Coverage Report

Created: 2026-07-29 23:27

next uncovered line (L), next uncovered region (R), next uncovered branch (B)
/tmp/bitcoin/src/script/descriptor.cpp
Line
Count
Source
1
// Copyright (c) 2018-present The Bitcoin Core developers
2
// Distributed under the MIT software license, see the accompanying
3
// file COPYING or http://www.opensource.org/licenses/mit-license.php.
4
5
#include <script/descriptor.h>
6
7
#include <addresstype.h>
8
#include <attributes.h>
9
#include <consensus/consensus.h>
10
#include <crypto/hex_base.h>
11
#include <crypto/sha256.h>
12
#include <hash.h>
13
#include <key.h>
14
#include <key_io.h>
15
#include <musig.h>
16
#include <primitives/transaction.h>
17
#include <pubkey.h>
18
#include <script/interpreter.h>
19
#include <script/keyorigin.h>
20
#include <script/miniscript.h>
21
#include <script/parsing.h>
22
#include <script/script.h>
23
#include <script/signingprovider.h>
24
#include <script/solver.h>
25
#include <serialize.h>
26
#include <tinyformat.h>
27
#include <uint256.h>
28
#include <util/bip32.h>
29
#include <util/check.h>
30
#include <util/strencodings.h>
31
#include <util/string.h>
32
#include <util/vector.h>
33
34
#include <algorithm>
35
#include <iterator>
36
#include <map>
37
#include <memory>
38
#include <numeric>
39
#include <optional>
40
#include <span>
41
#include <stdexcept>
42
#include <string>
43
#include <tuple>
44
#include <unordered_set>
45
#include <utility>
46
#include <vector>
47
48
using util::Split;
49
50
namespace {
51
52
////////////////////////////////////////////////////////////////////////////
53
// Checksum                                                               //
54
////////////////////////////////////////////////////////////////////////////
55
56
// This section implements a checksum algorithm for descriptors with the
57
// following properties:
58
// * Mistakes in a descriptor string are measured in "symbol errors". The higher
59
//   the number of symbol errors, the harder it is to detect:
60
//   * An error substituting a character from 0123456789()[],'/*abcdefgh@:$%{} for
61
//     another in that set always counts as 1 symbol error.
62
//     * Note that hex encoded keys are covered by these characters. Xprvs and
63
//       xpubs use other characters too, but already have their own checksum
64
//       mechanism.
65
//     * Function names like "multi()" use other characters, but mistakes in
66
//       these would generally result in an unparsable descriptor.
67
//   * A case error always counts as 1 symbol error.
68
//   * Any other 1 character substitution error counts as 1 or 2 symbol errors.
69
// * Any 1 symbol error is always detected.
70
// * Any 2 or 3 symbol error in a descriptor of up to 49154 characters is always detected.
71
// * Any 4 symbol error in a descriptor of up to 507 characters is always detected.
72
// * Any 5 symbol error in a descriptor of up to 77 characters is always detected.
73
// * Is optimized to minimize the chance a 5 symbol error in a descriptor up to 387 characters is undetected
74
// * Random errors have a chance of 1 in 2**40 of being undetected.
75
//
76
// These properties are achieved by expanding every group of 3 (non checksum) characters into
77
// 4 GF(32) symbols, over which a cyclic code is defined.
78
79
/*
80
 * Interprets c as 8 groups of 5 bits which are the coefficients of a degree 8 polynomial over GF(32),
81
 * multiplies that polynomial by x, computes its remainder modulo a generator, and adds the constant term val.
82
 *
83
 * This generator is G(x) = x^8 + {30}x^7 + {23}x^6 + {15}x^5 + {14}x^4 + {10}x^3 + {6}x^2 + {12}x + {9}.
84
 * It is chosen to define an cyclic error detecting code which is selected by:
85
 * - Starting from all BCH codes over GF(32) of degree 8 and below, which by construction guarantee detecting
86
 *   3 errors in windows up to 19000 symbols.
87
 * - Taking all those generators, and for degree 7 ones, extend them to degree 8 by adding all degree-1 factors.
88
 * - Selecting just the set of generators that guarantee detecting 4 errors in a window of length 512.
89
 * - Selecting one of those with best worst-case behavior for 5 errors in windows of length up to 512.
90
 *
91
 * The generator and the constants to implement it can be verified using this Sage code:
92
 *   B = GF(2) # Binary field
93
 *   BP.<b> = B[] # Polynomials over the binary field
94
 *   F_mod = b**5 + b**3 + 1
95
 *   F.<f> = GF(32, modulus=F_mod, repr='int') # GF(32) definition
96
 *   FP.<x> = F[] # Polynomials over GF(32)
97
 *   E_mod = x**3 + x + F.fetch_int(8)
98
 *   E.<e> = F.extension(E_mod) # Extension field definition
99
 *   alpha = e**2743 # Choice of an element in extension field
100
 *   for p in divisors(E.order() - 1): # Verify alpha has order 32767.
101
 *       assert((alpha**p == 1) == (p % 32767 == 0))
102
 *   G = lcm([(alpha**i).minpoly() for i in [1056,1057,1058]] + [x + 1])
103
 *   print(G) # Print out the generator
104
 *   for i in [1,2,4,8,16]: # Print out {1,2,4,8,16}*(G mod x^8), packed in hex integers.
105
 *       v = 0
106
 *       for coef in reversed((F.fetch_int(i)*(G % x**8)).coefficients(sparse=True)):
107
 *           v = v*32 + coef.integer_representation()
108
 *       print("0x%x" % v)
109
 */
110
uint64_t PolyMod(uint64_t c, int val)
111
328M
{
112
328M
    uint8_t c0 = c >> 35;
113
328M
    c = ((c & 0x7ffffffff) << 5) ^ val;
114
328M
    if (c0 & 1) c ^= 0xf5dee51989;
115
328M
    if (c0 & 2) c ^= 0xa9fdca3312;
116
328M
    if (c0 & 4) c ^= 0x1bab10e32d;
117
328M
    if (c0 & 8) c ^= 0x3706b1677a;
118
328M
    if (c0 & 16) c ^= 0x644d626ffd;
119
328M
    return c;
120
328M
}
121
122
std::string DescriptorChecksum(const std::span<const char>& span)
123
231k
{
124
    /** A character set designed such that:
125
     *  - The most common 'unprotected' descriptor characters (hex, keypaths) are in the first group of 32.
126
     *  - Case errors cause an offset that's a multiple of 32.
127
     *  - As many alphabetic characters are in the same group (while following the above restrictions).
128
     *
129
     * If p(x) gives the position of a character c in this character set, every group of 3 characters
130
     * (a,b,c) is encoded as the 4 symbols (p(a) & 31, p(b) & 31, p(c) & 31, (p(a) / 32) + 3 * (p(b) / 32) + 9 * (p(c) / 32).
131
     * This means that changes that only affect the lower 5 bits of the position, or only the higher 2 bits, will just
132
     * affect a single symbol.
133
     *
134
     * As a result, within-group-of-32 errors count as 1 symbol, as do cross-group errors that don't affect
135
     * the position within the groups.
136
     */
137
231k
    static const std::string INPUT_CHARSET =
138
231k
        "0123456789()[],'/*abcdefgh@:$%{}"
139
231k
        "IJKLMNOPQRSTUVWXYZ&+-.;<=>?!^_|~"
140
231k
        "ijklmnopqrstuvwxyzABCDEFGH`#\"\\ ";
141
142
    /** The character set for the checksum itself (same as bech32). */
143
231k
    static const std::string CHECKSUM_CHARSET = "qpzry9x8gf2tvdw0s3jn54khce6mua7l";
144
145
231k
    uint64_t c = 1;
146
231k
    int cls = 0;
147
231k
    int clscount = 0;
148
244M
    for (auto ch : span) {
149
244M
        auto pos = INPUT_CHARSET.find(ch);
150
244M
        if (pos == std::string::npos) return "";
151
244M
        c = PolyMod(c, pos & 31); // Emit a symbol for the position inside the group, for every character.
152
244M
        cls = cls * 3 + (pos >> 5); // Accumulate the group numbers
153
244M
        if (++clscount == 3) {
154
            // Emit an extra symbol representing the group numbers, for every 3 characters.
155
81.4M
            c = PolyMod(c, cls);
156
81.4M
            cls = 0;
157
81.4M
            clscount = 0;
158
81.4M
        }
159
244M
    }
160
231k
    if (clscount > 0) c = PolyMod(c, cls);
161
2.08M
    for (int j = 0; j < 8; ++j) c = PolyMod(c, 0); // Shift further to determine the checksum.
162
231k
    c ^= 1; // Prevent appending zeroes from not affecting the checksum.
163
164
231k
    std::string ret(8, ' ');
165
2.08M
    for (int j = 0; j < 8; ++j) ret[j] = CHECKSUM_CHARSET[(c >> (5 * (7 - j))) & 31];
166
231k
    return ret;
167
231k
}
168
169
220k
std::string AddChecksum(const std::string& str) { return str + "#" + DescriptorChecksum(str); }
170
171
////////////////////////////////////////////////////////////////////////////
172
// Internal representation                                                //
173
////////////////////////////////////////////////////////////////////////////
174
175
typedef std::vector<uint32_t> KeyPath;
176
177
/** Interface for public key objects in descriptors. */
178
struct PubkeyProvider
179
{
180
public:
181
    //! Index of this key expression in the descriptor
182
    //! E.g. If this PubkeyProvider is key1 in multi(2, key1, key2, key3), then m_expr_index = 0
183
    const uint32_t m_expr_index;
184
185
833k
    explicit PubkeyProvider(uint32_t exp_index) : m_expr_index(exp_index) {}
186
187
833k
    virtual ~PubkeyProvider() = default;
188
189
    /** Compare two public keys represented by this provider.
190
     * Used by the Miniscript descriptors to check for duplicate keys in the script.
191
     */
192
4.40k
    bool operator<(PubkeyProvider& other) const {
193
4.40k
        FlatSigningProvider dummy;
194
195
4.40k
        std::optional<CPubKey> a = GetPubKey(0, dummy, dummy);
196
4.40k
        std::optional<CPubKey> b = other.GetPubKey(0, dummy, dummy);
197
198
4.40k
        return a < b;
199
4.40k
    }
200
201
    /** Derive a public key and put it into out.
202
     *  read_cache is the cache to read keys from (if not nullptr)
203
     *  write_cache is the cache to write keys to (if not nullptr)
204
     *  Caches are not exclusive but this is not tested. Currently we use them exclusively
205
     */
206
    virtual std::optional<CPubKey> GetPubKey(int pos, const SigningProvider& arg, FlatSigningProvider& out, const DescriptorCache* read_cache = nullptr, DescriptorCache* write_cache = nullptr) const = 0;
207
208
    /** Whether this represent multiple public keys at different positions. */
209
    virtual bool IsRange() const = 0;
210
211
    /** Get the size of the generated public key(s) in bytes (33 or 65). */
212
    virtual size_t GetSize() const = 0;
213
214
    enum class StringType {
215
        PUBLIC,
216
        COMPAT // string calculation that mustn't change over time to stay compatible with previous software versions
217
    };
218
219
    /** Get the descriptor string form. */
220
    virtual std::string ToString(StringType type=StringType::PUBLIC) const = 0;
221
222
    /** Get the descriptor string form including private data (if available in arg).
223
     *  If the private data is not available, the output string in the "out" parameter
224
     *  will not contain any private key information,
225
     *  and this function will return "false".
226
     */
227
    virtual bool ToPrivateString(const SigningProvider& arg, std::string& out) const = 0;
228
229
    /** Get the descriptor string form with the xpub at the last hardened derivation,
230
     *  and always use h for hardened derivation.
231
     */
232
    virtual bool ToNormalizedString(const SigningProvider& arg, std::string& out, const DescriptorCache* cache = nullptr) const = 0;
233
234
    /** Derive a private key, if private data is available in arg and put it into out. */
235
    virtual void GetPrivKey(int pos, const SigningProvider& arg, FlatSigningProvider& out) const = 0;
236
237
    /** Return the non-extended public key for this PubkeyProvider, if it has one. */
238
    virtual std::optional<CPubKey> GetRootPubKey() const = 0;
239
    /** Return the extended public key for this PubkeyProvider, if it has one. */
240
    virtual std::optional<CExtPubKey> GetRootExtPubKey() const = 0;
241
242
    /** Make a deep copy of this PubkeyProvider */
243
    virtual std::unique_ptr<PubkeyProvider> Clone() const = 0;
244
245
    /** Whether this PubkeyProvider is a BIP 32 extended key that can be derived from */
246
    virtual bool IsBIP32() const = 0;
247
248
    /** Get the count of keys known by this PubkeyProvider. Usually one, but may be more for key aggregation schemes */
249
464
    virtual size_t GetKeyCount() const { return 1; }
250
251
    /** Whether this PubkeyProvider can always provide a public key without cache or private key arguments */
252
    virtual bool CanSelfExpand() const = 0;
253
};
254
255
class OriginPubkeyProvider final : public PubkeyProvider
256
{
257
    KeyOriginInfo m_origin;
258
    std::unique_ptr<PubkeyProvider> m_provider;
259
    bool m_apostrophe;
260
261
    std::string OriginString(StringType type, bool normalized=false) const
262
90.1k
    {
263
        // If StringType==COMPAT, always use the apostrophe to stay compatible with previous versions
264
90.1k
        bool use_apostrophe = (!normalized && m_apostrophe) || type == StringType::COMPAT;
265
90.1k
        return HexStr(m_origin.fingerprint) + FormatHDKeypath(m_origin.path, use_apostrophe);
266
90.1k
    }
267
268
public:
269
396k
    OriginPubkeyProvider(uint32_t exp_index, KeyOriginInfo info, std::unique_ptr<PubkeyProvider> provider, bool apostrophe) : PubkeyProvider(exp_index), m_origin(std::move(info)), m_provider(std::move(provider)), m_apostrophe(apostrophe) {}
270
    std::optional<CPubKey> GetPubKey(int pos, const SigningProvider& arg, FlatSigningProvider& out, const DescriptorCache* read_cache = nullptr, DescriptorCache* write_cache = nullptr) const override
271
63.1k
    {
272
63.1k
        std::optional<CPubKey> pub = m_provider->GetPubKey(pos, arg, out, read_cache, write_cache);
273
63.1k
        if (!pub) return std::nullopt;
274
62.8k
        Assert(out.pubkeys.contains(pub->GetID()));
275
62.8k
        auto& [pubkey, suborigin] = out.origins[pub->GetID()];
276
62.8k
        Assert(pubkey == *pub); // m_provider must have a valid origin by this point.
277
62.8k
        suborigin.fingerprint = m_origin.fingerprint;
278
62.8k
        suborigin.path.insert(suborigin.path.begin(), m_origin.path.begin(), m_origin.path.end());
279
62.8k
        return pub;
280
63.1k
    }
281
10.7k
    bool IsRange() const override { return m_provider->IsRange(); }
282
54.7k
    size_t GetSize() const override { return m_provider->GetSize(); }
283
172
    bool IsBIP32() const override { return m_provider->IsBIP32(); }
284
89.6k
    std::string ToString(StringType type) const override { return "[" + OriginString(type) + "]" + m_provider->ToString(type); }
285
    bool ToPrivateString(const SigningProvider& arg, std::string& ret) const override
286
93
    {
287
93
        std::string sub;
288
93
        bool has_priv_key{m_provider->ToPrivateString(arg, sub)};
289
93
        ret = "[" + OriginString(StringType::PUBLIC) + "]" + std::move(sub);
290
93
        return has_priv_key;
291
93
    }
292
    bool ToNormalizedString(const SigningProvider& arg, std::string& ret, const DescriptorCache* cache) const override
293
469
    {
294
469
        std::string sub;
295
469
        if (!m_provider->ToNormalizedString(arg, sub, cache)) return false;
296
        // If m_provider is a BIP32PubkeyProvider, we may get a string formatted like a OriginPubkeyProvider
297
        // In that case, we need to strip out the leading square bracket and fingerprint from the substring,
298
        // and append that to our own origin string.
