2 * Copyright 2011-2014 Intel Corporation - All Rights Reserved
9 #include <syslinux/memscan.h>
10 #include <syslinux/firmware.h>
11 #include <syslinux/linux.h>
19 __export
uint16_t PXERetry
;
20 __export
char copyright_str
[] = "Copyright (C) 2011-" YEAR_STR
"\n";
21 uint8_t SerialNotice
= 1;
22 __export
char syslinux_banner
[] = "Syslinux " VERSION_STR
" (EFI; " DATE_STR
")\n";
23 char CurrentDirName
[CURRENTDIR_MAX
];
24 struct com32_sys_args __com32
;
26 uint32_t _IdleTimer
= 0;
27 char __lowmem_heap
[32];
28 uint32_t BIOS_timer_next
;
30 __export
uint8_t KbdMap
[256];
33 static jmp_buf load_error_buf
;
35 static inline EFI_STATUS
36 efi_close_protocol(EFI_HANDLE handle
, EFI_GUID
*guid
, EFI_HANDLE agent
,
37 EFI_HANDLE controller
)
39 return uefi_call_wrapper(BS
->CloseProtocol
, 4, handle
,
40 guid
, agent
, controller
);
43 struct efi_binding
*efi_create_binding(EFI_GUID
*bguid
, EFI_GUID
*pguid
)
45 EFI_SERVICE_BINDING
*sbp
;
46 struct efi_binding
*b
;
48 EFI_HANDLE protocol
, child
, *handles
= NULL
;
49 UINTN i
, nr_handles
= 0;
51 b
= malloc(sizeof(*b
));
55 status
= LibLocateHandle(ByProtocol
, bguid
, NULL
, &nr_handles
, &handles
);
56 if (status
!= EFI_SUCCESS
)
59 for (i
= 0; i
< nr_handles
; i
++) {
60 status
= uefi_call_wrapper(BS
->OpenProtocol
, 6, handles
[i
],
62 image_handle
, handles
[i
],
63 EFI_OPEN_PROTOCOL_GET_PROTOCOL
);
64 if (status
== EFI_SUCCESS
)
67 uefi_call_wrapper(BS
->CloseProtocol
, 4, handles
[i
], bguid
,
68 image_handle
, handles
[i
]);
76 status
= uefi_call_wrapper(sbp
->CreateChild
, 2, sbp
, (EFI_HANDLE
*)&child
);
77 if (status
!= EFI_SUCCESS
)
80 status
= uefi_call_wrapper(BS
->OpenProtocol
, 6, child
,
81 pguid
, (void **)&protocol
,
83 EFI_OPEN_PROTOCOL_GET_PROTOCOL
);
84 if (status
!= EFI_SUCCESS
)
87 b
->parent
= handles
[i
];
95 uefi_call_wrapper(sbp
->DestroyChild
, 2, sbp
, child
);
98 uefi_call_wrapper(BS
->CloseProtocol
, 4, handles
[i
], bguid
,
99 image_handle
, handles
[i
]);
106 void efi_destroy_binding(struct efi_binding
*b
, EFI_GUID
*guid
)
108 efi_close_protocol(b
->child
, guid
, image_handle
, b
->binding
);
109 uefi_call_wrapper(b
->binding
->DestroyChild
, 2, b
->binding
, b
->child
);
110 efi_close_protocol(b
->parent
, guid
, image_handle
, b
->parent
);
120 void comboot_cleanup_api(void)
124 void printf_init(void)
128 __export
void local_boot(uint16_t ax
)
131 * Inform the firmware that we failed to execute correctly, which
132 * will trigger the next entry in the EFI Boot Manager list.
