798 lines
20 KiB
C
798 lines
20 KiB
C
/*
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* Copyright (C) 2001-2003 Hewlett-Packard Co.
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* Contributed by Stephane Eranian <eranian@hpl.hp.com>
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* Contributed by Mike Johnston <johnston@intel.com>
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* Contributed by Chris Ahna <christopher.j.ahna@intel.com>
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*
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* This file is part of the ELILO, the EFI Linux boot loader.
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*
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* ELILO is free software; you can redistribute it and/or modify
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* it under the terms of the GNU General Public License as published by
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* the Free Software Foundation; either version 2, or (at your option)
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* any later version.
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*
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* ELILO is distributed in the hope that it will be useful,
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* but WITHOUT ANY WARRANTY; without even the implied warranty of
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* MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
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* GNU General Public License for more details.
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*
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* You should have received a copy of the GNU General Public License
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* along with ELILO; see the file COPYING. If not, write to the Free
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* Software Foundation, 59 Temple Place - Suite 330, Boston, MA
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* 02111-1307, USA.
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*
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* Please check out the elilo.txt for complete documentation on how
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* to use this program.
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*/
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/*
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* this file contains all the IA-32 specific code expected by generic loader
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*/
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#include <efi.h>
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#include <efilib.h>
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#include "elilo.h"
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#include "loader.h"
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#include "rmswitch.h"
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/* = = = = = = = = = = = = = = = = = = = = = = = = = = = = = = = = = = = = = */
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/* - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - */
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/* extern loader_ops_t plain_loader, gzip_loader; */
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efi_ia32_boot_params_t efi_ia32_bp;
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/*
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* Descriptor table base addresses & limits for Linux startup.
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*/
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dt_addr_t gdt_addr = { 0x800, 0x94000 };
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dt_addr_t idt_addr = { 0, 0 };
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/*
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* Initial GDT layout for Linux startup.
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*/
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UINT16 init_gdt[] = {
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/* gdt[0]: dummy */
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0, 0, 0, 0,
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/* gdt[1]: unused */
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0, 0, 0, 0,
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/* gdt[2]: code */
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0xFFFF, /* 4Gb - (0x100000*0x1000 = 4Gb) */
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0x0000, /* base address=0 */
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0x9A00, /* code read/exec */
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0x00CF, /* granularity=4096, 386 (+5th nibble of limit) */
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/* gdt[3]: data */
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0xFFFF, /* 4Gb - (0x100000*0x1000 = 4Gb) */
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0x0000, /* base address=0 */
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0x9200, /* data read/write */
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0x00CF, /* granularity=4096, 386 (+5th nibble of limit) */
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};
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UINTN sizeof_init_gdt = sizeof init_gdt;
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/*
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* Highest available base memory address.
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*
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* For traditional kernels and loaders this is always at 0x90000.
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* For updated kernels and loaders this is computed by taking the
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* highest available base memory address and rounding down to the
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* nearest 64 kB boundary and then subtracting 64 kB.
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*
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* A non-compressed kernel is automatically assumed to be an updated
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* kernel. A compressed kernel that has bit 6 (0x40) set in the
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* loader_flags field is also assumed to be an updated kernel.
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*/
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UINTN high_base_mem = 0x90000;
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/*
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* Highest available extended memory address.
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*
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* This is computed by taking the highest available extended memory
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* address and rounding down to the nearest EFI_PAGE_SIZE (usually
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* 4 kB) boundary. The ia32 Linux kernel can only support up to
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* 2 GB (AFAIK).
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*/
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UINTN high_ext_mem = 32 * 1024 * 1024;
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/*
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* Starting location and size of runtime memory blocks.
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*/
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boot_params_t *param_start = NULL;
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UINTN param_size = 0;
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VOID *kernel_start = (VOID *)0x100000; /* 1M */
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UINTN kernel_size = 0x200000; /* 2M (largest x86 kernel image) */
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VOID *initrd_start = NULL;
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UINTN initrd_size = 0;
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/*
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* Boot parameters can be relocated if TRUE.
