Merge tag 'efi-2019-07-rc3-3' of git://git.denx.de/u-boot-efi
[oweals/u-boot.git] / lib / efi_loader / efi_image_loader.c
1 // SPDX-License-Identifier: GPL-2.0+
2 /*
3  *  EFI image loader
4  *
5  *  based partly on wine code
6  *
7  *  Copyright (c) 2016 Alexander Graf
8  */
9
10 #include <common.h>
11 #include <efi_loader.h>
12 #include <pe.h>
13
14 const efi_guid_t efi_global_variable_guid = EFI_GLOBAL_VARIABLE_GUID;
15 const efi_guid_t efi_guid_device_path = EFI_DEVICE_PATH_PROTOCOL_GUID;
16 const efi_guid_t efi_guid_loaded_image = EFI_LOADED_IMAGE_PROTOCOL_GUID;
17 const efi_guid_t efi_guid_loaded_image_device_path =
18                 EFI_LOADED_IMAGE_DEVICE_PATH_PROTOCOL_GUID;
19 const efi_guid_t efi_simple_file_system_protocol_guid =
20                 EFI_SIMPLE_FILE_SYSTEM_PROTOCOL_GUID;
21 const efi_guid_t efi_file_info_guid = EFI_FILE_INFO_GUID;
22
23 static int machines[] = {
24 #if defined(__aarch64__)
25         IMAGE_FILE_MACHINE_ARM64,
26 #elif defined(__arm__)
27         IMAGE_FILE_MACHINE_ARM,
28         IMAGE_FILE_MACHINE_THUMB,
29         IMAGE_FILE_MACHINE_ARMNT,
30 #endif
31
32 #if defined(__x86_64__)
33         IMAGE_FILE_MACHINE_AMD64,
34 #elif defined(__i386__)
35         IMAGE_FILE_MACHINE_I386,
36 #endif
37
38 #if defined(__riscv) && (__riscv_xlen == 32)
39         IMAGE_FILE_MACHINE_RISCV32,
40 #endif
41
42 #if defined(__riscv) && (__riscv_xlen == 64)
43         IMAGE_FILE_MACHINE_RISCV64,
44 #endif
45         0 };
46
47 /**
48  * efi_print_image_info() - print information about a loaded image
49  *
50  * If the program counter is located within the image the offset to the base
51  * address is shown.
52  *
53  * @obj:        EFI object
54  * @image:      loaded image
55  * @pc:         program counter (use NULL to suppress offset output)
56  * Return:      status code
57  */
58 static efi_status_t efi_print_image_info(struct efi_loaded_image_obj *obj,
59                                          struct efi_loaded_image *image,
60                                          void *pc)
61 {
62         printf("UEFI image");
63         printf(" [0x%p:0x%p]",
64                image->image_base, image->image_base + image->image_size - 1);
65         if (pc && pc >= image->image_base &&
66             pc < image->image_base + image->image_size)
67                 printf(" pc=0x%zx", pc - image->image_base);
68         if (image->file_path)
69                 printf(" '%pD'", image->file_path);
70         printf("\n");
71         return EFI_SUCCESS;
72 }
73
74 /**
75  * efi_print_image_infos() - print information about all loaded images
76  *
77  * @pc:         program counter (use NULL to suppress offset output)
78  */
79 void efi_print_image_infos(void *pc)
80 {
81         struct efi_object *efiobj;
82         struct efi_handler *handler;
83
84         list_for_each_entry(efiobj, &efi_obj_list, link) {
85                 list_for_each_entry(handler, &efiobj->protocols, link) {
86                         if (!guidcmp(handler->guid, &efi_guid_loaded_image)) {
87                                 efi_print_image_info(
88                                         (struct efi_loaded_image_obj *)efiobj,
89                                         handler->protocol_interface, pc);
90                         }
91                 }
92         }
93 }
94
95 /**
96  * efi_loader_relocate() - relocate UEFI binary
97  *
98  * @rel:                pointer to the relocation table
99  * @rel_size:           size of the relocation table in bytes
100  * @efi_reloc:          actual load address of the image
101  * @pref_address:       preferred load address of the image
102  * Return:              status code
103  */
104 static efi_status_t efi_loader_relocate(const IMAGE_BASE_RELOCATION *rel,
105                         unsigned long rel_size, void *efi_reloc,
106                         unsigned long pref_address)
107 {
108         unsigned long delta = (unsigned long)efi_reloc - pref_address;
109         const IMAGE_BASE_RELOCATION *end;
110         int i;
111
112         if (delta == 0)
113                 return EFI_SUCCESS;
114
115         end = (const IMAGE_BASE_RELOCATION *)((const char *)rel + rel_size);
116         while (rel < end && rel->SizeOfBlock) {
117                 const uint16_t *relocs = (const uint16_t *)(rel + 1);
118                 i = (rel->SizeOfBlock - sizeof(*rel)) / sizeof(uint16_t);
119                 while (i--) {
