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365 lines (348 loc) · 13.5 KB
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// Differential fuzzing for the fast parser, a port of src/dotnet/SelfTestFuzz.cs. fast_parse must
// accept and reject exactly what the simdjson path does, with identical results; utf8_valid must
// agree with an independent scalar validator and with simdjson's. Every input ends right before a
// no-access page, so any read past its end crashes the selftest (and ASan checks everything else).
#include "bench.hpp"
#include <cstdlib>
#include <cstring>
#include <random>
namespace bench
{
namespace
{
constexpr size_t guarded_bytes = 1 << 20;
uint8_t *guarded_region()
{
static uint8_t *region = [] {
auto *p = static_cast<uint8_t *>(VirtualAlloc(nullptr, guarded_bytes + 4096, MEM_RESERVE | MEM_COMMIT, PAGE_READWRITE));
DWORD old = 0;
require(p && VirtualProtect(p + guarded_bytes, 4096, PAGE_NOACCESS, &old), "selftest: guard page");
return p;
}();
return region;
}
const uint8_t *guarded(const std::string &input)
{
uint8_t *at = guarded_region() + guarded_bytes - input.size();
std::memcpy(at, input.data(), input.size());
return at;
}
struct Rng
{
std::mt19937_64 engine;
int next(int n)
{
return int(engine() % uint64_t(n));
}
int next(int low, int high) // [low, high)
{
return low + next(high - low);
}
template <class T> const T &pick(const std::vector<T> &values)
{
return values[size_t(next(int(values.size())))];
}
};
std::string hex4(int c, bool upper)
{
char b[8];
std::snprintf(b, sizeof b, upper ? "\\u%04X" : "\\u%04x", c);
return b;
}
std::string name(const std::string &n, Rng &rng)
{
if (rng.next(12) != 0)
{
return "\"" + n + "\"";
}
std::string s = "\"";
for (char c : n)
{
const int r = rng.next(3);
s += r == 2 ? std::string(1, c) : hex4(c, r == 1);
}
return s + "\"";
}
std::string digits(Rng &rng, int count)
{
std::string s(1, char('1' + rng.next(9)));
for (int i = 1; i < count; ++i)
{
s += char('0' + rng.next(10));
}
return s;
}
std::string message(Rng &rng, bool clean)
{
if (!clean && rng.next(8) == 0)
{
static const std::vector<std::string> invalid = {
"1", "null", "\"\\", "\"a\\x\"", "\"\\u12\"", "\"\\uD800\"", "\"\\uDC00x\"", "\"\\uD83D\\u0041\"",
"\"\x01\"", "\"\\uD83D\\\\uDE00\"", "\"tab\there\""};
return rng.pick(invalid);
}
static const std::vector<std::string> pieces = {
"a", "Z", " ", "\\\"", "\\\\", "\\/", "\\b", "\\f", "\\n", "\\r", "\\t", "\\u0041", "\\u00e9", "\\u20AC",
"\\uFFFF", "\\u0000", "\\uD83D\\uDE00", "\\uDBFF\\uDFFF", "\xC3\xA9", "\xE2\x82\xAC", "\xF0\x9F\x98\x80",
"\xC3\x9Cn\xC3\xAF", "\xE6\x97\xA5\xE6\x9C\xAC", "\x7F"};
std::string s = "\"";
const size_t length = rng.next(8) != 0 ? size_t(rng.next(0, 90)) : clean ? size_t(rng.next(600, 3000)) : size_t(rng.next(3900, 4400));
while (s.size() < length)
{
s += rng.next(3) == 0 ? std::string(size_t(rng.next(1, 90)), 'x') : rng.pick(pieces);
}
return s + "\"";
}
std::string document(Rng &rng, bool clean)
{
auto ws = [&] {
switch (rng.next(4))
{
case 0:
return std::string(" ");
case 1:
return std::string("\n\t");
case 2:
return std::string("\r\n ");
default:
return std::string();
}
};
auto pick = [&](const std::vector<std::string> &valid, const std::vector<std::string> &invalid) {
return !clean && rng.next(8) == 0 ? rng.pick(invalid) : rng.pick(valid);
};
std::string s = "[" + ws();
const int records = rng.next(8) == 0 ? rng.next(3, 12) : rng.next(0, 3);
for (int record = records; record >= 0; --record)
{
std::vector<std::string> fields = {
name("id", rng) + ":" + ws() +
pick({"0", "7", "18446744073709551615", "12345678901234567", "10000000000000000000", "18446744073709551610",
digits(rng, rng.next(1, 20))},
{"18446744073709551616", "18446744073709551620", "99999999999999999999", "184467440737095516150", "007",
"-1", "1.0", "1e3", "\"1\"", "true", "-",
digits(rng, rng.next(1, 21)) + rng.pick(std::vector<std::string>{".5", "e1", "E+2", ".", "e"})}),
name("timestamp_ns", rng) + ":" + pick({"1700000000000000000", "0", "18446744073709551615", "99999999"}, {"01", "1.5", "+1"}),
name("source", rng) + ":" + pick({"4294967295", "0", "123", "10"}, {"4294967296", "-0", "00"}),
name("kind", rng) + ":" +
pick({"\"kind00\"", "\"kind15\"", "\"\\u006bind07\"", "\"kind09\"", "\"kin\\u006410\""},
{"\"kind16\"", "\"Kind01\"", "\"kind1\"", "5", "\"kind\"", "\"kind010\"", "\"kind05x", "\"kind05\x01\"",
"\"kind05\\\"\"", "\"kind05\\n\""}),
name("value_milli", rng) + ":" +
pick({"-0", "1000000", "-1000000", "0", "123", "-999999"}, {"1000001", "-1000001", "-", "--1", "-00", "01", "1e0"}),
name("flags", rng) + ":" + pick({"0", "3", "4294967295", "12"}, {"4294967296", "-3", "3.0"}),
name("message", rng) + ":" + ws() + message(rng, clean),
};
if (!clean && rng.next(15) == 0)
{
fields.erase(fields.begin() + rng.next(int(fields.size()))); // missing field
}
if (!clean && rng.next(15) == 0)
{
fields.push_back(fields[size_t(rng.next(int(fields.size())))]); // duplicate
}
if (!clean && rng.next(20) == 0)
{
// Unknown names, including same-length near misses of real ones.