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* Boot parameters must be placed at 0x90000 if FALSE.
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*
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* This will be set to TRUE if bit 6 (0x40) is set in the loader_flags
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* field in a compressed x86 boot format kernel. This will also be set
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* to TRUE if the kernel is an uncompressed ELF32 image.
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*
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* To remote boot w/ the universal network driver and a 16-bit UNDI
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* this must be set to TRUE.
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*/
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BOOLEAN can_reloc_boot_params = FALSE;
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/* = = = = = = = = = = = = = = = = = = = = = = = = = = = = = = = = = = = = = */
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/* - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - */
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static INTN
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probe_bzImage_boot(CHAR16 *kname)
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{
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EFI_STATUS efi_status;
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UINTN size;
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fops_fd_t fd;
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UINT8 bootsect[512];
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DBG_PRT((L"probe_bzImage_boot()\n"));
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if (!kname) {
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ERR_PRT((L"kname == %xh", kname));
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free_kmem();
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return -1;
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}
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/*
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* Open kernel image.
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*/
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DBG_PRT((L"opening %s...\n", kname));
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efi_status = fops_open(kname, &fd);
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if (EFI_ERROR(efi_status)) {
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ERR_PRT((L"Could not open %s.", kname));
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free_kmem();
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return -1;
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}
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/*
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* Read boot sector.
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*/
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DBG_PRT((L"\nreading boot sector...\n"));
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size = sizeof bootsect;
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efi_status = fops_read(fd, bootsect, &size);
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if (EFI_ERROR(efi_status) || size != sizeof bootsect) {
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ERR_PRT((L"Could not read boot sector from %s.", kname));
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fops_close(fd);
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free_kmem();
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return -1;
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}
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/*
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* Verify boot sector signature.
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*/
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if (bootsect[0x1FE] != 0x55 || bootsect[0x1FF] != 0xAA) {
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ERR_PRT((L"%s is not a bzImage kernel image.\n", kname));
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fops_close(fd);
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free_kmem();
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return -1;
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}
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/*
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* Check for out of range setup data size.
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* Will almost always be 7, but we will accept 1 to 64.
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*/
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DBG_PRT((L"bootsect[1F1h] == %d setup sectors\n", bootsect[0x1F1]));
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if (bootsect[0x1F1] < 1 || bootsect[0x1F1] > 64) {
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ERR_PRT((L"%s is not a valid bzImage kernel image.",
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kname));
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fops_close(fd);
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free_kmem();
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return -1;
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}
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/*
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* Allocate and read setup data.
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*/
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DBG_PRT((L"reading setup data...\n"));
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param_size = (bootsect[0x1F1] + 1) * 512;
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//param_start = alloc(param_size, EfiBootServicesData);
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param_start = alloc(param_size, EfiLoaderData);
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DBG_PRT((L"param_size=%d param_start=%x", param_size, param_start));
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if (!param_start) {
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ERR_PRT((L"Could not allocate %d bytes of setup data.",
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param_size));
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fops_close(fd);
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free_kmem();
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return -1;
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}
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CopyMem(param_start, bootsect, sizeof bootsect);
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size = param_size - 512;
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efi_status = fops_read(fd, ((UINT8 *)param_start) + 512, &size);
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if (EFI_ERROR(efi_status) || size != param_size - 512) {
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ERR_PRT((L"Could not read %d bytes of setup data.",
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param_size - 512));
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free(param_start);
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param_start = NULL;
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param_size = 0;
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fops_close(fd);
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free_kmem();
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return -1;
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}
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/*
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* Check for setup data signature.
