23d62dd15c
Introduce new bootmem tags to allow more fine grained control over buffer allocation on various platforms. The new tags are: BM_MEM_RAMSTAGE : Memory where any kind of boot firmware resides and that should not be touched by bootmem (by example: stack, TTB, program, ...). BM_MEM_PAYLOAD : Memory where any kind of payload resides and that should not be touched by bootmem. Starting with this commit all bootmem methods will no longer see memory that is used by coreboot as usable RAM. Bootmem changes: * Introduce a weak function to add platform specific memranges. * Mark memory allocated by bootmem as BM_TAG_PAYLOAD. * Assert on failures. * Add _stack and _program as BM_MEM_RAMSTAGE. ARMv7 and ARMv8 specific changes: * Add _ttb and _postram_cbfs_cache as BM_MEM_RAMSTAGE. ARMv7 specific changes: * Add _ttb_subtables as BM_MEM_RAMSTAGE. Change-Id: I0c983ce43616147c519a43edee3b61d54eadbb9a Signed-off-by: Patrick Rudolph <patrick.rudolph@9elements.com> Reviewed-on: https://review.coreboot.org/25383 Tested-by: build bot (Jenkins) <no-reply@coreboot.org> Reviewed-by: Aaron Durbin <adurbin@chromium.org>
546 lines
14 KiB
C
546 lines
14 KiB
C
/*
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* This file is part of the coreboot project.
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*
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* Copyright (C) 2003 Eric W. Biederman <ebiederm@xmission.com>
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* Copyright (C) 2009 Ron Minnich <rminnich@gmail.com>
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* Copyright (C) 2016 George Trudeau <george.trudeau@usherbrooke.ca>
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*
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* This program 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; version 2 of the License.
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*
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* This program 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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#include <commonlib/compression.h>
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#include <commonlib/endian.h>
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#include <console/console.h>
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#include <cpu/cpu.h>
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#include <stdint.h>
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#include <stdlib.h>
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#include <string.h>
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#include <symbols.h>
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#include <cbfs.h>
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#include <lib.h>
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#include <bootmem.h>
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#include <program_loading.h>
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#include <timestamp.h>
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static const unsigned long lb_start = (unsigned long)&_program;
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static const unsigned long lb_end = (unsigned long)&_eprogram;
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struct segment {
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struct segment *next;
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struct segment *prev;
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unsigned long s_dstaddr;
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unsigned long s_srcaddr;
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unsigned long s_memsz;
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unsigned long s_filesz;
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int compression;
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};
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static void segment_insert_before(struct segment *seg, struct segment *new)
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{
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new->next = seg;
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new->prev = seg->prev;
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seg->prev->next = new;
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seg->prev = new;
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}
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static void segment_insert_after(struct segment *seg, struct segment *new)
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{
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new->next = seg->next;
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new->prev = seg;
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seg->next->prev = new;
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seg->next = new;
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}
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/* The problem:
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* Static executables all want to share the same addresses
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* in memory because only a few addresses are reliably present on
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* a machine, and implementing general relocation is hard.
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*
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* The solution:
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* - Allocate a buffer the size of the coreboot image plus additional
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* required space.
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* - Anything that would overwrite coreboot copy into the lower part of
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* the buffer.
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* - After loading an ELF image copy coreboot to the top of the buffer.
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* - Then jump to the loaded image.
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*
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* Benefits:
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* - Nearly arbitrary standalone executables can be loaded.
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* - coreboot is preserved, so it can be returned to.
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* - The implementation is still relatively simple,
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* and much simpler than the general case implemented in kexec.
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*/
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static unsigned long bounce_size, bounce_buffer;
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static void get_bounce_buffer(unsigned long req_size)
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{
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unsigned long lb_size;
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void *buffer;
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/* When the ramstage is relocatable there is no need for a bounce
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* buffer. All payloads should not overlap the ramstage.
