efi-stub-helper.c 11.1 KB
Newer Older
1
// SPDX-License-Identifier: GPL-2.0
2 3 4 5 6 7 8 9
/*
 * Helper functions used by the EFI stub on multiple
 * architectures. This should be #included by the EFI stub
 * implementation files.
 *
 * Copyright 2011 Intel Corporation; author Matt Fleming
 */

10 11 12 13
#include <linux/efi.h>
#include <asm/efi.h>

#include "efistub.h"
14

15 16 17 18 19 20
bool efi_nochunk;
bool efi_nokaslr;
bool efi_noinitrd;
bool efi_quiet;
bool efi_novamap;

A
Arvind Sankar 已提交
21 22
static bool efi_nosoftreserve;
static bool efi_disable_pci_dma = IS_ENABLED(CONFIG_EFI_DISABLE_PCI_DMA);
23

24 25 26 27
bool __pure __efi_soft_reserve_enabled(void)
{
	return !efi_nosoftreserve;
}
28

29 30 31 32 33 34 35
void efi_char16_puts(efi_char16_t *str)
{
	efi_call_proto(efi_table_attr(efi_system_table, con_out),
		       output_string, str);
}

void efi_puts(const char *str)
36
{
37 38
	while (*str) {
		efi_char16_t ch[] = { *str++, L'\0' };
39

40
		if (ch[0] == L'\n')
41
			efi_char16_puts(L"\r\n");
42
		else
43
			efi_char16_puts(ch);
44 45 46
	}
}

47 48 49 50 51 52 53 54
/*
 * Parse the ASCII string 'cmdline' for EFI options, denoted by the efi=
 * option, e.g. efi=nochunk.
 *
 * It should be noted that efi= is parsed in two very different
 * environments, first in the early boot environment of the EFI boot
 * stub, and subsequently during the kernel boot.
 */
55
efi_status_t efi_parse_options(char const *cmdline)
56
{
57 58 59
	size_t len = strlen(cmdline) + 1;
	efi_status_t status;
	char *str, *buf;
60

61 62 63
	status = efi_bs_call(allocate_pool, EFI_LOADER_DATA, len, (void **)&buf);
	if (status != EFI_SUCCESS)
		return status;
64

65
	str = skip_spaces(memcpy(buf, cmdline, len));
66

67 68
	while (*str) {
		char *param, *val;
69

70
		str = next_arg(str, &param, &val);
71

72 73 74 75
		if (!strcmp(param, "nokaslr")) {
			efi_nokaslr = true;
		} else if (!strcmp(param, "quiet")) {
			efi_quiet = true;
76 77
		} else if (!strcmp(param, "noinitrd")) {
			efi_noinitrd = true;
78 79 80
		} else if (!strcmp(param, "efi") && val) {
			efi_nochunk = parse_option_str(val, "nochunk");
			efi_novamap = parse_option_str(val, "novamap");
81

82 83
			efi_nosoftreserve = IS_ENABLED(CONFIG_EFI_SOFT_RESERVE) &&
					    parse_option_str(val, "nosoftreserve");
84

85 86 87 88
			if (parse_option_str(val, "disable_early_pci_dma"))
				efi_disable_pci_dma = true;
			if (parse_option_str(val, "no_disable_early_pci_dma"))
				efi_disable_pci_dma = false;
89 90 91
		} else if (!strcmp(param, "video") &&
			   val && strstarts(val, "efifb:")) {
			efi_parse_option_graphics(val + strlen("efifb:"));
92 93 94
		}
	}
	efi_bs_call(free_pool, buf);
95 96
	return EFI_SUCCESS;
}
97

98 99 100 101 102 103 104 105 106 107 108 109 110 111 112 113 114 115 116 117 118 119 120 121 122 123 124 125 126 127 128 129 130 131 132 133 134 135 136 137 138 139 140 141 142 143 144 145 146
/*
 * Get the number of UTF-8 bytes corresponding to an UTF-16 character.
 * This overestimates for surrogates, but that is okay.
 */
static int efi_utf8_bytes(u16 c)
{
	return 1 + (c >= 0x80) + (c >= 0x800);
}

