Coverage Report

Created: 2025-11-11 07:02

next uncovered line (L), next uncovered region (R), next uncovered branch (B)
/src/qpdf/libqpdf/QPDF_encryption.cc
Line
Count
Source
1
// This file implements methods from the QPDF class that involve encryption.
2
3
#include <qpdf/QPDF_private.hh>
4
5
#include <qpdf/QPDFExc.hh>
6
7
#include <qpdf/MD5.hh>
8
#include <qpdf/Pl_AES_PDF.hh>
9
#include <qpdf/Pl_Buffer.hh>
10
#include <qpdf/Pl_RC4.hh>
11
#include <qpdf/Pl_SHA2.hh>
12
#include <qpdf/QPDFObjectHandle_private.hh>
13
#include <qpdf/QTC.hh>
14
#include <qpdf/QUtil.hh>
15
#include <qpdf/RC4.hh>
16
#include <qpdf/Util.hh>
17
18
#include <algorithm>
19
#include <cstring>
20
21
using namespace qpdf;
22
using namespace std::literals;
23
24
using Encryption = QPDF::Doc::Encryption;
25
26
static std::string padding_string =
27
    "\x28\xbf\x4e\x5e\x4e\x75\x8a\x41\x64\x00\x4e\x56\xff\xfa\x01\x08"
28
    "\x2e\x2e\x00\xb6\xd0\x68\x3e\x80\x2f\x0c\xa9\xfe\x64\x53\x69\x7a"s;
29
30
static unsigned int const key_bytes = 32;
31
32
static unsigned int const OU_key_bytes_V5 = 48;
33
static unsigned int const OUE_key_bytes_V5 = 32;
34
static unsigned int const Perms_key_bytes_V5 = 16;
35
36
int
37
QPDF::EncryptionData::getV() const
38
0
{
39
0
    return this->V;
40
0
}
41
42
int
43
QPDF::EncryptionData::getR() const
44
0
{
45
0
    return this->R;
46
0
}
47
48
int
49
QPDF::EncryptionData::getLengthBytes() const
50
0
{
51
0
    return this->Length_bytes;
52
0
}
53
54
int
55
QPDF::EncryptionData::getP() const
56
0
{
57
0
    return this->P;
58
0
}
59
60
std::string const&
61
QPDF::EncryptionData::getO() const
62
0
{
63
0
    return this->O;
64
0
}
65
66
std::string const&
67
QPDF::EncryptionData::getU() const
68
0
{
69
0
    return this->U;
70
0
}
71
72
std::string const&
73
QPDF::EncryptionData::getOE() const
74
0
{
75
0
    return this->OE;
76
0
}
77
78
std::string const&
79
QPDF::EncryptionData::getUE() const
80
0
{
81
0
    return this->UE;
82
0
}
83
84
std::string const&
85
QPDF::EncryptionData::getPerms() const
86
0
{
87
0
    return this->Perms;
88
0
}
89
90
std::string const&
91
QPDF::EncryptionData::getId1() const
92
0
{
93
0
    return this->id1;
94
0
}
95
96
bool
97
QPDF::EncryptionData::getEncryptMetadata() const
98
0
{
99
0
    return this->encrypt_metadata;
100
0
}
101
102
void
103
QPDF::EncryptionData::setO(std::string const& O)
104
0
{
105
0
    this->O = O;
106
0
}
107
108
void
109
QPDF::EncryptionData::setU(std::string const& U)
110
0
{
111
0
    this->U = U;
112
0
}
113
114
void
115
QPDF::EncryptionData::setV5EncryptionParameters(
116
    std::string const& O,
117
    std::string const& OE,
118
    std::string const& U,
119
    std::string const& UE,
120
    std::string const& Perms)
121
0
{
122
0
    this->O = O;
123
0
    this->OE = OE;
124
0
    this->U = U;
125
0
    this->UE = UE;
126
0
    this->Perms = Perms;
127
0
}
128
129
int
130
Encryption::getV() const
131
4.12k
{
132
4.12k
    return this->V;
133
4.12k
}
134
135
int
136
Encryption::getR() const
137
6.91k
{
138
6.91k
    return this->R;
139
6.91k
}
140
141
int
142
Encryption::getLengthBytes() const
143
3.34k
{
144
3.34k
    return this->Length_bytes;
145
3.34k
}
146
147
int
148
Encryption::getP() const
149
1.52k
{
150
1.52k
    return static_cast<int>(P.to_ulong());
151
1.52k
}
152
153
bool
154
Encryption::getP(size_t bit) const
155
0
{
156
0
    qpdf_assert_debug(bit);
157
0
    return P.test(bit - 1);
158
0
}
159
160
bool
161
QPDF::EncryptionParameters::P(size_t bit) const
162
0
{
163
0
    qpdf_assert_debug(bit);
164
0
    return P_.test(bit - 1);
165
0
}
166
167
std::string const&
168
Encryption::getO() const
169
2.46k
{
170
2.46k
    return this->O;
171
2.46k
}
172
173
std::string const&
174
Encryption::getU() const
175
2.74k
{
176
2.74k
    return this->U;
177
2.74k
}
178
179
std::string const&
180
Encryption::getOE() const
181
3
{
182
3
    return this->OE;
183
3
}
184
185
std::string const&
186
Encryption::getUE() const
187
149
{
188
149
    return this->UE;
189
149
}
190
191
std::string const&
192
Encryption::getPerms() const
193
152
{
194
152
    return this->Perms;
195
152
}
196
197
std::string const&
198
Encryption::getId1() const
199
2.21k
{
200
2.21k
    return this->id1;
201
2.21k
}
202
203
bool
204
Encryption::getEncryptMetadata() const
205
1.35k
{
206
1.35k
    return this->encrypt_metadata;
207
1.35k
}
208
209
void
210
Encryption::setO(std::string const& O)
211
0
{
212
0
    this->O = O;
213
0
}
214
215
void
216
Encryption::setU(std::string const& U)
217
0
{
218
0
    this->U = U;
219
0
}
220
221
void
222
Encryption::setP(size_t bit, bool val)
223
0
{
224
0
    qpdf_assert_debug(bit);
225
0
    P.set(bit - 1, val);
226
0
}
227
228
void
229
Encryption::setP(unsigned long val)
230
0
{
231
0
    P = std::bitset<32>(val);
232
0
}
233
234
void
235
Encryption::setId1(std::string const& val)
236
0
{
237
0
    id1 = val;
238
0
}
239
240
void
241
Encryption::setV5EncryptionParameters(
242
    std::string const& O,
243
    std::string const& OE,
244
    std::string const& U,
245
    std::string const& UE,
246
    std::string const& Perms)
247
0
{
248
0
    this->O = O;
249
0
    this->OE = OE;
250
0
    this->U = U;
251
0
    this->UE = UE;
252
0
    this->Perms = Perms;
253
0
}
254
255
void
256
QPDF::trim_user_password(std::string& user_password)
257
40
{
258
    // Although unnecessary, this routine trims the padding string from the end of a user password.
