#include <core_io.h>
#include <hash.h>
#include <key.h>
#include <script/miniscript.h>
#include <script/script.h>
#include <script/signingprovider.h>
#include <test/fuzz/FuzzedDataProvider.h>
#include <test/fuzz/fuzz.h>
#include <test/fuzz/util.h>
#include <util/strencodings.h>
#include <algorithm>
namespace {
using Fragment = miniscript::Fragment;
using NodeRef = miniscript::NodeRef<CPubKey>;
using Node = miniscript::Node<CPubKey>;
using Type = miniscript::Type;
using MsCtx = miniscript::MiniscriptContext;
using miniscript::operator""_mst;
struct TestData {
typedef CPubKey Key;
std::vector<Key> dummy_keys;
std::map<Key, int> dummy_key_idx_map;
std::map<CKeyID, Key> dummy_keys_map;
std::map<Key, std::pair<std::vector<unsigned char>, bool>> dummy_sigs;
std::map<XOnlyPubKey, std::pair<std::vector<unsigned char>, bool>> schnorr_sigs;
std::vector<std::vector<unsigned char>> sha256;
std::vector<std::vector<unsigned char>> ripemd160;
std::vector<std::vector<unsigned char>> hash256;
std::vector<std::vector<unsigned char>> hash160;
std::map<std::vector<unsigned char>, std::vector<unsigned char>> sha256_preimages;
std::map<std::vector<unsigned char>, std::vector<unsigned char>> ripemd160_preimages;
std::map<std::vector<unsigned char>, std::vector<unsigned char>> hash256_preimages;
std::map<std::vector<unsigned char>, std::vector<unsigned char>> hash160_preimages;
void Init() {
unsigned char keydata[32] = {1};
constexpr uint256 MESSAGE_HASH{"0000000000000000f5cd94e18b6fe77dd7aca9e35c2b0c9cbd86356c80a71065"};
const auto EMPTY_AUX{uint256::ZERO};
for (size_t i = 0; i < 256; i++) {
keydata[31] = i;
CKey privkey;
privkey.Set(keydata, keydata + 32, true);
const Key pubkey = privkey.GetPubKey();
dummy_keys.push_back(pubkey);
dummy_key_idx_map.emplace(pubkey, i);
dummy_keys_map.insert({pubkey.GetID(), pubkey});
XOnlyPubKey xonly_pubkey{pubkey};
dummy_key_idx_map.emplace(xonly_pubkey, i);
uint160 xonly_hash{Hash160(xonly_pubkey)};
dummy_keys_map.emplace(xonly_hash, pubkey);
std::vector<unsigned char> sig, schnorr_sig(64);
privkey.Sign(MESSAGE_HASH, sig);
sig.push_back(1); dummy_sigs.insert({pubkey, {sig, i & 1}});
assert(privkey.SignSchnorr(MESSAGE_HASH, schnorr_sig, nullptr, EMPTY_AUX));
schnorr_sig.push_back(1); schnorr_sigs.emplace(XOnlyPubKey{pubkey}, std::make_pair(std::move(schnorr_sig), i & 1));
std::vector<unsigned char> hash;
hash.resize(32);
CSHA256().Write(keydata, 32).Finalize(hash.data());
sha256.push_back(hash);
if (i & 1) sha256_preimages[hash] = std::vector<unsigned char>(keydata, keydata + 32);
CHash256().Write(keydata).Finalize(hash);
hash256.push_back(hash);
if (i & 1) hash256_preimages[hash] = std::vector<unsigned char>(keydata, keydata + 32);
hash.resize(20);
CRIPEMD160().Write(keydata, 32).Finalize(hash.data());
assert(hash.size() == 20);
ripemd160.push_back(hash);
if (i & 1) ripemd160_preimages[hash] = std::vector<unsigned char>(keydata, keydata + 32);
CHash160().Write(keydata).Finalize(hash);
hash160.push_back(hash);
if (i & 1) hash160_preimages[hash] = std::vector<unsigned char>(keydata, keydata + 32);
}
}
const std::pair<std::vector<unsigned char>, bool>* GetSig(const MsCtx script_ctx, const Key& key) const {
if (!miniscript::IsTapscript(script_ctx)) {
const auto it = dummy_sigs.find(key);
if (it == dummy_sigs.end()) return nullptr;
return &it->second;
} else {
const auto it = schnorr_sigs.find(XOnlyPubKey{key});
if (it == schnorr_sigs.end()) return nullptr;
return &it->second;
}
}
} TEST_DATA;
struct ParserContext {
typedef CPubKey Key;
const MsCtx script_ctx;
constexpr ParserContext(MsCtx ctx) noexcept : script_ctx(ctx) {}
bool KeyCompare(const Key& a, const Key& b) const {
return a < b;
}
std::optional<std::string> ToString(const Key& key) const
{
auto it = TEST_DATA.dummy_key_idx_map.find(key);
if (it == TEST_DATA.dummy_key_idx_map.end()) return {};
uint8_t idx = it->second;
return HexStr(std::span{&idx, 1});
}
std::vector<unsigned char> ToPKBytes(const Key& key) const {
if (!miniscript::IsTapscript(script_ctx)) {
