2 * Common EFI (Extensible Firmware Interface) support functions
3 * Based on Extensible Firmware Interface Specification version 1.0
5 * Copyright (C) 1999 VA Linux Systems
6 * Copyright (C) 1999 Walt Drummond <drummond@valinux.com>
7 * Copyright (C) 1999-2002 Hewlett-Packard Co.
8 * David Mosberger-Tang <davidm@hpl.hp.com>
9 * Stephane Eranian <eranian@hpl.hp.com>
10 * Copyright (C) 2005-2008 Intel Co.
11 * Fenghua Yu <fenghua.yu@intel.com>
12 * Bibo Mao <bibo.mao@intel.com>
13 * Chandramouli Narayanan <mouli@linux.intel.com>
14 * Huang Ying <ying.huang@intel.com>
16 * Copied from efi_32.c to eliminate the duplicated code between EFI
17 * 32/64 support code. --ying 2007-10-26
19 * All EFI Runtime Services are not implemented yet as EFI only
20 * supports physical mode addressing on SoftSDV. This is to be fixed
21 * in a future version. --drummond 1999-07-20
23 * Implemented EFI runtime services and virtual mode calls. --davidm
25 * Goutham Rao: <goutham.rao@intel.com>
26 * Skip non-WB memory and ignore empty memory ranges.
29 #define pr_fmt(fmt) KBUILD_MODNAME ": " fmt
31 #include <linux/kernel.h>
32 #include <linux/init.h>
33 #include <linux/efi.h>
34 #include <linux/efi-bgrt.h>
35 #include <linux/export.h>
36 #include <linux/bootmem.h>
37 #include <linux/slab.h>
38 #include <linux/memblock.h>
39 #include <linux/spinlock.h>
40 #include <linux/uaccess.h>
41 #include <linux/time.h>
43 #include <linux/reboot.h>
44 #include <linux/bcd.h>
46 #include <asm/setup.h>
49 #include <asm/cacheflush.h>
50 #include <asm/tlbflush.h>
51 #include <asm/x86_init.h>
56 #define EFI_MIN_RESERVE 5120
58 #define EFI_DUMMY_GUID \
59 EFI_GUID(0x4424ac57, 0xbe4b, 0x47dd, 0x9e, 0x97, 0xed, 0x50, 0xf0, 0x9f, 0x92, 0xa9)
61 static efi_char16_t efi_dummy_name
[6] = { 'D', 'U', 'M', 'M', 'Y', 0 };
63 struct efi_memory_map memmap
;
65 static struct efi efi_phys __initdata
;
66 static efi_system_table_t efi_systab __initdata
;
68 unsigned long x86_efi_facility
;
70 static __initdata efi_config_table_type_t arch_tables
[] = {
72 {UV_SYSTEM_TABLE_GUID
, "UVsystab", &efi
.uv_systab
},
74 {NULL_GUID
, NULL
, NULL
},
78 * Returns 1 if 'facility' is enabled, 0 otherwise.
