x86, efi: Remove virtual-mode SetVirtualAddressMap call
[GitHub/mt8127/android_kernel_alcatel_ttab.git] / arch / x86 / platform / efi / efi.c
CommitLineData
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1/*
2 * Common EFI (Extensible Firmware Interface) support functions
3 * Based on Extensible Firmware Interface Specification version 1.0
4 *
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>
15 *
16 * Copied from efi_32.c to eliminate the duplicated code between EFI
17 * 32/64 support code. --ying 2007-10-26
18 *
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
22 *
23 * Implemented EFI runtime services and virtual mode calls. --davidm
24 *
25 * Goutham Rao: <goutham.rao@intel.com>
26 * Skip non-WB memory and ignore empty memory ranges.
27 */
28
29#include <linux/kernel.h>
30#include <linux/init.h>
31#include <linux/efi.h>
32#include <linux/bootmem.h>
a9ce6bc1 33#include <linux/memblock.h>
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34#include <linux/spinlock.h>
35#include <linux/uaccess.h>
36#include <linux/time.h>
37#include <linux/io.h>
38#include <linux/reboot.h>
39#include <linux/bcd.h>
40
41#include <asm/setup.h>
42#include <asm/efi.h>
43#include <asm/time.h>
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44#include <asm/cacheflush.h>
45#include <asm/tlbflush.h>
7bd867df 46#include <asm/x86_init.h>
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47
48#define EFI_DEBUG 1
49#define PFX "EFI: "
50
51int efi_enabled;
52EXPORT_SYMBOL(efi_enabled);
53
54struct efi efi;
55EXPORT_SYMBOL(efi);
56
57struct efi_memory_map memmap;
58
ecaea42e 59static struct efi efi_phys __initdata;
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60static efi_system_table_t efi_systab __initdata;
61
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62static int __init setup_noefi(char *arg)
63{
64 efi_enabled = 0;
65 return 0;
66}
67early_param("noefi", setup_noefi);
68
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69int add_efi_memmap;
70EXPORT_SYMBOL(add_efi_memmap);
71
72static int __init setup_add_efi_memmap(char *arg)
73{
74 add_efi_memmap = 1;
75 return 0;
76}
77early_param("add_efi_memmap", setup_add_efi_memmap);
78
79
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80static efi_status_t virt_efi_get_time(efi_time_t *tm, efi_time_cap_t *tc)
81{
82 return efi_call_virt2(get_time, tm, tc);
83}
84
85static efi_status_t virt_efi_set_time(efi_time_t *tm)
86{
87 return efi_call_virt1(set_time, tm);
88}
89
90static efi_status_t virt_efi_get_wakeup_time(efi_bool_t *enabled,
91 efi_bool_t *pending,
92 efi_time_t *tm)
93{
94 return efi_call_virt3(get_wakeup_time,
95 enabled, pending, tm);
96}
97
98static efi_status_t virt_efi_set_wakeup_time(efi_bool_t enabled, efi_time_t *tm)
99{
100 return efi_call_virt2(set_wakeup_time,
101 enabled, tm);
102}
103
104static efi_status_t virt_efi_get_variable(efi_char16_t *name,
105 efi_guid_t *vendor,
106 u32 *attr,
107 unsigned long *data_size,
108 void *data)
109{
110 return efi_call_virt5(get_variable,
111 name, vendor, attr,
112 data_size, data);
113}
114
115static efi_status_t virt_efi_get_next_variable(unsigned long *name_size,
116 efi_char16_t *name,
117 efi_guid_t *vendor)
118{
119 return efi_call_virt3(get_next_variable,
120 name_size, name, vendor);
121}
122
123static efi_status_t virt_efi_set_variable(efi_char16_t *name,
124 efi_guid_t *vendor,
125 unsigned long attr,
126 unsigned long data_size,
127 void *data)
128{
129 return efi_call_virt5(set_variable,
130 name, vendor, attr,
131 data_size, data);
132}
133
134static efi_status_t virt_efi_get_next_high_mono_count(u32 *count)
135{
136 return efi_call_virt1(get_next_high_mono_count, count);
