Coverage Report

Created: 2026-09-14 20:36

next uncovered line (L), next uncovered region (R), next uncovered branch (B)
/tmp/bitcoin/src/script/interpreter.cpp
Line
Count
Source
1
// Copyright (c) 2009-2010 Satoshi Nakamoto
2
// Copyright (c) 2009-present The Bitcoin Core developers
3
// Distributed under the MIT software license, see the accompanying
4
// file COPYING or http://www.opensource.org/licenses/mit-license.php.
5
6
#include <script/interpreter.h>
7
8
#include <crypto/ripemd160.h>
9
#include <crypto/sha1.h>
10
#include <crypto/sha256.h>
11
#include <prevector.h>
12
#include <pubkey.h>
13
#include <script/script.h>
14
#include <serialize.h>
15
#include <span.h>
16
#include <tinyformat.h>
17
#include <uint256.h>
18
19
#include <algorithm>
20
#include <cassert>
21
#include <compare>
22
#include <cstring>
23
#include <limits>
24
#include <stdexcept>
25
26
typedef std::vector<unsigned char> valtype;
27
28
namespace {
29
30
inline bool set_success(ScriptError* ret)
31
2.61M
{
32
2.61M
    if (ret)
33
1.90M
        *ret = SCRIPT_ERR_OK;
34
2.61M
    return true;
35
2.61M
}
36
37
inline bool set_error(ScriptError* ret, const ScriptError serror)
38
3.26M
{
39
3.26M
    if (ret)
40
2.41M
        *ret = serror;
41
3.26M
    return false;
42
3.26M
}
43
44
} // namespace
45
46
bool CastToBool(const valtype& vch)
47
1.11M
{
48
1.12M
    for (unsigned int i = 0; i < vch.size(); i++)
49
1.07M
    {
50
1.07M
        if (vch[i] != 0)
51
1.06M
        {
52
            // Can be negative zero
53
1.06M
            if (i == vch.size()-1 && vch[i] == 0x80)
54
257
                return false;
55
1.06M
            return true;
56
1.06M
        }
57
1.07M
    }
58
54.3k
    return false;
59
1.11M
}
60
61
/**
62
 * Script is a stack machine (like Forth) that evaluates a predicate
63
 * returning a bool indicating valid or not.  There are no loops.
64
 */
65
11.9M
#define stacktop(i) (stack.at(size_t(int64_t(stack.size()) + int64_t{i})))
66
5.49k
#define altstacktop(i) (altstack.at(size_t(int64_t(altstack.size()) + int64_t{i})))
67
static inline void popstack(std::vector<valtype>& stack)
68
11.8M
{
69
11.8M
    if (stack.empty())
70
0
        throw std::runtime_error("popstack(): stack empty");
71
11.8M
    stack.pop_back();
72
11.8M
}
73
74
74.1k
bool static IsCompressedOrUncompressedPubKey(const valtype &vchPubKey) {
75
74.1k
    if (vchPubKey.size() < CPubKey::COMPRESSED_SIZE) {
76
        //  Non-canonical public key: too short
77
328
        return false;
78
328
    }
79
73.8k
    if (vchPubKey[0] == 0x04) {
80
5.95k
        if (vchPubKey.size() != CPubKey::SIZE) {
81
            //  Non-canonical public key: invalid length for uncompressed key
82
257
            return false;
83
257
        }
84
67.8k
    } else if (vchPubKey[0] == 0x02 || vchPubKey[0] == 0x03) {
85
66.7k
        if (vchPubKey.size() != CPubKey::COMPRESSED_SIZE) {
86
            //  Non-canonical public key: invalid length for compressed key
87
121
            return false;
88
121
        }
89
66.7k
    } else {
90
        //  Non-canonical public key: neither compressed nor uncompressed
91
1.15k
        return false;
92
1.15k
    }
93
72.3k
    return true;
94
73.8k
}
95
96
43.3k
bool static IsCompressedPubKey(const valtype &vchPubKey) {
97
43.3k
    if (vchPubKey.size() != CPubKey::COMPRESSED_SIZE) {
98
        //  Non-canonical public key: invalid length for compressed key
99
7.25k
        return false;
100
7.25k
    }
101
36.1k
    if (vchPubKey[0] != 0x02 && vchPubKey[0] != 0x03) {
102
        //  Non-canonical public key: invalid prefix for compressed key
103
140
        return false;
104
140
    }
105
36.0k
    return true;
106
36.1k
}
107
108
/**
109
 * A canonical signature exists of: <30> <total len> <02> <len R> <R> <02> <len S> <S> <hashtype>
110
 * Where R and S are not negative (their first byte has its highest bit not set), and not
111
 * excessively padded (do not start with a 0 byte, unless an otherwise negative number follows,
112
 * in which case a single 0 byte is necessary and even required).
113
 *
114
 * See https://bitcointalk.org/index.php?topic=8392.msg127623#msg127623
115
 *
116
 * This function is consensus-critical since BIP66.
117
 */
118
241k
bool static IsValidSignatureEncoding(const std::vector<unsigned char> &sig) {
119
    // Format: 0x30 [total-length] 0x02 [R-length] [R] 0x02 [S-length] [S] [sighash]
120
    // * total-length: 1-byte length descriptor of everything that follows,
121
    //   excluding the sighash byte.
122
    // * R-length: 1-byte length descriptor of the R value that follows.
123
    // * R: arbitrary-length big-endian encoded R value. It must use the shortest
124
    //   possible encoding for a positive integer (which means no null bytes at
125
    //   the start, except a single one when the next byte has its highest bit set).
126
    // * S-length: 1-byte length descriptor of the S value that follows.
127
    // * S: arbitrary-length big-endian encoded S value. The same rules apply.
128
    // * sighash: 1-byte value indicating what data is hashed (not part of the DER
129
    //   signature)
130
131
    // Minimum and maximum size constraints.
132
241k
    if (sig.size() < 9) return false;
133
240k
    if (sig.size() > 73) return false;
134
135
    // A signature is of type 0x30 (compound).
136
240k
    if (sig[0] != 0x30) return false;
137
138
    // Make sure the length covers the entire signature.
139
239k
    if (sig[1] != sig.size() - 3) return false;
140
141
    // Extract the length of the R element.
142
229k
    unsigned int lenR = sig[3];
143
144
    // Make sure the length of the S element is still inside the signature.
145
229k
    if (5 + lenR >= sig.size()) return false;
146
147
    // Extract the length of the S element.
148
229k
    unsigned int lenS = sig[5 + lenR];
149
150
    // Verify that the length of the signature matches the sum of the length
151
    // of the elements.
152
229k
    if ((size_t)(lenR + lenS + 7) != sig.size()) return false;
153
154
    // Check whether the R element is an integer.
155
229k
    if (sig[2] != 0x02) return false;
156
157
    // Zero-length integers are not allowed for R.
158
229k
    if (lenR == 0) return false;
159
160
    // Negative numbers are not allowed for R.
161
229k
    if (sig[4] & 0x80) return false;
162
163
    // Null bytes at the start of R are not allowed, unless R would
164
    // otherwise be interpreted as a negative number.
165
226k
    if (lenR > 1 && (sig[4] == 0x00) && !(sig[5] & 0x80)) return false;
166
167
    // Check whether the S element is an integer.
168
225k
    if (sig[lenR + 4] != 0x02) return false;
169
170
    // Zero-length integers are not allowed for S.
171
225k
    if (lenS == 0) return false;
172
173
    // Negative numbers are not allowed for S.
174
225k
    if (sig[lenR + 6] & 0x80) return false;
175
176
    // Null bytes at the start of S are not allowed, unless S would otherwise be
177
    // interpreted as a negative number.
178
225k
    if (lenS > 1 && (sig[lenR + 6] == 0x00) && !(sig[lenR + 7] & 0x80)) return false;
179
180
225k
    return true;
181
225k
}
182
183
65.3k
bool static IsLowDERSignature(const valtype &vchSig, ScriptError* serror) {
184
65.3k
    if (!IsValidSignatureEncoding(vchSig)) {
185
0
        return set_error(serror, SCRIPT_ERR_SIG_DER);
186
0
    }
187
    // https://bitcoin.stackexchange.com/a/12556:
188
    //     Also note that inside transaction signatures, an extra hashtype byte
189
    //     follows the actual signature data.
190
65.3k
    std::vector<unsigned char> vchSigCopy(vchSig.begin(), vchSig.begin() + vchSig.size() - 1);
191
    // If the S value is above the order of the curve divided by two, its
192
    // complement modulo the order could have been used instead, which is
193
    // one byte shorter when encoded correctly.
194
65.3k
    if (!CPubKey::CheckLowS(vchSigCopy)) {
195
348
        return set_error(serror, SCRIPT_ERR_SIG_HIGH_S);
196
348
    }
197
65.0k
    return true;
198
65.3k
}
199
200
68.1k
bool static IsDefinedHashtypeSignature(const valtype &vchSig) {
201
68.1k
    if (vchSig.size() == 0) {
202
0
        return false;
203
0
    }
204
68.1k
    unsigned char nHashType = vchSig[vchSig.size() - 1] & (~(SIGHASH_ANYONECANPAY));
205
68.1k
    if (nHashType < SIGHASH_ALL || nHashType > SIGHASH_SINGLE)
206
534
        return false;
207
208
67.6k
    return true;
209
68.1k
}
210
211
244k
bool CheckSignatureEncoding(const std::vector<unsigned char> &vchSig, script_verify_flags flags, ScriptError* serror) {
212
    // Empty signature. Not strictly DER encoded, but allowed to provide a
213
    // compact way to provide an invalid signature for use with CHECK(MULTI)SIG
214
244k
    if (vchSig.size() == 0) {
215
21.3k
        return true;
216
21.3k
    }
217
222k
    if ((flags & (SCRIPT_VERIFY_DERSIG | SCRIPT_VERIFY_LOW_S | SCRIPT_VERIFY_STRICTENC)) != 0 && !IsValidSignatureEncoding(vchSig)) {
218
16.9k
        return set_error(serror, SCRIPT_ERR_SIG_DER);
219
205k
    } else if ((flags & SCRIPT_VERIFY_LOW_S) != 0 && !IsLowDERSignature(vchSig, serror)) {
220
        // serror is set
221
348
        return false;
222
205k
    } else if ((flags & SCRIPT_VERIFY_STRICTENC) != 0 && !IsDefinedHashtypeSignature(vchSig)) {
223
534
        return set_error(serror, SCRIPT_ERR_SIG_HASHTYPE);
224
534
    }
225
204k
    return true;
226
222k
}
227
228
224k
bool static CheckPubKeyEncoding(const valtype &vchPubKey, script_verify_flags flags, const SigVersion &sigversion, ScriptError* serror) {
229
224k
    if ((flags & SCRIPT_VERIFY_STRICTENC) != 0 && !IsCompressedOrUncompressedPubKey(vchPubKey)) {
230
1.86k
        return set_error(serror, SCRIPT_ERR_PUBKEYTYPE);
231
1.86k
    }
232
    // Only compressed keys are accepted in segwit
233
223k
    if ((flags & SCRIPT_VERIFY_WITNESS_PUBKEYTYPE) != 0 && sigversion == SigVersion::WITNESS_V0 && !IsCompressedPubKey(vchPubKey)) {
234
7.39k
        return set_error(serror, SCRIPT_ERR_WITNESS_PUBKEYTYPE);
235
7.39k
    }
236
215k
    return true;
237
223k
}
238
239
int FindAndDelete(CScript& script, const CScript& b)
240
249k
{
241
249k
    int nFound = 0;
242
249k
    if (b.empty())
243
1
        return nFound;
244
249k
    CScript result;
245
249k
    CScript::const_iterator pc = script.begin(), pc2 = script.begin(), end = script.end();
246
249k
    opcodetype opcode;
247
249k
    do
248
2.74M
    {
249
2.74M
        result.insert(result.end(), pc2, pc);
250
2.77M
        while (static_cast<size_t>(end - pc) >= b.size() && std::equal(b.begin(), b.end(), pc))
251
26.2k
        {
252
26.2k
            pc = pc + b.size();
253
26.2k
            ++nFound;
254
26.2k
        }
255
2.74M
        pc2 = pc;
256
2.74M
    }
257
2.74M
    while (script.GetOp(pc, opcode));
258
259
249k
    if (nFound > 0) {
260
19.7k
        result.insert(result.end(), pc2, end);
261
19.7k
        script = std::move(result);
262
19.7k
    }
263
264
249k
    return nFound;
265
249k
}
266
267
namespace {
268
/** A data type to abstract out the condition stack during script execution.
269
 *
270
 * Conceptually it acts like a vector of booleans, one for each level of nested
271
 * IF/THEN/ELSE, indicating whether we're in the active or inactive branch of
272
 * each.
273
 *
274
 * The elements on the stack cannot be observed individually; we only need to
275
 * expose whether the stack is empty and whether or not any false values are
276
 * present at all. To implement OP_ELSE, a toggle_top modifier is added, which
277
 * flips the last value without returning it.
278
 *
279
 * This uses an optimized implementation that does not materialize the
280
 * actual stack. Instead, it just stores the size of the would-be stack,
281
 * and the position of the first false value in it.
282
 */
283
class ConditionStack {
284
private:
285
    //! A constant for m_first_false_pos to indicate there are no falses.
286
    static constexpr uint32_t NO_FALSE = std::numeric_limits<uint32_t>::max();
287
288
    //! The size of the implied stack.
289
    uint32_t m_stack_size = 0;
290
    //! The position of the first false value on the implied stack, or NO_FALSE if all true.
291
    uint32_t m_first_false_pos = NO_FALSE;
292
293
public:
294
2.05M
    bool empty() const { return m_stack_size == 0; }
295
15.0M
    bool all_true() const { return m_first_false_pos == NO_FALSE; }
296
    void push_back(bool f)
297
77.7k
    {
298
77.7k
        if (m_first_false_pos == NO_FALSE && !f) {
299
            // The stack consists of all true values, and a false is added.
300
            // The first false value will appear at the current size.
301
44.9k
            m_first_false_pos = m_stack_size;
302
44.9k
        }
303
77.7k
        ++m_stack_size;
304
77.7k
    }
305
    void pop_back()
306
59.2k
    {
307
59.2k
        assert(m_stack_size > 0);
308
59.2k
        --m_stack_size;
309
59.2k
        if (m_first_false_pos == m_stack_size) {
310
            // When popping off the first false value, everything becomes true.
311
23.1k
            m_first_false_pos = NO_FALSE;
312
23.1k
        }
313
59.2k
    }
314
    void toggle_top()
315
62.5k
    {
316
62.5k
        assert(m_stack_size > 0);
317
62.5k
        if (m_first_false_pos == NO_FALSE) {
318
            // The current stack is all true values; the first false will be the top.
319
20.0k
            m_first_false_pos = m_stack_size - 1;
320
42.5k
        } else if (m_first_false_pos == m_stack_size - 1) {
321
            // The top is the first false value; toggling it will make everything true.
322
38.7k
            m_first_false_pos = NO_FALSE;
323
38.7k
        } else {
324
            // There is a false value, but not on top. No action is needed as toggling
325
            // anything but the first false value is unobservable.
326
3.79k
        }
327
62.5k
    }
328
};
329
}
330
331
static bool EvalChecksigPreTapscript(const valtype& vchSig, const valtype& vchPubKey, CScript::const_iterator pbegincodehash, CScript::const_iterator pend, script_verify_flags flags, const BaseSignatureChecker& checker, SigVersion sigversion, ScriptError* serror, bool& fSuccess)
332
211k
{
333
211k
    assert(sigversion == SigVersion::BASE || sigversion == SigVersion::WITNESS_V0);
334
335
    // Subset of script starting at the most recent codeseparator
336
211k
    CScript scriptCode(pbegincodehash, pend);
337
338
    // Drop the signature in pre-segwit scripts but not segwit scripts
339
211k
    if (sigversion == SigVersion::BASE) {
340
140k
        int found = FindAndDelete(scriptCode, CScript() << vchSig);
341
140k
        if (found > 0 && (flags & SCRIPT_VERIFY_CONST_SCRIPTCODE))
342
119
            return set_error(serror, SCRIPT_ERR_SIG_FINDANDDELETE);
343
140k
    }
344
345
210k
    if (!CheckSignatureEncoding(vchSig, flags, serror) || !CheckPubKeyEncoding(vchPubKey, flags, sigversion, serror)) {
346
        //serror is set
347
19.6k
        return false;
348
19.6k
    }
349
191k
    fSuccess = checker.CheckECDSASignature(vchSig, vchPubKey, scriptCode, sigversion);
350
351
191k
    if (!fSuccess && (flags & SCRIPT_VERIFY_NULLFAIL) && vchSig.size())
352
1.51k
        return set_error(serror, SCRIPT_ERR_SIG_NULLFAIL);
353
354
189k
    return true;
355
191k
}
356
357
static bool EvalChecksigTapscript(const valtype& sig, const valtype& pubkey, ScriptExecutionData& execdata, script_verify_flags flags, const BaseSignatureChecker& checker, SigVersion sigversion, ScriptError* serror, bool& success)
358
506k
{
359
506k
    assert(sigversion == SigVersion::TAPSCRIPT);
360
361
    /*
362
     *  The following validation sequence is consensus critical. Please note how --
363
     *    upgradable public key versions precede other rules;
364
     *    the script execution fails when using empty signature with invalid public key;
365
     *    the script execution fails when using non-empty invalid signature.
366
     */
367
506k
    success = !sig.empty();
368
506k
    if (success) {
369
        // Implement the sigops/witnesssize ratio test.
370
        // Passing with an upgradable public key version is also counted.
371
408k
        assert(execdata.m_validation_weight_left_init);
372
408k
        execdata.m_validation_weight_left -= VALIDATION_WEIGHT_PER_SIGOP_PASSED;
373
408k
        if (execdata.m_validation_weight_left < 0) {
374
471
            return set_error(serror, SCRIPT_ERR_TAPSCRIPT_VALIDATION_WEIGHT);
375
471
        }
376
408k
    }
377
506k
    if (pubkey.size() == 0) {
378
304
        return set_error(serror, SCRIPT_ERR_TAPSCRIPT_EMPTY_PUBKEY);
379
505k
    } else if (pubkey.size() == 32) {
380
361k
        if (success && !checker.CheckSchnorrSignature(sig, pubkey, sigversion, execdata, serror)) {
381
590
            return false; // serror is set
382
590
        }
383
361k
    } else {
384
        /*
385
         *  New public key version softforks should be defined before this `else` block.
386
         *  Generally, the new code should not do anything but failing the script execution. To avoid
387
         *  consensus bugs, it should not modify any existing values (including `success`).
388
         */
389
144k
        if ((flags & SCRIPT_VERIFY_DISCOURAGE_UPGRADABLE_PUBKEYTYPE) != 0) {
390
3
            return set_error(serror, SCRIPT_ERR_DISCOURAGE_UPGRADABLE_PUBKEYTYPE);
391
3
        }
392
144k
    }
393
394
505k
    return true;
395
506k
}
396
397
/** Helper for OP_CHECKSIG, OP_CHECKSIGVERIFY, and (in Tapscript) OP_CHECKSIGADD.
398
 *
399
 * A return value of false means the script fails entirely. When true is returned, the
400
 * success variable indicates whether the signature check itself succeeded.
401
 */
402
static bool EvalChecksig(const valtype& sig, const valtype& pubkey, CScript::const_iterator pbegincodehash, CScript::const_iterator pend, ScriptExecutionData& execdata, script_verify_flags flags, const BaseSignatureChecker& checker, SigVersion sigversion, ScriptError* serror, bool& success)
403
717k
{
404
717k
    switch (sigversion) {
405
140k
    case SigVersion::BASE:
406
211k
    case SigVersion::WITNESS_V0:
407
211k
        return EvalChecksigPreTapscript(sig, pubkey, pbegincodehash, pend, flags, checker, sigversion, serror, success);
408
506k
    case SigVersion::TAPSCRIPT:
409
506k
        return EvalChecksigTapscript(sig, pubkey, execdata, flags, checker, sigversion, serror, success);
410
0
    case SigVersion::TAPROOT:
411
        // Key path spending in Taproot has no script, so this is unreachable.
412
0
        break;
413
717k
    }
414
717k
    assert(false);
415
0
}
416
417
bool EvalScript(std::vector<std::vector<unsigned char> >& stack, const CScript& script, script_verify_flags flags, const BaseSignatureChecker& checker, SigVersion sigversion, ScriptExecutionData& execdata, ScriptError* serror)
418
2.09M
{
419
2.09M
    static const CScriptNum bnZero(0);
420
2.09M
    static const CScriptNum bnOne(1);
421
    // static const CScriptNum bnFalse(0);
422
    // static const CScriptNum bnTrue(1);
423
2.09M
    static const valtype vchFalse(0);
424
    // static const valtype vchZero(0);
425
2.09M
    static const valtype vchTrue(1, 1);
426
427
    // sigversion cannot be TAPROOT here, as it admits no script execution.