80 int efi_enabled(int facility
)
82 return test_bit(facility
, &x86_efi_facility
) != 0;
84 EXPORT_SYMBOL(efi_enabled
);
86 static bool __initdata disable_runtime
= false;
87 static int __init
setup_noefi(char *arg
)
89 disable_runtime
= true;
92 early_param("noefi", setup_noefi
);
95 EXPORT_SYMBOL(add_efi_memmap
);
97 static int __init
setup_add_efi_memmap(char *arg
)
102 early_param("add_efi_memmap", setup_add_efi_memmap
);
104 static bool efi_no_storage_paranoia
;
106 static int __init
setup_storage_paranoia(char *arg
)
108 efi_no_storage_paranoia
= true;
111 early_param("efi_no_storage_paranoia", setup_storage_paranoia
);
114 static efi_status_t
virt_efi_get_time(efi_time_t
*tm
, efi_time_cap_t
*tc
)
119 spin_lock_irqsave(&rtc_lock
, flags
);
120 status
= efi_call_virt2(get_time
, tm
, tc
);
121 spin_unlock_irqrestore(&rtc_lock
, flags
);
125 static efi_status_t
virt_efi_set_time(efi_time_t
*tm
)
130 spin_lock_irqsave(&rtc_lock
, flags
);
131 status
= efi_call_virt1(set_time
, tm
);
132 spin_unlock_irqrestore(&rtc_lock
, flags
);
136 static efi_status_t
virt_efi_get_wakeup_time(efi_bool_t
*enabled
,
143 spin_lock_irqsave(&rtc_lock
, flags
);
144 status
= efi_call_virt3(get_wakeup_time
,
145 enabled
, pending
, tm
);
146 spin_unlock_irqrestore(&rtc_lock
, flags
);
150 static efi_status_t
virt_efi_set_wakeup_time(efi_bool_t enabled
, efi_time_t
*tm
)
155 spin_lock_irqsave(&rtc_lock
, flags
);
156 status
= efi_call_virt2(set_wakeup_time
,
158 spin_unlock_irqrestore(&rtc_lock
, flags
);
162 static efi_status_t
virt_efi_get_variable(efi_char16_t
*name
,
165 unsigned long *data_size
,
168 return efi_call_virt5(get_variable
,
173 static efi_status_t
virt_efi_get_next_variable(unsigned long *name_size
,
177 return efi_call_virt3(get_next_variable
,
178 name_size
, name
, vendor
);
181 static efi_status_t
virt_efi_set_variable(efi_char16_t
*name
,
184 unsigned long data_size
,
187 return efi_call_virt5(set_variable
,
192 static efi_status_t
virt_efi_query_variable_info(u32 attr
,
194 u64
*remaining_space
,
195 u64
*max_variable_size
)
197 if (efi
.runtime_version
< EFI_2_00_SYSTEM_TABLE_REVISION
)
198 return EFI_UNSUPPORTED
;
200 return efi_call_virt4(query_variable_info
, attr
, storage_space
,
201 remaining_space
, max_variable_size
);
204 static efi_status_t
virt_efi_get_next_high_mono_count(u32
*count
)
206 return efi_call_virt1(get_next_high_mono_count
, count
);
209 static void virt_efi_reset_system(int reset_type
,
211 unsigned long data_size
,
214 efi_call_virt4(reset_system
, reset_type
, status
,
218 static efi_status_t
virt_efi_update_capsule(efi_capsule_header_t
**capsules
,
220 unsigned long sg_list
)
222 if (efi
.runtime_version
< EFI_2_00_SYSTEM_TABLE_REVISION
)
223 return EFI_UNSUPPORTED
;
225 return efi_call_virt3(update_capsule
, capsules
, count
, sg_list
);
228 static efi_status_t