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*/
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if (IS_ENABLED(CONFIG_RELOCATABLE_RAMSTAGE) ||
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!arch_supports_bounce_buffer()) {
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bounce_buffer = ~0UL;
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bounce_size = 0;
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return;
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}
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lb_size = lb_end - lb_start;
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/* Plus coreboot size so I have somewhere
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* to place a copy to return to.
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*/
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lb_size = req_size + lb_size;
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buffer = bootmem_allocate_buffer(lb_size);
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printk(BIOS_SPEW, "Bounce Buffer at %p, %lu bytes\n", buffer, lb_size);
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bounce_buffer = (uintptr_t)buffer;
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bounce_size = req_size;
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}
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static int overlaps_coreboot(struct segment *seg)
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{
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unsigned long start, end;
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start = seg->s_dstaddr;
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end = start + seg->s_memsz;
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return !((end <= lb_start) || (start >= lb_end));
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}
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static int relocate_segment(unsigned long buffer, struct segment *seg)
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{
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/* Modify all segments that want to load onto coreboot
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* to load onto the bounce buffer instead.
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*/
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/* ret: 1 : A new segment is inserted before the seg.
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* 0 : A new segment is inserted after the seg, or no new one.
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*/
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unsigned long start, middle, end, ret = 0;
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printk(BIOS_SPEW, "lb: [0x%016lx, 0x%016lx)\n",
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lb_start, lb_end);
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/* I don't conflict with coreboot so get out of here */
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if (!overlaps_coreboot(seg))
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return 0;
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if (!arch_supports_bounce_buffer())
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die("bounce buffer not supported");
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start = seg->s_dstaddr;
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middle = start + seg->s_filesz;
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end = start + seg->s_memsz;
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printk(BIOS_SPEW, "segment: [0x%016lx, 0x%016lx, 0x%016lx)\n",
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start, middle, end);
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if (seg->compression == CBFS_COMPRESS_NONE) {
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/* Slice off a piece at the beginning
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* that doesn't conflict with coreboot.
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*/
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if (start < lb_start) {
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struct segment *new;
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unsigned long len = lb_start - start;
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new = malloc(sizeof(*new));
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*new = *seg;
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new->s_memsz = len;
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seg->s_memsz -= len;
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seg->s_dstaddr += len;
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seg->s_srcaddr += len;
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if (seg->s_filesz > len) {
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new->s_filesz = len;
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seg->s_filesz -= len;
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} else {
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seg->s_filesz = 0;
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}
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/* Order by stream offset */
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segment_insert_before(seg, new);
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/* compute the new value of start */
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start = seg->s_dstaddr;
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printk(BIOS_SPEW,
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" early: [0x%016lx, 0x%016lx, 0x%016lx)\n",
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new->s_dstaddr,
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new->s_dstaddr + new->s_filesz,
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new->s_dstaddr + new->s_memsz);
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ret = 1;
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}
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/* Slice off a piece at the end
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* that doesn't conflict with coreboot
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*/
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if (end > lb_end) {
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unsigned long len = lb_end - start;
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struct segment *new;
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new = malloc(sizeof(*new));
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*new = *seg;
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seg->s_memsz = len;
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new->s_memsz -= len;
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new->s_dstaddr += len;
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new->s_srcaddr += len;
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if (seg->s_filesz > len) {
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seg->s_filesz = len;
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new->s_filesz -= len;
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} else {
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new->s_filesz = 0;
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}
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/* Order by stream offset */
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segment_insert_after(seg, new);
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printk(BIOS_SPEW,
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" late: [0x%016lx, 0x%016lx, 0x%016lx)\n",
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new->s_dstaddr,
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new->s_dstaddr + new->s_filesz,
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new->s_dstaddr + new->s_memsz);
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}
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}
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/* Now retarget this segment onto the bounce buffer */
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/* sort of explanation: the buffer is a 1:1 mapping to coreboot.
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* so you will make the dstaddr be this buffer, and it will get copied
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* later to where coreboot lives.
