mirror of
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712 lines
15 KiB
C
712 lines
15 KiB
C
/*
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american fuzzy lop++ - bitmap related routines
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----------------------------------------------
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Originally written by Michal Zalewski <lcamtuf@google.com>
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Now maintained by by Marc Heuse <mh@mh-sec.de>,
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Heiko Eißfeldt <heiko.eissfeldt@hexco.de> and
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Andrea Fioraldi <andreafioraldi@gmail.com>
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Copyright 2016, 2017 Google Inc. All rights reserved.
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Copyright 2019 AFLplusplus Project. All rights reserved.
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Licensed under the Apache License, Version 2.0 (the "License");
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you may not use this file except in compliance with the License.
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You may obtain a copy of the License at:
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http://www.apache.org/licenses/LICENSE-2.0
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This is the real deal: the program takes an instrumented binary and
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attempts a variety of basic fuzzing tricks, paying close attention to
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how they affect the execution path.
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*/
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#include "afl-fuzz.h"
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/* Write bitmap to file. The bitmap is useful mostly for the secret
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-B option, to focus a separate fuzzing session on a particular
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interesting input without rediscovering all the others. */
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void write_bitmap(void) {
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u8* fname;
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s32 fd;
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if (!bitmap_changed) return;
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bitmap_changed = 0;
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fname = alloc_printf("%s/fuzz_bitmap", out_dir);
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fd = open(fname, O_WRONLY | O_CREAT | O_TRUNC, 0600);
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if (fd < 0) PFATAL("Unable to open '%s'", fname);
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ck_write(fd, virgin_bits, MAP_SIZE, fname);
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close(fd);
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ck_free(fname);
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}
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/* Read bitmap from file. This is for the -B option again. */
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void read_bitmap(u8* fname) {
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s32 fd = open(fname, O_RDONLY);
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if (fd < 0) PFATAL("Unable to open '%s'", fname);
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ck_read(fd, virgin_bits, MAP_SIZE, fname);
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close(fd);
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}
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/* Check if the current execution path brings anything new to the table.
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Update virgin bits to reflect the finds. Returns 1 if the only change is
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the hit-count for a particular tuple; 2 if there are new tuples seen.
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Updates the map, so subsequent calls will always return 0.
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This function is called after every exec() on a fairly large buffer, so
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it needs to be fast. We do this in 32-bit and 64-bit flavors. */
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u8 has_new_bits(u8* virgin_map) {
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#ifdef __x86_64__
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u64* current = (u64*)trace_bits;
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u64* virgin = (u64*)virgin_map;
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u32 i = (MAP_SIZE >> 3);
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#else
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u32* current = (u32*)trace_bits;
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u32* virgin = (u32*)virgin_map;
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u32 i = (MAP_SIZE >> 2);
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#endif /* ^__x86_64__ */
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u8 ret = 0;
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while (i--) {
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/* Optimize for (*current & *virgin) == 0 - i.e., no bits in current bitmap
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that have not been already cleared from the virgin map - since this will
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almost always be the case. */
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if (unlikely(*current) && unlikely(*current & *virgin)) {
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if (likely(ret < 2)) {
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u8* cur = (u8*)current;
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u8* vir = (u8*)virgin;
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/* Looks like we have not found any new bytes yet; see if any non-zero
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bytes in current[] are pristine in virgin[]. */
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#ifdef __x86_64__
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if ((cur[0] && vir[0] == 0xff) || (cur[1] && vir[1] == 0xff) ||
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(cur[2] && vir[2] == 0xff) || (cur[3] && vir[3] == 0xff) ||
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(cur[4] && vir[4] == 0xff) || (cur[5] && vir[5] == 0xff) ||
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(cur[6] && vir[6] == 0xff) || (cur[7] && vir[7] == 0xff))
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ret = 2;
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else
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ret = 1;
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#else
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if ((cur[0] && vir[0] == 0xff) || (cur[1] && vir[1] == 0xff) ||
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(cur[2] && vir[2] == 0xff) || (cur[3] && vir[3] == 0xff))
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ret = 2;
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else
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ret = 1;
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#endif /* ^__x86_64__ */
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}
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*virgin &= ~*current;
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}
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++current;
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++virgin;
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}
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if (ret && virgin_map == virgin_bits) bitmap_changed = 1;
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return ret;
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}
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/* Count the number of bits set in the provided bitmap. Used for the status