virt_efi_query_capsule_caps(efi_capsule_header_t
**capsules
,
233 if (efi
.runtime_version
< EFI_2_00_SYSTEM_TABLE_REVISION
)
234 return EFI_UNSUPPORTED
;
236 return efi_call_virt4(query_capsule_caps
, capsules
, count
, max_size
,
240 static efi_status_t __init
phys_efi_set_virtual_address_map(
241 unsigned long memory_map_size
,
242 unsigned long descriptor_size
,
243 u32 descriptor_version
,
244 efi_memory_desc_t
*virtual_map
)
248 efi_call_phys_prelog();
249 status
= efi_call_phys4(efi_phys
.set_virtual_address_map
,
250 memory_map_size
, descriptor_size
,
251 descriptor_version
, virtual_map
);
252 efi_call_phys_epilog();
256 static efi_status_t __init
phys_efi_get_time(efi_time_t
*tm
,
262 spin_lock_irqsave(&rtc_lock
, flags
);
263 efi_call_phys_prelog();
264 status
= efi_call_phys2(efi_phys
.get_time
, virt_to_phys(tm
),
266 efi_call_phys_epilog();
267 spin_unlock_irqrestore(&rtc_lock
, flags
);
271 int efi_set_rtc_mmss(const struct timespec
*now
)
273 unsigned long nowtime
= now
->tv_sec
;
279 status
= efi
.get_time(&eft
, &cap
);
280 if (status
!= EFI_SUCCESS
) {
281 pr_err("Oops: efitime: can't read time!\n");
285 rtc_time_to_tm(nowtime
, &tm
);
286 if (!rtc_valid_tm(&tm
)) {
287 eft
.year
= tm
.tm_year
+ 1900;
288 eft
.month
= tm
.tm_mon
+ 1;
289 eft
.day
= tm
.tm_mday
;
290 eft
.minute
= tm
.tm_min
;
291 eft
.second
= tm
.tm_sec
;
295 "%s: Invalid EFI RTC value: write of %lx to EFI RTC failed\n",
296 __FUNCTION__
, nowtime
);
300 status
= efi
.set_time(&eft
);
301 if (status
!= EFI_SUCCESS
) {
302 pr_err("Oops: efitime: can't write time!\n");
308 void efi_get_time(struct timespec
*now
)
314 status
= efi
.get_time(&eft
, &cap
);
315 if (status
!= EFI_SUCCESS
)
316 pr_err("Oops: efitime: can't read time!\n");
318 now
->tv_sec
= mktime(eft
.year
, eft
.month
, eft
.day
, eft
.hour
,
319 eft
.minute
, eft
.second
);
324 * Tell the kernel about the EFI memory map. This might include
325 * more than the max 128 entries that can fit in the e820 legacy
326 * (zeropage) memory map.
329 static void __init
do_add_efi_memmap(void)
333 for (p
= memmap
.map
; p
< memmap
.map_end
; p
+= memmap
.desc_size
) {
334 efi_memory_desc_t
*md
= p
;
335 unsigned long long start
= md
->phys_addr
;
336 unsigned long long size
= md
->num_pages
<< EFI_PAGE_SHIFT
;
340 case EFI_LOADER_CODE
:
341 case EFI_LOADER_DATA
:
342 case EFI_BOOT_SERVICES_CODE
:
343 case EFI_BOOT_SERVICES_DATA
:
344 case EFI_CONVENTIONAL_MEMORY
:
345 if (md
->attribute
& EFI_MEMORY_WB
)
346 e820_type
= E820_RAM
;
348 e820_type
= E820_RESERVED
;
350 case EFI_ACPI_RECLAIM_MEMORY
:
351 e820_type
= E820_ACPI
;
353 case EFI_ACPI_MEMORY_NVS
:
354 e820_type
= E820_NVS
;
356 case EFI_UNUSABLE_MEMORY
:
357 e820_type
= E820_UNUSABLE
;
361 * EFI_RESERVED_TYPE EFI_RUNTIME_SERVICES_CODE
362 * EFI_RUNTIME_SERVICES_DATA EFI_MEMORY_MAPPED_IO
363 * EFI_MEMORY_MAPPED_IO_PORT_SPACE EFI_PAL_CODE
365 e820_type