return {key.begin(), key.end()};
}
const XOnlyPubKey xonly_pubkey{key};
return {xonly_pubkey.begin(), xonly_pubkey.end()};
}
std::vector<unsigned char> ToPKHBytes(const Key& key) const {
if (!miniscript::IsTapscript(script_ctx)) {
const auto h = Hash160(key);
return {h.begin(), h.end()};
}
const auto h = Hash160(XOnlyPubKey{key});
return {h.begin(), h.end()};
}
template<typename I>
std::optional<Key> FromString(I first, I last) const {
if (last - first != 2) return {};
auto idx = ParseHex(std::string(first, last));
if (idx.size() != 1) return {};
return TEST_DATA.dummy_keys[idx[0]];
}
template<typename I>
std::optional<Key> FromPKBytes(I first, I last) const {
if (!miniscript::IsTapscript(script_ctx)) {
Key key{first, last};
if (key.IsValid()) return key;
return {};
}
if (last - first != 32) return {};
XOnlyPubKey xonly_pubkey;
std::copy(first, last, xonly_pubkey.begin());
return xonly_pubkey.GetEvenCorrespondingCPubKey();
}
template<typename I>
std::optional<Key> FromPKHBytes(I first, I last) const {
assert(last - first == 20);
CKeyID keyid;
std::copy(first, last, keyid.begin());
const auto it = TEST_DATA.dummy_keys_map.find(keyid);
if (it == TEST_DATA.dummy_keys_map.end()) return {};
return it->second;
}
MsCtx MsContext() const {
return script_ctx;
}
};
struct ScriptParserContext {
const MsCtx script_ctx;
constexpr ScriptParserContext(MsCtx ctx) noexcept : script_ctx(ctx) {}
struct Key {
bool is_hash;
std::vector<unsigned char> data;
};
bool KeyCompare(const Key& a, const Key& b) const {
return a.data < b.data;
}
const std::vector<unsigned char>& ToPKBytes(const Key& key) const
{
assert(!key.is_hash);
return key.data;
}
std::vector<unsigned char> ToPKHBytes(const Key& key) const
{
if (key.is_hash) return key.data;
const auto h = Hash160(key.data);
return {h.begin(), h.end()};
}
template<typename I>
std::optional<Key> FromPKBytes(I first, I last) const
{
Key key;
key.data.assign(first, last);
key.is_hash = false;
return key;
}
template<typename I>
std::optional<Key> FromPKHBytes(I first, I last) const
{
Key key;
key.data.assign(first, last);
key.is_hash = true;
return key;
}
MsCtx MsContext() const {
return script_ctx;
}
};
struct SatisfierContext : ParserContext {
constexpr SatisfierContext(MsCtx ctx) noexcept : ParserContext(ctx) {}
bool CheckAfter(uint32_t value) const { return value % 2; }
bool CheckOlder(uint32_t value) const { return value % 2; }
miniscript::Availability Sign(const CPubKey& key, std::vector<unsigned char>& sig) const {
bool sig_available{false};
if (auto res = TEST_DATA.GetSig(script_ctx, key)) {
std::tie(sig, sig_available) = *res;
}
return sig_available ? miniscript::Availability::YES : miniscript::Availability::NO;
}
miniscript::Availability LookupHash(const std::vector<unsigned char>& hash, std::vector<unsigned char>& preimage,
const std::map<std::vector<unsigned char>, std::vector<unsigned char>>& map) const
{
const auto it = map.find(hash);
if (it == map.end()) return miniscript::Availability::NO;
preimage = it->second;
return miniscript::Availability::YES;
}
miniscript::Availability SatSHA256(const std::vector<unsigned char>& hash, std::vector<unsigned char>& preimage) const {
return LookupHash(hash, preimage, TEST_DATA.sha256_preimages);
}
miniscript::Availability SatRIPEMD160(const std::vector<unsigned char>& hash, std::vector<unsigned char>& preimage) const {
return LookupHash(hash, preimage, TEST_DATA.ripemd160_preimages);
}
miniscript::Availability SatHASH256(const std::vector<unsigned char>& hash, std::vector<unsigned char>& preimage) const {
return LookupHash(hash, preimage, TEST_DATA.hash256_preimages);
}
miniscript::Availability SatHASH160(const std::vector<unsigned char>& hash, std::vector<unsigned char>& preimage) const {
return LookupHash(hash, preimage, TEST_DATA.hash160_preimages);
}
};
const struct CheckerContext: BaseSignatureChecker {
bool CheckECDSASignature(const std::vector<unsigned char>& sig, const std::vector<unsigned char>& vchPubKey,
const CScript& scriptCode, SigVersion sigversion) const override
{
