GCC Code Coverage Report
Directory: . Exec Total Coverage
File: src/theory/arith/normal_form.cpp Lines: 644 795 81.0 %
Date: 2021-09-15 Branches: 1099 2972 37.0 %

Line Exec Source
1
/******************************************************************************
2
 * Top contributors (to current version):
3
 *   Tim King, Gereon Kremer, Andrew Reynolds
4
 *
5
 * This file is part of the cvc5 project.
6
 *
7
 * Copyright (c) 2009-2021 by the authors listed in the file AUTHORS
8
 * in the top-level source directory and their institutional affiliations.
9
 * All rights reserved.  See the file COPYING in the top-level source
10
 * directory for licensing information.
11
 * ****************************************************************************
12
 *
13
 * [[ Add one-line brief description here ]]
14
 *
15
 * [[ Add lengthier description here ]]
16
 * \todo document this file
17
 */
18
#include "theory/arith/normal_form.h"
19
20
#include <list>
21
22
#include "base/output.h"
23
#include "theory/arith/arith_utilities.h"
24
#include "theory/theory.h"
25
26
using namespace std;
27
28
namespace cvc5 {
29
namespace theory {
30
namespace arith {
31
32
156011100
Constant Constant::mkConstant(const Rational& rat) {
33
156011100
  return Constant(mkRationalNode(rat));
34
}
35
36
size_t Variable::getComplexity() const{
37
  return 1u;
38
}
39
40
size_t VarList::getComplexity() const{
41
  if(empty()){
42
    return 1;
43
  }else if(singleton()){
44
    return 1;
45
  }else{
46
    return size() + 1;
47
  }
48
}
49
50
size_t Monomial::getComplexity() const{
51
  return getConstant().getComplexity() + getVarList().getComplexity();
52
}
53
54
size_t Polynomial::getComplexity() const{
55
  size_t cmp = 0;
56
  iterator i = begin(), e = end();
57
  for(; i != e; ++i){
58
    Monomial m = *i;
59
    cmp += m.getComplexity();
60
  }
61
  return cmp;
62
}
63
64
size_t Constant::getComplexity() const{
65
  return getValue().complexity();
66
}
67
68
222807644
bool Variable::isLeafMember(Node n){
69
668422932
  return (!isRelationOperator(n.getKind())) &&
70
668422932
    (Theory::isLeafOf(n, theory::THEORY_ARITH));
71
}
72
73
195093184
VarList::VarList(Node n) : NodeWrapper(n) { Assert(isSorted(begin(), end())); }
74
75
360670
bool Variable::isIAndMember(Node n)
76
{
77
1082010
  return n.getKind() == kind::IAND && Polynomial::isMember(n[0])
78
1442680
         && Polynomial::isMember(n[1]);
79
}
80
81
50139
bool Variable::isPow2Member(Node n)
82
{
83
50139
  return n.getKind() == kind::POW2 && Polynomial::isMember(n[0]);
84
}
85
86
264187
bool Variable::isDivMember(Node n){
87
264187
  switch(n.getKind()){
88
175792
  case kind::DIVISION:
89
  case kind::INTS_DIVISION:
90
  case kind::INTS_MODULUS:
91
  case kind::DIVISION_TOTAL:
92
  case kind::INTS_DIVISION_TOTAL:
93
  case kind::INTS_MODULUS_TOTAL:
94
175792
    return Polynomial::isMember(n[0]) && Polynomial::isMember(n[1]);
95
88395
  default:
96
88395
    return false;
97
  }
98
}
99
100
3163755
bool Variable::isTranscendentalMember(Node n) {
101
3163755
  switch(n.getKind()){
102
1478892
  case kind::EXPONENTIAL:
103
  case kind::SINE:
104
  case kind::COSINE:
105
  case kind::TANGENT:
106
  case kind::COSECANT:
107
  case kind::SECANT:
108
  case kind::COTANGENT:
109
  case kind::ARCSINE:
110
  case kind::ARCCOSINE:
111
  case kind::ARCTANGENT:
112
  case kind::ARCCOSECANT:
113
  case kind::ARCSECANT:
114
  case kind::ARCCOTANGENT:
115
1478892
  case kind::SQRT: return Polynomial::isMember(n[0]);
116
1684863
  case kind::PI:
117
1684863
    return true;
118
  default:
119
    return false;
120
  }
121
}
122
123
124
199421422
bool VarList::isSorted(iterator start, iterator end) {
125
199421422
  return std::is_sorted(start, end);
126
}
127
128
147661677
bool VarList::isMember(Node n) {
129
147661677
  if(Variable::isMember(n)) {
130
108086109
    return true;
131
  }
132
39575568
  if(n.getKind() == kind::NONLINEAR_MULT) {
133
5723546
    Node::iterator curr = n.begin(), end = n.end();
134
11447092
    Node prev = *curr;
135
5723546
    if(!Variable::isMember(prev)) return false;
136
137
    Variable::VariableNodeCmp cmp;