= E820_RESERVED
;
368 e820_add_region(start
, size
, e820_type
);
370 sanitize_e820_map(e820
.map
, ARRAY_SIZE(e820
.map
), &e820
.nr_map
);
373 int __init
efi_memblock_x86_reserve_range(void)
375 struct efi_info
*e
= &boot_params
.efi_info
;
379 /* Can't handle data above 4GB at this time */
380 if (e
->efi_memmap_hi
) {
381 pr_err("Memory map is above 4GB, disabling EFI.\n");
384 pmap
= e
->efi_memmap
;
386 pmap
= (e
->efi_memmap
| ((__u64
)e
->efi_memmap_hi
<< 32));
388 memmap
.phys_map
= (void *)pmap
;
389 memmap
.nr_map
= e
->efi_memmap_size
/
391 memmap
.desc_size
= e
->efi_memdesc_size
;
392 memmap
.desc_version
= e
->efi_memdesc_version
;
394 memblock_reserve(pmap
, memmap
.nr_map
* memmap
.desc_size
);
396 efi
.memmap
= &memmap
;
402 static void __init
print_efi_memmap(void)
404 efi_memory_desc_t
*md
;
408 for (p
= memmap
.map
, i
= 0;
410 p
+= memmap
.desc_size
, i
++) {
412 pr_info("mem%02u: type=%u, attr=0x%llx, "
413 "range=[0x%016llx-0x%016llx) (%lluMB)\n",
414 i
, md
->type
, md
->attribute
, md
->phys_addr
,
415 md
->phys_addr
+ (md
->num_pages
<< EFI_PAGE_SHIFT
),
416 (md
->num_pages
>> (20 - EFI_PAGE_SHIFT
)));
419 #endif /* EFI_DEBUG */
421 void __init
efi_reserve_boot_services(void)
425 for (p
= memmap
.map
; p
< memmap
.map_end
; p
+= memmap
.desc_size
) {
426 efi_memory_desc_t
*md
= p
;
427 u64 start
= md
->phys_addr
;
428 u64 size
= md
->num_pages
<< EFI_PAGE_SHIFT
;
430 if (md
->type
!= EFI_BOOT_SERVICES_CODE
&&
431 md
->type
!= EFI_BOOT_SERVICES_DATA
)
433 /* Only reserve where possible:
434 * - Not within any already allocated areas
435 * - Not over any memory area (really needed, if above?)
436 * - Not within any part of the kernel
437 * - Not the bios reserved area
439 if ((start
+size
>= __pa_symbol(_text
)
440 && start
<= __pa_symbol(_end
)) ||
441 !e820_all_mapped(start
, start
+size
, E820_RAM
) ||
442 memblock_is_region_reserved(start
, size
)) {
443 /* Could not reserve, skip it */
445 memblock_dbg("Could not reserve boot range "
446 "[0x%010llx-0x%010llx]\n",
447 start
, start
+size
-1);
449 memblock_reserve(start
, size
);
453 void __init
efi_unmap_memmap(void)
455 clear_bit(EFI_MEMMAP
, &x86_efi_facility
);
457 early_iounmap(memmap
.map
, memmap
.nr_map
* memmap
.desc_size
);
462 void __init
efi_free_boot_services(void)
466 if (!efi_is_native())
469 for (p
= memmap
.map
; p
< memmap
.map_end
; p
+= memmap
.desc_size
) {
470 efi_memory_desc_t
*md
= p
;
471 unsigned long long start
= md
->phys_addr
;
472 unsigned long long size
= md
->num_pages
<< EFI_PAGE_SHIFT
;
474 if (md
->type
!= EFI_BOOT_SERVICES_CODE
&&
475 md
->type
!= EFI_BOOT_SERVICES_DATA
)
478 /* Could not reserve boot area */
482 free_bootmem_late(start
, size
);
488 static int __init
efi_systab_init(void *phys
)
490 if (efi_enabled(EFI_64BIT
)) {
491 efi_system_table_64_t
*systab64
;
494 systab64
= early_ioremap((unsigned long)phys
