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https://github.com/AuxXxilium/linux_dsm_epyc7002.git
synced 2024-12-28 07:55:25 +07:00
c6866d7238
The relocate_kernel() function will be generalized and used by all architectures, as they all have similar requirements. Signed-off-by: Roy Franz <roy.franz@linaro.org> Signed-off-by: Matt Fleming <matt.fleming@intel.com>
808 lines
19 KiB
C
808 lines
19 KiB
C
/* -----------------------------------------------------------------------
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*
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* Copyright 2011 Intel Corporation; author Matt Fleming
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*
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* This file is part of the Linux kernel, and is made available under
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* the terms of the GNU General Public License version 2.
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*
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* ----------------------------------------------------------------------- */
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#include <linux/efi.h>
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#include <linux/pci.h>
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#include <asm/efi.h>
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#include <asm/setup.h>
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#include <asm/desc.h>
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#undef memcpy /* Use memcpy from misc.c */
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#include "eboot.h"
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static efi_system_table_t *sys_table;
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#include "../../../../drivers/firmware/efi/efi-stub-helper.c"
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static void find_bits(unsigned long mask, u8 *pos, u8 *size)
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{
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u8 first, len;
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first = 0;
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len = 0;
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if (mask) {
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while (!(mask & 0x1)) {
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mask = mask >> 1;
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first++;
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}
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while (mask & 0x1) {
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mask = mask >> 1;
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len++;
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}
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}
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*pos = first;
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*size = len;
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}
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static efi_status_t setup_efi_pci(struct boot_params *params)
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{
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efi_pci_io_protocol *pci;
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efi_status_t status;
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void **pci_handle;
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efi_guid_t pci_proto = EFI_PCI_IO_PROTOCOL_GUID;
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unsigned long nr_pci, size = 0;
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int i;
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struct setup_data *data;
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data = (struct setup_data *)(unsigned long)params->hdr.setup_data;
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while (data && data->next)
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data = (struct setup_data *)(unsigned long)data->next;
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status = efi_call_phys5(sys_table->boottime->locate_handle,
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EFI_LOCATE_BY_PROTOCOL, &pci_proto,
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NULL, &size, pci_handle);
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if (status == EFI_BUFFER_TOO_SMALL) {
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status = efi_call_phys3(sys_table->boottime->allocate_pool,
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EFI_LOADER_DATA, size, &pci_handle);
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if (status != EFI_SUCCESS)
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return status;
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status = efi_call_phys5(sys_table->boottime->locate_handle,
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EFI_LOCATE_BY_PROTOCOL, &pci_proto,
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NULL, &size, pci_handle);
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}
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if (status != EFI_SUCCESS)
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goto free_handle;
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nr_pci = size / sizeof(void *);
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for (i = 0; i < nr_pci; i++) {
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void *h = pci_handle[i];
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uint64_t attributes;
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struct pci_setup_rom *rom;
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status = efi_call_phys3(sys_table->boottime->handle_protocol,
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h, &pci_proto, &pci);
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if (status != EFI_SUCCESS)
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continue;
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if (!pci)
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continue;
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#ifdef CONFIG_X86_64
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status = efi_call_phys4(pci->attributes, pci,
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EfiPciIoAttributeOperationGet, 0,
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&attributes);
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#else
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status = efi_call_phys5(pci->attributes, pci,
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EfiPciIoAttributeOperationGet, 0, 0,
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&attributes);
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#endif
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if (status != EFI_SUCCESS)
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continue;
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if (!pci->romimage || !pci->romsize)
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continue;
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size = pci->romsize + sizeof(*rom);
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status = efi_call_phys3(sys_table->boottime->allocate_pool,
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EFI_LOADER_DATA, size, &rom);
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if (status != EFI_SUCCESS)
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continue;
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rom->data.type = SETUP_PCI;
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rom->data.len = size - sizeof(struct setup_data);