259
    // Its only purpose is for recovery of user passwords which is done in the test suite.
260
40
    if (user_password.size() < key_bytes) {
261
0
        return;
262
0
    }
263
264
40
    auto idx = user_password.find('\x28');
265
266
42
    while (idx != user_password.npos) {
267
2
        if (padding_string.starts_with(user_password.substr(idx))) {
268
0
            user_password.resize(idx);
269
0
            return;
270
0
        }
271
2
        QTC::TC("qpdf", "QPDF_encryption skip 0x28");
272
2
        idx = user_password.find('\x28', ++idx);
273
2
    }
274
40
}
275
276
static std::string
277
pad_or_truncate_password_V4(std::string password)
278
1.87k
{
279
1.87k
    if (password.size() < key_bytes) {
280
1.33k
        password.append(padding_string);
281
1.33k
    }
282
1.87k
    password.resize(key_bytes);
283
1.87k
    return password;
284
1.87k
}
285
286
static std::string
287
iterate_md5_digest(MD5& md5, int iterations, int key_len)
288
1.87k
{
289
1.87k
    MD5::Digest digest;
290
1.87k
    md5.digest(digest);
291
1.87k
    auto len = std::min(QIntC::to_size(key_len), sizeof(digest));
292
85.1k
    for (int i = 0; i < iterations; ++i) {
293
83.3k
        MD5 m;
294
83.3k
        m.encodeDataIncrementally(reinterpret_cast<char*>(digest), len);
295
83.3k
        m.digest(digest);
296
83.3k
    }
297
1.87k
    return {reinterpret_cast<char*>(digest), len};
298
1.87k
}
299
300
static void
301
iterate_rc4(std::string& data, std::string_view okey, int iterations, bool reverse)
302
1.46k
{
303
1.46k
    auto len = okey.size();
304
1.46k
    std::string key(len, '\0');
305
27.4k
    for (int i = 0; i < iterations; ++i) {
306
25.9k
        int const xor_value = (reverse ? iterations - 1 - i : i);
307
421k
        for (size_t j = 0; j < len; ++j) {
308
395k
            key[j] = static_cast<char>(okey[j] ^ xor_value);
309
395k
        }
310
25.9k
        RC4::process(key, data);
311
25.9k
    }
312
1.46k
}
313
314
static std::string
315
process_with_aes(
316
    std::string const& key,
317
    bool encrypt,
318
    std::string const& data,
319
    size_t outlength = 0,
320
    unsigned int repetitions = 1,
321
    unsigned char const* iv = nullptr,
322
    size_t iv_length = 0)
323
81.9k
{
324
81.9k
    Pl_Buffer buffer("buffer");
325
81.9k
    Pl_AES_PDF aes("aes", &buffer, encrypt, key);
326
81.9k
    if (iv) {
327
81.6k
        aes.setIV(iv, iv_length);
328
81.6k
    } else {
329
304
        aes.useZeroIV();
330
304
    }
331
81.9k
    aes.disablePadding();
332
5.30M
    for (unsigned int i = 0; i < repetitions; ++i) {
333
5.22M
        aes.writeString(data);
334
5.22M
    }
335
81.9k
    aes.finish();
336
81.9k
    if (outlength == 0) {
337
81.9k
        return buffer.getString();
338
81.9k
    } else {
339
0
        return buffer.getString().substr(0, outlength);
340
0
    }
341
81.9k
}
342
343
std::string
344
Encryption::hash_V5(
345
    std::string const& password, std::string const& salt, std::string const& udata) const
346
1.23k
{
347
1.23k
    Pl_SHA2 hash(256);
348
1.23k
    hash.writeString(password);
349
1.23k
    hash.writeString(salt);
350
1.23k
    hash.writeString(udata);
351
1.23k
    hash.finish();
352
1.23k
    std::string K = hash.getRawDigest();
353
354
1.23k
    std::string result;
355
1.23k
    if (getR() < 6) {
356
68
        result = K;
357
1.16k
    } else {
358
        // Algorithm 2.B from ISO 32000-1 chapter 7: Computing a hash
359
360
1.16k
        int round_number = 0;
361
1.16k
        bool done = false;
362
82.8k
        while (!done) {
363
            // The hash algorithm has us setting K initially to the R5 value and then repeating a
364
            // series of steps 64 times before starting with the termination case testing.  The
365
            // wording of the specification is very unclear as to the exact number of times it
366
            // should be run since the wording about whether the initial setup counts as round 0 or
367
            // not is ambiguous.  This code counts the initial setup (R5) value as round 0, which
368
            // appears to be correct.  This was determined to be correct by increasing or decreasing
369
            // the number of rounds by 1 or 2 from this value and generating 20 test files.  In this
370
            // interpretation, all the test files worked with Adobe Reader X.  In the other
371
            // configurations, many of the files did not work, and we were accurately able to
372
            // predict which files didn't work by looking at the conditions under which we
373
            // terminated repetition.
374
375
81.6k
            ++round_number;
376
81.6k
            std::string K1 = password + K + udata;
377
81.6k
            qpdf_assert_debug(K.length() >= 32);
378
81.6k
            std::string E = process_with_aes(
379
81.6k
                K.substr(0, 16),
380
81.6k
                true,
381
81.6k
                K1,
382
81.6k
                0,
383
81.6k
                64,
384
81.6k
                QUtil::unsigned_char_pointer(K.substr(16, 16)),
385
81.6k
                16);
386
387
            // E_mod_3 is supposed to be mod 3 of the first 16 bytes of E taken as as a (128-bit)
388
            // big-endian number.  Since (xy mod n) is equal to ((x mod n) + (y mod n)) mod n and
389
            // since 256 mod n is 1, we can just take the sums of the the mod 3s of each byte to get
390
            // the same result.
