GCC Code Coverage Report
Directory: . Exec Total Coverage
File: src/prop/proof_cnf_stream.cpp Lines: 580 619 93.7 %
Date: 2021-08-01 Branches: 1499 3332 45.0 %

Line Exec Source
1
/******************************************************************************
2
 * Top contributors (to current version):
3
 *   Haniel Barbosa, Andrew Reynolds, Tim King
4
 *
5
 * This file is part of the cvc5 project.
6
 *
7
 * Copyright (c) 2009-2021 by the authors listed in the file AUTHORS
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 * in the top-level source directory and their institutional affiliations.
9
 * All rights reserved.  See the file COPYING in the top-level source
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 * directory for licensing information.
11
 * ****************************************************************************
12
 *
13
 * Implementation of the proof-producing CNF stream.
14
 */
15
16
#include "prop/proof_cnf_stream.h"
17
18
#include "options/smt_options.h"
19
#include "prop/minisat/minisat.h"
20
#include "theory/builtin/proof_checker.h"
21
#include "util/rational.h"
22
23
namespace cvc5 {
24
namespace prop {
25
26
1248
ProofCnfStream::ProofCnfStream(context::UserContext* u,
27
                               CnfStream& cnfStream,
28
                               SatProofManager* satPM,
29
1248
                               ProofNodeManager* pnm)
30
    : d_cnfStream(cnfStream),
31
      d_satPM(satPM),
32
      d_proof(pnm, nullptr, u, "ProofCnfStream::LazyCDProof"),
33
1248
      d_blocked(u)
34
{
35
1248
}
36
37
789502
void ProofCnfStream::addBlocked(std::shared_ptr<ProofNode> pfn)
38
{
39
789502
  d_blocked.insert(pfn);
40
789502
}
41
42
1453040
bool ProofCnfStream::isBlocked(std::shared_ptr<ProofNode> pfn)
43
{
44
1453040
  return d_blocked.contains(pfn);
45
}
46
47
148898
std::shared_ptr<ProofNode> ProofCnfStream::getProofFor(Node f)
48
{
49
148898
  return d_proof.getProofFor(f);
50
}
51
52
1162998
bool ProofCnfStream::hasProofFor(Node f)
53
{
54
1162998
  return d_proof.hasStep(f) || d_proof.hasGenerator(f);
55
}
56
57
std::string ProofCnfStream::identify() const { return "ProofCnfStream"; }
58
59
728913
void ProofCnfStream::normalizeAndRegister(TNode clauseNode)
60
{
61
1457826
  Node normClauseNode = d_psb.factorReorderElimDoubleNeg(clauseNode);
62
728913
  if (Trace.isOn("cnf") && normClauseNode != clauseNode)
63
  {
64
    Trace("cnf") << push
65
                 << "ProofCnfStream::normalizeAndRegister: steps to normalized "
66
                 << normClauseNode << "\n"
67
                 << pop;
68
  }
69
728913
  d_satPM->registerSatAssumptions({normClauseNode});
70
728913
}
71
72
93394
void ProofCnfStream::convertAndAssert(TNode node,
73
                                      bool negated,
74
                                      bool removable,
75
                                      ProofGenerator* pg)
76
{
77
186788
  Trace("cnf") << "ProofCnfStream::convertAndAssert(" << node
78
186788
               << ", negated = " << (negated ? "true" : "false")
79
93394
               << ", removable = " << (removable ? "true" : "false") << ")\n";
80
93394
  d_cnfStream.d_removable = removable;
81
93394
  if (pg)
82
  {
83
145828
    Trace("cnf") << "ProofCnfStream::convertAndAssert: pg: " << pg->identify()
84
72914
                 << "\n";
85
145828
    Node toJustify = negated ? node.notNode() : static_cast<Node>(node);
86
72914
    d_proof.addLazyStep(toJustify,
87
                        pg,
88
                        PfRule::ASSUME,
89
                        true,
90
                        "ProofCnfStream::convertAndAssert:cnf");
91
  }
92
93394
  convertAndAssert(node, negated);
93
  // process saved steps in buffer
94
93394
  const std::vector<std::pair<Node, ProofStep>>& steps = d_psb.getSteps();
95
2849149
  for (const std::pair<Node, ProofStep>& step : steps)
96
  {
97
2755755
    d_proof.addStep(step.first, step.second);
98
  }
99
93394
  d_psb.clear();
100
93394
}
101
102
168140
void ProofCnfStream::convertAndAssert(TNode node, bool negated)
103
{
104
336280
  Trace("cnf") << "ProofCnfStream::convertAndAssert(" << node
105
168140
               << ", negated = " << (negated ? "true" : "false") << ")\n";
106
168140
  switch (node.getKind())
107
  {
108
18275
    case kind::AND: convertAndAssertAnd(node, negated); break;
109
53922
    case kind::OR: convertAndAssertOr(node, negated); break;
110
12
    case kind::XOR: convertAndAssertXor(node, negated); break;
111
14904
    case kind::IMPLIES: convertAndAssertImplies(node, negated); break;
112
4784
    case kind::ITE: convertAndAssertIte(node, negated); break;
113
22372
    case kind::NOT:
114
    {
115
      // track double negation elimination
116
22372
      if (negated)
117
      {
118
629
        d_proof.addStep(node[0], PfRule::NOT_NOT_ELIM, {node.notNode()}, {});
119
1258
        Trace("cnf")
120
629
            << "ProofCnfStream::convertAndAssert: NOT_NOT_ELIM added norm "
121
629
            << node[0] << "\n";
122
      }
123
22372
      convertAndAssert(node[0], !negated);
124
22372
      break;
125
    }
126
35538
    case kind::EQUAL:
127
35538
      if (node[0].getType().isBoolean())
128
      {
129
6085
        convertAndAssertIff(node, negated);
130
6085
        break;
131
      }
132
      CVC5_FALLTHROUGH;
133