134 longjmp(load_error_buf
, 1);
137 void bios_timer_cleanup(void)
143 void __cdecl
core_farcall(uint32_t c
, const com32sys_t
*a
, com32sys_t
*b
)
147 __export
struct firmware
*firmware
= NULL
;
148 void *__syslinux_adv_ptr
;
149 size_t __syslinux_adv_size
;
150 char core_xfer_buf
[65536];
151 struct iso_boot_info
{
152 uint32_t pvd
; /* LBA of primary volume descriptor */
153 uint32_t file
; /* LBA of boot file */
154 uint32_t length
; /* Length of boot file */
155 uint32_t csum
; /* Checksum of boot file */
156 uint32_t reserved
[10]; /* Currently unused */
166 uint16_t BIOS_fbm
= 1;
169 __export
unsigned int __bcopyxx_len
= 0;
171 void gpxe_unload(void)
186 mstime_t
sem_down(struct semaphore
*sem
, mstime_t time
)
188 /* EFI is single threaded */
192 void sem_up(struct semaphore
*sem
)
194 /* EFI is single threaded */
197 __export
volatile uint32_t __ms_timer
= 0;
198 volatile uint32_t __jiffies
= 0;
200 void efi_write_char(uint8_t ch
, uint8_t attribute
)
202 SIMPLE_TEXT_OUTPUT_INTERFACE
*out
= ST
->ConOut
;
205 uefi_call_wrapper(out
->SetAttribute
, 2, out
, attribute
);
207 /* Lookup primary Unicode encoding in the system codepage */
208 c
[0] = codepage
.uni
[0][ch
];
211 uefi_call_wrapper(out
->OutputString
, 2, out
, c
);
214 static void efi_showcursor(const struct term_state
*st
)
216 SIMPLE_TEXT_OUTPUT_INTERFACE
*out
= ST
->ConOut
;
217 bool cursor
= st
->cursor
? true : false;
219 uefi_call_wrapper(out
->EnableCursor
, 2, out
, cursor
);
222 static void efi_set_cursor(int x
, int y
, bool visible
)
224 SIMPLE_TEXT_OUTPUT_INTERFACE
*out
= ST
->ConOut
;
226 uefi_call_wrapper(out
->SetCursorPosition
, 3, out
, x
, y
);
229 static void efi_scroll_up(uint8_t cols
, uint8_t rows
, uint8_t attribute
)
231 efi_write_char('\n', 0);
232 efi_write_char('\r', 0);
235 static void efi_get_mode(int *cols
, int *rows
)
237 SIMPLE_TEXT_OUTPUT_INTERFACE
*out
= ST
->ConOut
;
240 uefi_call_wrapper(out
->QueryMode
, 4, out
, out
->Mode
->Mode
, &c
, &r
);
245 static void efi_erase(int x0
, int y0
, int x1
, int y1
, uint8_t attribute
)
247 SIMPLE_TEXT_OUTPUT_INTERFACE
*out
= ST
->ConOut
;
250 efi_get_mode(&cols
, &rows
);
253 * The BIOS version of this function has the ability to erase
254 * parts or all of the screen - the UEFI console doesn't
255 * support this so we just set the cursor position unless
256 * we're clearing the whole screen.
258 if (!x0
&& y0
== (cols
- 1)) {
259 /* Really clear the screen */
260 uefi_call_wrapper(out
->ClearScreen
, 1, out
);
262 uefi_call_wrapper(out
->SetCursorPosition
, 3, out
, y1
, x1
);
266 static void efi_text_mode(void)
270 static void efi_get_cursor(uint8_t *x
, uint8_t *y
)
272 SIMPLE_TEXT_OUTPUT_INTERFACE
*out
= ST
->ConOut
;
273 *x
= out
->Mode
->CursorColumn
;
274 *y
= out
->Mode
->CursorRow
;
277 struct output_ops efi_ops
= {
279 .write_char
= efi_write_char
,
280 .showcursor
= efi_showcursor
,
281 .set_cursor
= efi_set_cursor
,
282 .scroll_up
= efi_scroll_up
,
283 .get_mode
= efi_get_mode
,
284 .text_mode
= efi_text_mode
,
285 .get_cursor
= efi_get_cursor
,
289 static inline EFI_MEMORY_DESCRIPTOR
*
290 get_memory_map(UINTN
*nr_entries
, UINTN
*key
, UINTN
*desc_sz
,
293 return LibMemoryMap(nr_entries
, key
, desc_sz
, desc_ver
);
297 int efi_scan_memory(scan_memory_callback_t callback
, void *data
)
299 UINTN i
, nr_entries
, key
, desc_sz
;
304 buf
= (UINTN
)get_memory_map(&nr_entries
, &key
, &desc_sz
, &desc_ver
);
309 for (i
= 0; i
< nr_entries
; bufpos
+= desc_sz
, i
++) {
310 EFI_MEMORY_DESCRIPTOR
*m
;
312 enum syslinux_memmap_types type
;
314 m
= (EFI_MEMORY_DESCRIPTOR
*)bufpos
;
315 region_sz
= m
->NumberOfPages
* EFI_PAGE_SIZE
;
318 case EfiConventionalMemory
:
326 rv
= callback(data
, m
->PhysicalStart
, region_sz
, type
);
331 FreePool((void *)buf
);
335 static struct syslinux_memscan efi_memscan
= {
336 .func
= efi_scan_memory
,
339 extern uint16_t *bios_free_mem
;
344 syslinux_memscan_add(&efi_memscan
);
348 char efi_getchar(char *hi
)
350 SIMPLE_INPUT_INTERFACE
*in
= ST
->ConIn
;
355 status
= uefi_call_wrapper(in
->ReadKeyStroke
, 2, in
, &key
);
356 } while (status
== EFI_NOT_READY
);
359 return (char)key
.UnicodeChar
;
362 * We currently only handle scan codes that fit in 8 bits.