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rom->data.next = 0;
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rom->pcilen = pci->romsize;
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status = efi_call_phys5(pci->pci.read, pci,
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EfiPciIoWidthUint16, PCI_VENDOR_ID,
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1, &(rom->vendor));
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if (status != EFI_SUCCESS)
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goto free_struct;
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status = efi_call_phys5(pci->pci.read, pci,
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EfiPciIoWidthUint16, PCI_DEVICE_ID,
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1, &(rom->devid));
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if (status != EFI_SUCCESS)
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goto free_struct;
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status = efi_call_phys5(pci->get_location, pci,
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&(rom->segment), &(rom->bus),
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&(rom->device), &(rom->function));
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if (status != EFI_SUCCESS)
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goto free_struct;
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memcpy(rom->romdata, pci->romimage, pci->romsize);
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if (data)
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data->next = (unsigned long)rom;
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else
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params->hdr.setup_data = (unsigned long)rom;
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data = (struct setup_data *)rom;
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continue;
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free_struct:
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efi_call_phys1(sys_table->boottime->free_pool, rom);
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}
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free_handle:
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efi_call_phys1(sys_table->boottime->free_pool, pci_handle);
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return status;
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}
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/*
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* See if we have Graphics Output Protocol
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*/
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static efi_status_t setup_gop(struct screen_info *si, efi_guid_t *proto,
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unsigned long size)
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{
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struct efi_graphics_output_protocol *gop, *first_gop;
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struct efi_pixel_bitmask pixel_info;
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unsigned long nr_gops;
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efi_status_t status;
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void **gop_handle;
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u16 width, height;
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u32 fb_base, fb_size;
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u32 pixels_per_scan_line;
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int pixel_format;
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int i;
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status = efi_call_phys3(sys_table->boottime->allocate_pool,
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EFI_LOADER_DATA, size, &gop_handle);
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if (status != EFI_SUCCESS)
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return status;
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status = efi_call_phys5(sys_table->boottime->locate_handle,
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EFI_LOCATE_BY_PROTOCOL, proto,
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NULL, &size, gop_handle);
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if (status != EFI_SUCCESS)
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goto free_handle;
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first_gop = NULL;
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nr_gops = size / sizeof(void *);
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for (i = 0; i < nr_gops; i++) {
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struct efi_graphics_output_mode_info *info;
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efi_guid_t conout_proto = EFI_CONSOLE_OUT_DEVICE_GUID;
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bool conout_found = false;
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void *dummy;
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void *h = gop_handle[i];
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status = efi_call_phys3(sys_table->boottime->handle_protocol,
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h, proto, &gop);
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if (status != EFI_SUCCESS)
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continue;
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status = efi_call_phys3(sys_table->boottime->handle_protocol,
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h, &conout_proto, &dummy);
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if (status == EFI_SUCCESS)
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conout_found = true;
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status = efi_call_phys4(gop->query_mode, gop,
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gop->mode->mode, &size, &info);
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if (status == EFI_SUCCESS && (!first_gop || conout_found)) {
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/*
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* Systems that use the UEFI Console Splitter may
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* provide multiple GOP devices, not all of which are
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* backed by real hardware. The workaround is to search
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* for a GOP implementing the ConOut protocol, and if
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* one isn't found, to just fall back to the first GOP.
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*/
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width = info->horizontal_resolution;
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height = info->vertical_resolution;
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fb_base = gop->mode->frame_buffer_base;
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fb_size = gop->mode->frame_buffer_size;
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pixel_format = info->pixel_format;
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pixel_info = info->pixel_information;
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pixels_per_scan_line = info->pixels_per_scan_line;
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/*
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* Once we've found a GOP supporting ConOut,
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* don't bother looking any further.
