
There are currently two ways to specify the initrd to be passed to the Linux kernel when booting via the EFI stub: - it can be passed as a initrd= command line option when doing a pure PE boot (as opposed to the EFI handover protocol that exists for x86) - otherwise, the bootloader or firmware can load the initrd into memory, and pass the address and size via the bootparams struct (x86) or device tree (ARM) In the first case, we are limited to loading from the same file system that the kernel was loaded from, and it is also problematic in a trusted boot context, given that we cannot easily protect the command line from tampering without either adding complicated white/blacklisting of boot arguments or locking down the command line altogether. In the second case, we force the bootloader to duplicate knowledge about the boot protocol which is already encoded in the stub, and which may be subject to change over time, e.g., bootparams struct definitions, memory allocation/alignment requirements for the placement of the initrd etc etc. In the ARM case, it also requires the bootloader to modify the hardware description provided by the firmware, as it is passed in the same file. On systems where the initrd is measured after loading, it creates a time window where the initrd contents might be manipulated in memory before handing over to the kernel. Address these concerns by adding support for loading the initrd into memory by invoking the EFI LoadFile2 protocol installed on a vendor GUIDed device path that specifically designates a Linux initrd. This addresses the above concerns, by putting the EFI stub in charge of placement in memory and of passing the base and size to the kernel proper (via whatever means it desires) while still leaving it up to the firmware or bootloader to obtain the file contents, potentially from other file systems than the one the kernel itself was loaded from. On platforms that implement measured boot, it permits the firmware to take the measurement right before the kernel actually consumes the contents. Acked-by: Laszlo Ersek <lersek@redhat.com> Tested-by: Ilias Apalodimas <ilias.apalodimas@linaro.org> Acked-by: Ilias Apalodimas <ilias.apalodimas@linaro.org> Signed-off-by: Ard Biesheuvel <ardb@kernel.org>
793 lines
20 KiB
C
793 lines
20 KiB
C
// SPDX-License-Identifier: GPL-2.0-only
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/* -----------------------------------------------------------------------
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*
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* Copyright 2011 Intel Corporation; author Matt Fleming
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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/e820/types.h>
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#include <asm/setup.h>
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#include <asm/desc.h>
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#include <asm/boot.h>
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#include "efistub.h"
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static efi_system_table_t *sys_table;
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extern const bool efi_is64;
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__pure efi_system_table_t *efi_system_table(void)
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{
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return sys_table;
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}
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__attribute_const__ bool efi_is_64bit(void)
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{
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if (IS_ENABLED(CONFIG_EFI_MIXED))
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return efi_is64;
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return IS_ENABLED(CONFIG_X86_64);
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}
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static efi_status_t
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preserve_pci_rom_image(efi_pci_io_protocol_t *pci, struct pci_setup_rom **__rom)
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{
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struct pci_setup_rom *rom = NULL;
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efi_status_t status;
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unsigned long size;
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uint64_t romsize;
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void *romimage;
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/*
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* Some firmware images contain EFI function pointers at the place where
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* the romimage and romsize fields are supposed to be. Typically the EFI
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* code is mapped at high addresses, translating to an unrealistically
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* large romsize. The UEFI spec limits the size of option ROMs to 16
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* MiB so we reject any ROMs over 16 MiB in size to catch this.
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*/
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romimage = efi_table_attr(pci, romimage);
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romsize = efi_table_attr(pci, romsize);
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if (!romimage || !romsize || romsize > SZ_16M)
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return EFI_INVALID_PARAMETER;
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size = romsize + sizeof(*rom);
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status = efi_bs_call(allocate_pool, EFI_LOADER_DATA, size,
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(void **)&rom);
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if (status != EFI_SUCCESS) {
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efi_printk("Failed to allocate memory for 'rom'\n");
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return status;
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}
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memset(rom, 0, sizeof(*rom));
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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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*__rom = rom;
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status = efi_call_proto(pci, pci.read, EfiPciIoWidthUint16,
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PCI_VENDOR_ID, 1, &rom->vendor);
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if (status != EFI_SUCCESS) {
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efi_printk("Failed to read rom->vendor\n");
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goto free_struct;
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}
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status = efi_call_proto(pci, pci.read, EfiPciIoWidthUint16,
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PCI_DEVICE_ID, 1, &rom->devid);
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if (status != EFI_SUCCESS) {
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efi_printk("Failed to read rom->devid\n");
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goto free_struct;
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}
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status = efi_call_proto(pci, get_location, &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, romimage, romsize);
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return status;
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free_struct:
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efi_bs_call(free_pool, rom);
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return status;
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}
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/*
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* There's no way to return an informative status from this function,
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* because any analysis (and printing of error messages) needs to be
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* done directly at the EFI function call-site.
