xref: /openbmc/linux/arch/x86/platform/efi/efi.c (revision 86bee12f)
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  * Copyright (C) 2013 SuSE Labs
16  *	Borislav Petkov <bp@suse.de> - runtime services VA mapping
17  *
18  * Copied from efi_32.c to eliminate the duplicated code between EFI
19  * 32/64 support code. --ying 2007-10-26
20  *
21  * All EFI Runtime Services are not implemented yet as EFI only
22  * supports physical mode addressing on SoftSDV. This is to be fixed
23  * in a future version.  --drummond 1999-07-20
24  *
25  * Implemented EFI runtime services and virtual mode calls.  --davidm
26  *
27  * Goutham Rao: <goutham.rao@intel.com>
28  *	Skip non-WB memory and ignore empty memory ranges.
29  */
30 
31 #define pr_fmt(fmt) KBUILD_MODNAME ": " fmt
32 
33 #include <linux/kernel.h>
34 #include <linux/init.h>
35 #include <linux/efi.h>
36 #include <linux/efi-bgrt.h>
37 #include <linux/export.h>
38 #include <linux/bootmem.h>
39 #include <linux/slab.h>
40 #include <linux/memblock.h>
41 #include <linux/spinlock.h>
42 #include <linux/uaccess.h>
43 #include <linux/time.h>
44 #include <linux/io.h>
45 #include <linux/reboot.h>
46 #include <linux/bcd.h>
47 
48 #include <asm/setup.h>
49 #include <asm/efi.h>
50 #include <asm/time.h>
51 #include <asm/cacheflush.h>
52 #include <asm/tlbflush.h>
53 #include <asm/x86_init.h>
54 #include <asm/rtc.h>
55 #include <asm/uv/uv.h>
56 
57 static struct efi efi_phys __initdata;
58 static efi_system_table_t efi_systab __initdata;
59 
60 static efi_config_table_type_t arch_tables[] __initdata = {
61 #ifdef CONFIG_X86_UV
62 	{UV_SYSTEM_TABLE_GUID, "UVsystab", &efi.uv_systab},
63 #endif
64 	{NULL_GUID, NULL, NULL},
65 };
66 
67 u64 efi_setup;		/* efi setup_data physical address */
68 
69 static int add_efi_memmap __initdata;
70 static int __init setup_add_efi_memmap(char *arg)
71 {
72 	add_efi_memmap = 1;
73 	return 0;
74 }
75 early_param("add_efi_memmap", setup_add_efi_memmap);
76 
77 static efi_status_t __init phys_efi_set_virtual_address_map(
78 	unsigned long memory_map_size,
79 	unsigned long descriptor_size,
80 	u32 descriptor_version,
81 	efi_memory_desc_t *virtual_map)
82 {
83 	efi_status_t status;
84 	unsigned long flags;
85 	pgd_t *save_pgd;
86 
87 	save_pgd = efi_call_phys_prolog();
88 
89 	/* Disable interrupts around EFI calls: */
90 	local_irq_save(flags);
91 	status = efi_call_phys(efi_phys.set_virtual_address_map,
92 			       memory_map_size, descriptor_size,
93 			       descriptor_version, virtual_map);
94 	local_irq_restore(flags);
95 
96 	efi_call_phys_epilog(save_pgd);
97 
98 	return status;
99 }
100 
101 void efi_get_time(struct timespec *now)
102 {
103 	efi_status_t status;
104 	efi_time_t eft;
105 	efi_time_cap_t cap;
106 
107 	status = efi.get_time(&eft, &cap);
108 	if (status != EFI_SUCCESS)
109 		pr_err("Oops: efitime: can't read time!\n");
110 
111 	now->tv_sec = mktime(eft.year, eft.month, eft.day, eft.hour,
112 			     eft.minute, eft.second);
113 	now->tv_nsec = 0;
114 }
115 
116 void __init efi_find_mirror(void)
117 {
118 	efi_memory_desc_t *md;
119 	u64 mirror_size = 0, total_size = 0;
120 
121 	for_each_efi_memory_desc(md) {
122 		unsigned long long start = md->phys_addr;
123 		unsigned long long size = md->num_pages << EFI_PAGE_SHIFT;
124 
125 		total_size += size;
126 		if (md->attribute & EFI_MEMORY_MORE_RELIABLE) {
127 			memblock_mark_mirror(start, size);
128 			mirror_size += size;
129 		}
130 	}
131 	if (mirror_size)
132 		pr_info("Memory: %lldM/%lldM mirrored memory\n",
133 			mirror_size>>20, total_size>>20);
134 }
135 
136 /*
137  * Tell the kernel about the EFI memory map.  This might include
138  * more than the max 128 entries that can fit in the e820 legacy
139  * (zeropage) memory map.