const CPubKey key{vchPubKey};
const auto it = TEST_DATA.dummy_sigs.find(key);
if (it == TEST_DATA.dummy_sigs.end()) return false;
return it->second.first == sig;
}
bool CheckSchnorrSignature(std::span<const unsigned char> sig, std::span<const unsigned char> pubkey, SigVersion,
ScriptExecutionData&, ScriptError*) const override {
XOnlyPubKey pk{pubkey};
auto it = TEST_DATA.schnorr_sigs.find(pk);
if (it == TEST_DATA.schnorr_sigs.end()) return false;
return std::ranges::equal(it->second.first, sig);
}
bool CheckLockTime(const CScriptNum& nLockTime) const override { return nLockTime.GetInt64() & 1; }
bool CheckSequence(const CScriptNum& nSequence) const override { return nSequence.GetInt64() & 1; }
} CHECKER_CTX;
const struct KeyComparator {
bool KeyCompare(const CPubKey& a, const CPubKey& b) const {
return a < b;
}
} KEY_COMP;
const CScript DUMMY_SCRIPTSIG;
template<typename... Args> NodeRef MakeNodeRef(Args&&... args) {
return miniscript::MakeNodeRef<CPubKey>(miniscript::internal::NoDupCheck{}, std::forward<Args>(args)...);
}
struct NodeInfo {
Fragment fragment;
uint32_t k;
std::vector<CPubKey> keys;
std::vector<unsigned char> hash;
std::vector<Type> subtypes;
NodeInfo(Fragment frag): fragment(frag), k(0) {}
NodeInfo(Fragment frag, CPubKey key): fragment(frag), k(0), keys({key}) {}
NodeInfo(Fragment frag, uint32_t _k): fragment(frag), k(_k) {}
NodeInfo(Fragment frag, std::vector<unsigned char> h): fragment(frag), k(0), hash(std::move(h)) {}
NodeInfo(std::vector<Type> subt, Fragment frag): fragment(frag), k(0), subtypes(std::move(subt)) {}
NodeInfo(std::vector<Type> subt, Fragment frag, uint32_t _k): fragment(frag), k(_k), subtypes(std::move(subt)) {}
NodeInfo(Fragment frag, uint32_t _k, std::vector<CPubKey> _keys): fragment(frag), k(_k), keys(std::move(_keys)) {}
};
template<typename T, typename A>
T ConsumeIndex(FuzzedDataProvider& provider, A& col) {
const uint8_t i = provider.ConsumeIntegral<uint8_t>();
return col[i];
}
CPubKey ConsumePubKey(FuzzedDataProvider& provider) {
return ConsumeIndex<CPubKey>(provider, TEST_DATA.dummy_keys);
}
std::vector<unsigned char> ConsumeSha256(FuzzedDataProvider& provider) {
return ConsumeIndex<std::vector<unsigned char>>(provider, TEST_DATA.sha256);
}
std::vector<unsigned char> ConsumeHash256(FuzzedDataProvider& provider) {
return ConsumeIndex<std::vector<unsigned char>>(provider, TEST_DATA.hash256);
}
std::vector<unsigned char> ConsumeRipemd160(FuzzedDataProvider& provider) {
return ConsumeIndex<std::vector<unsigned char>>(provider, TEST_DATA.ripemd160);
}
std::vector<unsigned char> ConsumeHash160(FuzzedDataProvider& provider) {
return ConsumeIndex<std::vector<unsigned char>>(provider, TEST_DATA.hash160);
}
std::optional<uint32_t> ConsumeTimeLock(FuzzedDataProvider& provider) {
const uint32_t k = provider.ConsumeIntegral<uint32_t>();
if (k == 0 || k >= 0x80000000) return {};
return k;
}
std::optional<NodeInfo> ConsumeNodeStable(MsCtx script_ctx, FuzzedDataProvider& provider, Type type_needed) {
bool allow_B = (type_needed == ""_mst) || (type_needed << "B"_mst);
bool allow_K = (type_needed == ""_mst) || (type_needed << "K"_mst);
bool allow_V = (type_needed == ""_mst) || (type_needed << "V"_mst);
bool allow_W = (type_needed == ""_mst) || (type_needed << "W"_mst);
switch (provider.ConsumeIntegral<uint8_t>()) {
case 0:
if (!allow_B) return {};
return {{Fragment::JUST_0}};
case 1:
if (!allow_B) return {};
return {{Fragment::JUST_1}};
case 2:
if (!allow_K) return {};
return {{Fragment::PK_K, ConsumePubKey(provider)}};
case 3:
if (!allow_K) return {};
return {{Fragment::PK_H, ConsumePubKey(provider)}};
case 4: {
if (!allow_B) return {};
const auto k = ConsumeTimeLock(provider);
if (!k) return {};
return {{Fragment::OLDER, *k}};
}
case 5: {
if (!allow_B) return {};
const auto k = ConsumeTimeLock(provider);
if (!k) return {};
return {{Fragment::AFTER, *k}};
}
case 6:
if (!allow_B) return {};
return {{Fragment::SHA256, ConsumeSha256(provider)}};
case 7:
if (!allow_B) return {};
return {{Fragment::HASH256, ConsumeHash256(provider)}};