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*
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* For example, EFI_INVALID_PARAMETER could indicate a bug or maybe we
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* just didn't find any PCI devices, but there's no way to tell outside
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* the context of the call.
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*/
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static void setup_efi_pci(struct boot_params *params)
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{
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efi_status_t status;
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void **pci_handle = NULL;
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efi_guid_t pci_proto = EFI_PCI_IO_PROTOCOL_GUID;
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unsigned long size = 0;
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struct setup_data *data;
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efi_handle_t h;
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int i;
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status = efi_bs_call(locate_handle, EFI_LOCATE_BY_PROTOCOL,
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&pci_proto, NULL, &size, pci_handle);
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if (status == EFI_BUFFER_TOO_SMALL) {
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status = efi_bs_call(allocate_pool, EFI_LOADER_DATA, size,
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(void **)&pci_handle);
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if (status != EFI_SUCCESS) {
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efi_printk("Failed to allocate memory for 'pci_handle'\n");
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return;
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}
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status = efi_bs_call(locate_handle, EFI_LOCATE_BY_PROTOCOL,
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&pci_proto, 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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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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for_each_efi_handle(h, pci_handle, size, i) {
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efi_pci_io_protocol_t *pci = NULL;
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struct pci_setup_rom *rom;
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status = efi_bs_call(handle_protocol, h, &pci_proto,
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(void **)&pci);
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if (status != EFI_SUCCESS || !pci)
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continue;
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status = preserve_pci_rom_image(pci, &rom);
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if (status != EFI_SUCCESS)
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continue;
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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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}
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free_handle:
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efi_bs_call(free_pool, pci_handle);
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}
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static void retrieve_apple_device_properties(struct boot_params *boot_params)
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{
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efi_guid_t guid = APPLE_PROPERTIES_PROTOCOL_GUID;
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struct setup_data *data, *new;
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efi_status_t status;
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u32 size = 0;
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apple_properties_protocol_t *p;
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status = efi_bs_call(locate_protocol, &guid, NULL, (void **)&p);
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if (status != EFI_SUCCESS)
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return;
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if (efi_table_attr(p, version) != 0x10000) {
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efi_printk("Unsupported properties proto version\n");
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return;
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}
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efi_call_proto(p, get_all, NULL, &size);
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if (!size)
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return;
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do {
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status = efi_bs_call(allocate_pool, EFI_LOADER_DATA,
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size + sizeof(struct setup_data),
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(void **)&new);
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if (status != EFI_SUCCESS) {
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efi_printk("Failed to allocate memory for 'properties'\n");
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return;
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}
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status = efi_call_proto(p, get_all, new->data, &size);
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if (status == EFI_BUFFER_TOO_SMALL)
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efi_bs_call(free_pool, new);
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} while (status == EFI_BUFFER_TOO_SMALL);
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new->type = SETUP_APPLE_PROPERTIES;
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new->len = size;