299
469
        if (sub[0] == '[') {
300
4
            sub = sub.substr(9);
301
4
            ret = "[" + OriginString(StringType::PUBLIC, /*normalized=*/true) + std::move(sub);
302
465
        } else {
303
465
            ret = "[" + OriginString(StringType::PUBLIC, /*normalized=*/true) + "]" + std::move(sub);
304
465
        }
305
469
        return true;
306
469
    }
307
    void GetPrivKey(int pos, const SigningProvider& arg, FlatSigningProvider& out) const override
308
3.46k
    {
309
3.46k
        m_provider->GetPrivKey(pos, arg, out);
310
3.46k
    }
311
    std::optional<CPubKey> GetRootPubKey() const override
312
0
    {
313
0
        return m_provider->GetRootPubKey();
314
0
    }
315
    std::optional<CExtPubKey> GetRootExtPubKey() const override
316
0
    {
317
0
        return m_provider->GetRootExtPubKey();
318
0
    }
319
    std::unique_ptr<PubkeyProvider> Clone() const override
320
110
    {
321
110
        return std::make_unique<OriginPubkeyProvider>(m_expr_index, m_origin, m_provider->Clone(), m_apostrophe);
322
110
    }
323
195
    bool CanSelfExpand() const override { return m_provider->CanSelfExpand(); }
324
};
325
326
/** An object representing a parsed constant public key in a descriptor. */
327
class ConstPubkeyProvider final : public PubkeyProvider
328
{
329
    CPubKey m_pubkey;
330
    bool m_xonly;
331
332
    std::optional<CKey> GetPrivKey(const SigningProvider& arg) const
333
57.0k
    {
334
57.0k
        CKey key;
335
57.0k
        if (!(m_xonly ? arg.GetKeyByXOnly(XOnlyPubKey(m_pubkey), key) :
336
57.0k
                        arg.GetKey(m_pubkey.GetID(), key))) return std::nullopt;
337
6.01k
        return key;
338
57.0k
    }
339
340
public:
341
427k
    ConstPubkeyProvider(uint32_t exp_index, const CPubKey& pubkey, bool xonly) : PubkeyProvider(exp_index), m_pubkey(pubkey), m_xonly(xonly) {}
342
    std::optional<CPubKey> GetPubKey(int pos, const SigningProvider&, FlatSigningProvider& out, const DescriptorCache* read_cache = nullptr, DescriptorCache* write_cache = nullptr) const override
343
1.01M
    {
344
1.01M
        KeyOriginInfo info;
345
1.01M
        CKeyID keyid = m_pubkey.GetID();
346
1.01M
        info.fingerprint = keyid.fingerprint();
347
1.01M
        out.origins.emplace(keyid, std::make_pair(m_pubkey, info));
348
1.01M
        out.pubkeys.emplace(keyid, m_pubkey);
349
1.01M
        return m_pubkey;
350
1.01M
    }
351
23.3k
    bool IsRange() const override { return false; }
352
69.2k
    size_t GetSize() const override { return m_pubkey.size(); }
353
8
    bool IsBIP32() const override { return false; }
354
230k
    std::string ToString(StringType type) const override { return m_xonly ? HexStr(m_pubkey).substr(2) : HexStr(m_pubkey); }
355
    bool ToPrivateString(const SigningProvider& arg, std::string& ret) const override
356
439
    {
357
439
        std::optional<CKey> key = GetPrivKey(arg);
358
439
        if (!key) {
359
224
            ret = ToString(StringType::PUBLIC);
360
224
            return false;
361
224
        }
362
215
        ret = EncodeSecret(*key);
363
215
        return true;
364
439
    }
365
    bool ToNormalizedString(const SigningProvider& arg, std::string& ret, const DescriptorCache* cache) const override
366
10.0k
    {
367
10.0k
        ret = ToString(StringType::PUBLIC);
368
10.0k
        return true;
369
10.0k
    }
370
    void GetPrivKey(int pos, const SigningProvider& arg, FlatSigningProvider& out) const override
371
56.5k
    {
372
56.5k
        std::optional<CKey> key = GetPrivKey(arg);
373
56.5k
        if (!key) return;
374
5.80k
        out.keys.emplace(key->GetPubKey().GetID(), *key);
375
5.80k
    }
376
    std::optional<CPubKey> GetRootPubKey() const override
377
12
    {
378
12
        return m_pubkey;
379
12
    }
380
    std::optional<CExtPubKey> GetRootExtPubKey() const override
381
12
    {
382
12
        return std::nullopt;
383
12
    }
384
    std::unique_ptr<PubkeyProvider> Clone() const override
385
27
    {
386
27
        return std::make_unique<ConstPubkeyProvider>(m_expr_index, m_pubkey, m_xonly);
387
27
    }
388
723
    bool CanSelfExpand() const final { return true; }
389
};
390
391
enum class DeriveType {
392
    NON_RANGED,
393
    UNHARDENED_RANGED,
394
    HARDENED_RANGED,
395
};
396
397
/** An object representing a parsed extended public key in a descriptor. */
398
class BIP32PubkeyProvider final : public PubkeyProvider
399
{
400
    // Root xpub, path, and final derivation step type being used, if any
401
    CExtPubKey m_root_extkey;
402
    KeyPath m_path;
403
    DeriveType m_derive;
404
    // Whether ' or h is used in harded derivation
405
    bool m_apostrophe;
406
407
    bool GetExtKey(const SigningProvider& arg, CExtKey& ret) const
408
54.0k
    {
409
54.0k
        CKey key;
410
54.0k
        if (!arg.GetKey(m_root_extkey.pubkey.GetID(), key)) return false;
411
48.9k
        ret.nDepth = m_root_extkey.nDepth;
412
48.9k
        ret.fingerprint = m_root_extkey.fingerprint;
413
48.9k
        ret.nChild = m_root_extkey.nChild;
414
48.9k
        ret.chaincode = m_root_extkey.chaincode;
415
48.9k
        ret.key = key;
416
48.9k
        return true;
417
54.0k
    }
418
419
    // Derives the last xprv
420
    bool GetDerivedExtKey(const SigningProvider& arg, CExtKey& xprv, CExtKey& last_hardened) const
421
52.7k
    {
422
52.7k
        if (!GetExtKey(arg, xprv)) return false;
423
90.6k
        for (auto entry : m_path) {
424
90.6k
            if (!xprv.Derive(xprv, entry)) return false;
425
90.6k
            if (entry >> 31) {
426
74.1k
                last_hardened = xprv;
427
74.1k
            }
428
90.6k
        }
429
47.9k
        return true;
430
47.9k
    }
431
432
    bool IsHardened() const
433
53.9k
    {
434
53.9k
        if (m_derive == DeriveType::HARDENED_RANGED) return true;
435
27.7k
        for (auto entry : m_path) {
436
27.7k
            if (entry >> 31) return true;
437
27.7k
        }
438
14.6k
        return false;
439
23.7k
    }
440
441
public:
442
9.14k
    BIP32PubkeyProvider(uint32_t exp_index, const CExtPubKey& extkey, KeyPath path, DeriveType derive, bool apostrophe) : PubkeyProvider(exp_index), m_root_extkey(extkey), m_path(std::move(path)), m_derive(derive), m_apostrophe(apostrophe) {}
443
210k
    bool IsRange() const override { return m_derive != DeriveType::NON_RANGED; }
444
568
    size_t GetSize() const override { return 33; }
445
377
    bool IsBIP32() const override { return true; }
446
    std::optional<CPubKey> GetPubKey(int pos, const SigningProvider& arg, FlatSigningProvider& out, const DescriptorCache* read_cache = nullptr, DescriptorCache* write_cache = nullptr) const override
447
720k
    {
448
720k
        KeyOriginInfo info;
449
720k
        info.fingerprint = m_root_extkey.id_key_fingerprint();
450
720k
        info.path = m_path;
451
720k
        if (m_derive == DeriveType::UNHARDENED_RANGED) info.path.push_back((uint32_t)pos);
452
720k
        if (m_derive == DeriveType::HARDENED_RANGED) info.path.push_back(((uint32_t)pos) | 0x80000000L);
453
454
        // Derive keys or fetch them from cache
455
720k
        CExtPubKey final_extkey = m_root_extkey;
456
720k
        CExtPubKey parent_extkey = m_root_extkey;
457
720k
        CExtPubKey last_hardened_extkey;
458
720k
        bool der = true;
459
720k
        if (read_cache) {
460
667k
            if (!read_cache->GetCachedDerivedExtPubKey(m_expr_index, pos, final_extkey)) {
461
663k
                if (m_derive == DeriveType::HARDENED_RANGED) return std::nullopt;
462
                // Try to get the derivation parent
463
639k
                if (!read_cache->GetCachedParentExtPubKey(m_expr_index, parent_extkey)) return std::nullopt;
464
635k
                final_extkey = parent_extkey;
465
635k
                if (m_derive == DeriveType::UNHARDENED_RANGED) der = parent_extkey.Derive(final_extkey, pos);
466
635k
            }
467
667k
        } else if (IsHardened()) {
468
39.2k
            CExtKey xprv;
469
39.2k
            CExtKey lh_xprv;
470
39.2k
            if (!GetDerivedExtKey(arg, xprv, lh_xprv)) return std::nullopt;
471
39.0k
            parent_extkey = xprv.Neuter();
472
39.0k
            if (m_derive == DeriveType::UNHARDENED_RANGED) der = xprv.Derive(xprv, pos);
473
39.0k
            if (m_derive == DeriveType::HARDENED_RANGED) der = xprv.Derive(xprv, pos | 0x80000000UL);
474
39.0k
            final_extkey = xprv.Neuter();
475
39.0k
            if (lh_xprv.key.IsValid()) {
476
36.0k
                last_hardened_extkey = lh_xprv.Neuter();
477
36.0k
            }
478
39.0k
        } else {
479
17.8k
            for (auto entry : m_path) {
480
17.8k
                if (!parent_extkey.Derive(parent_extkey, entry)) return std::nullopt;
481
17.8k
            }
482
13.7k
            final_extkey = parent_extkey;
483
13.7k
            if (m_derive == DeriveType::UNHARDENED_RANGED) der = parent_extkey.Derive(final_extkey, pos);
484
13.7k
            assert(m_derive != DeriveType::HARDENED_RANGED);
485
13.7k
        }
486
692k
        if (!der) return std::nullopt;
487
488
692k
        out.origins.emplace(final_extkey.pubkey.GetID(), std::make_pair(final_extkey.pubkey, info));
489
692k
        out.pubkeys.emplace(final_extkey.pubkey.GetID(), final_extkey.pubkey);
490
491
692k
        if (write_cache) {
492
            // Only cache parent if there is any unhardened derivation
493
30.3k
            if (m_derive != DeriveType::HARDENED_RANGED) {
494
6.33k
                write_cache->CacheParentExtPubKey(m_expr_index, parent_extkey);
495
                // Cache last hardened xpub if we have it
496
6.33k
                if (last_hardened_extkey.pubkey.IsValid()) {
497
4.05k
                    write_cache->CacheLastHardenedExtPubKey(m_expr_index, last_hardened_extkey);
498
4.05k
                }
499
24.0k
            } else if (info.path.size() > 0) {
500
24.0k
                write_cache->CacheDerivedExtPubKey(m_expr_index, pos, final_extkey);
501
24.0k
            }
502
30.3k
        }
503
504
692k
        return final_extkey.pubkey;
505
692k
    }
506
    std::string ToString(StringType type, bool normalized) const
507
105k
    {
508
        // If StringType==COMPAT, always use the apostrophe to stay compatible with previous versions
509
105k
        const bool use_apostrophe = (!normalized && m_apostrophe) || type == StringType::COMPAT;
510
105k
        std::string ret = EncodeExtPubKey(m_root_extkey) + FormatHDKeypath(m_path, /*apostrophe=*/use_apostrophe);
511
105k
        if (IsRange()) {
512
100k
            ret += "/*";
513
100k
            if (m_derive == DeriveType::HARDENED_RANGED) ret += use_apostrophe ? '\'' : 'h';
514
100k
        }
515
105k
        return ret;
516
105k
    }
517
    std::string ToString(StringType type=StringType::PUBLIC) const override
518
105k
    {
519
105k
        return ToString(type, /*normalized=*/false);
520
105k
    }
521
    bool ToPrivateString(const SigningProvider& arg, std::string& out) const override
522
1.36k
    {
523
1.36k
        CExtKey key;
524
1.36k
        if (!GetExtKey(arg, key)) {
525
375
            out = ToString(StringType::PUBLIC);
526
375
            return false;
527
375
        }
528
989
        out = EncodeExtKey(key) + FormatHDKeypath(m_path, /*apostrophe=*/m_apostrophe);
529
989
        if (IsRange()) {
530
792
            out += "/*";
531
792
            if (m_derive == DeriveType::HARDENED_RANGED) out += m_apostrophe ? '\'' : 'h';
532
792
        }
533
989
        return true;
534
1.36k
    }
535
    bool ToNormalizedString(const SigningProvider& arg, std::string& out, const DescriptorCache* cache) const override
536
6.28k
    {
537
6.28k
        if (m_derive == DeriveType::HARDENED_RANGED) {
538
54
            out = ToString(StringType::PUBLIC, /*normalized=*/true);
539
540
54
            return true;
541
54
        }
542
        // Step backwards to find the last hardened step in the path
543
6.22k
        int i = (int)m_path.size() - 1;
544
11.8k
        for (; i >= 0; --i) {
545
10.7k
            if (m_path.at(i) >> 31) {
546
5.12k
                break;
547
5.12k
            }
548
10.7k
        }
549
        // Either no derivation or all unhardened derivation
550
6.22k
        if (i == -1) {
551
1.09k
            out = ToString();
552
1.09k
            return true;
553
1.09k
        }
554
        // Get the path to the last hardened stup
555
5.12k
        KeyOriginInfo origin;
556
5.12k
        int k = 0;
557
20.4k
        for (; k <= i; ++k) {
558
            // Add to the path
559
15.3k
            origin.path.push_back(m_path.at(k));
560
15.3k
        }
561
        // Build the remaining path
562
5.12k
        KeyPath end_path;
563
10.1k
        for (; k < (int)m_path.size(); ++k) {
564
5.06k
            end_path.push_back(m_path.at(k));
565
5.06k
        }
566
5.12k
        origin.fingerprint = m_root_extkey.id_key_fingerprint();
567
568
5.12k
        CExtPubKey xpub;
569
5.12k
        CExtKey lh_xprv;
570
        // If we have the cache, just get the parent xpub
571
5.12k
        if (cache != nullptr) {
572
5.10k
            cache->GetCachedLastHardenedExtPubKey(m_expr_index, xpub);
573
5.10k
        }
574
5.12k
        if (!xpub.pubkey.IsValid()) {
575
            // Cache miss, or nor cache, or need privkey
576
22
            CExtKey xprv;
577
22
            if (!GetDerivedExtKey(arg, xprv, lh_xprv)) return false;
578
22
            xpub = lh_xprv.Neuter();
579
22
        }
580
5.12k
        assert(xpub.pubkey.IsValid());
581
582
        // Build the string
583
5.12k
        std::string origin_str = HexStr(origin.fingerprint) + FormatHDKeypath(origin.path);
584
5.12k
        out = "[" + origin_str + "]" + EncodeExtPubKey(xpub) + FormatHDKeypath(end_path);
585
5.12k
        if (IsRange()) {
586
5.04k
            out += "/*";
587
5.04k
            assert(m_derive == DeriveType::UNHARDENED_RANGED);
588
5.04k
        }
589
5.12k
        return true;
590
5.12k
    }
591
    void GetPrivKey(int pos, const SigningProvider& arg, FlatSigningProvider& out) const override
592
13.4k
    {
593
13.4k
        CExtKey extkey;
594
13.4k
        CExtKey dummy;
595
13.4k
        if (!GetDerivedExtKey(arg, extkey, dummy)) return;
596
8.80k
        if (m_derive == DeriveType::UNHARDENED_RANGED && !extkey.Derive(extkey, pos)) return;
597
8.80k
        if (m_derive == DeriveType::HARDENED_RANGED && !extkey.Derive(extkey, pos | 0x80000000UL)) return;
598
8.80k
        out.keys.emplace(extkey.key.GetPubKey().GetID(), extkey.key);
599
8.80k
    }
600
    std::optional<CPubKey> GetRootPubKey() const override
601
302
    {
602
302
        return std::nullopt;
603
302
    }
604
    std::optional<CExtPubKey> GetRootExtPubKey() const override
605
302
    {
606
302
        return m_root_extkey;
607
302
    }
608
    std::unique_ptr<PubkeyProvider> Clone() const override
609
296
    {
610
296
        return std::make_unique<BIP32PubkeyProvider>(m_expr_index, m_root_extkey, m_path, m_derive, m_apostrophe);
611
296
    }
612
995
    bool CanSelfExpand() const override { return !IsHardened(); }
613
};
614
615
/** PubkeyProvider for a musig() expression */
616
class MuSigPubkeyProvider final : public PubkeyProvider
617
{
618
private:
619
    //! PubkeyProvider for the participants
620
    const std::vector<std::unique_ptr<PubkeyProvider>> m_participants;
621
    //! Derivation path
622
    const KeyPath m_path;
623
    //! PubkeyProvider for the aggregate pubkey if it can be cached (i.e. participants are not ranged)
624
    mutable std::unique_ptr<PubkeyProvider> m_aggregate_provider;
625
    mutable std::optional<CPubKey> m_aggregate_pubkey;
626
    const DeriveType m_derive;
627
    const bool m_ranged_participants;
628
629
2.81k
    bool IsRangedDerivation() const { return m_derive != DeriveType::NON_RANGED; }
630
631
public:
632
    MuSigPubkeyProvider(
633
        uint32_t exp_index,
634
        std::vector<std::unique_ptr<PubkeyProvider>> providers,
635
        KeyPath path,
636
        DeriveType derive
637
    )
638
265
        : PubkeyProvider(exp_index),
639
265
        m_participants(std::move(providers)),
640
265
        m_path(std::move(path)),
641
265
        m_derive(derive),
642
581
        m_ranged_participants(std::any_of(m_participants.begin(), m_participants.end(), [](const auto& pubkey) { return pubkey->IsRange(); }))
643
265
    {
644
265
        if (!Assume(!(m_ranged_participants && IsRangedDerivation()))) {
645
0
            throw std::runtime_error("musig(): Cannot have both ranged participants and ranged derivation");
646
0
        }
647
265
        if (!Assume(m_derive != DeriveType::HARDENED_RANGED)) {
648
0
            throw std::runtime_error("musig(): Cannot have hardened derivation");
649
0
        }
650
265
    }
651
652
    std::optional<CPubKey> GetPubKey(int pos, const SigningProvider& arg, FlatSigningProvider& out, const DescriptorCache* read_cache = nullptr, DescriptorCache* write_cache = nullptr) const override
653
1.46k
    {
654
1.46k
        FlatSigningProvider dummy;
655
        // If the participants are not ranged, we can compute and cache the aggregate pubkey by creating a PubkeyProvider for it
656
1.46k
        if (!m_aggregate_provider && !m_ranged_participants) {
657
            // Retrieve the pubkeys from the providers
658
158
            std::vector<CPubKey> pubkeys;
659
418
            for (const auto& prov : m_participants) {
660
418
                std::optional<CPubKey> pubkey = prov->GetPubKey(0, arg, dummy, read_cache, write_cache);
661
418
                if (!pubkey.has_value()) {
662
0
                    return std::nullopt;
663
0
                }
664
418
                pubkeys.push_back(pubkey.value());
665
418
            }
666
158
            std::sort(pubkeys.begin(), pubkeys.end());
667
668
            // Aggregate the pubkey
669
158
            m_aggregate_pubkey = MuSig2AggregatePubkeys(pubkeys);
670
158
            if (!Assume(m_aggregate_pubkey.has_value())) return std::nullopt;
671
672
            // Make our pubkey provider
673
158
            if (IsRangedDerivation() || !m_path.empty()) {
674
                // Make the synthetic xpub and construct the BIP32PubkeyProvider
675
154
                CExtPubKey extpub = CreateMuSig2SyntheticXpub(m_aggregate_pubkey.value());
676
154
                m_aggregate_provider = std::make_unique<BIP32PubkeyProvider>(m_expr_index, extpub, m_path, m_derive, /*apostrophe=*/false);
677
154
            } else {
678
4
                m_aggregate_provider = std::make_unique<ConstPubkeyProvider>(m_expr_index, m_aggregate_pubkey.value(), /*xonly=*/false);
679
4
            }
680
158
        }
681
682
        // Retrieve all participant pubkeys
683
1.46k
        std::vector<CPubKey> pubkeys;
684
3.71k
        for (const auto& prov : m_participants) {
685
3.71k
            std::optional<CPubKey> pub = prov->GetPubKey(pos, arg, out, read_cache, write_cache);
686
3.71k
            if (!pub) return std::nullopt;
687
3.57k
            pubkeys.emplace_back(*pub);
688
3.57k
        }
689
1.32k
        std::sort(pubkeys.begin(), pubkeys.end());
690
691
1.32k
        CPubKey pubout;
692
1.32k
        if (m_aggregate_provider) {
693
            // When we have a cached aggregate key, we are either returning it or deriving from it
694
            // Either way, we can passthrough to its GetPubKey
695
            // Use a dummy signing provider as private keys do not exist for the aggregate pubkey
696
985
            std::optional<CPubKey> pub = m_aggregate_provider->GetPubKey(pos, dummy, out, read_cache, write_cache);
697
985
            if (!pub) return std::nullopt;
698
985
            pubout = *pub;
699
985
            out.aggregate_pubkeys.emplace(m_aggregate_pubkey.value(), pubkeys);
700
985
        } else {
701
343
            if (!Assume(m_ranged_participants) || !Assume(m_path.empty())) return std::nullopt;
702
            // Compute aggregate key from derived participants
703
343
            std::optional<CPubKey> aggregate_pubkey = MuSig2AggregatePubkeys(pubkeys);
704
343
            if (!aggregate_pubkey) return std::nullopt;
705
343
            pubout = *aggregate_pubkey;
706
707
343
            std::unique_ptr<ConstPubkeyProvider> this_agg_provider = std::make_unique<ConstPubkeyProvider>(m_expr_index, aggregate_pubkey.value(), /*xonly=*/false);
708
343
            this_agg_provider->GetPubKey(0, dummy, out, read_cache, write_cache);
709
343
            out.aggregate_pubkeys.emplace(pubout, pubkeys);
710
343
        }
711
712
1.32k
        if (!Assume(pubout.IsValid())) return std::nullopt;
713
1.32k
        return pubout;
714
1.32k
    }
715
963
    bool IsRange() const override { return IsRangedDerivation() || m_ranged_participants; }
716
    // musig() expressions can only be used in tr() contexts which have 32 byte xonly pubkeys
717
0
    size_t GetSize() const override { return 32; }
718
719
    std::string ToString(StringType type=StringType::PUBLIC) const override
720
1.39k
    {
721
1.39k
        std::string out = "musig(";
722
5.23k
        for (size_t i = 0; i < m_participants.size(); ++i) {
723
3.83k
            const auto& pubkey = m_participants.at(i);
724
3.83k
            if (i) out += ",";
725
3.83k
            out += pubkey->ToString(type);
726
3.83k
        }
727
1.39k
        out += ")";
728
1.39k
        out += FormatHDKeypath(m_path);
729
1.39k
        if (IsRangedDerivation()) {
730
1.03k
            out += "/*";
731
1.03k
        }
732
1.39k
        return out;
733
1.39k
    }
734
    bool ToPrivateString(const SigningProvider& arg, std::string& out) const override
735
82
    {
736
82
        bool any_privkeys = false;
737
82
        out = "musig(";
738
290
        for (size_t i = 0; i < m_participants.size(); ++i) {
739
208
            const auto& pubkey = m_participants.at(i);
740
208
            if (i) out += ",";
741
208
            std::string tmp;
742
208
            if (pubkey->ToPrivateString(arg, tmp)) {
743
81
                any_privkeys = true;
744
81
            }
745
208
            out += tmp;
746
208
        }
747
82
        out += ")";
748
82
        out += FormatHDKeypath(m_path);
749
82
        if (IsRangedDerivation()) {
750
42
            out += "/*";
751
42
        }
752
82
        return any_privkeys;
753
82
    }
754
    bool ToNormalizedString(const SigningProvider& arg, std::string& out, const DescriptorCache* cache = nullptr) const override
755
142
    {
756
142
        out = "musig(";
757
524
        for (size_t i = 0; i < m_participants.size(); ++i) {
758
382
            const auto& pubkey = m_participants.at(i);
759
382
            if (i) out += ",";
760
382
            std::string tmp;
761
382
            if (!pubkey->ToNormalizedString(arg, tmp, cache)) {
762
0
                return false;
763
0
            }
764
382
            out += tmp;
765
382
        }
766
142
        out += ")";
767
142
        out += FormatHDKeypath(m_path);
768
142
        if (IsRangedDerivation()) {
769
99
            out += "/*";
770
99
        }
771
142
        return true;
772
142
    }
773
774
    void GetPrivKey(int pos, const SigningProvider& arg, FlatSigningProvider& out) const override
775
1.69k
    {
776
        // Get the private keys for any participants that we have
777
        // If there is participant derivation, it will be done.
778
        // If there is not, then the participant privkeys will be included directly
779
4.69k
        for (const auto& prov : m_participants) {
780
4.69k
            prov->GetPrivKey(pos, arg, out);
781
4.69k
        }
782
1.69k
    }
783
784
    // Get RootPubKey and GetRootExtPubKey are used to return the single pubkey underlying the pubkey provider
785
    // to be presented to the user in gethdkeys. As this is a multisig construction, there is no single underlying
786
    // pubkey hence nothing should be returned.
787
    // While the aggregate pubkey could be returned as the root (ext)pubkey, it is not a pubkey that anyone should
788
    // be using by itself in a descriptor as it is unspendable without knowing its participants.