140  */
141 
142 static void __init do_add_efi_memmap(void)
143 {
144 	efi_memory_desc_t *md;
145 
146 	for_each_efi_memory_desc(md) {
147 		unsigned long long start = md->phys_addr;
148 		unsigned long long size = md->num_pages << EFI_PAGE_SHIFT;
149 		int e820_type;
150 
151 		switch (md->type) {
152 		case EFI_LOADER_CODE:
153 		case EFI_LOADER_DATA:
154 		case EFI_BOOT_SERVICES_CODE:
155 		case EFI_BOOT_SERVICES_DATA:
156 		case EFI_CONVENTIONAL_MEMORY:
157 			if (md->attribute & EFI_MEMORY_WB)
158 				e820_type = E820_RAM;
159 			else
160 				e820_type = E820_RESERVED;
161 			break;
162 		case EFI_ACPI_RECLAIM_MEMORY:
163 			e820_type = E820_ACPI;
164 			break;
165 		case EFI_ACPI_MEMORY_NVS:
166 			e820_type = E820_NVS;
167 			break;
168 		case EFI_UNUSABLE_MEMORY:
169 			e820_type = E820_UNUSABLE;
170 			break;
171 		case EFI_PERSISTENT_MEMORY:
172 			e820_type = E820_PMEM;
173 			break;
174 		default:
175 			/*
176 			 * EFI_RESERVED_TYPE EFI_RUNTIME_SERVICES_CODE
177 			 * EFI_RUNTIME_SERVICES_DATA EFI_MEMORY_MAPPED_IO
178 			 * EFI_MEMORY_MAPPED_IO_PORT_SPACE EFI_PAL_CODE
179 			 */
180 			e820_type = E820_RESERVED;
181 			break;
182 		}
183 		e820_add_region(start, size, e820_type);
184 	}
185 	sanitize_e820_map(e820.map, ARRAY_SIZE(e820.map), &e820.nr_map);
186 }
187 
188 int __init efi_memblock_x86_reserve_range(void)
189 {
190 	struct efi_info *e = &boot_params.efi_info;
191 	phys_addr_t pmap;
192 
193 	if (efi_enabled(EFI_PARAVIRT))
194 		return 0;
195 
196 #ifdef CONFIG_X86_32
197 	/* Can't handle data above 4GB at this time */
198 	if (e->efi_memmap_hi) {
199 		pr_err("Memory map is above 4GB, disabling EFI.\n");
200 		return -EINVAL;
201 	}
202 	pmap =  e->efi_memmap;
203 #else
204 	pmap = (e->efi_memmap |	((__u64)e->efi_memmap_hi << 32));
205 #endif
206 	efi.memmap.phys_map	= pmap;
207 	efi.memmap.nr_map	= e->efi_memmap_size /
208 				  e->efi_memdesc_size;
209 	efi.memmap.desc_size	= e->efi_memdesc_size;
210 	efi.memmap.desc_version	= e->efi_memdesc_version;
211 
212 	WARN(efi.memmap.desc_version != 1,
213 	     "Unexpected EFI_MEMORY_DESCRIPTOR version %ld",
214 	     efi.memmap.desc_version);
215 
216 	memblock_reserve(pmap, efi.memmap.nr_map * efi.memmap.desc_size);
217 
218 	return 0;
219 }
220 
221 void __init efi_print_memmap(void)
222 {
223 	efi_memory_desc_t *md;
224 	int i = 0;
225 
226 	for_each_efi_memory_desc(md) {
227 		char buf[64];
228 
229 		pr_info("mem%02u: %s range=[0x%016llx-0x%016llx] (%lluMB)\n",
230 			i++, efi_md_typeattr_format(buf, sizeof(buf), md),
231 			md->phys_addr,
232 			md->phys_addr + (md->num_pages << EFI_PAGE_SHIFT) - 1,
233 			(md->num_pages >> (20 - EFI_PAGE_SHIFT)));
234 	}
235 }
236 
237 void __init efi_unmap_memmap(void)
238 {
239 	unsigned long size;
240 
241 	clear_bit(EFI_MEMMAP, &efi.flags);
242 
243 	size = efi.memmap.nr_map * efi.memmap.desc_size;
244 	if (efi.memmap.map) {
245 		early_memunmap(efi.memmap.map, size);
246 		efi.memmap.map = NULL;
247 	}
248 }
249 
250 static int __init efi_systab_init(void *phys)
251 {
252 	if (efi_enabled(EFI_64BIT)) {
253 		efi_system_table_64_t *systab64;
254 		struct efi_setup_data *data = NULL;
255 		u64 tmp = 0;
256 
257 		if (efi_setup) {
258 			data = early_memremap(efi_setup, sizeof(*data));
259 			if (!data)
260 				return -ENOMEM;
261 		}
262 		systab64 = early_memremap((unsigned long)phys,
263 					 sizeof(*systab64));
264 		if (systab64 == NULL) {
265 			pr_err("Couldn't map the system table!\n");
266 			if (data)
267 				early_memunmap(data, sizeof(*data));
268 			return -ENOMEM;