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new->next = 0;
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data = (struct setup_data *)(unsigned long)boot_params->hdr.setup_data;
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if (!data) {
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boot_params->hdr.setup_data = (unsigned long)new;
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} else {
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while (data->next)
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data = (struct setup_data *)(unsigned long)data->next;
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data->next = (unsigned long)new;
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}
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}
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static const efi_char16_t apple[] = L"Apple";
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static void setup_quirks(struct boot_params *boot_params)
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{
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efi_char16_t *fw_vendor = (efi_char16_t *)(unsigned long)
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efi_table_attr(efi_system_table(), fw_vendor);
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if (!memcmp(fw_vendor, apple, sizeof(apple))) {
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if (IS_ENABLED(CONFIG_APPLE_PROPERTIES))
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retrieve_apple_device_properties(boot_params);
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}
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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
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setup_uga(struct screen_info *si, efi_guid_t *uga_proto, unsigned long size)
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{
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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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efi_uga_draw_protocol_t *uga = NULL, *first_uga;
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efi_handle_t handle;
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int i;
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status = efi_bs_call(allocate_pool, EFI_LOADER_DATA, size,
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(void **)&uga_handle);
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if (status != EFI_SUCCESS)
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return status;
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status = efi_bs_call(locate_handle, EFI_LOCATE_BY_PROTOCOL,
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uga_proto, NULL, &size, uga_handle);
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if (status != EFI_SUCCESS)
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goto free_handle;
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height = 0;
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width = 0;
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first_uga = NULL;
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for_each_efi_handle(handle, uga_handle, size, i) {
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efi_guid_t pciio_proto = EFI_PCI_IO_PROTOCOL_GUID;
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u32 w, h, depth, refresh;
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void *pciio;
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status = efi_bs_call(handle_protocol, handle, uga_proto,
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(void **)&uga);
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if (status != EFI_SUCCESS)
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continue;
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pciio = NULL;
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efi_bs_call(handle_protocol, handle, &pciio_proto, &pciio);
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status = efi_call_proto(uga, get_mode, &w, &h, &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 (!width && !height)
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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_bs_call(free_pool, uga_handle);
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return status;
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}
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static 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_bs_call(locate_handle, EFI_LOCATE_BY_PROTOCOL,
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&graphics_proto, NULL, &size, gop_handle);
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if (status == EFI_BUFFER_TOO_SMALL)
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status = efi_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_bs_call(locate_handle, EFI_LOCATE_BY_PROTOCOL,
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&uga_proto, 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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void startup_32(struct boot_params *boot_params);
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void __noreturn efi_stub_entry(efi_handle_t handle,
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efi_system_table_t *sys_table_arg,
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struct boot_params *boot_params);
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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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efi_status_t __efiapi efi_pe_entry(efi_handle_t handle,
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efi_system_table_t *sys_table_arg)
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{
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struct boot_params *boot_params;
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struct setup_header *hdr;
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efi_loaded_image_t *image;
