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544 lines
14 KiB
544 lines
14 KiB
/* |
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* bootstub 32 bit entry setting routings |
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* |
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* Copyright (C) 2008-2010 Intel Corporation. |
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* Author: Alek Du <alek.du@intel.com> |
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* |
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* This program is free software; you can redistribute it and/or modify it |
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* under the terms and conditions of the GNU General Public License, |
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* version 2, as published by the Free Software Foundation. |
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* |
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* This program is distributed in the hope it will be useful, but WITHOUT |
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* ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or |
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* FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License for |
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* more details. |
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* |
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* You should have received a copy of the GNU General Public License along with |
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* this program; if not, write to the Free Software Foundation, Inc., |
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* 51 Franklin St - Fifth Floor, Boston, MA 02110-1301 USA. |
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* |
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*/ |
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|
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#include "types.h" |
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#include "bootstub.h" |
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#include "bootparam.h" |
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#include "spi-uart.h" |
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#include "ssp-uart.h" |
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#include "mb.h" |
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#include "sfi.h" |
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#include <bootimg.h> |
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#include <stdint.h> |
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#include <stddef.h> |
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#include "imr_toc.h" |
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#define PAGE_SIZE_MASK 0xFFF |
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#define MASK_1K 0x3FF |
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#define PAGE_ALIGN_FWD(x) ((x + PAGE_SIZE_MASK) & ~PAGE_SIZE_MASK) |
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#define PAGE_ALIGN_BACK(x) ((x) & ~PAGE_SIZE_MASK) |
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#define IMR_START_ADDRESS(x) (((x) & 0xFFFFFFFC) << 8) |
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#define IMR_END_ADDRESS(x) ((x == 0) ? (x) : ((((x) & 0xFFFFFFFC) << 8) | MASK_1K)) |
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#define IMR6_START_ADDRESS IMR_START_ADDRESS(*((u32 *)0xff108160)) |
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#define IMR6_END_ADDRESS IMR_END_ADDRESS(*((u32 *)0xff108164)) |
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#define IMR7_START_ADDRESS IMR_START_ADDRESS(*((u32 *)0xff108170)) |
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#define IMR7_END_ADDRESS IMR_END_ADDRESS(*((u32 *)0xff108174)) |
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#define FATAL_HANG() { asm("cli"); while (1) { asm("nop"); } } |
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extern int no_uart_used; |
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extern imr_toc_t imr6_toc; |
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static u32 imr7_size; |
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static u32 sps_load_adrs; |
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static memory_map_t mb_mmap[E820MAX]; |
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u32 mb_magic, mb_info; |
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struct gdt_ptr { |
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u16 len; |
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u32 ptr; |
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} __attribute__((packed)); |
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static void *memcpy(void *dest, const void *src, size_t count) |
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{ |
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char *tmp = dest; |
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const char *s = src; |
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size_t _count = count / 4; |
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while (_count--) { |
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*(long *)tmp = *(long *)s; |
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tmp += 4; |
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s += 4; |
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} |
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count %= 4; |
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while (count--) |
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*tmp++ = *s++; |
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return dest; |
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} |
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static void *memset(void *s, unsigned char c, size_t count) |
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{ |
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char *xs = s; |
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size_t _count = count / 4; |
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unsigned long _c = c << 24 | c << 16 | c << 8 | c; |
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while (_count--) { |
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*(long *)xs = _c; |
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xs += 4; |
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} |
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count %= 4; |
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while (count--) |
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*xs++ = c; |
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return s; |
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} |
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static size_t strnlen(const char *s, size_t maxlen) |
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{ |
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const char *es = s; |
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while (*es && maxlen) { |
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es++; |
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maxlen--; |
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} |
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return (es - s); |
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} |
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static const char *strnchr(const char *s, int c, size_t maxlen) |