    default:
134
    {
135
      // negate
136
95572
      Node nnode = negated ? node.negate() : static_cast<Node>(node);
137
      // Atoms
138
47786
      SatLiteral lit = toCNF(node, negated);
139
47786
      bool added = d_cnfStream.assertClause(nnode, lit);
140
47786
      if (negated && added && nnode != node.notNode())
141
      {
142
        // track double negation elimination
143
        //    (not (not n))
144
        //   -------------- NOT_NOT_ELIM
145
        //        n
146
        d_proof.addStep(nnode, PfRule::NOT_NOT_ELIM, {node.notNode()}, {});
147
        Trace("cnf")
148
            << "ProofCnfStream::convertAndAssert: NOT_NOT_ELIM added norm "
149
            << nnode << "\n";
150
      }
151
47786
      if (added)
152
      {
153
        // note that we do not need to do the normalization here since this is
154
        // not a clause and double negation is tracked in a dedicated manner
155
        // above
156
28640
        d_satPM->registerSatAssumptions({nnode});
157
47786
      }
158
    }
159
  }
160
168140
}
161
162
18275
void ProofCnfStream::convertAndAssertAnd(TNode node, bool negated)
163
{
164
36550
  Trace("cnf") << "ProofCnfStream::convertAndAssertAnd(" << node
165
18275
               << ", negated = " << (negated ? "true" : "false") << ")\n";
166
18275
  Assert(node.getKind() == kind::AND);
167
18275
  if (!negated)
168
  {
169
    // If the node is a conjunction, we handle each conjunct separately
170
2698
    NodeManager* nm = NodeManager::currentNM();
171
54070
    for (unsigned i = 0, size = node.getNumChildren(); i < size; ++i)
172
    {
173
      // Create a proof step for each n_i
174
102744
      Node iNode = nm->mkConst<Rational>(i);
175
51372
      d_proof.addStep(node[i], PfRule::AND_ELIM, {node}, {iNode});
176
102744
      Trace("cnf") << "ProofCnfStream::convertAndAssertAnd: AND_ELIM " << i
177
51372
                   << " added norm " << node[i] << "\n";
178
51372
      convertAndAssert(node[i], false);
179
    }
180
  }
181
  else
182
  {
183
    // If the node is a disjunction, we construct a clause and assert it
184
15577
    unsigned i, size = node.getNumChildren();
185
31154
    SatClause clause(size);
186
155300
    for (i = 0; i < size; ++i)
187
    {
188
139723
      clause[i] = toCNF(node[i], true);
189
    }
190
15577
    bool added = d_cnfStream.assertClause(node.negate(), clause);
191
    // register proof step
192
15577
    if (added)
193
    {
194
31076
      std::vector<Node> disjuncts;
195
155123
      for (i = 0; i < size; ++i)
196
      {
197
139585
        disjuncts.push_back(node[i].notNode());
198
      }
199
31076
      Node clauseNode = NodeManager::currentNM()->mkNode(kind::OR, disjuncts);
200
15538
      d_proof.addStep(clauseNode, PfRule::NOT_AND, {node.notNode()}, {});
201
31076
      Trace("cnf") << "ProofCnfStream::convertAndAssertAnd: NOT_AND added "
202
15538
                   << clauseNode << "\n";
203
15538
      normalizeAndRegister(clauseNode);
204
    }
205
  }
206
18275
}
207
208
53922
void ProofCnfStream::convertAndAssertOr(TNode node, bool negated)
209
{
210
107844
  Trace("cnf") << "ProofCnfStream::convertAndAssertOr(" << node
211
53922
               << ", negated = " << (negated ? "true" : "false") << ")\n";
212
53922
  Assert(node.getKind() == kind::OR);
213
53922
  if (!negated)
214
  {
215
    // If the node is a disjunction, we construct a clause and assert it
216
53826
    unsigned size = node.getNumChildren();
217
107652
    SatClause clause(size);
218
217705
    for (unsigned i = 0; i < size; ++i)
219
    {
220
163879
      clause[i] = toCNF(node[i], false);
221
    }
222
53826
    normalizeAndRegister(node);
223
53826
    d_cnfStream.assertClause(node, clause);
224
  }
225
  else
226
  {
227
    // If the node is a negated disjunction, we handle it as a conjunction of
228
    // the negated arguments
229
96
    NodeManager* nm = NodeManager::currentNM();
230
900
    for (unsigned i = 0, size = node.getNumChildren(); i < size; ++i)
231
    {
232
      // Create a proof step for each (not n_i)
233
1608
      Node iNode = nm->mkConst<Rational>(i);
234
4020
      d_proof.addStep(
235
3216
          node[i].notNode(), PfRule::NOT_OR_ELIM, {node.notNode()}, {iNode});
236
1608
      Trace("cnf") << "ProofCnfStream::convertAndAssertOr: NOT_OR_ELIM " << i
237
804
                   << " added norm  " << node[i].notNode() << "\n";
238
804
      convertAndAssert(node[i], true);
239
    }
240
  }
241
53922
}
242
243
12
void ProofCnfStream::convertAndAssertXor(TNode node, bool negated)
244
{
245
24
  Trace("cnf") << "ProofCnfStream::convertAndAssertXor(" << node
246
12
               << ", negated = " << (negated ? "true" : "false") << ")\n";
247
12
  if (!negated)
248
  {
249
    // p XOR q
250
12
    SatLiteral p = toCNF(node[0], false);
251
12
    SatLiteral q = toCNF(node[1], false);
252
    bool added;
253
12
    NodeManager* nm = NodeManager::currentNM();
254
    // Construct the clause (~p v ~q)
255
24
    SatClause clause1(2);
256
12
    clause1[0] = ~p;
257
12
    clause1[1] = ~q;
258
12
    added = d_cnfStream.assertClause(node, clause1);
259
12
    if (added)
260
    {
261
      Node clauseNode =
262
22
          nm->mkNode(kind::OR, node[0].notNode(), node[1].notNode());
263
11
      d_proof.addStep(clauseNode, PfRule::XOR_ELIM2, {node}, {});