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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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char *cmdline_ptr;
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unsigned long ramdisk_addr;
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unsigned long ramdisk_size;
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bool above4g;
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sys_table = sys_table_arg;
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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 EFI_INVALID_PARAMETER;
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status = efi_bs_call(handle_protocol, handle, &proto, (void *)&image);
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if (status != EFI_SUCCESS) {
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efi_printk("Failed to get handle for LOADED_IMAGE_PROTOCOL\n");
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return status;
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}
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hdr = &((struct boot_params *)image->image_base)->hdr;
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above4g = hdr->xloadflags & XLF_CAN_BE_LOADED_ABOVE_4G;
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status = efi_allocate_pages(0x4000, (unsigned long *)&boot_params,
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above4g ? ULONG_MAX : UINT_MAX);
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if (status != EFI_SUCCESS) {
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efi_printk("Failed to allocate lowmem for boot params\n");
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return status;
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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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/* 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->type_of_loader = 0x21;
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/* Convert unicode cmdline to ascii */
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cmdline_ptr = efi_convert_cmdline(image, &options_size,
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above4g ? ULONG_MAX : UINT_MAX);
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if (!cmdline_ptr)
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goto fail;
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hdr->cmd_line_ptr = (unsigned long)cmdline_ptr;
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/* Fill in upper bits of command line address, NOP on 32 bit */
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boot_params->ext_cmd_line_ptr = (u64)(unsigned long)cmdline_ptr >> 32;
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hdr->ramdisk_image = 0;
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hdr->ramdisk_size = 0;
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status = efi_parse_options(cmdline_ptr);
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if (status != EFI_SUCCESS)
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goto fail2;
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status = efi_load_initrd(image, &ramdisk_addr, &ramdisk_size,
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hdr->initrd_addr_max,
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above4g ? ULONG_MAX : hdr->initrd_addr_max);
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if (status != EFI_SUCCESS)
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goto fail2;
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hdr->ramdisk_image = ramdisk_addr & 0xffffffff;
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hdr->ramdisk_size = ramdisk_size & 0xffffffff;
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boot_params->ext_ramdisk_image = (u64)ramdisk_addr >> 32;
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boot_params->ext_ramdisk_size = (u64)ramdisk_size >> 32;
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efi_stub_entry(handle, sys_table, boot_params);
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/* not reached */
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fail2:
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efi_free(options_size, (unsigned long)cmdline_ptr);
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fail:
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efi_free(0x4000, (unsigned long)boot_params);
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return status;
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}
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static void add_e820ext(struct boot_params *params,
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struct setup_data *e820ext, u32 nr_entries)
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{
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struct setup_data *data;
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e820ext->type = SETUP_E820_EXT;
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e820ext->len = nr_entries * sizeof(struct boot_e820_entry);
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e820ext->next = 0;
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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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if (data)
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data->next = (unsigned long)e820ext;
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else
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params->hdr.setup_data = (unsigned long)e820ext;
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}
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static efi_status_t
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setup_e820(struct boot_params *params, struct setup_data *e820ext, u32 e820ext_size)
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{
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struct boot_e820_entry *entry = params->e820_table;
