blob: d5380a48e8fb76ae6670eaf0f4c2884eca796284 [file] [log] [blame]
Thomas Garnier0483e1f2016-06-21 17:47:02 -07001/*
2 * This file implements KASLR memory randomization for x86_64. It randomizes
3 * the virtual address space of kernel memory regions (physical memory
4 * mapping, vmalloc & vmemmap) for x86_64. This security feature mitigates
5 * exploits relying on predictable kernel addresses.
6 *
7 * Entropy is generated using the KASLR early boot functions now shared in
8 * the lib directory (originally written by Kees Cook). Randomization is
9 * done on PGD & PUD page table levels to increase possible addresses. The
10 * physical memory mapping code was adapted to support PUD level virtual
11 * addresses. This implementation on the best configuration provides 30,000
12 * possible virtual addresses in average for each memory region. An additional
13 * low memory page is used to ensure each CPU can start with a PGD aligned
14 * virtual address (for realmode).
15 *
16 * The order of each memory region is not changed. The feature looks at
17 * the available space for the regions based on different configuration
18 * options and randomizes the base and space between each. The size of the
19 * physical memory mapping is the available physical memory.
20 */
21
22#include <linux/kernel.h>
23#include <linux/init.h>
24#include <linux/random.h>
25
26#include <asm/pgalloc.h>
27#include <asm/pgtable.h>
28#include <asm/setup.h>
29#include <asm/kaslr.h>
30
31#include "mm_internal.h"
32
33#define TB_SHIFT 40
34
35/*
36 * Virtual address start and end range for randomization. The end changes base
37 * on configuration to have the highest amount of space for randomization.
38 * It increases the possible random position for each randomized region.
39 *
40 * You need to add an if/def entry if you introduce a new memory region
41 * compatible with KASLR. Your entry must be in logical order with memory
42 * layout. For example, ESPFIX is before EFI because its virtual address is
43 * before. You also need to add a BUILD_BUG_ON in kernel_randomize_memory to
44 * ensure that this order is correct and won't be changed.
45 */
46static const unsigned long vaddr_start;
47static const unsigned long vaddr_end;
48
49/*
50 * Memory regions randomized by KASLR (except modules that use a separate logic
51 * earlier during boot). The list is ordered based on virtual addresses. This
52 * order is kept after randomization.
53 */
54static __initdata struct kaslr_memory_region {
55 unsigned long *base;
56 unsigned long size_tb;
57} kaslr_regions[] = {
58};
59
60/* Get size in bytes used by the memory region */
61static inline unsigned long get_padding(struct kaslr_memory_region *region)
62{
63 return (region->size_tb << TB_SHIFT);
64}
65
66/*
67 * Apply no randomization if KASLR was disabled at boot or if KASAN
68 * is enabled. KASAN shadow mappings rely on regions being PGD aligned.
69 */
70static inline bool kaslr_memory_enabled(void)
71{
72 return kaslr_enabled() && !config_enabled(CONFIG_KASAN);
73}
74
75/* Initialize base and padding for each memory region randomized with KASLR */
76void __init kernel_randomize_memory(void)
77{
78 size_t i;
79 unsigned long vaddr = vaddr_start;
80 unsigned long rand;
81 struct rnd_state rand_state;
82 unsigned long remain_entropy;
83
84 if (!kaslr_memory_enabled())
85 return;
86
87 /* Calculate entropy available between regions */
88 remain_entropy = vaddr_end - vaddr_start;
89 for (i = 0; i < ARRAY_SIZE(kaslr_regions); i++)
90 remain_entropy -= get_padding(&kaslr_regions[i]);
91
92 prandom_seed_state(&rand_state, kaslr_get_random_long("Memory"));
93
94 for (i = 0; i < ARRAY_SIZE(kaslr_regions); i++) {
95 unsigned long entropy;
96
97 /*
98 * Select a random virtual address using the extra entropy
99 * available.
100 */
101 entropy = remain_entropy / (ARRAY_SIZE(kaslr_regions) - i);
102 prandom_bytes_state(&rand_state, &rand, sizeof(rand));
103 entropy = (rand % (entropy + 1)) & PUD_MASK;
104 vaddr += entropy;
105 *kaslr_regions[i].base = vaddr;
106
107 /*
108 * Jump the region and add a minimum padding based on
109 * randomization alignment.
110 */
111 vaddr += get_padding(&kaslr_regions[i]);
112 vaddr = round_up(vaddr + 1, PUD_SIZE);
113 remain_entropy -= entropy;
114 }
115}
116
117/*
118 * Create PGD aligned trampoline table to allow real mode initialization
119 * of additional CPUs. Consume only 1 low memory page.
120 */
121void __meminit init_trampoline(void)
122{
123 unsigned long paddr, paddr_next;
124 pgd_t *pgd;
125 pud_t *pud_page, *pud_page_tramp;
126 int i;
127
128 if (!kaslr_memory_enabled()) {
129 init_trampoline_default();
130 return;
131 }
132
133 pud_page_tramp = alloc_low_page();
134
135 paddr = 0;
136 pgd = pgd_offset_k((unsigned long)__va(paddr));
137 pud_page = (pud_t *) pgd_page_vaddr(*pgd);
138
139 for (i = pud_index(paddr); i < PTRS_PER_PUD; i++, paddr = paddr_next) {
140 pud_t *pud, *pud_tramp;
141 unsigned long vaddr = (unsigned long)__va(paddr);
142
143 pud_tramp = pud_page_tramp + pud_index(paddr);
144 pud = pud_page + pud_index(vaddr);
145 paddr_next = (paddr & PUD_MASK) + PUD_SIZE;
146
147 *pud_tramp = *pud;
148 }
149
150 set_pgd(&trampoline_pgd_entry,
151 __pgd(_KERNPG_TABLE | __pa(pud_page_tramp)));
152}