789
    std::optional<CPubKey> GetRootPubKey() const override
790
0
    {
791
0
        return std::nullopt;
792
0
    }
793
    std::optional<CExtPubKey> GetRootExtPubKey() const override
794
0
    {
795
0
        return std::nullopt;
796
0
    }
797
798
    std::unique_ptr<PubkeyProvider> Clone() const override
799
29
    {
800
29
        std::vector<std::unique_ptr<PubkeyProvider>> providers;
801
29
        providers.reserve(m_participants.size());
802
78
        for (const std::unique_ptr<PubkeyProvider>& p : m_participants) {
803
78
            providers.emplace_back(p->Clone());
804
78
        }
805
29
        return std::make_unique<MuSigPubkeyProvider>(m_expr_index, std::move(providers), m_path, m_derive);
806
29
    }
807
    bool IsBIP32() const override
808
0
    {
809
        // musig() can only be a BIP 32 key if all participants are bip32 too
810
0
        return std::all_of(m_participants.begin(), m_participants.end(), [](const auto& pubkey) { return pubkey->IsBIP32(); });
811
0
    }
812
    size_t GetKeyCount() const override
813
38
    {
814
38
        return 1 + m_participants.size();
815
38
    }
816
    bool CanSelfExpand() const override
817
114
    {
818
        // Participants must be self expandable for all MuSig expressions to be self expandable; the aggregate pubkey cannot be stored
819
        // in the descriptor cache, so even aggregate-then-derive still requires the self expansion of participants prior to aggregation.
820
282
        for (const auto& key : m_participants) {
821
282
            if (!key->CanSelfExpand()) return false;
822
282
        }
823
102
        return true;
824
114
    }
825
};
826
827
/** Base class for all Descriptor implementations. */
828
class DescriptorImpl : public Descriptor
829
{
830
protected:
831
    //! Public key arguments for this descriptor (size 1 for PK, PKH, WPKH; any size for WSH and Multisig).
832
    const std::vector<std::unique_ptr<PubkeyProvider>> m_pubkey_args;
833
    //! The string name of the descriptor function.
834
    const std::string m_name;
835
    //! Warnings (not including subdescriptors).
836
    std::vector<std::string> m_warnings;
837
838
    //! The sub-descriptor arguments (empty for everything but SH and WSH).
839
    //! In doc/descriptors.md this is referred to as SCRIPT expressions sh(SCRIPT)
840
    //! and wsh(SCRIPT), and distinct from KEY expressions and ADDR expressions.
841
    //! Subdescriptors can only ever generate a single script.
842
    const std::vector<std::unique_ptr<DescriptorImpl>> m_subdescriptor_args;
843
844
    //! Return a serialization of anything except pubkey and script arguments, to be prepended to those.
845
245k
    virtual std::string ToStringExtra() const { return ""; }
846
847
    /** A helper function to construct the scripts for this descriptor.
848
     *
849
     *  This function is invoked once by ExpandHelper.
850
     *
851
     *  @param pubkeys The evaluations of the m_pubkey_args field.
852
     *  @param scripts The evaluations of m_subdescriptor_args (one for each m_subdescriptor_args element).
853
     *  @param out A FlatSigningProvider to put scripts or public keys in that are necessary to the solver.
854
     *             The origin info of the provided pubkeys is automatically added.
855
     *  @return A vector with scriptPubKeys for this descriptor.
856
     */
857
    virtual std::vector<CScript> MakeScripts(const std::vector<CPubKey>& pubkeys, std::span<const CScript> scripts, FlatSigningProvider& out) const = 0;
858
859
public:
860
304k
    DescriptorImpl(std::vector<std::unique_ptr<PubkeyProvider>> pubkeys, const std::string& name) : m_pubkey_args(std::move(pubkeys)), m_name(name), m_subdescriptor_args() {}
861
23.3k
    DescriptorImpl(std::vector<std::unique_ptr<PubkeyProvider>> pubkeys, std::unique_ptr<DescriptorImpl> script, const std::string& name) : m_pubkey_args(std::move(pubkeys)), m_name(name), m_subdescriptor_args(Vector(std::move(script))) {}
862
7.87k
    DescriptorImpl(std::vector<std::unique_ptr<PubkeyProvider>> pubkeys, std::vector<std::unique_ptr<DescriptorImpl>> scripts, const std::string& name) : m_pubkey_args(std::move(pubkeys)), m_name(name), m_subdescriptor_args(std::move(scripts)) {}
863
864
    enum class StringType
865
    {
866
        PUBLIC,
867
        PRIVATE,
868
        NORMALIZED,
869
        COMPAT, // string calculation that mustn't change over time to stay compatible with previous software versions
870
    };
871
872
    // NOLINTNEXTLINE(misc-no-recursion)
873
    bool IsSolvable() const override
874
3.86k
    {
875
3.86k
        for (const auto& arg : m_subdescriptor_args) {
876
1.68k
            if (!arg->IsSolvable()) return false;
877
1.68k
        }
878
3.86k
        return true;
879
3.86k
    }
880
881
    // NOLINTNEXTLINE(misc-no-recursion)
882
    bool HavePrivateKeys(const SigningProvider& arg) const override
883
452
    {
884
452
        if (m_pubkey_args.empty() && m_subdescriptor_args.empty()) return false;
885
886
432
        for (const auto& sub: m_subdescriptor_args) {
887
167
            if (!sub->HavePrivateKeys(arg)) return false;
888
167
        }
889
890
353
        FlatSigningProvider tmp_provider;
891
385
        for (const auto& pubkey : m_pubkey_args) {
892
385
            tmp_provider.keys.clear();
893
385
            pubkey->GetPrivKey(0, arg, tmp_provider);
894
385
            if (tmp_provider.keys.empty()) return false;
895
385
        }
896
897
212
        return true;
898
353
    }
899
900
    // NOLINTNEXTLINE(misc-no-recursion)
901
    bool IsRange() const final
902
123k
    {
903
123k
        for (const auto& pubkey : m_pubkey_args) {
904
122k
            if (pubkey->IsRange()) return true;
905
122k
        }
906
24.8k
        for (const auto& arg : m_subdescriptor_args) {
907
9.22k
            if (arg->IsRange()) return true;
908
9.22k
        }
909
16.8k
        return false;
910
24.8k
    }
911
912
    // NOLINTNEXTLINE(misc-no-recursion)
913
    virtual bool ToStringSubScriptHelper(const SigningProvider* arg, std::string& ret, const StringType type, const DescriptorCache* cache = nullptr) const
914
243k
    {
915
243k
        size_t pos = 0;
916
243k
        bool is_private{type == StringType::PRIVATE};
917
        // For private string output, track if at least one key has a private key available.
918
        // Initialize to true for non-private types.
919
243k
        bool any_success{!is_private};
920
243k
        for (const auto& scriptarg : m_subdescriptor_args) {
921
28.6k
            if (pos++) ret += ",";
922
28.6k
            std::string tmp;
923
28.6k
            bool subscript_res{scriptarg->ToStringHelper(arg, tmp, type, cache)};
924
28.6k
            if (!is_private && !subscript_res) return false;
925
28.6k
            any_success = any_success || subscript_res;
926
28.6k
            ret += tmp;
927
28.6k
        }
928
243k
        return any_success;
929
243k
    }
930
931
    // NOLINTNEXTLINE(misc-no-recursion)
932
    virtual bool ToStringHelper(const SigningProvider* arg, std::string& out, const StringType type, const DescriptorCache* cache = nullptr) const
933
253k
    {
934
253k
        std::string extra = ToStringExtra();
935
253k
        size_t pos = extra.size() > 0 ? 1 : 0;
936
253k
        std::string ret = m_name + "(" + extra;
937
253k
        bool is_private{type == StringType::PRIVATE};
938
        // For private string output, track if at least one key has a private key available.
939
        // Initialize to true for non-private types.
940
253k
        bool any_success{!is_private};
941
942
334k
        for (const auto& pubkey : m_pubkey_args) {
943
334k
            if (pos++) ret += ",";
944
334k
            std::string tmp;
945
334k
            switch (type) {
946
15.6k
                case StringType::NORMALIZED:
947
15.6k
                    if (!pubkey->ToNormalizedString(*arg, tmp, cache)) return false;
948
15.6k
                    break;
949
15.6k
                case StringType::PRIVATE:
950
1.45k
                    any_success = pubkey->ToPrivateString(*arg, tmp) || any_success;
951
1.45k
                    break;
952
300k
                case StringType::PUBLIC:
953
300k
                    tmp = pubkey->ToString();
954
300k
                    break;
955
17.2k
                case StringType::COMPAT:
956
17.2k
                    tmp = pubkey->ToString(PubkeyProvider::StringType::COMPAT);
957
17.2k
                    break;
958
334k
            }
959
334k
            ret += tmp;
960
334k
        }
961
253k
        std::string subscript;
962
253k
        bool subscript_res{ToStringSubScriptHelper(arg, subscript, type, cache)};
963
253k
        if (!is_private && !subscript_res) return false;
964
253k
        any_success = any_success || subscript_res;
965
253k
        if (pos && subscript.size()) ret += ',';
966
253k
        out = std::move(ret) + std::move(subscript) + ")";
967
253k
        return any_success;
968
253k
    }
969
970
    std::string ToString(bool compat_format) const final
971
208k
    {
972
208k
        std::string ret;
973
208k
        ToStringHelper(nullptr, ret, compat_format ? StringType::COMPAT : StringType::PUBLIC);
974
208k
        return AddChecksum(ret);
975
208k
    }
976
977
    bool ToPrivateString(const SigningProvider& arg, std::string& out) const override
978
1.11k
    {
979
1.11k
        bool has_priv_key{ToStringHelper(&arg, out, StringType::PRIVATE)};
980
1.11k
        out = AddChecksum(out);
981
1.11k
        return has_priv_key;
982
1.11k
    }
983
984
    bool ToNormalizedString(const SigningProvider& arg, std::string& out, const DescriptorCache* cache) const override final
985
11.2k
    {
986
11.2k
        bool ret = ToStringHelper(&arg, out, StringType::NORMALIZED, cache);
987
11.2k
        out = AddChecksum(out);
988
11.2k
        return ret;
989
11.2k
    }
990
991
    // NOLINTNEXTLINE(misc-no-recursion)
992
    bool ExpandHelper(int pos, const SigningProvider& arg, const DescriptorCache* read_cache, std::vector<CScript>& output_scripts, FlatSigningProvider& out, DescriptorCache* write_cache) const
993
770k
    {
994
770k
        FlatSigningProvider subprovider;
995
770k
        std::vector<CPubKey> pubkeys;
996
770k
        pubkeys.reserve(m_pubkey_args.size());
997
998
        // Construct temporary data in `pubkeys`, `subscripts`, and `subprovider` to avoid producing output in case of failure.
999
1.72M
        for (const auto& p : m_pubkey_args) {
1000
1.72M
            std::optional<CPubKey> pubkey = p->GetPubKey(pos, arg, subprovider, read_cache, write_cache);
1001
1.72M
            if (!pubkey) return false;
1002
1.69M
            pubkeys.push_back(pubkey.value());
1003
1.69M
        }
1004
742k
        std::vector<CScript> subscripts;
1005
742k
        for (const auto& subarg : m_subdescriptor_args) {
1006
166k
            std::vector<CScript> outscripts;
1007
166k
            if (!subarg->ExpandHelper(pos, arg, read_cache, outscripts, subprovider, write_cache)) return false;
1008
166k
            assert(outscripts.size() == 1);
1009
164k
            subscripts.emplace_back(std::move(outscripts[0]));
1010
164k
        }
1011
740k
        out.Merge(std::move(subprovider));
1012
1013
740k
        output_scripts = MakeScripts(pubkeys, std::span{subscripts}, out);
1014
740k
        return true;
1015
742k
    }
1016
1017
    bool Expand(int pos, const SigningProvider& provider, std::vector<CScript>& output_scripts, FlatSigningProvider& out, DescriptorCache* write_cache = nullptr) const final
1018
52.3k
    {
1019
52.3k
        return ExpandHelper(pos, provider, nullptr, output_scripts, out, write_cache);
1020
52.3k
    }
1021
1022
    bool ExpandFromCache(int pos, const DescriptorCache& read_cache, std::vector<CScript>& output_scripts, FlatSigningProvider& out) const final
1023
552k
    {
1024
552k
        return ExpandHelper(pos, DUMMY_SIGNING_PROVIDER, &read_cache, output_scripts, out, nullptr);
1025
552k
    }
1026
1027
    // NOLINTNEXTLINE(misc-no-recursion)
1028
    void ExpandPrivate(int pos, const SigningProvider& provider, FlatSigningProvider& out) const final
1029
17.6k
    {
1030
66.6k
        for (const auto& p : m_pubkey_args) {
1031
66.6k
            p->GetPrivKey(pos, provider, out);
1032
66.6k
        }
1033
17.6k
        for (const auto& arg : m_subdescriptor_args) {
1034
3.98k
            arg->ExpandPrivate(pos, provider, out);
1035
3.98k
        }
1036
17.6k
    }
1037
1038
411
    std::optional<OutputType> GetOutputType() const override { return std::nullopt; }
1039
1040
0
    std::optional<int64_t> ScriptSize() const override { return {}; }
1041
1042
    /** A helper for MaxSatisfactionWeight.
1043
     *
1044
     * @param use_max_sig Whether to assume ECDSA signatures will have a high-r.
1045
     * @return The maximum size of the satisfaction in raw bytes (with no witness meaning).
1046
     */
1047
0
    virtual std::optional<int64_t> MaxSatSize(bool use_max_sig) const { return {}; }
1048
1049
18
    std::optional<int64_t> MaxSatisfactionWeight(bool) const override { return {}; }
1050
1051
4
    std::optional<int64_t> MaxSatisfactionElems() const override { return {}; }
1052
1053
    // NOLINTNEXTLINE(misc-no-recursion)
1054
    void GetPubKeys(std::set<CPubKey>& pubkeys, std::set<CExtPubKey>& ext_pubs) const override
1055
380
    {
1056
380
        for (const auto& p : m_pubkey_args) {
1057
314
            std::optional<CPubKey> pub = p->GetRootPubKey();
1058
314
            if (pub) pubkeys.insert(*pub);
1059
314
            std::optional<CExtPubKey> ext_pub = p->GetRootExtPubKey();
1060
314
            if (ext_pub) ext_pubs.insert(*ext_pub);
1061
314
        }
1062
380
        for (const auto& arg : m_subdescriptor_args) {
1063
69
            arg->GetPubKeys(pubkeys, ext_pubs);
1064
69
        }
1065
380
    }
1066
1067
    virtual std::unique_ptr<DescriptorImpl> Clone() const = 0;
1068
1069
1.12k
    bool HasScripts() const override { return true; }
1070
1071
    // NOLINTNEXTLINE(misc-no-recursion)
1072
1.36k
    std::vector<std::string> Warnings() const override {
1073
1.36k
        std::vector<std::string> all = m_warnings;
1074
1.36k
        for (const auto& sub : m_subdescriptor_args) {
1075
571
            auto sub_w = sub->Warnings();
1076
571
            all.insert(all.end(), sub_w.begin(), sub_w.end());
1077
571
        }
1078
1.36k
        return all;
1079
1.36k
    }
1080
1081
    uint32_t GetMaxKeyExpr() const final
1082
238
    {
1083
238
        uint32_t max_key_expr{0};
1084
238
        std::vector<const DescriptorImpl*> todo = {this};
1085
652
        while (!todo.empty()) {
1086
414
            const DescriptorImpl* desc = todo.back();
1087
414
            todo.pop_back();
1088
502
            for (const auto& p : desc->m_pubkey_args) {
1089
502
                max_key_expr = std::max(max_key_expr, p->m_expr_index);
1090
502
            }
1091
414
            for (const auto& s : desc->m_subdescriptor_args) {
1092
176
                todo.push_back(s.get());
1093
176
            }
1094
414
        }
1095
238
        return max_key_expr;
1096
238
    }
1097
1098
    size_t GetKeyCount() const final
1099
238
    {
1100
238
        size_t count{0};
1101
238
        std::vector<const DescriptorImpl*> todo = {this};
1102
652
        while (!todo.empty()) {
1103
414
            const DescriptorImpl* desc = todo.back();
1104
414
            todo.pop_back();
1105
502
            for (const auto& p : desc->m_pubkey_args) {
1106
502
                count += p->GetKeyCount();
1107
502
            }
1108
414
            for (const auto& s : desc->m_subdescriptor_args) {
1109
176
                todo.push_back(s.get());
1110
176
            }
1111
414
        }
1112
238
        return count;
1113
238
    }
1114
1115
    // NOLINTNEXTLINE(misc-no-recursion)
1116
    bool CanSelfExpand() const override
1117
1.33k
    {
1118
1.55k
        for (const auto& key : m_pubkey_args) {
1119
1.55k
            if (!key->CanSelfExpand()) return false;
1120
1.55k
        }
1121
1.24k
        for (const auto& sub : m_subdescriptor_args) {
1122
540
            if (!sub->CanSelfExpand()) return false;
1123
540
        }
1124
1.20k
        return true;
1125
1.24k
    }
1126
};
1127
1128
/** A parsed addr(A) descriptor. */
1129
class AddressDescriptor final : public DescriptorImpl
1130
{
1131
    const CTxDestination m_destination;
1132
protected:
1133
3.13k
    std::string ToStringExtra() const override { return EncodeDestination(m_destination); }
1134
130
    std::vector<CScript> MakeScripts(const std::vector<CPubKey>&, std::span<const CScript>, FlatSigningProvider&) const override { return Vector(GetScriptForDestination(m_destination)); }
1135
public:
1136
3.13k
    AddressDescriptor(CTxDestination destination) : DescriptorImpl({}, "addr"), m_destination(std::move(destination)) {}
1137
14
    bool IsSolvable() const final { return false; }
1138
1139
    std::optional<OutputType> GetOutputType() const override
1140
33
    {
1141
33
        return OutputTypeFromDestination(m_destination);
1142
33
    }
1143
0
    bool IsSingleType() const final { return true; }
1144
0
    bool ToPrivateString(const SigningProvider& arg, std::string& out) const final { return false; }
1145
1146
0
    std::optional<int64_t> ScriptSize() const override { return GetScriptForDestination(m_destination).size(); }
1147
    std::unique_ptr<DescriptorImpl> Clone() const override
1148
0
    {
1149
0
        return std::make_unique<AddressDescriptor>(m_destination);
1150
0
    }
1151
};
1152
1153
/** A parsed raw(H) descriptor. */
1154
class RawDescriptor final : public DescriptorImpl
1155
{
1156
    const CScript m_script;
1157
protected:
1158
2.09k
    std::string ToStringExtra() const override { return HexStr(m_script); }
1159
2.33k
    std::vector<CScript> MakeScripts(const std::vector<CPubKey>&, std::span<const CScript>, FlatSigningProvider&) const override { return Vector(m_script); }
1160
public:
1161
4.29k
    RawDescriptor(CScript script) : DescriptorImpl({}, "raw"), m_script(std::move(script)) {}
1162
0
    bool IsSolvable() const final { return false; }
1163
1164
    std::optional<OutputType> GetOutputType() const override
1165
5
    {
1166
5
        CTxDestination dest;
1167
5
        ExtractDestination(m_script, dest);
1168
5
        return OutputTypeFromDestination(dest);
1169
5
    }
1170
0
    bool IsSingleType() const final { return true; }
1171
0
    bool ToPrivateString(const SigningProvider& arg, std::string& out) const final { return false; }
1172
1173
0
    std::optional<int64_t> ScriptSize() const override { return m_script.size(); }
1174
1175
    std::unique_ptr<DescriptorImpl> Clone() const override
1176
0
    {
1177
0
        return std::make_unique<RawDescriptor>(m_script);
1178
0
    }
1179
};
1180
1181
/** A parsed pk(P) descriptor. */
1182
class PKDescriptor final : public DescriptorImpl
1183
{
1184
private:
1185
    const bool m_xonly;
1186
protected:
1187
    std::vector<CScript> MakeScripts(const std::vector<CPubKey>& keys, std::span<const CScript>, FlatSigningProvider&) const override
1188
27.9k
    {
1189
27.9k
        if (m_xonly) {
1190
27.6k
            CScript script = CScript() << ToByteVector(XOnlyPubKey(keys[0])) << OP_CHECKSIG;