269 		}
270 
271 		efi_systab.hdr = systab64->hdr;
272 		efi_systab.fw_vendor = data ? (unsigned long)data->fw_vendor :
273 					      systab64->fw_vendor;
274 		tmp |= data ? data->fw_vendor : systab64->fw_vendor;
275 		efi_systab.fw_revision = systab64->fw_revision;
276 		efi_systab.con_in_handle = systab64->con_in_handle;
277 		tmp |= systab64->con_in_handle;
278 		efi_systab.con_in = systab64->con_in;
279 		tmp |= systab64->con_in;
280 		efi_systab.con_out_handle = systab64->con_out_handle;
281 		tmp |= systab64->con_out_handle;
282 		efi_systab.con_out = systab64->con_out;
283 		tmp |= systab64->con_out;
284 		efi_systab.stderr_handle = systab64->stderr_handle;
285 		tmp |= systab64->stderr_handle;
286 		efi_systab.stderr = systab64->stderr;
287 		tmp |= systab64->stderr;
288 		efi_systab.runtime = data ?
289 				     (void *)(unsigned long)data->runtime :
290 				     (void *)(unsigned long)systab64->runtime;
291 		tmp |= data ? data->runtime : systab64->runtime;
292 		efi_systab.boottime = (void *)(unsigned long)systab64->boottime;
293 		tmp |= systab64->boottime;
294 		efi_systab.nr_tables = systab64->nr_tables;
295 		efi_systab.tables = data ? (unsigned long)data->tables :
296 					   systab64->tables;
297 		tmp |= data ? data->tables : systab64->tables;
298 
299 		early_memunmap(systab64, sizeof(*systab64));
300 		if (data)
301 			early_memunmap(data, sizeof(*data));
302 #ifdef CONFIG_X86_32
303 		if (tmp >> 32) {
304 			pr_err("EFI data located above 4GB, disabling EFI.\n");
305 			return -EINVAL;
306 		}
307 #endif
308 	} else {
309 		efi_system_table_32_t *systab32;
310 
311 		systab32 = early_memremap((unsigned long)phys,
312 					 sizeof(*systab32));
313 		if (systab32 == NULL) {
314 			pr_err("Couldn't map the system table!\n");
315 			return -ENOMEM;
316 		}
317 
318 		efi_systab.hdr = systab32->hdr;
319 		efi_systab.fw_vendor = systab32->fw_vendor;
320 		efi_systab.fw_revision = systab32->fw_revision;
321 		efi_systab.con_in_handle = systab32->con_in_handle;
322 		efi_systab.con_in = systab32->con_in;
323 		efi_systab.con_out_handle = systab32->con_out_handle;
324 		efi_systab.con_out = systab32->con_out;
325 		efi_systab.stderr_handle = systab32->stderr_handle;
326 		efi_systab.stderr = systab32->stderr;
327 		efi_systab.runtime = (void *)(unsigned long)systab32->runtime;
328 		efi_systab.boottime = (void *)(unsigned long)systab32->boottime;
329 		efi_systab.nr_tables = systab32->nr_tables;
330 		efi_systab.tables = systab32->tables;
331 
332 		early_memunmap(systab32, sizeof(*systab32));
333 	}
334 
335 	efi.systab = &efi_systab;
336 
337 	/*
338 	 * Verify the EFI Table
339 	 */
340 	if (efi.systab->hdr.signature != EFI_SYSTEM_TABLE_SIGNATURE) {
341 		pr_err("System table signature incorrect!\n");
342 		return -EINVAL;
343 	}
344 	if ((efi.systab->hdr.revision >> 16) == 0)
345 		pr_err("Warning: System table version %d.%02d, expected 1.00 or greater!\n",
346 		       efi.systab->hdr.revision >> 16,
347 		       efi.systab->hdr.revision & 0xffff);
348 
349 	return 0;
350 }
351 
352 static int __init efi_runtime_init32(void)
353 {
354 	efi_runtime_services_32_t *runtime;
355 
356 	runtime = early_memremap((unsigned long)efi.systab->runtime,
357 			sizeof(efi_runtime_services_32_t));
358 	if (!runtime) {
359 		pr_err("Could not map the runtime service table!\n");
360 		return -ENOMEM;
361 	}
362 
363 	/*
364 	 * We will only need *early* access to the SetVirtualAddressMap
365 	 * EFI runtime service. All other runtime services will be called
366 	 * via the virtual mapping.