391
81.6k
            int E_mod_3 = 0;
392
1.38M
            for (unsigned int i = 0; i < 16; ++i) {
393
1.30M
                E_mod_3 += static_cast<unsigned char>(E.at(i));
394
1.30M
            }
395
81.6k
            E_mod_3 %= 3;
396
81.6k
            int next_hash = ((E_mod_3 == 0) ? 256 : (E_mod_3 == 1) ? 384 : 512);
397
81.6k
            Pl_SHA2 sha2(next_hash);
398
81.6k
            sha2.writeString(E);
399
81.6k
            sha2.finish();
400
81.6k
            K = sha2.getRawDigest();
401
402
81.6k
            if (round_number >= 64) {
403
7.99k
                unsigned int ch = static_cast<unsigned char>(*(E.rbegin()));
404
405
7.99k
                if (ch <= QIntC::to_uint(round_number - 32)) {
406
1.16k
                    done = true;
407
1.16k
                }
408
7.99k
            }
409
81.6k
        }
410
1.16k
        result = K.substr(0, 32);
411
1.16k
    }
412
413
1.23k
    return result;
414
1.23k
}
415
416
static void
417
pad_short_parameter(std::string& param, size_t max_len)
418
4.45k
{
419
4.45k
    if (param.length() < max_len) {
420
1.63k
        QTC::TC("qpdf", "QPDF_encryption pad short parameter");
421
1.63k
        param.append(max_len - param.length(), '\0');
422
1.63k
    }
423
4.45k
}
424
425
std::string
426
QPDF::compute_data_key(
427
    std::string const& encryption_key,
428
    int objid,
429
    int generation,
430
    bool use_aes,
431
    int encryption_V,
432
    int encryption_R)
433
2.96k
{
434
    // Algorithm 3.1 from the PDF 1.7 Reference Manual
435
436
2.96k
    std::string result = encryption_key;
437
438
2.96k
    if (encryption_V >= 5) {
439
        // Algorithm 3.1a (PDF 1.7 extension level 3): just use encryption key straight.
440
668
        return result;
441
668
    }
442
443
    // Append low three bytes of object ID and low two bytes of generation
444
2.29k
    result.append(1, static_cast<char>(objid & 0xff));
445
2.29k
    result.append(1, static_cast<char>((objid >> 8) & 0xff));
446
2.29k
    result.append(1, static_cast<char>((objid >> 16) & 0xff));
447
2.29k
    result.append(1, static_cast<char>(generation & 0xff));
448
2.29k
    result.append(1, static_cast<char>((generation >> 8) & 0xff));
449
2.29k
    if (use_aes) {
450
1.02k
        result += "sAlT";
451
1.02k
    }
452
2.29k
    return MD5::digest(result).substr(0, result.size());
453
2.96k
}
454
455
std::string
456
QPDF::compute_encryption_key(std::string const& password, EncryptionData const& ed)
457
0
{
458
0
    return Encryption(
459
0
               ed.getV(),
460
0
               ed.getR(),
461
0
               ed.getLengthBytes(),
462
0
               ed.getP(),
463
0
               ed.getO(),
464
0
               ed.getU(),
465
0
               ed.getOE(),
466
0
               ed.getUE(),
467
0
               ed.getPerms(),
468
0
               ed.getId1(),
469
0
               ed.getEncryptMetadata())
470
0
        .compute_encryption_key(password);
471
0
}
472
473
std::string
474
Encryption::compute_encryption_key(std::string const& password) const
475
1.37k
{
476
1.37k
    if (getV() >= 5) {
477
        // For V >= 5, the encryption key is generated and stored in the file, encrypted separately
478
        // with both user and owner passwords.
479
0
        return recover_encryption_key_with_password(password);
480
1.37k
    } else {
481
        // For V < 5, the encryption key is derived from the user
482
        // password.
483
1.37k
        return compute_encryption_key_from_password(password);
484
1.37k
    }
485
1.37k
}
486
487
std::string
488
Encryption::compute_encryption_key_from_password(std::string const& password) const
489
1.37k
{
490
    // Algorithm 3.2 from the PDF 1.7 Reference Manual
491
492
    // This code does not properly handle Unicode passwords. Passwords are supposed to be converted
493
    // from OS codepage characters to PDFDocEncoding.  Unicode passwords are supposed to be
494
    // converted to OS codepage before converting to PDFDocEncoding.  We instead require the
495
    // password to be presented in its final form.
496
497
1.37k
    MD5 md5;
498
1.37k
    md5.encodeDataIncrementally(pad_or_truncate_password_V4(password));
499
1.37k
    md5.encodeDataIncrementally(getO());
500
1.37k
    char pbytes[4];
501
1.37k
    int p = getP();
502
1.37k
    pbytes[0] = static_cast<char>(p & 0xff);
503
1.37k
    pbytes[1] = static_cast<char>((p >> 8) & 0xff);
504
1.37k
    pbytes[2] = static_cast<char>((p >> 16) & 0xff);
505
1.37k
    pbytes[3] = static_cast<char>((p >> 24) & 0xff);
506
1.37k
    md5.encodeDataIncrementally(pbytes, 4);
507
1.37k
    md5.encodeDataIncrementally(getId1());
508
1.37k
    if (getR() >= 4 && !getEncryptMetadata()) {
509
2
        md5.encodeDataIncrementally("\xff\xff\xff\xff");
510
2
    }
511
1.37k
    return iterate_md5_digest(md5, (getR() >= 3 ? 50 : 0), getLengthBytes());
512
1.37k
}
513
514
std::string
515
Encryption::compute_O_rc4_key(
516
    std::string const& user_password, std::string const& owner_password) const
517
503
{
518
503
    if (getV() >= 5) {
519
0
        throw std::logic_error("compute_O_rc4_key called for file with V >= 5");
520
0
    }
521
503
    std::string password = owner_password.empty() ? user_password : owner_password;
522
503
    MD5 md5;
523
503
    md5.encodeDataIncrementally(pad_or_truncate_password_V4(password));
524
503
    return iterate_md5_digest(md5, (getR() >= 3 ? 50 : 0), getLengthBytes());
525
503
}
526
527
std::string
528
Encryption::compute_O_value(
529
    std::string const& user_password, std::string const& owner_password) const
530
0
{
531
    // Algorithm 3.3 from the PDF 1.7 Reference Manual
532
533
0
    auto upass = pad_or_truncate_password_V4(user_password);