428
2.09M
    assert(sigversion == SigVersion::BASE || sigversion == SigVersion::WITNESS_V0 || sigversion == SigVersion::TAPSCRIPT);
429
430
2.09M
    CScript::const_iterator pc = script.begin();
431
2.09M
    CScript::const_iterator pend = script.end();
432
2.09M
    CScript::const_iterator pbegincodehash = script.begin();
433
2.09M
    opcodetype opcode;
434
2.09M
    valtype vchPushValue;
435
2.09M
    ConditionStack vfExec;
436
2.09M
    std::vector<valtype> altstack;
437
2.09M
    set_error(serror, SCRIPT_ERR_UNKNOWN_ERROR);
438
2.09M
    if ((sigversion == SigVersion::BASE || sigversion == SigVersion::WITNESS_V0) && script.size() > MAX_SCRIPT_SIZE) {
439
98
        return set_error(serror, SCRIPT_ERR_SCRIPT_SIZE);
440
98
    }
441
2.09M
    int nOpCount = 0;
442
2.09M
    bool fRequireMinimal = (flags & SCRIPT_VERIFY_MINIMALDATA) != 0;
443
2.09M
    uint32_t opcode_pos = 0;
444
2.09M
    execdata.m_codeseparator_pos = 0xFFFFFFFFUL;
445
2.09M
    execdata.m_codeseparator_pos_init = true;
446
447
2.09M
    try
448
2.09M
    {
449
17.0M
        for (; pc < pend; ++opcode_pos) {
450
15.0M
            bool fExec = vfExec.all_true();
451
452
            //
453
            // Read instruction
454
            //
455
15.0M
            if (!script.GetOp(pc, opcode, vchPushValue))
456
298
                return set_error(serror, SCRIPT_ERR_BAD_OPCODE);
457
15.0M
            if (vchPushValue.size() > MAX_SCRIPT_ELEMENT_SIZE)
458
588
                return set_error(serror, SCRIPT_ERR_PUSH_SIZE);
459
460
15.0M
            if (sigversion == SigVersion::BASE || sigversion == SigVersion::WITNESS_V0) {
461
                // Note how OP_RESERVED does not count towards the opcode limit.
462
5.02M
                if (opcode > OP_16 && ++nOpCount > MAX_OPS_PER_SCRIPT) {
463
480
                    return set_error(serror, SCRIPT_ERR_OP_COUNT);
464
480
                }
465
5.02M
            }
466
467
15.0M
            if (opcode == OP_CAT ||
468
15.0M
                opcode == OP_SUBSTR ||
469
15.0M
                opcode == OP_LEFT ||
470
15.0M
                opcode == OP_RIGHT ||
471
15.0M
                opcode == OP_INVERT ||
472
15.0M
                opcode == OP_AND ||
473
15.0M
                opcode == OP_OR ||
474
15.0M
                opcode == OP_XOR ||
475
15.0M
                opcode == OP_2MUL ||
476
15.0M
                opcode == OP_2DIV ||
477
15.0M
                opcode == OP_MUL ||
478
15.0M
                opcode == OP_DIV ||
479
15.0M
                opcode == OP_MOD ||
480
15.0M
                opcode == OP_LSHIFT ||
481
15.0M
                opcode == OP_RSHIFT)
482
3.11k
                return set_error(serror, SCRIPT_ERR_DISABLED_OPCODE); // Disabled opcodes (CVE-2010-5137).
483
484
            // With SCRIPT_VERIFY_CONST_SCRIPTCODE, OP_CODESEPARATOR in non-segwit script is rejected even in an unexecuted branch
485
15.0M
            if (opcode == OP_CODESEPARATOR && sigversion == SigVersion::BASE && (flags & SCRIPT_VERIFY_CONST_SCRIPTCODE))
486
309
                return set_error(serror, SCRIPT_ERR_OP_CODESEPARATOR);
487
488
15.0M
            if (fExec && 0 <= opcode && opcode <= OP_PUSHDATA4) {
489
3.43M
                if (fRequireMinimal && !CheckMinimalPush(vchPushValue, opcode)) {
490
2.80k
                    return set_error(serror, SCRIPT_ERR_MINIMALDATA);
491
2.80k
                }
492
3.43M
                stack.push_back(vchPushValue);
493
11.6M
            } else if (fExec || (OP_IF <= opcode && opcode <= OP_ENDIF))
494
11.2M
            switch (opcode)
495
11.2M
            {
496
                //
497
                // Push value
498
                //
499
6.83k
                case OP_1NEGATE:
500
608k
                case OP_1:
501
649k
                case OP_2:
502
665k
                case OP_3:
503
674k
                case OP_4:
504
680k
                case OP_5:
505
685k
                case OP_6:
506
688k
                case OP_7:
507
692k
                case OP_8:
508
696k
                case OP_9:
509
706k
                case OP_10:
510
717k
                case OP_11:
511
720k
                case OP_12:
512
722k
                case OP_13:
513
725k
                case OP_14:
514
728k
                case OP_15:
515
878k
                case OP_16:
516
878k
                {
517
                    // ( -- value)
518
878k
                    CScriptNum bn((int)opcode - (int)(OP_1 - 1));
519
878k
                    stack.push_back(bn.getvch());
520
                    // The result of these opcodes should always be the minimal way to push the data
521
                    // they push, so no need for a CheckMinimalPush here.
522
878k
                }
523
878k
                break;
524
525
526
                //
527
                // Control
528
                //
529
138k
                case OP_NOP:
530
138k
                    break;
531
532
13.7k
                case OP_CHECKLOCKTIMEVERIFY:
533
13.7k
                {
534
13.7k
                    if (!(flags & SCRIPT_VERIFY_CHECKLOCKTIMEVERIFY)) {
535
                        // not enabled; treat as a NOP2
536
5.98k
                        break;
537
5.98k
                    }
538
539
7.71k
                    if (stack.size() < 1)
540
202
                        return set_error(serror, SCRIPT_ERR_INVALID_STACK_OPERATION);
541
542
                    // Note that elsewhere numeric opcodes are limited to
543
                    // operands in the range -2**31+1 to 2**31-1, however it is
544
                    // legal for opcodes to produce results exceeding that
545
                    // range. This limitation is implemented by CScriptNum's
546
                    // default 4-byte limit.
547
                    //
548
                    // If we kept to that limit we'd have a year 2038 problem,
549
                    // even though the nLockTime field in transactions
550
                    // themselves is uint32 which only becomes meaningless
551
                    // after the year 2106.
552
                    //
553
                    // Thus as a special case we tell CScriptNum to accept up
554
                    // to 5-byte bignums, which are good until 2**39-1, well
555
                    // beyond the 2**32-1 limit of the nLockTime field itself.
556
7.51k
                    const CScriptNum nLockTime(stacktop(-1), fRequireMinimal, 5);
557
558
                    // In the rare event that the argument may be < 0 due to
559
                    // some arithmetic being done first, you can always use
560
                    // 0 MAX CHECKLOCKTIMEVERIFY.
561
7.51k
                    if (nLockTime < 0)
562
245
                        return set_error(serror, SCRIPT_ERR_NEGATIVE_LOCKTIME);
563
564
                    // Actually compare the specified lock time with the transaction.
565
7.26k
                    if (!checker.CheckLockTime(nLockTime))
566
6.26k
                        return set_error(serror, SCRIPT_ERR_UNSATISFIED_LOCKTIME);
567
568
1.00k
                    break;
569
7.26k
                }
570
571
20.3k
                case OP_CHECKSEQUENCEVERIFY:
572
20.3k
                {
573
20.3k
                    if (!(flags & SCRIPT_VERIFY_CHECKSEQUENCEVERIFY)) {
574
                        // not enabled; treat as a NOP3
575
6.42k
                        break;
576
6.42k
                    }
577
578
13.8k
                    if (stack.size() < 1)
579
172
                        return set_error(serror, SCRIPT_ERR_INVALID_STACK_OPERATION);
580
581
                    // nSequence, like nLockTime, is a 32-bit unsigned integer
582
                    // field. See the comment in CHECKLOCKTIMEVERIFY regarding
583
                    // 5-byte numeric operands.
584
13.7k
                    const CScriptNum nSequence(stacktop(-1), fRequireMinimal, 5);
585
586
                    // In the rare event that the argument may be < 0 due to
587
                    // some arithmetic being done first, you can always use
588
                    // 0 MAX CHECKSEQUENCEVERIFY.
589
13.7k
                    if (nSequence < 0)
590
213
                        return set_error(serror, SCRIPT_ERR_NEGATIVE_LOCKTIME);
591
592
                    // To provide for future soft-fork extensibility, if the
593
                    // operand has the disabled lock-time flag set,
594
                    // CHECKSEQUENCEVERIFY behaves as a NOP.
595
13.4k
                    if ((nSequence & CTxIn::SEQUENCE_LOCKTIME_DISABLE_FLAG) != 0)
596
682
                        break;
597
598
                    // Compare the specified sequence number with the input.
599
12.8k
                    if (!checker.CheckSequence(nSequence))
600
5.94k
                        return set_error(serror, SCRIPT_ERR_UNSATISFIED_LOCKTIME);
601
602
6.86k
                    break;
603
12.8k
                }
604
605
6.86k
                case OP_NOP1: case OP_NOP4: case OP_NOP5:
606
10.0k
                case OP_NOP6: case OP_NOP7: case OP_NOP8: case OP_NOP9: case OP_NOP10:
607
10.0k
                {
608
10.0k
                    if (flags & SCRIPT_VERIFY_DISCOURAGE_UPGRADABLE_NOPS)
609
2.18k
                        return set_error(serror, SCRIPT_ERR_DISCOURAGE_UPGRADABLE_NOPS);
610
10.0k
                }
611
7.90k
                break;
612
613
71.1k
                case OP_IF:
614
84.4k
                case OP_NOTIF:
615
84.4k
                {
616
                    // <expression> if [statements] [else [statements]] endif
617
84.4k
                    bool fValue = false;
618
84.4k
                    if (fExec)
619
81.1k
                    {
620
81.1k
                        if (stack.size() < 1)
621
2.78k
                            return set_error(serror, SCRIPT_ERR_INVALID_STACK_OPERATION);
622
78.3k
                        valtype& vch = stacktop(-1);
623
                        // Tapscript requires minimal IF/NOTIF inputs as a consensus rule.
624
78.3k
                        if (sigversion == SigVersion::TAPSCRIPT) {
625
                            // The input argument to the OP_IF and OP_NOTIF opcodes must be either
626
                            // exactly 0 (the empty vector) or exactly 1 (the one-byte vector with value 1).
627
4.69k
                            if (vch.size() > 1 || (vch.size() == 1 && vch[0] != 1)) {
628
10
                                return set_error(serror, SCRIPT_ERR_TAPSCRIPT_MINIMALIF);
629
10
                            }
630
4.69k
                        }
631
                        // Under witness v0 rules it is only a policy rule, enabled through SCRIPT_VERIFY_MINIMALIF.
632
78.3k
                        if (sigversion == SigVersion::WITNESS_V0 && (flags & SCRIPT_VERIFY_MINIMALIF)) {
633
6.45k
                            if (vch.size() > 1)
634
1.30k
                                return set_error(serror, SCRIPT_ERR_MINIMALIF);
635
5.15k
                            if (vch.size() == 1 && vch[0] != 1)
636
2.58k
                                return set_error(serror, SCRIPT_ERR_MINIMALIF);
637
5.15k
                        }
638
74.4k
                        fValue = CastToBool(vch);
639
74.4k
                        if (opcode == OP_NOTIF)
640
9.46k
                            fValue = !fValue;
641
74.4k
                        popstack(stack);
642
74.4k
                    }
643
77.7k
                    vfExec.push_back(fValue);
644
77.7k
                }
645
0
                break;
646
647
63.2k
                case OP_ELSE:
648
63.2k
                {
649
63.2k
                    if (vfExec.empty())
650
649
                        return set_error(serror, SCRIPT_ERR_UNBALANCED_CONDITIONAL);
651
62.5k
                    vfExec.toggle_top();
652
62.5k
                }
653
0
                break;
654
655
60.5k
                case OP_ENDIF:
656
60.5k
                {
657
60.5k
                    if (vfExec.empty())
658
1.31k
                        return set_error(serror, SCRIPT_ERR_UNBALANCED_CONDITIONAL);
659
59.2k
                    vfExec.pop_back();
660
59.2k
                }
661
0
                break;
662
663
56.0k
                case OP_VERIFY:
664
56.0k
                {
665
                    // (true -- ) or
666
                    // (false -- false) and return
667
56.0k
                    if (stack.size() < 1)
668
108
                        return set_error(serror, SCRIPT_ERR_INVALID_STACK_OPERATION);
669
55.9k
                    bool fValue = CastToBool(stacktop(-1));
670
55.9k
                    if (fValue)
671
55.7k
                        popstack(stack);
672
217
                    else
673
217
                        return set_error(serror, SCRIPT_ERR_VERIFY);
674
55.9k
                }
675
55.7k
                break;
676
677
55.7k
                case OP_RETURN:
678
1.56k
                {
679
1.56k
                    return set_error(serror, SCRIPT_ERR_OP_RETURN);
680
55.9k
                }
681
0
                break;
682
683
684
                //
685
                // Stack ops
686
                //
687
9.70k
                case OP_TOALTSTACK:
688
9.70k
                {
689
9.70k
                    if (stack.size() < 1)
690
100
                        return set_error(serror, SCRIPT_ERR_INVALID_STACK_OPERATION);
691
9.60k
                    altstack.push_back(stacktop(-1));
692
9.60k
                    popstack(stack);
693
9.60k
                }
694
0
                break;
695
696
5.96k
                case OP_FROMALTSTACK:
697
5.96k
                {
698
5.96k
                    if (altstack.size() < 1)
699
464
                        return set_error(serror, SCRIPT_ERR_INVALID_ALTSTACK_OPERATION);
700
5.49k
                    stack.push_back(altstacktop(-1));
701
5.49k
                    popstack(altstack);
702
5.49k
                }
703
0
                break;
704
705
373k
                case OP_2DROP:
706
373k
                {
707
                    // (x1 x2 -- )
708
373k
                    if (stack.size() < 2)
709
203
                        return set_error(serror, SCRIPT_ERR_INVALID_STACK_OPERATION);
710
373k
                    popstack(stack);
711
373k
                    popstack(stack);
712
373k
                }
713
0
                break;
714
715
290k
                case OP_2DUP:
716
290k
                {
717
                    // (x1 x2 -- x1 x2 x1 x2)
718
290k
                    if (stack.size() < 2)
719
497
                        return set_error(serror, SCRIPT_ERR_INVALID_STACK_OPERATION);
720
289k
                    valtype vch1 = stacktop(-2);
721
289k
                    valtype vch2 = stacktop(-1);
722
289k
                    stack.push_back(vch1);
723
289k
                    stack.push_back(vch2);
724
289k
                }
725
0
                break;
726
727
323k
                case OP_3DUP:
728
323k
                {
729
                    // (x1 x2 x3 -- x1 x2 x3 x1 x2 x3)
730
323k
                    if (stack.size() < 3)
731
700
                        return set_error(serror, SCRIPT_ERR_INVALID_STACK_OPERATION);
732
322k
                    valtype vch1 = stacktop(-3);
733
322k
                    valtype vch2 = stacktop(-2);
734
322k
                    valtype vch3 = stacktop(-1);
735
322k
                    stack.push_back(vch1);
736
322k
                    stack.push_back(vch2);
737
322k
                    stack.push_back(vch3);
738
322k
                }
739
0
                break;
740
741
982
                case OP_2OVER:
742
982
                {
743
                    // (x1 x2 x3 x4 -- x1 x2 x3 x4 x1 x2)
744
982
                    if (stack.size() < 4)
745
468
                        return set_error(serror, SCRIPT_ERR_INVALID_STACK_OPERATION);
746
514
                    valtype vch1 = stacktop(-4);
747
514
                    valtype vch2 = stacktop(-3);
748
514
                    stack.push_back(vch1);
749
514
                    stack.push_back(vch2);
750
514
                }
751
0
                break;
752
753
3.52k
                case OP_2ROT:
754
3.52k
                {
755
                    // (x1 x2 x3 x4 x5 x6 -- x3 x4 x5 x6 x1 x2)
756
3.52k
                    if (stack.size() < 6)
757
181
                        return set_error(serror, SCRIPT_ERR_INVALID_STACK_OPERATION);
758
3.34k
                    valtype vch1 = stacktop(-6);
759
3.34k
                    valtype vch2 = stacktop(-5);
760
3.34k
                    stack.erase(stack.end()-6, stack.end()-4);
761
3.34k
                    stack.push_back(vch1);
762
3.34k
                    stack.push_back(vch2);
763
3.34k
                }
764
0
                break;
765
766
1.00k
                case OP_2SWAP:
767
1.00k
                {
768
                    // (x1 x2 x3 x4 -- x3 x4 x1 x2)
769
1.00k
                    if (stack.size() < 4)
770
487
                        return set_error(serror, SCRIPT_ERR_INVALID_STACK_OPERATION);
771
514
                    swap(stacktop(-4), stacktop(-2));
772
514
                    swap(stacktop(-3), stacktop(-1));
773
514
                }
774
0
                break;
775
776
1.32k
                case OP_IFDUP:
777
1.32k
                {
778
                    // (x - 0 | x x)
779
1.32k
                    if (stack.size() < 1)
780
189
                        return set_error(serror, SCRIPT_ERR_INVALID_STACK_OPERATION);
781
1.14k
                    valtype vch = stacktop(-1);
782
1.14k
                    if (CastToBool(vch))
783
836
                        stack.push_back(vch);
784
1.14k
                }
785
0
                break;
786
787
18.8k
                case OP_DEPTH:
788
18.8k
                {
789
                    // -- stacksize
790
18.8k
                    CScriptNum bn(stack.size());
791
18.8k
                    stack.push_back(bn.getvch());
792
18.8k
                }
793
18.8k
                break;
794
795
359k
                case OP_DROP:
796
359k
                {
797
                    // (x -- )
798
359k
                    if (stack.size() < 1)
799
200
                        return set_error(serror, SCRIPT_ERR_INVALID_STACK_OPERATION);
800
359k
                    popstack(stack);
801
359k
                }
802
0
                break;
803
804
326k
                case OP_DUP:
805
326k
                {
806
                    // (x -- x x)
807
326k
                    if (stack.size() < 1)
808
34.5k
                        return set_error(serror, SCRIPT_ERR_INVALID_STACK_OPERATION);
809
291k
                    valtype vch = stacktop(-1);
810
291k
                    stack.push_back(vch);
811
291k
                }
812
0
                break;
813
814
1.14k
                case OP_NIP:
815
1.14k
                {
816
                    // (x1 x2 -- x2)
817
1.14k
                    if (stack.size() < 2)
818
363
                        return set_error(serror, SCRIPT_ERR_INVALID_STACK_OPERATION);
819
780
                    stack.erase(stack.end() - 2);
820
780
                }
821
0
                break;
822
823
1.18k
                case OP_OVER:
824
1.18k
                {
825
                    // (x1 x2 -- x1 x2 x1)
826
1.18k
                    if (stack.size() < 2)
827
484
                        return set_error(serror, SCRIPT_ERR_INVALID_STACK_OPERATION);
828
705
                    valtype vch = stacktop(-2);
829
705
                    stack.push_back(vch);
830
705
                }
831
0
                break;
832
833
3.40k
                case OP_PICK:
834
6.35k
                case OP_ROLL:
835
6.35k
                {
836
                    // (xn ... x2 x1 x0 n - xn ... x2 x1 x0 xn)
837
                    // (xn ... x2 x1 x0 n - ... x2 x1 x0 xn)
838
6.35k
                    if (stack.size() < 2)
839
553
                        return set_error(serror, SCRIPT_ERR_INVALID_STACK_OPERATION);
840
5.79k
                    int n = CScriptNum(stacktop(-1), fRequireMinimal).getint();
841
5.79k
                    popstack(stack);
842
5.79k
                    if (n < 0 || n >= (int)stack.size())
843
976
                        return set_error(serror, SCRIPT_ERR_INVALID_STACK_OPERATION);
844
4.82k
                    valtype vch = stacktop(-n-1);
845
4.82k
                    if (opcode == OP_ROLL)
846
2.14k
                        stack.erase(stack.end()-n-1);
847
4.82k
                    stack.push_back(vch);
848
4.82k
                }
849
0
                break;
850
851
3.15k
                case OP_ROT:
852
3.15k
                {
853