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screen several times every second, does not have to be fast. */
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u32 count_bits(u8* mem) {
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u32* ptr = (u32*)mem;
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u32 i = (MAP_SIZE >> 2);
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u32 ret = 0;
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while (i--) {
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u32 v = *(ptr++);
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/* This gets called on the inverse, virgin bitmap; optimize for sparse
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data. */
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if (v == 0xffffffff) {
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ret += 32;
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continue;
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}
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v -= ((v >> 1) & 0x55555555);
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v = (v & 0x33333333) + ((v >> 2) & 0x33333333);
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ret += (((v + (v >> 4)) & 0xF0F0F0F) * 0x01010101) >> 24;
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}
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return ret;
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}
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#define FF(_b) (0xff << ((_b) << 3))
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/* Count the number of bytes set in the bitmap. Called fairly sporadically,
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mostly to update the status screen or calibrate and examine confirmed
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new paths. */
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u32 count_bytes(u8* mem) {
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u32* ptr = (u32*)mem;
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u32 i = (MAP_SIZE >> 2);
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u32 ret = 0;
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while (i--) {
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u32 v = *(ptr++);
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if (!v) continue;
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if (v & FF(0)) ++ret;
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if (v & FF(1)) ++ret;
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if (v & FF(2)) ++ret;
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if (v & FF(3)) ++ret;
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}
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return ret;
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}
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/* Count the number of non-255 bytes set in the bitmap. Used strictly for the
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status screen, several calls per second or so. */
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u32 count_non_255_bytes(u8* mem) {
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u32* ptr = (u32*)mem;
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u32 i = (MAP_SIZE >> 2);
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u32 ret = 0;
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while (i--) {
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u32 v = *(ptr++);
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/* This is called on the virgin bitmap, so optimize for the most likely
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case. */
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if (v == 0xffffffff) continue;
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if ((v & FF(0)) != FF(0)) ++ret;
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if ((v & FF(1)) != FF(1)) ++ret;
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if ((v & FF(2)) != FF(2)) ++ret;
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if ((v & FF(3)) != FF(3)) ++ret;
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}
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return ret;
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}
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/* Destructively simplify trace by eliminating hit count information
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and replacing it with 0x80 or 0x01 depending on whether the tuple
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is hit or not. Called on every new crash or timeout, should be
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reasonably fast. */
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const u8 simplify_lookup[256] = {
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[0] = 1, [1 ... 255] = 128
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};
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#ifdef __x86_64__
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void simplify_trace(u64* mem) {
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u32 i = MAP_SIZE >> 3;
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while (i--) {
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/* Optimize for sparse bitmaps. */
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if (unlikely(*mem)) {
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u8* mem8 = (u8*)mem;
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mem8[0] = simplify_lookup[mem8[0]];
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mem8[1] = simplify_lookup[mem8[1]];
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mem8[2] = simplify_lookup[mem8[2]];
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mem8[3] = simplify_lookup[mem8[3]];
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mem8[4] = simplify_lookup[mem8[4]];
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mem8[5] = simplify_lookup[mem8[5]];
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mem8[6] = simplify_lookup[mem8[6]];
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mem8[7] = simplify_lookup[mem8[7]];
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} else
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*mem = 0x0101010101010101ULL;
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++mem;
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}
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}
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#else
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void simplify_trace(u32* mem) {
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u32 i = MAP_SIZE >> 2;
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while (i--) {
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/* Optimize for sparse bitmaps. */
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if (unlikely(*mem)) {
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u8* mem8 = (u8*)mem;
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mem8[0] = simplify_lookup[mem8[0]];
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mem8[1] = simplify_lookup[mem8[1]];
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mem8[2] = simplify_lookup[mem8[2]];
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mem8[3] = simplify_lookup[mem8[3]];
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} else
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*mem = 0x01010101;
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++mem;
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}
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}
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#endif /* ^__x86_64__ */
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/* Destructively classify execution counts in a trace. This is used as a
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preprocessing step for any newly acquired traces. Called on every exec,
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must be fast. */
