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Merge branch 'bpf-big-map-entries'
[thirdparty/kernel/stable.git] / include / linux / bpf_verifier.h
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1/* Copyright (c) 2011-2014 PLUMgrid, http://plumgrid.com
2 *
3 * This program is free software; you can redistribute it and/or
4 * modify it under the terms of version 2 of the GNU General Public
5 * License as published by the Free Software Foundation.
6 */
7#ifndef _LINUX_BPF_VERIFIER_H
8#define _LINUX_BPF_VERIFIER_H 1
9
10#include <linux/bpf.h> /* for enum bpf_reg_type */
11#include <linux/filter.h> /* for MAX_BPF_STACK */
f1174f77 12#include <linux/tnum.h>
58e2af8b 13
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14/* Maximum variable offset umax_value permitted when resolving memory accesses.
15 * In practice this is far bigger than any realistic pointer offset; this limit
16 * ensures that umax_value + (int)off + (int)size cannot overflow a u64.
17 */
bb7f0f98 18#define BPF_MAX_VAR_OFF (1 << 29)
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19/* Maximum variable size permitted for ARG_CONST_SIZE[_OR_ZERO]. This ensures
20 * that converting umax_value to int cannot overflow.
21 */
bb7f0f98 22#define BPF_MAX_VAR_SIZ (1 << 29)
48461135 23
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24/* Liveness marks, used for registers and spilled-regs (in stack slots).
25 * Read marks propagate upwards until they find a write mark; they record that
26 * "one of this state's descendants read this reg" (and therefore the reg is
27 * relevant for states_equal() checks).
28 * Write marks collect downwards and do not propagate; they record that "the
29 * straight-line code that reached this state (from its parent) wrote this reg"
30 * (and therefore that reads propagated from this state or its descendants
31 * should not propagate to its parent).
32 * A state with a write mark can receive read marks; it just won't propagate
33 * them to its parent, since the write mark is a property, not of the state,
34 * but of the link between it and its parent. See mark_reg_read() and
35 * mark_stack_slot_read() in kernel/bpf/verifier.c.
36 */
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37enum bpf_reg_liveness {
38 REG_LIVE_NONE = 0, /* reg hasn't been read or written this branch */
39 REG_LIVE_READ, /* reg was read, so we're sensitive to initial value */
40 REG_LIVE_WRITTEN, /* reg was written first, screening off later reads */
41};
42
58e2af8b 43struct bpf_reg_state {
679c782d 44 /* Ordering of fields matters. See states_equal() */
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45 enum bpf_reg_type type;
46 union {
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47 /* valid when type == PTR_TO_PACKET */
48 u16 range;
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49
50 /* valid when type == CONST_PTR_TO_MAP | PTR_TO_MAP_VALUE |
51 * PTR_TO_MAP_VALUE_OR_NULL
52 */
53 struct bpf_map *map_ptr;
54 };
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55 /* Fixed part of pointer offset, pointer types only */
56 s32 off;
57 /* For PTR_TO_PACKET, used to find other pointers with the same variable
58 * offset, so they can share range knowledge.
59 * For PTR_TO_MAP_VALUE_OR_NULL this is used to share which map value we
60 * came from, when one is tested for != NULL.
61 */
d2a4dd37 62 u32 id;
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63 /* For scalar types (SCALAR_VALUE), this represents our knowledge of
64 * the actual value.
65 * For pointer types, this represents the variable part of the offset
66 * from the pointed-to object, and is shared with all bpf_reg_states
67 * with the same id as us.
68 */
69 struct tnum var_off;
d2a4dd37 70 /* Used to determine if any memory access using this register will
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71 * result in a bad access.
72 * These refer to the same value as var_off, not necessarily the actual
73 * contents of the register.
d2a4dd37 74 */
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75 s64 smin_value; /* minimum possible (s64)value */
76 s64 smax_value; /* maximum possible (s64)value */
77 u64 umin_value; /* minimum possible (u64)value */
78 u64 umax_value; /* maximum possible (u64)value */
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79 /* parentage chain for liveness checking */
80 struct bpf_reg_state *parent;
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81 /* Inside the callee two registers can be both PTR_TO_STACK like
82 * R1=fp-8 and R2=fp-8, but one of them points to this function stack
83 * while another to the caller's stack. To differentiate them 'frameno'
84 * is used which is an index in bpf_verifier_state->frame[] array
85 * pointing to bpf_func_state.
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86 */
87 u32 frameno;
dc503a8a 88 enum bpf_reg_liveness live;
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89};
90
91enum bpf_stack_slot_type {
92 STACK_INVALID, /* nothing was stored in this stack slot */
93 STACK_SPILL, /* register spilled into stack */
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94 STACK_MISC, /* BPF program wrote some data into this slot */
95 STACK_ZERO, /* BPF program wrote constant zero */
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96};
97
98#define BPF_REG_SIZE 8 /* size of eBPF register in bytes */
99
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100struct bpf_stack_state {
101 struct bpf_reg_state spilled_ptr;
102 u8 slot_type[BPF_REG_SIZE];
103};
104
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105/* state of the program:
106 * type of all registers and stack info
107 */
f4d7e40a 108struct bpf_func_state {
58e2af8b 109 struct bpf_reg_state regs[MAX_BPF_REG];
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110 /* index of call instruction that called into this func */
111 int callsite;
112 /* stack frame number of this function state from pov of
113 * enclosing bpf_verifier_state.