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*/
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{ UINT8 *c = ((UINT8 *)param_start)+514;
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DBG_PRT((L"param_start(c=%x): %c-%c-%c-%c", c, (CHAR16)c[0],(CHAR16) c[1], (CHAR16)c[2], (CHAR16)c[3]));
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}
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if (CompareMem(((UINT8 *)param_start) + 514, "HdrS", 4)) {
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ERR_PRT((L"%s does not have a setup signature.",
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kname));
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free(param_start);
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param_start = NULL;
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param_size = 0;
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fops_close(fd);
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free_kmem();
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return -1;
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}
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/*
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* Allocate memory for kernel.
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*/
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if (alloc_kmem(kernel_start, EFI_SIZE_TO_PAGES(kernel_size))) {
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ERR_PRT((L"Could not allocate kernel memory."));
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return -1;
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} else {
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VERB_PRT(3, Print(L"kernel_start: 0x%x kernel_size: %d\n", kernel_start, kernel_size));
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}
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/*
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* Now read the rest of the kernel image into memory.
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*/
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DBG_PRT((L"reading kernel image...\n"));
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size = kernel_size;
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efi_status = fops_read(fd, kernel_start, &size);
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if (EFI_ERROR(efi_status) || size < 0x10000) {
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ERR_PRT((L"Error reading kernel image %s.", kname));
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free(param_start);
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param_start = NULL;
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param_size = 0;
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fops_close(fd);
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free_kmem();
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return -1;
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}
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DBG_PRT((L"kernel image read: %d bytes, %d Kbytes\n", size, size / 1024));
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/*
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* Boot sector, setup data and kernel image loaded.
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*/
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fops_close(fd);
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return 0;
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}
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/* - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - */
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static INTN
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load_bzImage_boot(CHAR16 *kname, kdesc_t *kd)
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{
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DBG_PRT((L"load_bzImage_boot()\n"));
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if (!kname || !kd) {
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ERR_PRT((L"kname=0x%x kd=0x%x", kname, kd));
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free(param_start);
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param_start = NULL;
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param_size = 0;
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free_kmem();
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return -1;
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}
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kd->kstart = kd->kentry = kernel_start;
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kd->kend = ((UINT8 *)kd->kstart) + kernel_size;
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DBG_PRT((L"kstart=0x%x kentry=0x%x kend=0x%x\n", kd->kstart, kd->kentry, kd->kend));
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return 0;
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}
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/* - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - */
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static loader_ops_t loader_bzImage_boot = {
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NULL,
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L"loader_bzImage_boot",
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&probe_bzImage_boot,
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&load_bzImage_boot
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};
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/* = = = = = = = = = = = = = = = = = = = = = = = = = = = = = = = = = = = = = */
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/* - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - */
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INTN
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sysdeps_init(EFI_HANDLE dev)
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{
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DBG_PRT((L"sysdeps_init()\n"));
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/*
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* Register our loader(s)...
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*/
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loader_register(&loader_bzImage_boot);
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/* loader_register(&plain_loader); */
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/* loader_register(&gzip_loader); */
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return 0;
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}
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/* = = = = = = = = = = = = = = = = = = = = = = = = = = = = = = = = = = = = = */
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/* - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - */
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/*
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* initrd_get_addr()
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* Compute a starting address for the initial RAMdisk image.
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* For now, this image is placed immediately after the end of
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* the kernel memory. Inside the start_kernel() code, the
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* RAMdisk image will be relocated to the top of available
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* extended memory.