case 8:
if (!allow_B) return {};
return {{Fragment::RIPEMD160, ConsumeRipemd160(provider)}};
case 9:
if (!allow_B) return {};
return {{Fragment::HASH160, ConsumeHash160(provider)}};
case 10: {
if (!allow_B || IsTapscript(script_ctx)) return {};
const auto k = provider.ConsumeIntegral<uint8_t>();
const auto n_keys = provider.ConsumeIntegral<uint8_t>();
if (n_keys > 20 || k == 0 || k > n_keys) return {};
std::vector<CPubKey> keys{n_keys};
for (auto& key: keys) key = ConsumePubKey(provider);
return {{Fragment::MULTI, k, std::move(keys)}};
}
case 11:
if (!(allow_B || allow_K || allow_V)) return {};
return {{{"B"_mst, type_needed, type_needed}, Fragment::ANDOR}};
case 12:
if (!(allow_B || allow_K || allow_V)) return {};
return {{{"V"_mst, type_needed}, Fragment::AND_V}};
case 13:
if (!allow_B) return {};
return {{{"B"_mst, "W"_mst}, Fragment::AND_B}};
case 15:
if (!allow_B) return {};
return {{{"B"_mst, "W"_mst}, Fragment::OR_B}};
case 16:
if (!allow_V) return {};
return {{{"B"_mst, "V"_mst}, Fragment::OR_C}};
case 17:
if (!allow_B) return {};
return {{{"B"_mst, "B"_mst}, Fragment::OR_D}};
case 18:
if (!(allow_B || allow_K || allow_V)) return {};
return {{{type_needed, type_needed}, Fragment::OR_I}};
case 19: {
if (!allow_B) return {};
auto k = provider.ConsumeIntegral<uint8_t>();
auto n_subs = provider.ConsumeIntegral<uint8_t>();
if (k == 0 || k > n_subs) return {};
std::vector<Type> subtypes;
subtypes.reserve(n_subs);
subtypes.emplace_back("B"_mst);
for (size_t i = 1; i < n_subs; ++i) subtypes.emplace_back("W"_mst);
return {{std::move(subtypes), Fragment::THRESH, k}};
}
case 20:
if (!allow_W) return {};
return {{{"B"_mst}, Fragment::WRAP_A}};
case 21:
if (!allow_W) return {};
return {{{"B"_mst}, Fragment::WRAP_S}};
case 22:
if (!allow_B) return {};
return {{{"K"_mst}, Fragment::WRAP_C}};
case 23:
if (!allow_B) return {};
return {{{"V"_mst}, Fragment::WRAP_D}};
case 24:
if (!allow_V) return {};
return {{{"B"_mst}, Fragment::WRAP_V}};
case 25:
if (!allow_B) return {};
return {{{"B"_mst}, Fragment::WRAP_J}};
case 26:
if (!allow_B) return {};
return {{{"B"_mst}, Fragment::WRAP_N}};
case 27: {
if (!allow_B || !IsTapscript(script_ctx)) return {};
const auto k = provider.ConsumeIntegral<uint16_t>();
const auto n_keys = provider.ConsumeIntegral<uint16_t>();
if (n_keys > 999 || k == 0 || k > n_keys) return {};
std::vector<CPubKey> keys{n_keys};
for (auto& key: keys) key = ConsumePubKey(provider);
return {{Fragment::MULTI_A, k, std::move(keys)}};
}
default:
break;
}
return {};
}
struct SmartInfo
{
using recipe = std::pair<Fragment, std::vector<Type>>;
std::map<Type, std::vector<recipe>> wsh_table, tap_table;
void Init()
{
Init(wsh_table, MsCtx::P2WSH);
Init(tap_table, MsCtx::TAPSCRIPT);
}
void Init(std::map<Type, std::vector<recipe>>& table, MsCtx script_ctx)
{
std::vector<Type> types;
for (int base = 0; base < 4; ++base) {
Type type_base = base == 0 ? "B"_mst : base == 1 ? "K"_mst : base == 2 ? "V"_mst : "W"_mst;
for (int zo = 0; zo < 3; ++zo) {
Type type_zo = zo == 0 ? "z"_mst : zo == 1 ? "o"_mst : ""_mst;
for (int n = 0; n < 2; ++n) {
if (zo == 0 && n == 1) continue;
if (base == 3 && n == 1) continue;
Type type_n = n == 0 ? ""_mst : "n"_mst;
for (int d = 0; d < 2; ++d) {
if (base == 2 && d == 1) continue;
Type type_d = d == 0 ? ""_mst : "d"_mst;
for (int u = 0; u < 2; ++u) {
if (base == 2 && u == 1) continue;
Type type_u = u == 0 ? ""_mst : "u"_mst;
Type type = type_base | type_zo | type_n | type_d | type_u;
types.push_back(type);
}
}
}
}
}
auto is_super_of = [](const recipe& a, const recipe& b) {
if (a.first != b.first) return false;
if (a.second.size() != b.second.size()) return false;
for (size_t i = 0; i < a.second.size(); ++i) {
if (!(b.second[i] << a.second[i])) return false;
}
return true;
};
std::sort(types.begin(), types.end());
for (int fragidx = 0; fragidx <= int(Fragment::MULTI_A); ++fragidx) {
int sub_count = 0; int sub_range = 1; size_t data_size = 0;
size_t n_keys = 0;
uint32_t k = 0;
Fragment frag{fragidx};