534
0
    std::string O_key = compute_O_rc4_key(user_password, owner_password);
535
0
    pad_short_parameter(O_key, QIntC::to_size(getLengthBytes()));
536
0
    iterate_rc4(upass, O_key, getR() >= 3 ? 20 : 1, false);
537
0
    return upass;
538
0
}
539
540
std::string
541
Encryption::compute_U_value_R2(std::string const& user_password) const
542
119
{
543
    // Algorithm 3.4 from the PDF 1.7 Reference Manual
544
545
119
    std::string k1 = compute_encryption_key(user_password);
546
119
    auto udata = padding_string;
547
119
    pad_short_parameter(k1, QIntC::to_size(getLengthBytes()));
548
119
    iterate_rc4(udata, k1, 1, false);
549
119
    return udata;
550
119
}
551
552
std::string
553
Encryption::compute_U_value_R3(std::string const& user_password) const
554
847
{
555
    // Algorithm 3.5 from the PDF 1.7 Reference Manual
556
557
847
    std::string k1 = compute_encryption_key(user_password);
558
847
    MD5 md5;
559
847
    md5.encodeDataIncrementally(padding_string);
560
847
    md5.encodeDataIncrementally(getId1());
561
847
    auto result = md5.digest();
562
847
    pad_short_parameter(k1, QIntC::to_size(getLengthBytes()));
563
847
    iterate_rc4(result, k1, 20, false);
564
    // pad with arbitrary data -- make it consistent for the sake of testing
565
847
    result += "\x0\x21\x44\x69\x90\xb9\xe4\x11\x40\x71\xa4\xd9\x10\x49\x84\xc1"s;
566
847
    return result;
567
847
}
568
569
std::string
570
Encryption::compute_U_value(std::string const& user_password) const
571
966
{
572
966
    if (getR() >= 3) {
573
847
        return compute_U_value_R3(user_password);
574
847
    }
575
576
119
    return compute_U_value_R2(user_password);
577
966
}
578
579
bool
580
Encryption::check_user_password_V4(std::string const& user_password) const
581
966
{
582
    // Algorithm 3.6 from the PDF 1.7 Reference Manual
583
584
966
    std::string u_value = compute_U_value(user_password);
585
966
    size_t to_compare = (getR() >= 3 ? sizeof(MD5::Digest) : key_bytes);
586
966
    return memcmp(getU().c_str(), u_value.c_str(), to_compare) == 0;
587
966
}
588
589
bool
590
Encryption::check_user_password_V5(std::string const& user_password) const
591
541
{
592
    // Algorithm 3.11 from the PDF 1.7 extension level 3
593
594
541
    std::string user_data = getU().substr(0, 32);
595
541
    std::string validation_salt = getU().substr(32, 8);
596
541
    std::string password = user_password.substr(0, 127);
597
541
    return hash_V5(user_password.substr(0, 127), validation_salt, "") == user_data;
598
541
}
599
600
bool
601
Encryption::check_user_password(std::string const& user_password) const
602
1.35k
{
603
1.35k
    if (getV() < 5) {
604
966
        return check_user_password_V4(user_password);
605
966
    } else {
606
392
        return check_user_password_V5(user_password);
607
392
    }
608
1.35k
}
609
610
bool
611
Encryption::check_owner_password_V4(
612
    std::string& user_password, std::string const& owner_password) const
613
503
{
614
    // Algorithm 3.7 from the PDF 1.7 Reference Manual
615
616
503
    auto key = compute_O_rc4_key(user_password, owner_password);
617
503
    pad_short_parameter(key, QIntC::to_size(getLengthBytes()));
618
503
    auto new_user_password = O.substr(0, key_bytes);
619
503
    iterate_rc4(new_user_password, key, (getR() >= 3) ? 20 : 1, true);
620
503
    if (check_user_password(new_user_password)) {
621
40
        user_password = new_user_password;
622
40
        return true;
623
40
    }
624
463
    return false;
625
503
}
626
627
bool
628
Encryption::check_owner_password_V5(std::string const& owner_password) const
629
544
{
630
    // Algorithm 3.12 from the PDF 1.7 extension level 3
631
632
544
    std::string user_data = getU().substr(0, 48);
633
544
    std::string owner_data = getO().substr(0, 32);
634
544
    std::string validation_salt = getO().substr(32, 8);
635
544
    return hash_V5(owner_password.substr(0, 127), validation_salt, user_data) == owner_data;
636
544
}
637
638
bool
639
Encryption::check_owner_password(
640
    std::string& user_password, std::string const& owner_password) const
641
895
{
642
895
    if (getV() < 5) {
643
503
        return check_owner_password_V4(user_password, owner_password);
644
503
    } else {
645
392
        return check_owner_password_V5(owner_password);
646
392
    }
647
895
}
648
649
std::string
650
Encryption::recover_encryption_key_with_password(std::string const& password) const
651
0
{
652
    // Disregard whether Perms is valid.
653
0
    bool disregard;
654
0
    return recover_encryption_key_with_password(password, disregard);
655
0
}
656
657
std::string
658
Encryption::compute_Perms_value_V5_clear() const
659
152
{
660
    // From algorithm 3.10 from the PDF 1.7 extension level 3
661
152
    std::string k = "    \xff\xff\xff\xffTadb    ";
662
152
    int perms = getP();
663
760
    for (size_t i = 0; i < 4; ++i) {
664
608
        k[i] = static_cast<char>(perms & 0xff);
665
608
        perms >>= 8;
666
608
    }
667
152
    if (!getEncryptMetadata()) {
668
0
        k[8] = 'F';
669
0
    }
670
152
    QUtil::initializeWithRandomBytes(reinterpret_cast<unsigned char*>(&k[12]), 4);
671
152
    return k;
672
152
}
673
674
std::string
675
Encryption::recover_encryption_key_with_password(
676
    std::string const& password, bool& perms_valid) const
677
152
{
678
    // Algorithm 3.2a from the PDF 1.7 extension level 3
679
680
    // This code does not handle Unicode passwords correctly. Empirical evidence suggests that most
681
    // viewers don't.  We are supposed to process the input string with the SASLprep (RFC 4013)
682
    // profile of stringprep (RFC 3454) and then convert the result to UTF-8.