138
139
18577994
    while( (++curr) != end) {
140
6427224
      if(!Variable::isMember(*curr)) return false;
141
      // prev <= curr : accept
142
      // !(prev <= curr) : reject
143
      // !(!(prev > curr)) : reject
144
      // curr < prev : reject
145
6427224
      if((cmp(*curr, prev))) return false;
146
6427224
      prev = *curr;
147
    }
148
5723546
    return true;
149
  } else {
150
33852022
    return false;
151
  }
152
}
153
154
135212518
int VarList::cmp(const VarList& vl) const {
155
135212518
  int dif = this->size() - vl.size();
156
135212518
  if (dif == 0) {
157
99724541
    if(this->getNode() == vl.getNode()) {
158
14981851
      return 0;
159
    }
160
161
84742690
    Assert(!empty());
162
84742690
    Assert(!vl.empty());
163
84742690
    if(this->size() == 1){
164
79350062
      return Variable::VariableNodeCmp::cmp(this->getNode(), vl.getNode());
165
    }
166
167
168
10785256
    internal_iterator ii=this->internalBegin(), ie=this->internalEnd();
169
10785256
    internal_iterator ci=vl.internalBegin(), ce=vl.internalEnd();
170
19588010
    for(; ii != ie; ++ii, ++ci){
171
14856216
      Node vi = *ii;
172
14856216
      Node vc = *ci;
173
10124422
      int tmp = Variable::VariableNodeCmp::cmp(vi, vc);
174
10124422
      if(tmp != 0){
175
5392628
        return tmp;
176
      }
177
    }
178
    Unreachable();
179
35487977
  } else if(dif < 0) {
180
19926153
    return -1;
181
  } else {
182
15561824
    return 1;
183
  }
184
}
185
186
195093184
VarList VarList::parseVarList(Node n) {
187
195093184
  return VarList(n);
188
  // if(Variable::isMember(n)) {
189
  //   return VarList(Variable(n));
190
  // } else {
191
  //   Assert(n.getKind() == kind::MULT);
192
  //   for(Node::iterator i=n.begin(), end = n.end(); i!=end; ++i) {
193
  //     Assert(Variable::isMember(*i));
194
  //   }
195
  //   return VarList(n);
196
  // }
197
}
198
199
1410765
VarList VarList::operator*(const VarList& other) const {
200
1410765
  if(this->empty()) {
201
1334274
    return other;
202
76491
  } else if(other.empty()) {
203
18152
    return *this;
204
  } else {
205
116678
    vector<Node> result;
206
207
    internal_iterator
208
116678
      thisBegin = this->internalBegin(),
209
116678
      thisEnd = this->internalEnd(),
210
116678
      otherBegin = other.internalBegin(),
211
116678
      otherEnd = other.internalEnd();
212
213
    Variable::VariableNodeCmp cmp;
214
58339
    std::merge(thisBegin, thisEnd, otherBegin, otherEnd, std::back_inserter(result), cmp);
215
216
58339
    Assert(result.size() >= 2);
217
116678
    Node mult = NodeManager::currentNM()->mkNode(kind::NONLINEAR_MULT, result);
218
58339
    return VarList::parseVarList(mult);
219
  }
220
}
221
222
167915057
bool Monomial::isMember(TNode n){
223
167915057
  if(n.getKind() == kind::CONST_RATIONAL) {
224
24094387
    return true;
225
143820670
  } else if(multStructured(n)) {
226
27067161
    return VarList::isMember(n[1]);
227
  } else {
228
116753509
    return VarList::isMember(n);
229
  }
230
}
231
232
80369196
Monomial Monomial::mkMonomial(const Constant& c, const VarList& vl) {
233
80369196
  if(c.isZero() || vl.empty() ) {
234
4839162
    return Monomial(c);
235
75530034
  } else if(c.isOne()) {
236
1868669
    return Monomial(vl);
237
  } else {
238
73661365
    return Monomial(c, vl);
239
  }
240
}
241
242
77470
Monomial Monomial::mkMonomial(const VarList& vl) {
243
  // acts like Monomial::mkMonomial( 1, vl)
244
77470
  if( vl.empty() ) {
245
    return Monomial::mkOne();
246
  } else if(true){
247
77470
    return Monomial(vl);
248
  }
249
}
250
251
234835636
Monomial Monomial::parseMonomial(Node n) {
252
234835636
  if(n.getKind() == kind::CONST_RATIONAL) {
253
39800835
    return Monomial(Constant(n));
254
195034801
  } else if(multStructured(n)) {
255
68821495
    return Monomial::mkMonomial(Constant(n[0]),VarList::parseVarList(n[1]));
256
  } else {
257
126213306
    return Monomial(VarList::parseVarList(n));
258
  }
259
}
260
8560093
Monomial Monomial::operator*(const Rational& q) const {
261
8560093
  if(q.isZero()){
262
    return mkZero();
263
  }else{