,
496 if (systab64
== NULL
) {
497 pr_err("Couldn't map the system table!\n");
501 efi_systab
.hdr
= systab64
->hdr
;
502 efi_systab
.fw_vendor
= systab64
->fw_vendor
;
503 tmp
|= systab64
->fw_vendor
;
504 efi_systab
.fw_revision
= systab64
->fw_revision
;
505 efi_systab
.con_in_handle
= systab64
->con_in_handle
;
506 tmp
|= systab64
->con_in_handle
;
507 efi_systab
.con_in
= systab64
->con_in
;
508 tmp
|= systab64
->con_in
;
509 efi_systab
.con_out_handle
= systab64
->con_out_handle
;
510 tmp
|= systab64
->con_out_handle
;
511 efi_systab
.con_out
= systab64
->con_out
;
512 tmp
|= systab64
->con_out
;
513 efi_systab
.stderr_handle
= systab64
->stderr_handle
;
514 tmp
|= systab64
->stderr_handle
;
515 efi_systab
.stderr
= systab64
->stderr
;
516 tmp
|= systab64
->stderr
;
517 efi_systab
.runtime
= (void *)(unsigned long)systab64
->runtime
;
518 tmp
|= systab64
->runtime
;
519 efi_systab
.boottime
= (void *)(unsigned long)systab64
->boottime
;
520 tmp
|= systab64
->boottime
;
521 efi_systab
.nr_tables
= systab64
->nr_tables
;
522 efi_systab
.tables
= systab64
->tables
;
523 tmp
|= systab64
->tables
;
525 early_iounmap(systab64
, sizeof(*systab64
));
528 pr_err("EFI data located above 4GB, disabling EFI.\n");
533 efi_system_table_32_t
*systab32
;
535 systab32
= early_ioremap((unsigned long)phys
,
537 if (systab32
== NULL
) {
538 pr_err("Couldn't map the system table!\n");
542 efi_systab
.hdr
= systab32
->hdr
;
543 efi_systab
.fw_vendor
= systab32
->fw_vendor
;
544 efi_systab
.fw_revision
= systab32
->fw_revision
;
545 efi_systab
.con_in_handle
= systab32
->con_in_handle
;
546 efi_systab
.con_in
= systab32
->con_in
;
547 efi_systab
.con_out_handle
= systab32
->con_out_handle
;
548 efi_systab
.con_out
= systab32
->con_out
;
549 efi_systab
.stderr_handle
= systab32
->stderr_handle
;
550 efi_systab
.stderr
= systab32
->stderr
;
551 efi_systab
.runtime
= (void *)(unsigned long)systab32
->runtime
;
552 efi_systab
.boottime
= (void *)(unsigned long)systab32
->boottime
;
553 efi_systab
.nr_tables
= systab32
->nr_tables
;
554 efi_systab
.tables
= systab32
->tables
;
556 early_iounmap(systab32
, sizeof(*systab32
));
559 efi
.systab
= &efi_systab
;
562 * Verify the EFI Table
564 if (efi
.systab
->hdr
.signature
!= EFI_SYSTEM_TABLE_SIGNATURE
) {
565 pr_err("System table signature incorrect!\n");
568 if ((efi
.systab
->hdr
.revision
>> 16) == 0)
569 pr_err("Warning: System table version "
570 "%d.%02d, expected 1.00 or greater!\n",
571 efi
.systab
->hdr
.revision
>> 16,
572 efi
.systab
->hdr
.revision
& 0xffff);
577 static int __init
efi_runtime_init(void)
579 efi_runtime_services_t
*runtime
;
582 * Check out the runtime services table. We need to map
583 * the runtime services table so that we can grab the physical
584 * address of several of the EFI runtime functions, needed to
585 * set the firmware into virtual mode.