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*/
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INTN
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sysdeps_initrd_get_addr(kdesc_t *kd, memdesc_t *imem)
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{
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DBG_PRT((L"initrd_get_addr()\n"));
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if (!kd || !imem) {
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ERR_PRT((L"kd=0x%x imem=0x%x", kd, imem));
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return -1;
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}
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VERB_PRT(3, Print(L"kstart=0x%x kentry=0x%x kend=0x%x\n",
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kd->kstart, kd->kentry, kd->kend));
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imem->start_addr = kd->kend;
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VERB_PRT(3, Print(L"initrd start_addr=0x%x pgcnt=%d\n", imem->start_addr, imem->pgcnt));
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return 0;
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}
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/* = = = = = = = = = = = = = = = = = = = = = = = = = = = = = = = = = = = = = */
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/* - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - */
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VOID
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sysdeps_free_boot_params(boot_params_t *bp)
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{
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mmap_desc_t md;
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ZeroMem(&md, sizeof md);
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md.md = (VOID *)bp->s.efi_mem_map;
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free_memmap(&md);
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}
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/* = = = = = = = = = = = = = = = = = = = = = = = = = = = = = = = = = = = = = */
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/* - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - */
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/*
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* IA-32 specific boot parameters initialization routine
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*/
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INTN
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sysdeps_create_boot_params(
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boot_params_t *bp,
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CHAR8 *cmdline,
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memdesc_t *initrd,
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UINTN *cookie)
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{
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mmap_desc_t mdesc;
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EFI_STATUS efi_status;
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UINTN rows, cols;
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UINT8 row, col;
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UINT8 mode;
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UINT16 hdr_version;
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DBG_PRT((L"fill_boot_params()\n"));
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if (!bp || !cmdline || !initrd || !cookie) {
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ERR_PRT((L"bp=0x%x cmdline=0x%x initrd=0x%x cookie=0x%x",
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bp, cmdline, initrd, cookie));
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free(param_start);
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param_start = NULL;
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param_size = 0;
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free_kmem();
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return -1;
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}
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/*
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* Copy temporary boot sector and setup data storage to
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* elilo allocated boot parameter storage. We only need
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* the first two sectors (1K). The rest of the storage
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* can be used by the command line.
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*/
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CopyMem(bp, param_start, 0x2000);
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free(param_start);
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param_start = NULL;
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param_size = 0;
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/*
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* Save off our header revision information.
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*/
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hdr_version = (bp->s.hdr_major << 8) | bp->s.hdr_minor;
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/*
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* Clear out unused memory in boot sector image.
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*/
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bp->s.unused_1 = 0;
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bp->s.unused_2 = 0;
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ZeroMem(bp->s.unused_3, sizeof bp->s.unused_3);
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ZeroMem(bp->s.unused_4, sizeof bp->s.unused_4);
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ZeroMem(bp->s.unused_5, sizeof bp->s.unused_5);
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bp->s.unused_6 = 0;
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/*
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* Tell kernel this was loaded by an advanced loader type.
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* If this field is zero, the initrd_start and initrd_size
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* fields are ignored by the kernel.
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*/
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bp->s.loader_type = LDRTYPE_ELILO;
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/*
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* Setup command line information.
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*/
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bp->s.cmdline_magik = CMDLINE_MAGIK;
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bp->s.cmdline_offset = (UINT8 *)cmdline - (UINT8 *)bp;
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/*
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* Setup hard drive parameters.
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* %%TBD - It should be okay to zero fill the hard drive
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* info buffers. The kernel should do its own detection.
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*/
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ZeroMem(bp->s.hd0_info, sizeof bp->s.hd0_info);
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ZeroMem(bp->s.hd1_info, sizeof bp->s.hd1_info);
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#if 0
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CopyMem(bp->s.hd0_info, *((VOID **)(0x41 * 4)),
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sizeof bp->s.hd0_info);
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CopyMem(bp->s.hd1_info, *((VOID **)(0x46 * 4)),
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sizeof bp->s.hd1_info);
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#endif
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/*
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* Memory info.
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*/
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bp->s.alt_mem_k = high_ext_mem / 1024;
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if (bp->s.alt_mem_k <= 65535) {
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bp->s.ext_mem_k = (UINT16)bp->s.alt_mem_k;
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} else {
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bp->s.ext_mem_k = 65535;
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}
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if (hdr_version < 0x0202)
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bp->s.base_mem_size = high_base_mem;
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/*
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* Initial RAMdisk and root device stuff.