                    // (x1 x2 x3 -- x2 x3 x1)
854
                    //  x2 x1 x3  after first swap
855
                    //  x2 x3 x1  after second swap
856
3.15k
                    if (stack.size() < 3)
857
484
                        return set_error(serror, SCRIPT_ERR_INVALID_STACK_OPERATION);
858
2.66k
                    swap(stacktop(-3), stacktop(-2));
859
2.66k
                    swap(stacktop(-2), stacktop(-1));
860
2.66k
                }
861
0
                break;
862
863
98.5k
                case OP_SWAP:
864
98.5k
                {
865
                    // (x1 x2 -- x2 x1)
866
98.5k
                    if (stack.size() < 2)
867
480
                        return set_error(serror, SCRIPT_ERR_INVALID_STACK_OPERATION);
868
98.0k
                    swap(stacktop(-2), stacktop(-1));
869
98.0k
                }
870
0
                break;
871
872
20.0k
                case OP_TUCK:
873
20.0k
                {
874
                    // (x1 x2 -- x2 x1 x2)
875
20.0k
                    if (stack.size() < 2)
876
495
                        return set_error(serror, SCRIPT_ERR_INVALID_STACK_OPERATION);
877
19.5k
                    valtype vch = stacktop(-1);
878
19.5k
                    stack.insert(stack.end()-2, vch);
879
19.5k
                }
880
0
                break;
881
882
883
8.43k
                case OP_SIZE:
884
8.43k
                {
885
                    // (in -- in size)
886
8.43k
                    if (stack.size() < 1)
887
214
                        return set_error(serror, SCRIPT_ERR_INVALID_STACK_OPERATION);
888
8.21k
                    CScriptNum bn(stacktop(-1).size());
889
8.21k
                    stack.push_back(bn.getvch());
890
8.21k
                }
891
0
                break;
892
893
894
                //
895
                // Bitwise logic
896
                //
897
139k
                case OP_EQUAL:
898
322k
                case OP_EQUALVERIFY:
899
                //case OP_NOTEQUAL: // use OP_NUMNOTEQUAL
900
322k
                {
901
                    // (x1 x2 - bool)
902
322k
                    if (stack.size() < 2)
903
772
                        return set_error(serror, SCRIPT_ERR_INVALID_STACK_OPERATION);
904
321k
                    valtype& vch1 = stacktop(-2);
905
321k
                    valtype& vch2 = stacktop(-1);
906
321k
                    bool fEqual = (vch1 == vch2);
907
                    // OP_NOTEQUAL is disabled because it would be too easy to say
908
                    // something like n != 1 and have some wiseguy pass in 1 with extra
909
                    // zero bytes after it (numerically, 0x01 == 0x0001 == 0x000001)
910
                    //if (opcode == OP_NOTEQUAL)
911
                    //    fEqual = !fEqual;
912
321k
                    popstack(stack);
913
321k
                    popstack(stack);
914
321k
                    stack.push_back(fEqual ? vchTrue : vchFalse);
915
321k
                    if (opcode == OP_EQUALVERIFY)
916
182k
                    {
917
182k
                        if (fEqual)
918
180k
                            popstack(stack);
919
2.04k
                        else
920
2.04k
                            return set_error(serror, SCRIPT_ERR_EQUALVERIFY);
921
182k
                    }
922
321k
                }
923
319k
                break;
924
925
926
                //
927
                // Numeric
928
                //
929
319k
                case OP_1ADD:
930
3.87k
                case OP_1SUB:
931
5.30k
                case OP_NEGATE:
932
6.81k
                case OP_ABS:
933
29.4k
                case OP_NOT:
934
6.62M
                case OP_0NOTEQUAL:
935
6.62M
                {
936
                    // (in -- out)
937
6.62M
                    if (stack.size() < 1)
938
595
                        return set_error(serror, SCRIPT_ERR_INVALID_STACK_OPERATION);
939
6.61M
                    CScriptNum bn(stacktop(-1), fRequireMinimal);
940
6.61M
                    switch (opcode)
941
6.61M
                    {
942
1.81k
                    case OP_1ADD:       bn += bnOne; break;
943
814
                    case OP_1SUB:       bn -= bnOne; break;
944
1.02k
                    case OP_NEGATE:     bn = -bn; break;
945
1.28k
                    case OP_ABS:        if (bn < bnZero) bn = -bn; break;
946
20.7k
                    case OP_NOT:        bn = (bn == bnZero); break;
947
6.59M
                    case OP_0NOTEQUAL:  bn = (bn != bnZero); break;
948
0
                    default:            assert(!"invalid opcode"); break;
949
6.61M
                    }
950
6.61M
                    popstack(stack);
951
6.61M
                    stack.push_back(bn.getvch());
952
6.61M
                }
953
0
                break;
954
955
9.57k
                case OP_ADD:
956
11.4k
                case OP_SUB:
957
19.1k
                case OP_BOOLAND:
958
22.5k
                case OP_BOOLOR:
959
32.0k
                case OP_NUMEQUAL:
960
33.6k
                case OP_NUMEQUALVERIFY:
961
35.4k
                case OP_NUMNOTEQUAL:
962
37.9k
                case OP_LESSTHAN:
963
40.4k
                case OP_GREATERTHAN:
964
42.9k
                case OP_LESSTHANOREQUAL:
965
45.4k
                case OP_GREATERTHANOREQUAL:
966
47.7k
                case OP_MIN:
967
49.9k
                case OP_MAX:
968
49.9k
                {
969
                    // (x1 x2 -- out)
970
49.9k
                    if (stack.size() < 2)
971
2.49k
                        return set_error(serror, SCRIPT_ERR_INVALID_STACK_OPERATION);
972
47.4k
                    CScriptNum bn1(stacktop(-2), fRequireMinimal);
973
47.4k
                    CScriptNum bn2(stacktop(-1), fRequireMinimal);
974
47.4k
                    CScriptNum bn(0);
975
47.4k
                    switch (opcode)
976
47.4k
                    {
977
8.94k
                    case OP_ADD:
978
8.94k
                        bn = bn1 + bn2;
979
8.94k
                        break;
980
981
1.43k
                    case OP_SUB:
982
1.43k
                        bn = bn1 - bn2;
983
1.43k
                        break;
984
985
6.92k
                    case OP_BOOLAND:             bn = (bn1 != bnZero && bn2 != bnZero); break;
986
2.55k
                    case OP_BOOLOR:              bn = (bn1 != bnZero || bn2 != bnZero); break;
987
8.90k
                    case OP_NUMEQUAL:            bn = (bn1 == bn2); break;
988
1.20k
                    case OP_NUMEQUALVERIFY:      bn = (bn1 == bn2); break;
989
1.28k
                    case OP_NUMNOTEQUAL:         bn = (bn1 != bn2); break;
990
2.05k
                    case OP_LESSTHAN:            bn = (bn1 < bn2); break;
991
2.05k
                    case OP_GREATERTHAN:         bn = (bn1 > bn2); break;
992
2.05k
                    case OP_LESSTHANOREQUAL:     bn = (bn1 <= bn2); break;
993
2.05k
                    case OP_GREATERTHANOREQUAL:  bn = (bn1 >= bn2); break;
994
1.79k
                    case OP_MIN:                 bn = (bn1 < bn2 ? bn1 : bn2); break;
995
1.79k
                    case OP_MAX:                 bn = (bn1 > bn2 ? bn1 : bn2); break;
996
0
                    default:                     assert(!"invalid opcode"); break;
997
47.4k
                    }
998
43.0k
                    popstack(stack);
999
43.0k
                    popstack(stack);
1000
43.0k
                    stack.push_back(bn.getvch());
1001
1002
43.0k
                    if (opcode == OP_NUMEQUALVERIFY)
1003
1.20k
                    {
1004
1.20k
                        if (CastToBool(stacktop(-1)))
1005
1.03k
                            popstack(stack);
1006
176
                        else
1007
176
                            return set_error(serror, SCRIPT_ERR_NUMEQUALVERIFY);
1008
1.20k
                    }
1009
43.0k
                }
1010
42.8k
                break;
1011
1012
42.8k
                case OP_WITHIN:
1013
3.74k
                {
1014
                    // (x min max -- out)
1015
3.74k
                    if (stack.size() < 3)
1016
184
                        return set_error(serror, SCRIPT_ERR_INVALID_STACK_OPERATION);
1017
3.56k
                    CScriptNum bn1(stacktop(-3), fRequireMinimal);
1018
3.56k
                    CScriptNum bn2(stacktop(-2), fRequireMinimal);
1019
3.56k
                    CScriptNum bn3(stacktop(-1), fRequireMinimal);
1020
3.56k
                    bool fValue = (bn2 <= bn1 && bn1 < bn3);
1021
3.56k
                    popstack(stack);
1022
3.56k
                    popstack(stack);
1023
3.56k
                    popstack(stack);
1024
3.56k
                    stack.push_back(fValue ? vchTrue : vchFalse);
1025
3.56k
                }
1026
0
                break;
1027
1028
1029
                //
1030
                // Crypto
1031
                //
1032
1.51k
                case OP_RIPEMD160:
1033
13.0k
                case OP_SHA1:
1034
15.2k
                case OP_SHA256:
1035
178k
                case OP_HASH160:
1036
179k
                case OP_HASH256:
1037
179k
                {
1038
                    // (in -- hash)
1039
179k
                    if (stack.size() < 1)
1040
8.01k
                        return set_error(serror, SCRIPT_ERR_INVALID_STACK_OPERATION);
1041
171k
                    valtype& vch = stacktop(-1);
1042
171k
                    valtype vchHash((opcode == OP_RIPEMD160 || opcode == OP_SHA1 || opcode == OP_HASH160) ? 20 : 32);
1043
171k
                    if (opcode == OP_RIPEMD160)
1044
1.33k
                        CRIPEMD160().Write(vch.data(), vch.size()).Finalize(vchHash.data());
1045
170k
                    else if (opcode == OP_SHA1)
1046
11.3k
                        CSHA1().Write(vch.data(), vch.size()).Finalize(vchHash.data());
1047
159k
                    else if (opcode == OP_SHA256)
1048
2.04k
                        CSHA256().Write(vch.data(), vch.size()).Finalize(vchHash.data());
1049
157k
                    else if (opcode == OP_HASH160)
1050
155k
                        CHash160().Write(vch).Finalize(vchHash);
1051
1.42k
                    else if (opcode == OP_HASH256)
1052
1.42k
                        CHash256().Write(vch).Finalize(vchHash);
1053
171k
                    popstack(stack);
1054
171k
                    stack.push_back(vchHash);
1055
171k
                }
1056
0
                break;
1057
1058
5.72k
                case OP_CODESEPARATOR:
1059
5.72k
                {
1060
                    // If SCRIPT_VERIFY_CONST_SCRIPTCODE flag is set, use of OP_CODESEPARATOR is rejected in pre-segwit
1061
                    // script, even in an unexecuted branch (this is checked above the opcode case statement).
1062
1063
                    // Hash starts after the code separator
1064
5.72k
                    pbegincodehash = pc;
1065
5.72k
                    execdata.m_codeseparator_pos = opcode_pos;
1066
5.72k
                }
1067
5.72k
                break;
1068
1069
245k
                case OP_CHECKSIG:
1070
534k
                case OP_CHECKSIGVERIFY:
1071
534k
                {
1072
                    // (sig pubkey -- bool)
1073
534k
                    if (stack.size() < 2)
1074
9.93k
                        return set_error(serror, SCRIPT_ERR_INVALID_STACK_OPERATION);
1075
1076
524k
                    valtype& vchSig    = stacktop(-2);
1077
524k
                    valtype& vchPubKey = stacktop(-1);
1078
1079
524k
                    bool fSuccess = true;
1080
524k
                    if (!EvalChecksig(vchSig, vchPubKey, pbegincodehash, pend, execdata, flags, checker, sigversion, serror, fSuccess)) return false;
1081
501k
                    popstack(stack);
1082
501k
                    popstack(stack);
1083
501k
                    stack.push_back(fSuccess ? vchTrue : vchFalse);
1084
501k
                    if (opcode == OP_CHECKSIGVERIFY)
1085
287k
                    {
1086
287k
                        if (fSuccess)
1087
287k
                            popstack(stack);
1088
394
                        else
1089
394
                            return set_error(serror, SCRIPT_ERR_CHECKSIGVERIFY);
1090
287k
                    }
1091
501k
                }
1092
501k
                break;
1093
1094
501k
                case OP_CHECKSIGADD:
1095
193k
                {
1096
                    // OP_CHECKSIGADD is only available in Tapscript
1097
193k
                    if (sigversion == SigVersion::BASE || sigversion == SigVersion::WITNESS_V0) return set_error(serror, SCRIPT_ERR_BAD_OPCODE);
1098
1099
                    // (sig num pubkey -- num)
1100
193k
                    if (stack.size() < 3) return set_error(serror, SCRIPT_ERR_INVALID_STACK_OPERATION);
1101
1102
193k
                    const valtype& sig = stacktop(-3);
1103
193k
                    const CScriptNum num(stacktop(-2), fRequireMinimal);
1104
193k
                    const valtype& pubkey = stacktop(-1);
1105
1106
193k
                    bool success = true;
1107
193k
                    if (!EvalChecksig(sig, pubkey, pbegincodehash, pend, execdata, flags, checker, sigversion, serror, success)) return false;
1108
193k
                    popstack(stack);
1109
193k
                    popstack(stack);
1110
193k
                    popstack(stack);
1111
193k
                    stack.push_back((num + (success ? 1 : 0)).getvch());
1112
193k
                }
1113
0
                break;
1114
1115
101k
                case OP_CHECKMULTISIG:
1116
164k
                case OP_CHECKMULTISIGVERIFY:
1117
164k
                {
1118
164k
                    if (sigversion == SigVersion::TAPSCRIPT) return set_error(serror, SCRIPT_ERR_TAPSCRIPT_CHECKMULTISIG);
1119
1120
                    // ([sig ...] num_of_signatures [pubkey ...] num_of_pubkeys -- bool)
1121
1122
164k
                    int i = 1;
1123
164k
                    if ((int)stack.size() < i)
1124
131
                        return set_error(serror, SCRIPT_ERR_INVALID_STACK_OPERATION);
1125
1126
164k
                    int nKeysCount = CScriptNum(stacktop(-i), fRequireMinimal).getint();
1127
164k
                    if (nKeysCount < 0 || nKeysCount > MAX_PUBKEYS_PER_MULTISIG)
1128
309
                        return set_error(serror, SCRIPT_ERR_PUBKEY_COUNT);
1129
164k
                    nOpCount += nKeysCount;
1130
164k
                    if (nOpCount > MAX_OPS_PER_SCRIPT)
1131
382
                        return set_error(serror, SCRIPT_ERR_OP_COUNT);
1132
163k
                    int ikey = ++i;
1133
                    // ikey2 is the position of last non-signature item in the stack. Top stack item = 1.
1134
                    // With SCRIPT_VERIFY_NULLFAIL, this is used for cleanup if operation fails.
1135
163k
                    int ikey2 = nKeysCount + 2;
1136
163k
                    i += nKeysCount;
1137
163k
                    if ((int)stack.size() < i)
1138
129
                        return set_error(serror, SCRIPT_ERR_INVALID_STACK_OPERATION);
1139
1140
163k
                    int nSigsCount = CScriptNum(stacktop(-i), fRequireMinimal).getint();
1141
163k
                    if (nSigsCount < 0 || nSigsCount > nKeysCount)
1142
307
                        return set_error(serror, SCRIPT_ERR_SIG_COUNT);
1143
163k
                    int isig = ++i;
1144
163k
                    i += nSigsCount;
1145
163k
                    if ((int)stack.size() < i)
1146
346
                        return set_error(serror, SCRIPT_ERR_INVALID_STACK_OPERATION);
1147
1148
                    // Subset of script starting at the most recent codeseparator
1149
163k
                    CScript scriptCode(pbegincodehash, pend);
1150
1151
                    // Drop the signature in pre-segwit scripts but not segwit scripts
1152
228k
                    for (int k = 0; k < nSigsCount; k++)
1153
66.0k
                    {
1154
66.0k
                        valtype& vchSig = stacktop(-isig-k);
1155
66.0k
                        if (sigversion == SigVersion::BASE) {
1156
58.8k
                            int found = FindAndDelete(scriptCode, CScript() << vchSig);
1157
58.8k
                            if (found > 0 && (flags & SCRIPT_VERIFY_CONST_SCRIPTCODE))
1158
172
                                return set_error(serror, SCRIPT_ERR_SIG_FINDANDDELETE);
1159
58.8k
                        }
1160
66.0k
                    }
1161
1162
162k
                    bool fSuccess = true;
1163
187k
                    while (fSuccess && nSigsCount > 0)
1164
30.3k
                    {
1165
30.3k
                        valtype& vchSig    = stacktop(-isig);
1166
30.3k
                        valtype& vchPubKey = stacktop(-ikey);
1167
1168
                        // Note how this makes the exact order of pubkey/signature evaluation
1169
                        // distinguishable by CHECKMULTISIG NOT if the STRICTENC flag is set.
1170
                        // See the script_(in)valid tests for details.
1171
30.3k
                        if (!CheckSignatureEncoding(vchSig, flags, serror) || !CheckPubKeyEncoding(vchPubKey, flags, sigversion, serror)) {
1172
                            // serror is set
1173
5.90k
                            return false;
1174
5.90k
                        }
1175
1176
                        // Check signature
1177
24.4k
                        bool fOk = checker.CheckECDSASignature(vchSig, vchPubKey, scriptCode, sigversion);
1178
1179
24.4k
                        if (fOk) {
1180
14.3k
                            isig++;
1181
14.3k
                            nSigsCount--;
1182
14.3k
                        }
1183
24.4k
                        ikey++;
1184
24.4k
                        nKeysCount--;
1185
1186
                        // If there are more signatures left than keys left,
1187
                        // then too many signatures have failed. Exit early,
1188
                        // without checking any further signatures.
1189
24.4k
                        if (nSigsCount > nKeysCount)
1190
6.84k
                            fSuccess = false;
1191
24.4k
                    }
1192
1193
                    // Clean up stack of actual arguments
1194
841k
                    while (i-- > 1) {
1195
                        // If the operation failed, we require that all signatures must be empty vector
1196
685k
                        if (!fSuccess && (flags & SCRIPT_VERIFY_NULLFAIL) && !ikey2 && stacktop(-1).size())
1197
986
                            return set_error(serror, SCRIPT_ERR_SIG_NULLFAIL);
1198
684k
                        if (ikey2 > 0)
1199
633k
                            ikey2--;
1200
684k
                        popstack(stack);
1201
684k
                    }
1202
1203
                    // A bug causes CHECKMULTISIG to consume one extra argument
1204
                    // whose contents were not checked in any way.
1205
                    //
1206
                    // Unfortunately this is a potential source of mutability,
1207
                    // so optionally verify it is exactly equal to zero prior
1208
                    // to removing it from the stack.
1209
155k
                    if (stack.size() < 1)
1210
0
                        return set_error(serror, SCRIPT_ERR_INVALID_STACK_OPERATION);
1211
155k
                    if ((flags & SCRIPT_VERIFY_NULLDUMMY) && stacktop(-1).size())
1212
709
                        return set_error(serror, SCRIPT_ERR_SIG_NULLDUMMY);
1213
155k
                    popstack(stack);
1214
1215
155k
                    stack.push_back(fSuccess ? vchTrue : vchFalse);
1216
1217
155k
                    if (opcode == OP_CHECKMULTISIGVERIFY)
1218
62.7k
                    {
1219
62.7k
                        if (fSuccess)
1220
62.5k
                            popstack(stack);
1221
241
                        else
1222
241
                            return set_error(serror, SCRIPT_ERR_CHECKMULTISIGVERIFY);
1223
62.7k
                    }
1224
155k
                }
1225
155k
                break;
1226
1227
155k
                default:
1228
16.2k
                    return set_error(serror, SCRIPT_ERR_BAD_OPCODE);
1229
11.2M
            }
1230
1231
            // Size limits
1232
14.9M
            if (stack.size() + altstack.size() > MAX_STACK_SIZE)
1233
518
                return set_error(serror, SCRIPT_ERR_STACK_SIZE);
1234
14.9M
        }
1235
2.09M
    }
1236
2.09M
    catch (const scriptnum_error&)
1237
2.09M
    {
1238
9.52k
        return set_error(serror, SCRIPT_ERR_SCRIPTNUM);
1239
9.52k
    }
1240
2.09M
    catch (...)