264
17120186
    Constant newConstant = this->getConstant() * q;
265
8560093
    return Monomial::mkMonomial(newConstant, getVarList());
266
  }
267
}
268
269
Monomial Monomial::operator*(const Constant& c) const {
270
  return (*this) * c.getValue();
271
  // if(c.isZero()){
272
  //   return mkZero();
273
  // }else{
274
  //   Constant newConstant = this->getConstant() * c;
275
  //   return Monomial::mkMonomial(newConstant, getVarList());
276
  // }
277
}
278
279
1410765
Monomial Monomial::operator*(const Monomial& mono) const {
280
2821530
  Constant newConstant = this->getConstant() * mono.getConstant();
281
2821530
  VarList newVL = this->getVarList() * mono.getVarList();
282
283
2821530
  return Monomial::mkMonomial(newConstant, newVL);
284
}
285
286
// vector<Monomial> Monomial::sumLikeTerms(const std::vector<Monomial> & monos)
287
// {
288
//   Assert(isSorted(monos));
289
//   vector<Monomial> outMonomials;
290
//   typedef vector<Monomial>::const_iterator iterator;
291
//   for(iterator rangeIter = monos.begin(), end=monos.end(); rangeIter != end;)
292
//   {
293
//     Rational constant = (*rangeIter).getConstant().getValue();
294
//     VarList varList  = (*rangeIter).getVarList();
295
//     ++rangeIter;
296
//     while(rangeIter != end && varList == (*rangeIter).getVarList()) {
297
//       constant += (*rangeIter).getConstant().getValue();
298
//       ++rangeIter;
299
//     }
300
//     if(constant != 0) {
301
//       Constant asConstant = Constant::mkConstant(constant);
302
//       Monomial nonZero = Monomial::mkMonomial(asConstant, varList);
303
//       outMonomials.push_back(nonZero);
304
//     }
305
//   }
306
307
//   Assert(isStrictlySorted(outMonomials));
308
//   return outMonomials;
309
// }
310
311
2815777
void Monomial::sort(std::vector<Monomial>& m){
312
2815777
  if(!isSorted(m)){
313
103660
    std::sort(m.begin(), m.end());
314
  }
315
2815777
}
316
317
9991980
void Monomial::combineAdjacentMonomials(std::vector<Monomial>& monos) {
318
9991980
  Assert(isSorted(monos));
319
  size_t writePos, readPos, N;
320
32292359
  for(writePos = 0, readPos = 0, N = monos.size(); readPos < N;){
321
22300379
    Monomial& atRead = monos[readPos];
322
22300379
    const VarList& varList  = atRead.getVarList();
323
324
22300379
    size_t rangeEnd = readPos+1;
325
32221073
    for(; rangeEnd < N; rangeEnd++){
326
17279170
      if(!(varList == monos[rangeEnd].getVarList())){ break; }
327
    }
328
    // monos[i] for i in [readPos, rangeEnd) has the same var list
329
22300379
    if(readPos+1 == rangeEnd){ // no addition needed
330
17495292
      if(!atRead.getConstant().isZero()){
331
30184414
        Monomial cpy = atRead; // being paranoid here
332
15092207
        monos[writePos] = cpy;
333
15092207
        writePos++;
334
      }
335
    }else{
336
9610174
      Rational constant(monos[readPos].getConstant().getValue());
337
9765434
      for(size_t i=readPos+1; i < rangeEnd; ++i){
338
4960347
        constant += monos[i].getConstant().getValue();
339
      }
340
4805087
      if(!constant.isZero()){
341
3151170
        Constant asConstant = Constant::mkConstant(constant);
342
3151170
        Monomial nonZero = Monomial::mkMonomial(asConstant, varList);
343
1575585
        monos[writePos] = nonZero;
344
1575585
        writePos++;
345
      }
346
    }
347
22300379
    Assert(rangeEnd > readPos);
348
22300379
    readPos = rangeEnd;
349
  }
350
9991980
  if(writePos > 0 ){
351
16545466
    Monomial cp = monos[0];
352
8272733
    Assert(writePos <= N);
353
8272733
    monos.resize(writePos, cp);
354
  }else{
355
1719247
    monos.clear();
356
  }
357
9991980
  Assert(isStrictlySorted(monos));
358
9991980
}
359
360
void Monomial::print() const {
361
  Debug("normal-form") <<  getNode() << std::endl;
362
}
363
364
void Monomial::printList(const std::vector<Monomial>& list) {
365
  for(vector<Monomial>::const_iterator i = list.begin(), end = list.end(); i != end; ++i) {
366
    const Monomial& m =*i;
367
    m.print();
368
  }
369
}
370
8430408
Polynomial Polynomial::operator+(const Polynomial& vl) const {
371
372
16860816