137}
138
139static void virt_efi_reset_system(int reset_type,
140 efi_status_t status,
141 unsigned long data_size,
142 efi_char16_t *data)
143{
144 efi_call_virt4(reset_system, reset_type, status,
145 data_size, data);
146}
147
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148static efi_status_t __init phys_efi_set_virtual_address_map(
149 unsigned long memory_map_size,
150 unsigned long descriptor_size,
151 u32 descriptor_version,
152 efi_memory_desc_t *virtual_map)
153{
154 efi_status_t status;
155
156 efi_call_phys_prelog();
157 status = efi_call_phys4(efi_phys.set_virtual_address_map,
158 memory_map_size, descriptor_size,
159 descriptor_version, virtual_map);
160 efi_call_phys_epilog();
161 return status;
162}
163
164static efi_status_t __init phys_efi_get_time(efi_time_t *tm,
165 efi_time_cap_t *tc)
166{
167 efi_status_t status;
168
169 efi_call_phys_prelog();
170 status = efi_call_phys2(efi_phys.get_time, tm, tc);
171 efi_call_phys_epilog();
172 return status;
173}
174
175int efi_set_rtc_mmss(unsigned long nowtime)
176{
177 int real_seconds, real_minutes;
178 efi_status_t status;
179 efi_time_t eft;
180 efi_time_cap_t cap;
181
182 status = efi.get_time(&eft, &cap);
183 if (status != EFI_SUCCESS) {
184 printk(KERN_ERR "Oops: efitime: can't read time!\n");
185 return -1;
186 }
187
188 real_seconds = nowtime % 60;
189 real_minutes = nowtime / 60;
190 if (((abs(real_minutes - eft.minute) + 15)/30) & 1)
191 real_minutes += 30;
192 real_minutes %= 60;
193 eft.minute = real_minutes;
194 eft.second = real_seconds;
195
196 status = efi.set_time(&eft);
197 if (status != EFI_SUCCESS) {
198 printk(KERN_ERR "Oops: efitime: can't write time!\n");
199 return -1;
200 }
201 return 0;
202}
203
204unsigned long efi_get_time(void)
205{
206 efi_status_t status;
207 efi_time_t eft;
208 efi_time_cap_t cap;
209
210 status = efi.get_time(&eft, &cap);
211 if (status != EFI_SUCCESS)
212 printk(KERN_ERR "Oops: efitime: can't read time!\n");
213
214 return mktime(eft.year, eft.month, eft.day, eft.hour,
215 eft.minute, eft.second);
216}
217
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218/*
219 * Tell the kernel about the EFI memory map. This might include
220 * more than the max 128 entries that can fit in the e820 legacy
221 * (zeropage) memory map.
222 */
223
200001eb 224static void __init do_add_efi_memmap(void)
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225{
226 void *p;
227
228 for (p = memmap.map; p < memmap.map_end; p += memmap.desc_size) {
229 efi_memory_desc_t *md = p;
230 unsigned long long start = md->phys_addr;
231 unsigned long long size = md->num_pages << EFI_PAGE_SHIFT;
232 int e820_type;
233
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234 switch (md->type) {
235 case EFI_LOADER_CODE:
236 case EFI_LOADER_DATA:
237 case EFI_BOOT_SERVICES_CODE:
238 case EFI_BOOT_SERVICES_DATA:
239 case EFI_CONVENTIONAL_MEMORY:
240 if (md->attribute & EFI_MEMORY_WB)
241 e820_type = E820_RAM;
242 else
243 e820_type = E820_RESERVED;
244 break;
245 case EFI_ACPI_RECLAIM_MEMORY:
246 e820_type = E820_ACPI;
247 break;
248 case EFI_ACPI_MEMORY_NVS:
249 e820_type = E820_NVS;
250 break;
251 case EFI_UNUSABLE_MEMORY:
252 e820_type = E820_UNUSABLE;
253 break;
254 default:
255 /*
256 * EFI_RESERVED_TYPE EFI_RUNTIME_SERVICES_CODE
257 * EFI_RUNTIME_SERVICES_DATA EFI_MEMORY_MAPPED_IO
258 * EFI_MEMORY_MAPPED_IO_PORT_SPACE EFI_PAL_CODE
259 */
69c91893 260 e820_type = E820_RESERVED;
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261 break;
262 }
d0be6bde 263 e820_add_region(start, size, e820_type);
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264 }