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*/
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first_gop = gop;
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if (conout_found)
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break;
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}
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}
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/* Did we find any GOPs? */
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if (!first_gop)
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goto free_handle;
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/* EFI framebuffer */
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si->orig_video_isVGA = VIDEO_TYPE_EFI;
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si->lfb_width = width;
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si->lfb_height = height;
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si->lfb_base = fb_base;
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si->pages = 1;
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if (pixel_format == PIXEL_RGB_RESERVED_8BIT_PER_COLOR) {
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si->lfb_depth = 32;
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si->lfb_linelength = pixels_per_scan_line * 4;
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si->red_size = 8;
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si->red_pos = 0;
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si->green_size = 8;
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si->green_pos = 8;
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si->blue_size = 8;
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si->blue_pos = 16;
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si->rsvd_size = 8;
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si->rsvd_pos = 24;
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} else if (pixel_format == PIXEL_BGR_RESERVED_8BIT_PER_COLOR) {
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si->lfb_depth = 32;
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si->lfb_linelength = pixels_per_scan_line * 4;
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si->red_size = 8;
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si->red_pos = 16;
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si->green_size = 8;
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si->green_pos = 8;
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si->blue_size = 8;
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si->blue_pos = 0;
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si->rsvd_size = 8;
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si->rsvd_pos = 24;
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} else if (pixel_format == PIXEL_BIT_MASK) {
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find_bits(pixel_info.red_mask, &si->red_pos, &si->red_size);
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find_bits(pixel_info.green_mask, &si->green_pos,
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&si->green_size);
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find_bits(pixel_info.blue_mask, &si->blue_pos, &si->blue_size);
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find_bits(pixel_info.reserved_mask, &si->rsvd_pos,
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&si->rsvd_size);
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si->lfb_depth = si->red_size + si->green_size +
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si->blue_size + si->rsvd_size;
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si->lfb_linelength = (pixels_per_scan_line * si->lfb_depth) / 8;
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} else {
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si->lfb_depth = 4;
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si->lfb_linelength = si->lfb_width / 2;
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si->red_size = 0;
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si->red_pos = 0;
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si->green_size = 0;
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si->green_pos = 0;
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si->blue_size = 0;
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si->blue_pos = 0;
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si->rsvd_size = 0;
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si->rsvd_pos = 0;
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}
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si->lfb_size = si->lfb_linelength * si->lfb_height;
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si->capabilities |= VIDEO_CAPABILITY_SKIP_QUIRKS;
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free_handle:
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efi_call_phys1(sys_table->boottime->free_pool, gop_handle);
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return status;
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}
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/*
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* See if we have Universal Graphics Adapter (UGA) protocol
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*/
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static efi_status_t setup_uga(struct screen_info *si, efi_guid_t *uga_proto,
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unsigned long size)
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{
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struct efi_uga_draw_protocol *uga, *first_uga;
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unsigned long nr_ugas;
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efi_status_t status;
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u32 width, height;
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void **uga_handle = NULL;
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int i;
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status = efi_call_phys3(sys_table->boottime->allocate_pool,
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EFI_LOADER_DATA, size, &uga_handle);
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if (status != EFI_SUCCESS)
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return status;
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status = efi_call_phys5(sys_table->boottime->locate_handle,
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EFI_LOCATE_BY_PROTOCOL, uga_proto,
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NULL, &size, uga_handle);
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if (status != EFI_SUCCESS)
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goto free_handle;
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first_uga = NULL;
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nr_ugas = size / sizeof(void *);
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for (i = 0; i < nr_ugas; i++) {
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efi_guid_t pciio_proto = EFI_PCI_IO_PROTOCOL_GUID;
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void *handle = uga_handle[i];
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u32 w, h, depth, refresh;
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void *pciio;
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status = efi_call_phys3(sys_table->boottime->handle_protocol,
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handle, uga_proto, &uga);
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if (status != EFI_SUCCESS)
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continue;
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efi_call_phys3(sys_table->boottime->handle_protocol,
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handle, &pciio_proto, &pciio);
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status = efi_call_phys5(uga->get_mode, uga, &w, &h,
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&depth, &refresh);
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if (status == EFI_SUCCESS && (!first_uga || pciio)) {
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width = w;
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height = h;
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/*
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* Once we've found a UGA supporting PCIIO,
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* don't bother looking any further.