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static const u8 count_class_lookup8[256] = {
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[0] = 0,
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[1] = 1,
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[2] = 2,
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[3] = 4,
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[4 ... 7] = 8,
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[8 ... 15] = 16,
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[16 ... 31] = 32,
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[32 ... 127] = 64,
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[128 ... 255] = 128
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};
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static u16 count_class_lookup16[65536];
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void init_count_class16(void) {
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u32 b1, b2;
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for (b1 = 0; b1 < 256; b1++)
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for (b2 = 0; b2 < 256; b2++)
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count_class_lookup16[(b1 << 8) + b2] =
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(count_class_lookup8[b1] << 8) | count_class_lookup8[b2];
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}
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#ifdef __x86_64__
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void classify_counts(u64* mem) {
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u32 i = MAP_SIZE >> 3;
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while (i--) {
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/* Optimize for sparse bitmaps. */
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if (unlikely(*mem)) {
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u16* mem16 = (u16*)mem;
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mem16[0] = count_class_lookup16[mem16[0]];
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mem16[1] = count_class_lookup16[mem16[1]];
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mem16[2] = count_class_lookup16[mem16[2]];
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mem16[3] = count_class_lookup16[mem16[3]];
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}
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++mem;
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}
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}
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#else
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void classify_counts(u32* mem) {
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u32 i = MAP_SIZE >> 2;
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while (i--) {
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/* Optimize for sparse bitmaps. */
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if (unlikely(*mem)) {
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u16* mem16 = (u16*)mem;
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mem16[0] = count_class_lookup16[mem16[0]];
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mem16[1] = count_class_lookup16[mem16[1]];
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}
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++mem;
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}
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}
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#endif /* ^__x86_64__ */
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/* Compact trace bytes into a smaller bitmap. We effectively just drop the
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count information here. This is called only sporadically, for some
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new paths. */
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void minimize_bits(u8* dst, u8* src) {
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u32 i = 0;
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while (i < MAP_SIZE) {
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if (*(src++)) dst[i >> 3] |= 1 << (i & 7);
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++i;
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}
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}
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#ifndef SIMPLE_FILES
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/* Construct a file name for a new test case, capturing the operation
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that led to its discovery. Uses a static buffer. */
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u8* describe_op(u8 hnb) {
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static u8 ret[256];
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if (syncing_party) {
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sprintf(ret, "sync:%s,src:%06u", syncing_party, syncing_case);
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} else {
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sprintf(ret, "src:%06u", current_entry);
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sprintf(ret + strlen(ret), ",time:%llu", get_cur_time() - start_time);
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if (splicing_with >= 0) sprintf(ret + strlen(ret), "+%06d", splicing_with);
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sprintf(ret + strlen(ret), ",op:%s", stage_short);
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if (stage_cur_byte >= 0) {
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sprintf(ret + strlen(ret), ",pos:%d", stage_cur_byte);
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if (stage_val_type != STAGE_VAL_NONE)
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sprintf(ret + strlen(ret), ",val:%s%+d",
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(stage_val_type == STAGE_VAL_BE) ? "be:" : "", stage_cur_val);
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} else
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sprintf(ret + strlen(ret), ",rep:%d", stage_cur_val);
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}
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if (hnb == 2) strcat(ret, ",+cov");
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return ret;
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}
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#endif /* !SIMPLE_FILES */
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/* Write a message accompanying the crash directory :-) */
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static void write_crash_readme(void) {
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u8* fn = alloc_printf("%s/crashes/README.txt", out_dir);
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s32 fd;
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FILE* f;
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fd = open(fn, O_WRONLY | O_CREAT | O_EXCL, 0600);
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ck_free(fn);
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/* Do not die on errors here - that would be impolite. */
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if (fd < 0) return;
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f = fdopen(fd, "w");
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if (!f) {
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close(fd);
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return;
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}
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fprintf(
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f,
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"Command line used to find this crash:\n\n"
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"%s\n\n"
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"If you can't reproduce a bug outside of afl-fuzz, be sure to set the "
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"same\n"
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"memory limit. The limit used for this fuzzing session was %s.\n\n"