1191
27.6k
            return Vector(std::move(script));
1192
27.6k
        } else {
1193
308
            return Vector(GetScriptForRawPubKey(keys[0]));
1194
308
        }
1195
27.9k
    }
1196
public:
1197
22.6k
    PKDescriptor(std::unique_ptr<PubkeyProvider> prov, bool xonly = false) : DescriptorImpl(Vector(std::move(prov)), "pk"), m_xonly(xonly) {}
1198
6
    bool IsSingleType() const final { return true; }
1199
1200
11
    std::optional<int64_t> ScriptSize() const override {
1201
11
        return 1 + (m_xonly ? 32 : m_pubkey_args[0]->GetSize()) + 1;
1202
11
    }
1203
1204
64
    std::optional<int64_t> MaxSatSize(bool use_max_sig) const override {
1205
64
        const auto ecdsa_sig_size = use_max_sig ? 72 : 71;
1206
64
        return 1 + (m_xonly ? 65 : ecdsa_sig_size);
1207
64
    }
1208
1209
58
    std::optional<int64_t> MaxSatisfactionWeight(bool use_max_sig) const override {
1210
58
        return *MaxSatSize(use_max_sig) * WITNESS_SCALE_FACTOR;
1211
58
    }
1212
1213
56
    std::optional<int64_t> MaxSatisfactionElems() const override { return 1; }
1214
1215
    std::unique_ptr<DescriptorImpl> Clone() const override
1216
15
    {
1217
15
        return std::make_unique<PKDescriptor>(m_pubkey_args.at(0)->Clone(), m_xonly);
1218
15
    }
1219
};
1220
1221
/** A parsed pkh(P) descriptor. */
1222
class PKHDescriptor final : public DescriptorImpl
1223
{
1224
protected:
1225
    std::vector<CScript> MakeScripts(const std::vector<CPubKey>& keys, std::span<const CScript>, FlatSigningProvider&) const override
1226
143k
    {
1227
143k
        CKeyID id = keys[0].GetID();
1228
143k
        return Vector(GetScriptForDestination(PKHash(id)));
1229
143k
    }
1230
public:
1231
85.5k
    PKHDescriptor(std::unique_ptr<PubkeyProvider> prov) : DescriptorImpl(Vector(std::move(prov)), "pkh") {}
1232
70.0k
    std::optional<OutputType> GetOutputType() const override { return OutputType::LEGACY; }
1233
17.6k
    bool IsSingleType() const final { return true; }
1234
1235
85
    std::optional<int64_t> ScriptSize() const override { return 1 + 1 + 1 + 20 + 1 + 1; }
1236
1237
50.0k
    std::optional<int64_t> MaxSatSize(bool use_max_sig) const override {
1238
50.0k
        const auto sig_size = use_max_sig ? 72 : 71;
1239
50.0k
        return 1 + sig_size + 1 + m_pubkey_args[0]->GetSize();
1240
50.0k
    }
1241
1242
49.9k
    std::optional<int64_t> MaxSatisfactionWeight(bool use_max_sig) const override {
1243
49.9k
        return *MaxSatSize(use_max_sig) * WITNESS_SCALE_FACTOR;
1244
49.9k
    }
1245
1246
50.0k
    std::optional<int64_t> MaxSatisfactionElems() const override { return 2; }
1247
1248
    std::unique_ptr<DescriptorImpl> Clone() const override
1249
0
    {
1250
0
        return std::make_unique<PKHDescriptor>(m_pubkey_args.at(0)->Clone());
1251
0
    }
1252
};
1253
1254
/** A parsed wpkh(P) descriptor. */
1255
class WPKHDescriptor final : public DescriptorImpl
1256
{
1257
protected:
1258
    std::vector<CScript> MakeScripts(const std::vector<CPubKey>& keys, std::span<const CScript>, FlatSigningProvider&) const override
1259
265k
    {
1260
265k
        CKeyID id = keys[0].GetID();
1261
265k
        return Vector(GetScriptForDestination(WitnessV0KeyHash(id)));
1262
265k
    }
1263
public:
1264
170k
    WPKHDescriptor(std::unique_ptr<PubkeyProvider> prov) : DescriptorImpl(Vector(std::move(prov)), "wpkh") {}
1265
153k
    std::optional<OutputType> GetOutputType() const override { return OutputType::BECH32; }
1266
28.7k
    bool IsSingleType() const final { return true; }
1267
1268
1.63k
    std::optional<int64_t> ScriptSize() const override { return 1 + 1 + 20; }
1269
1270
126k
    std::optional<int64_t> MaxSatSize(bool use_max_sig) const override {
1271
126k
        const auto sig_size = use_max_sig ? 72 : 71;
1272
126k
        return (1 + sig_size + 1 + 33);
1273
126k
    }
1274
1275
125k
    std::optional<int64_t> MaxSatisfactionWeight(bool use_max_sig) const override {
1276
125k
        return MaxSatSize(use_max_sig);
1277
125k
    }
1278
1279
126k
    std::optional<int64_t> MaxSatisfactionElems() const override { return 2; }
1280
1281
    std::unique_ptr<DescriptorImpl> Clone() const override
1282
0
    {
1283
0
        return std::make_unique<WPKHDescriptor>(m_pubkey_args.at(0)->Clone());
1284
0
    }
1285
};
1286
1287
/** A parsed combo(P) descriptor. */
1288
class ComboDescriptor final : public DescriptorImpl
1289
{
1290
protected:
1291
    std::vector<CScript> MakeScripts(const std::vector<CPubKey>& keys, std::span<const CScript>, FlatSigningProvider& out) const override
1292
19.2k
    {
1293
19.2k
        std::vector<CScript> ret;
1294
19.2k
        CKeyID id = keys[0].GetID();
1295
19.2k
        ret.emplace_back(GetScriptForRawPubKey(keys[0])); // P2PK
1296
19.2k
        ret.emplace_back(GetScriptForDestination(PKHash(id))); // P2PKH
1297
19.2k
        if (keys[0].IsCompressed()) {
1298
19.2k
            CScript p2wpkh = GetScriptForDestination(WitnessV0KeyHash(id));
1299
19.2k
            out.scripts.emplace(CScriptID(p2wpkh), p2wpkh);
1300
19.2k
            ret.emplace_back(p2wpkh);
1301
19.2k
            ret.emplace_back(GetScriptForDestination(ScriptHash(p2wpkh))); // P2SH-P2WPKH
1302
19.2k
        }
1303
19.2k
        return ret;
1304
19.2k
    }
1305
public:
1306
558
    ComboDescriptor(std::unique_ptr<PubkeyProvider> prov) : DescriptorImpl(Vector(std::move(prov)), "combo") {}
1307
5
    bool IsSingleType() const final { return false; }
1308
    std::unique_ptr<DescriptorImpl> Clone() const override
1309
0
    {
1310
0
        return std::make_unique<ComboDescriptor>(m_pubkey_args.at(0)->Clone());
1311
0
    }
1312
};
1313
1314
/** A parsed multi(...) or sortedmulti(...) descriptor */
1315
class MultisigDescriptor final : public DescriptorImpl
1316
{
1317
    const int m_threshold;
1318
    const bool m_sorted;
1319
protected:
1320
1.10k
    std::string ToStringExtra() const override { return strprintf("%i", m_threshold); }
1321
18.6k
    std::vector<CScript> MakeScripts(const std::vector<CPubKey>& keys, std::span<const CScript>, FlatSigningProvider&) const override {
1322
18.6k
        if (m_sorted) {
1323
2.83k
            std::vector<CPubKey> sorted_keys(keys);
1324
2.83k
            std::sort(sorted_keys.begin(), sorted_keys.end());
1325
2.83k
            return Vector(GetScriptForMultisig(m_threshold, sorted_keys));
1326
2.83k
        }
1327
15.8k
        return Vector(GetScriptForMultisig(m_threshold, keys));
1328
18.6k
    }
1329
public:
1330
906
    MultisigDescriptor(int threshold, std::vector<std::unique_ptr<PubkeyProvider>> providers, bool sorted = false) : DescriptorImpl(std::move(providers), sorted ? "sortedmulti" : "multi"), m_threshold(threshold), m_sorted(sorted) {}
1331
8
    bool IsSingleType() const final { return true; }
1332
1333
239
    std::optional<int64_t> ScriptSize() const override {
1334
239
        const auto n_keys = m_pubkey_args.size();
1335
742
        auto op = [](int64_t acc, const std::unique_ptr<PubkeyProvider>& pk) { return acc + 1 + pk->GetSize();};
1336
239
        const auto pubkeys_size{std::accumulate(m_pubkey_args.begin(), m_pubkey_args.end(), int64_t{0}, op)};
1337
239
        return 1 + BuildScript(n_keys).size() + BuildScript(m_threshold).size() + pubkeys_size;
1338
239
    }
1339
1340
247
    std::optional<int64_t> MaxSatSize(bool use_max_sig) const override {
1341
247
        const auto sig_size = use_max_sig ? 72 : 71;
1342
247
        return (1 + (1 + sig_size) * m_threshold);
1343
247
    }
1344
1345
16
    std::optional<int64_t> MaxSatisfactionWeight(bool use_max_sig) const override {
1346
16
        return *MaxSatSize(use_max_sig) * WITNESS_SCALE_FACTOR;
1347
16
    }
1348
1349
224
    std::optional<int64_t> MaxSatisfactionElems() const override { return 1 + m_threshold; }
1350
1351
    std::unique_ptr<DescriptorImpl> Clone() const override
1352
0
    {
1353
0
        std::vector<std::unique_ptr<PubkeyProvider>> providers;
1354
0
        providers.reserve(m_pubkey_args.size());
1355
0
        std::transform(m_pubkey_args.begin(), m_pubkey_args.end(), std::back_inserter(providers), [](const std::unique_ptr<PubkeyProvider>& p) { return p->Clone(); });
1356
0
        return std::make_unique<MultisigDescriptor>(m_threshold, std::move(providers), m_sorted);
1357
0
    }
1358
};
1359
1360
/** A parsed (sorted)multi_a(...) descriptor. Always uses x-only pubkeys. */
1361
class MultiADescriptor final : public DescriptorImpl
1362
{
1363
    const int m_threshold;
1364
    const bool m_sorted;
1365
protected:
1366
802
    std::string ToStringExtra() const override { return strprintf("%i", m_threshold); }
1367
6.95k
    std::vector<CScript> MakeScripts(const std::vector<CPubKey>& keys, std::span<const CScript>, FlatSigningProvider&) const override {
1368
6.95k
        CScript ret;
1369
6.95k
        std::vector<XOnlyPubKey> xkeys;
1370
6.95k
        xkeys.reserve(keys.size());
1371
992k
        for (const auto& key : keys) xkeys.emplace_back(key);
1372
6.95k
        if (m_sorted) std::sort(xkeys.begin(), xkeys.end());
1373
6.95k
        ret << ToByteVector(xkeys[0]) << OP_CHECKSIG;
1374
992k
        for (size_t i = 1; i < keys.size(); ++i) {
1375
985k
            ret << ToByteVector(xkeys[i]) << OP_CHECKSIGADD;
1376
985k
        }
1377
6.95k
        ret << m_threshold << OP_NUMEQUAL;
1378
6.95k
        return Vector(std::move(ret));
1379
6.95k
    }
1380
public:
1381
924
    MultiADescriptor(int threshold, std::vector<std::unique_ptr<PubkeyProvider>> providers, bool sorted = false) : DescriptorImpl(std::move(providers), sorted ? "sortedmulti_a" : "multi_a"), m_threshold(threshold), m_sorted(sorted) {}
1382
0
    bool IsSingleType() const final { return true; }
1383
1384
0
    std::optional<int64_t> ScriptSize() const override {
1385
0
        const auto n_keys = m_pubkey_args.size();
1386
0
        return (1 + 32 + 1) * n_keys + BuildScript(m_threshold).size() + 1;
1387
0
    }
1388
1389
0
    std::optional<int64_t> MaxSatSize(bool use_max_sig) const override {
1390
0
        return (1 + 65) * m_threshold + (m_pubkey_args.size() - m_threshold);
1391
0
    }
1392
1393
0
    std::optional<int64_t> MaxSatisfactionElems() const override { return m_pubkey_args.size(); }
1394
1395
    std::unique_ptr<DescriptorImpl> Clone() const override
1396
0
    {
1397
0
        std::vector<std::unique_ptr<PubkeyProvider>> providers;
1398
0
        providers.reserve(m_pubkey_args.size());
1399
0
        for (const auto& arg : m_pubkey_args) {
1400
0
            providers.push_back(arg->Clone());
1401
0
        }
1402
0
        return std::make_unique<MultiADescriptor>(m_threshold, std::move(providers), m_sorted);
1403
0
    }
1404
};
1405
1406
/** A parsed sh(...) descriptor. */
1407
class SHDescriptor final : public DescriptorImpl
1408
{
1409
protected:
1410
    std::vector<CScript> MakeScripts(const std::vector<CPubKey>&, std::span<const CScript> scripts, FlatSigningProvider& out) const override
1411
112k
    {
1412
112k
        auto ret = Vector(GetScriptForDestination(ScriptHash(scripts[0])));
1413
112k
        if (ret.size()) out.scripts.emplace(CScriptID(scripts[0]), scripts[0]);
1414
112k
        return ret;
1415
112k
    }
1416
1417
7.91k
    bool IsSegwit() const { return m_subdescriptor_args[0]->GetOutputType() == OutputType::BECH32; }
1418
1419
public:
1420
22.2k
    SHDescriptor(std::unique_ptr<DescriptorImpl> desc) : DescriptorImpl({}, std::move(desc), "sh") {}
1421
1422
    std::optional<OutputType> GetOutputType() const override
1423
6.14k
    {
1424
6.14k
        assert(m_subdescriptor_args.size() == 1);
1425
6.14k
        if (IsSegwit()) return OutputType::P2SH_SEGWIT;
1426
122
        return OutputType::LEGACY;
1427
6.14k
    }
1428
1.56k
    bool IsSingleType() const final { return true; }
1429
1430
24
    std::optional<int64_t> ScriptSize() const override { return 1 + 1 + 20 + 1; }
1431
1432
1.76k
    std::optional<int64_t> MaxSatisfactionWeight(bool use_max_sig) const override {
1433
1.76k
        if (const auto sat_size = m_subdescriptor_args[0]->MaxSatSize(use_max_sig)) {
1434
1.76k
            if (const auto subscript_size = m_subdescriptor_args[0]->ScriptSize()) {
1435
                // The subscript is never witness data.
1436
1.76k
                const auto subscript_weight = (1 + *subscript_size) * WITNESS_SCALE_FACTOR;
1437
                // The weight depends on whether the inner descriptor is satisfied using the witness stack.
1438
1.76k
                if (IsSegwit()) return subscript_weight + *sat_size;
1439
58
                return subscript_weight + *sat_size * WITNESS_SCALE_FACTOR;
1440
1.76k
            }
1441
1.76k
        }
1442
0
        return {};
1443
1.76k
    }
1444
1445
1.74k
    std::optional<int64_t> MaxSatisfactionElems() const override {
1446
1.74k
        if (const auto sub_elems = m_subdescriptor_args[0]->MaxSatisfactionElems()) return 1 + *sub_elems;
1447
0
        return {};
1448
1.74k
    }
1449
1450
    std::unique_ptr<DescriptorImpl> Clone() const override
1451
0
    {
1452
0
        return std::make_unique<SHDescriptor>(m_subdescriptor_args.at(0)->Clone());
1453
0
    }
1454
};
1455
1456
/** A parsed wsh(...) descriptor. */
1457
class WSHDescriptor final : public DescriptorImpl
1458
{
1459
protected:
1460
    std::vector<CScript> MakeScripts(const std::vector<CPubKey>&, std::span<const CScript> scripts, FlatSigningProvider& out) const override
1461
17.1k
    {
1462
17.1k
        auto ret = Vector(GetScriptForDestination(WitnessV0ScriptHash(scripts[0])));
1463
17.1k
        if (ret.size()) out.scripts.emplace(CScriptID(scripts[0]), scripts[0]);
1464
17.1k
        return ret;
1465
17.1k
    }
1466
public:
1467
1.10k
    WSHDescriptor(std::unique_ptr<DescriptorImpl> desc) : DescriptorImpl({}, std::move(desc), "wsh") {}
1468
918
    std::optional<OutputType> GetOutputType() const override { return OutputType::BECH32; }
1469
415
    bool IsSingleType() const final { return true; }
1470
1471
97
    std::optional<int64_t> ScriptSize() const override { return 1 + 1 + 32; }
1472
1473
409
    std::optional<int64_t> MaxSatSize(bool use_max_sig) const override {
1474
409
        if (const auto sat_size = m_subdescriptor_args[0]->MaxSatSize(use_max_sig)) {
1475
409
            if (const auto subscript_size = m_subdescriptor_args[0]->ScriptSize()) {
1476
409
                return GetSizeOfCompactSize(*subscript_size) + *subscript_size + *sat_size;
1477
409
            }
1478
409
        }
1479
0
        return {};
1480
409
    }
1481
1482
330
    std::optional<int64_t> MaxSatisfactionWeight(bool use_max_sig) const override {
1483
330
        return MaxSatSize(use_max_sig);
1484
330
    }
1485
1486
383
    std::optional<int64_t> MaxSatisfactionElems() const override {
1487
383
        if (const auto sub_elems = m_subdescriptor_args[0]->MaxSatisfactionElems()) return 1 + *sub_elems;
1488
0
        return {};
1489
383
    }
1490
1491
    std::unique_ptr<DescriptorImpl> Clone() const override
1492
0
    {
1493
0
        return std::make_unique<WSHDescriptor>(m_subdescriptor_args.at(0)->Clone());
1494
0
    }
1495
};
1496
1497
/** A parsed tr(...) descriptor. */
1498
class TRDescriptor final : public DescriptorImpl
1499
{
1500
    std::vector<int> m_depths;
1501
protected:
1502
    std::vector<CScript> MakeScripts(const std::vector<CPubKey>& keys, std::span<const CScript> scripts, FlatSigningProvider& out) const override
1503
123k
    {
1504
123k
        TaprootBuilder builder;
1505
123k
        assert(m_depths.size() == scripts.size());
1506
158k
        for (size_t pos = 0; pos < m_depths.size(); ++pos) {
1507
35.2k
            builder.Add(m_depths[pos], scripts[pos], TAPROOT_LEAF_TAPSCRIPT);
1508
35.2k
        }
1509
123k
        if (!builder.IsComplete()) return {};
1510
123k
        assert(keys.size() == 1);
1511
123k
        XOnlyPubKey xpk(keys[0]);
1512
123k
        if (!xpk.IsFullyValid()) return {};
1513
123k
        builder.Finalize(xpk);
1514
123k
        WitnessV1Taproot output = builder.GetOutput();
1515
123k
        out.tr_trees[output] = builder;
1516
123k
        return Vector(GetScriptForDestination(output));
1517
123k
    }
1518
    bool ToStringSubScriptHelper(const SigningProvider* arg, std::string& ret, const StringType type, const DescriptorCache* cache = nullptr) const override
1519
9.67k
    {
1520
9.67k
        if (m_depths.empty()) {
1521
            // If there are no sub-descriptors and a PRIVATE string
1522
            // is requested, return `false` to indicate that the presence
1523
            // of a private key depends solely on the internal key (which is checked
1524
            // in the caller), not on any sub-descriptor. This ensures correct behavior for
1525
            // descriptors like tr(internal_key) when checking for private keys.
1526
7.31k
            return type != StringType::PRIVATE;
1527
7.31k
        }
1528
2.35k
        std::vector<bool> path;
1529
2.35k
        bool is_private{type == StringType::PRIVATE};
1530
        // For private string output, track if at least one key has a private key available.
1531
        // Initialize to true for non-private types.
1532
2.35k
        bool any_success{!is_private};
1533
1534
7.54k
        for (size_t pos = 0; pos < m_depths.size(); ++pos) {
1535
5.19k
            if (pos) ret += ',';
1536
10.3k
            while ((int)path.size() <= m_depths[pos]) {
1537
5.19k
                if (path.size()) ret += '{';
1538
5.19k
                path.push_back(false);
1539
5.19k
            }
1540
5.19k
            std::string tmp;
1541
5.19k
            bool subscript_res{m_subdescriptor_args[pos]->ToStringHelper(arg, tmp, type, cache)};
1542
5.19k
            if (!is_private && !subscript_res) return false;
1543
5.19k
            any_success = any_success || subscript_res;
1544
5.19k
            ret += tmp;
1545
8.03k
            while (!path.empty() && path.back()) {
1546
2.83k
                if (path.size() > 1) ret += '}';
1547
2.83k
                path.pop_back();
1548
2.83k
            }
1549
5.19k
            if (!path.empty()) path.back() = true;
1550
5.19k
        }
1551
2.35k
        return any_success;
1552
2.35k
    }
1553
public:
1554
    TRDescriptor(std::unique_ptr<PubkeyProvider> internal_key, std::vector<std::unique_ptr<DescriptorImpl>> descs, std::vector<int> depths) :
1555
7.87k
        DescriptorImpl(Vector(std::move(internal_key)), std::move(descs), "tr"), m_depths(std::move(depths))
1556
7.87k
    {
1557
7.87k
        assert(m_subdescriptor_args.size() == m_depths.size());
1558
7.87k
    }
1559
10.0k
    std::optional<OutputType> GetOutputType() const override { return OutputType::BECH32M; }
1560
2.01k
    bool IsSingleType() const final { return true; }
1561
1562
28
    std::optional<int64_t> ScriptSize() const override { return 1 + 1 + 32; }
1563
1564
4.83k
    std::optional<int64_t> MaxSatisfactionWeight(bool) const override {
1565
        // FIXME: We assume keypath spend, which can lead to very large underestimations.
1566
4.83k
        return 1 + 65;
1567
4.83k
    }
1568
1569
4.80k
    std::optional<int64_t> MaxSatisfactionElems() const override {
1570
        // FIXME: See above, we assume keypath spend.