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*/
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seg->s_dstaddr = buffer + (seg->s_dstaddr - lb_start);
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printk(BIOS_SPEW, " bounce: [0x%016lx, 0x%016lx, 0x%016lx)\n",
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seg->s_dstaddr,
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seg->s_dstaddr + seg->s_filesz,
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seg->s_dstaddr + seg->s_memsz);
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return ret;
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}
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/* Decode a serialized cbfs payload segment
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* from memory into native endianness.
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*/
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static void cbfs_decode_payload_segment(struct cbfs_payload_segment *segment,
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const struct cbfs_payload_segment *src)
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{
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segment->type = read_be32(&src->type);
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segment->compression = read_be32(&src->compression);
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segment->offset = read_be32(&src->offset);
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segment->load_addr = read_be64(&src->load_addr);
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segment->len = read_be32(&src->len);
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segment->mem_len = read_be32(&src->mem_len);
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}
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static int build_self_segment_list(
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struct segment *head,
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struct cbfs_payload *cbfs_payload, uintptr_t *entry)
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{
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struct segment *new;
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struct cbfs_payload_segment *current_segment, *first_segment, segment;
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memset(head, 0, sizeof(*head));
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head->next = head->prev = head;
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first_segment = &cbfs_payload->segments;
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for (current_segment = first_segment;; ++current_segment) {
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printk(BIOS_DEBUG,
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"Loading segment from ROM address 0x%p\n",
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current_segment);
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cbfs_decode_payload_segment(&segment, current_segment);
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switch (segment.type) {
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case PAYLOAD_SEGMENT_PARAMS:
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printk(BIOS_DEBUG, " parameter section (skipped)\n");
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continue;
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case PAYLOAD_SEGMENT_CODE:
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case PAYLOAD_SEGMENT_DATA:
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printk(BIOS_DEBUG, " %s (compression=%x)\n",
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segment.type == PAYLOAD_SEGMENT_CODE
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? "code" : "data", segment.compression);
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new = malloc(sizeof(*new));
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new->s_dstaddr = segment.load_addr;
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new->s_memsz = segment.mem_len;
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new->compression = segment.compression;
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new->s_srcaddr = (uintptr_t)
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((unsigned char *)first_segment)
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+ segment.offset;
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new->s_filesz = segment.len;
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printk(BIOS_DEBUG,
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" New segment dstaddr 0x%lx memsize 0x%lx srcaddr 0x%lx filesize 0x%lx\n",
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new->s_dstaddr, new->s_memsz, new->s_srcaddr,
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new->s_filesz);
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/* Clean up the values */
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if (new->s_filesz > new->s_memsz) {
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new->s_filesz = new->s_memsz;
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printk(BIOS_DEBUG,
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" cleaned up filesize 0x%lx\n",
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new->s_filesz);
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}
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break;
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case PAYLOAD_SEGMENT_BSS:
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printk(BIOS_DEBUG, " BSS 0x%p (%d byte)\n", (void *)
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(intptr_t)segment.load_addr, segment.mem_len);
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new = malloc(sizeof(*new));
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new->s_filesz = 0;
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new->s_srcaddr = (uintptr_t)
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((unsigned char *)first_segment)
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+ segment.offset;
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new->s_dstaddr = segment.load_addr;
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new->s_memsz = segment.mem_len;
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new->compression = CBFS_COMPRESS_NONE;
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break;
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case PAYLOAD_SEGMENT_ENTRY:
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printk(BIOS_DEBUG, " Entry Point 0x%p\n", (void *)
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(intptr_t)segment.load_addr);
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*entry = segment.load_addr;
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/* Per definition, a payload always has the entry point
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* as last segment. Thus, we use the occurrence of the
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* entry point as break condition for the loop.
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* Can we actually just look at the number of section?
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*/
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return 1;
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default:
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/* We found something that we don't know about. Throw
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* hands into the sky and run away!