120                         uint32_t offset = (uint32_t)(*relocs & 0xfff) +
121                                           rel->VirtualAddress;
122                         int type = *relocs >> EFI_PAGE_SHIFT;
123                         uint64_t *x64 = efi_reloc + offset;
124                         uint32_t *x32 = efi_reloc + offset;
125                         uint16_t *x16 = efi_reloc + offset;
126
127                         switch (type) {
128                         case IMAGE_REL_BASED_ABSOLUTE:
129                                 break;
130                         case IMAGE_REL_BASED_HIGH:
131                                 *x16 += ((uint32_t)delta) >> 16;
132                                 break;
133                         case IMAGE_REL_BASED_LOW:
134                                 *x16 += (uint16_t)delta;
135                                 break;
136                         case IMAGE_REL_BASED_HIGHLOW:
137                                 *x32 += (uint32_t)delta;
138                                 break;
139                         case IMAGE_REL_BASED_DIR64:
140                                 *x64 += (uint64_t)delta;
141                                 break;
142 #ifdef __riscv
143                         case IMAGE_REL_BASED_RISCV_HI20:
144                                 *x32 = ((*x32 & 0xfffff000) + (uint32_t)delta) |
145                                         (*x32 & 0x00000fff);
146                                 break;
147                         case IMAGE_REL_BASED_RISCV_LOW12I:
148                         case IMAGE_REL_BASED_RISCV_LOW12S:
149                                 /* We know that we're 4k aligned */
150                                 if (delta & 0xfff) {
151                                         printf("Unsupported reloc offset\n");
152                                         return EFI_LOAD_ERROR;
153                                 }
154                                 break;
155 #endif
156                         default:
157                                 printf("Unknown Relocation off %x type %x\n",
158                                        offset, type);
159                                 return EFI_LOAD_ERROR;
160                         }
161                         relocs++;
162                 }
163                 rel = (const IMAGE_BASE_RELOCATION *)relocs;
164         }
165         return EFI_SUCCESS;
166 }
167
168 void __weak invalidate_icache_all(void)
169 {
170         /* If the system doesn't support icache_all flush, cross our fingers */
171 }
172
173 /**
174  * efi_set_code_and_data_type() - determine the memory types to be used for code
175  *                                and data.
176  *
177  * @loaded_image_info:  image descriptor
178  * @image_type:         field Subsystem of the optional header for
179  *                      Windows specific field
180  */
181 static void efi_set_code_and_data_type(
182                         struct efi_loaded_image *loaded_image_info,
183                         uint16_t image_type)
184 {
185         switch (image_type) {
186         case IMAGE_SUBSYSTEM_EFI_APPLICATION:
187                 loaded_image_info->image_code_type = EFI_LOADER_CODE;
188                 loaded_image_info->image_data_type = EFI_LOADER_DATA;
189                 break;
190         case IMAGE_SUBSYSTEM_EFI_BOOT_SERVICE_DRIVER:
191                 loaded_image_info->image_code_type = EFI_BOOT_SERVICES_CODE;
192                 loaded_image_info->image_data_type = EFI_BOOT_SERVICES_DATA;
193                 break;
194         case IMAGE_SUBSYSTEM_EFI_RUNTIME_DRIVER:
195         case IMAGE_SUBSYSTEM_EFI_ROM:
196                 loaded_image_info->image_code_type = EFI_RUNTIME_SERVICES_CODE;
197                 loaded_image_info->image_data_type = EFI_RUNTIME_SERVICES_DATA;
198                 break;
199         default:
200                 printf("%s: invalid image type: %u\n", __func__, image_type);
201                 /* Let's assume it is an application */
202                 loaded_image_info->image_code_type = EFI_LOADER_CODE;
203                 loaded_image_info->image_data_type = EFI_LOADER_DATA;
204                 break;
205         }
206 }
207
208 /**
209  * efi_load_pe() - relocate EFI binary
210  *
211  * This function loads all sections from a PE binary into a newly reserved
212  * piece of memory. On success the entry point is returned as handle->entry.