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{ |
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int i; |
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for (i = 0; i < maxlen && *s != c; s++, i++) |
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; |
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return s; |
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} |
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int strncmp(const char *cs, const char *ct, size_t count) |
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{ |
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unsigned char c1, c2; |
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while (count) { |
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c1 = *cs++; |
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c2 = *ct++; |
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if (c1 != c2) |
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return c1 < c2 ? -1 : 1; |
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if (!c1) |
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break; |
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count--; |
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} |
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return 0; |
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} |
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static inline int is_image_aosp(unsigned char *magic) |
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{ |
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return !strncmp((char *)magic, (char *)BOOT_MAGIC, sizeof(BOOT_MAGIC)-1); |
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} |
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static void setup_boot_params(struct boot_params *bp, struct setup_header *sh) |
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{ |
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bp->screen_info.orig_video_mode = 0; |
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bp->screen_info.orig_video_lines = 0; |
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bp->screen_info.orig_video_cols = 0; |
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bp->alt_mem_k = 128*1024; // hard coded 128M mem here, since SFI will override it |
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memcpy(&bp->hdr, sh, sizeof (struct setup_header)); |
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bp->hdr.type_of_loader = 0xff; //bootstub is unknown bootloader for kernel :) |
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bp->hdr.hardware_subarch = X86_SUBARCH_MRST; |
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} |
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static u32 bzImage_setup(struct boot_params *bp, struct setup_header *sh) |
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{ |
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void *cmdline = (void *)BOOT_CMDLINE_OFFSET; |
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struct boot_img_hdr *aosp = (struct boot_img_hdr *)AOSP_HEADER_ADDRESS; |
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size_t cmdline_len, extra_cmdline_len; |
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u8 *initramfs, *ptr; |
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if (is_image_aosp(aosp->magic)) { |
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ptr = (u8*)aosp->kernel_addr; |
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cmdline_len = strnlen((const char *)aosp->cmdline, sizeof(aosp->cmdline)); |
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extra_cmdline_len = strnlen((const char *)aosp->extra_cmdline, sizeof(aosp->extra_cmdline)); |
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/* |
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* Copy the command + extra command line to be after bootparams |
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* so that it won't be overwritten by the kernel executable. |
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*/ |
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memset(cmdline, 0, sizeof(aosp->cmdline) + sizeof(aosp->extra_cmdline)); |
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memcpy(cmdline, (const void *)aosp->cmdline, cmdline_len); |
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memcpy(cmdline + cmdline_len, (const void *)aosp->extra_cmdline, extra_cmdline_len); |
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bp->hdr.ramdisk_size = aosp->ramdisk_size; |
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initramfs = (u8 *)aosp->ramdisk_addr; |
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} else { |
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ptr = (u8*)BZIMAGE_OFFSET; |
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cmdline_len = strnlen((const char *)CMDLINE_OFFSET, CMDLINE_SIZE); |
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/* |
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* Copy the command line to be after bootparams so that it won't be |
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* overwritten by the kernel executable. |
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*/ |
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memset(cmdline, 0, CMDLINE_SIZE); |
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memcpy(cmdline, (const void *)CMDLINE_OFFSET, cmdline_len); |
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bp->hdr.ramdisk_size = *(u32 *)INITRD_SIZE_OFFSET; |
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initramfs = (u8 *)BZIMAGE_OFFSET + *(u32 *)BZIMAGE_SIZE_OFFSET; |
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} |
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bp->hdr.cmd_line_ptr = BOOT_CMDLINE_OFFSET; |
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bp->hdr.cmdline_size = cmdline_len; |
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#ifndef BUILD_RAMDUMP |
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bp->hdr.ramdisk_image = (bp->alt_mem_k*1024 - bp->hdr.ramdisk_size) & 0xFFFFF000; |
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if (*initramfs) { |
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bs_printk("Relocating initramfs to high memory ...\n"); |
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memcpy((u8*)bp->hdr.ramdisk_image, initramfs, bp->hdr.ramdisk_size); |
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} else { |
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bs_printk("Won't relocate initramfs, are you in SLE?\n"); |
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} |
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#else |
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bp->hdr.ramdisk_image = (u32) initramfs; |
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#endif |
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while (1){ |
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if (*(u32 *)ptr == SETUP_SIGNATURE && *(u32 *)(ptr+4) == 0) |
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break; |
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ptr++; |
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} |
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ptr+=4; |
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return (((unsigned int)ptr+511)/512)*512; |
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} |
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static inline void cpuid(u32 op, u32 regs[4]) |
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{ |