587 runtime
= early_ioremap((unsigned long)efi
.systab
->runtime
,
588 sizeof(efi_runtime_services_t
));
590 pr_err("Could not map the runtime service table!\n");
594 * We will only need *early* access to the following
595 * two EFI runtime services before set_virtual_address_map
598 efi_phys
.get_time
= (efi_get_time_t
*)runtime
->get_time
;
599 efi_phys
.set_virtual_address_map
=
600 (efi_set_virtual_address_map_t
*)
601 runtime
->set_virtual_address_map
;
603 * Make efi_get_time can be called before entering
606 efi
.get_time
= phys_efi_get_time
;
607 early_iounmap(runtime
, sizeof(efi_runtime_services_t
));
612 static int __init
efi_memmap_init(void)
614 /* Map the EFI memory map */
615 memmap
.map
= early_ioremap((unsigned long)memmap
.phys_map
,
616 memmap
.nr_map
* memmap
.desc_size
);
617 if (memmap
.map
== NULL
) {
618 pr_err("Could not map the memory map!\n");
621 memmap
.map_end
= memmap
.map
+ (memmap
.nr_map
* memmap
.desc_size
);
629 void __init
efi_init(void)
632 char vendor
[100] = "unknown";
637 if (boot_params
.efi_info
.efi_systab_hi
||
638 boot_params
.efi_info
.efi_memmap_hi
) {
639 pr_info("Table located above 4GB, disabling EFI.\n");
642 efi_phys
.systab
= (efi_system_table_t
*)boot_params
.efi_info
.efi_systab
;
644 efi_phys
.systab
= (efi_system_table_t
*)
645 (boot_params
.efi_info
.efi_systab
|
646 ((__u64
)boot_params
.efi_info
.efi_systab_hi
<<32));
649 if (efi_systab_init(efi_phys
.systab
))
652 set_bit(EFI_SYSTEM_TABLES
, &x86_efi_facility
);
655 * Show what we know for posterity
657 c16
= tmp
= early_ioremap(efi
.systab
->fw_vendor
, 2);
659 for (i
= 0; i
< sizeof(vendor
) - 1 && *c16
; ++i
)
663 pr_err("Could not map the firmware vendor!\n");
664 early_iounmap(tmp
, 2);
666 pr_info("EFI v%u.%.02u by %s\n",
667 efi
.systab
->hdr
.revision
>> 16,
668 efi
.systab
->hdr
.revision
& 0xffff, vendor
);
670 if (efi_config_init(arch_tables
))
673 set_bit(EFI_CONFIG_TABLES
, &x86_efi_facility
);
676 * Note: We currently don't support runtime services on an EFI
677 * that doesn't match the kernel 32/64-bit mode.
680 if (!efi_is_native())
681 pr_info("No EFI runtime due to 32/64-bit mismatch with kernel\n");
683 if (disable_runtime
|| efi_runtime_init())
685 set_bit(EFI_RUNTIME_SERVICES
, &x86_efi_facility
);
688 if (efi_memmap_init())
691 set_bit(EFI_MEMMAP
, &x86_efi_facility
);
694 if (efi_is_native()) {
695 x86_platform
.get_wallclock
= efi_get_time
;
696 x86_platform
.set_wallclock
= efi_set_rtc_mmss
;
705 void __init
efi_late_init(void)
710 void __init
efi_set_executable(efi_memory_desc_t
*md
, bool executable
)
714 addr
= md
->virt_addr
;
715 npages
= md
->num_pages
;
717 memrange_efi_to_native(&addr
, &npages
);
720 set_memory_x(addr
, npages
);
722 set_memory_nx(addr
, npages
);
725 static void __init
runtime_code_page_mkexec(void)
727 efi_memory_desc_t
*md
;
730 /* Make EFI runtime service code area executable */
731 for (p
= memmap
.map
; p
< memmap
.map_end
; p
+= memmap
.desc_size
) {
734 if (md
->type
!= EFI_RUNTIME_SERVICES_CODE
)
737 efi_set_executable(md
, true);
741 void efi_memory_uc(u64 addr
, unsigned long size
)
743 unsigned long page_shift
= 1UL << EFI_PAGE_SHIFT
;
746 npages
= round_up(size
, page_shift
) / page_shift
;
747 memrange_efi_to_native(&addr
, &npages
);
748 set_memory_uc(addr
, npages
);
752 * This function will switch the EFI runtime services to virtual mode.
753 * Essentially, look through the EFI memmap and map every region that
754 * has the runtime attribute bit set in its memory descriptor and update
755 * that memory descriptor with the virtual address obtained from ioremap().
756 * This enables the runtime services to be called without having to
757 * thunk back into physical mode for every invocation.