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*/
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printk(BIOS_EMERG, "Bad segment type %x\n",
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segment.type);
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return -1;
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}
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/* We have found another CODE, DATA or BSS segment */
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/* Insert new segment at the end of the list */
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segment_insert_before(head, new);
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}
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return 1;
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}
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static int payload_targets_usable_ram(struct segment *head)
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{
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const unsigned long one_meg = (1UL << 20);
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struct segment *ptr;
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for (ptr = head->next; ptr != head; ptr = ptr->next) {
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if (bootmem_region_targets_usable_ram(ptr->s_dstaddr,
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ptr->s_memsz))
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continue;
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if (ptr->s_dstaddr < one_meg &&
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(ptr->s_dstaddr + ptr->s_memsz) <= one_meg) {
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printk(BIOS_DEBUG,
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"Payload being loaded at below 1MiB "
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"without region being marked as RAM usable.\n");
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continue;
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}
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/* Payload segment not targeting RAM. */
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printk(BIOS_ERR, "SELF Payload doesn't target RAM:\n");
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printk(BIOS_ERR, "Failed Segment: 0x%lx, %lu bytes\n",
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ptr->s_dstaddr, ptr->s_memsz);
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bootmem_dump_ranges();
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return 0;
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}
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return 1;
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}
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static int load_self_segments(struct segment *head, struct prog *payload,
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bool check_regions)
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{
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struct segment *ptr;
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unsigned long bounce_high = lb_end;
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if (check_regions) {
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if (!payload_targets_usable_ram(head))
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return 0;
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}
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for (ptr = head->next; ptr != head; ptr = ptr->next) {
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/*
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* Add segments to bootmem memory map before a bounce buffer is
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* allocated so that there aren't conflicts with the actual
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* payload.
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*/
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if (check_regions) {
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bootmem_add_range(ptr->s_dstaddr, ptr->s_memsz,
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BM_MEM_PAYLOAD);
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}
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if (!overlaps_coreboot(ptr))
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continue;
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if (ptr->s_dstaddr + ptr->s_memsz > bounce_high)
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bounce_high = ptr->s_dstaddr + ptr->s_memsz;
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}
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get_bounce_buffer(bounce_high - lb_start);
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if (!bounce_buffer) {
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printk(BIOS_ERR, "Could not find a bounce buffer...\n");
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return 0;
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}
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for (ptr = head->next; ptr != head; ptr = ptr->next) {
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unsigned char *dest, *src, *middle, *end;
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size_t len, memsz;
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printk(BIOS_DEBUG,
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"Loading Segment: addr: 0x%016lx memsz: 0x%016lx filesz: 0x%016lx\n",
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ptr->s_dstaddr, ptr->s_memsz, ptr->s_filesz);
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/* Modify the segment to load onto the bounce_buffer if
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* necessary.
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*/
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if (relocate_segment(bounce_buffer, ptr)) {
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ptr = (ptr->prev)->prev;
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continue;
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}
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printk(BIOS_DEBUG,
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"Post relocation: addr: 0x%016lx memsz: 0x%016lx filesz: 0x%016lx\n",
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ptr->s_dstaddr, ptr->s_memsz, ptr->s_filesz);
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/* Compute the boundaries of the segment */
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dest = (unsigned char *)(ptr->s_dstaddr);
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src = (unsigned char *)(ptr->s_srcaddr);