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struct efi_info *efi = ¶ms->efi_info;
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struct boot_e820_entry *prev = NULL;
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u32 nr_entries;
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u32 nr_desc;
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int i;
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nr_entries = 0;
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nr_desc = efi->efi_memmap_size / efi->efi_memdesc_size;
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for (i = 0; i < nr_desc; i++) {
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efi_memory_desc_t *d;
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unsigned int e820_type = 0;
|
|
unsigned long m = efi->efi_memmap;
|
|
|
|
#ifdef CONFIG_X86_64
|
|
m |= (u64)efi->efi_memmap_hi << 32;
|
|
#endif
|
|
|
|
d = efi_early_memdesc_ptr(m, efi->efi_memdesc_size, i);
|
|
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_TYPE_RESERVED;
|
|
break;
|
|
|
|
case EFI_UNUSABLE_MEMORY:
|
|
e820_type = E820_TYPE_UNUSABLE;
|
|
break;
|
|
|
|
case EFI_ACPI_RECLAIM_MEMORY:
|
|
e820_type = E820_TYPE_ACPI;
|
|
break;
|
|
|
|
case EFI_LOADER_CODE:
|
|
case EFI_LOADER_DATA:
|
|
case EFI_BOOT_SERVICES_CODE:
|
|
case EFI_BOOT_SERVICES_DATA:
|
|
case EFI_CONVENTIONAL_MEMORY:
|
|
if (efi_soft_reserve_enabled() &&
|
|
(d->attribute & EFI_MEMORY_SP))
|
|
e820_type = E820_TYPE_SOFT_RESERVED;
|
|
else
|
|
e820_type = E820_TYPE_RAM;
|
|
break;
|
|
|
|
case EFI_ACPI_MEMORY_NVS:
|
|
e820_type = E820_TYPE_NVS;
|
|
break;
|
|
|
|
case EFI_PERSISTENT_MEMORY:
|
|
e820_type = E820_TYPE_PMEM;
|
|
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;
|
|
continue;
|
|
}
|
|
|
|
if (nr_entries == ARRAY_SIZE(params->e820_table)) {
|
|
u32 need = (nr_desc - i) * sizeof(struct e820_entry) +
|
|
sizeof(struct setup_data);
|
|
|
|
if (!e820ext || e820ext_size < need)
|
|
return EFI_BUFFER_TOO_SMALL;
|
|
|
|
/* boot_params map full, switch to e820 extended */
|
|
entry = (struct boot_e820_entry *)e820ext->data;
|
|
}
|
|
|
|
entry->addr = d->phys_addr;
|
|
entry->size = d->num_pages << PAGE_SHIFT;
|
|
entry->type = e820_type;
|
|
prev = entry++;
|
|
nr_entries++;
|
|
}
|
|
|
|
if (nr_entries > ARRAY_SIZE(params->e820_table)) {
|
|
u32 nr_e820ext = nr_entries - ARRAY_SIZE(params->e820_table);
|
|
|
|
add_e820ext(params, e820ext, nr_e820ext);
|
|
nr_entries -= nr_e820ext;
|
|
}
|
|
|
|
params->e820_entries = (u8)nr_entries;
|
|
|
|
return EFI_SUCCESS;
|
|
}
|
|
|
|
static efi_status_t alloc_e820ext(u32 nr_desc, struct setup_data **e820ext,
|
|
u32 *e820ext_size)
|
|
{
|
|
efi_status_t status;
|
|
unsigned long size;
|
|
|
|
size = sizeof(struct setup_data) +
|
|
sizeof(struct e820_entry) * nr_desc;
|
|
|
|
if (*e820ext) {
|
|
efi_bs_call(free_pool, *e820ext);
|
|
*e820ext = NULL;
|
|
*e820ext_size = 0;
|
|
}
|
|
|
|
status = efi_bs_call(allocate_pool, EFI_LOADER_DATA, size,
|
|
(void **)e820ext);
|
|
if (status == EFI_SUCCESS)
|
|
*e820ext_size = size;
|
|
|
|
return status;
|
|
}
|
|
|
|
static efi_status_t allocate_e820(struct boot_params *params,
|
|
struct setup_data **e820ext,
|
|
u32 *e820ext_size)
|
|
{
|
|
unsigned long map_size, desc_size, buff_size;
|
|
struct efi_boot_memmap boot_map;
|
|
efi_memory_desc_t *map;
|
|
efi_status_t status;
|
|
__u32 nr_desc;
|
|
|
|
boot_map.map = ↦
|
|
boot_map.map_size = &map_size;
|
|
boot_map.desc_size = &desc_size;
|
|
boot_map.desc_ver = NULL;
|
|
boot_map.key_ptr = NULL;
|
|
boot_map.buff_size = &buff_size;
|
|
|
|
status = efi_get_memory_map(&boot_map);
|
|
if (status != EFI_SUCCESS)
|
|
return status;
|
|
|
|
nr_desc = buff_size / desc_size;
|
|
|
|
if (nr_desc > ARRAY_SIZE(params->e820_table)) {
|
|
u32 nr_e820ext = nr_desc - ARRAY_SIZE(params->e820_table);
|
|
|
|
status = alloc_e820ext(nr_e820ext, e820ext, e820ext_size);
|
|
if (status != EFI_SUCCESS)
|
|
return status;
|
|
}
|
|
|
|
return EFI_SUCCESS;
|
|
}
|
|
|
|
struct exit_boot_struct {
|
|
struct boot_params *boot_params;
|
|
struct efi_info *efi;
|
|
};
|
|
|
|
static efi_status_t exit_boot_func(struct efi_boot_memmap *map,
|
|
void *priv)
|
|
{
|
|
const char *signature;
|
|
struct exit_boot_struct *p = priv;
|
|
|
|
signature = efi_is_64bit() ? EFI64_LOADER_SIGNATURE
|
|
: EFI32_LOADER_SIGNATURE;
|
|
memcpy(&p->efi->efi_loader_signature, signature, sizeof(__u32));
|
|
|
|
p->efi->efi_systab = (unsigned long)efi_system_table();
|
|
p->efi->efi_memdesc_size = *map->desc_size;
|
|
p->efi->efi_memdesc_version = *map->desc_ver;
|
|
p->efi->efi_memmap = (unsigned long)*map->map;
|
|
p->efi->efi_memmap_size = *map->map_size;
|
|
|
|
#ifdef CONFIG_X86_64
|
|
p->efi->efi_systab_hi = (unsigned long)efi_system_table() >> 32;
|
|
p->efi->efi_memmap_hi = (unsigned long)*map->map >> 32;
|
|
#endif
|
|
|
|
return EFI_SUCCESS;
|
|
}
|
|
|
|
static efi_status_t exit_boot(struct boot_params *boot_params, void *handle)
|
|
{
|
|
unsigned long map_sz, key, desc_size, buff_size;
|
|
efi_memory_desc_t *mem_map;
|
|
struct setup_data *e820ext = NULL;
|
|
__u32 e820ext_size = 0;
|
|
efi_status_t status;
|
|
__u32 desc_version;
|
|
struct efi_boot_memmap map;
|
|
struct exit_boot_struct priv;
|
|
|
|
map.map = &mem_map;
|
|
map.map_size = &map_sz;
|
|
map.desc_size = &desc_size;
|
|
map.desc_ver = &desc_version;
|
|
map.key_ptr = &key;
|
|
map.buff_size = &buff_size;
|
|
priv.boot_params = boot_params;
|
|
priv.efi = &boot_params->efi_info;
|
|
|
|
status = allocate_e820(boot_params, &e820ext, &e820ext_size);
|
|
if (status != EFI_SUCCESS)
|
|
return status;
|
|
|
|
/* Might as well exit boot services now */
|
|
status = efi_exit_boot_services(handle, &map, &priv, exit_boot_func);
|
|
if (status != EFI_SUCCESS)
|
|
return status;
|
|
|
|
/* Historic? */
|
|
boot_params->alt_mem_k = 32 * 1024;
|
|
|
|
status = setup_e820(boot_params, e820ext, e820ext_size);
|
|
if (status != EFI_SUCCESS)
|
|
return status;
|
|
|
|
return EFI_SUCCESS;
|
|
}
|
|
|
|
/*
|
|
* On success we return a pointer to a boot_params structure, and NULL
|
|
* on failure.