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*/
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if (pciio)
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break;
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first_uga = uga;
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}
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}
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if (!first_uga)
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goto free_handle;
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/* EFI framebuffer */
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si->orig_video_isVGA = VIDEO_TYPE_EFI;
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si->lfb_depth = 32;
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si->lfb_width = width;
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si->lfb_height = height;
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si->red_size = 8;
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si->red_pos = 16;
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si->green_size = 8;
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si->green_pos = 8;
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si->blue_size = 8;
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si->blue_pos = 0;
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si->rsvd_size = 8;
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si->rsvd_pos = 24;
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free_handle:
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efi_call_phys1(sys_table->boottime->free_pool, uga_handle);
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return status;
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}
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void setup_graphics(struct boot_params *boot_params)
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{
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efi_guid_t graphics_proto = EFI_GRAPHICS_OUTPUT_PROTOCOL_GUID;
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struct screen_info *si;
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efi_guid_t uga_proto = EFI_UGA_PROTOCOL_GUID;
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efi_status_t status;
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unsigned long size;
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void **gop_handle = NULL;
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void **uga_handle = NULL;
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si = &boot_params->screen_info;
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memset(si, 0, sizeof(*si));
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size = 0;
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status = efi_call_phys5(sys_table->boottime->locate_handle,
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EFI_LOCATE_BY_PROTOCOL, &graphics_proto,
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NULL, &size, gop_handle);
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if (status == EFI_BUFFER_TOO_SMALL)
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status = setup_gop(si, &graphics_proto, size);
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if (status != EFI_SUCCESS) {
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size = 0;
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status = efi_call_phys5(sys_table->boottime->locate_handle,
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EFI_LOCATE_BY_PROTOCOL, &uga_proto,
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NULL, &size, uga_handle);
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if (status == EFI_BUFFER_TOO_SMALL)
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setup_uga(si, &uga_proto, size);
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}
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}
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/*
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* Because the x86 boot code expects to be passed a boot_params we
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* need to create one ourselves (usually the bootloader would create
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* one for us).
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*/
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struct boot_params *make_boot_params(void *handle, efi_system_table_t *_table)
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{
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struct boot_params *boot_params;
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struct sys_desc_table *sdt;
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struct apm_bios_info *bi;
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struct setup_header *hdr;
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struct efi_info *efi;
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efi_loaded_image_t *image;
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void *options;
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u32 load_options_size;
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efi_guid_t proto = LOADED_IMAGE_PROTOCOL_GUID;
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int options_size = 0;
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efi_status_t status;
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unsigned long cmdline;
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u16 *s2;
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u8 *s1;
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int i;
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sys_table = _table;
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/* Check if we were booted by the EFI firmware */
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if (sys_table->hdr.signature != EFI_SYSTEM_TABLE_SIGNATURE)
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return NULL;
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status = efi_call_phys3(sys_table->boottime->handle_protocol,
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handle, &proto, (void *)&image);
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if (status != EFI_SUCCESS) {
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efi_printk(sys_table, "Failed to get handle for LOADED_IMAGE_PROTOCOL\n");
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return NULL;
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}
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status = efi_low_alloc(sys_table, 0x4000, 1,
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(unsigned long *)&boot_params);
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if (status != EFI_SUCCESS) {
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efi_printk(sys_table, "Failed to alloc lowmem for boot params\n");
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return NULL;
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}
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memset(boot_params, 0x0, 0x4000);
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hdr = &boot_params->hdr;
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efi = &boot_params->efi_info;
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bi = &boot_params->apm_bios_info;
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sdt = &boot_params->sys_desc_table;
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/* Copy the second sector to boot_params */
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memcpy(&hdr->jump, image->image_base + 512, 512);
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/*
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* Fill out some of the header fields ourselves because the
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* EFI firmware loader doesn't load the first sector.