264
22
      Trace("cnf") << "ProofCnfStream::convertAndAssertXor: XOR_ELIM2 added "
265
11
                   << clauseNode << "\n";
266
11
      normalizeAndRegister(clauseNode);
267
    }
268
    // Construct the clause (p v q)
269
24
    SatClause clause2(2);
270
12
    clause2[0] = p;
271
12
    clause2[1] = q;
272
12
    added = d_cnfStream.assertClause(node, clause2);
273
12
    if (added)
274
    {
275
22
      Node clauseNode = nm->mkNode(kind::OR, node[0], node[1]);
276
11
      d_proof.addStep(clauseNode, PfRule::XOR_ELIM1, {node}, {});
277
22
      Trace("cnf") << "ProofCnfStream::convertAndAssertXor: XOR_ELIM1 added "
278
11
                   << clauseNode << "\n";
279
11
      normalizeAndRegister(clauseNode);
280
    }
281
  }
282
  else
283
  {
284
    // ~(p XOR q) is the same as p <=> q
285
    SatLiteral p = toCNF(node[0], false);
286
    SatLiteral q = toCNF(node[1], false);
287
    bool added;
288
    NodeManager* nm = NodeManager::currentNM();
289
    // Construct the clause ~p v q
290
    SatClause clause1(2);
291
    clause1[0] = ~p;
292
    clause1[1] = q;
293
    added = d_cnfStream.assertClause(node.negate(), clause1);
294
    if (added)
295
    {
296
      Node clauseNode = nm->mkNode(kind::OR, node[0].notNode(), node[1]);
297
      d_proof.addStep(clauseNode, PfRule::NOT_XOR_ELIM2, {node.notNode()}, {});
298
      Trace("cnf")
299
          << "ProofCnfStream::convertAndAssertXor: NOT_XOR_ELIM2 added "
300
          << clauseNode << "\n";
301
      normalizeAndRegister(clauseNode);
302
    }
303
    // Construct the clause ~q v p
304
    SatClause clause2(2);
305
    clause2[0] = p;
306
    clause2[1] = ~q;
307
    added = d_cnfStream.assertClause(node.negate(), clause2);
308
    if (added)
309
    {
310
      Node clauseNode = nm->mkNode(kind::OR, node[0], node[1].notNode());
311
      d_proof.addStep(clauseNode, PfRule::NOT_XOR_ELIM1, {node.notNode()}, {});
312
      Trace("cnf")
313
          << "ProofCnfStream::convertAndAssertXor: NOT_XOR_ELIM1 added "
314
          << clauseNode << "\n";
315
      normalizeAndRegister(clauseNode);
316
    }
317
  }
318
12
}
319
320
6085
void ProofCnfStream::convertAndAssertIff(TNode node, bool negated)
321
{
322
12170
  Trace("cnf") << "ProofCnfStream::convertAndAssertIff(" << node
323
6085
               << ", negated = " << (negated ? "true" : "false") << ")\n";
324
6085
  if (!negated)
325
  {
326
    // p <=> q
327
6049
    Trace("cnf") << push;
328
6049
    SatLiteral p = toCNF(node[0], false);
329
6049
    SatLiteral q = toCNF(node[1], false);
330
6049
    Trace("cnf") << pop;
331
    bool added;
332
6049
    NodeManager* nm = NodeManager::currentNM();
333
    // Construct the clauses ~p v q
334
12098
    SatClause clause1(2);
335
6049
    clause1[0] = ~p;
336
6049
    clause1[1] = q;
337
6049
    added = d_cnfStream.assertClause(node, clause1);
338
6049
    if (added)
339
    {
340
10856
      Node clauseNode = nm->mkNode(kind::OR, node[0].notNode(), node[1]);
341
5428
      d_proof.addStep(clauseNode, PfRule::EQUIV_ELIM1, {node}, {});
342
10856
      Trace("cnf") << "ProofCnfStream::convertAndAssertIff: EQUIV_ELIM1 added "
343
5428
                   << clauseNode << "\n";
344
5428
      normalizeAndRegister(clauseNode);
345
    }
346
    // Construct the clauses ~q v p
347
12098
    SatClause clause2(2);
348
6049
    clause2[0] = p;
349
6049
    clause2[1] = ~q;
350
6049
    added = d_cnfStream.assertClause(node, clause2);
351
6049
    if (added)
352
    {
353
10612
      Node clauseNode = nm->mkNode(kind::OR, node[0], node[1].notNode());
354
5306
      d_proof.addStep(clauseNode, PfRule::EQUIV_ELIM2, {node}, {});
355
10612
      Trace("cnf") << "ProofCnfStream::convertAndAssertIff: EQUIV_ELIM2 added "
356
5306
                   << clauseNode << "\n";
357
5306
      normalizeAndRegister(clauseNode);
358
    }
359
  }
360
  else
361
  {
362
    // ~(p <=> q) is the same as p XOR q
363
36
    Trace("cnf") << push;
364
36
    SatLiteral p = toCNF(node[0], false);
365
36
    SatLiteral q = toCNF(node[1], false);
366
36
    Trace("cnf") << pop;
367
    bool added;
368
36
    NodeManager* nm = NodeManager::currentNM();
369
    // Construct the clauses ~p v ~q
370
72
    SatClause clause1(2);
371
36
    clause1[0] = ~p;
372
36
    clause1[1] = ~q;
373
36
    added = d_cnfStream.assertClause(node.negate(), clause1);
374
36
    if (added)
375
    {
376
      Node clauseNode =
377
70
          nm->mkNode(kind::OR, node[0].notNode(), node[1].notNode());
378
70
      d_proof.addStep(
379
35
          clauseNode, PfRule::NOT_EQUIV_ELIM2, {node.notNode()}, {});
380
70
      Trace("cnf")
381
35
          << "ProofCnfStream::convertAndAssertIff: NOT_EQUIV_ELIM2 added "
382
35
          << clauseNode << "\n";
383
35
      normalizeAndRegister(clauseNode);
384
    }
385
    // Construct the clauses q v p
386
72
    SatClause clause2(2);
387
36
    clause2[0] = p;
388
36
    clause2[1] = q;
389
36
    added = d_cnfStream.assertClause(node.negate(), clause2);
390
36
    if (added)
391
    {
392
68
      Node clauseNode = nm->mkNode(kind::OR, node[0], node[1]);
393
68
      d_proof.addStep(
394
34
          clauseNode, PfRule::NOT_EQUIV_ELIM1, {node.notNode()}, {});
395
68
      Trace("cnf")
396
34
          << "ProofCnfStream::convertAndAssertIff: NOT_EQUIV_ELIM1 added "