1241
2.09M
    {
1242
0
        return set_error(serror, SCRIPT_ERR_UNKNOWN_ERROR);
1243
0
    }
1244
1245
1.93M
    if (!vfExec.empty())
1246
675
        return set_error(serror, SCRIPT_ERR_UNBALANCED_CONDITIONAL);
1247
1248
1.93M
    return set_success(serror);
1249
1.93M
}
1250
1251
bool EvalScript(std::vector<std::vector<unsigned char> >& stack, const CScript& script, script_verify_flags flags, const BaseSignatureChecker& checker, SigVersion sigversion, ScriptError* serror)
1252
1.89M
{
1253
1.89M
    ScriptExecutionData execdata;
1254
1.89M
    return EvalScript(stack, script, flags, checker, sigversion, execdata, serror);
1255
1.89M
}
1256
1257
namespace {
1258
1259
/**
1260
 * Wrapper that serializes like CTransaction, but with the modifications
1261
 *  required for the signature hash done in-place
1262
 */
1263
template <class T>
1264
class CTransactionSignatureSerializer
1265
{
1266
private:
1267
    const T& txTo;             //!< reference to the spending transaction (the one being serialized)
1268
    const CScript& scriptCode; //!< output script being consumed
1269
    const unsigned int nIn;    //!< input index of txTo being signed
1270
    const bool fAnyoneCanPay;  //!< whether the hashtype has the SIGHASH_ANYONECANPAY flag set
1271
    const bool fHashSingle;    //!< whether the hashtype is SIGHASH_SINGLE
1272
    const bool fHashNone;      //!< whether the hashtype is SIGHASH_NONE
1273
1274
public:
1275
    CTransactionSignatureSerializer(const T& txToIn, const CScript& scriptCodeIn, unsigned int nInIn, int nHashTypeIn) :
1276
126k
        txTo(txToIn), scriptCode(scriptCodeIn), nIn(nInIn),
1277
126k
        fAnyoneCanPay(!!(nHashTypeIn & SIGHASH_ANYONECANPAY)),
1278
126k
        fHashSingle((nHashTypeIn & 0x1f) == SIGHASH_SINGLE),
1279
126k
        fHashNone((nHashTypeIn & 0x1f) == SIGHASH_NONE) {}
interpreter.cpp:(anonymous namespace)::CTransactionSignatureSerializer<CTransaction>::CTransactionSignatureSerializer(CTransaction const&, CScript const&, unsigned int, int)
Line
Count
Source
1276
41.2k
        txTo(txToIn), scriptCode(scriptCodeIn), nIn(nInIn),
1277
41.2k
        fAnyoneCanPay(!!(nHashTypeIn & SIGHASH_ANYONECANPAY)),
1278
41.2k
        fHashSingle((nHashTypeIn & 0x1f) == SIGHASH_SINGLE),
1279
41.2k
        fHashNone((nHashTypeIn & 0x1f) == SIGHASH_NONE) {}
interpreter.cpp:(anonymous namespace)::CTransactionSignatureSerializer<CMutableTransaction>::CTransactionSignatureSerializer(CMutableTransaction const&, CScript const&, unsigned int, int)
Line
Count
Source
1276
85.5k
        txTo(txToIn), scriptCode(scriptCodeIn), nIn(nInIn),
1277
85.5k
        fAnyoneCanPay(!!(nHashTypeIn & SIGHASH_ANYONECANPAY)),
1278
85.5k
        fHashSingle((nHashTypeIn & 0x1f) == SIGHASH_SINGLE),
1279
85.5k
        fHashNone((nHashTypeIn & 0x1f) == SIGHASH_NONE) {}
1280
1281
    /** Serialize the passed scriptCode, skipping OP_CODESEPARATORs */
1282
    template<typename S>
1283
126k
    void SerializeScriptCode(S &s) const {
1284
126k
        CScript::const_iterator it = scriptCode.begin();
1285
126k
        CScript::const_iterator itBegin = it;
1286
126k
        opcodetype opcode;
1287
126k
        unsigned int nCodeSeparators = 0;
1288
712k
        while (scriptCode.GetOp(it, opcode)) {
1289
586k
            if (opcode == OP_CODESEPARATOR)
1290
26.5k
                nCodeSeparators++;
1291
586k
        }
1292
126k
        ::WriteCompactSize(s, scriptCode.size() - nCodeSeparators);
1293
126k
        it = itBegin;
1294
712k
        while (scriptCode.GetOp(it, opcode)) {
1295
586k
            if (opcode == OP_CODESEPARATOR) {
1296
26.5k
                s.write(std::as_bytes(std::span{&itBegin[0], size_t(it - itBegin - 1)}));
1297
26.5k
                itBegin = it;
1298
26.5k
            }
1299
586k
        }
1300
126k
        if (itBegin != scriptCode.end())
1301
116k
            s.write(std::as_bytes(std::span{&itBegin[0], size_t(it - itBegin)}));
1302
126k
    }
interpreter.cpp:void (anonymous namespace)::CTransactionSignatureSerializer<CTransaction>::SerializeScriptCode<HashWriter>(HashWriter&) const
Line
Count
Source
1283
41.2k
    void SerializeScriptCode(S &s) const {
1284
41.2k
        CScript::const_iterator it = scriptCode.begin();
1285
41.2k
        CScript::const_iterator itBegin = it;
1286
41.2k
        opcodetype opcode;
1287
41.2k
        unsigned int nCodeSeparators = 0;
1288
252k
        while (scriptCode.GetOp(it, opcode)) {
1289
211k
            if (opcode == OP_CODESEPARATOR)
1290
1.55k
                nCodeSeparators++;
1291
211k
        }
1292
41.2k
        ::WriteCompactSize(s, scriptCode.size() - nCodeSeparators);
1293
41.2k
        it = itBegin;
1294
252k
        while (scriptCode.GetOp(it, opcode)) {
1295
211k
            if (opcode == OP_CODESEPARATOR) {
1296
1.55k
                s.write(std::as_bytes(std::span{&itBegin[0], size_t(it - itBegin - 1)}));
1297
1.55k
                itBegin = it;
1298
1.55k
            }
1299
211k
        }
1300
41.2k
        if (itBegin != scriptCode.end())
1301
41.1k
            s.write(std::as_bytes(std::span{&itBegin[0], size_t(it - itBegin)}));
1302
41.2k
    }
interpreter.cpp:void (anonymous namespace)::CTransactionSignatureSerializer<CMutableTransaction>::SerializeScriptCode<HashWriter>(HashWriter&) const
Line
Count
Source
1283
85.5k
    void SerializeScriptCode(S &s) const {
1284
85.5k
        CScript::const_iterator it = scriptCode.begin();
1285
85.5k
        CScript::const_iterator itBegin = it;
1286
85.5k
        opcodetype opcode;
1287
85.5k
        unsigned int nCodeSeparators = 0;
1288
460k
        while (scriptCode.GetOp(it, opcode)) {
1289
374k
            if (opcode == OP_CODESEPARATOR)
1290
25.0k
                nCodeSeparators++;
1291
374k
        }
1292
85.5k
        ::WriteCompactSize(s, scriptCode.size() - nCodeSeparators);
1293
85.5k
        it = itBegin;
1294
460k
        while (scriptCode.GetOp(it, opcode)) {
1295
374k
            if (opcode == OP_CODESEPARATOR) {
1296
25.0k
                s.write(std::as_bytes(std::span{&itBegin[0], size_t(it - itBegin - 1)}));
1297
25.0k
                itBegin = it;
1298
25.0k
            }
1299
374k
        }
1300
85.5k
        if (itBegin != scriptCode.end())
1301
75.3k
            s.write(std::as_bytes(std::span{&itBegin[0], size_t(it - itBegin)}));
1302
85.5k
    }
1303
1304
    /** Serialize an input of txTo */
1305
    template<typename S>
1306
928k
    void SerializeInput(S &s, unsigned int nInput) const {
1307
        // In case of SIGHASH_ANYONECANPAY, only the input being signed is serialized
1308
928k
        if (fAnyoneCanPay)
1309
26.5k
            nInput = nIn;
1310
        // Serialize the prevout
1311
928k
        ::Serialize(s, txTo.vin[nInput].prevout);
1312
        // Serialize the script
1313
928k
        if (nInput != nIn)
1314
            // Blank out other inputs' signatures
1315
801k
            ::Serialize(s, CScript());
1316
126k
        else
1317
126k
            SerializeScriptCode(s);
1318
        // Serialize the nSequence
1319
928k
        if (nInput != nIn && (fHashSingle || fHashNone))
1320
            // let the others update at will
1321
3.13k
            ::Serialize(s, int32_t{0});
1322
924k
        else
1323
924k
            ::Serialize(s, txTo.vin[nInput].nSequence);
1324
928k
    }
interpreter.cpp:void (anonymous namespace)::CTransactionSignatureSerializer<CTransaction>::SerializeInput<HashWriter>(HashWriter&, unsigned int) const
Line
Count
Source
1306
221k
    void SerializeInput(S &s, unsigned int nInput) const {
1307
        // In case of SIGHASH_ANYONECANPAY, only the input being signed is serialized
1308
221k
        if (fAnyoneCanPay)
1309
1.10k
            nInput = nIn;
1310
        // Serialize the prevout
1311
221k
        ::Serialize(s, txTo.vin[nInput].prevout);
1312
        // Serialize the script
1313
221k
        if (nInput != nIn)
1314
            // Blank out other inputs' signatures
1315
179k
            ::Serialize(s, CScript());
1316
41.1k
        else
1317
41.1k
            SerializeScriptCode(s);
1318
        // Serialize the nSequence
1319
221k
        if (nInput != nIn && (fHashSingle || fHashNone))
1320
            // let the others update at will
1321
614
            ::Serialize(s, int32_t{0});
1322
220k
        else
1323
220k
            ::Serialize(s, txTo.vin[nInput].nSequence);
1324
221k
    }
interpreter.cpp:void (anonymous namespace)::CTransactionSignatureSerializer<CMutableTransaction>::SerializeInput<HashWriter>(HashWriter&, unsigned int) const
Line
Count
Source
1306
706k
    void SerializeInput(S &s, unsigned int nInput) const {
1307
        // In case of SIGHASH_ANYONECANPAY, only the input being signed is serialized
1308
706k
        if (fAnyoneCanPay)
1309
25.4k
            nInput = nIn;
1310
        // Serialize the prevout
1311
706k
        ::Serialize(s, txTo.vin[nInput].prevout);
1312
        // Serialize the script
1313
706k
        if (nInput != nIn)
1314
            // Blank out other inputs' signatures
1315
621k
            ::Serialize(s, CScript());
1316
85.5k
        else
1317
85.5k
            SerializeScriptCode(s);
1318
        // Serialize the nSequence
1319
706k
        if (nInput != nIn && (fHashSingle || fHashNone))
1320
            // let the others update at will
1321
2.51k
            ::Serialize(s, int32_t{0});
1322
704k
        else
1323
704k
            ::Serialize(s, txTo.vin[nInput].nSequence);
1324
706k
    }
1325
1326
    /** Serialize an output of txTo */
1327
    template<typename S>
1328
489k
    void SerializeOutput(S &s, unsigned int nOutput) const {
1329
489k
        if (fHashSingle && nOutput != nIn)
1330
            // Do not lock-in the txout payee at other indices as txin
1331
1.63k
            ::Serialize(s, CTxOut());
1332
487k
        else
1333
487k
            ::Serialize(s, txTo.vout[nOutput]);
1334
489k
    }
interpreter.cpp:void (anonymous namespace)::CTransactionSignatureSerializer<CTransaction>::SerializeOutput<HashWriter>(HashWriter&, unsigned int) const
Line
Count
Source
1328
190k
    void SerializeOutput(S &s, unsigned int nOutput) const {
1329
190k
        if (fHashSingle && nOutput != nIn)
1330
            // Do not lock-in the txout payee at other indices as txin
1331
399
            ::Serialize(s, CTxOut());
1332
189k
        else
1333
189k
            ::Serialize(s, txTo.vout[nOutput]);
1334
190k
    }
interpreter.cpp:void (anonymous namespace)::CTransactionSignatureSerializer<CMutableTransaction>::SerializeOutput<HashWriter>(HashWriter&, unsigned int) const
Line
Count
Source
1328
299k
    void SerializeOutput(S &s, unsigned int nOutput) const {
1329
299k
        if (fHashSingle && nOutput != nIn)
1330
            // Do not lock-in the txout payee at other indices as txin
1331
1.23k
            ::Serialize(s, CTxOut());
1332
298k
        else
1333
298k
            ::Serialize(s, txTo.vout[nOutput]);
1334
299k
    }
1335
1336
    /** Serialize txTo */
1337
    template<typename S>
1338
126k
    void Serialize(S &s) const {
1339
        // Serialize version
1340
126k
        ::Serialize(s, txTo.version);
1341
        // Serialize vin
1342
126k
        unsigned int nInputs = fAnyoneCanPay ? 1 : txTo.vin.size();
1343
126k
        ::WriteCompactSize(s, nInputs);
1344
1.05M
        for (unsigned int nInput = 0; nInput < nInputs; nInput++)
1345
928k
             SerializeInput(s, nInput);
1346
        // Serialize vout
1347
126k
        unsigned int nOutputs = fHashNone ? 0 : (fHashSingle ? nIn+1 : txTo.vout.size());
1348
126k
        ::WriteCompactSize(s, nOutputs);
1349
616k
        for (unsigned int nOutput = 0; nOutput < nOutputs; nOutput++)
1350
489k
             SerializeOutput(s, nOutput);
1351
        // Serialize nLockTime
1352
126k
        ::Serialize(s, txTo.nLockTime);
1353
126k
    }
interpreter.cpp:void (anonymous namespace)::CTransactionSignatureSerializer<CTransaction>::Serialize<HashWriter>(HashWriter&) const
Line
Count
Source
1338
41.2k
    void Serialize(S &s) const {
1339
        // Serialize version
1340
41.2k
        ::Serialize(s, txTo.version);
1341
        // Serialize vin
1342
41.2k
        unsigned int nInputs = fAnyoneCanPay ? 1 : txTo.vin.size();
1343
41.2k
        ::WriteCompactSize(s, nInputs);
1344
262k
        for (unsigned int nInput = 0; nInput < nInputs; nInput++)
1345
221k
             SerializeInput(s, nInput);
1346
        // Serialize vout
1347
41.2k
        unsigned int nOutputs = fHashNone ? 0 : (fHashSingle ? nIn+1 : txTo.vout.size());
1348
41.2k
        ::WriteCompactSize(s, nOutputs);
1349
231k
        for (unsigned int nOutput = 0; nOutput < nOutputs; nOutput++)
1350
190k
             SerializeOutput(s, nOutput);
1351
        // Serialize nLockTime
1352
41.2k
        ::Serialize(s, txTo.nLockTime);
1353
41.2k
    }
interpreter.cpp:void (anonymous namespace)::CTransactionSignatureSerializer<CMutableTransaction>::Serialize<HashWriter>(HashWriter&) const
Line
Count
Source
1338
85.5k
    void Serialize(S &s) const {
1339
        // Serialize version
1340
85.5k
        ::Serialize(s, txTo.version);
1341
        // Serialize vin
1342
85.5k
        unsigned int nInputs = fAnyoneCanPay ? 1 : txTo.vin.size();
1343
85.5k
        ::WriteCompactSize(s, nInputs);
1344
792k
        for (unsigned int nInput = 0; nInput < nInputs; nInput++)
1345
706k
             SerializeInput(s, nInput);
1346
        // Serialize vout
1347
85.5k
        unsigned int nOutputs = fHashNone ? 0 : (fHashSingle ? nIn+1 : txTo.vout.size());
1348
85.5k
        ::WriteCompactSize(s, nOutputs);
1349
384k
        for (unsigned int nOutput = 0; nOutput < nOutputs; nOutput++)
1350
299k
             SerializeOutput(s, nOutput);
1351
        // Serialize nLockTime
1352
85.5k
        ::Serialize(s, txTo.nLockTime);
1353
85.5k
    }
1354
};
1355
1356
/** Compute the (single) SHA256 of the concatenation of all prevouts of a tx. */
1357
template <class T>
1358
uint256 GetPrevoutsSHA256(const T& txTo)
1359
86.2k
{
1360
86.2k
    HashWriter ss{};
1361
20.4M
    for (const auto& txin : txTo.vin) {
1362
20.4M
        ss << txin.prevout;
1363
20.4M
    }
1364
86.2k
    return ss.GetSHA256();
1365
86.2k
}
interpreter.cpp:uint256 (anonymous namespace)::GetPrevoutsSHA256<CTransaction>(CTransaction const&)
Line
Count
Source
1359
71.5k
{
1360
71.5k
    HashWriter ss{};
1361
133k
    for (const auto& txin : txTo.vin) {
1362
133k
        ss << txin.prevout;
1363
133k
    }
1364
71.5k
    return ss.GetSHA256();
1365
71.5k
}
interpreter.cpp:uint256 (anonymous namespace)::GetPrevoutsSHA256<CMutableTransaction>(CMutableTransaction const&)
Line
Count
Source
1359
14.6k
{
1360
14.6k
    HashWriter ss{};
1361
20.2M
    for (const auto& txin : txTo.vin) {
1362
20.2M
        ss << txin.prevout;
1363
20.2M
    }
1364
14.6k
    return ss.GetSHA256();
1365
14.6k
}
1366
1367
/** Compute the (single) SHA256 of the concatenation of all nSequences of a tx. */
1368
template <class T>
1369
uint256 GetSequencesSHA256(const T& txTo)
1370
83.2k
{
1371
83.2k
    HashWriter ss{};
1372
6.91M
    for (const auto& txin : txTo.vin) {
1373
6.91M
        ss << txin.nSequence;
1374
6.91M
    }
1375
83.2k
    return ss.GetSHA256();
1376
83.2k
}
interpreter.cpp:uint256 (anonymous namespace)::GetSequencesSHA256<CTransaction>(CTransaction const&)
Line
Count
Source
1370
71.5k
{
1371
71.5k
    HashWriter ss{};
1372
133k
    for (const auto& txin : txTo.vin) {
1373
133k
        ss << txin.nSequence;
1374
133k
    }
1375
71.5k
    return ss.GetSHA256();
1376
71.5k
}
interpreter.cpp:uint256 (anonymous namespace)::GetSequencesSHA256<CMutableTransaction>(CMutableTransaction const&)
Line
Count
Source
1370
11.6k
{
1371
11.6k
    HashWriter ss{};
1372
6.77M
    for (const auto& txin : txTo.vin) {
1373
6.77M
        ss << txin.nSequence;
1374
6.77M
    }
1375
11.6k
    return ss.GetSHA256();
1376
11.6k
}
1377
1378
/** Compute the (single) SHA256 of the concatenation of all txouts of a tx. */
1379
template <class T>
1380
uint256 GetOutputsSHA256(const T& txTo)
1381
84.7k
{
1382
84.7k
    HashWriter ss{};
1383
13.8M
    for (const auto& txout : txTo.vout) {
1384
13.8M
        ss << txout;
1385
13.8M
    }
1386
84.7k
    return ss.GetSHA256();
1387
84.7k
}
interpreter.cpp:uint256 (anonymous namespace)::GetOutputsSHA256<CTransaction>(CTransaction const&)
Line
Count
Source
1381
71.5k
{
1382
71.5k
    HashWriter ss{};
1383
322k
    for (const auto& txout : txTo.vout) {
1384
322k
        ss << txout;
1385
322k
    }
1386
71.5k
    return ss.GetSHA256();
1387
71.5k
}
interpreter.cpp:uint256 (anonymous namespace)::GetOutputsSHA256<CMutableTransaction>(CMutableTransaction const&)
Line
Count
Source
1381
13.2k
{
1382
13.2k
    HashWriter ss{};
1383
13.5M
    for (const auto& txout : txTo.vout) {
1384
13.5M
        ss << txout;
1385
13.5M
    }
1386
13.2k
    return ss.GetSHA256();
1387
13.2k
}
1388
1389
/** Compute the (single) SHA256 of the concatenation of all amounts spent by a tx. */
1390
uint256 GetSpentAmountsSHA256(const std::vector<CTxOut>& outputs_spent)
1391
67.4k
{
1392
67.4k
    HashWriter ss{};
1393
114k
    for (const auto& txout : outputs_spent) {
1394
114k
        ss << txout.nValue;
1395
114k
    }
1396
67.4k
    return ss.GetSHA256();
1397
67.4k
}
1398
1399
/** Compute the (single) SHA256 of the concatenation of all scriptPubKeys spent by a tx. */
1400
uint256 GetSpentScriptsSHA256(const std::vector<CTxOut>& outputs_spent)
1401
67.4k
{
1402
67.4k
    HashWriter ss{};
1403
114k
    for (const auto& txout : outputs_spent) {
1404
114k
        ss << txout.scriptPubKey;
1405
114k
    }
1406
67.4k
    return ss.GetSHA256();
1407
67.4k
}
1408
1409
1410
} // namespace
1411
1412
template <class T>
1413
void PrecomputedTransactionData::Init(const T& txTo, std::vector<CTxOut>&& spent_outputs, bool force)
1414
99.5k
{
1415
99.5k
    assert(!m_spent_outputs_ready);
1416
1417
99.5k
    m_spent_outputs = std::move(spent_outputs);
1418
99.5k
    if (!m_spent_outputs.empty()) {
1419
99.3k
        assert(m_spent_outputs.size() == txTo.vin.size());
1420
99.3k
        m_spent_outputs_ready = true;
1421
99.3k
    }
1422
1423
    // Determine which precomputation-impacting features this transaction uses.
1424
99.5k
    bool uses_bip143_segwit = force;
1425
99.5k
    bool uses_bip341_taproot = force;
1426
221k
    for (size_t inpos = 0; inpos < txTo.vin.size() && !(uses_bip143_segwit && uses_bip341_taproot); ++inpos) {
1427
123k
        if (!txTo.vin[inpos].scriptWitness.IsNull()) {
1428
86.1k
            if (m_spent_outputs_ready && m_spent_outputs[inpos].scriptPubKey.size() == 2 + WITNESS_V1_TAPROOT_SIZE &&
1429
86.1k
                m_spent_outputs[inpos].scriptPubKey[0] == OP_1) {
1430
                // Treat every witness-bearing spend with 34-byte scriptPubKey that starts with OP_1 as a Taproot
1431
                // spend. This only works if spent_outputs was provided as well, but if it wasn't, actual validation
1432
                // will fail anyway. Note that this branch may trigger for scriptPubKeys that aren't actually segwit
1433
                // but in that case validation will fail as SCRIPT_ERR_WITNESS_UNEXPECTED anyway.
1434
61.6k
                uses_bip341_taproot = true;
1435
61.6k
            } else {
1436
                // Treat every spend that's not known to native witness v1 as a Witness v0 spend. This branch may
1437
                // also be taken for unknown witness versions, but it is harmless, and being precise would require
1438
                // P2SH evaluation to find the redeemScript.
1439
24.5k
                uses_bip143_segwit = true;
1440
24.5k
            }
1441
86.1k
        }
1442
123k
        if (uses_bip341_taproot && uses_bip143_segwit) break; // No need to scan further if we already need all.
1443
123k
    }
1444
1445
99.5k
    if (uses_bip143_segwit || uses_bip341_taproot) {
1446
        // Computations shared between both sighash schemes.
1447
73.8k
        m_prevouts_single_hash = GetPrevoutsSHA256(txTo);
1448
73.8k
        m_sequences_single_hash = GetSequencesSHA256(txTo);
1449
73.8k
        m_outputs_single_hash = GetOutputsSHA256(txTo);
1450
73.8k
    }
1451
99.5k
    if (uses_bip143_segwit) {
1452
27.1k
        hashPrevouts = SHA256Uint256(m_prevouts_single_hash);
1453
27.1k
        hashSequence = SHA256Uint256(m_sequences_single_hash);
1454
27.1k
        hashOutputs = SHA256Uint256(m_outputs_single_hash);
1455
27.1k
        m_bip143_segwit_ready = true;
1456
27.1k
    }
1457
99.5k
    if (uses_bip341_taproot && m_spent_outputs_ready) {
1458
67.4k
        m_spent_amounts_single_hash = GetSpentAmountsSHA256(m_spent_outputs);
1459
67.4k
        m_spent_scripts_single_hash = GetSpentScriptsSHA256(m_spent_outputs);
1460
67.4k
        m_bip341_taproot_ready = true;
1461
67.4k
    }
1462
99.5k
}
void PrecomputedTransactionData::Init<CTransaction>(CTransaction const&, std::vector<CTxOut, std::allocator<CTxOut>>&&, bool)
Line
Count
Source
1414
97.2k
{
1415
97.2k
    assert(!m_spent_outputs_ready);
1416
1417
97.2k
    m_spent_outputs = std::move(spent_outputs);
1418
97.2k
    if (!m_spent_outputs.empty()) {
1419
97.0k
        assert(m_spent_outputs.size() == txTo.vin.size());
1420
97.0k
        m_spent_outputs_ready = true;
1421
97.0k
    }
1422
1423
    // Determine which precomputation-impacting features this transaction uses.