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*/
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DBG_PRT((L"initrd->start_addr=0x%x initrd->pgcnt=%d\n",
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initrd->start_addr, initrd->pgcnt));
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|
|
/* These RAMdisk flags are not needed, just zero them. */
|
|
bp->s.ramdisk_flags = 0;
|
|
|
|
if (initrd->start_addr && initrd->pgcnt) {
|
|
/* %%TBD - This will probably have to be changed. */
|
|
bp->s.initrd_start = (UINT32)initrd->start_addr;
|
|
bp->s.initrd_size = (UINT32)(initrd->pgcnt * EFI_PAGE_SIZE);
|
|
|
|
/*
|
|
* This is the RAMdisk root device for RedHat 2.2.x
|
|
* kernels (major 0x01, minor 0x00).
|
|
* %%TBD - Will this work for other distributions and
|
|
* 2.3.x and 2.4.x kernels? I do not know, yet.
|
|
*/
|
|
|
|
bp->s.orig_root_dev = 0x0100;
|
|
} else {
|
|
bp->s.initrd_start = 0;
|
|
bp->s.initrd_size = 0;
|
|
|
|
/* Do not change the root device if there is no RAMdisk. */
|
|
/* bp->s.orig_root_dev = 0; */
|
|
}
|
|
|
|
/*
|
|
* APM BIOS info.
|
|
*/
|
|
|
|
/* %%TBD - How to do Int 15h calls to get this info? */
|
|
bp->s.apm_bios_ver = NO_APM_BIOS;
|
|
bp->s.bios_code_seg = 0;
|
|
bp->s.bios_entry_point = 0;
|
|
bp->s.bios_code_seg16 = 0;
|
|
bp->s.bios_data_seg = 0;
|
|
bp->s.apm_bios_flags = 0;
|
|
bp->s.bios_code_len = 0;
|
|
bp->s.bios_data_len = 0;
|
|
|
|
/*
|
|
* MCA BIOS info (misnomer).
|
|
*/
|
|
|
|
/* %%TBD - How to do Int 15h call to get this info? */
|
|
bp->s.mca_info_len = 0;
|
|
ZeroMem(bp->s.mca_info_buf, sizeof bp->s.mca_info_buf);
|
|
|
|
/*
|
|
* Pointing device presence.
|
|
*/
|
|
|
|
/* %%TBD - How to do Int 11h call to get this info? */
|
|
bp->s.aux_dev_info = NO_MOUSE;
|
|
|
|
/*
|
|
* EFI loader signature and address of EFI system table.
|
|
*/
|
|
|
|
CopyMem(bp->s.efi_loader_sig, EFI_LOADER_SIG, 4);
|
|
bp->s.efi_sys_tbl = 0; /* %%TBD */
|
|
|
|
/*
|
|
* Kernel entry point.
|
|
*/
|
|
|
|
bp->s.kernel_start = (UINT32)kernel_start;
|
|
|
|
/*
|
|
* When changing stuff in the parameter structure compare
|
|
* the offsets of the fields with the offsets used in the
|
|
* boot sector and setup source files.