397
34
          << clauseNode << "\n";
398
34
      normalizeAndRegister(clauseNode);
399
    }
400
  }
401
6085
}
402
403
14904
void ProofCnfStream::convertAndAssertImplies(TNode node, bool negated)
404
{
405
29808
  Trace("cnf") << "ProofCnfStream::convertAndAssertImplies(" << node
406
14904
               << ", negated = " << (negated ? "true" : "false") << ")\n";
407
14904
  if (!negated)
408
  {
409
    // ~p v q
410
14805
    SatLiteral p = toCNF(node[0], false);
411
14805
    SatLiteral q = toCNF(node[1], false);
412
    // Construct the clause ~p || q
413
29610
    SatClause clause(2);
414
14805
    clause[0] = ~p;
415
14805
    clause[1] = q;
416
14805
    bool added = d_cnfStream.assertClause(node, clause);
417
14805
    if (added)
418
    {
419
      Node clauseNode = NodeManager::currentNM()->mkNode(
420
28408
          kind::OR, node[0].notNode(), node[1]);
421
14204
      d_proof.addStep(clauseNode, PfRule::IMPLIES_ELIM, {node}, {});
422
28408
      Trace("cnf")
423
14204
          << "ProofCnfStream::convertAndAssertImplies: IMPLIES_ELIM added "
424
14204
          << clauseNode << "\n";
425
14204
      normalizeAndRegister(clauseNode);
426
    }
427
  }
428
  else
429
  {
430
    // ~(p => q) is the same as p ^ ~q
431
    // process p
432
99
    convertAndAssert(node[0], false);
433
99
    d_proof.addStep(node[0], PfRule::NOT_IMPLIES_ELIM1, {node.notNode()}, {});
434
198
    Trace("cnf")
435
99
        << "ProofCnfStream::convertAndAssertImplies: NOT_IMPLIES_ELIM1 added "
436
99
        << node[0] << "\n";
437
    // process ~q
438
99
    convertAndAssert(node[1], true);
439
396
    d_proof.addStep(
440
297
        node[1].notNode(), PfRule::NOT_IMPLIES_ELIM2, {node.notNode()}, {});
441
198
    Trace("cnf")
442
99
        << "ProofCnfStream::convertAndAssertImplies: NOT_IMPLIES_ELIM2 added "
443
99
        << node[1].notNode() << "\n";
444
  }
445
14904
}
446
447
4784
void ProofCnfStream::convertAndAssertIte(TNode node, bool negated)
448
{
449
9568
  Trace("cnf") << "ProofCnfStream::convertAndAssertIte(" << node
450
4784
               << ", negated = " << (negated ? "true" : "false") << ")\n";
451
  // ITE(p, q, r)
452
4784
  SatLiteral p = toCNF(node[0], false);
453
4784
  SatLiteral q = toCNF(node[1], negated);
454
4784
  SatLiteral r = toCNF(node[2], negated);
455
  bool added;
456
4784
  NodeManager* nm = NodeManager::currentNM();
457
  // Construct the clauses:
458
  // (~p v q) and (p v r)
459
  //
460
  // Note that below q and r can be used directly because whether they are
461
  // negated has been push to the literal definitions above
462
9568
  Node nnode = negated ? node.negate() : static_cast<Node>(node);
463
  // (~p v q)
464
9568
  SatClause clause1(2);
465
4784
  clause1[0] = ~p;
466
4784
  clause1[1] = q;
467
4784
  added = d_cnfStream.assertClause(nnode, clause1);
468
4784
  if (added)
469
  {
470
    // redo the negation here to avoid silent double negation elimination
471
4451
    if (!negated)
472
    {
473
8768
      Node clauseNode = nm->mkNode(kind::OR, node[0].notNode(), node[1]);
474
4384
      d_proof.addStep(clauseNode, PfRule::ITE_ELIM1, {node}, {});
475
8768
      Trace("cnf") << "ProofCnfStream::convertAndAssertIte: ITE_ELIM1 added "
476
4384
                   << clauseNode << "\n";
477
4384
      normalizeAndRegister(clauseNode);
478
    }
479
    else
480
    {
481
      Node clauseNode =
482
134
          nm->mkNode(kind::OR, node[0].notNode(), node[1].notNode());
483
67
      d_proof.addStep(clauseNode, PfRule::NOT_ITE_ELIM1, {node.notNode()}, {});
484
134
      Trace("cnf")
485
67
          << "ProofCnfStream::convertAndAssertIte: NOT_ITE_ELIM1 added "
486
67
          << clauseNode << "\n";
487
67
      normalizeAndRegister(clauseNode);
488
    }
489
  }
490
  // (p v r)
491
9568
  SatClause clause2(2);
492
4784
  clause2[0] = p;
493
4784
  clause2[1] = r;
494
4784
  added = d_cnfStream.assertClause(nnode, clause2);
495
4784
  if (added)
496
  {
497
    // redo the negation here to avoid silent double negation elimination
498
4673
    if (!negated)
499
    {
500
9212
      Node clauseNode = nm->mkNode(kind::OR, node[0], node[2]);
501
4606
      d_proof.addStep(clauseNode, PfRule::ITE_ELIM2, {node}, {});
502
9212
      Trace("cnf") << "ProofCnfStream::convertAndAssertIte: ITE_ELIM2 added "
503
4606
                   << clauseNode << "\n";
504
4606
      normalizeAndRegister(clauseNode);
505
    }
506
    else
507
    {
508
134
      Node clauseNode = nm->mkNode(kind::OR, node[0], node[2].notNode());
509
67
      d_proof.addStep(clauseNode, PfRule::NOT_ITE_ELIM2, {node.notNode()}, {});
510
134
      Trace("cnf")
511
67
          << "ProofCnfStream::convertAndAssertIte: NOT_ITE_ELIM2 added "
512
67
          << clauseNode << "\n";
513
67
      normalizeAndRegister(clauseNode);
514
    }
515
  }
516
4784
}
517
518
18100
void ProofCnfStream::convertPropagation(TrustNode trn)
519
{
520
36200
  Node proven = trn.getProven();
521
36200
  Trace("cnf") << "ProofCnfStream::convertPropagation: proven explanation"
522
18100
               << proven << "\n";
523
  // If we are not producing proofs in the theory engine there is no need to
524
  // keep track in d_proof of the clausification. We still need however to let
525
  // the SAT proof manager know that this clause is an assumption.