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*/
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hdr->root_flags = 1;
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hdr->vid_mode = 0xffff;
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hdr->boot_flag = 0xAA55;
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hdr->code32_start = (__u64)(unsigned long)image->image_base;
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hdr->type_of_loader = 0x21;
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/* Convert unicode cmdline to ascii */
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options = image->load_options;
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load_options_size = image->load_options_size / 2; /* ASCII */
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cmdline = 0;
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s2 = (u16 *)options;
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if (s2) {
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while (*s2 && *s2 != '\n' && options_size < load_options_size) {
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s2++;
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options_size++;
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}
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if (options_size) {
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if (options_size > hdr->cmdline_size)
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options_size = hdr->cmdline_size;
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options_size++; /* NUL termination */
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status = efi_low_alloc(sys_table, options_size, 1,
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&cmdline);
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if (status != EFI_SUCCESS) {
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efi_printk(sys_table, "Failed to alloc mem for cmdline\n");
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goto fail;
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|
}
|
|
|
|
s1 = (u8 *)(unsigned long)cmdline;
|
|
s2 = (u16 *)options;
|
|
|
|
for (i = 0; i < options_size - 1; i++)
|
|
*s1++ = *s2++;
|
|
|
|
*s1 = '\0';
|
|
}
|
|
}
|
|
|
|
hdr->cmd_line_ptr = cmdline;
|
|
|
|
hdr->ramdisk_image = 0;
|
|
hdr->ramdisk_size = 0;
|
|
|
|
/* Clear APM BIOS info */
|
|
memset(bi, 0, sizeof(*bi));
|
|
|
|
memset(sdt, 0, sizeof(*sdt));
|
|
|
|
status = handle_ramdisks(sys_table, image, hdr);
|
|
if (status != EFI_SUCCESS)
|
|
goto fail2;
|
|
|
|
return boot_params;
|
|
fail2:
|
|
if (options_size)
|
|
efi_free(sys_table, options_size, hdr->cmd_line_ptr);
|
|
fail:
|
|
efi_free(sys_table, 0x4000, (unsigned long)boot_params);
|
|
return NULL;
|
|
}
|
|
|
|
static efi_status_t exit_boot(struct boot_params *boot_params,
|
|
void *handle)
|
|
{
|
|
struct efi_info *efi = &boot_params->efi_info;
|
|
struct e820entry *e820_map = &boot_params->e820_map[0];
|
|
struct e820entry *prev = NULL;
|
|
unsigned long size, key, desc_size, _size;
|
|
efi_memory_desc_t *mem_map;
|
|
efi_status_t status;
|
|
__u32 desc_version;
|
|
bool called_exit = false;
|
|
u8 nr_entries;
|
|
int i;
|
|
|
|
size = sizeof(*mem_map) * 32;
|
|
|
|
again:
|
|
size += sizeof(*mem_map) * 2;
|
|
_size = size;
|
|
status = efi_low_alloc(sys_table, size, 1, (unsigned long *)&mem_map);
|
|
if (status != EFI_SUCCESS)
|
|
return status;
|
|
|
|
get_map:
|
|
status = efi_call_phys5(sys_table->boottime->get_memory_map, &size,
|
|
mem_map, &key, &desc_size, &desc_version);
|
|
if (status == EFI_BUFFER_TOO_SMALL) {
|
|
efi_free(sys_table, _size, (unsigned long)mem_map);
|
|
goto again;
|
|
}
|
|
|
|
if (status != EFI_SUCCESS)
|
|
goto free_mem_map;
|
|
|
|
memcpy(&efi->efi_loader_signature, EFI_LOADER_SIGNATURE, sizeof(__u32));
|
|
efi->efi_systab = (unsigned long)sys_table;
|
|
efi->efi_memdesc_size = desc_size;
|
|
efi->efi_memdesc_version = desc_version;
|
|
efi->efi_memmap = (unsigned long)mem_map;
|
|
efi->efi_memmap_size = size;
|
|
|
|
#ifdef CONFIG_X86_64
|
|
efi->efi_systab_hi = (unsigned long)sys_table >> 32;
|
|
efi->efi_memmap_hi = (unsigned long)mem_map >> 32;
|
|
#endif
|
|
|
|
/* Might as well exit boot services now */
|
|
status = efi_call_phys2(sys_table->boottime->exit_boot_services,
|
|
handle, key);
|
|
if (status != EFI_SUCCESS) {
|
|
/*
|
|
* ExitBootServices() will fail if any of the event
|
|
* handlers change the memory map. In which case, we
|
|
* must be prepared to retry, but only once so that
|
|
* we're guaranteed to exit on repeated failures instead
|
|
* of spinning forever.