367 	 */
368 	efi_phys.set_virtual_address_map =
369 			(efi_set_virtual_address_map_t *)
370 			(unsigned long)runtime->set_virtual_address_map;
371 	early_memunmap(runtime, sizeof(efi_runtime_services_32_t));
372 
373 	return 0;
374 }
375 
376 static int __init efi_runtime_init64(void)
377 {
378 	efi_runtime_services_64_t *runtime;
379 
380 	runtime = early_memremap((unsigned long)efi.systab->runtime,
381 			sizeof(efi_runtime_services_64_t));
382 	if (!runtime) {
383 		pr_err("Could not map the runtime service table!\n");
384 		return -ENOMEM;
385 	}
386 
387 	/*
388 	 * We will only need *early* access to the SetVirtualAddressMap
389 	 * EFI runtime service. All other runtime services will be called
390 	 * via the virtual mapping.
391 	 */
392 	efi_phys.set_virtual_address_map =
393 			(efi_set_virtual_address_map_t *)
394 			(unsigned long)runtime->set_virtual_address_map;
395 	early_memunmap(runtime, sizeof(efi_runtime_services_64_t));
396 
397 	return 0;
398 }
399 
400 static int __init efi_runtime_init(void)
401 {
402 	int rv;
403 
404 	/*
405 	 * Check out the runtime services table. We need to map
406 	 * the runtime services table so that we can grab the physical
407 	 * address of several of the EFI runtime functions, needed to
408 	 * set the firmware into virtual mode.
409 	 *
410 	 * When EFI_PARAVIRT is in force then we could not map runtime
411 	 * service memory region because we do not have direct access to it.
412 	 * However, runtime services are available through proxy functions
413 	 * (e.g. in case of Xen dom0 EFI implementation they call special
414 	 * hypercall which executes relevant EFI functions) and that is why
415 	 * they are always enabled.
416 	 */
417 
418 	if (!efi_enabled(EFI_PARAVIRT)) {
419 		if (efi_enabled(EFI_64BIT))
420 			rv = efi_runtime_init64();
421 		else
422 			rv = efi_runtime_init32();
423 
424 		if (rv)
425 			return rv;
426 	}
427 
428 	set_bit(EFI_RUNTIME_SERVICES, &efi.flags);
429 
430 	return 0;
431 }
432 
433 static int __init efi_memmap_init(void)
434 {
435 	unsigned long addr, size;
436 
437 	if (efi_enabled(EFI_PARAVIRT))
438 		return 0;
439 
440 	/* Map the EFI memory map */
441 	size = efi.memmap.nr_map * efi.memmap.desc_size;
442 	addr = (unsigned long)efi.memmap.phys_map;
443 
444 	efi.memmap.map = early_memremap(addr, size);
445 	if (efi.memmap.map == NULL) {
446 		pr_err("Could not map the memory map!\n");
447 		return -ENOMEM;
448 	}
449 
450 	efi.memmap.map_end = efi.memmap.map + size;
451 
452 	if (add_efi_memmap)
453 		do_add_efi_memmap();
454 
455 	set_bit(EFI_MEMMAP, &efi.flags);
456 
457 	return 0;
458 }
459 
460 void __init efi_init(void)
461 {
462 	efi_char16_t *c16;
463 	char vendor[100] = "unknown";
464 	int i = 0;
465 	void *tmp;
466 
467 #ifdef CONFIG_X86_32
468 	if (boot_params.efi_info.efi_systab_hi ||
469 	    boot_params.efi_info.efi_memmap_hi) {
470 		pr_info("Table located above 4GB, disabling EFI.\n");
471 		return;
472 	}
473 	efi_phys.systab = (efi_system_table_t *)boot_params.efi_info.efi_systab;
474 #else
475 	efi_phys.systab = (efi_system_table_t *)
476 			  (boot_params.efi_info.efi_systab |
477 			  ((__u64)boot_params.efi_info.efi_systab_hi<<32));
478 #endif
479 
480 	if (efi_systab_init(efi_phys.systab))
481 		return;
482 
483 	efi.config_table = (unsigned long)efi.systab->tables;
484 	efi.fw_vendor	 = (unsigned long)efi.systab->fw_vendor;
485 	efi.runtime	 = (unsigned long)efi.systab->runtime;
486 
487 	/*
488 	 * Show what we know for posterity
489 	 */
490 	c16 = tmp = early_memremap(efi.systab->fw_vendor, 2);
491 	if (c16) {
492 		for (i = 0; i < sizeof(vendor) - 1 && *c16; ++i)
493 			vendor[i] = *c16++;
494 		vendor[i] = '\0';
495 	} else
496 		pr_err("Could not map the firmware vendor!\n");
497 	early_memunmap(tmp, 2);
498 
499 	pr_info("EFI v%u.%.02u by %s\n",
500 		efi.systab->hdr.revision >> 16,
501 		efi.systab->hdr.revision & 0xffff, vendor);
502 
503 	if (efi_reuse_config(efi.systab->tables, efi.systab->nr_tables))
504 		return;
505 
506 	if (efi_config_init(arch_tables))
507 		return;
508 
509 	/*
510 	 * Note: We currently don't support runtime services on an EFI
511 	 * that doesn't match the kernel 32/64-bit mode.