364 *hi
= (char)key
.ScanCode
;
368 int efi_pollchar(void)
370 SIMPLE_INPUT_INTERFACE
*in
= ST
->ConIn
;
373 status
= WaitForSingleEvent(in
->WaitForKey
, 1);
374 return status
!= EFI_TIMEOUT
;
377 struct input_ops efi_iops
= {
378 .getchar
= efi_getchar
,
379 .pollchar
= efi_pollchar
,
382 extern void efi_adv_init(void);
383 extern int efi_adv_write(void);
385 struct adv_ops efi_adv_ops
= {
386 .init
= efi_adv_init
,
387 .write
= efi_adv_write
,
391 uint32_t load_signature
;
394 uint32_t desc_version
;
396 uint32_t memmap_size
;
403 #define E820_RESERVED 2
406 #define E820_UNUSABLE 5
408 #define BOOT_SIGNATURE 0xaa55
409 #define SYSLINUX_EFILDR 0x30 /* Is this published value? */
410 #define DEFAULT_TIMER_TICK_DURATION 500000 /* 500000 == 500000 * 100 * 10^-9 == 50 msec */
411 #define DEFAULT_MSTIMER_INC 0x32 /* 50 msec */
419 struct screen_info screen_info
;
420 uint8_t _pad
[0x1c0 - sizeof(struct screen_info
)];
423 uint8_t e820_entries
;
424 uint8_t _pad3
[0x2d0 - 0x1e8 - sizeof(uint8_t)];
425 struct e820_entry e820_map
[E820MAX
];
428 /* Allocate boot parameter block aligned to page */
429 #define BOOT_PARAM_BLKSIZE EFI_SIZE_TO_PAGES(sizeof(struct boot_params)) * EFI_PAGE_SIZE
431 /* Routines in support of efi boot loader were obtained from
432 * http://git.kernel.org/?p=boot/efilinux/efilinux.git:
433 * kernel_jump(), handover_jump(),
434 * emalloc()/efree, alloc_pages/free_pages
435 * allocate_pool()/free_pool()
438 extern void kernel_jump(EFI_PHYSICAL_ADDRESS kernel_start
,
439 struct boot_params
*boot_params
);
440 #if __SIZEOF_POINTER__ == 4
441 #define EFI_LOAD_SIG "EL32"
442 #elif __SIZEOF_POINTER__ == 8
443 #define EFI_LOAD_SIG "EL64"
445 #error "unsupported architecture"
453 struct dt_desc gdt
= { 0x800, (uint64_t *)0 };
454 struct dt_desc idt
= { 0, 0 };
456 static inline EFI_MEMORY_DESCRIPTOR
*
457 get_mem_desc(unsigned long memmap
, UINTN desc_sz
, int i
)
459 return (EFI_MEMORY_DESCRIPTOR
*)(memmap
+ (i
* desc_sz
));
462 EFI_HANDLE image_handle
;
464 static inline UINT64
round_up(UINT64 x
, UINT64 y
)
466 return (((x
- 1) | (y
- 1)) + 1);
469 static inline UINT64
round_down(UINT64 x
, UINT64 y
)
471 return (x
& ~(y
- 1));
474 static void find_addr(EFI_PHYSICAL_ADDRESS
*first
,
475 EFI_PHYSICAL_ADDRESS
*last
,
476 EFI_PHYSICAL_ADDRESS min
,
477 EFI_PHYSICAL_ADDRESS max
,
478 size_t size
, size_t align
)
480 EFI_MEMORY_DESCRIPTOR
*map
;
482 UINTN i
, nr_entries
, key
, desc_sz
;
484 map
= get_memory_map(&nr_entries
, &key
, &desc_sz
, &desc_ver
);
488 for (i
= 0; i
< nr_entries
; i
++) {
489 EFI_MEMORY_DESCRIPTOR
*m
;
490 EFI_PHYSICAL_ADDRESS best
;
493 m
= get_mem_desc((unsigned long)map
, desc_sz
, i
);
494 if (m
->Type
!= EfiConventionalMemory
)
497 if (m
->NumberOfPages
< EFI_SIZE_TO_PAGES(size
))
500 start
= m
->PhysicalStart
;
501 end
= m
->PhysicalStart
+ (m
->NumberOfPages
<< EFI_PAGE_SHIFT
);
506 /* What's the best address? */
507 if (start
< min
&& min
< end
)
510 best
= m
->PhysicalStart
;
512 start
= round_up(best
, align
);
516 /* Have we run out of space in this region? */
517 if (end
< start
|| (start
+ size
) > end
)
528 /* What's the best address? */
529 if (start
< max
&& max
< end
)
534 start
= round_down(best
, align
);
535 if (start
< min
|| start
< m
->PhysicalStart
)
547 * allocate_pages - Allocate memory pages from the system
548 * @atype: type of allocation to perform
549 * @mtype: type of memory to allocate
550 * @num_pages: number of contiguous 4KB pages to allocate
551 * @memory: used to return the address of allocated pages
553 * Allocate @num_pages physically contiguous pages from the system
554 * memory and return a pointer to the base of the allocation in
555 * @memory if the allocation succeeds. On success, the firmware memory
556 * map is updated accordingly.