|
|
*/
|
|
if (called_exit)
|
|
goto free_mem_map;
|
|
|
|
called_exit = true;
|
|
goto get_map;
|
|
}
|
|
|
|
/* Historic? */
|
|
boot_params->alt_mem_k = 32 * 1024;
|
|
|
|
/*
|
|
* Convert the EFI memory map to E820.
|
|
*/
|
|
nr_entries = 0;
|
|
for (i = 0; i < size / desc_size; i++) {
|
|
efi_memory_desc_t *d;
|
|
unsigned int e820_type = 0;
|
|
unsigned long m = (unsigned long)mem_map;
|
|
|
|
d = (efi_memory_desc_t *)(m + (i * desc_size));
|
|
switch (d->type) {
|
|
case EFI_RESERVED_TYPE:
|
|
case EFI_RUNTIME_SERVICES_CODE:
|
|
case EFI_RUNTIME_SERVICES_DATA:
|
|
case EFI_MEMORY_MAPPED_IO:
|
|
case EFI_MEMORY_MAPPED_IO_PORT_SPACE:
|
|
case EFI_PAL_CODE:
|
|
e820_type = E820_RESERVED;
|
|
break;
|
|
|
|
case EFI_UNUSABLE_MEMORY:
|
|
e820_type = E820_UNUSABLE;
|
|
break;
|
|
|
|
case EFI_ACPI_RECLAIM_MEMORY:
|
|
e820_type = E820_ACPI;
|
|
break;
|
|
|
|
case EFI_LOADER_CODE:
|
|
case EFI_LOADER_DATA:
|
|
case EFI_BOOT_SERVICES_CODE:
|
|
case EFI_BOOT_SERVICES_DATA:
|
|
case EFI_CONVENTIONAL_MEMORY:
|
|
e820_type = E820_RAM;
|
|
break;
|
|
|
|
case EFI_ACPI_MEMORY_NVS:
|
|
e820_type = E820_NVS;
|
|
break;
|
|
|
|
default:
|
|
continue;
|
|
}
|
|
|
|
/* Merge adjacent mappings */
|
|
if (prev && prev->type == e820_type &&
|
|
(prev->addr + prev->size) == d->phys_addr)
|
|
prev->size += d->num_pages << 12;
|
|
else {
|
|
e820_map->addr = d->phys_addr;
|
|
e820_map->size = d->num_pages << 12;
|
|
e820_map->type = e820_type;
|
|
prev = e820_map++;
|
|
nr_entries++;
|
|
}
|
|
}
|
|
|
|
boot_params->e820_entries = nr_entries;
|
|
|
|
return EFI_SUCCESS;
|
|
|
|
free_mem_map:
|
|
efi_free(sys_table, _size, (unsigned long)mem_map);
|
|
return status;
|
|
}
|
|
|
|
|
|
/*
|
|
* On success we return a pointer to a boot_params structure, and NULL
|
|
* on failure.