512 	 */
513 
514 	if (!efi_runtime_supported())
515 		pr_info("No EFI runtime due to 32/64-bit mismatch with kernel\n");
516 	else {
517 		if (efi_runtime_disabled() || efi_runtime_init())
518 			return;
519 	}
520 	if (efi_memmap_init())
521 		return;
522 
523 	if (efi_enabled(EFI_DBG))
524 		efi_print_memmap();
525 
526 	efi_esrt_init();
527 }
528 
529 void __init efi_late_init(void)
530 {
531 	efi_bgrt_init();
532 }
533 
534 void __init efi_set_executable(efi_memory_desc_t *md, bool executable)
535 {
536 	u64 addr, npages;
537 
538 	addr = md->virt_addr;
539 	npages = md->num_pages;
540 
541 	memrange_efi_to_native(&addr, &npages);
542 
543 	if (executable)
544 		set_memory_x(addr, npages);
545 	else
546 		set_memory_nx(addr, npages);
547 }
548 
549 void __init runtime_code_page_mkexec(void)
550 {
551 	efi_memory_desc_t *md;
552 
553 	/* Make EFI runtime service code area executable */
554 	for_each_efi_memory_desc(md) {
555 		if (md->type != EFI_RUNTIME_SERVICES_CODE)
556 			continue;
557 
558 		efi_set_executable(md, true);
559 	}
560 }
561 
562 void __init efi_memory_uc(u64 addr, unsigned long size)
563 {
564 	unsigned long page_shift = 1UL << EFI_PAGE_SHIFT;
565 	u64 npages;
566 
567 	npages = round_up(size, page_shift) / page_shift;
568 	memrange_efi_to_native(&addr, &npages);
569 	set_memory_uc(addr, npages);
570 }
571 
572 void __init old_map_region(efi_memory_desc_t *md)
573 {
574 	u64 start_pfn, end_pfn, end;
575 	unsigned long size;
576 	void *va;
577 
578 	start_pfn = PFN_DOWN(md->phys_addr);
579 	size	  = md->num_pages << PAGE_SHIFT;
580 	end	  = md->phys_addr + size;
581 	end_pfn   = PFN_UP(end);
582 
583 	if (pfn_range_is_mapped(start_pfn, end_pfn)) {
584 		va = __va(md->phys_addr);
585 
586 		if (!(md->attribute & EFI_MEMORY_WB))
587 			efi_memory_uc((u64)(unsigned long)va, size);
588 	} else
589 		va = efi_ioremap(md->phys_addr, size,
590 				 md->type, md->attribute);
591 
592 	md->virt_addr = (u64) (unsigned long) va;
593 	if (!va)
594 		pr_err("ioremap of 0x%llX failed!\n",
595 		       (unsigned long long)md->phys_addr);
596 }
597 
598 /* Merge contiguous regions of the same type and attribute */
599 static void __init efi_merge_regions(void)
600 {
601 	efi_memory_desc_t *md, *prev_md = NULL;
602 
603 	for_each_efi_memory_desc(md) {
604 		u64 prev_size;
605 
606 		if (!prev_md) {
607 			prev_md = md;
608 			continue;
609 		}
610 
611 		if (prev_md->type != md->type ||
612 		    prev_md->attribute != md->attribute) {
613 			prev_md = md;
614 			continue;
615 		}
616 
617 		prev_size = prev_md->num_pages << EFI_PAGE_SHIFT;
618 
619 		if (md->phys_addr == (prev_md->phys_addr + prev_size)) {
620 			prev_md->num_pages += md->num_pages;
621 			md->type = EFI_RESERVED_TYPE;
622 			md->attribute = 0;
623 			continue;
624 		}
625 		prev_md = md;
626 	}
627 }
628 
629 static void __init get_systab_virt_addr(efi_memory_desc_t *md)
630 {
631 	unsigned long size;
632 	u64 end, systab;
633 
634 	size = md->num_pages << EFI_PAGE_SHIFT;
635 	end = md->phys_addr + size;
636 	systab = (u64)(unsigned long)efi_phys.systab;
637 	if (md->phys_addr <= systab && systab < end) {
638 		systab += md->virt_addr - md->phys_addr;
639 		efi.systab = (efi_system_table_t *)(unsigned long)systab;
640 	}
641 }
642 
643 static void __init save_runtime_map(void)
644 {
645 #ifdef CONFIG_KEXEC_CORE
646 	unsigned long desc_size;
647 	efi_memory_desc_t *md;
648 	void *tmp, *q = NULL;
649 	int count = 0;