558 * If @atype is AllocateAddress then, on input, @memory specifies the
559 * address at which to attempt to allocate the memory pages.
561 static inline EFI_STATUS
562 allocate_pages(EFI_ALLOCATE_TYPE atype
, EFI_MEMORY_TYPE mtype
,
563 UINTN num_pages
, EFI_PHYSICAL_ADDRESS
*memory
)
565 return uefi_call_wrapper(BS
->AllocatePages
, 4, atype
,
566 mtype
, num_pages
, memory
);
569 * free_pages - Return memory allocated by allocate_pages() to the firmware
570 * @memory: physical base address of the page range to be freed
571 * @num_pages: number of contiguous 4KB pages to free
573 * On success, the firmware memory map is updated accordingly.
575 static inline EFI_STATUS
576 free_pages(EFI_PHYSICAL_ADDRESS memory
, UINTN num_pages
)
578 return uefi_call_wrapper(BS
->FreePages
, 2, memory
, num_pages
);
581 static EFI_STATUS
allocate_addr(EFI_PHYSICAL_ADDRESS
*addr
, size_t size
)
583 UINTN npages
= EFI_SIZE_TO_PAGES(size
);
585 return uefi_call_wrapper(BS
->AllocatePages
, 4,
587 EfiLoaderData
, npages
,
591 * allocate_pool - Allocate pool memory
592 * @type: the type of pool to allocate
593 * @size: number of bytes to allocate from pool of @type
594 * @buffer: used to return the address of allocated memory
596 * Allocate memory from pool of @type. If the pool needs more memory
597 * pages are allocated from EfiConventionalMemory in order to grow the
600 * All allocations are eight-byte aligned.
602 static inline EFI_STATUS
603 allocate_pool(EFI_MEMORY_TYPE type
, UINTN size
, void **buffer
)
605 return uefi_call_wrapper(BS
->AllocatePool
, 3, type
, size
, buffer
);
609 * free_pool - Return pool memory to the system
610 * @buffer: the buffer to free
612 * Return @buffer to the system. The returned memory is marked as
613 * EfiConventionalMemory.
615 static inline EFI_STATUS
free_pool(void *buffer
)
617 return uefi_call_wrapper(BS
->FreePool
, 1, buffer
);
620 static void free_addr(EFI_PHYSICAL_ADDRESS addr
, size_t size
)
622 UINTN npages
= EFI_SIZE_TO_PAGES(size
);
624 uefi_call_wrapper(BS
->FreePages
, 2, addr
, npages
);
627 /* cancel the established timer */
628 static EFI_STATUS
cancel_timer(EFI_EVENT ev
)
630 return uefi_call_wrapper(BS
->SetTimer
, 3, ev
, TimerCancel
, 0);
633 /* Check if timer went off and update default timer counter */
634 void timer_handler(EFI_EVENT ev
, VOID
*ctx
)
636 __ms_timer
+= DEFAULT_MSTIMER_INC
;
640 /* Setup a default periodic timer */
641 static EFI_STATUS
setup_default_timer(EFI_EVENT
*ev
)
643 EFI_STATUS efi_status
;
646 efi_status
= uefi_call_wrapper( BS
->CreateEvent
, 5, EVT_TIMER
|EVT_NOTIFY_SIGNAL
, TPL_NOTIFY
, (EFI_EVENT_NOTIFY
)timer_handler
, NULL
, ev
);
647 if (efi_status
== EFI_SUCCESS
) {
648 efi_status
= uefi_call_wrapper(BS
->SetTimer
, 3, *ev
, TimerPeriodic
, DEFAULT_TIMER_TICK_DURATION
);
654 * emalloc - Allocate memory with a strict alignment requirement
655 * @size: size in bytes of the requested allocation
656 * @align: the required alignment of the allocation
657 * @addr: a pointer to the allocated address on success
659 * If we cannot satisfy @align we return 0.
661 EFI_STATUS
emalloc(UINTN size
, UINTN align
, EFI_PHYSICAL_ADDRESS
*addr
)
663 UINTN i
, nr_entries
, map_key
, desc_size
;
664 EFI_MEMORY_DESCRIPTOR
*map_buf
;
668 UINTN nr_pages
= EFI_SIZE_TO_PAGES(size
);
670 map_buf
= get_memory_map(&nr_entries
, &map_key
,
671 &desc_size
, &desc_version
);
677 for (i
= 0; i
< nr_entries
; i
++, d
+= desc_size
) {
678 EFI_MEMORY_DESCRIPTOR
*desc
;
679 EFI_PHYSICAL_ADDRESS start
, end
, aligned
;
681 desc
= (EFI_MEMORY_DESCRIPTOR
*)d
;
682 if (desc
->Type
!= EfiConventionalMemory
)
685 if (desc
->NumberOfPages
< nr_pages
)
688 start
= desc
->PhysicalStart
;
689 end
= start
+ (desc
->NumberOfPages
<< EFI_PAGE_SHIFT
);
691 /* Low-memory is super-precious! */
697 aligned
= (start
+ align
-1) & ~(align
-1);
699 if ((aligned
+ size
) <= end
) {
700 err
= allocate_pages(AllocateAddress
, EfiLoaderData
,
702 if (err
== EFI_SUCCESS
) {
710 err
= EFI_OUT_OF_RESOURCES
;
717 * efree - Return memory allocated with emalloc
718 * @memory: the address of the emalloc() allocation
719 * @size: the size of the allocation
721 void efree(EFI_PHYSICAL_ADDRESS memory
, UINTN size
)
723 UINTN nr_pages
= EFI_SIZE_TO_PAGES(size
);
725 free_pages(memory
, nr_pages
);
729 * Check whether 'buf' contains a PE/COFF header and that the PE/COFF
730 * file can be executed by this architecture.