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__asm__ volatile ( |
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"mov %%ebx, %%edi\n" |
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"cpuid\n" |
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"xchg %%edi, %%ebx\n" |
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: "=a"(regs[0]), "=D"(regs[1]), "=c"(regs[2]), "=d"(regs[3]) |
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: "a"(op) |
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); |
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} |
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enum cpuid_regs { |
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CR_EAX = 0, |
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CR_ECX, |
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CR_EDX, |
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CR_EBX |
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}; |
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int mid_identify_cpu(void) |
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{ |
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u32 regs[4]; |
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cpuid(1, regs); |
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switch ( regs[CR_EAX] & CPUID_MASK ) { |
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case PENWELL_FAMILY: |
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return MID_CPU_CHIP_PENWELL; |
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case CLOVERVIEW_FAMILY: |
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return MID_CPU_CHIP_CLOVERVIEW; |
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case VALLEYVIEW2_FAMILY: |
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return MID_CPU_CHIP_VALLEYVIEW2; |
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case TANGIER_FAMILY: |
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return MID_CPU_CHIP_TANGIER; |
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case ANNIEDALE_FAMILY: |
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return MID_CPU_CHIP_ANNIEDALE; |
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default: |
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return MID_CPU_CHIP_OTHER; |
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} |
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} |
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static void setup_spi(void) |
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{ |
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if (!(*(int *)SPI_TYPE)) { |
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switch ( mid_identify_cpu() ) { |
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case MID_CPU_CHIP_PENWELL: |
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*(int *)SPI_TYPE = SPI_1; |
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bs_printk("PNW detected\n"); |
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break; |
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case MID_CPU_CHIP_CLOVERVIEW: |
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*(int *)SPI_TYPE = SPI_1; |
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bs_printk("CLV detected\n"); |
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break; |
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case MID_CPU_CHIP_TANGIER: |
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*(int *)SPI_TYPE = SPI_2; |
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bs_printk("MRD detected\n"); |
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break; |
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case MID_CPU_CHIP_ANNIEDALE: |
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*(int *)SPI_TYPE = SPI_2; |
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bs_printk("ANN detected\n"); |
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break; |
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case MID_CPU_CHIP_VALLEYVIEW2: |
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case MID_CPU_CHIP_OTHER: |
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default: |
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no_uart_used = 1; |
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} |
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} |
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} |
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static void setup_gdt(void) |
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{ |
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static const u64 boot_gdt[] __attribute__((aligned(16))) = { |
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/* CS: code, read/execute, 4 GB, base 0 */ |
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[GDT_ENTRY_BOOT_CS] = GDT_ENTRY(0xc09b, 0, 0xfffff), |
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/* DS: data, read/write, 4 GB, base 0 */ |
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[GDT_ENTRY_BOOT_DS] = GDT_ENTRY(0xc093, 0, 0xfffff), |
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}; |
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static struct gdt_ptr gdt; |
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gdt.len = sizeof(boot_gdt)-1; |
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gdt.ptr = (u32)&boot_gdt; |
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asm volatile("lgdtl %0" : : "m" (gdt)); |
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} |
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static void setup_idt(void) |
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{ |
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static const struct gdt_ptr null_idt = {0, 0}; |
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asm volatile("lidtl %0" : : "m" (null_idt)); |
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} |
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static void vxe_fw_setup(void) |
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{ |
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u8 *vxe_fw_image; |
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u32 vxe_fw_size; |
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u32 vxe_fw_load_adrs; |
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vxe_fw_size = *(u32*)VXE_FW_SIZE_OFFSET; |
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/* do we have a VXE FW image? */ |
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if (vxe_fw_size == 0) |
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return; |
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/* Do we have enough room to load the image? */ |
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if (vxe_fw_size > imr6_toc.entries[IMR_TOC_ENTRY_VXE_FW].size) { |
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bs_printk("FATAL ERROR: VXE FW image size is too large for IMR\n"); |
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FATAL_HANG(); |
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} |
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vxe_fw_image = (u8 *)( |
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BZIMAGE_OFFSET |
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+ *(u32 *)BZIMAGE_SIZE_OFFSET |
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+ *(u32 *)INITRD_SIZE_OFFSET |
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); |
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vxe_fw_load_adrs = IMR6_START_ADDRESS + imr6_toc.entries[IMR_TOC_ENTRY_VXE_FW].start_offset; |