650 
651 	if (efi_enabled(EFI_OLD_MEMMAP))
652 		return;
653 
654 	desc_size = efi.memmap.desc_size;
655 
656 	for_each_efi_memory_desc(md) {
657 		if (!(md->attribute & EFI_MEMORY_RUNTIME) ||
658 		    (md->type == EFI_BOOT_SERVICES_CODE) ||
659 		    (md->type == EFI_BOOT_SERVICES_DATA))
660 			continue;
661 		tmp = krealloc(q, (count + 1) * desc_size, GFP_KERNEL);
662 		if (!tmp)
663 			goto out;
664 		q = tmp;
665 
666 		memcpy(q + count * desc_size, md, desc_size);
667 		count++;
668 	}
669 
670 	efi_runtime_map_setup(q, count, desc_size);
671 	return;
672 
673 out:
674 	kfree(q);
675 	pr_err("Error saving runtime map, efi runtime on kexec non-functional!!\n");
676 #endif
677 }
678 
679 static void *realloc_pages(void *old_memmap, int old_shift)
680 {
681 	void *ret;
682 
683 	ret = (void *)__get_free_pages(GFP_KERNEL, old_shift + 1);
684 	if (!ret)
685 		goto out;
686 
687 	/*
688 	 * A first-time allocation doesn't have anything to copy.
689 	 */
690 	if (!old_memmap)
691 		return ret;
692 
693 	memcpy(ret, old_memmap, PAGE_SIZE << old_shift);
694 
695 out:
696 	free_pages((unsigned long)old_memmap, old_shift);
697 	return ret;
698 }
699 
700 /*
701  * Iterate the EFI memory map in reverse order because the regions
702  * will be mapped top-down. The end result is the same as if we had
703  * mapped things forward, but doesn't require us to change the
704  * existing implementation of efi_map_region().
705  */
706 static inline void *efi_map_next_entry_reverse(void *entry)
707 {
708 	/* Initial call */
709 	if (!entry)
710 		return efi.memmap.map_end - efi.memmap.desc_size;
711 
712 	entry -= efi.memmap.desc_size;
713 	if (entry < efi.memmap.map)
714 		return NULL;
715 
716 	return entry;
717 }
718 
719 /*
720  * efi_map_next_entry - Return the next EFI memory map descriptor
721  * @entry: Previous EFI memory map descriptor
722  *
723  * This is a helper function to iterate over the EFI memory map, which
724  * we do in different orders depending on the current configuration.
725  *
726  * To begin traversing the memory map @entry must be %NULL.
727  *
728  * Returns %NULL when we reach the end of the memory map.
729  */
730 static void *efi_map_next_entry(void *entry)
731 {
732 	if (!efi_enabled(EFI_OLD_MEMMAP) && efi_enabled(EFI_64BIT)) {
733 		/*
734 		 * Starting in UEFI v2.5 the EFI_PROPERTIES_TABLE
735 		 * config table feature requires us to map all entries
736 		 * in the same order as they appear in the EFI memory
737 		 * map. That is to say, entry N must have a lower
738 		 * virtual address than entry N+1. This is because the
739 		 * firmware toolchain leaves relative references in
740 		 * the code/data sections, which are split and become
741 		 * separate EFI memory regions. Mapping things
742 		 * out-of-order leads to the firmware accessing
743 		 * unmapped addresses.
744 		 *
745 		 * Since we need to map things this way whether or not
746 		 * the kernel actually makes use of
747 		 * EFI_PROPERTIES_TABLE, let's just switch to this
748 		 * scheme by default for 64-bit.
749 		 */
750 		return efi_map_next_entry_reverse(entry);
751 	}
752 
753 	/* Initial call */
754 	if (!entry)
755 		return efi.memmap.map;
756 
757 	entry += efi.memmap.desc_size;
758 	if (entry >= efi.memmap.map_end)
759 		return NULL;
760 
761 	return entry;
762 }
763 
764 /*
765  * Map the efi memory ranges of the runtime services and update new_mmap with
766  * virtual addresses.