526
18100
  bool proofLogging = trn.getGenerator() != nullptr;
527
18100
  if (proofLogging)
528
  {
529
18100
    Assert(trn.getGenerator()->getProofFor(proven)->isClosed());
530
36200
    Trace("cnf-steps") << proven << " by explainPropagation "
531
18100
                       << trn.identifyGenerator() << std::endl;
532
18100
    d_proof.addLazyStep(proven,
533
                        trn.getGenerator(),
534
                        PfRule::ASSUME,
535
                        true,
536
                        "ProofCnfStream::convertPropagation");
537
  }
538
  // since the propagation is added directly to the SAT solver via theoryProxy,
539
  // do the transformation of the lemma E1 ^ ... ^ En => P into CNF here
540
18100
  NodeManager* nm = NodeManager::currentNM();
541
36200
  Node clauseImpliesElim;
542
18100
  if (proofLogging)
543
  {
544
18100
    clauseImpliesElim = nm->mkNode(kind::OR, proven[0].notNode(), proven[1]);
545
36200
    Trace("cnf") << "ProofCnfStream::convertPropagation: adding "
546
36200
                 << PfRule::IMPLIES_ELIM << " rule to conclude "
547
18100
                 << clauseImpliesElim << "\n";
548
18100
    d_proof.addStep(clauseImpliesElim, PfRule::IMPLIES_ELIM, {proven}, {});
549
  }
550
36200
  Node clauseExp;
551
  // need to eliminate AND
552
18100
  if (proven[0].getKind() == kind::AND)
553
  {
554
34464
    std::vector<Node> disjunctsAndNeg{proven[0]};
555
34464
    std::vector<Node> disjunctsRes;
556
162584
    for (unsigned i = 0, size = proven[0].getNumChildren(); i < size; ++i)
557
    {
558
145352
      disjunctsAndNeg.push_back(proven[0][i].notNode());
559
145352
      disjunctsRes.push_back(proven[0][i].notNode());
560
    }
561
17232
    disjunctsRes.push_back(proven[1]);
562
17232
    clauseExp = nm->mkNode(kind::OR, disjunctsRes);
563
17232
    if (proofLogging)
564
    {
565
      // add proof steps to convert into clause
566
34464
      Node clauseAndNeg = nm->mkNode(kind::OR, disjunctsAndNeg);
567
17232
      d_proof.addStep(clauseAndNeg, PfRule::CNF_AND_NEG, {}, {proven[0]});
568
86160
      d_proof.addStep(clauseExp,
569
                      PfRule::RESOLUTION,
570
                      {clauseAndNeg, clauseImpliesElim},
571
68928
                      {nm->mkConst(true), proven[0]});
572
    }
573
  }
574
  else
575
  {
576
868
    clauseExp = nm->mkNode(kind::OR, proven[0].notNode(), proven[1]);
577
  }
578
18100
  normalizeAndRegister(clauseExp);
579
  // consume steps
580
18100
  if (proofLogging)
581
  {
582
18100
    const std::vector<std::pair<Node, ProofStep>>& steps = d_psb.getSteps();
583
207090
    for (const std::pair<Node, ProofStep>& step : steps)
584
    {
585
188990
      d_proof.addStep(step.first, step.second);
586
    }
587
18100
    d_psb.clear();
588
  }
589
18100
}
590
591
23755
void ProofCnfStream::ensureLiteral(TNode n)
592
{
593
23755
  Trace("cnf") << "ProofCnfStream::ensureLiteral(" << n << ")\n";
594
23755
  if (d_cnfStream.hasLiteral(n))
595
  {
596
22946
    d_cnfStream.ensureMappingForLiteral(n);
597
22946
    return;
598
  }
599
  // remove top level negation. We don't need to track this because it's a
600
  // literal.
601
809
  n = n.getKind() == kind::NOT ? n[0] : n;
602
809
  if (theory::Theory::theoryOf(n) == theory::THEORY_BOOL && !n.isVar())
603
  {
604
    // These are not removable
605
2
    d_cnfStream.d_removable = false;
606
2
    SatLiteral lit = toCNF(n, false);
607
    // Store backward-mappings
608
    // These may already exist
609
2
    d_cnfStream.d_literalToNodeMap.insert_safe(lit, n);
610
2
    d_cnfStream.d_literalToNodeMap.insert_safe(~lit, n.notNode());
611
  }
612
  else
613
  {
614
807
    d_cnfStream.convertAtom(n);
615
  }
616
}
617
618
885438
SatLiteral ProofCnfStream::toCNF(TNode node, bool negated)
619
{
620
1770876
  Trace("cnf") << "toCNF(" << node
621
885438
               << ", negated = " << (negated ? "true" : "false") << ")\n";
622
885438
  SatLiteral lit;
623
  // If the node has already has a literal, return it (maybe negated)
624
885438
  if (d_cnfStream.hasLiteral(node))
625
  {
626
626295
    Trace("cnf") << "toCNF(): already translated\n";
627
626295
    lit = d_cnfStream.getLiteral(node);
628
    // Return the (maybe negated) literal
629
626295
    return !negated ? lit : ~lit;
630
  }
631
632
  // Handle each Boolean operator case
633
259143
  switch (node.getKind())
634
  {
635
49201
    case kind::AND: lit = handleAnd(node); break;
636
29604
    case kind::OR: lit = handleOr(node); break;
637
10840
    case kind::XOR: lit = handleXor(node); break;
638
994
    case kind::IMPLIES: lit = handleImplies(node); break;
639
7109
    case kind::ITE: lit = handleIte(node); break;
640
24177
    case kind::NOT: lit = ~toCNF(node[0]); break;
641
70617
    case kind::EQUAL:
642
186550
      lit = node[0].getType().isBoolean() ? handleIff(node)
643
115933
                                          : d_cnfStream.convertAtom(node);
644
70617
      break;
645
66601
    default:
646
    {
647
66601
      lit = d_cnfStream.convertAtom(node);
648
    }
649
66601
    break;
650
  }
651
  // Return the (maybe negated) literal
652
259143
  return !negated ? lit : ~lit;
653
}
654
655
49201
SatLiteral ProofCnfStream::handleAnd(TNode node)
656
{
657
49201
  Assert(!d_cnfStream.hasLiteral(node)) << "Atom already mapped!";
658
49201
  Assert(node.getKind() == kind::AND) << "Expecting an AND expression!";
659
49201
  Assert(node.getNumChildren() > 1) << "Expecting more than 1 child!";
660
49201
  Assert(!d_cnfStream.d_removable)
661
      << "Removable clauses cannot contain Boolean structure";
662
49201
