINTF("ESP at 0x%lx, buffer va 0x%lx dva 0x%lx\n", (unsigned long)esp,
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(unsigned long)esp->buffer, (unsigned long)esp->buffer_dvma);
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DPRINTF("done\n");
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DPRINTF("Initializing SCSI devices...");
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for (id = 0; id < 8; id++) {
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esp->sd[id].id = id;
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if (!inquiry(esp, &esp->sd[id]))
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continue;
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read_capacity(esp, &esp->sd[id]);
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#ifdef CONFIG_DEBUG_ESP
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dump_drive(&esp->sd[id]);
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#endif
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}
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REGISTER_NAMED_NODE(ob_esp, "/iommu/sbus/espdma/esp");
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device_end();
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/* set reg */
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push_str("/iommu/sbus/espdma/esp");
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fword("find-device");
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PUSH(slot);
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fword("encode-int");
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PUSH(espoffset);
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fword("encode-int");
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fword("encode+");
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PUSH(0x00000010);
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fword("encode-int");
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fword("encode+");
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push_str("reg");
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fword("property");
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PUSH(0x02625a00);
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fword("encode-int");
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push_str("clock-frequency");
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fword("property");
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for (id = 0; id < 8; id++) {
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if (!esp->sd[id].present)
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continue;
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push_str("/iommu/sbus/espdma/esp");
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fword("find-device");
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fword("new-device");
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push_str("sd");
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fword("device-name");
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push_str("block");
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fword("device-type");
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fword("is-deblocker");
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PUSH(id);
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fword("encode-int");
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PUSH(0);
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fword("encode-int");
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fword("encode+");
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push_str("reg");
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fword("property");
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fword("finish-device");
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sprintf(nodebuff, "/iommu/sbus/espdma/esp/sd@%d,0", id);
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REGISTER_NODE_METHODS(ob_sd, nodebuff);
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if (esp->sd[id].media == TYPE_ROM) {
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counter_ptr = &cdcount;
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} else {
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counter_ptr = &diskcount;
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}
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if (*counter_ptr == 0) {
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add_alias(nodebuff, esp->sd[id].media_str);
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}
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sprintf(aliasbuff, "%s%d", esp->sd[id].media_str, *counter_ptr);
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add_alias(nodebuff, aliasbuff);
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sprintf(aliasbuff, "sd(0,%d,0)", id);
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add_alias(nodebuff, aliasbuff);
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sprintf(aliasbuff, "sd(0,%d,0)@0,0", id);
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add_alias(nodebuff, aliasbuff);
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(*counter_ptr)++;
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}
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DPRINTF("done\n");
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return 0;
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}
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