759 void __init
efi_enter_virtual_mode(void)
761 efi_memory_desc_t
*md
, *prev_md
= NULL
;
764 u64 end
, systab
, start_pfn
, end_pfn
;
765 void *p
, *va
, *new_memmap
= NULL
;
771 * We don't do virtual mode, since we don't do runtime services, on
775 if (!efi_is_native()) {
780 /* Merge contiguous regions of the same type and attribute */
781 for (p
= memmap
.map
; p
< memmap
.map_end
; p
+= memmap
.desc_size
) {
790 if (prev_md
->type
!= md
->type
||
791 prev_md
->attribute
!= md
->attribute
) {
796 prev_size
= prev_md
->num_pages
<< EFI_PAGE_SHIFT
;
798 if (md
->phys_addr
== (prev_md
->phys_addr
+ prev_size
)) {
799 prev_md
->num_pages
+= md
->num_pages
;
800 md
->type
= EFI_RESERVED_TYPE
;
807 for (p
= memmap
.map
; p
< memmap
.map_end
; p
+= memmap
.desc_size
) {
809 if (!(md
->attribute
& EFI_MEMORY_RUNTIME
) &&
810 md
->type
!= EFI_BOOT_SERVICES_CODE
&&
811 md
->type
!= EFI_BOOT_SERVICES_DATA
)
814 size
= md
->num_pages
<< EFI_PAGE_SHIFT
;
815 end
= md
->phys_addr
+ size
;
817 start_pfn
= PFN_DOWN(md
->phys_addr
);
818 end_pfn
= PFN_UP(end
);
819 if (pfn_range_is_mapped(start_pfn
, end_pfn
)) {
820 va
= __va(md
->phys_addr
);
822 if (!(md
->attribute
& EFI_MEMORY_WB
))
823 efi_memory_uc((u64
)(unsigned long)va
, size
);
825 va
= efi_ioremap(md
->phys_addr
, size
,
826 md
->type
, md
->attribute
);
828 md
->virt_addr
= (u64
) (unsigned long) va
;
831 pr_err("ioremap of 0x%llX failed!\n",
832 (unsigned long long)md
->phys_addr
);
836 systab
= (u64
) (unsigned long) efi_phys
.systab
;
837 if (md
->phys_addr
<= systab
&& systab
< end
) {
838 systab
+= md
->virt_addr
- md
->phys_addr
;
839 efi
.systab
= (efi_system_table_t
*) (unsigned long) systab
;
841 new_memmap
= krealloc(new_memmap
,
842 (count
+ 1) * memmap
.desc_size
,
844 memcpy(new_memmap
+ (count
* memmap
.desc_size
), md
,
851 status
= phys_efi_set_virtual_address_map(
852 memmap
.desc_size
* count
,
855 (efi_memory_desc_t
*)__pa(new_memmap
));
857 if (status
!= EFI_SUCCESS
) {
858 pr_alert("Unable to switch EFI into virtual mode "
859 "(status=%lx)!\n", status
);
860 panic("EFI call to SetVirtualAddressMap() failed!");
864 * Now that EFI is in virtual mode, update the function
865 * pointers in the runtime service table to the new virtual addresses.
867 * Call EFI services through wrapper functions.