|
|
*/
|
|
struct boot_params *efi_main(efi_handle_t handle,
|
|
efi_system_table_t *sys_table_arg,
|
|
struct boot_params *boot_params)
|
|
{
|
|
unsigned long bzimage_addr = (unsigned long)startup_32;
|
|
struct setup_header *hdr = &boot_params->hdr;
|
|
unsigned long max_addr = hdr->initrd_addr_max;
|
|
unsigned long initrd_addr, initrd_size;
|
|
efi_status_t status;
|
|
unsigned long cmdline_paddr;
|
|
|
|
if (hdr->xloadflags & XLF_CAN_BE_LOADED_ABOVE_4G)
|
|
max_addr = ULONG_MAX;
|
|
|
|
sys_table = sys_table_arg;
|
|
|
|
/* Check if we were booted by the EFI firmware */
|
|
if (sys_table->hdr.signature != EFI_SYSTEM_TABLE_SIGNATURE)
|
|
goto fail;
|
|
|
|
/*
|
|
* If the kernel isn't already loaded at the preferred load
|
|
* address, relocate it.
|
|
*/
|
|
if (bzimage_addr != hdr->pref_address) {
|
|
status = efi_relocate_kernel(&bzimage_addr,
|
|
hdr->init_size, hdr->init_size,
|
|
hdr->pref_address,
|
|
hdr->kernel_alignment,
|
|
LOAD_PHYSICAL_ADDR);
|
|
if (status != EFI_SUCCESS) {
|
|
efi_printk("efi_relocate_kernel() failed!\n");
|
|
goto fail;
|
|
}
|
|
}
|
|
hdr->code32_start = (u32)bzimage_addr;
|
|
|
|
/*
|
|
* efi_pe_entry() may have been called before efi_main(), in which
|
|
* case this is the second time we parse the cmdline. This is ok,
|
|
* parsing the cmdline multiple times does not have side-effects.
|
|
*/
|
|
cmdline_paddr = ((u64)hdr->cmd_line_ptr |
|
|
((u64)boot_params->ext_cmd_line_ptr << 32));
|
|
efi_parse_options((char *)cmdline_paddr);
|
|
|
|
/*
|
|
* At this point, an initrd may already have been loaded, either by
|
|
* the bootloader and passed via bootparams, or loaded from a initrd=
|
|
* command line option by efi_pe_entry() above. In either case, we
|
|
* permit an initrd loaded from the LINUX_EFI_INITRD_MEDIA_GUID device
|
|
* path to supersede it.
|
|
*/
|
|
status = efi_load_initrd_dev_path(&initrd_addr, &initrd_size, max_addr);
|
|
if (status == EFI_SUCCESS) {
|
|
hdr->ramdisk_image = (u32)initrd_addr;
|
|
hdr->ramdisk_size = (u32)initrd_size;
|
|
boot_params->ext_ramdisk_image = (u64)initrd_addr >> 32;
|
|
boot_params->ext_ramdisk_size = (u64)initrd_size >> 32;
|
|
} else if (status != EFI_NOT_FOUND) {
|
|
efi_printk("efi_load_initrd_dev_path() failed!\n");
|
|
goto fail;
|
|
}
|
|
|
|
/*
|
|
* If the boot loader gave us a value for secure_boot then we use that,
|
|
* otherwise we ask the BIOS.
|
|
*/
|
|
if (boot_params->secure_boot == efi_secureboot_mode_unset)
|
|
boot_params->secure_boot = efi_get_secureboot();
|
|
|
|
/* Ask the firmware to clear memory on unclean shutdown */
|
|
efi_enable_reset_attack_mitigation();
|
|
|
|
efi_random_get_seed();
|
|
|
|
efi_retrieve_tpm2_eventlog();
|
|
|
|
setup_graphics(boot_params);
|
|
|
|
setup_efi_pci(boot_params);
|
|
|
|
setup_quirks(boot_params);
|
|
|
|
status = exit_boot(boot_params, handle);
|
|
if (status != EFI_SUCCESS) {
|
|
efi_printk("exit_boot() failed!\n");
|
|
goto fail;
|
|
}
|
|
|
|
return boot_params;
|
|
fail:
|
|
efi_printk("efi_main() failed!\n");
|
|
|
|
for (;;)
|
|
asm("hlt");
|
|
}
|