732 static bool valid_pecoff_image(char *buf
)
738 } *pehdr
= (struct pe_header
*)buf
;
744 if (pehdr
->signature
!= 0x5a4d) {
745 dprintf("Invalid MS-DOS header signature\n");
749 if (!pehdr
->offset
|| pehdr
->offset
> 512) {
750 dprintf("Invalid PE header offset\n");
754 chdr
= (struct coff_header
*)&buf
[pehdr
->offset
];
755 if (chdr
->signature
!= 0x4550) {
756 dprintf("Invalid PE header signature\n");
760 #if defined(__x86_64__)
761 if (chdr
->machine
!= 0x8664) {
762 dprintf("Invalid PE machine field\n");
766 if (chdr
->machine
!= 0x14c) {
767 dprintf("Invalid PE machine field\n");
776 * Boot a Linux kernel using the EFI boot stub handover protocol.
778 * This function will not return to its caller if booting the kernel
779 * image succeeds. If booting the kernel image fails, a legacy boot
780 * method should be attempted.
782 static void handover_boot(struct linux_header
*hdr
, struct boot_params
*bp
)
784 unsigned long address
= hdr
->code32_start
+ hdr
->handover_offset
;
785 handover_func_t
*func
= efi_handover
;
787 dprintf("Booting kernel using handover protocol\n");
790 * Ensure that the kernel is a valid PE32(+) file and that the
791 * architecture of the file matches this version of Syslinux - we
792 * can't mix firmware and kernel bitness (e.g. 32-bit kernel on
793 * 64-bit EFI firmware) using the handover protocol.
795 if (!valid_pecoff_image((char *)hdr
))
798 if (hdr
->version
>= 0x20c) {
799 if (hdr
->xloadflags
& XLF_EFI_HANDOVER_32
)
800 func
= efi_handover_32
;
802 if (hdr
->xloadflags
& XLF_EFI_HANDOVER_64
)
803 func
= efi_handover_64
;
806 efi_console_restore();
807 func(image_handle
, ST
, bp
, address
);
810 static int check_linux_header(struct linux_header
*hdr
)
812 if (hdr
->version
< 0x205)
813 hdr
->relocatable_kernel
= 0;
815 /* FIXME: check boot sector signature */
816 if (hdr
->boot_flag
!= BOOT_SIGNATURE
) {
817 printf("Invalid Boot signature 0x%x, bailing out\n", hdr
->boot_flag
);
824 static char *build_cmdline(char *str
)
826 EFI_PHYSICAL_ADDRESS addr
;
828 char *cmdline
= NULL
; /* internal, in efi_physical below 0x3FFFFFFF */
831 * The kernel expects cmdline to be allocated pretty low,
832 * Documentation/x86/boot.txt says,
834 * "The kernel command line can be located anywhere
835 * between the end of the setup heap and 0xA0000"
838 status
= allocate_pages(AllocateMaxAddress
, EfiLoaderData
,
839 EFI_SIZE_TO_PAGES(strlen(str
) + 1),
841 if (status
!= EFI_SUCCESS
) {
842 printf("Failed to allocate memory for kernel command line, bailing out\n");
845 cmdline
= (char *)(UINTN
)addr
;
846 memcpy(cmdline
, str
, strlen(str
) + 1);
850 static int build_gdt(void)
854 /* Allocate gdt consistent with the alignment for architecture */
855 status
= emalloc(gdt
.limit
, __SIZEOF_POINTER__
, (EFI_PHYSICAL_ADDRESS
*)&gdt
.base
);
856 if (status
!= EFI_SUCCESS
) {
857 printf("Failed to allocate memory for GDT, bailing out\n");
860 memset(gdt
.base
, 0x0, gdt
.limit
);
863 * 4Gb - (0x100000*0x1000 = 4Gb)
866 * granularity=4096, 386 (+5th nibble of limit)
868 gdt
.base
[2] = 0x00cf9a000000ffff;
871 * 4Gb - (0x100000*0x1000 = 4Gb)
874 * granularity=4096, 386 (+5th nibble of limit)
876 gdt
.base
[3] = 0x00cf92000000ffff;
878 /* Task segment value */
879 gdt
.base
[4] = 0x0080890000000000;
885 * Callers use ->ramdisk_size to check whether any memory was
886 * allocated (and therefore needs free'ing). The return value indicates
887 * hard error conditions, such as failing to alloc memory for the
888 * ramdisk image. Having no initramfs is not an error.