  std::vector<Monomial> sortedMonos;
373
8430408
  std::merge(begin(), end(), vl.begin(), vl.end(), std::back_inserter(sortedMonos));
374
375
8430408
  Monomial::combineAdjacentMonomials(sortedMonos);
376
  //std::vector<Monomial> combined = Monomial::sumLikeTerms(sortedMonos);
377
378
8430408
  Polynomial result = mkPolynomial(sortedMonos);
379
16860816
  return result;
380
}
381
382
Polynomial Polynomial::exactDivide(const Integer& z) const {
383
  Assert(isIntegral());
384
  if(z.isOne()){
385
    return (*this);
386
  }else {
387
    Constant invz = Constant::mkConstant(Rational(1,z));
388
    Polynomial prod = (*this) * Monomial::mkMonomial(invz);
389
    Assert(prod.isIntegral());
390
    return prod;
391
  }
392
}
393
394
1567339
Polynomial Polynomial::sumPolynomials(const std::vector<Polynomial>& ps){
395
1567339
  if(ps.empty()){
396
    return mkZero();
397
1567339
  }else if(ps.size() <= 4){
398
    // if there are few enough polynomials just add them
399
3113830
    Polynomial p = ps[0];
400
1705925
    for(size_t i = 1; i < ps.size(); ++i){
401
149010
      p = p + ps[i];
402
    }
403
1556915
    return p;
404
  }else{
405
    // general case
406
20848
    std::map<Node, Rational> coeffs;
407
86838
    for(size_t i = 0, N = ps.size(); i<N; ++i){
408
76414
      const Polynomial& p = ps[i];
409
272184
      for(iterator pi = p.begin(), pend = p.end(); pi != pend; ++pi) {
410
391540
        Monomial m = *pi;
411
195770
        coeffs[m.getVarList().getNode()] += m.getConstant().getValue();
412
      }
413
    }
414
20848
    std::vector<Monomial> monos;
415
10424
    std::map<Node, Rational>::const_iterator ci = coeffs.begin(), cend = coeffs.end();
416
176574
    for(; ci != cend; ++ci){
417
83075
      if(!(*ci).second.isZero()){
418
        Constant c = Constant::mkConstant((*ci).second);
419
        Node n = (*ci).first;
420
        VarList vl = VarList::parseVarList(n);
421
        monos.push_back(Monomial::mkMonomial(c, vl));
422
      }
423
    }
424
10424
    Monomial::sort(monos);
425
10424
    Monomial::combineAdjacentMonomials(monos);
426
427
20848
    Polynomial result = mkPolynomial(monos);
428
10424
    return result;
429
  }
430
}
431
432
2695234
Polynomial Polynomial::operator-(const Polynomial& vl) const {
433
5390468
  Constant negOne = Constant::mkConstant(Rational(-1));
434
435
5390468
  return *this + (vl*negOne);
436
}
437
438
8158527
Polynomial Polynomial::operator*(const Rational& q) const{
439
8158527
  if(q.isZero()){
440
    return Polynomial::mkZero();
441
8158527
  }else if(q.isOne()){
442
2902988
    return *this;
443
  }else{
444
10511078
    std::vector<Monomial> newMonos;
445
12936968
    for(iterator i = this->begin(), end = this->end(); i != end; ++i) {
446
7681429
      newMonos.push_back((*i)*q);
447
    }
448
449
5255539
    Assert(Monomial::isStrictlySorted(newMonos));
450
5255539
    return Polynomial::mkPolynomial(newMonos);
451
  }
452
}
453
454
4058709
Polynomial Polynomial::operator*(const Constant& c) const{
455
4058709
  return (*this) * c.getValue();
456
  // if(c.isZero()){
457
  //   return Polynomial::mkZero();
458
  // }else if(c.isOne()){
459
  //   return *this;
460
  // }else{
461
  //   std::vector<Monomial> newMonos;
462
  //   for(iterator i = this->begin(), end = this->end(); i != end; ++i) {
463
  //     newMonos.push_back((*i)*c);
464
  //   }
465
466
  //   Assert(Monomial::isStrictlySorted(newMonos));
467
  //   return Polynomial::mkPolynomial(newMonos);
468
  // }
469
}
470
471
1254436
Polynomial Polynomial::operator*(const Monomial& mono) const {
472
1254436
  if(mono.isZero()) {
473
231
    return Polynomial(mono); //Don't multiply by zero
474
  } else {
475
2508410
    std::vector<Monomial> newMonos;
476
2664970
    for(iterator i = this->begin(), end = this->end(); i != end; ++i) {
477
1410765
      newMonos.push_back(mono * (*i));
478
    }
479
480
    // We may need to sort newMonos.
481
    // Suppose this = (+ x y), mono = x, (* x y).getId() < (* x x).getId()
482
    // newMonos = <(* x x), (* x y)> after this loop.
483
    // This is not sorted according to the current VarList order.