1571
4.80k
        return 1;
1572
4.80k
    }
1573
1574
    std::unique_ptr<DescriptorImpl> Clone() const override
1575
0
    {
1576
0
        std::vector<std::unique_ptr<DescriptorImpl>> subdescs;
1577
0
        subdescs.reserve(m_subdescriptor_args.size());
1578
0
        std::transform(m_subdescriptor_args.begin(), m_subdescriptor_args.end(), std::back_inserter(subdescs), [](const std::unique_ptr<DescriptorImpl>& d) { return d->Clone(); });
1579
0
        return std::make_unique<TRDescriptor>(m_pubkey_args.at(0)->Clone(), std::move(subdescs), m_depths);
1580
0
    }
1581
};
1582
1583
/* We instantiate Miniscript here with a simple integer as key type.
1584
 * The value of these key integers are an index in the
1585
 * DescriptorImpl::m_pubkey_args vector.
1586
 */
1587
1588
/**
1589
 * The context for converting a Miniscript descriptor into a Script.
1590
 */
1591
class ScriptMaker {
1592
    //! Keys contained in the Miniscript (the evaluation of DescriptorImpl::m_pubkey_args).
1593
    const std::vector<CPubKey>& m_keys;
1594
    //! The script context we're operating within (Tapscript or P2WSH).
1595
    const miniscript::MiniscriptContext m_script_ctx;
1596
1597
    //! Get the ripemd160(sha256()) hash of this key.
1598
    //! Any key that is valid in a descriptor serializes as 32 bytes within a Tapscript context. So we
1599
    //! must not hash the sign-bit byte in this case.
1600
512
    uint160 GetHash160(uint32_t key) const {
1601
512
        if (miniscript::IsTapscript(m_script_ctx)) {
1602
241
            return Hash160(XOnlyPubKey{m_keys[key]});
1603
241
        }
1604
271
        return m_keys[key].GetID();
1605
512
    }
1606
1607
public:
1608
1.50k
    ScriptMaker(const std::vector<CPubKey>& keys LIFETIMEBOUND, const miniscript::MiniscriptContext script_ctx) : m_keys(keys), m_script_ctx{script_ctx} {}
1609
1610
2.84k
    std::vector<unsigned char> ToPKBytes(uint32_t key) const {
1611
        // In Tapscript keys always serialize as x-only, whether an x-only key was used in the descriptor or not.
1612
2.84k
        if (!miniscript::IsTapscript(m_script_ctx)) {
1613
1.92k
            return {m_keys[key].begin(), m_keys[key].end()};
1614
1.92k
        }
1615
917
        const XOnlyPubKey xonly_pubkey{m_keys[key]};
1616
917
        return {xonly_pubkey.begin(), xonly_pubkey.end()};
1617
2.84k
    }
1618
1619
512
    std::vector<unsigned char> ToPKHBytes(uint32_t key) const {
1620
512
        auto id = GetHash160(key);
1621
512
        return {id.begin(), id.end()};
1622
512
    }
1623
};
1624
1625
/**
1626
 * The context for converting a Miniscript descriptor to its textual form.
1627
 */
1628
class StringMaker {
1629
    //! To convert private keys for private descriptors.
1630
    const SigningProvider* m_arg;
1631
    //! Keys contained in the Miniscript (a reference to DescriptorImpl::m_pubkey_args).
1632
    const std::vector<std::unique_ptr<PubkeyProvider>>& m_pubkeys;
1633
    //! StringType to serialize keys
1634
    const DescriptorImpl::StringType m_type;
1635
    const DescriptorCache* m_cache;
1636
1637
public:
1638
    StringMaker(const SigningProvider* arg LIFETIMEBOUND,
1639
                const std::vector<std::unique_ptr<PubkeyProvider>>& pubkeys LIFETIMEBOUND,
1640
                DescriptorImpl::StringType type,
1641
                const DescriptorCache* cache LIFETIMEBOUND)
1642
1.10k
        : m_arg(arg), m_pubkeys(pubkeys), m_type(type), m_cache(cache) {}
1643
1644
    std::optional<std::string> ToString(uint32_t key, bool& has_priv_key) const
1645
5.19k
    {
1646
5.19k
        std::string ret;
1647
5.19k
        has_priv_key = false;
1648
5.19k
        switch (m_type) {
1649
4.06k
        case DescriptorImpl::StringType::PUBLIC:
1650
4.06k
            ret = m_pubkeys[key]->ToString();
1651
4.06k
            break;
1652
218
        case DescriptorImpl::StringType::PRIVATE:
1653
218
            has_priv_key = m_pubkeys[key]->ToPrivateString(*m_arg, ret);
1654
218
            break;
1655
516
        case DescriptorImpl::StringType::NORMALIZED:
1656
516
            if (!m_pubkeys[key]->ToNormalizedString(*m_arg, ret, m_cache)) return {};
1657
516
            break;
1658
516
        case DescriptorImpl::StringType::COMPAT:
1659
394
            ret = m_pubkeys[key]->ToString(PubkeyProvider::StringType::COMPAT);
1660
394
            break;
1661
5.19k
        }
1662
5.19k
        return ret;
1663
5.19k
    }
1664
};
1665
1666
class MiniscriptDescriptor final : public DescriptorImpl
1667
{
1668
private:
1669
    miniscript::Node<uint32_t> m_node;
1670
1671
protected:
1672
    std::vector<CScript> MakeScripts(const std::vector<CPubKey>& keys, std::span<const CScript> scripts,
1673
                                     FlatSigningProvider& provider) const override
1674
1.50k
    {
1675
1.50k
        const auto script_ctx{m_node.GetMsCtx()};
1676
3.35k
        for (const auto& key : keys) {
1677
3.35k
            if (miniscript::IsTapscript(script_ctx)) {
1678
1.15k
                provider.pubkeys.emplace(Hash160(XOnlyPubKey{key}), key);
1679
2.19k
            } else {
1680
2.19k
                provider.pubkeys.emplace(key.GetID(), key);
1681
2.19k
            }
1682
3.35k
        }
1683
1.50k
        return Vector(m_node.ToScript(ScriptMaker(keys, script_ctx)));
1684
1.50k
    }
1685
1686
public:
1687
    MiniscriptDescriptor(std::vector<std::unique_ptr<PubkeyProvider>> providers, miniscript::Node<uint32_t>&& node)
1688
804
        : DescriptorImpl(std::move(providers), "?"), m_node(std::move(node))
1689
804
    {
1690
        // Traverse miniscript tree for unsafe use of older()
1691
995k
        miniscript::ForEachNode(m_node, [&](const miniscript::Node<uint32_t>& node) {
1692
995k
            if (node.Fragment() == miniscript::Fragment::OLDER) {
1693
254
                const uint32_t raw = node.K();
1694
254
                const uint32_t value_part = raw & ~CTxIn::SEQUENCE_LOCKTIME_TYPE_FLAG;
1695
254
                if (value_part > CTxIn::SEQUENCE_LOCKTIME_MASK) {
1696
4
                    const bool is_time_based = (raw & CTxIn::SEQUENCE_LOCKTIME_TYPE_FLAG) != 0;
1697
4
                    if (is_time_based) {
1698
2
                        m_warnings.push_back(strprintf("time-based relative locktime: older(%u) > (65535 * 512) seconds is unsafe", raw));
1699
2
                    } else {
1700
2
                        m_warnings.push_back(strprintf("height-based relative locktime: older(%u) > 65535 blocks is unsafe", raw));
1701
2
                    }
1702
4
                }
1703
254
            }
1704
995k
        });
1705
804
    }
1706
1707
    bool ToStringHelper(const SigningProvider* arg, std::string& out, const StringType type,
1708
                        const DescriptorCache* cache = nullptr) const override
1709
1.10k
    {
1710
1.10k
        bool has_priv_key{false};
1711
1.10k
        auto res = m_node.ToString(StringMaker(arg, m_pubkey_args, type, cache), has_priv_key);
1712
1.10k
        if (res) out = *res;
1713
1.10k
        if (type == StringType::PRIVATE) {
1714
89
            Assume(res.has_value());
1715
89
            return has_priv_key;
1716
1.01k
        } else {
1717
1.01k
            return res.has_value();
1718
1.01k
        }
1719
1.10k
    }
1720
1721
351
    bool IsSolvable() const override { return true; }
1722
0
    bool IsSingleType() const final { return true; }
1723
1724
157
    std::optional<int64_t> ScriptSize() const override { return m_node.ScriptSize(); }
1725
1726
    std::optional<int64_t> MaxSatSize(bool) const override
1727
157
    {
1728
        // For Miniscript we always assume high-R ECDSA signatures.
1729
157
        return m_node.GetWitnessSize();
1730
157
    }
1731
1732
    std::optional<int64_t> MaxSatisfactionElems() const override
1733
141
    {
1734
141
        return m_node.GetStackSize();
1735
141
    }
1736
1737
    std::unique_ptr<DescriptorImpl> Clone() const override
1738
5
    {
1739
5
        std::vector<std::unique_ptr<PubkeyProvider>> providers;
1740
5
        providers.reserve(m_pubkey_args.size());
1741
5
        for (const auto& arg : m_pubkey_args) {
1742
5
            providers.push_back(arg->Clone());
1743
5
        }
1744
5
        return std::make_unique<MiniscriptDescriptor>(std::move(providers), m_node.Clone());
1745
5
    }
1746
};
1747
1748
/** A parsed rawtr(...) descriptor. */
1749
class RawTRDescriptor final : public DescriptorImpl
1750
{
1751
protected:
1752
    std::vector<CScript> MakeScripts(const std::vector<CPubKey>& keys, std::span<const CScript> scripts, FlatSigningProvider& out) const override
1753
1.58k
    {
1754
1.58k
        assert(keys.size() == 1);
1755
1.58k
        XOnlyPubKey xpk(keys[0]);
1756
1.58k
        if (!xpk.IsFullyValid()) return {};
1757
1.58k
        WitnessV1Taproot output{xpk};
1758
1.58k
        return Vector(GetScriptForDestination(output));
1759
1.58k
    }
1760
public:
1761
15.0k
    RawTRDescriptor(std::unique_ptr<PubkeyProvider> output_key) : DescriptorImpl(Vector(std::move(output_key)), "rawtr") {}
1762
361
    std::optional<OutputType> GetOutputType() const override { return OutputType::BECH32M; }
1763
151
    bool IsSingleType() const final { return true; }
1764
1765
15
    std::optional<int64_t> ScriptSize() const override { return 1 + 1 + 32; }
1766
1767
187
    std::optional<int64_t> MaxSatisfactionWeight(bool) const override {
1768
        // We can't know whether there is a script path, so assume key path spend.
1769
187
        return 1 + 65;
1770
187
    }
1771
1772
172
    std::optional<int64_t> MaxSatisfactionElems() const override {
1773
        // See above, we assume keypath spend.
1774
172
        return 1;
1775
172
    }
1776
1777
    std::unique_ptr<DescriptorImpl> Clone() const override
1778
0
    {
1779
0
        return std::make_unique<RawTRDescriptor>(m_pubkey_args.at(0)->Clone());
1780
0
    }
1781
};
1782
1783
/** A parsed unused(KEY) descriptor */
1784
class UnusedDescriptor final : public DescriptorImpl
1785
{
1786
protected:
1787
7
    std::vector<CScript> MakeScripts(const std::vector<CPubKey>& keys, std::span<const CScript> scripts, FlatSigningProvider& out) const override { return {}; }
1788
public:
1789
13
    UnusedDescriptor(std::unique_ptr<PubkeyProvider> prov) : DescriptorImpl(Vector(std::move(prov)), "unused") {}
1790
0
    bool IsSingleType() const final { return true; }
1791
6
    bool HasScripts() const override { return false; }
1792
1793
    std::unique_ptr<DescriptorImpl> Clone() const override
1794
0
    {
1795
0
        return std::make_unique<UnusedDescriptor>(m_pubkey_args.at(0)->Clone());
1796
0
    }
1797
};
1798
1799
1800
////////////////////////////////////////////////////////////////////////////
1801
// Parser                                                                 //
1802
////////////////////////////////////////////////////////////////////////////
1803
1804
enum class ParseScriptContext {
1805
    TOP,     //!< Top-level context (script goes directly in scriptPubKey)
1806
    P2SH,    //!< Inside sh() (script becomes P2SH redeemScript)
1807
    P2WPKH,  //!< Inside wpkh() (no script, pubkey only)
1808
    P2WSH,   //!< Inside wsh() (script becomes v0 witness script)
1809
    P2TR,    //!< Inside tr() (either internal key, or BIP342 script leaf)
1810
    MUSIG,   //!< Inside musig() (implies P2TR, cannot have nested musig())
1811
};
1812
1813
std::optional<uint32_t> ParseKeyPathNum(std::span<const char> elem, bool& apostrophe, std::string& error, bool& has_hardened)
1814
29.4k
{
1815
29.4k
    bool hardened = false;
1816
29.4k
    if (elem.size() > 0) {
1817
29.4k
        const char last = elem[elem.size() - 1];
1818
29.4k
        if (last == '\'' || last == 'h') {
1819
21.2k
            elem = elem.first(elem.size() - 1);
1820
21.2k
            hardened = true;
1821
21.2k
            apostrophe = last == '\'';
1822
21.2k
        }
1823
29.4k
    }
1824
29.4k
    const auto p{ToIntegral<uint32_t>(std::string_view{elem.begin(), elem.end()})};
1825
29.4k
    if (!p) {
1826
14
        error = strprintf("Key path value '%s' is not a valid uint32", std::string_view{elem.begin(), elem.end()});
1827
14
        return std::nullopt;
1828
29.4k
    } else if (*p > 0x7FFFFFFFUL) {
1829
2
        error = strprintf("Key path value %u is out of range", *p);
1830
2
        return std::nullopt;
1831
2
    }
1832
29.4k
    has_hardened = has_hardened || hardened;
1833
1834
29.4k
    return std::make_optional<uint32_t>(*p | (((uint32_t)hardened) << 31));
1835
29.4k
}
1836
1837
/**
1838
 * Parse a key path, being passed a split list of elements (the first element is ignored because it is always the key).
1839
 *
1840
 * @param[in] split BIP32 path string, using either ' or h for hardened derivation
1841
 * @param[out] out Vector of parsed key paths
1842
 * @param[out] apostrophe only updated if hardened derivation is found
1843
 * @param[out] error parsing error message
1844
 * @param[in] allow_multipath Allows the parsed path to use the multipath specifier
1845
 * @param[out] has_hardened Records whether the path contains any hardened derivation
1846
 * @returns false if parsing failed
1847
 **/
1848
[[nodiscard]] bool ParseKeyPath(const std::vector<std::span<const char>>& split, std::vector<KeyPath>& out, bool& apostrophe, std::string& error, bool allow_multipath, bool& has_hardened)
1849
13.5k
{
1850
13.5k
    KeyPath path;
1851
13.5k
    struct MultipathSubstitutes {
1852
13.5k
        size_t placeholder_index;
1853
13.5k
        std::vector<uint32_t> values;
1854
13.5k
    };
1855
13.5k
    std::optional<MultipathSubstitutes> substitutes;
1856
13.5k
    has_hardened = false;
1857
1858
42.5k
    for (size_t i = 1; i < split.size(); ++i) {
1859
29.0k
        const std::span<const char>& elem = split[i];
1860
1861
        // Check if element contains multipath specifier
1862
29.0k
        if (!elem.empty() && elem.front() == '<' && elem.back() == '>') {
1863
335
            if (!allow_multipath) {
1864
2
                error = strprintf("Key path value '%s' specifies multipath in a section where multipath is not allowed", std::string(elem.begin(), elem.end()));
1865
2
                return false;
1866
2
            }
1867
333
            if (substitutes) {
1868
2
                error = "Multiple multipath key path specifiers found";
1869
2
                return false;
1870
2
            }
1871
1872
            // Parse each possible value
1873
331
            std::vector<std::span<const char>> nums = Split(std::span(elem.begin()+1, elem.end()-1), ";");
1874
331
            if (nums.size() < 2) {
1875
4
                error = "Multipath key path specifiers must have at least two items";
1876
4
                return false;
1877
4
            }
1878
1879
327
            substitutes.emplace();
1880
327
            std::unordered_set<uint32_t> seen_substitutes;
1881
769
            for (const auto& num : nums) {
1882
769
                const auto& op_num = ParseKeyPathNum(num, apostrophe, error, has_hardened);
1883
769
                if (!op_num) return false;
1884
763
                auto [_, inserted] = seen_substitutes.insert(*op_num);
1885
763
                if (!inserted) {
1886
2
                    error = strprintf("Duplicated key path value %u in multipath specifier", *op_num);
1887
2
                    return false;
1888
2
                }
1889
761
                substitutes->values.emplace_back(*op_num);
1890
761
            }
1891
1892
319
            path.emplace_back(); // Placeholder for multipath segment
1893
319
            substitutes->placeholder_index = path.size() - 1;
1894
28.6k
        } else {
1895
28.6k
            const auto& op_num = ParseKeyPathNum(elem, apostrophe, error, has_hardened);
1896
28.6k
            if (!op_num) return false;
1897
28.6k
            path.emplace_back(*op_num);
1898
28.6k
        }
1899
29.0k
    }
1900
1901
13.5k
    if (!substitutes) {
1902
13.1k
        out.emplace_back(std::move(path));
1903
13.1k
    } else {
1904
        // Replace the multipath placeholder with each value while generating paths
1905
749
        for (uint32_t substitute : substitutes->values) {
1906
749
            KeyPath branch_path = path;
1907
749
            branch_path[substitutes->placeholder_index] = substitute;
1908
749
            out.emplace_back(std::move(branch_path));
1909
749
        }
1910
317
    }
1911
13.5k
    return true;
1912
13.5k
}
1913
1914
[[nodiscard]] bool ParseKeyPath(const std::vector<std::span<const char>>& split, std::vector<KeyPath>& out, bool& apostrophe, std::string& error, bool allow_multipath)
1915
13.4k
{
1916
13.4k
    bool dummy;
1917
13.4k
    return ParseKeyPath(split, out, apostrophe, error, allow_multipath, /*has_hardened=*/dummy);
1918
13.4k
}
1919
1920
static DeriveType ParseDeriveType(std::vector<std::span<const char>>& split, bool& apostrophe)
1921
8.45k
{
1922
8.45k
    DeriveType type = DeriveType::NON_RANGED;
1923
8.45k
    if (std::ranges::equal(split.back(), std::span{"*"}.first(1))) {
1924
7.76k
        split.pop_back();
1925
7.76k
        type = DeriveType::UNHARDENED_RANGED;
1926
7.76k
    } else if (std::ranges::equal(split.back(), std::span{"*'"}.first(2)) || std::ranges::equal(split.back(), std::span{"*h"}.first(2))) {
1927
196
        apostrophe = std::ranges::equal(split.back(), std::span{"*'"}.first(2));
1928
196
        split.pop_back();
1929
196
        type = DeriveType::HARDENED_RANGED;
1930
196
    }
1931
8.45k
    return type;
1932
8.45k
}
1933
1934
/** Parse a public key that excludes origin information. */
1935
std::vector<std::unique_ptr<PubkeyProvider>> ParsePubkeyInner(uint32_t& key_exp_index, const std::span<const char>& sp, ParseScriptContext ctx, FlatSigningProvider& out, bool& apostrophe, std::string& error)
1936
28.3k
{
1937
28.3k
    std::vector<std::unique_ptr<PubkeyProvider>> ret;
1938
28.3k
    bool permit_uncompressed = ctx == ParseScriptContext::TOP || ctx == ParseScriptContext::P2SH;
1939
28.3k
    auto split = Split(sp, '/');
1940
28.3k
    std::string str(split[0].begin(), split[0].end());
1941
28.3k
    if (str.size() == 0) {
1942
4
        error = "No key provided";
1943
4
        return {};
1944
4
    }
1945
28.3k
    if (IsSpace(str.front()) || IsSpace(str.back())) {
1946
10
        error = strprintf("Key '%s' is invalid due to whitespace", str);
1947
10
        return {};
1948
10
    }
1949
28.3k
    if (split.size() == 1) {
1950
20.3k
        if (IsHex(str)) {
1951
19.5k
            std::vector<unsigned char> data = ParseHex(str);
1952
19.5k
            CPubKey pubkey(data);
1953
19.5k
            if (pubkey.IsValid() && !pubkey.IsValidNonHybrid()) {
1954
4
                error = "Hybrid public keys are not allowed";
1955
4
                return {};
1956
4
            }
1957
19.5k
            if (pubkey.IsFullyValid()) {
1958
970
                if (permit_uncompressed || pubkey.IsCompressed()) {
1959
966
                    ret.emplace_back(std::make_unique<ConstPubkeyProvider>(key_exp_index, pubkey, false));
1960
966
                    ++key_exp_index;
1961
966
                    return ret;
1962
966
                } else {
1963
4
                    error = "Uncompressed keys are not allowed";
1964
4
                    return {};
1965
4
                }
1966
18.5k
            } else if (data.size() == 32 && ctx == ParseScriptContext::P2TR) {
1967
18.5k
                unsigned char fullkey[33] = {0x02};
1968
18.5k
                std::copy(data.begin(), data.end(), fullkey + 1);
1969
18.5k
                pubkey.Set(std::begin(fullkey), std::end(fullkey));
1970
18.5k
                if (pubkey.IsFullyValid()) {
1971
18.5k
                    ret.emplace_back(std::make_unique<ConstPubkeyProvider>(key_exp_index, pubkey, true));
1972
18.5k
                    ++key_exp_index;
1973
18.5k
                    return ret;
1974
18.5k
                }
1975
18.5k
            }
1976
2
            error = strprintf("Pubkey '%s' is invalid", str);
1977
2
            return {};
1978
19.5k
        }
1979
761
        CKey key = DecodeSecret(str);
1980
761
        if (key.IsValid()) {
1981
455
            if (permit_uncompressed || key.IsCompressed()) {
1982
450
                CPubKey pubkey = key.GetPubKey();
1983
450
                out.keys.emplace(pubkey.GetID(), key);
1984
450
                ret.emplace_back(std::make_unique<ConstPubkeyProvider>(key_exp_index, pubkey, ctx == ParseScriptContext::P2TR));
1985
450
                ++key_exp_index;
1986
450
                return ret;
1987
450
            } else {
1988
5
                error = "Uncompressed keys are not allowed";
1989
5
                return {};
1990
5
            }
1991
455
        }
1992
761
    }
1993
8.35k
    CExtKey extkey = DecodeExtKey(str);
1994
8.35k
    CExtPubKey extpubkey = DecodeExtPubKey(str);
1995
8.35k
    if (!extkey.key.IsValid() && !extpubkey.pubkey.IsValid()) {
1996
3
        error = strprintf("key '%s' is not valid", str);
1997
3
        return {};
1998
3
    }
1999
8.34k
    std::vector<KeyPath> paths;
2000
8.34k
    DeriveType type = ParseDeriveType(split, apostrophe);
2001
8.34k
    if (!ParseKeyPath(split, paths, apostrophe, error, /*allow_multipath=*/true)) return {};
2002
8.32k
    if (extkey.key.IsValid()) {
2003
848
        extpubkey = extkey.Neuter();
2004
848
        out.keys.emplace(extpubkey.pubkey.GetID(), extkey.key);
2005
848
    }
2006
8.69k
    for (auto& path : paths) {
2007
8.69k
        ret.emplace_back(std::make_unique<BIP32PubkeyProvider>(key_exp_index, extpubkey, std::move(path), type, apostrophe));
2008
8.69k
    }
2009
8.32k
    ++key_exp_index;
2010
8.32k
    return ret;
2011
8.34k
}
2012
2013
/** Parse a public key including origin information (if enabled). */
2014
// NOLINTNEXTLINE(misc-no-recursion)
2015
std::vector<std::unique_ptr<PubkeyProvider>> ParsePubkey(uint32_t& key_exp_index, const std::span<const char>& sp, ParseScriptContext ctx, FlatSigningProvider& out, std::string& error)
2016
28.5k
{
2017
28.5k
    std::vector<std::unique_ptr<PubkeyProvider>> ret;
2018
2019
28.5k
    using namespace script;
2020
2021
    // musig cannot be nested inside of an origin
2022
28.5k
    std::span<const char> span = sp;
2023
28.5k
    if (Const("musig(", span, /*skip=*/false)) {
2024
168
        if (ctx != ParseScriptContext::P2TR) {
2025
12
            error = "musig() is only allowed in tr() and rawtr()";
2026
12
            return {};
2027
12
        }
2028
2029
        // Split the span on the end parentheses. The end parentheses must
2030
        // be included in the resulting span so that Expr is happy.