/*
 * Convert an UTF-16 string, not necessarily null terminated, to UTF-8.
 */
static u8 *efi_utf16_to_utf8(u8 *dst, const u16 *src, int n)
{
	unsigned int c;

	while (n--) {
		c = *src++;
		if (n && c >= 0xd800 && c <= 0xdbff &&
		    *src >= 0xdc00 && *src <= 0xdfff) {
			c = 0x10000 + ((c & 0x3ff) << 10) + (*src & 0x3ff);
			src++;
			n--;
		}
		if (c >= 0xd800 && c <= 0xdfff)
			c = 0xfffd; /* Unmatched surrogate */
		if (c < 0x80) {
			*dst++ = c;
			continue;
		}
		if (c < 0x800) {
			*dst++ = 0xc0 + (c >> 6);
			goto t1;
		}
		if (c < 0x10000) {
			*dst++ = 0xe0 + (c >> 12);
			goto t2;
		}
		*dst++ = 0xf0 + (c >> 18);
		*dst++ = 0x80 + ((c >> 12) & 0x3f);
	t2:
		*dst++ = 0x80 + ((c >> 6) & 0x3f);
	t1:
		*dst++ = 0x80 + (c & 0x3f);
	}

	return dst;
}

147 148 149 150 151
/*
 * Convert the unicode UEFI command line to ASCII to pass to kernel.
 * Size of memory allocated return in *cmd_line_len.
 * Returns NULL on error.
 */
152
char *efi_convert_cmdline(efi_loaded_image_t *image,
153
			  int *cmd_line_len, unsigned long max_addr)
154
{
155
	const u16 *s2;
156 157
	u8 *s1 = NULL;
	unsigned long cmdline_addr = 0;
158 159
	int load_options_chars = efi_table_attr(image, load_options_size) / 2;
	const u16 *options = efi_table_attr(image, load_options);
160 161
	int options_bytes = 0;  /* UTF-8 bytes */
	int options_chars = 0;  /* UTF-16 chars */
162 163 164 165 166
	efi_status_t status;
	u16 zero = 0;

	if (options) {
		s2 = options;
167 168 169 170
		while (*s2 && *s2 != '\n'
		       && options_chars < load_options_chars) {
			options_bytes += efi_utf8_bytes(*s2++);
			options_chars++;
171 172 173
		}
	}

174
	if (!options_chars) {
175 176 177 178
		/* No command line options, so return empty string*/
		options = &zero;
	}

179
	options_bytes++;	/* NUL termination */
L
Leif Lindholm 已提交
180

181
	status = efi_allocate_pages(options_bytes, &cmdline_addr, max_addr);
182 183 184 185
	if (status != EFI_SUCCESS)
		return NULL;

	s1 = (u8 *)cmdline_addr;
186
	s2 = (const u16 *)options;
187

188
	s1 = efi_utf16_to_utf8(s1, s2, options_chars);
189 190
	*s1 = '\0';

191
	*cmd_line_len = options_bytes;
192 193
	return (char *)cmdline_addr;
}
194 195 196 197 198 199 200 201 202

/*
 * Handle calling ExitBootServices according to the requirements set out by the
 * spec.  Obtains the current memory map, and returns that info after calling
 * ExitBootServices.  The client must specify a function to perform any
 * processing of the memory map data prior to ExitBootServices.  A client
 * specific structure may be passed to the function via priv.  The client
 * function may be called multiple times.
 */
203
efi_status_t efi_exit_boot_services(void *handle,
204 205 206 207 208 209
				    struct efi_boot_memmap *map,
				    void *priv,
				    efi_exit_boot_map_processing priv_func)
{
	efi_status_t status;

210
	status = efi_get_memory_map(map);
211 212 213 214

	if (status != EFI_SUCCESS)
		goto fail;

215
	status = priv_func(map, priv);
216 217 218
	if (status != EFI_SUCCESS)
		goto free_map;

219 220 221
	if (efi_disable_pci_dma)
		efi_pci_disable_bridge_busmaster();