if ((!miniscript::IsTapscript(script_ctx) && frag == Fragment::MULTI_A)
|| (miniscript::IsTapscript(script_ctx) && frag == Fragment::MULTI)) {
continue;
}
switch (frag) {
case Fragment::PK_K:
case Fragment::PK_H:
n_keys = 1;
break;
case Fragment::MULTI:
case Fragment::MULTI_A:
n_keys = 1;
k = 1;
break;
case Fragment::OLDER:
case Fragment::AFTER:
k = 1;
break;
case Fragment::SHA256:
case Fragment::HASH256:
data_size = 32;
break;
case Fragment::RIPEMD160:
case Fragment::HASH160:
data_size = 20;
break;
case Fragment::JUST_0:
case Fragment::JUST_1:
break;
case Fragment::WRAP_A:
case Fragment::WRAP_S:
case Fragment::WRAP_C:
case Fragment::WRAP_D:
case Fragment::WRAP_V:
case Fragment::WRAP_J:
case Fragment::WRAP_N:
sub_count = 1;
break;
case Fragment::AND_V:
case Fragment::AND_B:
case Fragment::OR_B:
case Fragment::OR_C:
case Fragment::OR_D:
case Fragment::OR_I:
sub_count = 2;
break;
case Fragment::ANDOR:
sub_count = 3;
break;
case Fragment::THRESH:
sub_count = 1;
sub_range = 2;
k = 1;
break;
}
std::vector<Type> subt;
for (int subs = sub_count; subs < sub_count + sub_range; ++subs) {
for (Type x : types) {
for (Type y : types) {
for (Type z : types) {
subt.clear();
if (subs > 0) subt.push_back(x);
if (subs > 1) subt.push_back(y);
if (subs > 2) subt.push_back(z);
Type res = miniscript::internal::ComputeType(frag, x, y, z, subt, k, data_size, subs, n_keys, script_ctx);
if ((res << "K"_mst) + (res << "V"_mst) + (res << "B"_mst) + (res << "W"_mst) != 1) continue;
recipe entry{frag, subt};
auto super_of_entry = [&](const recipe& rec) { return is_super_of(rec, entry); };
for (Type s : types) {
if ((res & "BKVWzondu"_mst) << s) {
auto& recipes = table[s];
if (!std::any_of(recipes.begin(), recipes.end(), super_of_entry)) {
recipes.push_back(entry);
}
}
}
if (subs <= 2) break;
}
if (subs <= 1) break;
}
if (subs <= 0) break;
}
}
}
std::set<Type> useful_types{"B"_mst, "V"_mst, "K"_mst, "W"_mst};
while (true) {
size_t set_size = useful_types.size();
for (const auto& [type, recipes] : table) {
if (useful_types.count(type) != 0) {
for (const auto& [_, subtypes] : recipes) {
for (auto subtype : subtypes) useful_types.insert(subtype);
}
}
}
if (useful_types.size() == set_size) break;
}
for (auto type_it = table.begin(); type_it != table.end();) {
if (useful_types.count(type_it->first) == 0) {
type_it = table.erase(type_it);
} else {
++type_it;
}
}
std::set<Type> constructible_types{};
auto known_constructible = [&](Type type) { return constructible_types.count(type) != 0; };
while (true) {
size_t set_size = constructible_types.size();
for (const auto& [type, recipes] : table) {
if (!known_constructible(type)) {
for (const auto& [_, subt] : recipes) {
if (std::all_of(subt.begin(), subt.end(), known_constructible)) {
constructible_types.insert(type);
break;
}
}
}
}
if (constructible_types.size() == set_size) break;
}
for (auto type_it = table.begin(); type_it != table.end();) {
type_it->second.erase(std::remove_if(type_it->second.begin(), type_it->second.end(),
[&](const recipe& rec) {
return !std::all_of(rec.second.begin(), rec.second.end(), known_constructible);
}), type_it->second.end());
if (type_it->second.empty()) {
type_it = table.erase(type_it);
} else {
++type_it;
}
}
for (auto& [type, recipes] : table) {
std::sort(recipes.begin(), recipes.end(),
[](const recipe& a, const recipe& b) {
if (a.second.size() < b.second.size()) return true;
if (a.second.size() > b.second.size()) return false;
return a < b;
}
);
}
}
} SMARTINFO;
std::optional<NodeInfo> ConsumeNodeSmart(MsCtx script_ctx, FuzzedDataProvider& provider, Type type_needed) {
const auto& table{IsTapscript(script_ctx) ? SMARTINFO.tap_table : SMARTINFO.wsh_table};
auto recipes_it = table.find(type_needed);
assert(recipes_it != table.end());
const auto& [frag, subt] = PickValue(provider, recipes_it->second);
switch (frag) {
case Fragment::PK_K:
case Fragment::PK_H:
return {{frag, ConsumePubKey(provider)}};
case Fragment::MULTI: {
const auto n_keys = provider.ConsumeIntegralInRange<uint8_t>(1, 20);