2031
156
        auto split = Split(sp, ')', /*include_sep=*/true);
2032
156
        if (split.size() > 2) {
2033
2
            error = "Too many ')' in musig() expression";
2034
2
            return {};
2035
2
        }
2036
154
        std::span<const char> expr(split.at(0).begin(), split.at(0).end());
2037
154
        if (!Func("musig", expr)) {
2038
0
            error = "Invalid musig() expression";
2039
0
            return {};
2040
0
        }
2041
2042
        // Parse the participant pubkeys
2043
154
        bool any_ranged = false;
2044
154
        bool all_bip32 = true;
2045
154
        std::vector<std::vector<std::unique_ptr<PubkeyProvider>>> providers;
2046
154
        bool any_key_parsed = false;
2047
154
        size_t max_multipath_len = 0;
2048
555
        while (expr.size()) {
2049
401
            if (any_key_parsed && !Const(",", expr)) {
2050
0
                error = strprintf("musig(): expected ',', got '%c'", expr[0]);
2051
0
                return {};
2052
0
            }
2053
401
            auto arg = Expr(expr);
2054
401
            auto pk = ParsePubkey(key_exp_index, arg, ParseScriptContext::MUSIG, out, error);
2055
401
            if (pk.empty()) {
2056
0
                error = strprintf("musig(): %s", error);
2057
0
                return {};
2058
0
            }
2059
401
            any_key_parsed = true;
2060
2061
401
            any_ranged = any_ranged || pk.at(0)->IsRange();
2062
401
            all_bip32 = all_bip32 &&  pk.at(0)->IsBIP32();
2063
2064
401
            max_multipath_len = std::max(max_multipath_len, pk.size());
2065
2066
401
            providers.emplace_back(std::move(pk));
2067
401
        }
2068
154
        if (!any_key_parsed) {
2069
2
            error = "musig(): Must contain key expressions";
2070
2
            return {};
2071
2
        }
2072
2073
        // Parse any derivation
2074
152
        DeriveType deriv_type = DeriveType::NON_RANGED;
2075
152
        std::vector<KeyPath> derivation_multipaths;
2076
152
        if (split.size() == 2 && Const("/", split.at(1), /*skip=*/false)) {
2077
111
            if (!all_bip32) {
2078
4
                error = "musig(): derivation requires all participants to be xpubs or xprvs";
2079
4
                return {};
2080
4
            }
2081
107
            if (any_ranged) {
2082
4
                error = "musig(): Cannot have ranged participant keys if musig() also has derivation";
2083
4
                return {};
2084
4
            }
2085
103
            bool dummy = false;
2086
103
            auto deriv_split = Split(split.at(1), '/');
2087
103
            deriv_type = ParseDeriveType(deriv_split, dummy);
2088
103
            if (deriv_type == DeriveType::HARDENED_RANGED) {
2089
2
                error = "musig(): Cannot have hardened child derivation";
2090
2
                return {};
2091
2
            }
2092
101
            bool has_hardened = false;
2093
101
            if (!ParseKeyPath(deriv_split, derivation_multipaths, dummy, error, /*allow_multipath=*/true, has_hardened)) {
2094
0
                error = "musig(): " + error;
2095
0
                return {};
2096
0
            }
2097
101
            if (has_hardened) {
2098
2
                error = "musig(): cannot have hardened derivation steps";
2099
2
                return {};
2100
2
            }
2101
101
        } else {
2102
41
            derivation_multipaths.emplace_back();
2103
41
        }
2104
2105
        // Makes sure that all providers vectors in providers are the given length, or exactly length 1
2106
        // Length 1 vectors have the single provider cloned until it matches the given length.
2107
140
        const auto& clone_providers = [&providers](size_t length) -> bool {
2108
235
            for (auto& multipath_providers : providers) {
2109
235
                if (multipath_providers.size() == 1) {
2110
324
                    for (size_t i = 1; i < length; ++i) {
2111
176
                        multipath_providers.emplace_back(multipath_providers.at(0)->Clone());
2112
176
                    }
2113
148
                } else if (multipath_providers.size() != length) {
2114
0
                    return false;
2115
0
                }
2116
235
            }
2117
81
            return true;
2118
81
        };
2119
2120
        // Emplace the final MuSigPubkeyProvider into ret with the pubkey providers from the specified provider vectors index
2121
        // and the path from the specified path index
2122
236
        const auto& emplace_final_provider = [&ret, &key_exp_index, &deriv_type, &derivation_multipaths, &providers](size_t vec_idx, size_t path_idx) -> void {
2123
236
            KeyPath& path = derivation_multipaths.at(path_idx);
2124
236
            std::vector<std::unique_ptr<PubkeyProvider>> pubs;
2125
236
            pubs.reserve(providers.size());
2126
655
            for (auto& vec : providers) {
2127
655
                pubs.emplace_back(std::move(vec.at(vec_idx)));
2128
655
            }
2129
236
            ret.emplace_back(std::make_unique<MuSigPubkeyProvider>(key_exp_index, std::move(pubs), path, deriv_type));
2130
236
        };
2131
2132
140
        if (max_multipath_len > 1 && derivation_multipaths.size() > 1) {
2133
2
            error = "musig(): Cannot have multipath participant keys if musig() is also multipath";
2134
2
            return {};
2135
138
        } else if (max_multipath_len > 1) {
2136
32
            if (!clone_providers(max_multipath_len)) {
2137
0
                error = strprintf("musig(): Multipath derivation paths have mismatched lengths");
2138
0
                return {};
2139
0
            }
2140
106
            for (size_t i = 0; i < max_multipath_len; ++i) {
2141
                // Final MuSigPubkeyProvider uses participant pubkey providers at each multipath position, and the first (and only) path
2142
74
                emplace_final_provider(i, 0);
2143
74
            }
2144
106
        } else if (derivation_multipaths.size() > 1) {
2145
            // All key provider vectors should be length 1. Clone them until they have the same length as paths
2146
49
            if (!Assume(clone_providers(derivation_multipaths.size()))) {
2147
0
                error = "musig(): Multipath derivation path with multipath participants is disallowed"; // This error is unreachable due to earlier check
2148
0
                return {};
2149
0
            }
2150
154
            for (size_t i = 0; i < derivation_multipaths.size(); ++i) {
2151
                // Final MuSigPubkeyProvider uses cloned participant pubkey providers, and the multipath derivation paths
2152
105
                emplace_final_provider(i, i);
2153
105
            }
2154
57
        } else {
2155
            // No multipath derivation, MuSigPubkeyProvider uses the first (and only) participant pubkey providers, and the first (and only) path
2156
57
            emplace_final_provider(0, 0);
2157
57
        }
2158
138
        ++key_exp_index; // Increment key expression index for the MuSigPubkeyProvider too
2159
138
        return ret;
2160
140
    }
2161
2162
28.3k
    auto origin_split = Split(sp, ']');
2163
28.3k
    if (origin_split.size() > 2) {
2164
4
        error = "Multiple ']' characters found for a single pubkey";
2165
4
        return {};
2166
4
    }
2167
    // This is set if either the origin or path suffix contains a hardened derivation.
2168
28.3k
    bool apostrophe = false;
2169
28.3k
    if (origin_split.size() == 1) {
2170
23.2k
        return ParsePubkeyInner(key_exp_index, origin_split[0], ctx, out, apostrophe, error);
2171
23.2k
    }
2172
5.10k
    if (origin_split[0].empty() || origin_split[0][0] != '[') {
2173
2
        error = strprintf("Key origin start '[ character expected but not found, got '%c' instead",
2174
2
                          origin_split[0].empty() ? /** empty, implies split char */ ']' : origin_split[0][0]);
2175
2
        return {};
2176
2
    }
2177
5.10k
    auto slash_split = Split(origin_split[0].subspan(1), '/');
2178
5.10k
    if (slash_split[0].size() != 8) {
2179
6
        error = strprintf("Fingerprint is not 4 bytes (%u characters instead of 8 characters)", slash_split[0].size());
2180
6
        return {};
2181
6
    }
2182
5.09k
    std::string fpr_hex = std::string(slash_split[0].begin(), slash_split[0].end());
2183
5.09k
    if (!IsHex(fpr_hex)) {
2184
2
        error = strprintf("Fingerprint '%s' is not hex", fpr_hex);
2185
2
        return {};
2186
2
    }
2187
5.09k
    auto fpr_bytes = ParseHex(fpr_hex);
2188
5.09k
    KeyOriginInfo info;
2189
5.09k
    static_assert(sizeof(info.fingerprint) == 4, "Fingerprint must be 4 bytes");
2190
5.09k
    assert(fpr_bytes.size() == 4);
2191
5.09k
    std::copy_n(fpr_bytes.begin(), info.fingerprint.size(), info.fingerprint.begin());
2192
5.09k
    std::vector<KeyPath> path;
2193
5.09k
    if (!ParseKeyPath(slash_split, path, apostrophe, error, /*allow_multipath=*/false)) return {};
2194
5.09k
    info.path = path.at(0);
2195
5.09k
    auto providers = ParsePubkeyInner(key_exp_index, origin_split[1], ctx, out, apostrophe, error);
2196
5.09k
    if (providers.empty()) return {};
2197
5.08k
    ret.reserve(providers.size());
2198
5.18k
    for (auto& prov : providers) {
2199
5.18k
        ret.emplace_back(std::make_unique<OriginPubkeyProvider>(prov->m_expr_index, info, std::move(prov), apostrophe));
2200
5.18k
    }
2201
5.08k
    return ret;
2202
5.09k
}
2203
2204
std::unique_ptr<PubkeyProvider> InferPubkey(const CPubKey& pubkey, ParseScriptContext ctx, const SigningProvider& provider)
2205
273k
{
2206
    // Key cannot be hybrid
2207
273k
    if (!pubkey.IsValidNonHybrid()) {
2208
7
        return nullptr;
2209
7
    }
2210
    // Uncompressed is only allowed in TOP and P2SH contexts
2211
273k
    if (ctx != ParseScriptContext::TOP && ctx != ParseScriptContext::P2SH && !pubkey.IsCompressed()) {
2212
5
        return nullptr;
2213
5
    }
2214
273k
    std::unique_ptr<PubkeyProvider> key_provider = std::make_unique<ConstPubkeyProvider>(0, pubkey, false);
2215
273k
    KeyOriginInfo info;
2216
273k
    if (provider.GetKeyOrigin(pubkey.GetID(), info)) {
2217
272k
        return std::make_unique<OriginPubkeyProvider>(0, std::move(info), std::move(key_provider), /*apostrophe=*/false);
2218
272k
    }
2219
983
    return key_provider;
2220
273k
}
2221
2222
std::unique_ptr<PubkeyProvider> InferXOnlyPubkey(const XOnlyPubKey& xkey, ParseScriptContext ctx, const SigningProvider& provider)
2223
133k
{
2224
133k
    CPubKey pubkey{xkey.GetEvenCorrespondingCPubKey()};
2225
133k
    std::unique_ptr<PubkeyProvider> key_provider = std::make_unique<ConstPubkeyProvider>(0, pubkey, true);
2226
133k
    KeyOriginInfo info;
2227
133k
    if (provider.GetKeyOriginByXOnly(xkey, info)) {
2228
119k
        return std::make_unique<OriginPubkeyProvider>(0, std::move(info), std::move(key_provider), /*apostrophe=*/false);
2229
119k
    }
2230
14.5k
    return key_provider;
2231
133k
}
2232
2233
/**
2234
 * The context for parsing a Miniscript descriptor (either from Script or from its textual representation).
2235
 */
2236
struct KeyParser {
2237
    //! The Key type is an index in DescriptorImpl::m_pubkey_args
2238
    using Key = uint32_t;
2239
    //! Must not be nullptr if parsing from string.
2240
    FlatSigningProvider* m_out;
2241
    //! Must not be nullptr if parsing from Script.
2242
    const SigningProvider* m_in;
2243
    //! List of multipath expanded keys contained in the Miniscript.
2244
    mutable std::vector<std::vector<std::unique_ptr<PubkeyProvider>>> m_keys;
2245
    //! Used to detect key parsing errors within a Miniscript.
2246
    mutable std::string m_key_parsing_error;
2247
    //! The script context we're operating within (Tapscript or P2WSH).
2248
    const miniscript::MiniscriptContext m_script_ctx;
2249
    //! The current key expression index
2250
    uint32_t& m_expr_index;
2251
2252
    KeyParser(FlatSigningProvider* out LIFETIMEBOUND, const SigningProvider* in LIFETIMEBOUND,
2253
              miniscript::MiniscriptContext ctx, uint32_t& key_exp_index LIFETIMEBOUND)
2254
1.16k
        : m_out(out), m_in(in), m_script_ctx(ctx), m_expr_index(key_exp_index) {}
2255
2256
4.40k
    bool KeyCompare(const Key& a, const Key& b) const {
2257
4.40k
        return *m_keys.at(a).at(0) < *m_keys.at(b).at(0);
2258
4.40k
    }
2259
2260
1.94k
    ParseScriptContext ParseContext() const {
2261
1.94k
        switch (m_script_ctx) {
2262
1.37k
            case miniscript::MiniscriptContext::P2WSH: return ParseScriptContext::P2WSH;
2263
567
            case miniscript::MiniscriptContext::TAPSCRIPT: return ParseScriptContext::P2TR;
2264
1.94k
        }
2265
1.94k
        assert(false);
2266
0
    }
2267
2268
    std::optional<Key> FromString(std::span<const char>& in) const
2269
445
    {
2270
445
        assert(m_out);
2271
445
        Key key = m_keys.size();
2272
445
        auto pk = ParsePubkey(m_expr_index, in, ParseContext(), *m_out, m_key_parsing_error);
2273
445
        if (pk.empty()) return {};
2274
443
        m_keys.emplace_back(std::move(pk));
2275
443
        return key;
2276
445
    }
2277
2278
    std::optional<std::string> ToString(const Key& key, bool&) const
2279
30
    {
2280
30
        return m_keys.at(key).at(0)->ToString();
2281
30
    }
2282
2283
    template<typename I> std::optional<Key> FromPKBytes(I begin, I end) const
2284
1.18k
    {
2285
1.18k
        assert(m_in);
2286
1.18k
        Key key = m_keys.size();
2287
1.18k
        if (miniscript::IsTapscript(m_script_ctx) && end - begin == 32) {
2288
278
            XOnlyPubKey pubkey;
2289
278
            std::copy(begin, end, pubkey.begin());
2290
278
            if (auto pubkey_provider = InferXOnlyPubkey(pubkey, ParseContext(), *m_in)) {
2291
278
                m_keys.emplace_back();
2292
278
                m_keys.back().push_back(std::move(pubkey_provider));
2293
278
                return key;
2294
278
            }
2295
904
        } else if (!miniscript::IsTapscript(m_script_ctx)) {
2296
904
            CPubKey pubkey(begin, end);
2297
904
            if (auto pubkey_provider = InferPubkey(pubkey, ParseContext(), *m_in)) {
2298
902
                m_keys.emplace_back();
2299
902
                m_keys.back().push_back(std::move(pubkey_provider));
2300
902
                return key;
2301
902
            }
2302
904
        }
2303
2
        return {};
2304
1.18k
    }
2305
2306
    template<typename I> std::optional<Key> FromPKHBytes(I begin, I end) const
2307
314
    {
2308
314
        assert(end - begin == 20);
2309
314
        assert(m_in);
2310
314
        uint160 hash;
2311
314
        std::copy(begin, end, hash.begin());
2312
314
        CKeyID keyid(hash);
2313
314
        CPubKey pubkey;
2314
314
        if (m_in->GetPubKey(keyid, pubkey)) {
2315
314
            if (auto pubkey_provider = InferPubkey(pubkey, ParseContext(), *m_in)) {
2316
312
                Key key = m_keys.size();
2317
312
                m_keys.emplace_back();
2318
312
                m_keys.back().push_back(std::move(pubkey_provider));
2319
312
                return key;
2320
312
            }
2321
314
        }
2322
2
        return {};
2323
314
    }
2324
2325
997k
    miniscript::MiniscriptContext MsContext() const {
2326
997k
        return m_script_ctx;
2327
997k
    }
2328
};
2329
2330
/** Parse a script in a particular context. */
2331
// NOLINTNEXTLINE(misc-no-recursion)
2332
std::vector<std::unique_ptr<DescriptorImpl>> ParseScript(uint32_t& key_exp_index, std::span<const char>& sp, ParseScriptContext ctx, FlatSigningProvider& out, std::string& error)
2333
14.2k
{
2334
14.2k
    using namespace script;
2335
14.2k
    Assume(ctx == ParseScriptContext::TOP || ctx == ParseScriptContext::P2SH || ctx == ParseScriptContext::P2WSH || ctx == ParseScriptContext::P2TR);
2336
14.2k
    std::vector<std::unique_ptr<DescriptorImpl>> ret;
2337
14.2k
    auto expr = Expr(sp);
2338
14.2k
    if (Func("pk", expr)) {
2339
671
        auto pubkeys = ParsePubkey(key_exp_index, expr, ctx, out, error);
2340
671
        if (pubkeys.empty()) {
2341
12
            error = strprintf("pk(): %s", error);
2342
12
            return {};
2343
12
        }
2344
777
        for (auto& pubkey : pubkeys) {
2345
777
            ret.emplace_back(std::make_unique<PKDescriptor>(std::move(pubkey), ctx == ParseScriptContext::P2TR));
2346
777
        }
2347
659
        return ret;
2348
671
    }
2349
13.6k
    if ((ctx == ParseScriptContext::TOP || ctx == ParseScriptContext::P2SH || ctx == ParseScriptContext::P2WSH) && Func("pkh", expr)) {
2350
1.75k
        auto pubkeys = ParsePubkey(key_exp_index, expr, ctx, out, error);
2351
1.75k
        if (pubkeys.empty()) {
2352
19
            error = strprintf("pkh(): %s", error);
2353
19
            return {};
2354
19
        }
2355
1.76k
        for (auto& pubkey : pubkeys) {
2356
1.76k
            ret.emplace_back(std::make_unique<PKHDescriptor>(std::move(pubkey)));
2357
1.76k
        }
2358
1.74k
        return ret;
2359
1.75k
    }
2360
11.8k
    if (ctx == ParseScriptContext::TOP && Func("combo", expr)) {
2361
563
        auto pubkeys = ParsePubkey(key_exp_index, expr, ctx, out, error);
2362
563
        if (pubkeys.empty()) {
2363
5
            error = strprintf("combo(): %s", error);
2364
5
            return {};
2365
5
        }
2366
558
        for (auto& pubkey : pubkeys) {
2367
558
            ret.emplace_back(std::make_unique<ComboDescriptor>(std::move(pubkey)));
2368
558
        }
2369
558
        return ret;
2370
11.2k
    } else if (Func("combo", expr)) {
2371
2
        error = "Can only have combo() at top level";
2372
2
        return {};
2373
2
    }
2374
11.2k
    const bool multi = Func("multi", expr);
2375
11.2k
    const bool sortedmulti = !multi && Func("sortedmulti", expr);
2376
11.2k
    const bool multi_a = !(multi || sortedmulti) && Func("multi_a", expr);
2377
11.2k
    const bool sortedmulti_a = !(multi || sortedmulti || multi_a) && Func("sortedmulti_a", expr);
2378
11.2k
    if (((ctx == ParseScriptContext::TOP || ctx == ParseScriptContext::P2SH || ctx == ParseScriptContext::P2WSH) && (multi || sortedmulti)) ||
2379
11.2k
        (ctx == ParseScriptContext::P2TR && (multi_a || sortedmulti_a))) {
2380
379
        auto threshold = Expr(expr);
2381
379
        uint32_t thres;
2382
379
        std::vector<std::vector<std::unique_ptr<PubkeyProvider>>> providers; // List of multipath expanded pubkeys
2383
379
        if (const auto maybe_thres{ToIntegral<uint32_t>(std::string_view{threshold.begin(), threshold.end()})}) {
2384
375
            thres = *maybe_thres;
2385
375
        } else {
2386
4
            error = strprintf("Multi threshold '%s' is not valid", std::string(threshold.begin(), threshold.end()));
2387
4
            return {};
2388
4
        }
2389
375
        size_t script_size = 0;
2390
375
        size_t max_providers_len = 0;
2391
19.3k
        while (expr.size()) {
2392
18.9k
            if (!Const(",", expr)) {
2393
1
                error = strprintf("Multi: expected ',', got '%c'", expr[0]);
2394
1
                return {};
2395
1
            }
2396
18.9k
            auto arg = Expr(expr);
2397
18.9k
            auto pks = ParsePubkey(key_exp_index, arg, ctx, out, error);
2398
18.9k
            if (pks.empty()) {
2399
14
                error = strprintf("Multi: %s", error);
2400
14
                return {};
2401
14
            }
2402
18.9k
            script_size += pks.at(0)->GetSize() + 1;
2403
18.9k
            max_providers_len = std::max(max_providers_len, pks.size());
2404
18.9k
            providers.emplace_back(std::move(pks));
2405
18.9k
        }
2406
360
        if ((multi || sortedmulti) && (providers.empty() || providers.size() > MAX_PUBKEYS_PER_MULTISIG)) {
2407
1
            error = strprintf("Cannot have %u keys in multisig; must have between 1 and %d keys, inclusive", providers.size(), MAX_PUBKEYS_PER_MULTISIG);
2408
1
            return {};
2409
359
        } else if ((multi_a || sortedmulti_a) && (providers.empty() || providers.size() > MAX_PUBKEYS_PER_MULTI_A)) {
2410
1
            error = strprintf("Cannot have %u keys in multi_a; must have between 1 and %d keys, inclusive", providers.size(), MAX_PUBKEYS_PER_MULTI_A);
2411
1
            return {};
2412
358
        } else if (thres < 1) {
2413
2
            error = strprintf("Multisig threshold cannot be %d, must be at least 1", thres);
2414
2
            return {};
2415
356
        } else if (thres > providers.size()) {
2416
2
            error = strprintf("Multisig threshold cannot be larger than the number of keys; threshold is %d but only %u keys specified", thres, providers.size());
2417
2
            return {};
2418
2
        }
2419
354
        if (ctx == ParseScriptContext::TOP) {
2420
26
            if (providers.size() > 3) {
2421
2
                error = strprintf("Cannot have %u pubkeys in bare multisig; only at most 3 pubkeys", providers.size());
2422
2
                return {};
2423
2
            }
2424
26
        }
2425
352
        if (ctx == ParseScriptContext::P2SH) {
2426
            // This limits the maximum number of compressed pubkeys to 15.