890 static int handle_ramdisks(struct linux_header
*hdr
,
891 struct initramfs
*initramfs
)
893 EFI_PHYSICAL_ADDRESS last
;
894 struct initramfs
*ip
;
897 addr_t next_addr
, len
, pad
;
899 hdr
->ramdisk_image
= 0;
900 hdr
->ramdisk_size
= 0;
903 * Figure out the size of the initramfs, and where to put it.
904 * We should put it at the highest possible address which is
905 * <= hdr->initrd_addr_max, which fits the entire initramfs.
907 irf_size
= initramfs_size(initramfs
); /* Handles initramfs == NULL */
912 find_addr(NULL
, &last
, 0x1000, hdr
->initrd_addr_max
,
913 irf_size
, INITRAMFS_MAX_ALIGN
);
915 status
= allocate_addr(&last
, irf_size
);
917 if (!last
|| status
!= EFI_SUCCESS
) {
918 printf("Failed to allocate initramfs memory, bailing out\n");
922 hdr
->ramdisk_image
= (uint32_t)last
;
923 hdr
->ramdisk_size
= irf_size
;
925 /* Copy initramfs into allocated memory */
926 for (ip
= initramfs
->next
; ip
->len
; ip
= ip
->next
) {
928 next_addr
= last
+ len
;
931 * If this isn't the last entry, extend the
932 * zero-pad region to enforce the alignment of
936 pad
= -next_addr
& (ip
->next
->align
- 1);
942 memcpy((void *)(UINTN
)last
, ip
->data
, ip
->data_len
);
944 if (len
> ip
->data_len
)
945 memset((void *)(UINTN
)(last
+ ip
->data_len
), 0,
953 static int exit_boot(struct boot_params
*bp
)
955 struct e820_entry
*e820buf
, *e
;
956 EFI_MEMORY_DESCRIPTOR
*map
;
959 UINTN i
, nr_entries
, key
, desc_sz
;
962 /* Build efi memory map */
963 map
= get_memory_map(&nr_entries
, &key
, &desc_sz
, &desc_ver
);
967 bp
->efi
.memmap
= (uint32_t)(unsigned long)map
;
968 bp
->efi
.memmap_size
= nr_entries
* desc_sz
;
969 bp
->efi
.systab
= (uint32_t)(unsigned long)ST
;
970 bp
->efi
.desc_size
= desc_sz
;
971 bp
->efi
.desc_version
= desc_ver
;
972 #if defined(__x86_64__)
973 bp
->efi
.systab_hi
= ((unsigned long)ST
) >> 32;
974 bp
->efi
.memmap_hi
= ((unsigned long)map
) >> 32;
979 * Even though 'memmap' contains the memory map we provided
980 * previously in efi_scan_memory(), we should recalculate the
981 * e820 map because it will most likely have changed in the
984 e
= e820buf
= bp
->e820_map
;
985 for (i
= 0; i
< nr_entries
&& i
< E820MAX
; i
++) {
986 struct e820_entry
*prev
= NULL
;
991 map
= get_mem_desc(bp
->efi
.memmap
, desc_sz
, i
);
992 e
->start
= map
->PhysicalStart
;
993 e
->len
= map
->NumberOfPages
<< EFI_PAGE_SHIFT
;
996 case EfiReservedMemoryType
:
997 case EfiRuntimeServicesCode
:
998 case EfiRuntimeServicesData
:
999 case EfiMemoryMappedIO
:
1000 case EfiMemoryMappedIOPortSpace
:
1002 e820_type
= E820_RESERVED
;
1005 case EfiUnusableMemory
:
1006 e820_type
= E820_UNUSABLE
;
1009 case EfiACPIReclaimMemory
:
1010 e820_type
= E820_ACPI
;
1015 case EfiBootServicesCode
:
1016 case EfiBootServicesData
:
1017 case EfiConventionalMemory
:
1018 e820_type
= E820_RAM
;
1021 case EfiACPIMemoryNVS
:
1022 e820_type
= E820_NVS
;
1028 e
->type
= e820_type
;
1030 /* Check for adjacent entries we can merge. */
1031 if (prev
&& (prev
->start
+ prev
->len
) == e
->start
&&
1032 prev
->type
== e
->type
)
1033 prev
->len
+= e
->len
;
1038 bp
->e820_entries
= e
- e820buf
;
1040 status
= uefi_call_wrapper(BS
->ExitBootServices
, 2, image_handle
, key
);
1041 if (status
!= EFI_SUCCESS
) {
1042 printf("Failed to exit boot services: 0x%016lx\n", status
);
1051 * Boots the linux kernel using the image and parameters to boot with.