484
1254205
    Monomial::sort(newMonos);
485
1254205
    return Polynomial::mkPolynomial(newMonos);
486
  }
487
}
488
489
1247056
Polynomial Polynomial::operator*(const Polynomial& poly) const {
490
1247056
  Polynomial res = Polynomial::mkZero();
491
2501492
  for(iterator i = this->begin(), end = this->end(); i != end; ++i) {
492
2508872
    Monomial curr = *i;
493
2508872
    Polynomial prod = poly * curr;
494
2508872
    Polynomial sum  = res + prod;
495
1254436
    res = sum;
496
  }
497
1247056
  return res;
498
}
499
500
4431852
Monomial Polynomial::selectAbsMinimum() const {
501
8863704
  iterator iter = begin(), myend = end();
502
4431852
  Assert(iter != myend);
503
504
4431852
  Monomial min = *iter;
505
4431852
  ++iter;
506
8205470
  for(; iter != end(); ++iter){
507
3773618
    Monomial curr = *iter;
508
1886809
    if(curr.absCmp(min) < 0){
509
86389
      min = curr;
510
    }
511
  }
512
8863704
  return min;
513
}
514
515
2006725
bool Polynomial::leadingCoefficientIsAbsOne() const {
516
2006725
  return getHead().absCoefficientIsOne();
517
}
518
6307290
bool Polynomial::leadingCoefficientIsPositive() const {
519
6307290
  return getHead().getConstant().isPositive();
520
}
521
522
3527756
bool Polynomial::denominatorLCMIsOne() const {
523
3527756
  return denominatorLCM().isOne();
524
}
525
526
3527756
bool Polynomial::numeratorGCDIsOne() const {
527
3527756
  return gcd().isOne();
528
}
529
530
3773735
Integer Polynomial::gcd() const {
531
3773735
  Assert(isIntegral());
532
3773735
  return numeratorGCD();
533
}
534
535
8587765
Integer Polynomial::numeratorGCD() const {
536
  //We'll use the standardization that gcd(0, 0) = 0
537
  //So that the gcd of the zero polynomial is gcd{0} = 0
538
17175530
  iterator i=begin(), e=end();
539
8587765
  Assert(i != e);
540
541
8587765
  Integer d = (*i).getConstant().getValue().getNumerator().abs();
542
8587765
  if(d.isOne()){
543
8236310
    return d;
544
  }
545
351455
  ++i;
546
528503
  for(; i!=e; ++i){
547
422092
    Integer c = (*i).getConstant().getValue().getNumerator();
548
333568
    d = d.gcd(c);
549
333568
    if(d.isOne()){
550
245044
      return d;
551
    }
552
  }
553
106411
  return d;
554
}
555
556
8341786
Integer Polynomial::denominatorLCM() const {
557
8341786
  Integer tmp(1);
558
20933133
  for (iterator i = begin(), e = end(); i != e; ++i) {
559
25182694
    const Integer denominator = (*i).getConstant().getValue().getDenominator();
560
12591347
    tmp = tmp.lcm(denominator);
561
  }
562
8341786
  return tmp;
563
}
564
565
4314625
Constant Polynomial::getCoefficient(const VarList& vl) const{
566
  //TODO improve to binary search...
567
11203420
  for(iterator iter=begin(), myend=end(); iter != myend; ++iter){
568
13835228
    Monomial m = *iter;
569
13835228
    VarList curr = m.getVarList();
570
6946433
    if(curr == vl){
571
57638
      return m.getConstant();
572
    }
573
  }
574
4256987
  return Constant::mkConstant(0);
575
}
576
577
336
Node Polynomial::computeQR(const Polynomial& p, const Integer& div){
578
336
  Assert(p.isIntegral());
579
672
  std::vector<Monomial> q_vec, r_vec;
580
672
  Integer tmp_q, tmp_r;
581
1144
  for(iterator iter = p.begin(), pend = p.end(); iter != pend; ++iter){
582
1616
    Monomial curr = *iter;
583
1616
    VarList vl = curr.getVarList();
584
1616
    Constant c = curr.getConstant();
585
586
1616
    const Integer& a = c.getValue().getNumerator();
587
808
    Integer::floorQR(tmp_q, tmp_r, a, div);
588
1616
    Constant q=Constant::mkConstant(tmp_q);
589
1616
    Constant r=Constant::mkConstant(tmp_r);
590
808
    if(!q.isZero()){
591
808
      q_vec.push_back(Monomial::mkMonomial(q, vl));
592
    }
593
808
    if(!r.isZero()){
594
450
      r_vec.push_back(Monomial::mkMonomial(r, vl));
595
    }
596
  }
597
598
672
  Polynomial p_q = Polynomial::mkPolynomial(q_vec);
599
672
  Polynomial p_r = Polynomial::mkPolynomial(r_vec);
600
601
672
  return NodeManager::currentNM()->mkNode(kind::PLUS, p_q.getNode(), p_r.getNode());
602
}
603
604
605
794142
Monomial Polynomial::minimumVariableMonomial() const{
606
794142
  Assert(!isConstant());
607
794142
  if(singleton()){
608
468922
    return getHead();
609
  }else{
610
650440
    iterator i = begin();
611
650440
    Monomial first = *i;
612
325220
    if( first.isConstant() ){
613