2427
59
            if (script_size + 3 > MAX_SCRIPT_ELEMENT_SIZE) {
2428
4
                error = strprintf("P2SH script is too large, %d bytes is larger than %d bytes", script_size + 3, MAX_SCRIPT_ELEMENT_SIZE);
2429
4
                return {};
2430
4
            }
2431
59
        }
2432
2433
        // Make sure all vecs are of the same length, or exactly length 1
2434
        // For length 1 vectors, clone key providers until vector is the same length
2435
18.8k
        for (auto& vec : providers) {
2436
18.8k
            if (vec.size() == 1) {
2437
18.8k
                for (size_t i = 1; i < max_providers_len; ++i) {
2438
18
                    vec.emplace_back(vec.at(0)->Clone());
2439
18
                }
2440
18.8k
            } else if (vec.size() != max_providers_len) {
2441
2
                error = strprintf("multi(): Multipath derivation paths have mismatched lengths");
2442
2
                return {};
2443
2
            }
2444
18.8k
        }
2445
2446
        // Build the final descriptors vector
2447
719
        for (size_t i = 0; i < max_providers_len; ++i) {
2448
            // Build final pubkeys vectors by retrieving the i'th subscript for each vector in subscripts
2449
373
            std::vector<std::unique_ptr<PubkeyProvider>> pubs;
2450
373
            pubs.reserve(providers.size());
2451
18.9k
            for (auto& pub : providers) {
2452
18.9k
                pubs.emplace_back(std::move(pub.at(i)));
2453
18.9k
            }
2454
373
            if (multi || sortedmulti) {
2455
241
                ret.emplace_back(std::make_unique<MultisigDescriptor>(thres, std::move(pubs), sortedmulti));
2456
241
            } else {
2457
132
                ret.emplace_back(std::make_unique<MultiADescriptor>(thres, std::move(pubs), sortedmulti_a));
2458
132
            }
2459
373
        }
2460
346
        return ret;
2461
10.9k
    } else if (multi || sortedmulti) {
2462
0
        error = "Can only have multi/sortedmulti at top level, in sh(), or in wsh()";
2463
0
        return {};
2464
10.9k
    } else if (multi_a || sortedmulti_a) {
2465
0
        error = "Can only have multi_a/sortedmulti_a inside tr()";
2466
0
        return {};
2467
0
    }
2468
10.9k
    if ((ctx == ParseScriptContext::TOP || ctx == ParseScriptContext::P2SH) && Func("wpkh", expr)) {
2469
3.61k
        auto pubkeys = ParsePubkey(key_exp_index, expr, ParseScriptContext::P2WPKH, out, error);
2470
3.61k
        if (pubkeys.empty()) {
2471
27
            error = strprintf("wpkh(): %s", error);
2472
27
            return {};
2473
27
        }
2474
3.60k
        for (auto& pubkey : pubkeys) {
2475
3.60k
            ret.emplace_back(std::make_unique<WPKHDescriptor>(std::move(pubkey)));
2476
3.60k
        }
2477
3.58k
        return ret;
2478
7.29k
    } else if (Func("wpkh", expr)) {
2479
3
        error = "Can only have wpkh() at top level or inside sh()";
2480
3
        return {};
2481
3
    }
2482
7.28k
    if (ctx == ParseScriptContext::TOP && Func("sh", expr)) {
2483
1.88k
        auto descs = ParseScript(key_exp_index, expr, ParseScriptContext::P2SH, out, error);
2484
1.88k
        if (descs.empty() || expr.size()) return {};
2485
1.86k
        std::vector<std::unique_ptr<DescriptorImpl>> ret;
2486
1.86k
        ret.reserve(descs.size());
2487
1.88k
        for (auto& desc : descs) {
2488
1.88k
            ret.push_back(std::make_unique<SHDescriptor>(std::move(desc)));
2489
1.88k
        }
2490
1.86k
        return ret;
2491
5.39k
    } else if (Func("sh", expr)) {
2492
6
        error = "Can only have sh() at top level";
2493
6
        return {};
2494
6
    }
2495
5.39k
    if ((ctx == ParseScriptContext::TOP || ctx == ParseScriptContext::P2SH) && Func("wsh", expr)) {
2496
290
        auto descs = ParseScript(key_exp_index, expr, ParseScriptContext::P2WSH, out, error);
2497
290
        if (descs.empty() || expr.size()) return {};
2498
255
        for (auto& desc : descs) {
2499
255
            ret.emplace_back(std::make_unique<WSHDescriptor>(std::move(desc)));
2500
255
        }
2501
240
        return ret;
2502
5.10k
    } else if (Func("wsh", expr)) {
2503
3
        error = "Can only have wsh() at top level or inside sh()";
2504
3
        return {};
2505
3
    }
2506
5.09k
    if (ctx == ParseScriptContext::TOP && Func("addr", expr)) {
2507
97
        CTxDestination dest = DecodeDestination(std::string(expr.begin(), expr.end()));
2508
97
        if (!IsValidDestination(dest)) {
2509
3
            error = "Address is not valid";
2510
3
            return {};
2511
3
        }
2512
94
        ret.emplace_back(std::make_unique<AddressDescriptor>(std::move(dest)));
2513
94
        return ret;
2514
5.00k
    } else if (Func("addr", expr)) {
2515
0
        error = "Can only have addr() at top level";
2516
0
        return {};
2517
0
    }
2518
5.00k
    if (ctx == ParseScriptContext::TOP && Func("tr", expr)) {
2519
2.03k
        auto arg = Expr(expr);
2520
2.03k
        auto internal_keys = ParsePubkey(key_exp_index, arg, ParseScriptContext::P2TR, out, error);
2521
2.03k
        if (internal_keys.empty()) {
2522
20
            error = strprintf("tr(): %s", error);
2523
20
            return {};
2524
20
        }
2525
2.01k
        size_t max_providers_len = internal_keys.size();
2526
2.01k
        std::vector<std::vector<std::unique_ptr<DescriptorImpl>>> subscripts; //!< list of multipath expanded script subexpressions
2527
2.01k
        std::vector<int> depths; //!< depth in the tree of each subexpression (same length subscripts)
2528
2.01k
        if (expr.size()) {
2529
370
            if (!Const(",", expr)) {
2530
0
                error = strprintf("tr: expected ',', got '%c'", expr[0]);
2531
0
                return {};
2532
0
            }
2533
            /** The path from the top of the tree to what we're currently processing.
2534
             * branches[i] == false: left branch in the i'th step from the top; true: right branch.
2535
             */
2536
370
            std::vector<bool> branches;
2537
            // Loop over all provided scripts. In every iteration exactly one script will be processed.
2538
            // Use a do-loop because inside this if-branch we expect at least one script.
2539
830
            do {
2540
                // First process all open braces.
2541
1.31k
                while (Const("{", expr)) {
2542
482
                    branches.push_back(false); // new left branch
2543
482
                    if (branches.size() > TAPROOT_CONTROL_MAX_NODE_COUNT) {
2544
0
                        error = strprintf("tr() supports at most %i nesting levels", TAPROOT_CONTROL_MAX_NODE_COUNT);
2545
0
                        return {};
2546
0
                    }
2547
482
                }
2548
                // Process the actual script expression.
2549
830
                auto sarg = Expr(expr);
2550
830
                subscripts.emplace_back(ParseScript(key_exp_index, sarg, ParseScriptContext::P2TR, out, error));
2551
830
                if (subscripts.back().empty()) return {};
2552
827
                max_providers_len = std::max(max_providers_len, subscripts.back().size());
2553
827
                depths.push_back(branches.size());
2554
                // Process closing braces; one is expected for every right branch we were in.
2555
1.28k
                while (branches.size() && branches.back()) {
2556
460
                    if (!Const("}", expr)) {
2557
0
                        error = strprintf("tr(): expected '}' after script expression");
2558
0
                        return {};
2559
0
                    }
2560
460
                    branches.pop_back(); // move up one level after encountering '}'
2561
460
                }
2562
                // If after that, we're at the end of a left branch, expect a comma.
2563
827
                if (branches.size() && !branches.back()) {
2564
460
                    if (!Const(",", expr)) {
2565
0
                        error = strprintf("tr(): expected ',' after script expression");
2566
0
                        return {};
2567
0
                    }
2568
460
                    branches.back() = true; // And now we're in a right branch.
2569
460
                }
2570
827
            } while (branches.size());
2571
            // After we've explored a whole tree, we must be at the end of the expression.
2572
367
            if (expr.size()) {
2573
0
                error = strprintf("tr(): expected ')' after script expression");
2574
0
                return {};
2575
0
            }
2576
367
        }
2577
2.01k
        assert(TaprootBuilder::ValidDepths(depths));
2578
2579
        // Make sure all vecs are of the same length, or exactly length 1
2580
        // For length 1 vectors, clone subdescs until vector is the same length
2581
2.01k
        for (auto& vec : subscripts) {
2582
825
            if (vec.size() == 1) {
2583
762
                for (size_t i = 1; i < max_providers_len; ++i) {
2584
20
                    vec.emplace_back(vec.at(0)->Clone());
2585
20
                }
2586
742
            } else if (vec.size() != max_providers_len) {
2587
4
                error = strprintf("tr(): Multipath subscripts have mismatched lengths");
2588
4
                return {};
2589
4
            }
2590
825
        }
2591
2592
2.01k
        if (internal_keys.size() > 1 && internal_keys.size() != max_providers_len) {
2593
2
            error = strprintf("tr(): Multipath internal key mismatches multipath subscripts lengths");
2594
2
            return {};
2595
2
        }
2596
2597
2.07k
        while (internal_keys.size() < max_providers_len) {
2598
60
            internal_keys.emplace_back(internal_keys.at(0)->Clone());
2599
60
        }
2600
2601
        // Build the final descriptors vector
2602
4.12k
        for (size_t i = 0; i < max_providers_len; ++i) {
2603
            // Build final subscripts vectors by retrieving the i'th subscript for each vector in subscripts
2604
2.11k
            std::vector<std::unique_ptr<DescriptorImpl>> this_subs;
2605
2.11k
            this_subs.reserve(subscripts.size());
2606
2.11k
            for (auto& subs : subscripts) {
2607
943
                this_subs.emplace_back(std::move(subs.at(i)));
2608
943
            }
2609
2.11k
            ret.emplace_back(std::make_unique<TRDescriptor>(std::move(internal_keys.at(i)), std::move(this_subs), depths));
2610
2.11k
        }
2611
2.01k
        return ret;
2612
2613
2614
2.96k
    } else if (Func("tr", expr)) {
2615
0
        error = "Can only have tr at top level";
2616
0
        return {};
2617
0
    }
2618
2.96k
    if (ctx == ParseScriptContext::TOP && Func("rawtr", expr)) {
2619
75
        auto arg = Expr(expr);
2620
75
        if (expr.size()) {
2621
1
            error = strprintf("rawtr(): only one key expected.");
2622
1
            return {};
2623
1
        }
2624
74
        auto output_keys = ParsePubkey(key_exp_index, arg, ParseScriptContext::P2TR, out, error);
2625
74
        if (output_keys.empty()) {
2626
0
            error = strprintf("rawtr(): %s", error);
2627
0
            return {};
2628
0
        }
2629
117
        for (auto& pubkey : output_keys) {
2630
117
            ret.emplace_back(std::make_unique<RawTRDescriptor>(std::move(pubkey)));
2631
117
        }
2632
74
        return ret;
2633
2.88k
    } else if (Func("rawtr", expr)) {
2634
0
        error = "Can only have rawtr at top level";
2635
0
        return {};
2636
0
    }
2637
2.88k
    if (ctx == ParseScriptContext::TOP && Func("unused", expr)) {
2638
        // Check for only one expression, should not find commas, brackets, or parentheses
2639
20
        auto arg = Expr(expr);
2640
20
        if (expr.size()) {
2641
2
            error = strprintf("unused(): only one key expected");
2642
2
            return {};
2643
2
        }
2644
18
        auto keys = ParsePubkey(key_exp_index, arg, ctx, out, error);
2645
18
        if (keys.empty()) return {};
2646
15
        for (auto& pubkey : keys) {
2647
15
            if (pubkey->IsRange()) {
2648
2
                error = "unused(): key cannot be ranged";
2649
2
                return {};
2650
2
            }
2651
13
            ret.emplace_back(std::make_unique<UnusedDescriptor>(std::move(pubkey)));
2652
13
        }
2653
13
        return ret;
2654
2.86k
    } else if (Func("unused", expr)) {
2655
2
        error = "Can only have unused at top level";
2656
2
        return {};
2657
2
    }
2658
2.86k
    if (ctx == ParseScriptContext::TOP && Func("raw", expr)) {
2659
2.32k
        std::string str(expr.begin(), expr.end());
2660
2.32k
        if (!IsHex(str)) {
2661
2
            error = "Raw script is not hex";
2662
2
            return {};
2663
2
        }
2664
2.32k
        auto bytes = ParseHex(str);
2665
2.32k
        ret.emplace_back(std::make_unique<RawDescriptor>(CScript(bytes.begin(), bytes.end())));
2666
2.32k
        return ret;
2667
2.32k
    } else if (Func("raw", expr)) {
2668
0
        error = "Can only have raw() at top level";
2669
0
        return {};
2670
0
    }
2671
    // Process miniscript expressions.
2672
537
    {
2673
537
        const auto script_ctx{ctx == ParseScriptContext::P2WSH ? miniscript::MiniscriptContext::P2WSH : miniscript::MiniscriptContext::TAPSCRIPT};
2674
537
        KeyParser parser(/*out = */&out, /* in = */nullptr, /* ctx = */script_ctx, key_exp_index);
2675
537
        auto node = miniscript::FromString(std::string(expr.begin(), expr.end()), parser);
2676
537
        if (parser.m_key_parsing_error != "") {
2677
2
            error = std::move(parser.m_key_parsing_error);
2678
2
            return {};
2679
2
        }
2680
535
        if (node) {
2681
182
            if (ctx != ParseScriptContext::P2WSH && ctx != ParseScriptContext::P2TR) {
2682
3
                error = "Miniscript expressions can only be used in wsh or tr.";
2683
3
                return {};
2684
3
            }
2685
179
            if (!node->IsSane() || node->IsNotSatisfiable()) {
2686
                // Try to find the first insane sub for better error reporting.
2687
14
                const auto* insane_node = &node.value();
2688
14
                if (const auto sub = node->FindInsaneSub()) insane_node = sub;
2689
14
                error = *insane_node->ToString(parser);
2690
14
                if (!insane_node->IsValid()) {
2691
4
                    error += " is invalid";
2692
10
                } else if (!node->IsSane()) {
2693
9
                    error += " is not sane";
2694
9
                    if (!insane_node->IsNonMalleable()) {
2695
2
                        error += ": malleable witnesses exist";
2696
7
                    } else if (insane_node == &node.value() && !insane_node->NeedsSignature()) {
2697
3
                        error += ": witnesses without signature exist";
2698
4
                    } else if (!insane_node->CheckTimeLocksMix()) {
2699
2
                        error += ": contains mixes of timelocks expressed in blocks and seconds";
2700
2
                    } else if (!insane_node->CheckDuplicateKey()) {
2701
2
                        error += ": contains duplicate public keys";
2702
2
                    } else if (!insane_node->ValidSatisfactions()) {
2703
0
                        error += ": needs witnesses that may exceed resource limits";
2704
0
                    }
2705
9
                } else {
2706
1
                    error += " is not satisfiable";
2707
1
                }
2708
14
                return {};
2709
14
            }
2710
            // A signature check is required for a miniscript to be sane. Therefore no sane miniscript
2711
            // may have an empty list of public keys.