1424
97.2k
    bool uses_bip143_segwit = force;
1425
97.2k
    bool uses_bip341_taproot = force;
1426
219k
    for (size_t inpos = 0; inpos < txTo.vin.size() && !(uses_bip143_segwit && uses_bip341_taproot); ++inpos) {
1427
123k
        if (!txTo.vin[inpos].scriptWitness.IsNull()) {
1428
86.1k
            if (m_spent_outputs_ready && m_spent_outputs[inpos].scriptPubKey.size() == 2 + WITNESS_V1_TAPROOT_SIZE &&
1429
86.1k
                m_spent_outputs[inpos].scriptPubKey[0] == OP_1) {
1430
                // Treat every witness-bearing spend with 34-byte scriptPubKey that starts with OP_1 as a Taproot
1431
                // spend. This only works if spent_outputs was provided as well, but if it wasn't, actual validation
1432
                // will fail anyway. Note that this branch may trigger for scriptPubKeys that aren't actually segwit
1433
                // but in that case validation will fail as SCRIPT_ERR_WITNESS_UNEXPECTED anyway.
1434
61.6k
                uses_bip341_taproot = true;
1435
61.6k
            } else {
1436
                // Treat every spend that's not known to native witness v1 as a Witness v0 spend. This branch may
1437
                // also be taken for unknown witness versions, but it is harmless, and being precise would require
1438
                // P2SH evaluation to find the redeemScript.
1439
24.5k
                uses_bip143_segwit = true;
1440
24.5k
            }
1441
86.1k
        }
1442
123k
        if (uses_bip341_taproot && uses_bip143_segwit) break; // No need to scan further if we already need all.
1443
123k
    }
1444
1445
97.2k
    if (uses_bip143_segwit || uses_bip341_taproot) {
1446
        // Computations shared between both sighash schemes.
1447
71.5k
        m_prevouts_single_hash = GetPrevoutsSHA256(txTo);
1448
71.5k
        m_sequences_single_hash = GetSequencesSHA256(txTo);
1449
71.5k
        m_outputs_single_hash = GetOutputsSHA256(txTo);
1450
71.5k
    }
1451
97.2k
    if (uses_bip143_segwit) {
1452
24.8k
        hashPrevouts = SHA256Uint256(m_prevouts_single_hash);
1453
24.8k
        hashSequence = SHA256Uint256(m_sequences_single_hash);
1454
24.8k
        hashOutputs = SHA256Uint256(m_outputs_single_hash);
1455
24.8k
        m_bip143_segwit_ready = true;
1456
24.8k
    }
1457
97.2k
    if (uses_bip341_taproot && m_spent_outputs_ready) {
1458
65.1k
        m_spent_amounts_single_hash = GetSpentAmountsSHA256(m_spent_outputs);
1459
65.1k
        m_spent_scripts_single_hash = GetSpentScriptsSHA256(m_spent_outputs);
1460
65.1k
        m_bip341_taproot_ready = true;
1461
65.1k
    }
1462
97.2k
}
void PrecomputedTransactionData::Init<CMutableTransaction>(CMutableTransaction const&, std::vector<CTxOut, std::allocator<CTxOut>>&&, bool)
Line
Count
Source
1414
2.32k
{
1415
2.32k
    assert(!m_spent_outputs_ready);
1416
1417
2.32k
    m_spent_outputs = std::move(spent_outputs);
1418
2.32k
    if (!m_spent_outputs.empty()) {
1419
2.28k
        assert(m_spent_outputs.size() == txTo.vin.size());
1420
2.28k
        m_spent_outputs_ready = true;
1421
2.28k
    }
1422
1423
    // Determine which precomputation-impacting features this transaction uses.
1424
2.32k
    bool uses_bip143_segwit = force;
1425
2.32k
    bool uses_bip341_taproot = force;
1426
2.33k
    for (size_t inpos = 0; inpos < txTo.vin.size() && !(uses_bip143_segwit && uses_bip341_taproot); ++inpos) {
1427
8
        if (!txTo.vin[inpos].scriptWitness.IsNull()) {
1428
0
            if (m_spent_outputs_ready && m_spent_outputs[inpos].scriptPubKey.size() == 2 + WITNESS_V1_TAPROOT_SIZE &&
1429
0
                m_spent_outputs[inpos].scriptPubKey[0] == OP_1) {
1430
                // Treat every witness-bearing spend with 34-byte scriptPubKey that starts with OP_1 as a Taproot
1431
                // spend. This only works if spent_outputs was provided as well, but if it wasn't, actual validation
1432
                // will fail anyway. Note that this branch may trigger for scriptPubKeys that aren't actually segwit
1433
                // but in that case validation will fail as SCRIPT_ERR_WITNESS_UNEXPECTED anyway.
1434
0
                uses_bip341_taproot = true;
1435
0
            } else {
1436
                // Treat every spend that's not known to native witness v1 as a Witness v0 spend. This branch may
1437
                // also be taken for unknown witness versions, but it is harmless, and being precise would require
1438
                // P2SH evaluation to find the redeemScript.
1439
0
                uses_bip143_segwit = true;
1440
0
            }
1441
0
        }
1442
8
        if (uses_bip341_taproot && uses_bip143_segwit) break; // No need to scan further if we already need all.
1443
8
    }
1444
1445
2.32k
    if (uses_bip143_segwit || uses_bip341_taproot) {
1446
        // Computations shared between both sighash schemes.
1447
2.31k
        m_prevouts_single_hash = GetPrevoutsSHA256(txTo);
1448
2.31k
        m_sequences_single_hash = GetSequencesSHA256(txTo);
1449
2.31k
        m_outputs_single_hash = GetOutputsSHA256(txTo);
1450
2.31k
    }
1451
2.32k
    if (uses_bip143_segwit) {
1452
2.31k
        hashPrevouts = SHA256Uint256(m_prevouts_single_hash);
1453
2.31k
        hashSequence = SHA256Uint256(m_sequences_single_hash);
1454
2.31k
        hashOutputs = SHA256Uint256(m_outputs_single_hash);
1455
2.31k
        m_bip143_segwit_ready = true;
1456
2.31k
    }
1457
2.32k
    if (uses_bip341_taproot && m_spent_outputs_ready) {
1458
2.28k
        m_spent_amounts_single_hash = GetSpentAmountsSHA256(m_spent_outputs);
1459
2.28k
        m_spent_scripts_single_hash = GetSpentScriptsSHA256(m_spent_outputs);
1460
2.28k
        m_bip341_taproot_ready = true;
1461
2.28k
    }
1462
2.32k
}
1463
1464
template <class T>
1465
PrecomputedTransactionData::PrecomputedTransactionData(const T& txTo)
1466
214
{
1467
214
    Init(txTo, {});
1468
214
}
PrecomputedTransactionData::PrecomputedTransactionData<CTransaction>(CTransaction const&)
Line
Count
Source
1466
206
{
1467
206
    Init(txTo, {});
1468
206
}
PrecomputedTransactionData::PrecomputedTransactionData<CMutableTransaction>(CMutableTransaction const&)
Line
Count
Source
1466
8
{
1467
8
    Init(txTo, {});
1468
8
}
1469
1470
// explicit instantiation
1471
template void PrecomputedTransactionData::Init(const CTransaction& txTo, std::vector<CTxOut>&& spent_outputs, bool force);
1472
template void PrecomputedTransactionData::Init(const CMutableTransaction& txTo, std::vector<CTxOut>&& spent_outputs, bool force);
1473
template PrecomputedTransactionData::PrecomputedTransactionData(const CTransaction& txTo);
1474
template PrecomputedTransactionData::PrecomputedTransactionData(const CMutableTransaction& txTo);
1475
1476
const HashWriter HASHER_TAPSIGHASH{TaggedHash("TapSighash")};
1477
const HashWriter HASHER_TAPLEAF{TaggedHash("TapLeaf")};
1478
const HashWriter HASHER_TAPBRANCH{TaggedHash("TapBranch")};
1479
1480
static bool HandleMissingData(MissingDataBehavior mdb)
1481
48
{
1482
48
    switch (mdb) {
1483
0
    case MissingDataBehavior::ASSERT_FAIL:
1484
0
        assert(!"Missing data");
1485
0
        break;
1486
48
    case MissingDataBehavior::FAIL:
1487
48
        return false;
1488
48
    }
1489
48
    assert(!"Unknown MissingDataBehavior value");
1490
0
}
1491
1492
template<typename T>
1493
bool SignatureHashSchnorr(uint256& hash_out, ScriptExecutionData& execdata, const T& tx_to, uint32_t in_pos, uint8_t hash_type, SigVersion sigversion, const PrecomputedTransactionData& cache, MissingDataBehavior mdb)
1494
281k
{
1495
281k
    uint8_t ext_flag, key_version;
1496
281k
    switch (sigversion) {
1497
16.1k
    case SigVersion::TAPROOT:
1498
16.1k
        ext_flag = 0;
1499
        // key_version is not used and left uninitialized.
1500
16.1k
        break;
1501
265k
    case SigVersion::TAPSCRIPT:
1502
265k
        ext_flag = 1;
1503
        // key_version must be 0 for now, representing the current version of
1504
        // 32-byte public keys in the tapscript signature opcode execution.
1505
        // An upgradable public key version (with a size not 32-byte) may
1506
        // request a different key_version with a new sigversion.
1507
265k
        key_version = 0;
1508
265k
        break;
1509
0
    default:
1510
0
        assert(false);
1511
281k
    }
1512
281k
    assert(in_pos < tx_to.vin.size());
1513
281k
    if (!(cache.m_bip341_taproot_ready && cache.m_spent_outputs_ready)) {
1514
0
        return HandleMissingData(mdb);
1515
0
    }
1516
1517
281k
    HashWriter ss{HASHER_TAPSIGHASH};
1518
1519
    // Epoch
1520
281k
    static constexpr uint8_t EPOCH = 0;
1521
281k
    ss << EPOCH;
1522
1523
    // Hash type
1524
281k
    const uint8_t output_type = (hash_type == SIGHASH_DEFAULT) ? SIGHASH_ALL : (hash_type & SIGHASH_OUTPUT_MASK); // Default (no sighash byte) is equivalent to SIGHASH_ALL
1525
281k
    const uint8_t input_type = hash_type & SIGHASH_INPUT_MASK;
1526
281k
    if (!(hash_type <= 0x03 || (hash_type >= 0x81 && hash_type <= 0x83))) return false;
1527
280k
    ss << hash_type;
1528
1529
    // Transaction level data
1530
280k
    ss << tx_to.version;
1531
280k
    ss << tx_to.nLockTime;
1532
280k
    if (input_type != SIGHASH_ANYONECANPAY) {
1533
214k
        ss << cache.m_prevouts_single_hash;
1534
214k
        ss << cache.m_spent_amounts_single_hash;
1535
214k
        ss << cache.m_spent_scripts_single_hash;
1536
214k
        ss << cache.m_sequences_single_hash;
1537
214k
    }
1538
280k
    if (output_type == SIGHASH_ALL) {
1539
190k
        ss << cache.m_outputs_single_hash;
1540
190k
    }
1541
1542
    // Data about the input/prevout being spent
1543
280k
    assert(execdata.m_annex_init);
1544
280k
    const bool have_annex = execdata.m_annex_present;
1545
280k
    const uint8_t spend_type = (ext_flag << 1) + (have_annex ? 1 : 0); // The low bit indicates whether an annex is present.
1546
280k
    ss << spend_type;
1547
280k
    if (input_type == SIGHASH_ANYONECANPAY) {
1548
65.7k
        ss << tx_to.vin[in_pos].prevout;
1549
65.7k
        ss << cache.m_spent_outputs[in_pos];
1550
65.7k
        ss << tx_to.vin[in_pos].nSequence;
1551
214k
    } else {
1552
214k
        ss << in_pos;
1553
214k
    }
1554
280k
    if (have_annex) {
1555
77.4k
        ss << execdata.m_annex_hash;
1556
77.4k
    }
1557
1558
    // Data about the output (if only one).
1559
280k
    if (output_type == SIGHASH_SINGLE) {
1560
39.1k
        if (in_pos >= tx_to.vout.size()) return false;
1561
39.1k
        if (!execdata.m_output_hash) {
1562
1.86k
            HashWriter sha_single_output{};
1563
1.86k
            sha_single_output << tx_to.vout[in_pos];
1564
1.86k
            execdata.m_output_hash = sha_single_output.GetSHA256();
1565
1.86k
        }
1566
39.1k
        ss << execdata.m_output_hash.value();
1567
39.1k
    }
1568
1569
    // Additional data for BIP 342 signatures
1570
280k
    if (sigversion == SigVersion::TAPSCRIPT) {
1571
264k
        assert(execdata.m_tapleaf_hash_init);
1572
264k
        ss << execdata.m_tapleaf_hash;
1573
264k
        ss << key_version;
1574
264k
        assert(execdata.m_codeseparator_pos_init);
1575
264k
        ss << execdata.m_codeseparator_pos;
1576
264k
    }
1577
1578
280k
    hash_out = ss.GetSHA256();
1579
280k
    return true;
1580
280k
}
bool SignatureHashSchnorr<CTransaction>(uint256&, ScriptExecutionData&, CTransaction const&, unsigned int, unsigned char, SigVersion, PrecomputedTransactionData const&, MissingDataBehavior)
Line
Count
Source
1494
277k
{
1495
277k
    uint8_t ext_flag, key_version;
1496
277k
    switch (sigversion) {
1497
14.5k
    case SigVersion::TAPROOT:
1498
14.5k
        ext_flag = 0;
1499
        // key_version is not used and left uninitialized.
1500
14.5k
        break;
1501
263k
    case SigVersion::TAPSCRIPT:
1502
263k
        ext_flag = 1;
1503
        // key_version must be 0 for now, representing the current version of
1504
        // 32-byte public keys in the tapscript signature opcode execution.
1505
        // An upgradable public key version (with a size not 32-byte) may
1506
        // request a different key_version with a new sigversion.
1507
263k
        key_version = 0;
1508
263k
        break;
1509
0
    default:
1510
0
        assert(false);
1511
277k
    }
1512
277k
    assert(in_pos < tx_to.vin.size());
1513
277k
    if (!(cache.m_bip341_taproot_ready && cache.m_spent_outputs_ready)) {
1514
0
        return HandleMissingData(mdb);
1515
0
    }
1516
1517
277k
    HashWriter ss{HASHER_TAPSIGHASH};
1518
1519
    // Epoch
1520
277k
    static constexpr uint8_t EPOCH = 0;
1521
277k
    ss << EPOCH;
1522
1523
    // Hash type
1524
277k
    const uint8_t output_type = (hash_type == SIGHASH_DEFAULT) ? SIGHASH_ALL : (hash_type & SIGHASH_OUTPUT_MASK); // Default (no sighash byte) is equivalent to SIGHASH_ALL
1525
277k
    const uint8_t input_type = hash_type & SIGHASH_INPUT_MASK;
1526
277k
    if (!(hash_type <= 0x03 || (hash_type >= 0x81 && hash_type <= 0x83))) return false;
1527
277k
    ss << hash_type;
1528
1529
    // Transaction level data
1530
277k
    ss << tx_to.version;
1531
277k
    ss << tx_to.nLockTime;
1532
277k
    if (input_type != SIGHASH_ANYONECANPAY) {
1533
211k
        ss << cache.m_prevouts_single_hash;
1534
211k
        ss << cache.m_spent_amounts_single_hash;
1535
211k
        ss << cache.m_spent_scripts_single_hash;
1536
211k
        ss << cache.m_sequences_single_hash;
1537
211k
    }
1538
277k
    if (output_type == SIGHASH_ALL) {
1539
187k
        ss << cache.m_outputs_single_hash;
1540
187k
    }
1541
1542
    // Data about the input/prevout being spent
1543
277k
    assert(execdata.m_annex_init);
1544
277k
    const bool have_annex = execdata.m_annex_present;
1545
277k
    const uint8_t spend_type = (ext_flag << 1) + (have_annex ? 1 : 0); // The low bit indicates whether an annex is present.
1546
277k
    ss << spend_type;
1547
277k
    if (input_type == SIGHASH_ANYONECANPAY) {
1548
65.6k
        ss << tx_to.vin[in_pos].prevout;
1549
65.6k
        ss << cache.m_spent_outputs[in_pos];
1550
65.6k
        ss << tx_to.vin[in_pos].nSequence;
1551
211k
    } else {
1552
211k
        ss << in_pos;
1553
211k
    }
1554
277k
    if (have_annex) {
1555
77.4k
        ss << execdata.m_annex_hash;
1556
77.4k
    }
1557
1558
    // Data about the output (if only one).
1559
277k
    if (output_type == SIGHASH_SINGLE) {
1560
39.1k
        if (in_pos >= tx_to.vout.size()) return false;
1561
39.1k
        if (!execdata.m_output_hash) {
1562
1.85k
            HashWriter sha_single_output{};
1563
1.85k
            sha_single_output << tx_to.vout[in_pos];
1564
1.85k
            execdata.m_output_hash = sha_single_output.GetSHA256();
1565
1.85k
        }
1566
39.1k
        ss << execdata.m_output_hash.value();
1567
39.1k
    }
1568
1569
    // Additional data for BIP 342 signatures
1570
277k
    if (sigversion == SigVersion::TAPSCRIPT) {
1571
263k
        assert(execdata.m_tapleaf_hash_init);
1572
263k
        ss << execdata.m_tapleaf_hash;
1573
263k
        ss << key_version;
1574
263k
        assert(execdata.m_codeseparator_pos_init);
1575
263k
        ss << execdata.m_codeseparator_pos;
1576
263k
    }
1577
1578
277k
    hash_out = ss.GetSHA256();
1579
277k
    return true;
1580
277k
}
bool SignatureHashSchnorr<CMutableTransaction>(uint256&, ScriptExecutionData&, CMutableTransaction const&, unsigned int, unsigned char, SigVersion, PrecomputedTransactionData const&, MissingDataBehavior)
Line
Count
Source
1494
3.34k
{
1495
3.34k
    uint8_t ext_flag, key_version;
1496
3.34k
    switch (sigversion) {
1497
1.68k
    case SigVersion::TAPROOT:
1498
1.68k
        ext_flag = 0;
1499
        // key_version is not used and left uninitialized.
1500
1.68k
        break;
1501
1.65k
    case SigVersion::TAPSCRIPT:
1502
1.65k
        ext_flag = 1;
1503
        // key_version must be 0 for now, representing the current version of
1504
        // 32-byte public keys in the tapscript signature opcode execution.
1505
        // An upgradable public key version (with a size not 32-byte) may
1506
        // request a different key_version with a new sigversion.
1507
1.65k
        key_version = 0;
1508
1.65k
        break;
1509
0
    default:
1510
0
        assert(false);
1511
3.34k
    }
1512
3.34k
    assert(in_pos < tx_to.vin.size());
1513
3.34k
    if (!(cache.m_bip341_taproot_ready && cache.m_spent_outputs_ready)) {
1514
0
        return HandleMissingData(mdb);
1515
0
    }
1516
1517
3.34k
    HashWriter ss{HASHER_TAPSIGHASH};
1518
1519
    // Epoch
1520
3.34k
    static constexpr uint8_t EPOCH = 0;
1521
3.34k
    ss << EPOCH;
1522
1523
    // Hash type
1524
3.34k
    const uint8_t output_type = (hash_type == SIGHASH_DEFAULT) ? SIGHASH_ALL : (hash_type & SIGHASH_OUTPUT_MASK); // Default (no sighash byte) is equivalent to SIGHASH_ALL
1525
3.34k
    const uint8_t input_type = hash_type & SIGHASH_INPUT_MASK;
1526
3.34k
    if (!(hash_type <= 0x03 || (hash_type >= 0x81 && hash_type <= 0x83))) return false;
1527
3.34k
    ss << hash_type;
1528
1529
    // Transaction level data
1530
3.34k
    ss << tx_to.version;
1531
3.34k
    ss << tx_to.nLockTime;
1532
3.34k
    if (input_type != SIGHASH_ANYONECANPAY) {
1533
3.29k
        ss << cache.m_prevouts_single_hash;
1534
3.29k
        ss << cache.m_spent_amounts_single_hash;
1535
3.29k
        ss << cache.m_spent_scripts_single_hash;
1536
3.29k
        ss << cache.m_sequences_single_hash;
1537
3.29k
    }
1538
3.34k
    if (output_type == SIGHASH_ALL) {
1539
3.33k
        ss << cache.m_outputs_single_hash;
1540
3.33k
    }
1541
1542
    // Data about the input/prevout being spent
1543
3.34k
    assert(execdata.m_annex_init);
1544
3.34k
    const bool have_annex = execdata.m_annex_present;
1545
3.34k
    const uint8_t spend_type = (ext_flag << 1) + (have_annex ? 1 : 0); // The low bit indicates whether an annex is present.
1546
3.34k
    ss << spend_type;
1547
3.34k
    if (input_type == SIGHASH_ANYONECANPAY) {
1548
41
        ss << tx_to.vin[in_pos].prevout;
1549
41
        ss << cache.m_spent_outputs[in_pos];
1550
41
        ss << tx_to.vin[in_pos].nSequence;
1551
3.29k
    } else {
1552
3.29k
        ss << in_pos;
1553
3.29k
    }
1554
3.34k
    if (have_annex) {
1555
0
        ss << execdata.m_annex_hash;
1556
0
    }
1557
1558
    // Data about the output (if only one).
1559
3.34k
    if (output_type == SIGHASH_SINGLE) {
1560
4
        if (in_pos >= tx_to.vout.size()) return false;
1561
4
        if (!execdata.m_output_hash) {
1562
4
            HashWriter sha_single_output{};
1563
4
            sha_single_output << tx_to.vout[in_pos];
1564
4
            execdata.m_output_hash = sha_single_output.GetSHA256();
1565
4
        }
1566
4
        ss << execdata.m_output_hash.value();
1567
4
    }
1568
1569
    // Additional data for BIP 342 signatures
1570
3.34k
    if (sigversion == SigVersion::TAPSCRIPT) {
1571
1.65k
        assert(execdata.m_tapleaf_hash_init);
1572
1.65k
        ss << execdata.m_tapleaf_hash;
1573
1.65k
        ss << key_version;
1574
1.65k
        assert(execdata.m_codeseparator_pos_init);
1575
1.65k
        ss << execdata.m_codeseparator_pos;
1576
1.65k
    }
1577
1578
3.34k
    hash_out = ss.GetSHA256();
1579
3.34k
    return true;
1580
3.34k
}
1581
1582
int SigHashCache::CacheIndex(int32_t hash_type) const noexcept
1583
327k
{
1584
    // Note that we do not distinguish between BASE and WITNESS_V0 to determine the cache index,
1585
    // because no input can simultaneously use both.