|
|
*/
|
|
struct boot_params *efi_main(void *handle, efi_system_table_t *_table,
|
|
struct boot_params *boot_params)
|
|
{
|
|
struct desc_ptr *gdt, *idt;
|
|
efi_loaded_image_t *image;
|
|
struct setup_header *hdr = &boot_params->hdr;
|
|
efi_status_t status;
|
|
struct desc_struct *desc;
|
|
|
|
sys_table = _table;
|
|
|
|
/* Check if we were booted by the EFI firmware */
|
|
if (sys_table->hdr.signature != EFI_SYSTEM_TABLE_SIGNATURE)
|
|
goto fail;
|
|
|
|
setup_graphics(boot_params);
|
|
|
|
setup_efi_pci(boot_params);
|
|
|
|
status = efi_call_phys3(sys_table->boottime->allocate_pool,
|
|
EFI_LOADER_DATA, sizeof(*gdt),
|
|
(void **)&gdt);
|
|
if (status != EFI_SUCCESS) {
|
|
efi_printk(sys_table, "Failed to alloc mem for gdt structure\n");
|
|
goto fail;
|
|
}
|
|
|
|
gdt->size = 0x800;
|
|
status = efi_low_alloc(sys_table, gdt->size, 8,
|
|
(unsigned long *)&gdt->address);
|
|
if (status != EFI_SUCCESS) {
|
|
efi_printk(sys_table, "Failed to alloc mem for gdt\n");
|
|
goto fail;
|
|
}
|
|
|
|
status = efi_call_phys3(sys_table->boottime->allocate_pool,
|
|
EFI_LOADER_DATA, sizeof(*idt),
|
|
(void **)&idt);
|
|
if (status != EFI_SUCCESS) {
|
|
efi_printk(sys_table, "Failed to alloc mem for idt structure\n");
|
|
goto fail;
|
|
}
|
|
|
|
idt->size = 0;
|
|
idt->address = 0;
|
|
|
|
/*
|
|
* If the kernel isn't already loaded at the preferred load
|
|
* address, relocate it.
|
|
*/
|
|
if (hdr->pref_address != hdr->code32_start) {
|
|
status = relocate_kernel(hdr);
|
|
|
|
if (status != EFI_SUCCESS)
|
|
goto fail;
|
|
}
|
|
|
|
status = exit_boot(boot_params, handle);
|
|
if (status != EFI_SUCCESS)
|
|
goto fail;
|
|
|
|
memset((char *)gdt->address, 0x0, gdt->size);
|
|
desc = (struct desc_struct *)gdt->address;
|
|
|
|
/* The first GDT is a dummy and the second is unused. */
|
|
desc += 2;
|
|
|
|
desc->limit0 = 0xffff;
|
|
desc->base0 = 0x0000;
|
|
desc->base1 = 0x0000;
|
|
desc->type = SEG_TYPE_CODE | SEG_TYPE_EXEC_READ;
|
|
desc->s = DESC_TYPE_CODE_DATA;
|
|
desc->dpl = 0;
|
|
desc->p = 1;
|
|
desc->limit = 0xf;
|
|
desc->avl = 0;
|
|
desc->l = 0;
|
|
desc->d = SEG_OP_SIZE_32BIT;
|
|
desc->g = SEG_GRANULARITY_4KB;
|
|
desc->base2 = 0x00;
|
|
|
|
desc++;
|
|
desc->limit0 = 0xffff;
|
|
desc->base0 = 0x0000;
|
|
desc->base1 = 0x0000;
|
|
desc->type = SEG_TYPE_DATA | SEG_TYPE_READ_WRITE;
|
|
desc->s = DESC_TYPE_CODE_DATA;
|
|
desc->dpl = 0;
|
|
desc->p = 1;
|
|
desc->limit = 0xf;
|
|
desc->avl = 0;
|
|
desc->l = 0;
|
|
desc->d = SEG_OP_SIZE_32BIT;
|
|
desc->g = SEG_GRANULARITY_4KB;
|
|
desc->base2 = 0x00;
|
|
|
|
#ifdef CONFIG_X86_64
|
|
/* Task segment value */
|
|
desc++;
|
|
desc->limit0 = 0x0000;
|
|
desc->base0 = 0x0000;
|
|
desc->base1 = 0x0000;
|
|
desc->type = SEG_TYPE_TSS;
|
|
desc->s = 0;
|
|
desc->dpl = 0;
|
|
desc->p = 1;
|
|
desc->limit = 0x0;
|
|
desc->avl = 0;
|
|
desc->l = 0;
|
|
desc->d = 0;
|
|
desc->g = SEG_GRANULARITY_4KB;
|
|
desc->base2 = 0x00;
|
|
#endif /* CONFIG_X86_64 */
|
|
|
|
asm volatile ("lidt %0" : : "m" (*idt));
|
|
asm volatile ("lgdt %0" : : "m" (*gdt));
|
|
|
|
asm volatile("cli");
|
|
|
|
return boot_params;
|
|
fail:
|
|
return NULL;
|
|
}
|