265 sanitize_e820_map(e820.map, ARRAY_SIZE(e820.map), &e820.nr_map);
266}
267
a9ce6bc1 268void __init efi_memblock_x86_reserve_range(void)
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269{
270 unsigned long pmap;
271
05486fa7 272#ifdef CONFIG_X86_32
ecacf09f 273 pmap = boot_params.efi_info.efi_memmap;
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274#else
275 pmap = (boot_params.efi_info.efi_memmap |
276 ((__u64)boot_params.efi_info.efi_memmap_hi<<32));
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277#endif
278 memmap.phys_map = (void *)pmap;
279 memmap.nr_map = boot_params.efi_info.efi_memmap_size /
280 boot_params.efi_info.efi_memdesc_size;
281 memmap.desc_version = boot_params.efi_info.efi_memdesc_version;
282 memmap.desc_size = boot_params.efi_info.efi_memdesc_size;
a9ce6bc1 283 memblock_x86_reserve_range(pmap, pmap + memmap.nr_map * memmap.desc_size,
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284 "EFI memmap");
285}
286
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287#if EFI_DEBUG
288static void __init print_efi_memmap(void)
289{
290 efi_memory_desc_t *md;
291 void *p;
292 int i;
293
294 for (p = memmap.map, i = 0;
295 p < memmap.map_end;
296 p += memmap.desc_size, i++) {
297 md = p;
298 printk(KERN_INFO PFX "mem%02u: type=%u, attr=0x%llx, "
299 "range=[0x%016llx-0x%016llx) (%lluMB)\n",
300 i, md->type, md->attribute, md->phys_addr,
301 md->phys_addr + (md->num_pages << EFI_PAGE_SHIFT),
302 (md->num_pages >> (20 - EFI_PAGE_SHIFT)));
303 }
304}
305#endif /* EFI_DEBUG */
306
307void __init efi_init(void)
308{
309 efi_config_table_t *config_tables;
310 efi_runtime_services_t *runtime;
311 efi_char16_t *c16;
312 char vendor[100] = "unknown";
313 int i = 0;
314 void *tmp;
315
05486fa7 316#ifdef CONFIG_X86_32
5b83683f 317 efi_phys.systab = (efi_system_table_t *)boot_params.efi_info.efi_systab;
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318#else
319 efi_phys.systab = (efi_system_table_t *)
320 (boot_params.efi_info.efi_systab |
321 ((__u64)boot_params.efi_info.efi_systab_hi<<32));
5b83683f 322#endif
5b83683f 323
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324 efi.systab = early_ioremap((unsigned long)efi_phys.systab,
325 sizeof(efi_system_table_t));
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326 if (efi.systab == NULL)
327 printk(KERN_ERR "Couldn't map the EFI system table!\n");
328 memcpy(&efi_systab, efi.systab, sizeof(efi_system_table_t));
beacfaac 329 early_iounmap(efi.systab, sizeof(efi_system_table_t));
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330 efi.systab = &efi_systab;
331
332 /*
333 * Verify the EFI Table
334 */
335 if (efi.systab->hdr.signature != EFI_SYSTEM_TABLE_SIGNATURE)
336 printk(KERN_ERR "EFI system table signature incorrect!\n");
337 if ((efi.systab->hdr.revision >> 16) == 0)
338 printk(KERN_ERR "Warning: EFI system table version "
339 "%d.%02d, expected 1.00 or greater!\n",
340 efi.systab->hdr.revision >> 16,
341 efi.systab->hdr.revision & 0xffff);
342
343 /*
344 * Show what we know for posterity
345 */
beacfaac 346 c16 = tmp = early_ioremap(efi.systab->fw_vendor, 2);
5b83683f 347 if (c16) {
fdb8a427 348 for (i = 0; i < sizeof(vendor) - 1 && *c16; ++i)
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349 vendor[i] = *c16++;
350 vendor[i] = '\0';
351 } else
352 printk(KERN_ERR PFX "Could not map the firmware vendor!\n");
beacfaac 353 early_iounmap(tmp, 2);
5b83683f 354
3235dc3f 355 printk(KERN_INFO "EFI v%u.%.02u by %s\n",
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356 efi.systab->hdr.revision >> 16,
357 efi.systab->hdr.revision & 0xffff, vendor);
358
359 /*
360 * Let's see what config tables the firmware passed to us.