1586
327k
    return 3 * !!(hash_type & SIGHASH_ANYONECANPAY) +
1587
327k
           2 * ((hash_type & 0x1f) == SIGHASH_SINGLE) +
1588
327k
           1 * ((hash_type & 0x1f) == SIGHASH_NONE);
1589
327k
}
1590
1591
bool SigHashCache::Load(int32_t hash_type, const CScript& script_code, HashWriter& writer) const noexcept
1592
192k
{
1593
192k
    auto& entry = m_cache_entries[CacheIndex(hash_type)];
1594
192k
    if (entry.has_value()) {
1595
57.8k
        if (script_code == entry->first) {
1596
57.0k
            writer = HashWriter(entry->second);
1597
57.0k
            return true;
1598
57.0k
        }
1599
57.8k
    }
1600
135k
    return false;
1601
192k
}
1602
1603
void SigHashCache::Store(int32_t hash_type, const CScript& script_code, const HashWriter& writer) noexcept
1604
135k
{
1605
135k
    auto& entry = m_cache_entries[CacheIndex(hash_type)];
1606
135k
    entry.emplace(script_code, writer);
1607
135k
}
1608
1609
template <class T>
1610
uint256 SignatureHash(const CScript& scriptCode, const T& txTo, unsigned int nIn, int32_t nHashType, const CAmount& amount, SigVersion sigversion, const PrecomputedTransactionData* cache, SigHashCache* sighash_cache)
1611
261k
{
1612
261k
    assert(nIn < txTo.vin.size());
1613
1614
261k
    if (sigversion != SigVersion::WITNESS_V0) {
1615
        // Check for invalid use of SIGHASH_SINGLE
1616
179k
        if ((nHashType & 0x1f) == SIGHASH_SINGLE) {
1617
5.30k
            if (nIn >= txTo.vout.size()) {
1618
                //  nOut out of range
1619
772
                return uint256::ONE;
1620
772
            }
1621
5.30k
        }
1622
179k
    }
1623
1624
260k
    HashWriter ss{};
1625
1626
    // Try to compute using cached SHA256 midstate.
1627
260k
    if (sighash_cache && sighash_cache->Load(nHashType, scriptCode, ss)) {
1628
        // Add sighash type and hash.
1629
56.9k
        ss << nHashType;
1630
56.9k
        return ss.GetHash();
1631
56.9k
    }
1632
1633
204k
    if (sigversion == SigVersion::WITNESS_V0) {
1634
77.2k
        uint256 hashPrevouts;
1635
77.2k
        uint256 hashSequence;
1636
77.2k
        uint256 hashOutputs;
1637
77.2k
        const bool cacheready = cache && cache->m_bip143_segwit_ready;
1638
1639
77.2k
        if (!(nHashType & SIGHASH_ANYONECANPAY)) {
1640
65.0k
            hashPrevouts = cacheready ? cache->hashPrevouts : SHA256Uint256(GetPrevoutsSHA256(txTo));
1641
65.0k
        }
1642
1643
77.2k
        if (!(nHashType & SIGHASH_ANYONECANPAY) && (nHashType & 0x1f) != SIGHASH_SINGLE && (nHashType & 0x1f) != SIGHASH_NONE) {
1644
58.0k
            hashSequence = cacheready ? cache->hashSequence : SHA256Uint256(GetSequencesSHA256(txTo));
1645
58.0k
        }
1646
1647
77.2k
        if ((nHashType & 0x1f) != SIGHASH_SINGLE && (nHashType & 0x1f) != SIGHASH_NONE) {
1648
63.2k
            hashOutputs = cacheready ? cache->hashOutputs : SHA256Uint256(GetOutputsSHA256(txTo));
1649
63.2k
        } else if ((nHashType & 0x1f) == SIGHASH_SINGLE && nIn < txTo.vout.size()) {
1650
6.57k
            HashWriter inner_ss{};
1651
6.57k
            inner_ss << txTo.vout[nIn];
1652
6.57k
            hashOutputs = inner_ss.GetHash();
1653
6.57k
        }
1654
1655
        // Version
1656
77.2k
        ss << txTo.version;
1657
        // Input prevouts/nSequence (none/all, depending on flags)
1658
77.2k
        ss << hashPrevouts;
1659
77.2k
        ss << hashSequence;
1660
        // The input being signed (replacing the scriptSig with scriptCode + amount)
1661
        // The prevout may already be contained in hashPrevout, and the nSequence
1662
        // may already be contain in hashSequence.
1663
77.2k
        ss << txTo.vin[nIn].prevout;
1664
77.2k
        ss << scriptCode;
1665
77.2k
        ss << amount;
1666
77.2k
        ss << txTo.vin[nIn].nSequence;
1667
        // Outputs (none/one/all, depending on flags)
1668
77.2k
        ss << hashOutputs;
1669
        // Locktime
1670
77.2k
        ss << txTo.nLockTime;
1671
126k
    } else {
1672
        // Wrapper to serialize only the necessary parts of the transaction being signed
1673
126k
        CTransactionSignatureSerializer<T> txTmp(txTo, scriptCode, nIn, nHashType);
1674
1675
        // Serialize
1676
126k
        ss << txTmp;
1677
126k
    }
1678
1679
    // If a cache object was provided, store the midstate there.
1680
204k
    if (sighash_cache != nullptr) {
1681
135k
        sighash_cache->Store(nHashType, scriptCode, ss);
1682
135k
    }
1683
1684
    // Add sighash type and hash.
1685
204k
    ss << nHashType;
1686
204k
    return ss.GetHash();
1687
260k
}
uint256 SignatureHash<CTransaction>(CScript const&, CTransaction const&, unsigned int, int, long const&, SigVersion, PrecomputedTransactionData const*, SigHashCache*)
Line
Count
Source
1611
139k
{
1612
139k
    assert(nIn < txTo.vin.size());
1613
1614
139k
    if (sigversion != SigVersion::WITNESS_V0) {
1615
        // Check for invalid use of SIGHASH_SINGLE
1616
89.0k
        if ((nHashType & 0x1f) == SIGHASH_SINGLE) {
1617
3.64k
            if (nIn >= txTo.vout.size()) {
1618
                //  nOut out of range
1619
732
                return uint256::ONE;
1620
732
            }
1621
3.64k
        }
1622
89.0k
    }
1623
1624
138k
    HashWriter ss{};
1625
1626
    // Try to compute using cached SHA256 midstate.
1627
138k
    if (sighash_cache && sighash_cache->Load(nHashType, scriptCode, ss)) {
1628
        // Add sighash type and hash.
1629
50.5k
        ss << nHashType;
1630
50.5k
        return ss.GetHash();
1631
50.5k
    }
1632
1633
87.8k
    if (sigversion == SigVersion::WITNESS_V0) {
1634
46.6k
        uint256 hashPrevouts;
1635
46.6k
        uint256 hashSequence;
1636
46.6k
        uint256 hashOutputs;
1637
46.6k
        const bool cacheready = cache && cache->m_bip143_segwit_ready;
1638
1639
46.6k
        if (!(nHashType & SIGHASH_ANYONECANPAY)) {
1640
38.9k
            hashPrevouts = cacheready ? cache->hashPrevouts : SHA256Uint256(GetPrevoutsSHA256(txTo));
1641
38.9k
        }
1642
1643
46.6k
        if (!(nHashType & SIGHASH_ANYONECANPAY) && (nHashType & 0x1f) != SIGHASH_SINGLE && (nHashType & 0x1f) != SIGHASH_NONE) {
1644
35.0k
            hashSequence = cacheready ? cache->hashSequence : SHA256Uint256(GetSequencesSHA256(txTo));
1645
35.0k
        }
1646
1647
46.6k
        if ((nHashType & 0x1f) != SIGHASH_SINGLE && (nHashType & 0x1f) != SIGHASH_NONE) {
1648
38.6k
            hashOutputs = cacheready ? cache->hashOutputs : SHA256Uint256(GetOutputsSHA256(txTo));
1649
38.6k
        } else if ((nHashType & 0x1f) == SIGHASH_SINGLE && nIn < txTo.vout.size()) {
1650
3.57k
            HashWriter inner_ss{};
1651
3.57k
            inner_ss << txTo.vout[nIn];
1652
3.57k
            hashOutputs = inner_ss.GetHash();
1653
3.57k
        }
1654
1655
        // Version
1656
46.6k
        ss << txTo.version;
1657
        // Input prevouts/nSequence (none/all, depending on flags)
1658
46.6k
        ss << hashPrevouts;
1659
46.6k
        ss << hashSequence;
1660
        // The input being signed (replacing the scriptSig with scriptCode + amount)
1661
        // The prevout may already be contained in hashPrevout, and the nSequence
1662
        // may already be contain in hashSequence.
1663
46.6k
        ss << txTo.vin[nIn].prevout;
1664
46.6k
        ss << scriptCode;
1665
46.6k
        ss << amount;
1666
46.6k
        ss << txTo.vin[nIn].nSequence;
1667
        // Outputs (none/one/all, depending on flags)
1668
46.6k
        ss << hashOutputs;
1669
        // Locktime
1670
46.6k
        ss << txTo.nLockTime;
1671
46.6k
    } else {
1672
        // Wrapper to serialize only the necessary parts of the transaction being signed
1673
41.2k
        CTransactionSignatureSerializer<T> txTmp(txTo, scriptCode, nIn, nHashType);
1674
1675
        // Serialize
1676
41.2k
        ss << txTmp;
1677
41.2k
    }
1678
1679
    // If a cache object was provided, store the midstate there.
1680
87.8k
    if (sighash_cache != nullptr) {
1681
87.3k
        sighash_cache->Store(nHashType, scriptCode, ss);
1682
87.3k
    }
1683
1684
    // Add sighash type and hash.
1685
87.8k
    ss << nHashType;
1686
87.8k
    return ss.GetHash();
1687
138k
}
uint256 SignatureHash<CMutableTransaction>(CScript const&, CMutableTransaction const&, unsigned int, int, long const&, SigVersion, PrecomputedTransactionData const*, SigHashCache*)
Line
Count
Source
1611
122k
{
1612
122k
    assert(nIn < txTo.vin.size());
1613
1614
122k
    if (sigversion != SigVersion::WITNESS_V0) {
1615
        // Check for invalid use of SIGHASH_SINGLE
1616
90.2k
        if ((nHashType & 0x1f) == SIGHASH_SINGLE) {
1617
1.65k
            if (nIn >= txTo.vout.size()) {
1618
                //  nOut out of range
1619
40
                return uint256::ONE;
1620
40
            }
1621
1.65k
        }
1622
90.2k
    }
1623
1624
122k
    HashWriter ss{};
1625
1626
    // Try to compute using cached SHA256 midstate.
1627
122k
    if (sighash_cache && sighash_cache->Load(nHashType, scriptCode, ss)) {
1628
        // Add sighash type and hash.
1629
6.37k
        ss << nHashType;
1630
6.37k
        return ss.GetHash();
1631
6.37k
    }
1632
1633
116k
    if (sigversion == SigVersion::WITNESS_V0) {
1634
30.6k
        uint256 hashPrevouts;
1635
30.6k
        uint256 hashSequence;
1636
30.6k
        uint256 hashOutputs;
1637
30.6k
        const bool cacheready = cache && cache->m_bip143_segwit_ready;
1638
1639
30.6k
        if (!(nHashType & SIGHASH_ANYONECANPAY)) {
1640
26.0k
            hashPrevouts = cacheready ? cache->hashPrevouts : SHA256Uint256(GetPrevoutsSHA256(txTo));
1641
26.0k
        }
1642
1643
30.6k
        if (!(nHashType & SIGHASH_ANYONECANPAY) && (nHashType & 0x1f) != SIGHASH_SINGLE && (nHashType & 0x1f) != SIGHASH_NONE) {
1644
23.0k
            hashSequence = cacheready ? cache->hashSequence : SHA256Uint256(GetSequencesSHA256(txTo));
1645
23.0k
        }
1646
1647
30.6k
        if ((nHashType & 0x1f) != SIGHASH_SINGLE && (nHashType & 0x1f) != SIGHASH_NONE) {
1648
24.6k
            hashOutputs = cacheready ? cache->hashOutputs : SHA256Uint256(GetOutputsSHA256(txTo));
1649
24.6k
        } else if ((nHashType & 0x1f) == SIGHASH_SINGLE && nIn < txTo.vout.size()) {
1650
3.00k
            HashWriter inner_ss{};
1651
3.00k
            inner_ss << txTo.vout[nIn];
1652
3.00k
            hashOutputs = inner_ss.GetHash();
1653
3.00k
        }
1654
1655
        // Version
1656
30.6k
        ss << txTo.version;
1657
        // Input prevouts/nSequence (none/all, depending on flags)
1658
30.6k
        ss << hashPrevouts;
1659
30.6k
        ss << hashSequence;
1660
        // The input being signed (replacing the scriptSig with scriptCode + amount)
1661
        // The prevout may already be contained in hashPrevout, and the nSequence
1662
        // may already be contain in hashSequence.
1663
30.6k
        ss << txTo.vin[nIn].prevout;
1664
30.6k
        ss << scriptCode;
1665
30.6k
        ss << amount;
1666
30.6k
        ss << txTo.vin[nIn].nSequence;
1667
        // Outputs (none/one/all, depending on flags)
1668
30.6k
        ss << hashOutputs;
1669
        // Locktime
1670
30.6k
        ss << txTo.nLockTime;
1671
85.5k
    } else {
1672
        // Wrapper to serialize only the necessary parts of the transaction being signed
1673
85.5k
        CTransactionSignatureSerializer<T> txTmp(txTo, scriptCode, nIn, nHashType);
1674
1675
        // Serialize
1676
85.5k
        ss << txTmp;
1677
85.5k
    }
1678
1679
    // If a cache object was provided, store the midstate there.
1680
116k
    if (sighash_cache != nullptr) {
1681
47.9k
        sighash_cache->Store(nHashType, scriptCode, ss);
1682
47.9k
    }
1683
1684
    // Add sighash type and hash.
1685
116k
    ss << nHashType;
1686
116k
    return ss.GetHash();
1687
122k
}
1688
1689
template <class T>
1690
bool GenericTransactionSignatureChecker<T>::VerifyECDSASignature(const std::vector<unsigned char>& vchSig, const CPubKey& pubkey, const uint256& sighash) const
1691
126k
{
1692
126k
    return pubkey.Verify(sighash, vchSig);
1693
126k
}
GenericTransactionSignatureChecker<CTransaction>::VerifyECDSASignature(std::vector<unsigned char, std::allocator<unsigned char>> const&, CPubKey const&, uint256 const&) const
Line
Count
Source
1691
72.3k
{
1692
72.3k
    return pubkey.Verify(sighash, vchSig);
1693
72.3k
}
GenericTransactionSignatureChecker<CMutableTransaction>::VerifyECDSASignature(std::vector<unsigned char, std::allocator<unsigned char>> const&, CPubKey const&, uint256 const&) const
Line
Count
Source
1691
54.0k
{
1692
54.0k
    return pubkey.Verify(sighash, vchSig);
1693
54.0k
}
1694
1695
template <class T>
1696
bool GenericTransactionSignatureChecker<T>::VerifySchnorrSignature(std::span<const unsigned char> sig, const XOnlyPubKey& pubkey, const uint256& sighash) const
1697
27.3k
{
1698
27.3k
    return pubkey.VerifySchnorr(sighash, sig);
1699
27.3k
}
GenericTransactionSignatureChecker<CTransaction>::VerifySchnorrSignature(std::span<unsigned char const, 18446744073709551615ul>, XOnlyPubKey const&, uint256 const&) const
Line
Count
Source
1697
25.6k
{
1698
25.6k
    return pubkey.VerifySchnorr(sighash, sig);
1699
25.6k
}
GenericTransactionSignatureChecker<CMutableTransaction>::VerifySchnorrSignature(std::span<unsigned char const, 18446744073709551615ul>, XOnlyPubKey const&, uint256 const&) const
Line
Count
Source
1697
1.75k
{
1698
1.75k
    return pubkey.VerifySchnorr(sighash, sig);
1699
1.75k
}
1700
1701
template <class T>
1702
bool GenericTransactionSignatureChecker<T>::CheckECDSASignature(const std::vector<unsigned char>& vchSigIn, const std::vector<unsigned char>& vchPubKey, const CScript& scriptCode, SigVersion sigversion) const
1703
216k
{
1704
216k
    CPubKey pubkey(vchPubKey);
1705
216k
    if (!pubkey.IsValid())
1706
3.61k
        return false;
1707
1708
    // Hash type is one byte tacked on to the end of the signature
1709
212k
    std::vector<unsigned char> vchSig(vchSigIn);
1710
212k
    if (vchSig.empty())
1711
19.9k
        return false;
1712
192k
    int nHashType = vchSig.back();
1713
192k
    vchSig.pop_back();
1714
1715
    // Witness sighashes need the amount.
1716
192k
    if (sigversion == SigVersion::WITNESS_V0 && amount < 0) return HandleMissingData(m_mdb);
1717
1718
192k
    uint256 sighash = SignatureHash(scriptCode, *txTo, nIn, nHashType, amount, sigversion, this->txdata, &m_sighash_cache);
1719
1720
192k
    if (!VerifyECDSASignature(vchSig, pubkey, sighash))
1721
10.7k
        return false;
1722
1723
181k
    return true;
1724
192k
}
GenericTransactionSignatureChecker<CTransaction>::CheckECDSASignature(std::vector<unsigned char, std::allocator<unsigned char>> const&, std::vector<unsigned char, std::allocator<unsigned char>> const&, CScript const&, SigVersion) const
Line
Count
Source
1703
151k
{
1704
151k
    CPubKey pubkey(vchPubKey);
1705
151k
    if (!pubkey.IsValid())
1706
88
        return false;
1707
1708
    // Hash type is one byte tacked on to the end of the signature
1709
151k
    std::vector<unsigned char> vchSig(vchSigIn);
1710
151k
    if (vchSig.empty())
1711
12.9k
        return false;
1712
138k
    int nHashType = vchSig.back();
1713
138k
    vchSig.pop_back();
1714
1715
    // Witness sighashes need the amount.
1716
138k
    if (sigversion == SigVersion::WITNESS_V0 && amount < 0) return HandleMissingData(m_mdb);
1717
1718
138k
    uint256 sighash = SignatureHash(scriptCode, *txTo, nIn, nHashType, amount, sigversion, this->txdata, &m_sighash_cache);
1719
1720
138k
    if (!VerifyECDSASignature(vchSig, pubkey, sighash))
1721
2.01k
        return false;
1722
1723
136k
    return true;
1724
138k
}
GenericTransactionSignatureChecker<CMutableTransaction>::CheckECDSASignature(std::vector<unsigned char, std::allocator<unsigned char>> const&, std::vector<unsigned char, std::allocator<unsigned char>> const&, CScript const&, SigVersion) const
Line
Count
Source
1703
64.6k
{
1704
64.6k
    CPubKey pubkey(vchPubKey);
1705
64.6k
    if (!pubkey.IsValid())
1706
3.53k
        return false;
1707
1708
    // Hash type is one byte tacked on to the end of the signature
1709
61.0k
    std::vector<unsigned char> vchSig(vchSigIn);
1710
61.0k
    if (vchSig.empty())
1711
7.02k
        return false;
1712
54.0k
    int nHashType = vchSig.back();
1713
54.0k
    vchSig.pop_back();
1714
1715
    // Witness sighashes need the amount.
1716
54.0k
    if (sigversion == SigVersion::WITNESS_V0 && amount < 0) return HandleMissingData(m_mdb);
1717
1718
54.0k
    uint256 sighash = SignatureHash(scriptCode, *txTo, nIn, nHashType, amount, sigversion, this->txdata, &m_sighash_cache);
1719
1720
54.0k
    if (!VerifyECDSASignature(vchSig, pubkey, sighash))
1721
8.71k
        return false;
1722
1723
45.3k
    return true;
1724
54.0k
}
1725
1726
template <class T>
1727
bool GenericTransactionSignatureChecker<T>::CheckSchnorrSignature(std::span<const unsigned char> sig, std::span<const unsigned char> pubkey_in, SigVersion sigversion, ScriptExecutionData& execdata, ScriptError* serror) const
1728
279k
{
1729
279k
    assert(sigversion == SigVersion::TAPROOT || sigversion == SigVersion::TAPSCRIPT);
1730
    // Schnorr signatures have 32-byte public keys. The caller is responsible for enforcing this.
1731
279k
    assert(pubkey_in.size() == 32);
1732
    // Note that in Tapscript evaluation, empty signatures are treated specially (invalid signature that does not
1733
    // abort script execution). This is implemented in EvalChecksigTapscript, which won't invoke
1734
    // CheckSchnorrSignature in that case. In other contexts, they are invalid like every other signature with
1735
    // size different from 64 or 65.