767  */
768 static void * __init efi_map_regions(int *count, int *pg_shift)
769 {
770 	void *p, *new_memmap = NULL;
771 	unsigned long left = 0;
772 	unsigned long desc_size;
773 	efi_memory_desc_t *md;
774 
775 	desc_size = efi.memmap.desc_size;
776 
777 	p = NULL;
778 	while ((p = efi_map_next_entry(p))) {
779 		md = p;
780 		if (!(md->attribute & EFI_MEMORY_RUNTIME)) {
781 #ifdef CONFIG_X86_64
782 			if (md->type != EFI_BOOT_SERVICES_CODE &&
783 			    md->type != EFI_BOOT_SERVICES_DATA)
784 #endif
785 				continue;
786 		}
787 
788 		efi_map_region(md);
789 		get_systab_virt_addr(md);
790 
791 		if (left < desc_size) {
792 			new_memmap = realloc_pages(new_memmap, *pg_shift);
793 			if (!new_memmap)
794 				return NULL;
795 
796 			left += PAGE_SIZE << *pg_shift;
797 			(*pg_shift)++;
798 		}
799 
800 		memcpy(new_memmap + (*count * desc_size), md, desc_size);
801 
802 		left -= desc_size;
803 		(*count)++;
804 	}
805 
806 	return new_memmap;
807 }
808 
809 static void __init kexec_enter_virtual_mode(void)
810 {
811 #ifdef CONFIG_KEXEC_CORE
812 	efi_memory_desc_t *md;
813 	unsigned int num_pages;
814 
815 	efi.systab = NULL;
816 
817 	/*
818 	 * We don't do virtual mode, since we don't do runtime services, on
819 	 * non-native EFI
820 	 */
821 	if (!efi_is_native()) {
822 		efi_unmap_memmap();
823 		clear_bit(EFI_RUNTIME_SERVICES, &efi.flags);
824 		return;
825 	}
826 
827 	if (efi_alloc_page_tables()) {
828 		pr_err("Failed to allocate EFI page tables\n");
829 		clear_bit(EFI_RUNTIME_SERVICES, &efi.flags);
830 		return;
831 	}
832 
833 	/*
834 	* Map efi regions which were passed via setup_data. The virt_addr is a
835 	* fixed addr which was used in first kernel of a kexec boot.
836 	*/
837 	for_each_efi_memory_desc(md) {
838 		efi_map_region_fixed(md); /* FIXME: add error handling */
839 		get_systab_virt_addr(md);
840 	}
841 
842 	save_runtime_map();
843 
844 	BUG_ON(!efi.systab);
845 
846 	num_pages = ALIGN(efi.memmap.nr_map * efi.memmap.desc_size, PAGE_SIZE);
847 	num_pages >>= PAGE_SHIFT;
848 
849 	if (efi_setup_page_tables(efi.memmap.phys_map, num_pages)) {
850 		clear_bit(EFI_RUNTIME_SERVICES, &efi.flags);
851 		return;
852 	}
853 
854 	efi_sync_low_kernel_mappings();
855 
856 	/*
857 	 * Now that EFI is in virtual mode, update the function
858 	 * pointers in the runtime service table to the new virtual addresses.
859 	 *
860 	 * Call EFI services through wrapper functions.
861 	 */
862 	efi.runtime_version = efi_systab.hdr.revision;
863 
864 	efi_native_runtime_setup();
865 
866 	efi.set_virtual_address_map = NULL;
867 
868 	if (efi_enabled(EFI_OLD_MEMMAP) && (__supported_pte_mask & _PAGE_NX))
869 		runtime_code_page_mkexec();
870 
871 	/* clean DUMMY object */
872 	efi_delete_dummy_variable();
873 #endif
874 }
875 
876 /*
877  * This function will switch the EFI runtime services to virtual mode.
878  * Essentially, we look through the EFI memmap and map every region that
879  * has the runtime attribute bit set in its memory descriptor into the
880  * efi_pgd page table.
881  *
882  * The old method which used to update that memory descriptor with the
883  * virtual address obtained from ioremap() is still supported when the
884  * kernel is booted with efi=old_map on its command line. Same old
885  * method enabled the runtime services to be called without having to
886  * thunk back into physical mode for every invocation.
887  *
888  * The new method does a pagetable switch in a preemption-safe manner
889  * so that we're in a different address space when calling a runtime
890  * function. For function arguments passing we do copy the PUDs of the
891  * kernel page table into efi_pgd prior to each call.
892  *
893  * Specially for kexec boot, efi runtime maps in previous kernel should
894  * be passed in via setup_data. In that case runtime ranges will be mapped
895  * to the same virtual addresses as the first kernel, see
896  * kexec_enter_virtual_mode().