  Trace("cnf") << "ProofCnfStream::handleAnd(" << node << ")\n";
663
  // Number of children
664
49201
  unsigned size = node.getNumChildren();
665
  // Transform all the children first (remembering the negation)
666
98402
  SatClause clause(size + 1);
667
327550
  for (unsigned i = 0; i < size; ++i)
668
  {
669
278349
    Trace("cnf") << push;
670
278349
    clause[i] = ~toCNF(node[i]);
671
278349
    Trace("cnf") << pop;
672
  }
673
  // Create literal for the node
674
49201
  SatLiteral lit = d_cnfStream.newLiteral(node);
675
  bool added;
676
49201
  NodeManager* nm = NodeManager::currentNM();
677
  // lit -> (a_1 & a_2 & a_3 & ... & a_n)
678
  // ~lit | (a_1 & a_2 & a_3 & ... & a_n)
679
  // (~lit | a_1) & (~lit | a_2) & ... & (~lit | a_n)
680
327550
  for (unsigned i = 0; i < size; ++i)
681
  {
682
278349
    Trace("cnf") << push;
683
278349
    added = d_cnfStream.assertClause(node.negate(), ~lit, ~clause[i]);
684
278349
    Trace("cnf") << pop;
685
278349
    if (added)
686
    {
687
540798
      Node clauseNode = nm->mkNode(kind::OR, node.notNode(), node[i]);
688
540798
      Node iNode = nm->mkConst<Rational>(i);
689
270399
      d_proof.addStep(clauseNode, PfRule::CNF_AND_POS, {}, {node, iNode});
690
540798
      Trace("cnf") << "ProofCnfStream::handleAnd: CNF_AND_POS " << i
691
270399
                   << " added " << clauseNode << "\n";
692
270399
      normalizeAndRegister(clauseNode);
693
    }
694
  }
695
  // lit <- (a_1 & a_2 & a_3 & ... a_n)
696
  // lit | ~(a_1 & a_2 & a_3 & ... & a_n)
697
  // lit | ~a_1 | ~a_2 | ~a_3 | ... | ~a_n
698
49201
  clause[size] = lit;
699
  // This needs to go last, as the clause might get modified by the SAT solver
700
49201
  Trace("cnf") << push;
701
49201
  added = d_cnfStream.assertClause(node, clause);
702
49201
  Trace("cnf") << pop;
703
49201
  if (added)
704
  {
705
95820
    std::vector<Node> disjuncts{node};
706
321985
    for (unsigned i = 0; i < size; ++i)
707
    {
708
274075
      disjuncts.push_back(node[i].notNode());
709
    }
710
95820
    Node clauseNode = nm->mkNode(kind::OR, disjuncts);
711
47910
    d_proof.addStep(clauseNode, PfRule::CNF_AND_NEG, {}, {node});
712
95820
    Trace("cnf") << "ProofCnfStream::handleAnd: CNF_AND_NEG added "
713
47910
                 << clauseNode << "\n";
714
47910
    normalizeAndRegister(clauseNode);
715
  }
716
98402
  return lit;
717
}
718
719
29604
SatLiteral ProofCnfStream::handleOr(TNode node)
720
{
721
29604
  Assert(!d_cnfStream.hasLiteral(node)) << "Atom already mapped!";
722
29604
  Assert(node.getKind() == kind::OR) << "Expecting an OR expression!";
723
29604
  Assert(node.getNumChildren() > 1) << "Expecting more then 1 child!";
724
29604
  Assert(!d_cnfStream.d_removable)
725
      << "Removable clauses can not contain Boolean structure";
726
29604
  Trace("cnf") << "ProofCnfStream::handleOr(" << node << ")\n";
727
  // Number of children
728
29604
  unsigned size = node.getNumChildren();
729
  // Transform all the children first
730
59208
  SatClause clause(size + 1);
731
109373
  for (unsigned i = 0; i < size; ++i)
732
  {
733
79769
    clause[i] = toCNF(node[i]);
734
  }
735
  // Create literal for the node
736
29604
  SatLiteral lit = d_cnfStream.newLiteral(node);
737
  bool added;
738
29604
  NodeManager* nm = NodeManager::currentNM();
739
  // lit <- (a_1 | a_2 | a_3 | ... | a_n)
740
  // lit | ~(a_1 | a_2 | a_3 | ... | a_n)
741
  // (lit | ~a_1) & (lit | ~a_2) & (lit & ~a_3) & ... & (lit & ~a_n)
742
109373
  for (unsigned i = 0; i < size; ++i)
743
  {
744
79769
    added = d_cnfStream.assertClause(node, lit, ~clause[i]);
745
79769
    if (added)
746
    {
747
148756
      Node clauseNode = nm->mkNode(kind::OR, node, node[i].notNode());
748
148756
      Node iNode = nm->mkConst<Rational>(i);
749
74378
      d_proof.addStep(clauseNode, PfRule::CNF_OR_NEG, {}, {node, iNode});
750
148756
      Trace("cnf") << "ProofCnfStream::handleOr: CNF_OR_NEG " << i << " added "
751
74378
                   << clauseNode << "\n";
752
74378
      normalizeAndRegister(clauseNode);
753
    }
754
  }
755
  // lit -> (a_1 | a_2 | a_3 | ... | a_n)
756
  // ~lit | a_1 | a_2 | a_3 | ... | a_n
757
29604
  clause[size] = ~lit;
758
  // This needs to go last, as the clause might get modified by the SAT solver
759
29604
  added = d_cnfStream.assertClause(node.negate(), clause);
760
29604
  if (added)
761
  {
762
57464
    std::vector<Node> disjuncts{node.notNode()};
763
105638
    for (unsigned i = 0; i < size; ++i)
764
    {
765
76906
      disjuncts.push_back(node[i]);
766
    }
767
57464
    Node clauseNode = nm->mkNode(kind::OR, disjuncts);
768
28732
    d_proof.addStep(clauseNode, PfRule::CNF_OR_POS, {}, {node});
769
57464
    Trace("cnf") << "ProofCnfStream::handleOr: CNF_OR_POS added " << clauseNode
770
28732
                 << "\n";
771
28732
    normalizeAndRegister(clauseNode);
772
  }
773
59208
  return lit;
774
}
775
776
10840
SatLiteral ProofCnfStream::handleXor(TNode node)
777
{
778
10840
  Assert(!d_cnfStream.hasLiteral(node)) << "Atom already mapped!";
779
10840
  Assert(node.getKind() == kind::XOR) << "Expecting an XOR expression!";
780
10840
  Assert(node.getNumChildren() == 2) << "Expecting exactly 2 children!";
781
10840
  Assert(!d_cnfStream.d_removable)
782
      << "Removable clauses can not contain Boolean structure";
783
10840
  Trace("cnf") << "ProofCnfStream::handleXor(" << node << ")\n";
784
10840
  SatLiteral a = toCNF(node[0]);
785
10840
  SatLiteral b = toCNF(node[1]);
786
10840
  SatLiteral lit = d_cnfStream.newLiteral(node);
787
  bool added;
788
10840
  added = d_cnfStream.assertClause(node.negate(), a, b, ~lit);
789
10840
  if (added)