1052 * The EFI boot loader is reworked taking the cue from
1053 * http://git.kernel.org/?p=boot/efilinux/efilinux.git on the need to
1054 * cap key kernel data structures at * 0x3FFFFFFF.
1055 * The kernel image, kernel command line and boot parameter block are copied
1056 * into allocated memory areas that honor the address capping requirement
1057 * prior to kernel handoff.
1060 * Can we move this allocation requirement to com32 linux loader in order
1061 * to avoid double copying kernel image?
1063 int efi_boot_linux(void *kernel_buf
, size_t kernel_size
,
1064 struct initramfs
*initramfs
,
1065 struct setup_data
*setup_data
,
1068 struct linux_header
*hdr
;
1069 struct boot_params
*bp
;
1071 EFI_PHYSICAL_ADDRESS addr
, pref_address
, kernel_start
= 0;
1072 UINT64 setup_sz
, init_size
= 0;
1075 if (check_linux_header(kernel_buf
))
1078 /* allocate for boot parameter block */
1080 status
= allocate_pages(AllocateMaxAddress
, EfiLoaderData
,
1081 BOOT_PARAM_BLKSIZE
, &addr
);
1082 if (status
!= EFI_SUCCESS
) {
1083 printf("Failed to allocate memory for kernel boot parameter block, bailing out\n");
1087 bp
= (struct boot_params
*)(UINTN
)addr
;
1089 memset((void *)bp
, 0x0, BOOT_PARAM_BLKSIZE
);
1090 /* Copy the first two sectors to boot_params */
1091 memcpy((char *)bp
, kernel_buf
, 2 * 512);
1092 hdr
= (struct linux_header
*)bp
;
1094 setup_sz
= (hdr
->setup_sects
+ 1) * 512;
1095 if (hdr
->version
>= 0x20a) {
1096 pref_address
= hdr
->pref_address
;
1097 init_size
= hdr
->init_size
;
1099 pref_address
= 0x100000;
1102 * We need to account for the fact that the kernel
1103 * needs room for decompression, otherwise we could
1104 * end up trashing other chunks of allocated memory.
1106 init_size
= (kernel_size
- setup_sz
) * 3;
1108 hdr
->type_of_loader
= SYSLINUX_EFILDR
; /* SYSLINUX boot loader module */
1109 _cmdline
= build_cmdline(cmdline
);
1113 hdr
->cmd_line_ptr
= (UINT32
)(UINTN
)_cmdline
;
1115 addr
= pref_address
;
1116 status
= allocate_pages(AllocateAddress
, EfiLoaderData
,
1117 EFI_SIZE_TO_PAGES(init_size
), &addr
);
1118 if (status
!= EFI_SUCCESS
) {
1120 * We failed to allocate the preferred address, so
1121 * just allocate some memory and hope for the best.
1123 if (!hdr
->relocatable_kernel
) {
1124 printf("Cannot relocate kernel, bailing out\n");
1128 status
= emalloc(init_size
, hdr
->kernel_alignment
, &addr
);
1129 if (status
!= EFI_SUCCESS
) {
1130 printf("Failed to allocate memory for kernel image, bailing out\n");
1134 kernel_start
= addr
;
1135 /* FIXME: we copy the kernel into the physical memory allocated here
1136 * The syslinux kernel image load elsewhere could allocate the EFI memory from here
1137 * prior to copying kernel and save an extra copy
1139 memcpy((void *)(UINTN
)kernel_start
, kernel_buf
+setup_sz
, kernel_size
-setup_sz
);
1141 hdr
->code32_start
= (UINT32
)((UINT64
)kernel_start
);
1143 dprintf("efi_boot_linux: kernel_start 0x%x kernel_size 0x%x initramfs 0x%x setup_data 0x%x cmdline 0x%x\n",
1144 kernel_start
, kernel_size
, initramfs
, setup_data
, _cmdline
);
1146 if (handle_ramdisks(hdr
, initramfs
))
1149 /* Attempt to use the handover protocol if available */
1150 if (hdr
->version
>= 0x20b && hdr
->handover_offset
)
1151 handover_boot(hdr
, bp
);
1153 setup_screen(&bp
->screen_info
);
1158 dprintf("efi_boot_linux: setup_sects %d kernel_size %d\n", hdr
->setup_sects
, kernel_size
);
1160 efi_console_restore();
1165 memcpy(&bp
->efi
.load_signature
, EFI_LOAD_SIG
, sizeof(uint32_t));
1167 asm volatile ("lidt %0" :: "m" (idt
));
1168 asm volatile ("lgdt %0" :: "m" (gdt
));
1170 kernel_jump(kernel_start
, bp
);
1176 efree((EFI_PHYSICAL_ADDRESS
)(unsigned long)_cmdline
,