361 */
beacfaac 362 config_tables = early_ioremap(
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363 efi.systab->tables,
364 efi.systab->nr_tables * sizeof(efi_config_table_t));
365 if (config_tables == NULL)
366 printk(KERN_ERR "Could not map EFI Configuration Table!\n");
367
368 printk(KERN_INFO);
369 for (i = 0; i < efi.systab->nr_tables; i++) {
370 if (!efi_guidcmp(config_tables[i].guid, MPS_TABLE_GUID)) {
371 efi.mps = config_tables[i].table;
372 printk(" MPS=0x%lx ", config_tables[i].table);
373 } else if (!efi_guidcmp(config_tables[i].guid,
374 ACPI_20_TABLE_GUID)) {
375 efi.acpi20 = config_tables[i].table;
376 printk(" ACPI 2.0=0x%lx ", config_tables[i].table);
377 } else if (!efi_guidcmp(config_tables[i].guid,
378 ACPI_TABLE_GUID)) {
379 efi.acpi = config_tables[i].table;
380 printk(" ACPI=0x%lx ", config_tables[i].table);
381 } else if (!efi_guidcmp(config_tables[i].guid,
382 SMBIOS_TABLE_GUID)) {
383 efi.smbios = config_tables[i].table;
384 printk(" SMBIOS=0x%lx ", config_tables[i].table);
03b48632 385#ifdef CONFIG_X86_UV
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386 } else if (!efi_guidcmp(config_tables[i].guid,
387 UV_SYSTEM_TABLE_GUID)) {
388 efi.uv_systab = config_tables[i].table;
389 printk(" UVsystab=0x%lx ", config_tables[i].table);
03b48632 390#endif
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391 } else if (!efi_guidcmp(config_tables[i].guid,
392 HCDP_TABLE_GUID)) {
393 efi.hcdp = config_tables[i].table;
394 printk(" HCDP=0x%lx ", config_tables[i].table);
395 } else if (!efi_guidcmp(config_tables[i].guid,
396 UGA_IO_PROTOCOL_GUID)) {
397 efi.uga = config_tables[i].table;
398 printk(" UGA=0x%lx ", config_tables[i].table);
399 }
400 }
401 printk("\n");
beacfaac 402 early_iounmap(config_tables,
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403 efi.systab->nr_tables * sizeof(efi_config_table_t));
404
405 /*
406 * Check out the runtime services table. We need to map
407 * the runtime services table so that we can grab the physical
408 * address of several of the EFI runtime functions, needed to
409 * set the firmware into virtual mode.
410 */
beacfaac
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411 runtime = early_ioremap((unsigned long)efi.systab->runtime,
412 sizeof(efi_runtime_services_t));
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413 if (runtime != NULL) {
414 /*
415 * We will only need *early* access to the following
416 * two EFI runtime services before set_virtual_address_map
417 * is invoked.
418 */
419 efi_phys.get_time = (efi_get_time_t *)runtime->get_time;
420 efi_phys.set_virtual_address_map =
421 (efi_set_virtual_address_map_t *)
422 runtime->set_virtual_address_map;
423 /*
424 * Make efi_get_time can be called before entering
425 * virtual mode.
426 */
427 efi.get_time = phys_efi_get_time;
428 } else
429 printk(KERN_ERR "Could not map the EFI runtime service "
430 "table!\n");
beacfaac 431 early_iounmap(runtime, sizeof(efi_runtime_services_t));
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432
433 /* Map the EFI memory map */
beacfaac
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434 memmap.map = early_ioremap((unsigned long)memmap.phys_map,
435 memmap.nr_map * memmap.desc_size);
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436 if (memmap.map == NULL)
437 printk(KERN_ERR "Could not map the EFI memory map!\n");
438 memmap.map_end = memmap.map + (memmap.nr_map * memmap.desc_size);
175e438f 439
5b83683f 440 if (memmap.desc_size != sizeof(efi_memory_desc_t))
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441 printk(KERN_WARNING
442 "Kernel-defined memdesc doesn't match the one from EFI!\n");
443
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444 if (add_efi_memmap)
445 do_add_efi_memmap();
5b83683f 446
772be899 447#ifdef CONFIG_X86_32
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448 x86_platform.get_wallclock = efi_get_time;
449 x86_platform.set_wallclock = efi_set_rtc_mmss;
772be899 450#endif
7bd867df 451
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452 /* Setup for EFI runtime service */
453 reboot_type = BOOT_EFI;
454
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455#if EFI_DEBUG
456 print_efi_memmap();
457#endif
458}
459
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460static void __init runtime_code_page_mkexec(void)
461{
462 efi_memory_desc_t *md;
a2172e25 463 void *p;
4a3575fd 464 u64 addr, npages;
a2172e25 465
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466 /* Make EFI runtime service code area executable */
467 for (p = memmap.map; p < memmap.map_end; p += memmap.desc_size) {
468 md = p;
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469
470 if (md->type != EFI_RUNTIME_SERVICES_CODE)
471 continue;
472
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473 addr = md->virt_addr;
474 npages = md->num_pages;
475 memrange_efi_to_native(&addr, &npages);
476 set_memory_x(addr, npages);
a2172e25 477 }
a2172e25 478}
a2172e25 479
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480/*
481 * This function will switch the EFI runtime services to virtual mode.
482 * Essentially, look through the EFI memmap and map every region that
483 * has the runtime attribute bit set in its memory descriptor and update
484 * that memory descriptor with the virtual address obtained from ioremap().