790
  {
791
    Node clauseNode = NodeManager::currentNM()->mkNode(
792
21536
        kind::OR, node.notNode(), node[0], node[1]);
793
10768
    d_proof.addStep(clauseNode, PfRule::CNF_XOR_POS1, {}, {node});
794
21536
    Trace("cnf") << "ProofCnfStream::handleXor: CNF_XOR_POS1 added "
795
10768
                 << clauseNode << "\n";
796
10768
    normalizeAndRegister(clauseNode);
797
  }
798
10840
  added = d_cnfStream.assertClause(node.negate(), ~a, ~b, ~lit);
799
10840
  if (added)
800
  {
801
    Node clauseNode = NodeManager::currentNM()->mkNode(
802
21464
        kind::OR, node.notNode(), node[0].notNode(), node[1].notNode());
803
10732
    d_proof.addStep(clauseNode, PfRule::CNF_XOR_POS2, {}, {node});
804
21464
    Trace("cnf") << "ProofCnfStream::handleXor: CNF_XOR_POS2 added "
805
10732
                 << clauseNode << "\n";
806
10732
    normalizeAndRegister(clauseNode);
807
  }
808
10840
  added = d_cnfStream.assertClause(node, a, ~b, lit);
809
10840
  if (added)
810
  {
811
    Node clauseNode = NodeManager::currentNM()->mkNode(
812
21454
        kind::OR, node, node[0], node[1].notNode());
813
10727
    d_proof.addStep(clauseNode, PfRule::CNF_XOR_NEG2, {}, {node});
814
21454
    Trace("cnf") << "ProofCnfStream::handleXor: CNF_XOR_NEG2 added "
815
10727
                 << clauseNode << "\n";
816
10727
    normalizeAndRegister(clauseNode);
817
  }
818
10840
  added = d_cnfStream.assertClause(node, ~a, b, lit);
819
10840
  if (added)
820
  {
821
    Node clauseNode = NodeManager::currentNM()->mkNode(
822
21542
        kind::OR, node, node[0].notNode(), node[1]);
823
10771
    d_proof.addStep(clauseNode, PfRule::CNF_XOR_NEG1, {}, {node});
824
21542
    Trace("cnf") << "ProofCnfStream::handleXor: CNF_XOR_NEG1 added "
825
10771
                 << clauseNode << "\n";
826
10771
    normalizeAndRegister(clauseNode);
827
  }
828
10840
  return lit;
829
}
830
831
25301
SatLiteral ProofCnfStream::handleIff(TNode node)
832
{
833
25301
  Assert(!d_cnfStream.hasLiteral(node)) << "Atom already mapped!";
834
25301
  Assert(node.getKind() == kind::EQUAL) << "Expecting an EQUAL expression!";
835
25301
  Assert(node.getNumChildren() == 2) << "Expecting exactly 2 children!";
836
25301
  Trace("cnf") << "handleIff(" << node << ")\n";
837
  // Convert the children to CNF
838
25301
  SatLiteral a = toCNF(node[0]);
839
25301
  SatLiteral b = toCNF(node[1]);
840
  // Create literal for the node
841
25301
  SatLiteral lit = d_cnfStream.newLiteral(node);
842
  bool added;
843
25301
  NodeManager* nm = NodeManager::currentNM();
844
  // lit -> ((a-> b) & (b->a))
845
  // ~lit | ((~a | b) & (~b | a))
846
  // (~a | b | ~lit) & (~b | a | ~lit)
847
25301
  added = d_cnfStream.assertClause(node.negate(), ~a, b, ~lit);
848
25301
  if (added)
849
  {
850
    Node clauseNode =
851
50126
        nm->mkNode(kind::OR, node.notNode(), node[0].notNode(), node[1]);
852
25063
    d_proof.addStep(clauseNode, PfRule::CNF_EQUIV_POS1, {}, {node});
853
50126
    Trace("cnf") << "ProofCnfStream::handleIff: CNF_EQUIV_POS1 added "
854
25063
                 << clauseNode << "\n";
855
25063
    normalizeAndRegister(clauseNode);
856
  }
857
25301
  added = d_cnfStream.assertClause(node.negate(), a, ~b, ~lit);
858
25301
  if (added)
859
  {
860
    Node clauseNode =
861
48152
        nm->mkNode(kind::OR, node.notNode(), node[0], node[1].notNode());
862
24076
    d_proof.addStep(clauseNode, PfRule::CNF_EQUIV_POS2, {}, {node});
863
48152
    Trace("cnf") << "ProofCnfStream::handleIff: CNF_EQUIV_POS2 added "
864
24076
                 << clauseNode << "\n";
865
24076
    normalizeAndRegister(clauseNode);
866
  }
867
  // (a<->b) -> lit
868
  // ~((a & b) | (~a & ~b)) | lit
869
  // (~(a & b)) & (~(~a & ~b)) | lit
870
  // ((~a | ~b) & (a | b)) | lit
871
  // (~a | ~b | lit) & (a | b | lit)
872
25301
  added = d_cnfStream.assertClause(node, ~a, ~b, lit);
873
25301
  if (added)
874
  {
875
    Node clauseNode =
876
50054
        nm->mkNode(kind::OR, node, node[0].notNode(), node[1].notNode());
877
25027
    d_proof.addStep(clauseNode, PfRule::CNF_EQUIV_NEG2, {}, {node});
878
50054
    Trace("cnf") << "ProofCnfStream::handleIff: CNF_EQUIV_NEG2 added "
879
25027
                 << clauseNode << "\n";
880
25027
    normalizeAndRegister(clauseNode);
881
  }
882
25301
  added = d_cnfStream.assertClause(node, a, b, lit);
883
25301
  if (added)
884
  {
885
48228
    Node clauseNode = nm->mkNode(kind::OR, node, node[0], node[1]);
886
24114
    d_proof.addStep(clauseNode, PfRule::CNF_EQUIV_NEG1, {}, {node});
887
48228
    Trace("cnf") << "ProofCnfStream::handleIff: CNF_EQUIV_NEG1 added "
888
24114
                 << clauseNode << "\n";
889
24114
    normalizeAndRegister(clauseNode);
890
  }
891
25301
  return lit;
892
}
893
894
994
SatLiteral ProofCnfStream::handleImplies(TNode node)
895
{
896
994
  Assert(!d_cnfStream.hasLiteral(node)) << "Atom already mapped!";
897
994
  Assert(node.getKind() == kind::IMPLIES) << "Expecting an IMPLIES expression!";
898
994
  Assert(node.getNumChildren() == 2) << "Expecting exactly 2 children!";
899
994
  Assert(!d_cnfStream.d_removable)
900
      << "Removable clauses can not contain Boolean structure";
901
994
  Trace("cnf") << "ProofCnfStream::handleImplies(" << node << ")\n";
902
  // Convert the children to cnf
903
994
  SatLiteral a = toCNF(node[0]);
904
994
  SatLiteral b = toCNF(node[1]);
905
994
  SatLiteral lit = d_cnfStream.newLiteral(node);
906
  bool added;
907
994
  NodeManager* nm = NodeManager::currentNM();
908
  // lit -> (a->b)
909
  // ~lit | ~ a | b
910
994
  added = d_cnfStream.assertClause(node.negate(), ~lit, ~a, b);
911
994