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memcpy((u8 *)vxe_fw_load_adrs, vxe_fw_image, vxe_fw_size); |
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} |
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static void load_imr_toc(u32 imr, u32 imrsize, imr_toc_t *toc, u32 tocsize) |
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{ |
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if (imr == 0 || imrsize == 0 || toc == NULL || tocsize == 0 || imrsize < tocsize ) |
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{ |
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bs_printk("FATAL ERROR: TOC size is too large for IMR\n"); |
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FATAL_HANG(); |
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} |
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memcpy((u8 *)imr, (u8 *)toc, tocsize); |
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} |
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static u32 xen_multiboot_setup(void) |
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{ |
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u32 *magic, *xen_image, i; |
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char *src, *dst; |
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u32 xen_size; |
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u32 xen_jump_adrs; |
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static module_t modules[3]; |
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static multiboot_info_t mb = { |
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.flags = MBI_CMDLINE | MBI_MODULES | MBI_MEMMAP | MBI_DRIVES, |
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.mmap_addr = (u32)mb_mmap, |
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.mods_count = 3, |
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.mods_addr = (u32)modules, |
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}; |
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xen_size = *(u32 *)XEN_SIZE_OFFSET; |
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/* do we have a xen image? */ |
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if (xen_size == 0) { |
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return 0; |
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} |
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/* Compute the actual offset of the Xen image */ |
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xen_image = (u32*)( |
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BZIMAGE_OFFSET |
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+ *(u32 *)BZIMAGE_SIZE_OFFSET |
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+ *(u32 *)INITRD_SIZE_OFFSET |
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+ *(u32 *)VXE_FW_SIZE_OFFSET |
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+ *(u32 *)SEC_PLAT_SVCS_SIZE_OFFSET |
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); |
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/* the multiboot signature should be located in the first 8192 bytes */ |
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for (magic = xen_image; magic < xen_image + 2048; magic++) |
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if (*magic == MULTIBOOT_HEADER_MAGIC) |
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break; |
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if (*magic != MULTIBOOT_HEADER_MAGIC) { |
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return 0; |
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} |
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mb.cmdline = (u32)strnchr((char *)CMDLINE_OFFSET, '$', CMDLINE_SIZE) + 1; |
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dst = (char *)mb.cmdline + strnlen((const char *)mb.cmdline, CMDLINE_SIZE) - 1; |
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*dst = ' '; |
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dst++; |
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src = (char *)CMDLINE_OFFSET; |
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for (i = 0 ;i < strnlen((const char *)CMDLINE_OFFSET, CMDLINE_SIZE);i++) { |
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if (!strncmp(src, "capfreq=", 8)) { |
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while (*src != ' ' && *src != 0) { |
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*dst = *src; |
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dst++; |
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src++; |
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} |
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break; |
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} |
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src++; |
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} |
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/* fill in the multiboot module information: dom0 kernel + initrd + Platform Services Image */ |
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modules[0].mod_start = BZIMAGE_OFFSET; |
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modules[0].mod_end = BZIMAGE_OFFSET + *(u32 *)BZIMAGE_SIZE_OFFSET; |
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modules[0].string = CMDLINE_OFFSET; |
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modules[1].mod_start = modules[0].mod_end ; |
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modules[1].mod_end = modules[1].mod_start + *(u32 *)INITRD_SIZE_OFFSET; |
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modules[1].string = 0; |
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modules[2].mod_start = sps_load_adrs; |
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modules[2].mod_end = modules[2].mod_start + *(u32 *)SEC_PLAT_SVCS_SIZE_OFFSET; |
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modules[2].string = 0; |
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mb.drives_addr = IMR6_START_ADDRESS + imr6_toc.entries[IMR_TOC_ENTRY_XEN_EXTRA].start_offset; |
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mb.drives_length = imr6_toc.entries[IMR_TOC_ENTRY_XEN_EXTRA].size; |
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for(i = 0; i < E820MAX; i++) |
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if (!mb_mmap[i].size) |
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break; |
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mb.mmap_length = i * sizeof(memory_map_t); |
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/* relocate xen to start address */ |
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if (xen_size > imr7_size) { |
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bs_printk("FATAL ERROR: Xen image size is too large for IMR\n"); |
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FATAL_HANG(); |
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} |
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xen_jump_adrs = IMR7_START_ADDRESS; |
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memcpy((u8 *)xen_jump_adrs, xen_image, xen_size); |
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mb_info = (u32)&mb; |
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mb_magic = MULTIBOOT_BOOTLOADER_MAGIC; |
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return (u32)xen_jump_adrs; |
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} |
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static void sec_plat_svcs_setup(void) |
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{ |
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u8 *sps_image; |