683
684
152
    perms_valid = false;
685
152
    std::string key_password = password.substr(0, 127);
686
152
    std::string key_salt;
687
152
    std::string user_data;
688
152
    std::string encrypted_file_key;
689
152
    if (check_owner_password_V5(key_password)) {
690
3
        key_salt = getO().substr(40, 8);
691
3
        user_data = getU().substr(0, 48);
692
3
        encrypted_file_key = getOE().substr(0, 32);
693
149
    } else if (check_user_password_V5(key_password)) {
694
149
        key_salt = getU().substr(40, 8);
695
149
        encrypted_file_key = getUE().substr(0, 32);
696
149
    }
697
152
    std::string intermediate_key = hash_V5(key_password, key_salt, user_data);
698
152
    std::string file_key = process_with_aes(intermediate_key, false, encrypted_file_key);
699
700
    // Decrypt Perms and check against expected value
701
152
    auto perms_check = process_with_aes(file_key, false, getPerms()).substr(0, 12);
702
152
    perms_valid = compute_Perms_value_V5_clear().substr(0, 12) == perms_check;
703
152
    return file_key;
704
152
}
705
706
QPDF::encryption_method_e
707
QPDF::EncryptionParameters::interpretCF(Name const& cf) const
708
1.38k
{
709
1.38k
    if (!cf) {
710
        // Default: /Identity
711
428
        return e_none;
712
428
    }
713
957
    auto it = crypt_filters.find(cf);
714
957
    if (it != crypt_filters.end()) {
715
239
        return it->second;
716
239
    }
717
718
    if (cf == "/Identity") {
718
1
        return e_none;
719
1
    }
720
717
    return e_unknown;
721
718
}
722
723
void
724
QPDF::initializeEncryption()
725
0
{
726
0
    m->encp->initialize(*this);
727
0
}
728
729
void
730
QPDF::EncryptionParameters::initialize(QPDF& qpdf)
731
8.66k
{
732
8.66k
    if (encryption_initialized) {
733
6
        return;
734
6
    }
735
8.65k
    encryption_initialized = true;
736
737
8.65k
    auto& c = qpdf.m->c;
738
8.65k
    auto& qm = *qpdf.m;
739
8.65k
    auto& trailer = qm.trailer;
740
8.65k
    auto& file = qm.file;
741
742
8.65k
    auto warn_damaged_pdf = [&qpdf, c](std::string const& msg) {
743
151
        qpdf.warn(c.damagedPDF("encryption dictionary", msg));
744
151
    };
745
8.65k
    auto throw_damaged_pdf = [&qpdf](std::string const& msg) {
746
80
        throw qpdf.m->c.damagedPDF("encryption dictionary", msg);
747
80
    };
748
8.65k
    auto unsupported = [&file](std::string const& msg) -> QPDFExc {
749
40
        return {
750
40
            qpdf_e_unsupported,
751
40
            file->getName(),
752
40
            "encryption dictionary",
753
40
            file->getLastOffset(),
754
40
            msg};
755
40
    };
756
757
    // After we initialize encryption parameters, we must use stored key information and never look
758
    // at /Encrypt again.  Otherwise, things could go wrong if someone mutates the encryption
759
    // dictionary.
760
761
8.65k
    if (!trailer.hasKey("/Encrypt")) {
762
7.63k
        return;
763
7.63k
    }
764
765
    // Go ahead and set m->encrypted here.  That way, isEncrypted will return true even if there
766
    // were errors reading the encryption dictionary.
767
1.02k
    encrypted = true;
768
769
1.02k
    std::string id1;
770
1.02k
    auto id_obj = trailer.getKey("/ID");
771
1.02k
    if (id_obj.size() != 2 || !id_obj.getArrayItem(0).isString()) {
772
        // Treating a missing ID as the empty string enables qpdf to decrypt some invalid encrypted
773
        // files with no /ID that poppler can read but Adobe Reader can't.
774
673
        qpdf.warn(qpdf.m->c.damagedPDF("trailer", "invalid /ID in trailer dictionary"));
775
673
    } else {
776
349
        id1 = id_obj.getArrayItem(0).getStringValue();
777
349
    }
778
779
1.02k
    auto encryption_dict = trailer.getKey("/Encrypt");
780
1.02k
    if (!encryption_dict.isDictionary()) {
781
1
        throw qpdf.m->c.damagedPDF("/Encrypt in trailer dictionary is not a dictionary");
782
1
    }
783
784
1.02k
    if (Name(encryption_dict["/Filter"]) != "/Standard") {
785
16
        throw unsupported("unsupported encryption filter");
786
16
    }
787
1.00k
    if (!encryption_dict.getKey("/SubFilter").null()) {
788
1
        qpdf.warn(unsupported("file uses encryption SubFilters, which qpdf does not support"));
789
1
    }
790
791
1.00k
    if (!(encryption_dict.getKey("/V").isInteger() && encryption_dict.getKey("/R").isInteger() &&
792
932
          encryption_dict.getKey("/O").isString() && encryption_dict.getKey("/U").isString() &&
793
929
          encryption_dict.getKey("/P").isInteger())) {
794
72
        throw_damaged_pdf("some encryption dictionary parameters are missing or the wrong type");
795
72
    }
796
797
1.00k
    int V = encryption_dict.getKey("/V").getIntValueAsInt();
798
1.00k
    int R = encryption_dict.getKey("/R").getIntValueAsInt();
799
1.00k
    std::string O = encryption_dict.getKey("/O").getStringValue();
800
1.00k
    std::string U = encryption_dict.getKey("/U").getStringValue();
801
1.00k
    int p = static_cast<int>(encryption_dict.getKey("/P").getIntValue());
802
803
    // If supporting new encryption R/V values, remember to update error message inside this if
804
    // statement.
805
1.00k
    if (!(2 <= R && R <= 6 && (V == 1 || V == 2 || V == 4 || V == 5))) {
806
23
        throw unsupported(
807
23
            "Unsupported /R or /V in encryption dictionary; R = " + std::to_string(R) +
808
23
            " (max 6), V = " + std::to_string(V) + " (max 5)");
809
23
    }
810
811
982
    P_ = std::bitset<32>(static_cast<unsigned long long>(p));
812
982
    encryption_V = V;
813
982
    R_ = R;
814
815
    // OE, UE, and Perms are only present if V >= 5.
816
982
    std::string OE;
817
982
    std::string UE;
818
982
    std::string Perms;
819
820
982
    if (V < 5) {
821
        // These must be exactly the right number of bytes.
822
506
        pad_short_parameter(O, key_bytes);
823
506
        pad_short_parameter(U, key_bytes);
824
506
        if (!(O.length() == key_bytes && U.length() == key_bytes)) {
825
3
            throw_damaged_pdf("incorrect length for /O and/or /U in encryption dictionary");
826
3
        }
827
506
    } else {
828
476
        if (!(encryption_dict.getKey("/OE").isString() &&
829
397
              encryption_dict.getKey("/UE").isString() &&
830
395
              encryption_dict.getKey("/Perms").isString())) {
831
5
            throw_damaged_pdf(
832
5
                "some V=5 encryption dictionary parameters are missing or the wrong type");
833
5
        }
834
476
        OE = encryption_dict.getKey("/OE").getStringValue();
835
476
        UE = encryption_dict.getKey("/UE").getStringValue();
836
476
        Perms = encryption_dict.getKey("/Perms").getStringValue();
837
838
        // These may be longer than the minimum number of bytes.
839
476
        pad_short_parameter(O, OU_key_bytes_V5);
840
476
        pad_short_parameter(U, OU_key_bytes_V5);
841
476
        pad_short_parameter(OE, OUE_key_bytes_V5);
842
476
        pad_short_parameter(UE, OUE_key_bytes_V5);
843
476
        pad_short_parameter(Perms, Perms_key_bytes_V5);
844
476
    }
845
846
982
    int Length = 128; // Just take a guess.