218336
      ++i;
614
218336
      Assert(i != end());
615
218336
      return *i;
616
    }else{
617
106884
      return first;
618
    }
619
  }
620
}
621
622
1192390
bool Polynomial::variableMonomialAreStrictlyGreater(const Monomial& m) const{
623
1192390
  if(isConstant()){
624
475718
    return true;
625
  }else{
626
1433344
    Monomial minimum = minimumVariableMonomial();
627
716672
    Debug("nf::tmp") << "minimum " << minimum.getNode() << endl;
628
716672
    Debug("nf::tmp") << "m " << m.getNode() << endl;
629
716672
    return m < minimum;
630
  }
631
}
632
633
63854357
bool Polynomial::isMember(TNode n) {
634
63854357
  if(Monomial::isMember(n)){
635
46083671
    return true;
636
17770686
  }else if(n.getKind() == kind::PLUS){
637
17770686
    Assert(n.getNumChildren() >= 2);
638
17770686
    Node::iterator currIter = n.begin(), end = n.end();
639
35541372
    Node prev = *currIter;
640
17770686
    if(!Monomial::isMember(prev)){
641
      return false;
642
    }
643
644
35541372
    Monomial mprev = Monomial::parseMonomial(prev);
645
17770686
    ++currIter;
646
71062104
    for(; currIter != end; ++currIter){
647
53291418
      Node curr = *currIter;
648
26645709
      if(!Monomial::isMember(curr)){
649
        return false;
650
      }
651
53291418
      Monomial mcurr = Monomial::parseMonomial(curr);
652
26645709
      if(!(mprev < mcurr)){
653
        return false;
654
      }
655
26645709
      mprev = mcurr;
656
    }
657
17770686
    return true;
658
  } else {
659
    return false;
660
  }
661
}
662
663
336
Node SumPair::computeQR(const SumPair& sp, const Integer& div){
664
336
  Assert(sp.isIntegral());
665
666
672
  const Integer& constant = sp.getConstant().getValue().getNumerator();
667
668
672
  Integer constant_q, constant_r;
669
336
  Integer::floorQR(constant_q, constant_r, constant, div);
670
671
672
  Node p_qr = Polynomial::computeQR(sp.getPolynomial(), div);
672
336
  Assert(p_qr.getKind() == kind::PLUS);
673
336
  Assert(p_qr.getNumChildren() == 2);
674
675
672
  Polynomial p_q = Polynomial::parsePolynomial(p_qr[0]);
676
672
  Polynomial p_r = Polynomial::parsePolynomial(p_qr[1]);
677
678
672
  SumPair sp_q(p_q, Constant::mkConstant(constant_q));
679
672
  SumPair sp_r(p_r, Constant::mkConstant(constant_r));
680
681
672
  return NodeManager::currentNM()->mkNode(kind::PLUS, sp_q.getNode(), sp_r.getNode());
682
}
683
684
1546556
SumPair SumPair::mkSumPair(const Polynomial& p){
685
1546556
  if(p.isConstant()){
686
    Constant leadingConstant = p.getHead().getConstant();
687
    return SumPair(Polynomial::mkZero(), leadingConstant);
688
1546556
  }else if(p.containsConstant()){
689
967170
    Assert(!p.singleton());
690
967170
    return SumPair(p.getTail(), p.getHead().getConstant());
691
  }else{
692
579386
    return SumPair(p, Constant::mkZero());
693
  }
694
}
695
696
4711937
Comparison::Comparison(TNode n) : NodeWrapper(n) { Assert(isNormalForm()); }
697
698
38639
SumPair Comparison::toSumPair() const {
699
38639
  Kind cmpKind = comparisonKind();
700
38639
  switch(cmpKind){
701
  case kind::LT:
702
  case kind::LEQ:
703
  case kind::GT:
704
  case kind::GEQ:
705
    {
706
      TNode lit = getNode();
707
      TNode atom = (cmpKind == kind::LT || cmpKind == kind::LEQ) ? lit[0] : lit;
708
      Polynomial p = Polynomial::parsePolynomial(atom[0]);
709
      Constant c = Constant::mkConstant(atom[1]);
710
      if(p.leadingCoefficientIsPositive()){
711
        return SumPair(p, -c);
712
      }else{
713
        return SumPair(-p, c);
714
      }
715
    }
716
38639
  case kind::EQUAL:
717
  case kind::DISTINCT:
718
    {
719
77278
      Polynomial left = getLeft();
720
77278
      Polynomial right = getRight();
721
38639
      Debug("nf::tmp") << "left: " << left.getNode() << endl;
722
38639
      Debug("nf::tmp") << "right: " << right.getNode() << endl;
723
38639
      if(right.isConstant()){
724
15147
        return SumPair(left, -right.getHead().getConstant());
725
23492
      }else if(right.containsConstant()){
726
10863
        Assert(!right.singleton());
727
728
21726
        Polynomial noConstant = right.getTail();
729
10863
        return SumPair(left - noConstant, -right.getHead().getConstant());
730
      }else{
731
12629
        return SumPair(left - right, Constant::mkZero());
732
      }
733
    }
734