|
|
* arch/i386/boot/bootsect.S
|
|
* arch/i386/boot/setup.S
|
|
* arch/i386/kernel/setup.c
|
|
*/
|
|
|
|
#define CHECK_OFFSET(n, o, f) \
|
|
{ \
|
|
UINTN p = (UINT8 *)&bp->s.n - (UINT8 *)bp; \
|
|
UINTN q = (UINTN)(o); \
|
|
if (p != q) { \
|
|
test |= 1; \
|
|
Print(L"%20a: %3xh %3xh ", #n, p, q); \
|
|
if (*f) { \
|
|
Print(f, bp->s.n); \
|
|
} \
|
|
Print(L"\n"); \
|
|
} \
|
|
}
|
|
|
|
#define WAIT_FOR_KEY() \
|
|
{ \
|
|
EFI_INPUT_KEY key; \
|
|
while (ST->ConIn->ReadKeyStroke(ST->ConIn, &key) != EFI_SUCCESS) { \
|
|
; \
|
|
} \
|
|
}
|
|
|
|
{
|
|
UINTN test = 0;
|
|
|
|
CHECK_OFFSET(orig_cursor_col, 0x00, L"%xh");
|
|
CHECK_OFFSET(orig_cursor_row, 0x01, L"%xh");
|
|
CHECK_OFFSET(ext_mem_k, 0x02, L"%xh");
|
|
CHECK_OFFSET(orig_video_page, 0x04, L"%xh");
|
|
CHECK_OFFSET(orig_video_mode, 0x06, L"%xh");
|
|
CHECK_OFFSET(orig_video_cols, 0x07, L"%xh");
|
|
CHECK_OFFSET(orig_ega_bx, 0x0A, L"%xh");
|
|
CHECK_OFFSET(orig_video_rows, 0x0E, L"%xh");
|
|
CHECK_OFFSET(is_vga, 0x0F, L"%xh");
|
|
CHECK_OFFSET(orig_video_points, 0x10, L"%xh");
|
|
CHECK_OFFSET(lfb_width, 0x12, L"%xh");
|
|
CHECK_OFFSET(lfb_height, 0x14, L"%xh");
|
|
CHECK_OFFSET(lfb_depth, 0x16, L"%xh");
|
|
CHECK_OFFSET(lfb_base, 0x18, L"%xh");
|
|
CHECK_OFFSET(lfb_size, 0x1C, L"%xh");
|
|
CHECK_OFFSET(cmdline_magik, 0x20, L"%xh");
|
|
CHECK_OFFSET(cmdline_offset, 0x22, L"%xh");
|
|
CHECK_OFFSET(lfb_line_len, 0x24, L"%xh");
|
|
CHECK_OFFSET(lfb_red_size, 0x26, L"%xh");
|
|
CHECK_OFFSET(lfb_red_pos, 0x27, L"%xh");
|
|
CHECK_OFFSET(lfb_green_size, 0x28, L"%xh");
|
|
CHECK_OFFSET(lfb_green_pos, 0x29, L"%xh");
|
|
CHECK_OFFSET(lfb_blue_size, 0x2A, L"%xh");
|
|
CHECK_OFFSET(lfb_blue_pos, 0x2B, L"%xh");
|
|
CHECK_OFFSET(lfb_rsvd_size, 0x2C, L"%xh");
|
|
CHECK_OFFSET(lfb_rsvd_pos, 0x2D, L"%xh");
|
|
CHECK_OFFSET(vesa_seg, 0x2E, L"%xh");
|
|
CHECK_OFFSET(vesa_off, 0x30, L"%xh");
|
|
CHECK_OFFSET(lfb_pages, 0x32, L"%xh");
|
|
CHECK_OFFSET(lfb_reserved, 0x34, L"");
|
|
CHECK_OFFSET(apm_bios_ver, 0x40, L"%xh");
|
|
CHECK_OFFSET(bios_code_seg, 0x42, L"%xh");
|
|
CHECK_OFFSET(bios_entry_point, 0x44, L"%xh");
|
|
CHECK_OFFSET(bios_code_seg16, 0x48, L"%xh");
|
|
CHECK_OFFSET(bios_data_seg, 0x4A, L"%xh");