897  */
898 static void __init __efi_enter_virtual_mode(void)
899 {
900 	int count = 0, pg_shift = 0;
901 	void *new_memmap = NULL;
902 	efi_status_t status;
903 
904 	efi.systab = NULL;
905 
906 	if (efi_alloc_page_tables()) {
907 		pr_err("Failed to allocate EFI page tables\n");
908 		clear_bit(EFI_RUNTIME_SERVICES, &efi.flags);
909 		return;
910 	}
911 
912 	efi_merge_regions();
913 	new_memmap = efi_map_regions(&count, &pg_shift);
914 	if (!new_memmap) {
915 		pr_err("Error reallocating memory, EFI runtime non-functional!\n");
916 		clear_bit(EFI_RUNTIME_SERVICES, &efi.flags);
917 		return;
918 	}
919 
920 	save_runtime_map();
921 
922 	BUG_ON(!efi.systab);
923 
924 	if (efi_setup_page_tables(__pa(new_memmap), 1 << pg_shift)) {
925 		clear_bit(EFI_RUNTIME_SERVICES, &efi.flags);
926 		return;
927 	}
928 
929 	efi_sync_low_kernel_mappings();
930 
931 	if (efi_is_native()) {
932 		status = phys_efi_set_virtual_address_map(
933 				efi.memmap.desc_size * count,
934 				efi.memmap.desc_size,
935 				efi.memmap.desc_version,
936 				(efi_memory_desc_t *)__pa(new_memmap));
937 	} else {
938 		status = efi_thunk_set_virtual_address_map(
939 				efi_phys.set_virtual_address_map,
940 				efi.memmap.desc_size * count,
941 				efi.memmap.desc_size,
942 				efi.memmap.desc_version,
943 				(efi_memory_desc_t *)__pa(new_memmap));
944 	}
945 
946 	if (status != EFI_SUCCESS) {
947 		pr_alert("Unable to switch EFI into virtual mode (status=%lx)!\n",
948 			 status);
949 		panic("EFI call to SetVirtualAddressMap() failed!");
950 	}
951 
952 	/*
953 	 * Now that EFI is in virtual mode, update the function
954 	 * pointers in the runtime service table to the new virtual addresses.
955 	 *
956 	 * Call EFI services through wrapper functions.
957 	 */
958 	efi.runtime_version = efi_systab.hdr.revision;
959 
960 	if (efi_is_native())
961 		efi_native_runtime_setup();
962 	else
963 		efi_thunk_runtime_setup();
964 
965 	efi.set_virtual_address_map = NULL;
966 
967 	/*
968 	 * Apply more restrictive page table mapping attributes now that
969 	 * SVAM() has been called and the firmware has performed all
970 	 * necessary relocation fixups for the new virtual addresses.
971 	 */
972 	efi_runtime_update_mappings();
973 	efi_dump_pagetable();
974 
975 	/*
976 	 * We mapped the descriptor array into the EFI pagetable above
977 	 * but we're not unmapping it here because if we're running in
978 	 * EFI mixed mode we need all of memory to be accessible when
979 	 * we pass parameters to the EFI runtime services in the
980 	 * thunking code.
981 	 *
982 	 * efi_cleanup_page_tables(__pa(new_memmap), 1 << pg_shift);
983 	 */
984 	free_pages((unsigned long)new_memmap, pg_shift);
985 
986 	/* clean DUMMY object */
987 	efi_delete_dummy_variable();
988 }
989 
990 void __init efi_enter_virtual_mode(void)
991 {
992 	if (efi_enabled(EFI_PARAVIRT))
993 		return;
994 
995 	if (efi_setup)
996 		kexec_enter_virtual_mode();
997 	else
998 		__efi_enter_virtual_mode();
999 }
1000 
1001 /*
1002  * Convenience functions to obtain memory types and attributes
1003  */
1004 u32 efi_mem_type(unsigned long phys_addr)
1005 {
1006 	efi_memory_desc_t *md;
1007 
1008 	if (!efi_enabled(EFI_MEMMAP))
1009 		return 0;
1010 
1011 	for_each_efi_memory_desc(md) {
1012 		if ((md->phys_addr <= phys_addr) &&
1013 		    (phys_addr < (md->phys_addr +
1014 				  (md->num_pages << EFI_PAGE_SHIFT))))
1015 			return md->type;
1016 	}
1017 	return 0;
1018 }
1019 
1020 static int __init arch_parse_efi_cmdline(char *str)
1021 {
1022 	if (!str) {
1023 		pr_warn("need at least one option\n");
1024 		return -EINVAL;
1025 	}
1026 
1027 	if (parse_option_str(str, "old_map"))
1028 		set_bit(EFI_OLD_MEMMAP, &efi.flags);
1029 
1030 	return 0;
1031 }
1032 early_param("efi", arch_parse_efi_cmdline);
1033