114 * 0 = main function, 1 = first callee.
115 */
116 u32 frameno;
117 /* subprog number == index within subprog_stack_depth
118 * zero == main subprog
119 */
120 u32 subprogno;
121
122 /* should be second to last. See copy_func_state() */
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123 int allocated_stack;
124 struct bpf_stack_state *stack;
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125};
126
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127#define MAX_CALL_FRAMES 8
128struct bpf_verifier_state {
129 /* call stack tracking */
130 struct bpf_func_state *frame[MAX_CALL_FRAMES];
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131 u32 curframe;
132};
133
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134/* linked list of verifier states used to prune search */
135struct bpf_verifier_state_list {
136 struct bpf_verifier_state state;
137 struct bpf_verifier_state_list *next;
138};
139
140struct bpf_insn_aux_data {
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141 union {
142 enum bpf_reg_type ptr_type; /* pointer type for load/store insns */
c93552c4 143 unsigned long map_state; /* pointer/poison value for maps */
1c2a088a 144 s32 call_imm; /* saved imm field of call insn */
81ed18ab 145 };
23994631 146 int ctx_field_size; /* the ctx field size for load insn, maybe 0 */
af86ca4e 147 int sanitize_stack_off; /* stack slot to be cleared */
c131187d 148 bool seen; /* this insn was processed by the verifier */
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149};
150
151#define MAX_USED_MAPS 64 /* max number of maps accessed by one eBPF program */
152
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153#define BPF_VERIFIER_TMP_LOG_SIZE 1024
154
b9193c1b 155struct bpf_verifier_log {
e7bf8249 156 u32 level;
a2a7d570 157 char kbuf[BPF_VERIFIER_TMP_LOG_SIZE];
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158 char __user *ubuf;
159 u32 len_used;
160 u32 len_total;
161};
162
b9193c1b 163static inline bool bpf_verifier_log_full(const struct bpf_verifier_log *log)
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164{
165 return log->len_used >= log->len_total - 1;
166}
167
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168static inline bool bpf_verifier_log_needed(const struct bpf_verifier_log *log)
169{
170 return log->level && log->ubuf && !bpf_verifier_log_full(log);
171}
172
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173#define BPF_MAX_SUBPROGS 256
174
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175struct bpf_subprog_info {
176 u32 start; /* insn idx of function entry point */
177 u16 stack_depth; /* max. stack depth used by this function */
178};
179
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180/* single container for all structs
181 * one verifier_env per bpf_check() call
182 */
183struct bpf_verifier_env {
184 struct bpf_prog *prog; /* eBPF program being verified */
00176a34 185 const struct bpf_verifier_ops *ops;
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186 struct bpf_verifier_stack_elem *head; /* stack of verifier states to be processed */
187 int stack_size; /* number of states to be processed */
e07b98d9 188 bool strict_alignment; /* perform strict pointer alignment checks */
638f5b90 189 struct bpf_verifier_state *cur_state; /* current verifier state */
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190 struct bpf_verifier_state_list **explored_states; /* search pruning optimization */
191 struct bpf_map *used_maps[MAX_USED_MAPS]; /* array of map's used by eBPF program */
192 u32 used_map_cnt; /* number of used maps */
193 u32 id_gen; /* used to generate unique reg IDs */
194 bool allow_ptr_leaks;
195 bool seen_direct_write;
196 struct bpf_insn_aux_data *insn_aux_data; /* array of per-insn state */
b9193c1b 197 struct bpf_verifier_log log;
9c8105bd 198 struct bpf_subprog_info subprog_info[BPF_MAX_SUBPROGS + 1];
cc8b0b92 199 u32 subprog_cnt;
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200};
201
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202__printf(2, 0) void bpf_verifier_vlog(struct bpf_verifier_log *log,
203 const char *fmt, va_list args);
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204__printf(2, 3) void bpf_verifier_log_write(struct bpf_verifier_env *env,
205 const char *fmt, ...);
206
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207static inline struct bpf_reg_state *cur_regs(struct bpf_verifier_env *env)
208{
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209 struct bpf_verifier_state *cur = env->cur_state;
210
211 return cur->frame[cur->curframe]->regs;
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212}
213
ab3f0063 214int bpf_prog_offload_verifier_prep(struct bpf_verifier_env *env);
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215int bpf_prog_offload_verify_insn(struct bpf_verifier_env *env,
216 int insn_idx, int prev_insn_idx);
ab3f0063 217
58e2af8b 218#endif /* _LINUX_BPF_VERIFIER_H */