222
	status = efi_bs_call(exit_boot_services, handle, *map->key_ptr);
223 224 225 226 227 228 229 230 231 232 233 234 235 236 237 238

	if (status == EFI_INVALID_PARAMETER) {
		/*
		 * The memory map changed between efi_get_memory_map() and
		 * exit_boot_services().  Per the UEFI Spec v2.6, Section 6.4:
		 * EFI_BOOT_SERVICES.ExitBootServices we need to get the
		 * updated map, and try again.  The spec implies one retry
		 * should be sufficent, which is confirmed against the EDK2
		 * implementation.  Per the spec, we can only invoke
		 * get_memory_map() and exit_boot_services() - we cannot alloc
		 * so efi_get_memory_map() cannot be used, and we must reuse
		 * the buffer.  For all practical purposes, the headroom in the
		 * buffer should account for any changes in the map so the call
		 * to get_memory_map() is expected to succeed here.
		 */
		*map->map_size = *map->buff_size;
239 240 241 242 243 244
		status = efi_bs_call(get_memory_map,
				     map->map_size,
				     *map->map,
				     map->key_ptr,
				     map->desc_size,
				     map->desc_ver);
245 246 247 248 249

		/* exit_boot_services() was called, thus cannot free */
		if (status != EFI_SUCCESS)
			goto fail;

250
		status = priv_func(map, priv);
251 252 253 254
		/* exit_boot_services() was called, thus cannot free */
		if (status != EFI_SUCCESS)
			goto fail;

255
		status = efi_bs_call(exit_boot_services, handle, *map->key_ptr);
256 257 258 259 260 261 262 263 264
	}

	/* exit_boot_services() was called, thus cannot free */
	if (status != EFI_SUCCESS)
		goto fail;

	return EFI_SUCCESS;

free_map:
265
	efi_bs_call(free_pool, *map->map);
266 267 268
fail:
	return status;
}
269

270
void *get_efi_config_table(efi_guid_t guid)
271
{
272 273
	unsigned long tables = efi_table_attr(efi_system_table, tables);
	int nr_tables = efi_table_attr(efi_system_table, nr_tables);
274 275 276 277 278 279
	int i;

	for (i = 0; i < nr_tables; i++) {
		efi_config_table_t *t = (void *)tables;

		if (efi_guidcmp(t->guid, guid) == 0)
280
			return efi_table_attr(t, table);
281 282 283 284 285

		tables += efi_is_native() ? sizeof(efi_config_table_t)
					  : sizeof(efi_config_table_32_t);
	}
	return NULL;
286
}
287

288 289 290 291 292 293 294 295 296 297 298 299 300 301 302 303 304 305 306 307 308 309 310 311 312 313 314 315 316 317 318 319 320 321 322 323 324 325 326 327 328
/*
 * The LINUX_EFI_INITRD_MEDIA_GUID vendor media device path below provides a way
 * for the firmware or bootloader to expose the initrd data directly to the stub
 * via the trivial LoadFile2 protocol, which is defined in the UEFI spec, and is
 * very easy to implement. It is a simple Linux initrd specific conduit between
 * kernel and firmware, allowing us to put the EFI stub (being part of the
 * kernel) in charge of where and when to load the initrd, while leaving it up
 * to the firmware to decide whether it needs to expose its filesystem hierarchy
 * via EFI protocols.
 */
static const struct {
	struct efi_vendor_dev_path	vendor;
	struct efi_generic_dev_path	end;
} __packed initrd_dev_path = {
	{
		{
			EFI_DEV_MEDIA,
			EFI_DEV_MEDIA_VENDOR,
			sizeof(struct efi_vendor_dev_path),
		},
		LINUX_EFI_INITRD_MEDIA_GUID
	}, {
		EFI_DEV_END_PATH,
		EFI_DEV_END_ENTIRE,
		sizeof(struct efi_generic_dev_path)
	}
};