485 * This enables the runtime services to be called without having to
486 * thunk back into physical mode for every invocation.
487 */
488void __init efi_enter_virtual_mode(void)
489{
490 efi_memory_desc_t *md;
491 efi_status_t status;
1c083eb2 492 unsigned long size;
dd39ecf5 493 u64 end, systab, addr, npages, end_pfn;
1c083eb2 494 void *p, *va;
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495
496 efi.systab = NULL;
497 for (p = memmap.map; p < memmap.map_end; p += memmap.desc_size) {
498 md = p;
499 if (!(md->attribute & EFI_MEMORY_RUNTIME))
500 continue;
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501
502 size = md->num_pages << EFI_PAGE_SHIFT;
503 end = md->phys_addr + size;
504
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505 end_pfn = PFN_UP(end);
506 if (end_pfn <= max_low_pfn_mapped
507 || (end_pfn > (1UL << (32 - PAGE_SHIFT))
508 && end_pfn <= max_pfn_mapped))
1c083eb2 509 va = __va(md->phys_addr);
5b83683f 510 else
6a7bbd57 511 va = efi_ioremap(md->phys_addr, size, md->type);
1c083eb2 512
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513 md->virt_addr = (u64) (unsigned long) va;
514
515 if (!va) {
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516 printk(KERN_ERR PFX "ioremap of 0x%llX failed!\n",
517 (unsigned long long)md->phys_addr);
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518 continue;
519 }
520
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521 if (!(md->attribute & EFI_MEMORY_WB)) {
522 addr = md->virt_addr;
523 npages = md->num_pages;
524 memrange_efi_to_native(&addr, &npages);
525 set_memory_uc(addr, npages);
526 }
e85f2051 527
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528 systab = (u64) (unsigned long) efi_phys.systab;
529 if (md->phys_addr <= systab && systab < end) {
530 systab += md->virt_addr - md->phys_addr;
531 efi.systab = (efi_system_table_t *) (unsigned long) systab;
532 }
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533 }
534
535 BUG_ON(!efi.systab);
536
537 status = phys_efi_set_virtual_address_map(
538 memmap.desc_size * memmap.nr_map,
539 memmap.desc_size,
540 memmap.desc_version,
541 memmap.phys_map);
542
543 if (status != EFI_SUCCESS) {
544 printk(KERN_ALERT "Unable to switch EFI into virtual mode "
545 "(status=%lx)!\n", status);
546 panic("EFI call to SetVirtualAddressMap() failed!");
547 }
548
549 /*
550 * Now that EFI is in virtual mode, update the function
551 * pointers in the runtime service table to the new virtual addresses.
552 *
553 * Call EFI services through wrapper functions.
554 */
555 efi.get_time = virt_efi_get_time;
556 efi.set_time = virt_efi_set_time;
557 efi.get_wakeup_time = virt_efi_get_wakeup_time;
558 efi.set_wakeup_time = virt_efi_set_wakeup_time;
559 efi.get_variable = virt_efi_get_variable;
560 efi.get_next_variable = virt_efi_get_next_variable;
561 efi.set_variable = virt_efi_set_variable;
562 efi.get_next_high_mono_count = virt_efi_get_next_high_mono_count;
563 efi.reset_system = virt_efi_reset_system;
2b5e8ef3 564 efi.set_virtual_address_map = NULL;
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565 if (__supported_pte_mask & _PAGE_NX)
566 runtime_code_page_mkexec();
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567 early_iounmap(memmap.map, memmap.nr_map * memmap.desc_size);
568 memmap.map = NULL;
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569}
570
571/*
572 * Convenience functions to obtain memory types and attributes
573 */
574u32 efi_mem_type(unsigned long phys_addr)
575{
576 efi_memory_desc_t *md;
577 void *p;
578
579 for (p = memmap.map; p < memmap.map_end; p += memmap.desc_size) {
580 md = p;
581 if ((md->phys_addr <= phys_addr) &&
582 (phys_addr < (md->phys_addr +
583 (md->num_pages << EFI_PAGE_SHIFT))))
584 return md->type;
585 }
586 return 0;
587}
588
589u64 efi_mem_attributes(unsigned long phys_addr)
590{
591 efi_memory_desc_t *md;
592 void *p;
593
594 for (p = memmap.map; p < memmap.map_end; p += memmap.desc_size) {
595 md = p;
596 if ((md->phys_addr <= phys_addr) &&
597 (phys_addr < (md->phys_addr +
598 (md->num_pages << EFI_PAGE_SHIFT))))
599 return md->attribute;
600 }
601 return 0;
602}