static const std::vector<std::string> unknown = {"extra", "i\\u0064x", "value_millx", "timestamp_nz", "messagf",
"flagz", "Id", "kinds", "sourcf", "kind "};
fields.push_back("\"" + rng.pick(unknown) + "\":1");
}
std::shuffle(fields.begin(), fields.end(), rng.engine);
s += "{" + ws();
for (size_t i = 0; i < fields.size(); ++i)
{
s += (i ? ws() + "," + ws() : std::string()) + fields[i];
}
s += ws() + "}" + ws() + (record > 0 ? "," + ws() : std::string());
}
return s + "]" + ws();
}
// Byte-level damage: overwrite, insert, delete or truncate with bytes that matter to JSON and UTF-8.
std::string mutate(Rng &rng, std::string s, int count)
{
static const std::string interesting = std::string("\"\\{}[],:0123456789-.eEu nrt\t\n\r") +
std::string("\x00\x1F\x7F\x80\xBF\xC0\xC3\xE2\xED\xF0\xF4\xFF", 12);
for (int i = 0; i < count && !s.empty(); ++i)
{
const size_t at = size_t(rng.next(int(s.size())));
switch (rng.next(4))
{
case 0:
s[at] = interesting[size_t(rng.next(int(interesting.size())))];
break;
case 1:
s.insert(s.begin() + ptrdiff_t(at), interesting[size_t(rng.next(int(interesting.size())))]);
break;
case 2:
s.erase(at, 1);
break;
default:
s.erase(at);
break;
}
}
return s;
}
// Independent scalar UTF-8 validator (RFC 3629): the reference the SIMD port is compared with.
bool utf8_scalar(const uint8_t *p, size_t n)
{
for (size_t i = 0; i < n;)
{
const uint8_t c = p[i];
size_t length;
uint32_t cp;
if (c < 0x80)
{
++i;
continue;
}
if (c >= 0xC2 && c <= 0xDF)
{
length = 2, cp = c & 0x1F;
}
else if (c >= 0xE0 && c <= 0xEF)
{
length = 3, cp = c & 0x0F;
}
else if (c >= 0xF0 && c <= 0xF4)
{
length = 4, cp = c & 0x07;
}
else
{
return false;
}
if (n - i < length)
{
return false;
}
for (size_t k = 1; k < length; ++k)
{
if ((p[i + k] & 0xC0) != 0x80)
{
return false;
}
cp = (cp << 6) | (p[i + k] & 0x3F);
}
if ((length == 3 && cp < 0x800) || (length == 4 && (cp < 0x10000 || cp > 0x10FFFF)) || (cp >= 0xD800 && cp <= 0xDFFF))
{
return false;
}
i += length;
}
return true;
}
std::string text(Rng &rng)
{
static const std::vector<std::string> pieces = {
"a", "0123456789abcdef", "\xC3\xA9", "\xE2\x82\xAC", "\xF0\x9F\x98\x80", "\xF4\x8F\xBF\xBF", "\xED\x9F\xBF",
"\xEE\x80\x80", "\xDF\xBF", "\xE0\xA0\x80",
// invalid from here on
"\xC3", "\xE2\x82", "\xF0\x9F\x98", "\x80", "\xBF", "\xC0\x80", "\xC1\xBF", "\xE0\x80\x80", "\xED\xA0\x80",
"\xED\xBF\xBF", "\xF0\x80\x80\x80", "\xF4\x90\x80\x80", "\xF5\x80\x80\x80", "\xFF"};
std::string s(size_t(rng.next(0, 70)), 'x');
const bool mostly_valid = rng.next(3) != 0;
for (int n = rng.next(1, 40); n > 0; --n)
{
s += pieces[size_t(rng.next(mostly_valid ? 10 : int(pieces.size())))];
}
if (mostly_valid && rng.next(4) == 0 && !s.empty())
{
s[size_t(rng.next(int(s.size())))] = pieces[size_t(10 + rng.next(int(pieces.size()) - 10))][0]; // one damaged byte
}
return s;
}
bool utf8_agree(const std::string &s)
{
const uint8_t *g = guarded(s);
const bool want = utf8_scalar(reinterpret_cast<const uint8_t *>(s.data()), s.size());
return utf8_valid(g, s.size()) == want && simdjson::validate_utf8(s.data(), s.size()) == want;
}
template <class F> std::string error_of(F fn)
{
try
{
fn();
}
catch (const std::exception &e)
{
return e.what();
}
return {};
}
} // namespace
// BENCH_FUZZ=<seed>,<scale> runs a longer soak (scale multiplies both iteration counts).