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"Need a tool to minimize test cases before investigating the crashes or "
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"sending\n"
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"them to a vendor? Check out the afl-tmin that comes with the fuzzer!\n\n"
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"Found any cool bugs in open-source tools using afl-fuzz? If yes, please "
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"drop\n"
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"an mail at <afl-users@googlegroups.com> once the issues are fixed\n\n"
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" https://github.com/vanhauser-thc/AFLplusplus\n\n",
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orig_cmdline, DMS(mem_limit << 20)); /* ignore errors */
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fclose(f);
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}
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/* Check if the result of an execve() during routine fuzzing is interesting,
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save or queue the input test case for further analysis if so. Returns 1 if
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entry is saved, 0 otherwise. */
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u8 save_if_interesting(char** argv, void* mem, u32 len, u8 fault) {
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if (len == 0) return 0;
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u8* fn = "";
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u8 hnb;
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s32 fd;
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u8 keeping = 0, res;
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/* Update path frequency. */
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u32 cksum = hash32(trace_bits, MAP_SIZE, HASH_CONST);
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struct queue_entry* q = queue;
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while (q) {
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if (q->exec_cksum == cksum) q->n_fuzz = q->n_fuzz + 1;
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q = q->next;
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}
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if (fault == crash_mode) {
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/* Keep only if there are new bits in the map, add to queue for
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future fuzzing, etc. */
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if (!(hnb = has_new_bits(virgin_bits))) {
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if (crash_mode) ++total_crashes;
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return 0;
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}
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#ifndef SIMPLE_FILES
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fn = alloc_printf("%s/queue/id:%06u,%s", out_dir, queued_paths,
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describe_op(hnb));
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#else
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fn = alloc_printf("%s/queue/id_%06u", out_dir, queued_paths);
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#endif /* ^!SIMPLE_FILES */
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add_to_queue(fn, len, 0);
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if (hnb == 2) {
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queue_top->has_new_cov = 1;
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++queued_with_cov;
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}
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queue_top->exec_cksum = cksum;
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/* Try to calibrate inline; this also calls update_bitmap_score() when
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successful. */
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res = calibrate_case(argv, queue_top, mem, queue_cycle - 1, 0);
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if (res == FAULT_ERROR) FATAL("Unable to execute target application");
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fd = open(fn, O_WRONLY | O_CREAT | O_EXCL, 0600);
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if (fd < 0) PFATAL("Unable to create '%s'", fn);
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ck_write(fd, mem, len, fn);
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close(fd);
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keeping = 1;
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}
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switch (fault) {
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case FAULT_TMOUT:
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/* Timeouts are not very interesting, but we're still obliged to keep
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a handful of samples. We use the presence of new bits in the
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hang-specific bitmap as a signal of uniqueness. In "dumb" mode, we
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just keep everything. */
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++total_tmouts;
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if (unique_hangs >= KEEP_UNIQUE_HANG) return keeping;
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if (!dumb_mode) {
|
|
|
|
#ifdef __x86_64__
|
|
simplify_trace((u64*)trace_bits);
|
|
#else
|
|
simplify_trace((u32*)trace_bits);
|
|
#endif /* ^__x86_64__ */
|
|
|
|
if (!has_new_bits(virgin_tmout)) return keeping;
|
|
|
|
}
|
|
|
|
++unique_tmouts;
|
|
|
|
/* Before saving, we make sure that it's a genuine hang by re-running
|
|
the target with a more generous timeout (unless the default timeout
|
|
is already generous). */
|
|
|
|
if (exec_tmout < hang_tmout) {
|
|
|
|
u8 new_fault;
|
|
write_to_testcase(mem, len);
|
|
new_fault = run_target(argv, hang_tmout);
|
|
|
|
/* A corner case that one user reported bumping into: increasing the
|
|
timeout actually uncovers a crash. Make sure we don't discard it if
|
|
so. */
|
|
|
|
if (!stop_soon && new_fault == FAULT_CRASH) goto keep_as_crash;
|
|
|
|
if (stop_soon || new_fault != FAULT_TMOUT) return keeping;
|
|
|
|
}
|
|
|
|
#ifndef SIMPLE_FILES
|
|
|
|
fn = alloc_printf("%s/hangs/id:%06llu,%s", out_dir, unique_hangs,
|
|
describe_op(0));
|
|
|
|
#else
|
|
|
|
fn = alloc_printf("%s/hangs/id_%06llu", out_dir, unique_hangs);
|
|
|
|
#endif /* ^!SIMPLE_FILES */
|
|
|
|
++unique_hangs;
|
|
|
|
last_hang_time = get_cur_time();
|
|
|
|
break;
|
|
|
|
case FAULT_CRASH:
|
|
|
|
keep_as_crash:
|
|
|
|
/* This is handled in a manner roughly similar to timeouts,
|
|
except for slightly different limits and no need to re-run test
|
|
cases. */
|
|
|
|
++total_crashes;
|
|
|
|
if (unique_crashes >= KEEP_UNIQUE_CRASH) return keeping;
|
|
|
|
if (!dumb_mode) {
|
|
|
|
#ifdef __x86_64__
|
|
simplify_trace((u64*)trace_bits);
|
|
#else
|
|
simplify_trace((u32*)trace_bits);
|
|
#endif /* ^__x86_64__ */
|
|
|
|
if (!has_new_bits(virgin_crash)) return keeping;
|
|
|
|
}
|
|
|
|
if (!unique_crashes) write_crash_readme();
|
|
|
|
#ifndef SIMPLE_FILES
|
|
|
|
fn = alloc_printf("%s/crashes/id:%06llu,sig:%02u,%s", out_dir,
|
|
unique_crashes, kill_signal, describe_op(0));
|
|
|
|
#else
|
|
|
|
fn = alloc_printf("%s/crashes/id_%06llu_%02u", out_dir, unique_crashes,
|
|
kill_signal);
|
|
|
|
#endif /* ^!SIMPLE_FILES */
|
|
|
|
++unique_crashes;
|
|
|
|
last_crash_time = get_cur_time();
|
|
last_crash_execs = total_execs;
|
|
|
|
break;
|
|
|
|
case FAULT_ERROR: FATAL("Unable to execute target application");
|
|
|
|
default: return keeping;
|
|
|
|
}
|
|
|
|
/* If we're here, we apparently want to save the crash or hang
|
|
test case, too. */
|
|
|
|
fd = open(fn, O_WRONLY | O_CREAT | O_EXCL, 0600);
|
|
if (fd < 0) PFATAL("Unable to create '%s'", fn);
|
|
ck_write(fd, mem, len, fn);
|
|
close(fd);
|
|
|
|
ck_free(fn);
|
|
|
|
return keeping;
|
|
|
|
}
|
|
|