847
982
    if (V <= 1) {
848
92
        Length = 40;
849
890
    } else if (V == 4) {
850
269
        Length = 128;
851
621
    } else if (V == 5) {
852
394
        Length = 256;
853
394
    } else {
854
227
        if (encryption_dict.getKey("/Length").isInteger()) {
855
31
            Length = encryption_dict.getKey("/Length").getIntValueAsInt();
856
31
            if (Length % 8 || Length < 40 || Length > 128) {
857
7
                Length = 128; // Just take a guess.
858
7
            }
859
31
        }
860
227
    }
861
862
982
    encrypt_metadata = true;
863
982
    if (V >= 4 && encryption_dict.getKey("/EncryptMetadata").isBool()) {
864
1
        encrypt_metadata = encryption_dict.getKey("/EncryptMetadata").getBoolValue();
865
1
    }
866
867
982
    if (V == 4 || V == 5) {
868
663
        auto CF = encryption_dict.getKey("/CF");
869
3.00k
        for (auto const& [filter, cdict]: CF.as_dictionary()) {
870
3.00k
            if (cdict.isDictionary()) {
871
1.41k
                encryption_method_e method = e_none;
872
1.41k
                if (Name const& CFM = cdict["/CFM"]) {
873
702
                    if (CFM == "/V2") {
874
74
                        method = e_rc4;
875
628
                    } else if (CFM == "/AESV2") {
876
75
                        method = e_aes;
877
553
                    } else if (CFM == "/AESV3") {
878
68
                        method = e_aesv3;
879
485
                    } else {
880
                        // Don't complain now -- maybe we won't need to reference this type.
881
485
                        method = e_unknown;
882
485
                    }
883
702
                }
884
1.41k
                crypt_filters[filter] = method;
885
1.41k
            }
886
3.00k
        }
887
888
663
        cf_stream = interpretCF(encryption_dict["/StmF"]);
889
663
        cf_string = interpretCF(encryption_dict["/StrF"]);
890
663
        if (Name const& EFF = encryption_dict["/EFF"]) {
891
            // qpdf does not use this for anything other than informational purposes. This is
892
            // intended to instruct conforming writers on which crypt filter should be used when new
893
            // file attachments are added to a PDF file, but qpdf never generates encrypted files
894
            // with non-default crypt filters. Prior to 10.2, I was under the mistaken impression
895
            // that this was supposed to be used for decrypting attachments, but the code was wrong
896
            // in a way that turns out not to have mattered because no writers were generating files
897
            // the way I was imagining. Still, providing this information could be useful when
898
            // looking at a file generated by something else, such as Acrobat when specifying that
899
            // only attachments should be encrypted.
900
56
            cf_file = interpretCF(EFF);
901
607
        } else {
902
607
            cf_file = cf_stream;
903
607
        }
904
663
    }
905
906
982
    Encryption data(V, R, Length / 8, p, O, U, OE, UE, Perms, id1, encrypt_metadata);
907
982
    if (qm.cf.password_is_hex_key()) {
908
        // ignore passwords in file
909
0
        encryption_key = QUtil::hex_decode(provided_password);
910
0
        return;
911
0
    }
912
913
982
    owner_password_matched = data.check_owner_password(user_password, provided_password);
914
982
    if (owner_password_matched && V < 5) {
915
        // password supplied was owner password; user_password has been initialized for V < 5
916
40
        if (qpdf.getTrimmedUserPassword() == provided_password) {
917
0
            user_password_matched = true;
918
0
            QTC::TC("qpdf", "QPDF_encryption user matches owner V < 5");
919
0
        }
920
942
    } else {
921
942
        user_password_matched = data.check_user_password(provided_password);
922
942
        if (user_password_matched) {
923
515
            user_password = provided_password;
924
515
        }
925
942
    }
926
982
    if (user_password_matched && owner_password_matched) {
927
0
        QTC::TC("qpdf", "QPDF_encryption same password", (V < 5) ? 0 : 1);
928
0
    }
929
982
    if (!(owner_password_matched || user_password_matched)) {
930
337
        throw QPDFExc(qpdf_e_password, file->getName(), "", 0, "invalid password");
931
337
    }
932
933
645
    if (V < 5) {
934
        // For V < 5, the user password is encrypted with the owner password, and the user password
935
        // is always used for computing the encryption key.
936
406
        encryption_key = data.compute_encryption_key(user_password);
937
406
    } else {
938
        // For V >= 5, either password can be used independently to compute the encryption key, and
939
        // neither password can be used to recover the other.
940
239
        bool perms_valid;
941
239
        encryption_key = data.recover_encryption_key_with_password(provided_password, perms_valid);
942
239
        if (!perms_valid) {
943
151
            warn_damaged_pdf("/Perms field in encryption dictionary doesn't match expected value");
944
151
        }
945
239
    }
946
645
}
947
948
std::string
949
QPDF::getKeyForObject(std::shared_ptr<EncryptionParameters> encp, QPDFObjGen og, bool use_aes)
950
24.9k
{
951
24.9k
    if (!encp->encrypted) {
952
0
        throw std::logic_error("request for encryption key in non-encrypted PDF");
953
0
    }
954
955
24.9k
    if (og != encp->cached_key_og) {
956
2.96k
        encp->cached_object_encryption_key = compute_data_key(
957
2.96k
            encp->encryption_key, og.getObj(), og.getGen(), use_aes, encp->encryption_V, encp->R());
958
2.96k
        encp->cached_key_og = og;
959
2.96k
    }
960
961
24.9k
    return encp->cached_object_encryption_key;
962
24.9k
}
963
964
void
965
QPDF::decryptString(std::string& str, QPDFObjGen og)
966
24.7k
{
967
24.7k
    if (!og.isIndirect()) {
968
0
        return;
969
0
    }
970
24.7k
    bool use_aes = false;
971
24.7k
    if (m->encp->encryption_V >= 4) {
972
18.0k
        switch (m->encp->cf_string) {
973
591
        case e_none:
974
591
            return;
975
976
16.3k
        case e_aes:
977
16.3k
            use_aes = true;
978
16.3k
            break;
979
980
844
        case e_aesv3:
981
844
            use_aes = true;
982
844
            break;
983
984
68
        case e_rc4:
985
68
            break;
986
987
173
        default:
988
173
            warn(m->c.damagedPDF(
989
173
                "unknown encryption filter for strings (check /StrF in "
990
173
                "/Encrypt dictionary); strings may be decrypted improperly"));
991
            // To avoid repeated warnings, reset cf_string.  Assume we'd want to use AES if V == 4.