869 efi
.runtime_version
= efi_systab
.hdr
.revision
;
870 efi
.get_time
= virt_efi_get_time
;
871 efi
.set_time
= virt_efi_set_time
;
872 efi
.get_wakeup_time
= virt_efi_get_wakeup_time
;
873 efi
.set_wakeup_time
= virt_efi_set_wakeup_time
;
874 efi
.get_variable
= virt_efi_get_variable
;
875 efi
.get_next_variable
= virt_efi_get_next_variable
;
876 efi
.set_variable
= virt_efi_set_variable
;
877 efi
.get_next_high_mono_count
= virt_efi_get_next_high_mono_count
;
878 efi
.reset_system
= virt_efi_reset_system
;
879 efi
.set_virtual_address_map
= NULL
;
880 efi
.query_variable_info
= virt_efi_query_variable_info
;
881 efi
.update_capsule
= virt_efi_update_capsule
;
882 efi
.query_capsule_caps
= virt_efi_query_capsule_caps
;
883 if (__supported_pte_mask
& _PAGE_NX
)
884 runtime_code_page_mkexec();
888 /* clean DUMMY object */
889 efi
.set_variable(efi_dummy_name
, &EFI_DUMMY_GUID
,
890 EFI_VARIABLE_NON_VOLATILE
|
891 EFI_VARIABLE_BOOTSERVICE_ACCESS
|
892 EFI_VARIABLE_RUNTIME_ACCESS
,
897 * Convenience functions to obtain memory types and attributes
899 u32
efi_mem_type(unsigned long phys_addr
)
901 efi_memory_desc_t
*md
;
904 if (!efi_enabled(EFI_MEMMAP
))
907 for (p
= memmap
.map
; p
< memmap
.map_end
; p
+= memmap
.desc_size
) {
909 if ((md
->phys_addr
<= phys_addr
) &&
910 (phys_addr
< (md
->phys_addr
+
911 (md
->num_pages
<< EFI_PAGE_SHIFT
))))
917 u64
efi_mem_attributes(unsigned long phys_addr
)
919 efi_memory_desc_t
*md
;
922 for (p
= memmap
.map
; p
< memmap
.map_end
; p
+= memmap
.desc_size
) {
924 if ((md
->phys_addr
<= phys_addr
) &&
925 (phys_addr
< (md
->phys_addr
+
926 (md
->num_pages
<< EFI_PAGE_SHIFT
))))
927 return md
->attribute
;
933 * Some firmware has serious problems when using more than 50% of the EFI
934 * variable store, i.e. it triggers bugs that can brick machines. Ensure that
935 * we never use more than this safe limit.
937 * Return EFI_SUCCESS if it is safe to write 'size' bytes to the variable
940 efi_status_t
efi_query_variable_store(u32 attributes
, unsigned long size
)
943 u64 storage_size
, remaining_size
, max_size
;
945 if (!(attributes
& EFI_VARIABLE_NON_VOLATILE
))
948 status
= efi
.query_variable_info(attributes
, &storage_size
,
949 &remaining_size
, &max_size
);
950 if (status
!= EFI_SUCCESS
)
954 * Some firmware implementations refuse to boot if there's insufficient
955 * space in the variable store. We account for that by refusing the
956 * write if permitting it would reduce the available space to under
957 * 5KB. This figure was provided by Samsung, so should be safe.
959 if ((remaining_size
- size
< EFI_MIN_RESERVE
) &&
960 !efi_no_storage_paranoia
) {
963 * Triggering garbage collection may require that the firmware
964 * generate a real EFI_OUT_OF_RESOURCES error. We can force
965 * that by attempting to use more space than is available.
967 unsigned long dummy_size
= remaining_size
+ 1024;
968 void *dummy
= kzalloc(dummy_size
, GFP_ATOMIC
);
971 return EFI_OUT_OF_RESOURCES
;
973 status
= efi
.set_variable(efi_dummy_name
, &EFI_DUMMY_GUID
,
974 EFI_VARIABLE_NON_VOLATILE
|
975 EFI_VARIABLE_BOOTSERVICE_ACCESS
|
976 EFI_VARIABLE_RUNTIME_ACCESS
,
979 if (status
== EFI_SUCCESS
) {
981 * This should have failed, so if it didn't make sure
982 * that we delete it...
984 efi
.set_variable(efi_dummy_name
, &EFI_DUMMY_GUID
,
985 EFI_VARIABLE_NON_VOLATILE
|
986 EFI_VARIABLE_BOOTSERVICE_ACCESS
|
987 EFI_VARIABLE_RUNTIME_ACCESS
,
994 * The runtime code may now have triggered a garbage collection
995 * run, so check the variable info again
997 status
= efi
.query_variable_info(attributes
, &storage_size
,
998 &remaining_size
, &max_size
);
1000 if (status
!= EFI_SUCCESS
)
1004 * There still isn't enough room, so return an error
1006 if (remaining_size
- size
< EFI_MIN_RESERVE
)
1007 return EFI_OUT_OF_RESOURCES
;
1012 EXPORT_SYMBOL_GPL(efi_query_variable_store
);