213  *
214  * @handle:             loaded image handle
215  * @efi:                pointer to the EFI binary
216  * @loaded_image_info:  loaded image protocol
217  * Return:              status code
218  */
219 efi_status_t efi_load_pe(struct efi_loaded_image_obj *handle, void *efi,
220                          struct efi_loaded_image *loaded_image_info)
221 {
222         IMAGE_NT_HEADERS32 *nt;
223         IMAGE_DOS_HEADER *dos;
224         IMAGE_SECTION_HEADER *sections;
225         int num_sections;
226         void *efi_reloc;
227         int i;
228         const IMAGE_BASE_RELOCATION *rel;
229         unsigned long rel_size;
230         int rel_idx = IMAGE_DIRECTORY_ENTRY_BASERELOC;
231         uint64_t image_base;
232         unsigned long virt_size = 0;
233         int supported = 0;
234
235         dos = efi;
236         if (dos->e_magic != IMAGE_DOS_SIGNATURE) {
237                 printf("%s: Invalid DOS Signature\n", __func__);
238                 return EFI_LOAD_ERROR;
239         }
240
241         nt = (void *) ((char *)efi + dos->e_lfanew);
242         if (nt->Signature != IMAGE_NT_SIGNATURE) {
243                 printf("%s: Invalid NT Signature\n", __func__);
244                 return EFI_LOAD_ERROR;
245         }
246
247         for (i = 0; machines[i]; i++)
248                 if (machines[i] == nt->FileHeader.Machine) {
249                         supported = 1;
250                         break;
251                 }
252
253         if (!supported) {
254                 printf("%s: Machine type 0x%04x is not supported\n",
255                        __func__, nt->FileHeader.Machine);
256                 return EFI_LOAD_ERROR;
257         }
258
259         /* Calculate upper virtual address boundary */
260         num_sections = nt->FileHeader.NumberOfSections;
261         sections = (void *)&nt->OptionalHeader +
262                             nt->FileHeader.SizeOfOptionalHeader;
263
264         for (i = num_sections - 1; i >= 0; i--) {
265                 IMAGE_SECTION_HEADER *sec = &sections[i];
266                 virt_size = max_t(unsigned long, virt_size,
267                                   sec->VirtualAddress + sec->Misc.VirtualSize);
268         }
269
270         /* Read 32/64bit specific header bits */
271         if (nt->OptionalHeader.Magic == IMAGE_NT_OPTIONAL_HDR64_MAGIC) {
272                 IMAGE_NT_HEADERS64 *nt64 = (void *)nt;
273                 IMAGE_OPTIONAL_HEADER64 *opt = &nt64->OptionalHeader;
274                 image_base = opt->ImageBase;
275                 efi_set_code_and_data_type(loaded_image_info, opt->Subsystem);
276                 handle->image_type = opt->Subsystem;
277                 efi_reloc = efi_alloc(virt_size,
278                                       loaded_image_info->image_code_type);
279                 if (!efi_reloc) {
280                         printf("%s: Could not allocate %lu bytes\n",
281                                __func__, virt_size);
282                         return EFI_OUT_OF_RESOURCES;
283                 }
284                 handle->entry = efi_reloc + opt->AddressOfEntryPoint;
285                 rel_size = opt->DataDirectory[rel_idx].Size;
286                 rel = efi_reloc + opt->DataDirectory[rel_idx].VirtualAddress;
287                 virt_size = ALIGN(virt_size, opt->SectionAlignment);
288         } else if (nt->OptionalHeader.Magic == IMAGE_NT_OPTIONAL_HDR32_MAGIC) {
289                 IMAGE_OPTIONAL_HEADER32 *opt = &nt->OptionalHeader;
290                 image_base = opt->ImageBase;
291                 efi_set_code_and_data_type(loaded_image_info, opt->Subsystem);
292                 handle->image_type = opt->Subsystem;
293                 efi_reloc = efi_alloc(virt_size,
294                                       loaded_image_info->image_code_type);
295                 if (!efi_reloc) {
296                         printf("%s: Could not allocate %lu bytes\n",
297                                __func__, virt_size);
298                         return EFI_OUT_OF_RESOURCES;
299                 }
300                 handle->entry = efi_reloc + opt->AddressOfEntryPoint;
301                 rel_size = opt->DataDirectory[rel_idx].Size;
302                 rel = efi_reloc + opt->DataDirectory[rel_idx].VirtualAddress;
303                 virt_size = ALIGN(virt_size, opt->SectionAlignment);
304         } else {
305                 printf("%s: Invalid optional header magic %x\n", __func__,
306                        nt->OptionalHeader.Magic);
307                 return EFI_LOAD_ERROR;
308         }
309
310         /* Copy PE headers */
311         memcpy(efi_reloc, efi, sizeof(*dos) + sizeof(*nt)
312                + nt->FileHeader.SizeOfOptionalHeader
313                + num_sections * sizeof(IMAGE_SECTION_HEADER));
314
315         /* Load sections into RAM */
316         for (i = num_sections - 1; i >= 0; i--) {
317                 IMAGE_SECTION_HEADER *sec = &sections[i];
318                 memset(efi_reloc + sec->VirtualAddress, 0,
319                        sec->Misc.VirtualSize);
320                 memcpy(efi_reloc + sec->VirtualAddress,
321                        efi + sec->PointerToRawData,
322                        sec->SizeOfRawData);
323         }
324
325         /* Run through relocations */
326         if (efi_loader_relocate(rel, rel_size, efi_reloc,
327                                 (unsigned long)image_base) != EFI_SUCCESS) {
328                 efi_free_pages((uintptr_t) efi_reloc,
329                                (virt_size + EFI_PAGE_MASK) >> EFI_PAGE_SHIFT);
330                 return EFI_LOAD_ERROR;
331         }
332
333         /* Flush cache */
334         flush_cache((ulong)efi_reloc,
335                     ALIGN(virt_size, EFI_CACHELINE_SIZE));
336         invalidate_icache_all();
337
338         /* Populate the loaded image interface bits */
339         loaded_image_info->image_base = efi_reloc;
340         loaded_image_info->image_size = virt_size;
341
342         return EFI_SUCCESS;
343 }