|
|
CHECK_OFFSET(apm_bios_flags, 0x4C, L"%xh");
|
|
CHECK_OFFSET(bios_code_len, 0x4E, L"%xh");
|
|
CHECK_OFFSET(bios_data_len, 0x52, L"%xh");
|
|
CHECK_OFFSET(hd0_info, 0x80, L"");
|
|
CHECK_OFFSET(hd1_info, 0x90, L"");
|
|
CHECK_OFFSET(mca_info_len, 0xA0, L"%xh");
|
|
CHECK_OFFSET(mca_info_buf, 0xA2, L"");
|
|
CHECK_OFFSET(efi_loader_sig, 0x1C0, L"'%-4.4a'");
|
|
CHECK_OFFSET(efi_sys_tbl, 0x1C4, L"%xh");
|
|
CHECK_OFFSET(efi_mem_desc_size, 0x1C8, L"%xh");
|
|
CHECK_OFFSET(efi_mem_desc_ver, 0x1CC, L"%xh");
|
|
CHECK_OFFSET(efi_mem_map, 0x1D0, L"%xh");
|
|
CHECK_OFFSET(efi_mem_map_size, 0x1D4, L"%xh");
|
|
CHECK_OFFSET(loader_start, 0x1D8, L"%xh");
|
|
CHECK_OFFSET(loader_size, 0x1DC, L"%xh");
|
|
CHECK_OFFSET(alt_mem_k, 0x1E0, L"%xh");
|
|
CHECK_OFFSET(setup_sectors, 0x1F1, L"%xh");
|
|
CHECK_OFFSET(mount_root_rdonly, 0x1F2, L"%xh");
|
|
CHECK_OFFSET(sys_size, 0x1F4, L"%xh");
|
|
CHECK_OFFSET(swap_dev, 0x1F6, L"%xh");
|
|
CHECK_OFFSET(ramdisk_flags, 0x1F8, L"%xh");
|
|
CHECK_OFFSET(video_mode_flag, 0x1FA, L"%xh");
|
|
CHECK_OFFSET(orig_root_dev, 0x1FC, L"%xh");
|
|
CHECK_OFFSET(aux_dev_info, 0x1FF, L"%xh");
|
|
CHECK_OFFSET(jump, 0x200, L"%xh");
|
|
CHECK_OFFSET(setup_sig, 0x202, L"'%-4.4a'");
|
|
CHECK_OFFSET(hdr_minor, 0x206, L"%xh");
|
|
CHECK_OFFSET(hdr_major, 0x207, L"%xh");
|
|
CHECK_OFFSET(rm_switch, 0x208, L"%xh");
|
|
CHECK_OFFSET(start_sys_seg, 0x20C, L"%xh");
|
|
CHECK_OFFSET(kernel_verstr_offset, 0x20E, L"%xh");
|
|
CHECK_OFFSET(loader_type, 0x210, L"%xh");
|
|
CHECK_OFFSET(loader_flags, 0x211, L"%xh");
|
|
CHECK_OFFSET(setup_move_size, 0x212, L"%xh");
|
|
CHECK_OFFSET(kernel_start, 0x214, L"%xh");
|
|
CHECK_OFFSET(initrd_start, 0x218, L"%xh");
|
|
CHECK_OFFSET(initrd_size, 0x21C, L"%xh");
|
|
CHECK_OFFSET(bootsect_helper, 0x220, L"%xh");
|
|
CHECK_OFFSET(heap_end_ptr, 0x224, L"%xh");
|
|
CHECK_OFFSET(base_mem_size, 0x226, L"%xh");
|
|
|
|
if (test) {
|
|
ERR_PRT((L"Boot sector and/or setup parameter alignment error."));
|
|
free_kmem();
|
|
return -1;
|
|
}
|
|
}
|
|
|
|
/*
|
|
* Get video information.
|
|
* Do this last so that any other cursor positioning done
|
|
* in the fill routine gets accounted for.