const auto k = provider.ConsumeIntegralInRange<uint8_t>(1, n_keys);
std::vector<CPubKey> keys{n_keys};
for (auto& key: keys) key = ConsumePubKey(provider);
return {{frag, k, std::move(keys)}};
}
case Fragment::MULTI_A: {
const auto n_keys = provider.ConsumeIntegralInRange<uint16_t>(1, 999);
const auto k = provider.ConsumeIntegralInRange<uint16_t>(1, n_keys);
std::vector<CPubKey> keys{n_keys};
for (auto& key: keys) key = ConsumePubKey(provider);
return {{frag, k, std::move(keys)}};
}
case Fragment::OLDER:
case Fragment::AFTER:
return {{frag, provider.ConsumeIntegralInRange<uint32_t>(1, 0x7FFFFFF)}};
case Fragment::SHA256:
return {{frag, PickValue(provider, TEST_DATA.sha256)}};
case Fragment::HASH256:
return {{frag, PickValue(provider, TEST_DATA.hash256)}};
case Fragment::RIPEMD160:
return {{frag, PickValue(provider, TEST_DATA.ripemd160)}};
case Fragment::HASH160:
return {{frag, PickValue(provider, TEST_DATA.hash160)}};
case Fragment::JUST_0:
case Fragment::JUST_1:
case Fragment::WRAP_A:
case Fragment::WRAP_S:
case Fragment::WRAP_C:
case Fragment::WRAP_D:
case Fragment::WRAP_V:
case Fragment::WRAP_J:
case Fragment::WRAP_N:
case Fragment::AND_V:
case Fragment::AND_B:
case Fragment::OR_B:
case Fragment::OR_C:
case Fragment::OR_D:
case Fragment::OR_I:
case Fragment::ANDOR:
return {{subt, frag}};
case Fragment::THRESH: {
uint32_t children;
if (subt.size() < 2) {
children = subt.size();
} else {
children = provider.ConsumeIntegralInRange<uint32_t>(2, MAX_OPS_PER_SCRIPT / 2);
}
auto k = provider.ConsumeIntegralInRange<uint32_t>(1, children);
std::vector<Type> subs = subt;
while (subs.size() < children) subs.push_back(subs.back());
return {{std::move(subs), frag, k}};
}
}
assert(false);
}
template<typename F>
NodeRef GenNode(MsCtx script_ctx, F ConsumeNode, Type root_type, bool strict_valid = false) {
std::vector<NodeRef> stack;
std::vector<std::pair<Type, std::optional<NodeInfo>>> todo{{root_type, {}}};
uint32_t ops{0};
uint32_t scriptsize{1};
while (!todo.empty()) {
auto type_needed = todo.back().first;
if (!todo.back().second) {
auto node_info = ConsumeNode(type_needed);
if (!node_info) return {};
scriptsize += miniscript::internal::ComputeScriptLen(node_info->fragment, ""_mst, node_info->subtypes.size(), node_info->k, node_info->subtypes.size(),
node_info->keys.size(), script_ctx) - 1;
if (scriptsize > MAX_STANDARD_P2WSH_SCRIPT_SIZE) return {};
switch (node_info->fragment) {
case Fragment::JUST_0:
case Fragment::JUST_1:
break;
case Fragment::PK_K:
break;
case Fragment::PK_H:
ops += 3;
break;
case Fragment::OLDER:
case Fragment::AFTER:
ops += 1;
break;
case Fragment::RIPEMD160:
case Fragment::SHA256:
case Fragment::HASH160:
case Fragment::HASH256:
ops += 4;
break;
case Fragment::ANDOR:
ops += 3;
break;
case Fragment::AND_V:
break;
case Fragment::AND_B:
case Fragment::OR_B:
ops += 1;
break;
case Fragment::OR_C:
ops += 2;
break;
case Fragment::OR_D:
ops += 3;
break;
case Fragment::OR_I:
ops += 3;
break;
case Fragment::THRESH:
ops += node_info->subtypes.size();
break;
case Fragment::MULTI:
ops += 1;
break;
case Fragment::MULTI_A:
ops += node_info->keys.size() + 1;
break;
case Fragment::WRAP_A:
ops += 2;
break;
case Fragment::WRAP_S:
ops += 1;
break;
case Fragment::WRAP_C:
ops += 1;
break;
case Fragment::WRAP_D:
ops += 3;
break;
case Fragment::WRAP_V:
break;
case Fragment::WRAP_J:
ops += 4;
break;
case Fragment::WRAP_N:
ops += 1;
break;
}
if (ops > MAX_OPS_PER_SCRIPT) return {};
auto subtypes = node_info->subtypes;
todo.back().second = std::move(node_info);
todo.reserve(todo.size() + subtypes.size());
for (size_t i = 0; i < subtypes.size(); ++i) {
todo.emplace_back(*(subtypes.rbegin() + i), std::nullopt);
}
} else {
NodeInfo& info = *todo.back().second;
std::vector<NodeRef> sub;
sub.reserve(info.subtypes.size());
for (size_t i = 0; i < info.subtypes.size(); ++i) {
sub.push_back(std::move(*(stack.end() - info.subtypes.size() + i)));
}
stack.erase(stack.end() - info.subtypes.size(), stack.end());
NodeRef node;
if (info.keys.empty()) {