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u32 sps_size; |
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sps_size = PAGE_ALIGN_FWD(*(u32*)SEC_PLAT_SVCS_SIZE_OFFSET); |
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/* do we have a SPS image? */ |
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if (sps_size == 0) |
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return; |
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/* Do we have enough room to load the image? */ |
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if (sps_size > imr7_size) { |
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bs_printk("FATAL ERROR: SPS image size is too large for IMR\n"); |
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FATAL_HANG(); |
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} |
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sps_image = (u8 *)( |
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BZIMAGE_OFFSET |
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+ *(u32 *)BZIMAGE_SIZE_OFFSET |
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+ *(u32 *)INITRD_SIZE_OFFSET |
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+ *(u32 *)VXE_FW_SIZE_OFFSET |
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); |
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/* load SPS image (with assumed CHAABI Mailboxes suffixed) */ |
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/* at bottom of IMR7 */ |
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/* Must be page-aligned or Xen will panic */ |
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sps_load_adrs = PAGE_ALIGN_BACK(IMR7_START_ADDRESS + imr7_size - sps_size); |
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memcpy((u8 *)sps_load_adrs, sps_image, sps_size); |
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/* reduce remaining size for Xen image size check */ |
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imr7_size -= sps_size; |
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} |
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int bootstub(void) |
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{ |
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u32 jmp; |
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struct boot_img_hdr *aosp = (struct boot_img_hdr *)AOSP_HEADER_ADDRESS; |
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struct boot_params *bp = (struct boot_params *)BOOT_PARAMS_OFFSET; |
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struct setup_header *sh; |
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u32 imr_size; |
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int nr_entries; |
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if (is_image_aosp(aosp->magic)) { |
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sh = (struct setup_header *)((unsigned int)aosp->kernel_addr + \ |
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(unsigned int)offsetof(struct boot_params,hdr)); |
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/* disable the bs_printk through SPI/UART */ |
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*(int *)SPI_UART_SUPPRESSION = 1; |
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*(int *)SPI_TYPE = SPI_2; |
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} else |
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sh = (struct setup_header *)SETUP_HEADER_OFFSET; |
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|
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setup_idt(); |
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setup_gdt(); |
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setup_spi(); |
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bs_printk("Bootstub Version: 1.4 ...\n"); |
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|
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memset(bp, 0, sizeof (struct boot_params)); |
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if (mid_identify_cpu() == MID_CPU_CHIP_VALLEYVIEW2) { |
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nr_entries = get_e820_by_bios(bp->e820_map); |
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bp->e820_entries = (nr_entries > 0) ? nr_entries : 0; |
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} else { |
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sfi_setup_mmap(bp, mb_mmap); |
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} |
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|
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if ((mid_identify_cpu() != MID_CPU_CHIP_TANGIER) && (mid_identify_cpu() != MID_CPU_CHIP_ANNIEDALE)) { |
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if ((IMR6_END_ADDRESS > IMR6_START_ADDRESS) && (IMR7_END_ADDRESS > IMR7_START_ADDRESS)) { |
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imr_size = PAGE_ALIGN_FWD(IMR6_END_ADDRESS - IMR6_START_ADDRESS); |
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load_imr_toc(IMR6_START_ADDRESS, imr_size, &imr6_toc, sizeof(imr6_toc)); |
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vxe_fw_setup(); |
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sfi_add_e820_entry(bp, mb_mmap, IMR6_START_ADDRESS, imr_size, E820_RESERVED); |
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|
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imr7_size = PAGE_ALIGN_FWD(IMR7_END_ADDRESS - IMR7_START_ADDRESS); |
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sec_plat_svcs_setup(); |
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sfi_add_e820_entry(bp, mb_mmap, IMR7_START_ADDRESS, imr7_size, E820_RESERVED); |
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} else { |
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*(u32 *)XEN_SIZE_OFFSET = 0; /* Don't allow Xen to boot */ |
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} |
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} else { |
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*(u32 *)XEN_SIZE_OFFSET = 0; /* Don't allow Xen to boot */ |
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} |
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|
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setup_boot_params(bp, sh); |
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|
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jmp = xen_multiboot_setup(); |
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if (!jmp) { |
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bs_printk("Using bzImage to boot\n"); |
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jmp = bzImage_setup(bp, sh); |
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} else |
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bs_printk("Using multiboot image to boot\n"); |
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|
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bs_printk("Jump to kernel 32bit entry\n"); |
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return jmp; |
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} |
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|
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void bs_printk(const char *str) |
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{ |
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if (*(int *)SPI_UART_SUPPRESSION) |
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return; |
|
|
|
switch (*(int *)SPI_TYPE) { |
|
|
|
case SPI_1: |
|
bs_spi_printk(str); |
|
break; |
|
|
|
case SPI_2: |
|
bs_ssp_printk(str); |
|
break; |
|
} |
|
}
|
|
|