|
|
*/
|
|
|
|
efi_status = ST->ConOut->QueryMode(
|
|
ST->ConOut,
|
|
ST->ConOut->Mode->Mode,
|
|
&cols,
|
|
&rows);
|
|
|
|
if (EFI_ERROR(efi_status)) {
|
|
ERR_PRT((L"QueryMode failed. Fake it."));
|
|
|
|
mode = 3;
|
|
rows = 25;
|
|
cols = 80;
|
|
row = 24;
|
|
col = 0;
|
|
} else {
|
|
mode = (UINT8)ST->ConOut->Mode->Mode;
|
|
col = (UINT8)ST->ConOut->Mode->CursorColumn;
|
|
row = (UINT8)ST->ConOut->Mode->CursorRow;
|
|
}
|
|
|
|
bp->s.orig_cursor_col = col;
|
|
bp->s.orig_cursor_row = row;
|
|
bp->s.orig_video_page = 0;
|
|
bp->s.orig_video_mode = mode;
|
|
bp->s.orig_video_cols = (UINT8)cols;
|
|
bp->s.orig_video_rows = (UINT8)rows;
|
|
|
|
/* %%TBD - How to do Int 10h calls to get video info? */
|
|
bp->s.orig_ega_bx = 0;
|
|
bp->s.is_vga = 0;
|
|
bp->s.orig_video_points = 0;
|
|
|
|
/* %%TBD - How to do Int 10h calls to get frame buffer info? */
|
|
bp->s.lfb_width = 0;
|
|
bp->s.lfb_height = 0;
|
|
bp->s.lfb_depth = 0;
|
|
bp->s.lfb_base = 0;
|
|
bp->s.lfb_size = 0;
|
|
bp->s.lfb_line_len = 0;
|
|
bp->s.lfb_red_size = 0;
|
|
bp->s.lfb_red_pos = 0;
|
|
bp->s.lfb_green_size = 0;
|
|
bp->s.lfb_green_pos = 0;
|
|
bp->s.lfb_blue_size = 0;
|
|
bp->s.lfb_blue_pos = 0;
|
|
bp->s.lfb_rsvd_size = 0;
|
|
bp->s.lfb_rsvd_pos = 0;
|
|
bp->s.lfb_pages = 0;
|
|
bp->s.vesa_seg = 0;
|
|
bp->s.vesa_off = 0;
|
|
|
|
/*
|
|
* Get memory map description and cookie for ExitBootServices()
|
|
*/
|
|
|
|
if (get_memmap(&mdesc)) {
|
|
ERR_PRT((L"Could not get memory map."));
|
|
free_kmem();
|
|
return -1;
|
|
}
|
|
|
|
*cookie = mdesc.cookie;
|
|
bp->s.efi_mem_map = (UINTN)mdesc.md;
|
|
bp->s.efi_mem_map_size = mdesc.map_size;
|
|
bp->s.efi_mem_desc_size = mdesc.desc_size;
|
|
bp->s.efi_mem_desc_ver = mdesc.desc_version;
|
|
bp->s.efi_sys_tbl = (UINTN)systab;
|
|
|
|
/*
|
|
* my_ia32_boot_params and get ready to slap them into 0x00104c00
|
|
*/
|
|
|
|
efi_ia32_bp.size= sizeof(efi_ia32_bp);
|
|
efi_ia32_bp.command_line = (UINT32) cmdline;
|
|
efi_ia32_bp.efi_sys_tbl = bp->s.efi_sys_tbl;
|
|
efi_ia32_bp.efi_mem_map = bp->s.efi_mem_map;
|
|
efi_ia32_bp.efi_mem_map_size = bp->s.efi_mem_map_size;
|
|
efi_ia32_bp.efi_mem_desc_size = bp->s.efi_mem_desc_size;
|
|
efi_ia32_bp.efi_mem_desc_version = bp->s.efi_mem_desc_ver;
|
|
efi_ia32_bp.initrd_start = (UINTN)initrd->start_addr;
|
|
efi_ia32_bp.initrd_size = initrd->pgcnt * EFI_PAGE_SIZE;
|
|
efi_ia32_bp.loader_start = 0;
|
|
efi_ia32_bp.loader_size = 0;
|
|
efi_ia32_bp.kernel_start = bp->s.kernel_start;
|
|
efi_ia32_bp.kernel_size = kernel_size;
|
|
efi_ia32_bp.num_cols = cols;
|
|
efi_ia32_bp.num_rows = rows;
|
|
efi_ia32_bp.orig_x = col;
|
|
efi_ia32_bp.orig_y = row;
|
|
|
|
|
|
return 0;
|
|
}
|