2712
165
            CHECK_NONFATAL(!parser.m_keys.empty());
2713
            // Make sure all vecs are of the same length, or exactly length 1
2714
            // For length 1 vectors, clone subdescs until vector is the same length
2715
165
            size_t num_multipath = std::max_element(parser.m_keys.begin(), parser.m_keys.end(),
2716
240
                    [](const std::vector<std::unique_ptr<PubkeyProvider>>& a, const std::vector<std::unique_ptr<PubkeyProvider>>& b) {
2717
240
                        return a.size() < b.size();
2718
240
                    })->size();
2719
2720
405
            for (auto& vec : parser.m_keys) {
2721
405
                if (vec.size() == 1) {
2722
366
                    for (size_t i = 1; i < num_multipath; ++i) {
2723
0
                        vec.emplace_back(vec.at(0)->Clone());
2724
0
                    }
2725
366
                } else if (vec.size() != num_multipath) {
2726
2
                    error = strprintf("Miniscript: Multipath derivation paths have mismatched lengths");
2727
2
                    return {};
2728
2
                }
2729
405
            }
2730
2731
            // Build the final descriptors vector
2732
350
            for (size_t i = 0; i < num_multipath; ++i) {
2733
                // Build final pubkeys vectors by retrieving the i'th subscript for each vector in subscripts
2734
187
                std::vector<std::unique_ptr<PubkeyProvider>> pubs;
2735
187
                pubs.reserve(parser.m_keys.size());
2736
436
                for (auto& pub : parser.m_keys) {
2737
436
                    pubs.emplace_back(std::move(pub.at(i)));
2738
436
                }
2739
187
                ret.emplace_back(std::make_unique<MiniscriptDescriptor>(std::move(pubs), node->Clone()));
2740
187
            }
2741
163
            return ret;
2742
165
        }
2743
535
    }
2744
353
    if (ctx == ParseScriptContext::P2SH) {
2745
4
        error = "A function is needed within P2SH";
2746
4
        return {};
2747
349
    } else if (ctx == ParseScriptContext::P2WSH) {
2748
4
        error = "A function is needed within P2WSH";
2749
4
        return {};
2750
4
    }
2751
345
    error = strprintf("'%s' is not a valid descriptor function", std::string(expr.begin(), expr.end()));
2752
345
    return {};
2753
353
}
2754
2755
std::unique_ptr<DescriptorImpl> InferMultiA(const CScript& script, ParseScriptContext ctx, const SigningProvider& provider)
2756
1.04k
{
2757
1.04k
    auto match = MatchMultiA(script);
2758
1.04k
    if (!match) return {};
2759
792
    std::vector<std::unique_ptr<PubkeyProvider>> keys;
2760
792
    keys.reserve(match->second.size());
2761
109k
    for (const auto keyspan : match->second) {
2762
109k
        if (keyspan.size() != 32) return {};
2763
109k
        auto key = InferXOnlyPubkey(XOnlyPubKey{keyspan}, ctx, provider);
2764
109k
        if (!key) return {};
2765
109k
        keys.push_back(std::move(key));
2766
109k
    }
2767
792
    return std::make_unique<MultiADescriptor>(match->first, std::move(keys));
2768
792
}
2769
2770
// NOLINTNEXTLINE(misc-no-recursion)
2771
std::unique_ptr<DescriptorImpl> InferScript(const CScript& script, ParseScriptContext ctx, const SigningProvider& provider)
2772
321k
{
2773
321k
    if (ctx == ParseScriptContext::P2TR && script.size() == 34 && script[0] == 32 && script[33] == OP_CHECKSIG) {
2774
3.31k
        XOnlyPubKey key{std::span{script}.subspan(1, 32)};
2775
3.31k
        return std::make_unique<PKDescriptor>(InferXOnlyPubkey(key, ctx, provider), true);
2776
3.31k
    }
2777
2778
318k
    if (ctx == ParseScriptContext::P2TR) {
2779
1.04k
        auto ret = InferMultiA(script, ctx, provider);
2780
1.04k
        if (ret) return ret;
2781
1.04k
    }
2782
2783
317k
    std::vector<std::vector<unsigned char>> data;
2784
317k
    TxoutType txntype = Solver(script, data);
2785
2786
317k
    if (txntype == TxoutType::PUBKEY && (ctx == ParseScriptContext::TOP || ctx == ParseScriptContext::P2SH || ctx == ParseScriptContext::P2WSH)) {
2787
18.5k
        CPubKey pubkey(data[0]);
2788
18.5k
        if (auto pubkey_provider = InferPubkey(pubkey, ctx, provider)) {
2789
18.5k
            return std::make_unique<PKDescriptor>(std::move(pubkey_provider));
2790
18.5k
        }
2791
18.5k
    }
2792
298k
    if (txntype == TxoutType::PUBKEYHASH && (ctx == ParseScriptContext::TOP || ctx == ParseScriptContext::P2SH || ctx == ParseScriptContext::P2WSH)) {
2793
84.4k
        uint160 hash(data[0]);
2794
84.4k
        CKeyID keyid(hash);
2795
84.4k
        CPubKey pubkey;
2796
84.4k
        if (provider.GetPubKey(keyid, pubkey)) {
2797
83.8k
            if (auto pubkey_provider = InferPubkey(pubkey, ctx, provider)) {
2798
83.8k
                return std::make_unique<PKHDescriptor>(std::move(pubkey_provider));
2799
83.8k
            }
2800
83.8k
        }
2801
84.4k
    }
2802
215k
    if (txntype == TxoutType::WITNESS_V0_KEYHASH && (ctx == ParseScriptContext::TOP || ctx == ParseScriptContext::P2SH)) {
2803
168k
        uint160 hash(data[0]);
2804
168k
        CKeyID keyid(hash);
2805
168k
        CPubKey pubkey;
2806
168k
        if (provider.GetPubKey(keyid, pubkey)) {
2807
166k
            if (auto pubkey_provider = InferPubkey(pubkey, ParseScriptContext::P2WPKH, provider)) {
2808
166k
                return std::make_unique<WPKHDescriptor>(std::move(pubkey_provider));
2809
166k
            }
2810
166k
        }
2811
168k
    }
2812
48.2k
    if (txntype == TxoutType::MULTISIG && (ctx == ParseScriptContext::TOP || ctx == ParseScriptContext::P2SH || ctx == ParseScriptContext::P2WSH)) {
2813
665
        bool ok = true;
2814
665
        std::vector<std::unique_ptr<PubkeyProvider>> providers;
2815
3.30k
        for (size_t i = 1; i + 1 < data.size(); ++i) {
2816
2.64k
            CPubKey pubkey(data[i]);
2817
2.64k
            if (auto pubkey_provider = InferPubkey(pubkey, ctx, provider)) {
2818
2.64k
                providers.push_back(std::move(pubkey_provider));
2819
2.64k
            } else {
2820
0
                ok = false;
2821
0
                break;
2822
0
            }
2823
2.64k
        }
2824
665
        if (ok) return std::make_unique<MultisigDescriptor>((int)data[0][0], std::move(providers));
2825
665
    }
2826
47.5k
    if (txntype == TxoutType::SCRIPTHASH && ctx == ParseScriptContext::TOP) {
2827
20.8k
        uint160 hash(data[0]);
2828
20.8k
        CScriptID scriptid(hash);
2829
20.8k
        CScript subscript;
2830
20.8k
        if (provider.GetCScript(scriptid, subscript)) {
2831
20.3k
            auto sub = InferScript(subscript, ParseScriptContext::P2SH, provider);
2832
20.3k
            if (sub) return std::make_unique<SHDescriptor>(std::move(sub));
2833
20.3k
        }
2834
20.8k
    }
2835
27.2k
    if (txntype == TxoutType::WITNESS_V0_SCRIPTHASH && (ctx == ParseScriptContext::TOP || ctx == ParseScriptContext::P2SH)) {
2836
1.03k
        CScriptID scriptid{RIPEMD160(data[0])};
2837
1.03k
        CScript subscript;
2838
1.03k
        if (provider.GetCScript(scriptid, subscript)) {
2839
865
            auto sub = InferScript(subscript, ParseScriptContext::P2WSH, provider);
2840
865
            if (sub) return std::make_unique<WSHDescriptor>(std::move(sub));
2841
865
        }
2842
1.03k
    }
2843
26.3k
    if (txntype == TxoutType::WITNESS_V1_TAPROOT && ctx == ParseScriptContext::TOP) {
2844
        // Extract x-only pubkey from output.
2845
20.7k
        XOnlyPubKey pubkey;
2846
20.7k
        std::copy(data[0].begin(), data[0].end(), pubkey.begin());
2847
        // Request spending data.
2848
20.7k
        TaprootSpendData tap;
2849
20.7k
        if (provider.GetTaprootSpendData(pubkey, tap)) {
2850
            // If found, convert it back to tree form.
2851
5.76k
            auto tree = InferTaprootTree(tap, pubkey);
2852
5.76k
            if (tree) {
2853
                // If that works, try to infer subdescriptors for all leaves.
2854
5.76k
                bool ok = true;
2855
5.76k
                std::vector<std::unique_ptr<DescriptorImpl>> subscripts; //!< list of script subexpressions
2856
5.76k
                std::vector<int> depths; //!< depth in the tree of each subexpression (same length subscripts)
2857
5.76k
                for (const auto& [depth, script, leaf_ver] : *tree) {
2858
4.35k
                    std::unique_ptr<DescriptorImpl> subdesc;
2859
4.35k
                    if (leaf_ver == TAPROOT_LEAF_TAPSCRIPT) {
2860
4.35k
                        subdesc = InferScript(CScript(script.begin(), script.end()), ParseScriptContext::P2TR, provider);
2861
4.35k
                    }
2862
4.35k
                    if (!subdesc) {
2863
0
                        ok = false;
2864
0
                        break;
2865
4.35k
                    } else {
2866
4.35k
                        subscripts.push_back(std::move(subdesc));
2867
4.35k
                        depths.push_back(depth);
2868
4.35k
                    }
2869
4.35k
                }
2870
5.76k
                if (ok) {
2871
5.76k
                    auto key = InferXOnlyPubkey(tap.internal_key, ParseScriptContext::P2TR, provider);
2872
5.76k
                    return std::make_unique<TRDescriptor>(std::move(key), std::move(subscripts), std::move(depths));
2873
5.76k
                }
2874
5.76k
            }
2875
5.76k
        }
2876
        // If the above doesn't work, construct a rawtr() descriptor with just the encoded x-only pubkey.
2877
14.9k
        if (pubkey.IsFullyValid()) {
2878
14.9k
            auto key = InferXOnlyPubkey(pubkey, ParseScriptContext::P2TR, provider);
2879
14.9k
            if (key) {
2880
14.9k
                return std::make_unique<RawTRDescriptor>(std::move(key));
2881
14.9k
            }
2882
14.9k
        }
2883
14.9k
    }
2884
2885
5.64k
    if (ctx == ParseScriptContext::P2WSH || ctx == ParseScriptContext::P2TR) {
2886
625
        const auto script_ctx{ctx == ParseScriptContext::P2WSH ? miniscript::MiniscriptContext::P2WSH : miniscript::MiniscriptContext::TAPSCRIPT};
2887
625
        uint32_t key_exp_index = 0;
2888
625
        KeyParser parser(/* out = */nullptr, /* in = */&provider, /* ctx = */script_ctx, key_exp_index);
2889
625
        auto node = miniscript::FromScript(script, parser);
2890
625
        if (node && node->IsSane()) {
2891
612
            std::vector<std::unique_ptr<PubkeyProvider>> keys;
2892
612
            keys.reserve(parser.m_keys.size());
2893
1.49k
            for (auto& key : parser.m_keys) {
2894
1.49k
                keys.emplace_back(std::move(key.at(0)));
2895
1.49k
            }
2896
612
            return std::make_unique<MiniscriptDescriptor>(std::move(keys), std::move(*node));
2897
612
        }
2898
625
    }
2899
2900
    // The following descriptors are all top-level only descriptors.
2901
    // So if we are not at the top level, return early.
2902
5.03k
    if (ctx != ParseScriptContext::TOP) return nullptr;
2903
2904
5.00k
    CTxDestination dest;
2905
5.00k
    if (ExtractDestination(script, dest)) {
2906
3.03k
        if (GetScriptForDestination(dest) == script) {
2907
3.03k
            return std::make_unique<AddressDescriptor>(std::move(dest));
2908
3.03k
        }
2909
3.03k
    }
2910
2911
1.96k
    return std::make_unique<RawDescriptor>(script);
2912
5.00k
}
2913
2914
2915
} // namespace
2916
2917
/** Check a descriptor checksum, and update desc to be the checksum-less part. */
2918
bool CheckChecksum(std::span<const char>& sp, bool require_checksum, std::string& error, std::string* out_checksum = nullptr)
2919
11.5k
{
2920
11.5k
    auto check_split = Split(sp, '#');
2921
11.5k
    if (check_split.size() > 2) {
2922
2
        error = "Multiple '#' symbols";
2923
2
        return false;
2924
2
    }
2925
11.5k
    if (check_split.size() == 1 && require_checksum){
2926
7
        error = "Missing checksum";
2927
7
        return false;
2928
7
    }
2929
11.5k
    if (check_split.size() == 2) {
2930
6.53k
        if (check_split[1].size() != 8) {
2931
6
            error = strprintf("Expected 8 character checksum, not %u characters", check_split[1].size());
2932
6
            return false;
2933
6
        }
2934
6.53k
    }
2935
11.5k
    auto checksum = DescriptorChecksum(check_split[0]);
2936
11.5k
    if (checksum.empty()) {
2937
1
        error = "Invalid characters in payload";
2938
1
        return false;
2939
1
    }
2940
11.5k
    if (check_split.size() == 2) {
2941
6.52k
        if (!std::equal(checksum.begin(), checksum.end(), check_split[1].begin())) {
2942
11
            error = strprintf("Provided checksum '%s' does not match computed checksum '%s'", std::string(check_split[1].begin(), check_split[1].end()), checksum);
2943
11
            return false;
2944
11
        }
2945
6.52k
    }
2946
11.5k
    if (out_checksum) *out_checksum = std::move(checksum);
2947
11.5k
    sp = check_split[0];
2948
11.5k
    return true;
2949
11.5k
}
2950
2951
std::vector<std::unique_ptr<Descriptor>> Parse(std::string_view descriptor, FlatSigningProvider& out, std::string& error, bool require_checksum)
2952
11.2k
{
2953
11.2k
    std::span<const char> sp{descriptor};
2954
11.2k
    if (!CheckChecksum(sp, require_checksum, error)) return {};
2955
11.2k
    uint32_t key_exp_index = 0;
2956
11.2k
    auto ret = ParseScript(key_exp_index, sp, ParseScriptContext::TOP, out, error);
2957
11.2k
    if (sp.empty() && !ret.empty()) {
2958
10.7k
        std::vector<std::unique_ptr<Descriptor>> descs;
2959
10.7k
        descs.reserve(ret.size());
2960
10.9k
        for (auto& r : ret) {
2961
10.9k
            descs.emplace_back(std::unique_ptr<Descriptor>(std::move(r)));
2962
10.9k
        }
2963
10.7k
        return descs;
2964
10.7k
    }
2965
525
    return {};
2966
11.2k
}
2967
2968
std::string GetDescriptorChecksum(const std::string& descriptor)
2969
283
{
2970
283
    std::string ret;
2971
283
    std::string error;
2972
283
    std::span<const char> sp{descriptor};
2973
283
    if (!CheckChecksum(sp, false, error, &ret)) return "";
2974
279
    return ret;
2975
283
}
2976
2977
std::unique_ptr<Descriptor> InferDescriptor(const CScript& script, const SigningProvider& provider)
2978
295k
{
2979
295k
    return InferScript(script, ParseScriptContext::TOP, provider);
2980
295k
}
2981
2982
uint256 DescriptorID(const Descriptor& desc)
2983
7.61k
{
2984
7.61k
    std::string desc_str = desc.ToString(/*compat_format=*/true);
2985
7.61k
    uint256 id;
2986
7.61k
    CSHA256().Write((unsigned char*)desc_str.data(), desc_str.size()).Finalize(id.begin());
2987
7.61k
    return id;
2988
7.61k
}
2989
2990
void DescriptorCache::CacheParentExtPubKey(uint32_t key_exp_pos, const CExtPubKey& xpub)
2991
19.1k
{
2992
19.1k
    m_parent_xpubs[key_exp_pos] = xpub;
2993
19.1k
}
2994
2995
void DescriptorCache::CacheDerivedExtPubKey(uint32_t key_exp_pos, uint32_t der_index, const CExtPubKey& xpub)
2996
72.3k
{
2997
72.3k
    auto& xpubs = m_derived_xpubs[key_exp_pos];
2998
72.3k
    xpubs[der_index] = xpub;
2999
72.3k
}
3000
3001
void DescriptorCache::CacheLastHardenedExtPubKey(uint32_t key_exp_pos, const CExtPubKey& xpub)
3002
14.2k
{
3003
14.2k
    m_last_hardened_xpubs[key_exp_pos] = xpub;
3004
14.2k
}
3005
3006
bool DescriptorCache::GetCachedParentExtPubKey(uint32_t key_exp_pos, CExtPubKey& xpub) const
3007
644k
{
3008
644k
    const auto& it = m_parent_xpubs.find(key_exp_pos);
3009
644k
    if (it == m_parent_xpubs.end()) return false;
3010
635k
    xpub = it->second;
3011
635k
    return true;
3012
644k
}
3013
3014
bool DescriptorCache::GetCachedDerivedExtPubKey(uint32_t key_exp_pos, uint32_t der_index, CExtPubKey& xpub) const
3015
692k
{
3016
692k
    const auto& key_exp_it = m_derived_xpubs.find(key_exp_pos);
3017
692k
    if (key_exp_it == m_derived_xpubs.end()) return false;
3018
52.4k
    const auto& der_it = key_exp_it->second.find(der_index);
3019
52.4k
    if (der_it == key_exp_it->second.end()) return false;
3020
4.42k
    xpub = der_it->second;
3021
4.42k
    return true;
3022
52.4k
}
3023
3024
bool DescriptorCache::GetCachedLastHardenedExtPubKey(uint32_t key_exp_pos, CExtPubKey& xpub) const
3025
9.09k
{
3026
9.09k
    const auto& it = m_last_hardened_xpubs.find(key_exp_pos);
3027
9.09k
    if (it == m_last_hardened_xpubs.end()) return false;
3028
5.10k
    xpub = it->second;
3029
5.10k
    return true;
3030
9.09k
}
3031
3032
DescriptorCache DescriptorCache::MergeAndDiff(const DescriptorCache& other)
3033
429k
{
3034
429k
    DescriptorCache diff;
3035
429k
    for (const auto& parent_xpub_pair : other.GetCachedParentExtPubKeys()) {
3036
5.28k
        CExtPubKey xpub;
3037
5.28k
        if (GetCachedParentExtPubKey(parent_xpub_pair.first, xpub)) {
3038
6
            if (xpub != parent_xpub_pair.second) {
3039
0
                throw std::runtime_error(std::string(__func__) + ": New cached parent xpub does not match already cached parent xpub");
3040
0
            }
3041
6
            continue;
3042
6
        }
3043
5.27k
        CacheParentExtPubKey(parent_xpub_pair.first, parent_xpub_pair.second);
3044
5.27k
        diff.CacheParentExtPubKey(parent_xpub_pair.first, parent_xpub_pair.second);
3045
5.27k
    }
3046
429k
    for (const auto& derived_xpub_map_pair : other.GetCachedDerivedExtPubKeys()) {
3047
24.0k
        for (const auto& derived_xpub_pair : derived_xpub_map_pair.second) {
3048
24.0k
            CExtPubKey xpub;
3049
24.0k
            if (GetCachedDerivedExtPubKey(derived_xpub_map_pair.first, derived_xpub_pair.first, xpub)) {
3050
0
                if (xpub != derived_xpub_pair.second) {
3051
0
                    throw std::runtime_error(std::string(__func__) + ": New cached derived xpub does not match already cached derived xpub");
3052
0
                }
3053
0
                continue;
3054
0
            }
3055
24.0k
            CacheDerivedExtPubKey(derived_xpub_map_pair.first, derived_xpub_pair.first, derived_xpub_pair.second);
3056
24.0k
            diff.CacheDerivedExtPubKey(derived_xpub_map_pair.first, derived_xpub_pair.first, derived_xpub_pair.second);
3057
24.0k
        }
3058
24.0k
    }
3059
429k
    for (const auto& lh_xpub_pair : other.GetCachedLastHardenedExtPubKeys()) {
3060
3.98k
        CExtPubKey xpub;
3061
3.98k
        if (GetCachedLastHardenedExtPubKey(lh_xpub_pair.first, xpub)) {
3062
0
            if (xpub != lh_xpub_pair.second) {
3063
0
                throw std::runtime_error(std::string(__func__) + ": New cached last hardened xpub does not match already cached last hardened xpub");
3064
0
            }
3065
0
            continue;
3066
0
        }
3067
3.98k
        CacheLastHardenedExtPubKey(lh_xpub_pair.first, lh_xpub_pair.second);
3068
3.98k
        diff.CacheLastHardenedExtPubKey(lh_xpub_pair.first, lh_xpub_pair.second);
3069
3.98k
    }
3070
429k
    return diff;
3071
429k
}
3072
3073
ExtPubKeyMap DescriptorCache::GetCachedParentExtPubKeys() const
3074
860k
{
3075
860k
    return m_parent_xpubs;
3076
860k
}
3077
3078
std::unordered_map<uint32_t, ExtPubKeyMap> DescriptorCache::GetCachedDerivedExtPubKeys() const
3079
860k
{
3080
860k
    return m_derived_xpubs;
3081
860k
}
3082
3083
ExtPubKeyMap DescriptorCache::GetCachedLastHardenedExtPubKeys() const
3084
859k
{
3085
859k
    return m_last_hardened_xpubs;
3086
859k
}