1736
279k
    if (sig.size() != 64 && sig.size() != 65) return set_error(serror, SCRIPT_ERR_SCHNORR_SIG_SIZE);
1737
1738
279k
    XOnlyPubKey pubkey{pubkey_in};
1739
1740
279k
    uint8_t hashtype = SIGHASH_DEFAULT;
1741
279k
    if (sig.size() == 65) {
1742
190k
        hashtype = SpanPopBack(sig);
1743
190k
        if (hashtype == SIGHASH_DEFAULT) return set_error(serror, SCRIPT_ERR_SCHNORR_SIG_HASHTYPE);
1744
190k
    }
1745
279k
    uint256 sighash;
1746
279k
    if (!this->txdata) return HandleMissingData(m_mdb);
1747
279k
    if (!SignatureHashSchnorr(sighash, execdata, *txTo, nIn, hashtype, sigversion, *this->txdata, m_mdb)) {
1748
720
        return set_error(serror, SCRIPT_ERR_SCHNORR_SIG_HASHTYPE);
1749
720
    }
1750
278k
    if (!VerifySchnorrSignature(sig, pubkey, sighash)) return set_error(serror, SCRIPT_ERR_SCHNORR_SIG);
1751
273k
    return true;
1752
278k
}
GenericTransactionSignatureChecker<CTransaction>::CheckSchnorrSignature(std::span<unsigned char const, 18446744073709551615ul>, std::span<unsigned char const, 18446744073709551615ul>, SigVersion, ScriptExecutionData&, ScriptError_t*) const
Line
Count
Source
1728
278k
{
1729
278k
    assert(sigversion == SigVersion::TAPROOT || sigversion == SigVersion::TAPSCRIPT);
1730
    // Schnorr signatures have 32-byte public keys. The caller is responsible for enforcing this.
1731
278k
    assert(pubkey_in.size() == 32);
1732
    // Note that in Tapscript evaluation, empty signatures are treated specially (invalid signature that does not
1733
    // abort script execution). This is implemented in EvalChecksigTapscript, which won't invoke
1734
    // CheckSchnorrSignature in that case. In other contexts, they are invalid like every other signature with
1735
    // size different from 64 or 65.
1736
278k
    if (sig.size() != 64 && sig.size() != 65) return set_error(serror, SCRIPT_ERR_SCHNORR_SIG_SIZE);
1737
1738
277k
    XOnlyPubKey pubkey{pubkey_in};
1739
1740
277k
    uint8_t hashtype = SIGHASH_DEFAULT;
1741
277k
    if (sig.size() == 65) {
1742
190k
        hashtype = SpanPopBack(sig);
1743
190k
        if (hashtype == SIGHASH_DEFAULT) return set_error(serror, SCRIPT_ERR_SCHNORR_SIG_HASHTYPE);
1744
190k
    }
1745
277k
    uint256 sighash;
1746
277k
    if (!this->txdata) return HandleMissingData(m_mdb);
1747
277k
    if (!SignatureHashSchnorr(sighash, execdata, *txTo, nIn, hashtype, sigversion, *this->txdata, m_mdb)) {
1748
720
        return set_error(serror, SCRIPT_ERR_SCHNORR_SIG_HASHTYPE);
1749
720
    }
1750
277k
    if (!VerifySchnorrSignature(sig, pubkey, sighash)) return set_error(serror, SCRIPT_ERR_SCHNORR_SIG);
1751
271k
    return true;
1752
277k
}
GenericTransactionSignatureChecker<CMutableTransaction>::CheckSchnorrSignature(std::span<unsigned char const, 18446744073709551615ul>, std::span<unsigned char const, 18446744073709551615ul>, SigVersion, ScriptExecutionData&, ScriptError_t*) const
Line
Count
Source
1728
1.79k
{
1729
1.79k
    assert(sigversion == SigVersion::TAPROOT || sigversion == SigVersion::TAPSCRIPT);
1730
    // Schnorr signatures have 32-byte public keys. The caller is responsible for enforcing this.
1731
1.79k
    assert(pubkey_in.size() == 32);
1732
    // Note that in Tapscript evaluation, empty signatures are treated specially (invalid signature that does not
1733
    // abort script execution). This is implemented in EvalChecksigTapscript, which won't invoke
1734
    // CheckSchnorrSignature in that case. In other contexts, they are invalid like every other signature with
1735
    // size different from 64 or 65.
1736
1.79k
    if (sig.size() != 64 && sig.size() != 65) return set_error(serror, SCRIPT_ERR_SCHNORR_SIG_SIZE);
1737
1738
1.79k
    XOnlyPubKey pubkey{pubkey_in};
1739
1740
1.79k
    uint8_t hashtype = SIGHASH_DEFAULT;
1741
1.79k
    if (sig.size() == 65) {
1742
29
        hashtype = SpanPopBack(sig);
1743
29
        if (hashtype == SIGHASH_DEFAULT) return set_error(serror, SCRIPT_ERR_SCHNORR_SIG_HASHTYPE);
1744
29
    }
1745
1.79k
    uint256 sighash;
1746
1.79k
    if (!this->txdata) return HandleMissingData(m_mdb);
1747
1.75k
    if (!SignatureHashSchnorr(sighash, execdata, *txTo, nIn, hashtype, sigversion, *this->txdata, m_mdb)) {
1748
0
        return set_error(serror, SCRIPT_ERR_SCHNORR_SIG_HASHTYPE);
1749
0
    }
1750
1.75k
    if (!VerifySchnorrSignature(sig, pubkey, sighash)) return set_error(serror, SCRIPT_ERR_SCHNORR_SIG);
1751
1.74k
    return true;
1752
1.75k
}
1753
1754
template <class T>
1755
bool GenericTransactionSignatureChecker<T>::CheckLockTime(const CScriptNum& nLockTime) const
1756
7.74k
{
1757
    // There are two kinds of nLockTime: lock-by-blockheight
1758
    // and lock-by-blocktime, distinguished by whether
1759
    // nLockTime < LOCKTIME_THRESHOLD.
1760
    //
1761
    // We want to compare apples to apples, so fail the script
1762
    // unless the type of nLockTime being tested is the same as
1763
    // the nLockTime in the transaction.
1764
7.74k
    if (!(
1765
7.74k
        (txTo->nLockTime <  LOCKTIME_THRESHOLD && nLockTime <  LOCKTIME_THRESHOLD) ||
1766
7.74k
        (txTo->nLockTime >= LOCKTIME_THRESHOLD && nLockTime >= LOCKTIME_THRESHOLD)
1767
7.74k
    ))
1768
437
        return false;
1769
1770
    // Now that we know we're comparing apples-to-apples, the
1771
    // comparison is a simple numeric one.
1772
7.31k
    if (nLockTime > (int64_t)txTo->nLockTime)
1773
5.73k
        return false;
1774
1775
    // Finally the nLockTime feature can be disabled in IsFinalTx()
1776
    // and thus CHECKLOCKTIMEVERIFY bypassed if every txin has
1777
    // been finalized by setting nSequence to maxint. The
1778
    // transaction would be allowed into the blockchain, making
1779
    // the opcode ineffective.
1780
    //
1781
    // Testing if this vin is not final is sufficient to
1782
    // prevent this condition. Alternatively we could test all
1783
    // inputs, but testing just this input minimizes the data
1784
    // required to prove correct CHECKLOCKTIMEVERIFY execution.
1785
1.57k
    if (CTxIn::SEQUENCE_FINAL == txTo->vin[nIn].nSequence)
1786
269
        return false;
1787
1788
1.30k
    return true;
1789
1.57k
}
GenericTransactionSignatureChecker<CTransaction>::CheckLockTime(CScriptNum const&) const
Line
Count
Source
1756
6.09k
{
1757
    // There are two kinds of nLockTime: lock-by-blockheight
1758
    // and lock-by-blocktime, distinguished by whether
1759
    // nLockTime < LOCKTIME_THRESHOLD.
1760
    //
1761
    // We want to compare apples to apples, so fail the script
1762
    // unless the type of nLockTime being tested is the same as
1763
    // the nLockTime in the transaction.
1764
6.09k
    if (!(
1765
6.09k
        (txTo->nLockTime <  LOCKTIME_THRESHOLD && nLockTime <  LOCKTIME_THRESHOLD) ||
1766
6.09k
        (txTo->nLockTime >= LOCKTIME_THRESHOLD && nLockTime >= LOCKTIME_THRESHOLD)
1767
6.09k
    ))
1768
182
        return false;
1769
1770
    // Now that we know we're comparing apples-to-apples, the
1771
    // comparison is a simple numeric one.
1772
5.90k
    if (nLockTime > (int64_t)txTo->nLockTime)
1773
5.38k
        return false;
1774
1775
    // Finally the nLockTime feature can be disabled in IsFinalTx()
1776
    // and thus CHECKLOCKTIMEVERIFY bypassed if every txin has
1777
    // been finalized by setting nSequence to maxint. The
1778
    // transaction would be allowed into the blockchain, making
1779
    // the opcode ineffective.
1780
    //
1781
    // Testing if this vin is not final is sufficient to
1782
    // prevent this condition. Alternatively we could test all
1783
    // inputs, but testing just this input minimizes the data
1784
    // required to prove correct CHECKLOCKTIMEVERIFY execution.
1785
522
    if (CTxIn::SEQUENCE_FINAL == txTo->vin[nIn].nSequence)
1786
95
        return false;
1787
1788
427
    return true;
1789
522
}
GenericTransactionSignatureChecker<CMutableTransaction>::CheckLockTime(CScriptNum const&) const
Line
Count
Source
1756
1.65k
{
1757
    // There are two kinds of nLockTime: lock-by-blockheight
1758
    // and lock-by-blocktime, distinguished by whether
1759
    // nLockTime < LOCKTIME_THRESHOLD.
1760
    //
1761
    // We want to compare apples to apples, so fail the script
1762
    // unless the type of nLockTime being tested is the same as
1763
    // the nLockTime in the transaction.
1764
1.65k
    if (!(
1765
1.65k
        (txTo->nLockTime <  LOCKTIME_THRESHOLD && nLockTime <  LOCKTIME_THRESHOLD) ||
1766
1.65k
        (txTo->nLockTime >= LOCKTIME_THRESHOLD && nLockTime >= LOCKTIME_THRESHOLD)
1767
1.65k
    ))
1768
255
        return false;
1769
1770
    // Now that we know we're comparing apples-to-apples, the
1771
    // comparison is a simple numeric one.
1772
1.40k
    if (nLockTime > (int64_t)txTo->nLockTime)
1773
348
        return false;
1774
1775
    // Finally the nLockTime feature can be disabled in IsFinalTx()
1776
    // and thus CHECKLOCKTIMEVERIFY bypassed if every txin has
1777
    // been finalized by setting nSequence to maxint. The
1778
    // transaction would be allowed into the blockchain, making
1779
    // the opcode ineffective.
1780
    //
1781
    // Testing if this vin is not final is sufficient to
1782
    // prevent this condition. Alternatively we could test all
1783
    // inputs, but testing just this input minimizes the data
1784
    // required to prove correct CHECKLOCKTIMEVERIFY execution.
1785
1.05k
    if (CTxIn::SEQUENCE_FINAL == txTo->vin[nIn].nSequence)
1786
174
        return false;
1787
1788
880
    return true;
1789
1.05k
}
1790
1791
template <class T>
1792
bool GenericTransactionSignatureChecker<T>::CheckSequence(const CScriptNum& nSequence) const
1793
6.59k
{
1794
    // Relative lock times are supported by comparing the passed
1795
    // in operand to the sequence number of the input.
1796
6.59k
    const int64_t txToSequence = (int64_t)txTo->vin[nIn].nSequence;
1797
1798
    // Fail if the transaction's version number is not set high
1799
    // enough to trigger BIP 68 rules.
1800
6.59k
    if (txTo->version < 2)
1801
493
        return false;
1802
1803
    // Sequence numbers with their most significant bit set are not
1804
    // consensus constrained. Testing that the transaction's sequence
1805
    // number do not have this bit set prevents using this property
1806
    // to get around a CHECKSEQUENCEVERIFY check.
1807
6.09k
    if (txToSequence & CTxIn::SEQUENCE_LOCKTIME_DISABLE_FLAG)
1808
39
        return false;
1809
1810
    // Mask off any bits that do not have consensus-enforced meaning
1811
    // before doing the integer comparisons
1812
6.05k
    const uint32_t nLockTimeMask = CTxIn::SEQUENCE_LOCKTIME_TYPE_FLAG | CTxIn::SEQUENCE_LOCKTIME_MASK;
1813
6.05k
    const int64_t txToSequenceMasked = txToSequence & nLockTimeMask;
1814
6.05k
    const CScriptNum nSequenceMasked = nSequence & nLockTimeMask;
1815
1816
    // There are two kinds of nSequence: lock-by-blockheight
1817
    // and lock-by-blocktime, distinguished by whether
1818
    // nSequenceMasked < CTxIn::SEQUENCE_LOCKTIME_TYPE_FLAG.
1819
    //
1820
    // We want to compare apples to apples, so fail the script
1821
    // unless the type of nSequenceMasked being tested is the same as
1822
    // the nSequenceMasked in the transaction.
1823
6.05k
    if (!(
1824
6.05k
        (txToSequenceMasked <  CTxIn::SEQUENCE_LOCKTIME_TYPE_FLAG && nSequenceMasked <  CTxIn::SEQUENCE_LOCKTIME_TYPE_FLAG) ||
1825
6.05k
        (txToSequenceMasked >= CTxIn::SEQUENCE_LOCKTIME_TYPE_FLAG && nSequenceMasked >= CTxIn::SEQUENCE_LOCKTIME_TYPE_FLAG)
1826
6.05k
    )) {
1827
188
        return false;
1828
188
    }
1829
1830
    // Now that we know we're comparing apples-to-apples, the
1831
    // comparison is a simple numeric one.
1832
5.87k
    if (nSequenceMasked > txToSequenceMasked)
1833
5.25k
        return false;
1834
1835
613
    return true;
1836
5.87k
}
GenericTransactionSignatureChecker<CTransaction>::CheckSequence(CScriptNum const&) const
Line
Count
Source
1793
6.04k
{
1794
    // Relative lock times are supported by comparing the passed
1795
    // in operand to the sequence number of the input.
1796
6.04k
    const int64_t txToSequence = (int64_t)txTo->vin[nIn].nSequence;
1797
1798
    // Fail if the transaction's version number is not set high
1799
    // enough to trigger BIP 68 rules.
1800
6.04k
    if (txTo->version < 2)
1801
134
        return false;
1802
1803
    // Sequence numbers with their most significant bit set are not
1804
    // consensus constrained. Testing that the transaction's sequence
1805
    // number do not have this bit set prevents using this property
1806
    // to get around a CHECKSEQUENCEVERIFY check.
1807
5.91k
    if (txToSequence & CTxIn::SEQUENCE_LOCKTIME_DISABLE_FLAG)
1808
16
        return false;
1809
1810
    // Mask off any bits that do not have consensus-enforced meaning
1811
    // before doing the integer comparisons
1812
5.89k
    const uint32_t nLockTimeMask = CTxIn::SEQUENCE_LOCKTIME_TYPE_FLAG | CTxIn::SEQUENCE_LOCKTIME_MASK;
1813
5.89k
    const int64_t txToSequenceMasked = txToSequence & nLockTimeMask;
1814
5.89k
    const CScriptNum nSequenceMasked = nSequence & nLockTimeMask;
1815
1816
    // There are two kinds of nSequence: lock-by-blockheight
1817
    // and lock-by-blocktime, distinguished by whether
1818
    // nSequenceMasked < CTxIn::SEQUENCE_LOCKTIME_TYPE_FLAG.
1819
    //
1820
    // We want to compare apples to apples, so fail the script
1821
    // unless the type of nSequenceMasked being tested is the same as
1822
    // the nSequenceMasked in the transaction.
1823
5.89k
    if (!(
1824
5.89k
        (txToSequenceMasked <  CTxIn::SEQUENCE_LOCKTIME_TYPE_FLAG && nSequenceMasked <  CTxIn::SEQUENCE_LOCKTIME_TYPE_FLAG) ||
1825
5.89k
        (txToSequenceMasked >= CTxIn::SEQUENCE_LOCKTIME_TYPE_FLAG && nSequenceMasked >= CTxIn::SEQUENCE_LOCKTIME_TYPE_FLAG)
1826
5.89k
    )) {
1827
188
        return false;
1828
188
    }
1829
1830
    // Now that we know we're comparing apples-to-apples, the
1831
    // comparison is a simple numeric one.
1832
5.71k
    if (nSequenceMasked > txToSequenceMasked)
1833
5.25k
        return false;
1834
1835
459
    return true;
1836
5.71k
}
GenericTransactionSignatureChecker<CMutableTransaction>::CheckSequence(CScriptNum const&) const
Line
Count
Source
1793
542
{
1794
    // Relative lock times are supported by comparing the passed
1795
    // in operand to the sequence number of the input.
1796
542
    const int64_t txToSequence = (int64_t)txTo->vin[nIn].nSequence;
1797
1798
    // Fail if the transaction's version number is not set high
1799
    // enough to trigger BIP 68 rules.
1800
542
    if (txTo->version < 2)
1801
359
        return false;
1802
1803
    // Sequence numbers with their most significant bit set are not
1804
    // consensus constrained. Testing that the transaction's sequence
1805
    // number do not have this bit set prevents using this property
1806
    // to get around a CHECKSEQUENCEVERIFY check.
1807
183
    if (txToSequence & CTxIn::SEQUENCE_LOCKTIME_DISABLE_FLAG)
1808
23
        return false;
1809
1810
    // Mask off any bits that do not have consensus-enforced meaning
1811
    // before doing the integer comparisons
1812
160
    const uint32_t nLockTimeMask = CTxIn::SEQUENCE_LOCKTIME_TYPE_FLAG | CTxIn::SEQUENCE_LOCKTIME_MASK;
1813
160
    const int64_t txToSequenceMasked = txToSequence & nLockTimeMask;
1814
160
    const CScriptNum nSequenceMasked = nSequence & nLockTimeMask;
1815
1816
    // There are two kinds of nSequence: lock-by-blockheight
1817
    // and lock-by-blocktime, distinguished by whether
1818
    // nSequenceMasked < CTxIn::SEQUENCE_LOCKTIME_TYPE_FLAG.
1819
    //
1820
    // We want to compare apples to apples, so fail the script
1821
    // unless the type of nSequenceMasked being tested is the same as
1822
    // the nSequenceMasked in the transaction.
1823
160
    if (!(
1824
160
        (txToSequenceMasked <  CTxIn::SEQUENCE_LOCKTIME_TYPE_FLAG && nSequenceMasked <  CTxIn::SEQUENCE_LOCKTIME_TYPE_FLAG) ||
1825
160
        (txToSequenceMasked >= CTxIn::SEQUENCE_LOCKTIME_TYPE_FLAG && nSequenceMasked >= CTxIn::SEQUENCE_LOCKTIME_TYPE_FLAG)
1826
160
    )) {
1827
0
        return false;
1828
0
    }
1829
1830
    // Now that we know we're comparing apples-to-apples, the
1831
    // comparison is a simple numeric one.
1832
160
    if (nSequenceMasked > txToSequenceMasked)
1833
6
        return false;
1834
1835
154
    return true;
1836
160
}
1837
1838
// explicit instantiation
1839
template class GenericTransactionSignatureChecker<CTransaction>;
1840
template class GenericTransactionSignatureChecker<CMutableTransaction>;
1841
1842
static bool ExecuteWitnessScript(const std::span<const valtype>& stack_span, const CScript& exec_script, script_verify_flags flags, SigVersion sigversion, const BaseSignatureChecker& checker, ScriptExecutionData& execdata, ScriptError* serror)
1843
198k
{
1844
198k
    std::vector<valtype> stack{stack_span.begin(), stack_span.end()};
1845
1846
198k
    if (sigversion == SigVersion::TAPSCRIPT) {
1847
        // OP_SUCCESSx processing overrides everything, including stack element size limits
1848
111k
        CScript::const_iterator pc = exec_script.begin();
1849
10.5M
        while (pc < exec_script.end()) {
1850
10.4M
            opcodetype opcode;
1851
10.4M
            if (!exec_script.GetOp(pc, opcode)) {
1852
                // Note how this condition would not be reached if an unknown OP_SUCCESSx was found
1853
414
                return set_error(serror, SCRIPT_ERR_BAD_OPCODE);
1854
414
            }
1855
            // New opcodes will be listed here. May use a different sigversion to modify existing opcodes.
1856
10.4M
            if (IsOpSuccess(opcode)) {
1857
4.66k
                if (flags & SCRIPT_VERIFY_DISCOURAGE_OP_SUCCESS) {
1858
435
                    return set_error(serror, SCRIPT_ERR_DISCOURAGE_OP_SUCCESS);
1859
435
                }
1860
4.22k
                return set_success(serror);
1861
4.66k
            }
1862
10.4M
        }
1863
1864
        // Tapscript enforces initial stack size limits (altstack is empty here)
1865
105k
        if (stack.size() > MAX_STACK_SIZE) return set_error(serror, SCRIPT_ERR_STACK_SIZE);
1866
105k
    }
1867
1868
    // Disallow stack item size > MAX_SCRIPT_ELEMENT_SIZE in witness stack
1869
587k
    for (const valtype& elem : stack) {
1870
587k
        if (elem.size() > MAX_SCRIPT_ELEMENT_SIZE) return set_error(serror, SCRIPT_ERR_PUSH_SIZE);
1871
587k
    }
1872
1873
    // Run the script interpreter.