/**
 * efi_load_initrd_dev_path - load the initrd from the Linux initrd device path
 * @load_addr:	pointer to store the address where the initrd was loaded
 * @load_size:	pointer to store the size of the loaded initrd
 * @max:	upper limit for the initrd memory allocation
 * @return:	%EFI_SUCCESS if the initrd was loaded successfully, in which
 *		case @load_addr and @load_size are assigned accordingly
 *		%EFI_NOT_FOUND if no LoadFile2 protocol exists on the initrd
 *		device path
 *		%EFI_INVALID_PARAMETER if load_addr == NULL or load_size == NULL
 *		%EFI_OUT_OF_RESOURCES if memory allocation failed
 *		%EFI_LOAD_ERROR in all other cases
 */
329
static
330 331 332 333 334 335 336 337 338 339 340 341 342 343 344 345 346 347 348 349 350 351 352 353 354 355 356 357 358 359 360 361 362 363 364 365 366 367 368 369 370
efi_status_t efi_load_initrd_dev_path(unsigned long *load_addr,
				      unsigned long *load_size,
				      unsigned long max)
{
	efi_guid_t lf2_proto_guid = EFI_LOAD_FILE2_PROTOCOL_GUID;
	efi_device_path_protocol_t *dp;
	efi_load_file2_protocol_t *lf2;
	unsigned long initrd_addr;
	unsigned long initrd_size;
	efi_handle_t handle;
	efi_status_t status;

	dp = (efi_device_path_protocol_t *)&initrd_dev_path;
	status = efi_bs_call(locate_device_path, &lf2_proto_guid, &dp, &handle);
	if (status != EFI_SUCCESS)
		return status;

	status = efi_bs_call(handle_protocol, handle, &lf2_proto_guid,
			     (void **)&lf2);
	if (status != EFI_SUCCESS)
		return status;

	status = efi_call_proto(lf2, load_file, dp, false, &initrd_size, NULL);
	if (status != EFI_BUFFER_TOO_SMALL)
		return EFI_LOAD_ERROR;

	status = efi_allocate_pages(initrd_size, &initrd_addr, max);
	if (status != EFI_SUCCESS)
		return status;

	status = efi_call_proto(lf2, load_file, dp, false, &initrd_size,
				(void *)initrd_addr);
	if (status != EFI_SUCCESS) {
		efi_free(initrd_size, initrd_addr);
		return EFI_LOAD_ERROR;
	}

	*load_addr = initrd_addr;
	*load_size = initrd_size;
	return EFI_SUCCESS;
}
371 372 373 374 375 376 377 378 379 380 381 382 383 384 385 386 387 388 389 390 391 392 393 394 395 396 397 398 399 400 401 402 403 404 405 406 407 408 409 410 411 412

static
efi_status_t efi_load_initrd_cmdline(efi_loaded_image_t *image,
				     unsigned long *load_addr,
				     unsigned long *load_size,
				     unsigned long soft_limit,
				     unsigned long hard_limit)
{
	if (!IS_ENABLED(CONFIG_EFI_GENERIC_STUB_INITRD_CMDLINE_LOADER) ||
	    (IS_ENABLED(CONFIG_X86) && (!efi_is_native() || image == NULL))) {
		*load_addr = *load_size = 0;
		return EFI_SUCCESS;
	}

	return handle_cmdline_files(image, L"initrd=", sizeof(L"initrd=") - 2,
				    soft_limit, hard_limit,
				    load_addr, load_size);
}

efi_status_t efi_load_initrd(efi_loaded_image_t *image,
			     unsigned long *load_addr,
			     unsigned long *load_size,
			     unsigned long soft_limit,
			     unsigned long hard_limit)
{
	efi_status_t status;

	if (!load_addr || !load_size)
		return EFI_INVALID_PARAMETER;

	status = efi_load_initrd_dev_path(load_addr, load_size, hard_limit);
	if (status == EFI_SUCCESS) {
		efi_info("Loaded initrd from LINUX_EFI_INITRD_MEDIA_GUID device path\n");
	} else if (status == EFI_NOT_FOUND) {
		status = efi_load_initrd_cmdline(image, load_addr, load_size,
						 soft_limit, hard_limit);
		if (status == EFI_SUCCESS && *load_size > 0)
			efi_info("Loaded initrd from command line option\n");
	}

	return status;
}