uint64_t fuzz_selftest()
{
uint64_t checks = 0, seed = 20260930, documents = 60000, texts = 60000;
if (const char *soak = std::getenv("BENCH_FUZZ"))
{
char *rest = nullptr;
seed = std::strtoull(soak, &rest, 10);
const uint64_t scale = rest && *rest == ',' ? std::strtoull(rest + 1, nullptr, 10) : 1;
documents *= scale;
texts *= scale;
}
Rng rng{std::mt19937_64(seed)};
uint64_t accepted = 0;
for (Mode mode : {Mode::aggregate, Mode::retain_reuse})
{
Processor reference(mode, 1 << 20, 4, 1 << 26), candidate(mode, 1 << 20, 4, 1 << 26, true);
Epoch reference_epoch, candidate_epoch;
// Canaries: the fast parser may write [0, 4128) and [8192, 8240) of its scratch, nothing else.
std::vector<uint8_t> &scratch = candidate.scratch_for_tests();
std::fill(scratch.begin() + 4128, scratch.begin() + 8192, uint8_t(0xA5));
std::fill(scratch.begin() + 8240, scratch.end(), uint8_t(0xA5));
for (uint64_t i = 0; i < documents / 2; ++i)
{
const bool clean = rng.next(2) == 0;
const std::string input = clean ? document(rng, true) : mutate(rng, document(rng, false), rng.next(3));
Result want, have;
std::vector<uint8_t> padded(input.begin(), input.end());
padded.resize(input.size() + simdjson::SIMDJSON_PADDING);
const std::string expected = error_of([&] {
want = reference.apply(padded.data(), input.size(), padded.size(), reference_epoch, reference_epoch.batches + 1);
});
const std::string got = error_of([&] {
have = candidate.apply(guarded(input), input.size(), input.size(), candidate_epoch, candidate_epoch.batches + 1);
});
++checks;
accepted += expected.empty();
require(expected.empty() == got.empty() && (!expected.empty() || want == have),
"selftest: parsers disagree (" + (expected.empty() ? std::string("ok") : expected) + " vs " +
(got.empty() ? std::string("ok") : got) + "): " + input.substr(0, 300));
require(std::all_of(scratch.begin() + 4128, scratch.begin() + 8192, [](uint8_t b) { return b == 0xA5; }) &&
std::all_of(scratch.begin() + 8240, scratch.end(), [](uint8_t b) { return b == 0xA5; }),
"selftest: fast parser wrote outside its scratch regions");
}
reference.verify();
candidate.verify();
}
require(accepted >= documents / 5 && accepted <= documents * 4 / 5, "selftest: fuzz mix too one-sided");
// Every piece at every offset, followed by ASCII runs that end at, before and after block edges.
for (const char *piece : {"\xC3", "\xE2\x82", "\xF0\x9F\x98", "\x80", "\xED\xA0\x80", "\xC3\xA9", "\xE2\x82\xAC",
"\xF0\x9F\x98\x80", "\xF4\x90\x80\x80", "\xC0\x80"})
{
for (size_t offset = 0; offset <= 130; ++offset)
{
for (size_t after : {0, 1, 31, 32, 33, 63, 64, 65, 128})
{
++checks;
const std::string s = std::string(offset, 'x') + piece + std::string(after, 'x');
require(utf8_agree(s), "selftest: UTF-8 validators disagree (sweep)");
}
}
}
uint64_t valid_texts = 0;
for (uint64_t i = 0; i < texts; ++i)
{
const std::string s = text(rng);
++checks;
valid_texts += utf8_scalar(reinterpret_cast<const uint8_t *>(s.data()), s.size());
require(utf8_agree(s), "selftest: UTF-8 validators disagree");
}
require(valid_texts >= texts / 5 && valid_texts <= texts * 19 / 20, "selftest: UTF-8 fuzz mix too one-sided");
return checks;
}
} // namespace bench