992
173
            m->encp->cf_string = e_aes;
993
173
            use_aes = true;
994
173
            break;
995
18.0k
        }
996
18.0k
    }
997
998
24.1k
    std::string key = getKeyForObject(m->encp, og, use_aes);
999
24.1k
    try {
1000
24.1k
        if (use_aes) {
1001
17.3k
            QTC::TC("qpdf", "QPDF_encryption aes decode string");
1002
17.3k
            Pl_Buffer bufpl("decrypted string");
1003
17.3k
            Pl_AES_PDF pl("aes decrypt string", &bufpl, false, key);
1004
17.3k
            pl.writeString(str);
1005
17.3k
            pl.finish();
1006
17.3k
            str = bufpl.getString();
1007
17.3k
        } else {
1008
6.82k
            QTC::TC("qpdf", "QPDF_encryption rc4 decode string");
1009
6.82k
            size_t vlen = str.length();
1010
            // Using std::shared_ptr guarantees that tmp will be freed even if rc4.process throws an
1011
            // exception.
1012
6.82k
            auto tmp = QUtil::make_unique_cstr(str);
1013
6.82k
            RC4 rc4(QUtil::unsigned_char_pointer(key), QIntC::to_int(key.length()));
1014
6.82k
            auto data = QUtil::unsigned_char_pointer(tmp.get());
1015
6.82k
            rc4.process(data, vlen, data);
1016
6.82k
            str = std::string(tmp.get(), vlen);
1017
6.82k
        }
1018
24.1k
    } catch (QPDFExc&) {
1019
0
        throw;
1020
0
    } catch (std::runtime_error& e) {
1021
0
        throw m->c.damagedPDF(
1022
0
            "error decrypting string for object " + og.unparse() + ": " + e.what());
1023
0
    }
1024
24.1k
}
1025
1026
// Prepend a decryption pipeline to 'pipeline'. The decryption pipeline (returned as
1027
// 'decrypt_pipeline' must be owned by the caller to ensure that it stays alive while the pipeline
1028
// is in use.
1029
void
1030
QPDF::decryptStream(
1031
    std::shared_ptr<EncryptionParameters> encp,
1032
    std::shared_ptr<InputSource> file,
1033
    QPDF& qpdf_for_warning,
1034
    Pipeline*& pipeline,
1035
    QPDFObjGen og,
1036
    QPDFObjectHandle& stream_dict,
1037
    bool is_root_metadata,
1038
    std::unique_ptr<Pipeline>& decrypt_pipeline)
1039
1.01k
{
1040
1.01k
    if (Name(stream_dict["/Type"]) == "/XRef") {
1041
10
        return;
1042
10
    }
1043
1.00k
    bool use_aes = false;
1044
1.00k
    if (encp->encryption_V >= 4) {
1045
656
        encryption_method_e method = e_unknown;
1046
656
        std::string method_source = "/StmF from /Encrypt dictionary";
1047
1048
656
        if (stream_dict.getKey("/Filter").isOrHasName("/Crypt")) {
1049
62
            if (Dictionary decode_parms = stream_dict["/DecodeParms"]) {
1050
40
                if (Name(decode_parms["/Type"]) == "/CryptFilterDecodeParms") {
1051
7
                    method = encp->interpretCF(decode_parms["/Name"]);
1052
7
                    method_source = "stream's Crypt decode parameters";
1053
7
                }
1054
40
            } else {
1055
22
                Array filter = stream_dict["/Filter"];
1056
22
                Array decode = stream_dict.getKey("/DecodeParms");
1057
22
                if (filter.size() == decode.size()) {
1058
20
                    size_t i = 0;
1059
20
                    for (Name item: filter) {
1060
0
                        if (item == "/Crypt") {
1061
0
                            if (Name name = decode[i]["/Name"]) {
1062
0
                                method = encp->interpretCF(name);
1063
0
                                method_source = "stream's Crypt decode parameters (array)";
1064
0
                            }
1065
0
                            break;
1066
0
                        }
1067
0
                        ++i;
1068
0
                    }
1069
20
                }
1070
22
            }
1071
62
        }
1072
1073
656
        if (method == e_unknown) {
1074
649
            if (!encp->encrypt_metadata && is_root_metadata) {
1075
0
                method = e_none;
1076
649
            } else {
1077
649
                method = encp->cf_stream;
1078
649
            }
1079
649
        }
1080
656
        use_aes = false;
1081
656
        switch (method) {
1082
114
        case e_none:
1083
114
            return;
1084
0
            break;
1085
1086
320
        case e_aes:
1087
320
            use_aes = true;
1088
320
            break;
1089
1090
26
        case e_aesv3:
1091
26
            use_aes = true;
1092
26
            break;
1093
1094
1
        case e_rc4:
1095
1
            break;
1096
1097
195
        default:
1098
            // filter local to this stream.
1099
195
            qpdf_for_warning.warn(
1100
195
                {qpdf_e_damaged_pdf,
1101
195
                 file->getName(),
1102
195
                 "",
1103
195
                 file->getLastOffset(),
1104
195
                 "unknown encryption filter for streams (check " + method_source +
1105
195
                     "); streams may be decrypted improperly"});
1106
            // To avoid repeated warnings, reset cf_stream.  Assume we'd want to use AES if V == 4.