1177 strlen(_cmdline
) + 1);
1180 efree((EFI_PHYSICAL_ADDRESS
)(unsigned long)bp
,
1181 BOOT_PARAM_BLKSIZE
);
1182 if (kernel_start
) efree(kernel_start
, init_size
);
1183 if (hdr
->ramdisk_size
)
1184 free_addr(hdr
->ramdisk_image
, hdr
->ramdisk_size
);
1189 extern struct disk
*efi_disk_init(EFI_HANDLE
);
1190 extern void serialcfg(uint16_t *, uint16_t *, uint16_t *);
1192 extern struct vesa_ops efi_vesa_ops
;
1194 struct mem_ops efi_mem_ops
= {
1195 .malloc
= efi_malloc
,
1196 .realloc
= efi_realloc
,
1200 struct firmware efi_fw
= {
1202 .disk_init
= efi_disk_init
,
1205 .get_serial_console_info
= serialcfg
,
1206 .adv_ops
= &efi_adv_ops
,
1207 .boot_linux
= efi_boot_linux
,
1208 .vesa
= &efi_vesa_ops
,
1209 .mem
= &efi_mem_ops
,
1212 static inline void syslinux_register_efi(void)
1217 extern void init(void);
1218 extern const struct fs_ops vfat_fs_ops
;
1219 extern const struct fs_ops pxe_fs_ops
;
1221 char free_high_memory
[4096];
1223 extern char __bss_start
[];
1224 extern char __bss_end
[];
1226 static void efi_setcwd(CHAR16
*dp
)
1232 /* Search for the start of the last path component */
1233 for (i
= StrLen(dp
) - 1; i
>= 0; i
--) {
1234 if (dp
[i
] == '\\' || dp
[i
] == '/')
1238 if (i
< 0 || i
> CURRENTDIR_MAX
) {
1243 c8
= CurrentDirName
;
1246 for (j
= 0; j
< i
; j
++) {
1257 EFI_STATUS
efi_main(EFI_HANDLE image
, EFI_SYSTEM_TABLE
*table
)
1259 EFI_PXE_BASE_CODE
*pxe
;
1260 EFI_LOADED_IMAGE
*info
;
1261 EFI_STATUS status
= EFI_SUCCESS
;
1262 const struct fs_ops
*ops
[] = { NULL
, NULL
};
1263 unsigned long len
= (unsigned long)__bss_end
- (unsigned long)__bss_start
;
1264 static struct efi_disk_private priv
;
1265 SIMPLE_INPUT_INTERFACE
*in
;
1269 memset(__bss_start
, 0, len
);
1270 InitializeLib(image
, table
);
1272 image_handle
= image
;
1273 syslinux_register_efi();
1278 status
= uefi_call_wrapper(BS
->HandleProtocol
, 3, image
,
1279 &LoadedImageProtocol
, (void **)&info
);
1280 if (status
!= EFI_SUCCESS
) {
1281 Print(L
"Failed to lookup LoadedImageProtocol\n");
1285 status
= uefi_call_wrapper(BS
->HandleProtocol
, 3, info
->DeviceHandle
,
1286 &PxeBaseCodeProtocol
, (void **)&pxe
);
1287 if (status
!= EFI_SUCCESS
) {
1289 * Use device handle to set up the volume root to
1290 * proceed with ADV init.
1292 if (EFI_ERROR(efi_set_volroot(info
->DeviceHandle
))) {
1293 Print(L
"Failed to locate root device to prep for ");
1294 Print(L
"file operations & ADV initialization\n");
1298 efi_derivative(SYSLINUX_FS_SYSLINUX
);
1299 ops
[0] = &vfat_fs_ops
;
1301 efi_derivative(SYSLINUX_FS_PXELINUX
);
1302 ops
[0] = &pxe_fs_ops
;
1305 /* setup timer for boot menu system support */
1306 status
= setup_default_timer(&timer_ev
);
1307 if (status
!= EFI_SUCCESS
) {
1308 Print(L
"Failed to set up EFI timer support, bailing out\n");
1312 /* TODO: once all errors are captured in efi_errno, bail out if necessary */
1314 priv
.dev_handle
= info
->DeviceHandle
;
1317 * Set the current working directory, which should be the
1318 * directory that syslinux.efi resides in.
1320 efi_setcwd(DevicePathToStr(info
->FilePath
));
1322 fs_init(ops
, (void *)&priv
);
1325 * There may be pending user input that wasn't processed by
1326 * whatever application invoked us. Consume and discard that
1331 status
= uefi_call_wrapper(in
->ReadKeyStroke
, 2, in
, &key
);
1332 } while (status
!= EFI_NOT_READY
);
1334 if (!setjmp(load_error_buf
))
1337 /* load_env32() failed.. cancel timer and bailout */
1338 status
= cancel_timer(timer_ev
);
1339 if (status
!= EFI_SUCCESS
)
1340 Print(L
"Failed to cancel EFI timer: %x\n", status
);
1343 * Tell the firmware that Syslinux failed to load.
1345 status
= EFI_LOAD_ERROR
;
1347 efi_console_restore();