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len = ptr->s_filesz;
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memsz = ptr->s_memsz;
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end = dest + memsz;
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/* Copy data from the initial buffer */
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switch (ptr->compression) {
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case CBFS_COMPRESS_LZMA: {
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printk(BIOS_DEBUG, "using LZMA\n");
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timestamp_add_now(TS_START_ULZMA);
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len = ulzman(src, len, dest, memsz);
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timestamp_add_now(TS_END_ULZMA);
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if (!len) /* Decompression Error. */
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return 0;
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break;
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}
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case CBFS_COMPRESS_LZ4: {
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printk(BIOS_DEBUG, "using LZ4\n");
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timestamp_add_now(TS_START_ULZ4F);
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len = ulz4fn(src, len, dest, memsz);
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timestamp_add_now(TS_END_ULZ4F);
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if (!len) /* Decompression Error. */
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return 0;
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break;
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}
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case CBFS_COMPRESS_NONE: {
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printk(BIOS_DEBUG, "it's not compressed!\n");
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memcpy(dest, src, len);
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break;
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}
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default:
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printk(BIOS_INFO, "CBFS: Unknown compression type %d\n",
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ptr->compression);
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return -1;
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}
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/* Calculate middle after any changes to len. */
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middle = dest + len;
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printk(BIOS_SPEW, "[ 0x%08lx, %08lx, 0x%08lx) <- %08lx\n",
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(unsigned long)dest,
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(unsigned long)middle,
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(unsigned long)end,
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(unsigned long)src);
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/* Zero the extra bytes between middle & end */
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if (middle < end) {
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printk(BIOS_DEBUG,
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"Clearing Segment: addr: 0x%016lx memsz: 0x%016lx\n",
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(unsigned long)middle,
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(unsigned long)(end - middle));
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/* Zero the extra bytes */
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memset(middle, 0, end - middle);
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}
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/* Copy the data that's outside the area that shadows ramstage
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*/
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printk(BIOS_DEBUG, "dest %p, end %p, bouncebuffer %lx\n", dest,
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end, bounce_buffer);
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if ((unsigned long)end > bounce_buffer) {
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if ((unsigned long)dest < bounce_buffer) {
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unsigned char *from = dest;
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unsigned char *to = (unsigned char *)
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(lb_start - (bounce_buffer
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- (unsigned long)dest));
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unsigned long amount = bounce_buffer
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- (unsigned long)dest;
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printk(BIOS_DEBUG,
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"move prefix around: from %p, to %p, amount: %lx\n",
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from, to, amount);
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memcpy(to, from, amount);
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}
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if ((unsigned long)end > bounce_buffer + (lb_end
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- lb_start)) {
|
|
unsigned long from = bounce_buffer + (lb_end
|
|
- lb_start);
|
|
unsigned long to = lb_end;
|
|
unsigned long amount =
|
|
(unsigned long)end - from;
|
|
printk(BIOS_DEBUG,
|
|
"move suffix around: from %lx, to %lx, amount: %lx\n",
|
|
from, to, amount);
|
|
memcpy((char *)to, (char *)from, amount);
|
|
}
|
|
}
|
|
|
|
/*
|
|
* Each architecture can perform additonal operations
|
|
* on the loaded segment
|
|
*/
|
|
prog_segment_loaded((uintptr_t)dest, ptr->s_memsz,
|
|
ptr->next == head ? SEG_FINAL : 0);
|
|
}
|
|
|
|
return 1;
|
|
}
|
|
|
|
void *selfload(struct prog *payload, bool check_regions)
|
|
{
|
|
uintptr_t entry = 0;
|
|
struct segment head;
|
|
void *data;
|
|
|
|
data = rdev_mmap_full(prog_rdev(payload));
|
|
|
|
if (data == NULL)
|
|
return NULL;
|
|
|
|
/* Preprocess the self segments */
|
|
if (!build_self_segment_list(&head, data, &entry))
|
|
goto out;
|
|
|
|
/* Load the segments */
|
|
if (!load_self_segments(&head, payload, check_regions))
|
|
goto out;
|
|
|
|
printk(BIOS_SPEW, "Loaded segments\n");
|
|
|
|
rdev_munmap(prog_rdev(payload), data);
|
|
|
|
/* Update the payload's area with the bounce buffer information. */
|
|
prog_set_area(payload, (void *)(uintptr_t)bounce_buffer, bounce_size);
|
|
|
|
return (void *)entry;
|
|
|
|
out:
|
|
rdev_munmap(prog_rdev(payload), data);
|
|
return NULL;
|
|
}
|