    default: Unhandled() << cmpKind;
735
  }
736
}
737
738
1087241
Polynomial Comparison::normalizedVariablePart() const {
739
1087241
  Kind cmpKind = comparisonKind();
740
1087241
  switch(cmpKind){
741
575357
  case kind::LT:
742
  case kind::LEQ:
743
  case kind::GT:
744
  case kind::GEQ:
745
    {
746
1150714
      TNode lit = getNode();
747
1150714
      TNode atom = (cmpKind == kind::LT || cmpKind == kind::LEQ) ? lit[0] : lit;
748
1150714
      Polynomial p = Polynomial::parsePolynomial(atom[0]);
749
575357
      if(p.leadingCoefficientIsPositive()){
750
474720
        return p;
751
      }else{
752
100637
        return -p;
753
      }
754
    }
755
511884
  case kind::EQUAL:
756
  case kind::DISTINCT:
757
    {
758
1023768
      Polynomial left = getLeft();
759
1023768
      Polynomial right = getRight();
760
511884
      if(right.isConstant()){
761
233828
        return left;
762
      }else{
763
556112
        Polynomial noConstant = right.containsConstant() ? right.getTail() : right;
764
556112
        Polynomial diff = left - noConstant;
765
278056
        if(diff.leadingCoefficientIsPositive()){
766
274308
          return diff;
767
        }else{
768
3748
          return -diff;
769
        }
770
      }
771
    }
772
    default: Unhandled() << cmpKind;
773
  }
774
}
775
776
1085774
DeltaRational Comparison::normalizedDeltaRational() const {
777
1085774
  Kind cmpKind = comparisonKind();
778
1085774
  int delta = deltaCoeff(cmpKind);
779
1085774
  switch(cmpKind){
780
574118
  case kind::LT:
781
  case kind::LEQ:
782
  case kind::GT:
783
  case kind::GEQ:
784
    {
785
1148236
      Node lit = getNode();
786
1148236
      Node atom = (cmpKind == kind::LT || cmpKind == kind::LEQ) ? lit[0] : lit;
787
1148236
      Polynomial left = Polynomial::parsePolynomial(atom[0]);
788
574118
      const Rational& q = atom[1].getConst<Rational>();
789
574118
      if(left.leadingCoefficientIsPositive()){
790
473678
        return DeltaRational(q, delta);
791
      }else{
792
100440
        return DeltaRational(-q, -delta);
793
      }
794
    }
795
511656
  case kind::EQUAL:
796
  case kind::DISTINCT:
797
    {
798
1023312
      Polynomial right = getRight();
799
1023312
      Monomial firstRight = right.getHead();
800
511656
      if(firstRight.isConstant()){
801
570672
        DeltaRational c = DeltaRational(firstRight.getConstant().getValue(), 0);
802
570672
        Polynomial left = getLeft();
803
285336
        if(!left.allIntegralVariables()){
804
23928
          return c;
805
          //this is a qpolynomial and the sign of the leading
806
          //coefficient will not change after the diff below
807
        } else{
808
          // the polynomial may be a z polynomial in which case
809
          // taking the diff is the simplest and obviously correct means
810
522816
          Polynomial diff = right.singleton() ? left : left - right.getTail();
811
261408
          if(diff.leadingCoefficientIsPositive()){
812
260356
            return c;
813
          }else{
814
1052
            return -c;
815
          }
816
        }
817
      }else{ // The constant is 0 sign cannot change
818
226320
        return DeltaRational(0, 0);
819
      }
820
    }
821
    default: Unhandled() << cmpKind;
822
  }
823
}
824
825
303927
std::tuple<Polynomial, Kind, Constant> Comparison::decompose(
826
    bool split_constant) const
827
{
828
303927
  Kind rel = getNode().getKind();
829
303927
  if (rel == Kind::NOT)
830
  {
831
141473
    switch (getNode()[0].getKind())
832
    {
833
      case kind::LEQ: rel = Kind::GT; break;
834
      case kind::LT: rel = Kind::GEQ; break;
835
47929
      case kind::EQUAL: rel = Kind::DISTINCT; break;
836
      case kind::DISTINCT: rel = Kind::EQUAL; break;
837
93544
      case kind::GEQ: rel = Kind::LT; break;
838
      case kind::GT: rel = Kind::LEQ; break;
839
      default:
840
        Assert(false) << "Unsupported relation: " << getNode()[0].getKind();
841
    }
842
  }
843
844
607854
  Polynomial poly = getLeft() - getRight();
845
846
303927
  if (!split_constant)
847
  {
848
    return std::tuple<Polynomial, Kind, Constant>{
849
92
        poly, rel, Constant::mkZero()};
850
  }
851
852
607670
  Constant right = Constant::mkZero();
853
303835
  if (poly.containsConstant())
854
  {
855
128173
    right = -poly.getHead().getConstant();