  if (added)
912
  {
913
    Node clauseNode =
914
1968
        nm->mkNode(kind::OR, node.notNode(), node[0].notNode(), node[1]);
915
984
    d_proof.addStep(clauseNode, PfRule::CNF_IMPLIES_POS, {}, {node});
916
1968
    Trace("cnf") << "ProofCnfStream::handleImplies: CNF_IMPLIES_POS added "
917
984
                 << clauseNode << "\n";
918
984
    normalizeAndRegister(clauseNode);
919
  }
920
  // (a->b) -> lit
921
  // ~(~a | b) | lit
922
  // (a | l) & (~b | l)
923
994
  added = d_cnfStream.assertClause(node, a, lit);
924
994
  if (added)
925
  {
926
1976
    Node clauseNode = nm->mkNode(kind::OR, node, node[0]);
927
988
    d_proof.addStep(clauseNode, PfRule::CNF_IMPLIES_NEG1, {}, {node});
928
1976
    Trace("cnf") << "ProofCnfStream::handleImplies: CNF_IMPLIES_NEG1 added "
929
988
                 << clauseNode << "\n";
930
988
    normalizeAndRegister(clauseNode);
931
  }
932
994
  added = d_cnfStream.assertClause(node, ~b, lit);
933
994
  if (added)
934
  {
935
1984
    Node clauseNode = nm->mkNode(kind::OR, node, node[1].notNode());
936
992
    d_proof.addStep(clauseNode, PfRule::CNF_IMPLIES_NEG2, {}, {node});
937
1984
    Trace("cnf") << "ProofCnfStream::handleImplies: CNF_IMPLIES_NEG2 added "
938
992
                 << clauseNode << "\n";
939
992
    normalizeAndRegister(clauseNode);
940
  }
941
994
  return lit;
942
}
943
944
7109
SatLiteral ProofCnfStream::handleIte(TNode node)
945
{
946
7109
  Assert(!d_cnfStream.hasLiteral(node)) << "Atom already mapped!";
947
7109
  Assert(node.getKind() == kind::ITE);
948
7109
  Assert(node.getNumChildren() == 3);
949
7109
  Assert(!d_cnfStream.d_removable)
950
      << "Removable clauses can not contain Boolean structure";
951
14218
  Trace("cnf") << "handleIte(" << node[0] << " " << node[1] << " " << node[2]
952
7109
               << ")\n";
953
7109
  SatLiteral condLit = toCNF(node[0]);
954
7109
  SatLiteral thenLit = toCNF(node[1]);
955
7109
  SatLiteral elseLit = toCNF(node[2]);
956
  // create literal to the node
957
7109
  SatLiteral lit = d_cnfStream.newLiteral(node);
958
  bool added;
959
7109
  NodeManager* nm = NodeManager::currentNM();
960
  // If ITE is true then one of the branches is true and the condition
961
  // implies which one
962
  // lit -> (ite b t e)
963
  // lit -> (t | e) & (b -> t) & (!b -> e)
964
  // lit -> (t | e) & (!b | t) & (b | e)
965
  // (!lit | t | e) & (!lit | !b | t) & (!lit | b | e)
966
7109
  added = d_cnfStream.assertClause(node.negate(), ~lit, thenLit, elseLit);
967
7109
  if (added)
968
  {
969
14124
    Node clauseNode = nm->mkNode(kind::OR, node.notNode(), node[1], node[2]);
970
7062
    d_proof.addStep(clauseNode, PfRule::CNF_ITE_POS3, {}, {node});
971
14124
    Trace("cnf") << "ProofCnfStream::handleIte: CNF_ITE_POS3 added "
972
7062
                 << clauseNode << "\n";
973
7062
    normalizeAndRegister(clauseNode);
974
  }
975
7109
  added = d_cnfStream.assertClause(node.negate(), ~lit, ~condLit, thenLit);
976
7109
  if (added)
977
  {
978
    Node clauseNode =
979
13976
        nm->mkNode(kind::OR, node.notNode(), node[0].notNode(), node[1]);
980
6988
    d_proof.addStep(clauseNode, PfRule::CNF_ITE_POS1, {}, {node});
981
13976
    Trace("cnf") << "ProofCnfStream::handleIte: CNF_ITE_POS1 added "
982
6988
                 << clauseNode << "\n";
983
6988
    normalizeAndRegister(clauseNode);
984
  }
985
7109
  added = d_cnfStream.assertClause(node.negate(), ~lit, condLit, elseLit);
986
7109
  if (added)
987
  {
988
13520
    Node clauseNode = nm->mkNode(kind::OR, node.notNode(), node[0], node[2]);
989
6760
    d_proof.addStep(clauseNode, PfRule::CNF_ITE_POS2, {}, {node});
990
13520
    Trace("cnf") << "ProofCnfStream::handleIte: CNF_ITE_POS2 added "
991
6760
                 << clauseNode << "\n";
992
6760
    normalizeAndRegister(clauseNode);
993
  }
994
  // If ITE is false then one of the branches is false and the condition
995
  // implies which one
996
  // !lit -> !(ite b t e)
997
  // !lit -> (!t | !e) & (b -> !t) & (!b -> !e)
998
  // !lit -> (!t | !e) & (!b | !t) & (b | !e)
999
  // (lit | !t | !e) & (lit | !b | !t) & (lit | b | !e)
1000
7109
  added = d_cnfStream.assertClause(node, lit, ~thenLit, ~elseLit);
1001
7109
  if (added)
1002
  {
1003
    Node clauseNode =
1004
14140
        nm->mkNode(kind::OR, node, node[1].notNode(), node[2].notNode());
1005
7070
    d_proof.addStep(clauseNode, PfRule::CNF_ITE_NEG3, {}, {node});
1006
14140
    Trace("cnf") << "ProofCnfStream::handleIte: CNF_ITE_NEG3 added "
1007
7070
                 << clauseNode << "\n";
1008
7070
    normalizeAndRegister(clauseNode);
1009
  }
1010
7109
  added = d_cnfStream.assertClause(node, lit, ~condLit, ~thenLit);
1011
7109
  if (added)
1012
  {
1013
    Node clauseNode =
1014
14000
        nm->mkNode(kind::OR, node, node[0].notNode(), node[1].notNode());
1015
7000
    d_proof.addStep(clauseNode, PfRule::CNF_ITE_NEG1, {}, {node});
1016
14000
    Trace("cnf") << "ProofCnfStream::handleIte: CNF_ITE_NEG1 added "
1017
7000
                 << clauseNode << "\n";
1018
7000
    normalizeAndRegister(clauseNode);
1019
  }
1020
7109
  added = d_cnfStream.assertClause(node, lit, condLit, ~elseLit);
1021
7109
  if (added)
1022
  {
1023
13510
    Node clauseNode = nm->mkNode(kind::OR, node, node[0], node[2].notNode());
1024
6755
    d_proof.addStep(clauseNode, PfRule::CNF_ITE_NEG2, {}, {node});
1025
13510
    Trace("cnf") << "ProofCnfStream::handleIte: CNF_ITE_NEG2 added "
1026
6755
                 << clauseNode << "\n";
1027
6755
    normalizeAndRegister(clauseNode);
1028
  }
1029
7109
  return lit;
1030
}
1031
1032
}  // namespace prop
1033
29280
}  // namespace cvc5