1874
192k
    if (!EvalScript(stack, exec_script, flags, checker, sigversion, execdata, serror)) return false;
1875
1876
    // Scripts inside witness implicitly require cleanstack behaviour
1877
175k
    if (stack.size() != 1) return set_error(serror, SCRIPT_ERR_CLEANSTACK);
1878
172k
    if (!CastToBool(stack.back())) return set_error(serror, SCRIPT_ERR_EVAL_FALSE);
1879
170k
    return true;
1880
172k
}
1881
1882
uint256 ComputeTapleafHash(uint8_t leaf_version, std::span<const unsigned char> script)
1883
163k
{
1884
163k
    return (HashWriter{HASHER_TAPLEAF} << leaf_version << CompactSizeWriter(script.size()) << script).GetSHA256();
1885
163k
}
1886
1887
uint256 ComputeTapbranchHash(std::span<const unsigned char> a, std::span<const unsigned char> b)
1888
385k
{
1889
385k
    HashWriter ss_branch{HASHER_TAPBRANCH};
1890
385k
    if (std::lexicographical_compare(a.begin(), a.end(), b.begin(), b.end())) {
1891
182k
        ss_branch << a << b;
1892
203k
    } else {
1893
203k
        ss_branch << b << a;
1894
203k
    }
1895
385k
    return ss_branch.GetSHA256();
1896
385k
}
1897
1898
uint256 ComputeTaprootMerkleRoot(std::span<const unsigned char> control, const uint256& tapleaf_hash)
1899
118k
{
1900
118k
    assert(control.size() >= TAPROOT_CONTROL_BASE_SIZE);
1901
118k
    assert(control.size() <= TAPROOT_CONTROL_MAX_SIZE);
1902
118k
    assert((control.size() - TAPROOT_CONTROL_BASE_SIZE) % TAPROOT_CONTROL_NODE_SIZE == 0);
1903
1904
118k
    const int path_len = (control.size() - TAPROOT_CONTROL_BASE_SIZE) / TAPROOT_CONTROL_NODE_SIZE;
1905
118k
    uint256 k = tapleaf_hash;
1906
481k
    for (int i = 0; i < path_len; ++i) {
1907
363k
        std::span node{std::span{control}.subspan(TAPROOT_CONTROL_BASE_SIZE + TAPROOT_CONTROL_NODE_SIZE * i, TAPROOT_CONTROL_NODE_SIZE)};
1908
363k
        k = ComputeTapbranchHash(k, node);
1909
363k
    }
1910
118k
    return k;
1911
118k
}
1912
1913
static bool VerifyTaprootCommitment(const std::vector<unsigned char>& control, const std::vector<unsigned char>& program, const uint256& tapleaf_hash)
1914
114k
{
1915
114k
    assert(control.size() >= TAPROOT_CONTROL_BASE_SIZE);
1916
114k
    assert(program.size() >= uint256::size());
1917
    //! The internal pubkey (x-only, so no Y coordinate parity).
1918
114k
    const XOnlyPubKey p{std::span{control}.subspan(1, TAPROOT_CONTROL_BASE_SIZE - 1)};
1919
    //! The output pubkey (taken from the scriptPubKey).
1920
114k
    const XOnlyPubKey q{program};
1921
    // Compute the Merkle root from the leaf and the provided path.
1922
114k
    const uint256 merkle_root = ComputeTaprootMerkleRoot(control, tapleaf_hash);
1923
    // Verify that the output pubkey matches the tweaked internal pubkey, after correcting for parity.
1924
114k
    return q.CheckTapTweak(p, merkle_root, control[0] & 1);
1925
114k
}
1926
1927
static bool VerifyWitnessProgram(const CScriptWitness& witness, int witversion, const std::vector<unsigned char>& program, script_verify_flags flags, const BaseSignatureChecker& checker, ScriptError* serror, bool is_p2sh)
1928
329k
{
1929
329k
    CScript exec_script; //!< Actually executed script (last stack item in P2WSH; implied P2PKH script in P2WPKH; leaf script in P2TR)
1930
329k
    std::span stack{witness.stack};
1931
329k
    ScriptExecutionData execdata;
1932
1933
329k
    if (witversion == 0) {
1934
143k
        if (program.size() == WITNESS_V0_SCRIPTHASH_SIZE) {
1935
            // BIP141 P2WSH: 32-byte witness v0 program (which encodes SHA256(script))
1936
31.8k
            if (stack.size() == 0) {
1937
1.20k
                return set_error(serror, SCRIPT_ERR_WITNESS_PROGRAM_WITNESS_EMPTY);
1938
1.20k
            }
1939
30.6k
            const valtype& script_bytes = SpanPopBack(stack);
1940
30.6k
            exec_script = CScript(script_bytes.begin(), script_bytes.end());
1941
30.6k
            uint256 hash_exec_script;
1942
30.6k
            CSHA256().Write(exec_script.data(), exec_script.size()).Finalize(hash_exec_script.begin());
1943
30.6k
            if (memcmp(hash_exec_script.begin(), program.data(), 32)) {
1944
771
                return set_error(serror, SCRIPT_ERR_WITNESS_PROGRAM_MISMATCH);
1945
771
            }
1946
29.9k
            return ExecuteWitnessScript(stack, exec_script, flags, SigVersion::WITNESS_V0, checker, execdata, serror);
1947
111k
        } else if (program.size() == WITNESS_V0_KEYHASH_SIZE) {
1948
            // BIP141 P2WPKH: 20-byte witness v0 program (which encodes Hash160(pubkey))
1949
111k
            if (stack.size() != 2) {
1950
54.0k
                return set_error(serror, SCRIPT_ERR_WITNESS_PROGRAM_MISMATCH); // 2 items in witness
1951
54.0k
            }
1952
57.3k
            exec_script << OP_DUP << OP_HASH160 << program << OP_EQUALVERIFY << OP_CHECKSIG;
1953
57.3k
            return ExecuteWitnessScript(stack, exec_script, flags, SigVersion::WITNESS_V0, checker, execdata, serror);
1954
111k
        } else {
1955
601
            return set_error(serror, SCRIPT_ERR_WITNESS_PROGRAM_WRONG_LENGTH);
1956
601
        }
1957
186k
    } else if (witversion == 1 && program.size() == WITNESS_V1_TAPROOT_SIZE && !is_p2sh) {
1958
        // BIP341 Taproot: 32-byte non-P2SH witness v1 program (which encodes a P2C-tweaked pubkey)
1959
172k
        if (!(flags & SCRIPT_VERIFY_TAPROOT)) return set_success(serror);
1960
141k
        if (stack.size() == 0) return set_error(serror, SCRIPT_ERR_WITNESS_PROGRAM_WITNESS_EMPTY);
1961
130k
        if (stack.size() >= 2 && !stack.back().empty() && stack.back()[0] == ANNEX_TAG) {
1962
            // Drop annex (this is non-standard; see IsWitnessStandard)
1963
4.38k
            const valtype& annex = SpanPopBack(stack);
1964
4.38k
            execdata.m_annex_hash = (HashWriter{} << annex).GetSHA256();
1965
4.38k
            execdata.m_annex_present = true;
1966
125k
        } else {
1967
125k
            execdata.m_annex_present = false;
1968
125k
        }
1969
130k
        execdata.m_annex_init = true;
1970
130k
        if (stack.size() == 1) {
1971
            // Key path spending (stack size is 1 after removing optional annex)
1972
15.4k
            if (!checker.CheckSchnorrSignature(stack.front(), program, SigVersion::TAPROOT, execdata, serror)) {
1973
5.56k
                return false; // serror is set
1974
5.56k
            }
1975
9.90k
            return set_success(serror);
1976
114k
        } else {
1977
            // Script path spending (stack size is >1 after removing optional annex)
1978
114k
            const valtype& control = SpanPopBack(stack);
1979
114k
            const valtype& script = SpanPopBack(stack);
1980
114k
            if (control.size() < TAPROOT_CONTROL_BASE_SIZE || control.size() > TAPROOT_CONTROL_MAX_SIZE || ((control.size() - TAPROOT_CONTROL_BASE_SIZE) % TAPROOT_CONTROL_NODE_SIZE) != 0) {
1981
18
                return set_error(serror, SCRIPT_ERR_TAPROOT_WRONG_CONTROL_SIZE);
1982
18
            }
1983
114k
            execdata.m_tapleaf_hash = ComputeTapleafHash(control[0] & TAPROOT_LEAF_MASK, script);
1984
114k
            if (!VerifyTaprootCommitment(control, program, execdata.m_tapleaf_hash)) {
1985
18
                return set_error(serror, SCRIPT_ERR_WITNESS_PROGRAM_MISMATCH);
1986
18
            }
1987
114k
            execdata.m_tapleaf_hash_init = true;
1988
114k
            if ((control[0] & TAPROOT_LEAF_MASK) == TAPROOT_LEAF_TAPSCRIPT) {
1989
                // Tapscript (leaf version 0xc0)
1990
111k
                exec_script = CScript(script.begin(), script.end());
1991
111k
                execdata.m_validation_weight_left = ::GetSerializeSize(witness.stack) + VALIDATION_WEIGHT_OFFSET;
1992
111k
                execdata.m_validation_weight_left_init = true;
1993
111k
                return ExecuteWitnessScript(stack, exec_script, flags, SigVersion::TAPSCRIPT, checker, execdata, serror);
1994
111k
            }
1995
3.46k
            if (flags & SCRIPT_VERIFY_DISCOURAGE_UPGRADABLE_TAPROOT_VERSION) {
1996
371
                return set_error(serror, SCRIPT_ERR_DISCOURAGE_UPGRADABLE_TAPROOT_VERSION);
1997
371
            }
1998
3.09k
            return set_success(serror);
1999
3.46k
        }
2000
130k
    } else if (!is_p2sh && CScript::IsPayToAnchor(witversion, program)) {
2001
10
        return true;
2002
13.7k
    } else {
2003
13.7k
        if (flags & SCRIPT_VERIFY_DISCOURAGE_UPGRADABLE_WITNESS_PROGRAM) {
2004
660
            return set_error(serror, SCRIPT_ERR_DISCOURAGE_UPGRADABLE_WITNESS_PROGRAM);
2005
660
        }
2006
        // Other version/size/p2sh combinations return true for future softfork compatibility
2007
13.0k
        return true;
2008
13.7k
    }
2009
    // There is intentionally no return statement here, to be able to use "control reaches end of non-void function" warnings to detect gaps in the logic above.
2010
329k
}
2011
2012
bool VerifyScript(const CScript& scriptSig, const CScript& scriptPubKey, const CScriptWitness* witness, script_verify_flags flags, const BaseSignatureChecker& checker, ScriptError* serror)
2013
906k
{
2014
906k
    static const CScriptWitness emptyWitness;
2015
906k
    if (witness == nullptr) {
2016
67.5k
        witness = &emptyWitness;
2017
67.5k
    }
2018
906k
    bool hadWitness = false;
2019
2020
906k
    set_error(serror, SCRIPT_ERR_UNKNOWN_ERROR);
2021
2022
906k
    if ((flags & SCRIPT_VERIFY_SIGPUSHONLY) != 0 && !scriptSig.IsPushOnly()) {
2023
9.50k
        return set_error(serror, SCRIPT_ERR_SIG_PUSHONLY);
2024
9.50k
    }
2025
2026
    // scriptSig and scriptPubKey must be evaluated sequentially on the same stack
2027
    // rather than being simply concatenated (see CVE-2010-5141)
2028
896k
    std::vector<std::vector<unsigned char> > stack, stackCopy;
2029
896k
    if (!EvalScript(stack, scriptSig, flags, checker, SigVersion::BASE, serror))
2030
        // serror is set
2031
6.97k
        return false;
2032
889k
    if (flags & SCRIPT_VERIFY_P2SH)
2033
655k
        stackCopy = stack;
2034
889k
    if (!EvalScript(stack, scriptPubKey, flags, checker, SigVersion::BASE, serror))
2035
        // serror is set
2036
124k
        return false;
2037
765k
    if (stack.empty())
2038
2.67k
        return set_error(serror, SCRIPT_ERR_EVAL_FALSE);
2039
762k
    if (CastToBool(stack.back()) == false)
2040
8.09k
        return set_error(serror, SCRIPT_ERR_EVAL_FALSE);
2041
2042
    // Bare witness programs
2043
754k
    int witnessversion;
2044
754k
    std::vector<unsigned char> witnessprogram;
2045
754k
    if (flags & SCRIPT_VERIFY_WITNESS) {
2046
420k
        if (scriptPubKey.IsWitnessProgram(witnessversion, witnessprogram)) {
2047
308k
            hadWitness = true;
2048
308k
            if (scriptSig.size() != 0) {
2049
                // The scriptSig must be _exactly_ CScript(), otherwise we reintroduce malleability.
2050
1.07k
                return set_error(serror, SCRIPT_ERR_WITNESS_MALLEATED);
2051
1.07k
            }
2052
307k
            if (!VerifyWitnessProgram(*witness, witnessversion, witnessprogram, flags, checker, serror, /*is_p2sh=*/false)) {
2053
89.3k
                return false;
2054
89.3k
            }
2055
            // Bypass the cleanstack check at the end. The actual stack is obviously not clean
2056
            // for witness programs.
2057
218k
            stack.resize(1);
2058
218k
        }
2059
420k
    }
2060
2061
    // Additional validation for spend-to-script-hash transactions:
2062
664k
    if ((flags & SCRIPT_VERIFY_P2SH) && scriptPubKey.IsPayToScriptHash())
2063
64.9k
    {
2064
        // scriptSig must be literals-only or validation fails
2065
64.9k
        if (!scriptSig.IsPushOnly())
2066
229
            return set_error(serror, SCRIPT_ERR_SIG_PUSHONLY);
2067
2068
        // Restore stack.
2069
64.7k
        swap(stack, stackCopy);
2070
2071
        // stack cannot be empty here, because if it was the
2072
        // P2SH  HASH <> EQUAL  scriptPubKey would be evaluated with
2073
        // an empty stack and the EvalScript above would return false.
2074
64.7k
        assert(!stack.empty());
2075
2076
64.7k
        const valtype& pubKeySerialized = stack.back();
2077
64.7k
        CScript pubKey2(pubKeySerialized.begin(), pubKeySerialized.end());
2078
64.7k
        popstack(stack);
2079
2080
64.7k
        if (!EvalScript(stack, pubKey2, flags, checker, SigVersion::BASE, serror))
2081
            // serror is set
2082
11.4k
            return false;
2083
53.2k
        if (stack.empty())
2084
1.28k
            return set_error(serror, SCRIPT_ERR_EVAL_FALSE);
2085
52.0k
        if (!CastToBool(stack.back()))
2086
359
            return set_error(serror, SCRIPT_ERR_EVAL_FALSE);
2087
2088
        // P2SH witness program
2089
51.6k
        if (flags & SCRIPT_VERIFY_WITNESS) {
2090
42.1k
            if (pubKey2.IsWitnessProgram(witnessversion, witnessprogram)) {
2091
22.7k
                hadWitness = true;
2092
22.7k
                if (scriptSig != CScript() << std::vector<unsigned char>(pubKey2.begin(), pubKey2.end())) {
2093
                    // The scriptSig must be _exactly_ a single push of the redeemScript. Otherwise we
2094
                    // reintroduce malleability.
2095
514
                    return set_error(serror, SCRIPT_ERR_WITNESS_MALLEATED_P2SH);
2096
514
                }
2097
22.2k
                if (!VerifyWitnessProgram(*witness, witnessversion, witnessprogram, flags, checker, serror, /*is_p2sh=*/true)) {
2098
9.22k
                    return false;
2099
9.22k
                }
2100
                // Bypass the cleanstack check at the end. The actual stack is obviously not clean
2101
                // for witness programs.
2102
13.0k
                stack.resize(1);
2103
13.0k
            }
2104
42.1k
        }
2105
51.6k
    }
2106
2107
    // The CLEANSTACK check is only performed after potential P2SH evaluation,
2108
    // as the non-P2SH evaluation of a P2SH script will obviously not result in
2109
    // a clean stack (the P2SH inputs remain). The same holds for witness evaluation.
2110
641k
    if ((flags & SCRIPT_VERIFY_CLEANSTACK) != 0) {
2111
        // Disallow CLEANSTACK without P2SH, as otherwise a switch CLEANSTACK->P2SH+CLEANSTACK
2112
        // would be possible, which is not a softfork (and P2SH should be one).
2113
119k
        assert((flags & SCRIPT_VERIFY_P2SH) != 0);
2114
119k
        assert((flags & SCRIPT_VERIFY_WITNESS) != 0);
2115
119k
        if (stack.size() != 1) {
2116
1.17k
            return set_error(serror, SCRIPT_ERR_CLEANSTACK);
2117
1.17k
        }
2118
119k
    }
2119
2120
640k
    if (flags & SCRIPT_VERIFY_WITNESS) {
2121
        // We can't check for correct unexpected witness data if P2SH was off, so require
2122
        // that WITNESS implies P2SH. Otherwise, going from WITNESS->P2SH+WITNESS would be
2123
        // possible, which is not a softfork.
2124
307k
        assert((flags & SCRIPT_VERIFY_P2SH) != 0);
2125
307k
        if (!hadWitness && !witness->IsNull()) {
2126
908
            return set_error(serror, SCRIPT_ERR_WITNESS_UNEXPECTED);
2127
908
        }
2128
307k
    }
2129
2130
639k
    return set_success(serror);
2131
640k
}
2132
2133
size_t static WitnessSigOps(int witversion, const std::vector<unsigned char>& witprogram, const CScriptWitness& witness)
2134
131k
{
2135
131k
    if (witversion == 0) {
2136
26.8k
        if (witprogram.size() == WITNESS_V0_KEYHASH_SIZE)
2137
16.2k
            return 1;
2138
2139
10.5k
        if (witprogram.size() == WITNESS_V0_SCRIPTHASH_SIZE && witness.stack.size() > 0) {
2140
10.5k
            CScript subscript(witness.stack.back().begin(), witness.stack.back().end());
2141
10.5k
            return subscript.GetSigOpCount(true);
2142
10.5k
        }
2143
10.5k
    }
2144
2145
    // Future flags may be implemented here.
2146
105k
    return 0;
2147
131k
}
2148
2149
size_t CountWitnessSigOps(const CScript& scriptSig, const CScript& scriptPubKey, const CScriptWitness& witness, script_verify_flags flags)
2150
170k
{
2151
170k
    if ((flags & SCRIPT_VERIFY_WITNESS) == 0) {
2152
3
        return 0;
2153
3
    }
2154
170k
    assert((flags & SCRIPT_VERIFY_P2SH) != 0);
2155
2156
170k
    int witnessversion;
2157
170k
    std::vector<unsigned char> witnessprogram;
2158
170k
    if (scriptPubKey.IsWitnessProgram(witnessversion, witnessprogram)) {
2159
128k
        return WitnessSigOps(witnessversion, witnessprogram, witness);
2160
128k
    }
2161
2162
41.5k
    if (scriptPubKey.IsPayToScriptHash() && scriptSig.IsPushOnly()) {
2163
10.8k
        CScript::const_iterator pc = scriptSig.begin();
2164
10.8k
        std::vector<unsigned char> data;
2165
30.2k
        while (pc < scriptSig.end()) {
2166
19.3k
            opcodetype opcode;
2167
19.3k
            scriptSig.GetOp(pc, opcode, data);
2168
19.3k
        }
2169
10.8k
        CScript subscript(data.begin(), data.end());
2170
10.8k
        if (subscript.IsWitnessProgram(witnessversion, witnessprogram)) {
2171
3.05k
            return WitnessSigOps(witnessversion, witnessprogram, witness);
2172
3.05k
        }
2173
10.8k
    }
2174
2175
38.5k
    return 0;
2176
41.5k
}
2177
2178
const std::map<std::string, script_verify_flag_name>& ScriptFlagNamesToEnum()
2179
197
{
2180
4.13k
#define FLAG_NAME(flag) {std::string(#flag), SCRIPT_VERIFY_##flag}
2181
197
    static const std::map<std::string, script_verify_flag_name> g_names_to_enum{
2182
197
        FLAG_NAME(P2SH),
2183
197
        FLAG_NAME(STRICTENC),
2184
197
        FLAG_NAME(DERSIG),
2185
197
        FLAG_NAME(LOW_S),
2186
197
        FLAG_NAME(SIGPUSHONLY),
2187
197
        FLAG_NAME(MINIMALDATA),
2188
197
        FLAG_NAME(NULLDUMMY),
2189
197
        FLAG_NAME(DISCOURAGE_UPGRADABLE_NOPS),
2190
197
        FLAG_NAME(CLEANSTACK),
2191
197
        FLAG_NAME(MINIMALIF),
2192
197
        FLAG_NAME(NULLFAIL),
2193
197
        FLAG_NAME(CHECKLOCKTIMEVERIFY),
2194
197
        FLAG_NAME(CHECKSEQUENCEVERIFY),
2195
197
        FLAG_NAME(WITNESS),
2196
197
        FLAG_NAME(DISCOURAGE_UPGRADABLE_WITNESS_PROGRAM),
2197
197
        FLAG_NAME(WITNESS_PUBKEYTYPE),
2198
197
        FLAG_NAME(CONST_SCRIPTCODE),
2199
197
        FLAG_NAME(TAPROOT),
2200
197
        FLAG_NAME(DISCOURAGE_UPGRADABLE_PUBKEYTYPE),
2201
197
        FLAG_NAME(DISCOURAGE_OP_SUCCESS),
2202
197
        FLAG_NAME(DISCOURAGE_UPGRADABLE_TAPROOT_VERSION),
2203
197
    };
2204
197
#undef FLAG_NAME
2205
197
    return g_names_to_enum;
2206
197
}
2207
2208
std::vector<std::string> GetScriptFlagNames(script_verify_flags flags)
2209
235
{
2210
235
    std::vector<std::string> res;
2211
235
    if (flags == SCRIPT_VERIFY_NONE) {
2212
38
        return res;
2213
38
    }
2214
197
    script_verify_flags leftover = flags;
2215
4.13k
    for (const auto& [name, flag] : ScriptFlagNamesToEnum()) {
2216
4.13k
        if ((flags & flag) != 0) {
2217
794
            res.push_back(name);
2218
794
            leftover &= ~flag;
2219
794
        }
2220
4.13k
    }
2221
197
    if (leftover != 0) {
2222
4
        res.push_back(strprintf("0x%08x", leftover.as_int()));
2223
4
    }
2224
197
    return res;
2225
235
}