node = MakeNodeRef(script_ctx, info.fragment, std::move(sub), std::move(info.hash), info.k);
} else {
assert(sub.empty());
assert(info.hash.empty());
node = MakeNodeRef(script_ctx, info.fragment, std::move(info.keys), info.k);
}
if (!node || (node->GetType() & "KVWB"_mst) == ""_mst) {
assert(!strict_valid);
return {};
}
if (!(type_needed == ""_mst)) {
assert(node->GetType() << type_needed);
}
if (!node->IsValid()) return {};
if (node->fragment == Fragment::WRAP_V && node->subs[0]->GetType() << "x"_mst) {
ops += 1;
scriptsize += 1;
}
if (!miniscript::IsTapscript(script_ctx) && ops > MAX_OPS_PER_SCRIPT) return {};
if (scriptsize > miniscript::internal::MaxScriptSize(script_ctx)) {
return {};
}
stack.push_back(std::move(node));
todo.pop_back();
}
}
assert(stack.size() == 1);
assert(stack[0]->GetStaticOps() == ops);
assert(stack[0]->ScriptSize() == scriptsize);
stack[0]->DuplicateKeyCheck(KEY_COMP);
return std::move(stack[0]);
}
CScript ScriptPubKey(MsCtx ctx, const CScript& script, TaprootBuilder& builder)
{
if (!miniscript::IsTapscript(ctx)) return CScript() << OP_0 << WitnessV0ScriptHash(script);
builder.Add(0, script, TAPROOT_LEAF_TAPSCRIPT);
builder.Finalize(XOnlyPubKey::NUMS_H);
return GetScriptForDestination(builder.GetOutput());
}
void SatisfactionToWitness(MsCtx ctx, CScriptWitness& witness, const CScript& script, TaprootBuilder& builder) {
witness.stack.emplace_back(script.begin(), script.end());
if (!miniscript::IsTapscript(ctx)) return;
witness.stack.push_back(*builder.GetSpendData().scripts.begin()->second.begin());
}
void TestNode(const MsCtx script_ctx, const NodeRef& node, FuzzedDataProvider& provider)
{
if (!node) return;
const ParserContext parser_ctx{script_ctx};
std::optional<std::string> str{node->ToString(parser_ctx)};
assert(str);
auto parsed = miniscript::FromString(*str, parser_ctx);
assert(parsed);
assert(*parsed == *node);
auto script = node->ToScript(parser_ctx);
assert(node->ScriptSize() == script.size());
if (!(node->GetType() << "K"_mst)) {
bool ends_in_verify = !(node->GetType() << "x"_mst);
assert(ends_in_verify == (script.back() == OP_CHECKSIG || script.back() == OP_CHECKMULTISIG || script.back() == OP_EQUAL || script.back() == OP_NUMEQUAL));
}
if (!node->IsValidTopLevel()) return;
auto decoded = miniscript::FromScript(script, parser_ctx);
assert(decoded);
assert(decoded->ToScript(parser_ctx) == script);
assert(decoded->GetType() == node->GetType());
CScriptWitness witness_mal, witness_nonmal;
if (provider.ConsumeBool()) {
const auto node_ops{node->GetOps()};
if (!IsTapscript(script_ctx) && node_ops && *node_ops < MAX_OPS_PER_SCRIPT
&& node->ScriptSize() < MAX_STANDARD_P2WSH_SCRIPT_SIZE) {
int add = std::min<int>(
MAX_OPS_PER_SCRIPT - *node_ops,
MAX_STANDARD_P2WSH_SCRIPT_SIZE - node->ScriptSize());
for (int i = 0; i < add; ++i) script.push_back(OP_NOP);
}
const auto node_exec_ss{node->GetExecStackSize()};
if (miniscript::IsTapscript(script_ctx) && node_exec_ss && *node_exec_ss < MAX_STACK_SIZE) {
unsigned add{(unsigned)MAX_STACK_SIZE - *node_exec_ss};
witness_mal.stack.resize(add);
witness_nonmal.stack.resize(add);
script.reserve(add);
for (unsigned i = 0; i < add; ++i) script.push_back(OP_NIP);
}
}
const SatisfierContext satisfier_ctx{script_ctx};
TaprootBuilder builder;
const CScript script_pubkey{ScriptPubKey(script_ctx, script, builder)};
std::vector<std::vector<unsigned char>> stack_mal;
const bool mal_success = node->Satisfy(satisfier_ctx, stack_mal, false) == miniscript::Availability::YES;
std::vector<std::vector<unsigned char>> stack_nonmal;
const bool nonmal_success = node->Satisfy(satisfier_ctx, stack_nonmal, true) == miniscript::Availability::YES;
if (nonmal_success) {
const size_t max_stack_size{*node->GetStackSize() + 1 + miniscript::IsTapscript(script_ctx)};
assert(stack_nonmal.size() <= max_stack_size);
assert(mal_success);
assert(stack_nonmal == stack_mal);
const size_t wit_size = GetSerializeSize(stack_nonmal) - GetSizeOfCompactSize(stack_nonmal.size());
assert(wit_size <= *node->GetWitnessSize());