1107
195
            encp->cf_stream = e_aes;
1108
195
            use_aes = true;
1109
195
            break;
1110
656
        }
1111
656
    }
1112
809
    std::string key = getKeyForObject(encp, og, use_aes);
1113
809
    if (use_aes) {
1114
457
        decrypt_pipeline =
1115
457
            std::make_unique<Pl_AES_PDF>("AES stream decryption", pipeline, false, key);
1116
457
    } else {
1117
352
        decrypt_pipeline = std::make_unique<Pl_RC4>("RC4 stream decryption", pipeline, key);
1118
352
    }
1119
809
    pipeline = decrypt_pipeline.get();
1120
809
}
1121
1122
void
1123
QPDF::compute_encryption_O_U(
1124
    char const* user_password,
1125
    char const* owner_password,
1126
    int V,
1127
    int R,
1128
    int key_len,
1129
    int P,
1130
    bool encrypt_metadata,
1131
    std::string const& id1,
1132
    std::string& out_O,
1133
    std::string& out_U)
1134
0
{
1135
0
    Encryption data(V, R, key_len, P, "", "", "", "", "", id1, encrypt_metadata);
1136
0
    data.compute_encryption_O_U(user_password, owner_password);
1137
0
    out_O = data.getO();
1138
0
    out_U = data.getU();
1139
0
}
1140
1141
void
1142
Encryption::compute_encryption_O_U(char const* user_password, char const* owner_password)
1143
0
{
1144
0
    if (V >= 5) {
1145
0
        throw std::logic_error("compute_encryption_O_U called for file with V >= 5");
1146
0
    }
1147
0
    O = compute_O_value(user_password, owner_password);
1148
0
    U = compute_U_value(user_password);
1149
0
}
1150
1151
void
1152
QPDF::compute_encryption_parameters_V5(
1153
    char const* user_password,
1154
    char const* owner_password,
1155
    int V,
1156
    int R,
1157
    int key_len,
1158
    int P,
1159
    bool encrypt_metadata,
1160
    std::string const& id1,
1161
    std::string& encryption_key,
1162
    std::string& out_O,
1163
    std::string& out_U,
1164
    std::string& out_OE,
1165
    std::string& out_UE,
1166
    std::string& out_Perms)
1167
0
{
1168
0
    Encryption data(V, R, key_len, P, "", "", "", "", "", id1, encrypt_metadata);
1169
0
    encryption_key = data.compute_encryption_parameters_V5(user_password, owner_password);
1170
1171
0
    out_O = data.getO();
1172
0
    out_U = data.getU();
1173
0
    out_OE = data.getOE();
1174
0
    out_UE = data.getUE();
1175
0
    out_Perms = data.getPerms();
1176
0
}
1177
1178
std::string
1179
Encryption::compute_encryption_parameters_V5(char const* user_password, char const* owner_password)
1180
0
{
1181
0
    auto out_encryption_key = util::random_string(key_bytes);
1182
    // Algorithm 8 from the PDF 2.0
1183
0
    auto validation_salt = util::random_string(8);
1184
0
    auto key_salt = util::random_string(8);
1185
0
    U = hash_V5(user_password, validation_salt, "").append(validation_salt).append(key_salt);
1186
0
    auto intermediate_key = hash_V5(user_password, key_salt, "");
1187
0
    UE = process_with_aes(intermediate_key, true, out_encryption_key);
1188
    // Algorithm 9 from the PDF 2.0
1189
0
    validation_salt = util::random_string(8);
1190
0
    key_salt = util::random_string(8);
1191
0
    O = hash_V5(owner_password, validation_salt, U) + validation_salt + key_salt;
1192
0
    intermediate_key = hash_V5(owner_password, key_salt, U);
1193
0
    OE = process_with_aes(intermediate_key, true, out_encryption_key);
1194
    // Algorithm 10 from the PDF 2.0
1195
0
    Perms = process_with_aes(out_encryption_key, true, compute_Perms_value_V5_clear());
1196
0
    return out_encryption_key;
1197
0
}
1198
1199
std::string
1200
Encryption::compute_parameters(char const* user_password, char const* owner_password)
1201
0
{
1202
0
    if (V < 5) {
1203
0
        compute_encryption_O_U(user_password, owner_password);
1204
0
        return compute_encryption_key(user_password);
1205
0
    } else {
1206
0
        return compute_encryption_parameters_V5(user_password, owner_password);
1207
0
    }
1208
0
}
1209
1210
std::string const&
1211
QPDF::getPaddedUserPassword() const
1212
0
{
1213
0
    return m->encp->user_password;
1214
0
}
1215
1216
std::string
1217
QPDF::getTrimmedUserPassword() const
1218
40
{
1219
40
    std::string result = m->encp->user_password;
1220
40
    trim_user_password(result);
1221
40
    return result;
1222
40
}
1223
1224
std::string
1225
QPDF::getEncryptionKey() const
1226
0
{
1227
0
    return m->encp->encryption_key;
1228
0
}
1229
1230
bool
1231
QPDF::isEncrypted() const
1232
0
{
1233
0
    return m->encp->encrypted;
1234
0
}
1235
1236
bool
1237
QPDF::isEncrypted(int& R, int& P)
1238
0
{
1239
0
    if (!m->encp->encrypted) {
1240
0
        return false;
1241
0
    }
1242
0
    P = m->encp->P();
1243
0
    R = m->encp->R();
1244
0
    return true;
1245
0
}
1246
1247
bool
1248
QPDF::isEncrypted(
1249
    int& R,
1250
    int& P,
1251
    int& V,
1252
    encryption_method_e& stream_method,
1253
    encryption_method_e& string_method,
1254
    encryption_method_e& file_method)
1255
0
{
1256
0
    if (!m->encp->encrypted) {
1257
0
        return false;
1258
0
    }
1259
0
    P = m->encp->P();
1260
0
    R = m->encp->R();
1261
0
    V = m->encp->encryption_V;
1262
0
    stream_method = m->encp->cf_stream;
1263
0
    string_method = m->encp->cf_string;
1264
0
    file_method = m->encp->cf_file;
1265
0
    return true;
1266
0
}
1267
1268
bool
1269
QPDF::ownerPasswordMatched() const
1270
0
{
1271
0
    return m->encp->owner_password_matched;
1272
0
}
1273
1274
bool
1275
QPDF::userPasswordMatched() const
1276
0
{
1277
0
    return m->encp->user_password_matched;
1278
0
}
1279
1280
bool
1281
QPDF::allowAccessibility()
1282
0
{
1283
0
    return m->encp->R() < 3 ? m->encp->P(5) : m->encp->P(10);
1284
0
}
1285
1286
bool
1287
QPDF::allowExtractAll()
1288
0
{
1289
0
    return m->encp->P(5);
1290
0
}
1291
1292
bool
1293
QPDF::allowPrintLowRes()
1294
0
{
1295
0
    return m->encp->P(3);
1296
0
}
1297
1298
bool
1299
QPDF::allowPrintHighRes()
1300
0
{
1301
0
    return allowPrintLowRes() && (m->encp->R() < 3 ? true : m->encp->P(12));
1302
0
}
1303
1304
bool
1305
QPDF::allowModifyAssembly()
1306
0
{
1307
0
    return m->encp->R() < 3 ? m->encp->P(4) : m->encp->P(11);
1308
0
}
1309
1310
bool
1311
QPDF::allowModifyForm()
1312
0
{
1313
0
    return m->encp->R() < 3 ? m->encp->P(6) : m->encp->P(9);
1314
0
}
1315
1316
bool
1317
QPDF::allowModifyAnnotation()
1318
0
{
1319
0
    return m->encp->P(6);
1320
0
}
1321
1322
bool
1323
QPDF::allowModifyOther()
1324
0
{
1325
0
    return m->encp->P(4);
1326
0
}
1327
1328
bool
1329
QPDF::allowModifyAll()
1330
0
{
1331
0
    return allowModifyAnnotation() && allowModifyOther() &&
1332
0
        (m->encp->R() < 3 ? true : allowModifyForm() && allowModifyAssembly());
1333
0
}