witness_nonmal.stack.insert(witness_nonmal.stack.end(), std::make_move_iterator(stack_nonmal.begin()), std::make_move_iterator(stack_nonmal.end()));
SatisfactionToWitness(script_ctx, witness_nonmal, script, builder);
ScriptError serror;
bool res = VerifyScript(DUMMY_SCRIPTSIG, script_pubkey, &witness_nonmal, STANDARD_SCRIPT_VERIFY_FLAGS, CHECKER_CTX, &serror);
if (node->ValidSatisfactions()) assert(res);
assert(res ||
(!node->CheckOpsLimit() && serror == ScriptError::SCRIPT_ERR_OP_COUNT) ||
(!node->CheckStackSize() && serror == ScriptError::SCRIPT_ERR_STACK_SIZE));
}
if (mal_success && (!nonmal_success || witness_mal.stack != witness_nonmal.stack)) {
witness_mal.stack.insert(witness_mal.stack.end(), std::make_move_iterator(stack_mal.begin()), std::make_move_iterator(stack_mal.end()));
SatisfactionToWitness(script_ctx, witness_mal, script, builder);
ScriptError serror;
bool res = VerifyScript(DUMMY_SCRIPTSIG, script_pubkey, &witness_mal, STANDARD_SCRIPT_VERIFY_FLAGS, CHECKER_CTX, &serror);
assert(res || serror == ScriptError::SCRIPT_ERR_OP_COUNT || serror == ScriptError::SCRIPT_ERR_STACK_SIZE);
}
if (node->IsSane()) {
assert(mal_success == nonmal_success);
}
const auto is_key_satisfiable = [script_ctx](const CPubKey& pubkey) -> bool {
auto sig_ptr{TEST_DATA.GetSig(script_ctx, pubkey)};
return sig_ptr != nullptr && sig_ptr->second;
};
bool satisfiable = node->IsSatisfiable([&](const Node& node) -> bool {
switch (node.fragment) {
case Fragment::PK_K:
case Fragment::PK_H:
return is_key_satisfiable(node.keys[0]);
case Fragment::MULTI:
case Fragment::MULTI_A: {
size_t sats = std::count_if(node.keys.begin(), node.keys.end(), [&](const auto& key) {
return size_t(is_key_satisfiable(key));
});
return sats >= node.k;
}
case Fragment::OLDER:
case Fragment::AFTER:
return node.k & 1;
case Fragment::SHA256:
return TEST_DATA.sha256_preimages.count(node.data);
case Fragment::HASH256:
return TEST_DATA.hash256_preimages.count(node.data);
case Fragment::RIPEMD160:
return TEST_DATA.ripemd160_preimages.count(node.data);
case Fragment::HASH160:
return TEST_DATA.hash160_preimages.count(node.data);
default:
assert(false);
}
return false;
});
assert(mal_success == satisfiable);
}
}
void FuzzInit()
{
static ECC_Context ecc_context{};
TEST_DATA.Init();
}
void FuzzInitSmart()
{
FuzzInit();
SMARTINFO.Init();
}
FUZZ_TARGET(miniscript_stable, .init = FuzzInit)
{
for (const auto script_ctx: {MsCtx::P2WSH, MsCtx::TAPSCRIPT}) {
FuzzedDataProvider provider(buffer.data(), buffer.size());
TestNode(script_ctx, GenNode(script_ctx, [&](Type needed_type) {
return ConsumeNodeStable(script_ctx, provider, needed_type);
}, ""_mst), provider);
}
}
FUZZ_TARGET(miniscript_smart, .init = FuzzInitSmart)
{
static constexpr std::array<Type, 4> BASE_TYPES{"B"_mst, "V"_mst, "K"_mst, "W"_mst};
FuzzedDataProvider provider(buffer.data(), buffer.size());
const auto script_ctx{(MsCtx)provider.ConsumeBool()};
TestNode(script_ctx, GenNode(script_ctx, [&](Type needed_type) {
return ConsumeNodeSmart(script_ctx, provider, needed_type);
}, PickValue(provider, BASE_TYPES), true), provider);
}
FUZZ_TARGET(miniscript_string, .init = FuzzInit)
{
if (buffer.empty()) return;
FuzzedDataProvider provider(buffer.data(), buffer.size());
auto str = provider.ConsumeBytesAsString(provider.remaining_bytes() - 1);
const ParserContext parser_ctx{(MsCtx)provider.ConsumeBool()};
auto parsed = miniscript::FromString(str, parser_ctx);
if (!parsed) return;
const auto str2 = parsed->ToString(parser_ctx);
assert(str2);
auto parsed2 = miniscript::FromString(*str2, parser_ctx);
assert(parsed2);
assert(*parsed == *parsed2);
}
FUZZ_TARGET(miniscript_script)
{
FuzzedDataProvider fuzzed_data_provider(buffer.data(), buffer.size());
const std::optional<CScript> script = ConsumeDeserializable<CScript>(fuzzed_data_provider);
if (!script) return;
const ScriptParserContext script_parser_ctx{(MsCtx)fuzzed_data_provider.ConsumeBool()};
const auto ms = miniscript::FromScript(*script, script_parser_ctx);
if (!ms) return;
assert(ms->ToScript(script_parser_ctx) == *script);
}