856
128173
    poly = poly + Polynomial::mkPolynomial(right);
857
  }
858
859
607670
  Constant lcoeff = poly.getHead().getConstant();
860
303835
  if (!lcoeff.isOne())
861
  {
862
104760
    Constant invlcoeff = lcoeff.inverse();
863
52380
    if (lcoeff.isNegative())
864
    {
865
41558
      switch (rel)
866
      {
867
        case kind::LEQ: rel = Kind::GEQ; break;
868
18609
        case kind::LT: rel = Kind::GT; break;
869
743
        case kind::EQUAL: break;
870
2814
        case kind::DISTINCT: break;
871
19392
        case kind::GEQ: rel = Kind::LEQ; break;
872
        case kind::GT: rel = Kind::LT; break;
873
        default: Assert(false) << "Unsupported relation: " << rel;
874
      }
875
    }
876
52380
    poly = poly * invlcoeff;
877
52380
    right = right * invlcoeff;
878
  }
879
880
303835
  return std::tuple<Polynomial, Kind, Constant>{poly, rel, right};
881
}
882
883
2479633
Comparison Comparison::parseNormalForm(TNode n) {
884
2479633
  Debug("polynomial") << "Comparison::parseNormalForm(" << n << ")";
885
2479633
  Comparison result(n);
886
2479633
  Assert(result.isNormalForm());
887
2479633
  return result;
888
}
889
890
781757
Node Comparison::toNode(Kind k, const Polynomial& l, const Constant& r) {
891
781757
  Assert(isRelationOperator(k));
892
781757
  switch(k) {
893
781757
  case kind::GEQ:
894
  case kind::GT:
895
1563514
    return NodeManager::currentNM()->mkNode(k, l.getNode(), r.getNode());
896
  default: Unhandled() << k;
897
  }
898
}
899
900
1450017
Node Comparison::toNode(Kind k, const Polynomial& l, const Polynomial& r) {
901
1450017
  Assert(isRelationOperator(k));
902
1450017
  switch(k) {
903
1450017
  case kind::GEQ:
904
  case kind::EQUAL:
905
  case kind::GT:
906
1450017
    return NodeManager::currentNM()->mkNode(k, l.getNode(), r.getNode());
907
  case kind::LEQ:
908
    return toNode(kind::GEQ, r, l).notNode();
909
  case kind::LT:
910
    return toNode(kind::GT, r, l).notNode();
911
  case kind::DISTINCT:
912
    return toNode(kind::EQUAL, r, l).notNode();
913
  default:
914
    Unreachable();
915
  }
916
}
917
918
9574866
bool Comparison::rightIsConstant() const {
919
9574866
  if(getNode().getKind() == kind::NOT){
920
1494096
    return getNode()[0][1].getKind() == kind::CONST_RATIONAL;
921
  }else{
922
8080770
    return getNode()[1].getKind() == kind::CONST_RATIONAL;
923
  }
924
}
925
926
size_t Comparison::getComplexity() const{
927
  switch(comparisonKind()){
928
  case kind::CONST_BOOLEAN: return 1;
929
  case kind::LT:
930
  case kind::LEQ:
931
  case kind::DISTINCT:
932
  case kind::EQUAL:
933
  case kind::GT:
934
  case kind::GEQ:
935
    return getLeft().getComplexity() +  getRight().getComplexity();
936
  default: Unhandled() << comparisonKind(); return -1;
937
  }
938
}
939
940
19573426
Polynomial Comparison::getLeft() const {
941
39146852
  TNode left;
942
19573426
  Kind k = comparisonKind();
943
19573426
  switch(k){
944
4031207
  case kind::LT:
945
  case kind::LEQ:
946
  case kind::DISTINCT:
947
4031207
    left = getNode()[0][0];
948
4031207
    break;
949
15542219
  case kind::EQUAL:
950
  case kind::GT:
951
  case kind::GEQ:
952
15542219
    left = getNode()[0];
953
15542219
    break;
954
  default: Unhandled() << k;
955
  }
956
39146852
  return Polynomial::parsePolynomial(left);
957
}
958
959
13381766
Polynomial Comparison::getRight() const {
960
26763532
  TNode right;
961
13381766
  Kind k = comparisonKind();
962
13381766
  switch(k){
963
2406224
  case kind::LT:
964
  case kind::LEQ:
965
  case kind::DISTINCT:
966
2406224
    right = getNode()[0][1];
967
2406224
    break;
968
10975542
  case kind::EQUAL:
969
  case kind::GT:
970
  case kind::GEQ:
971
10975542
    right = getNode()[1];
972
10975542
    break;
973
  default: Unhandled() << k;
974
  }
975
26763532
  return Polynomial::parsePolynomial(right);
976
}
977
978
// Polynomial Comparison::getLeft() const {
979
//   Node n = getNode();
980
//   Node left = (n.getKind() == kind::NOT ? n[0]: n)[0];
981
//   return Polynomial::parsePolynomial(left);
982
// }
983
984
// Polynomial Comparison::getRight() const {
985
//   Node n = getNode();
986
//   Node right = (n.getKind() == kind::NOT ? n[0]: n)[1];
987
//   return Polynomial::parsePolynomial(right);
988
// }
989
990
12164727
bool Comparison::isNormalForm() const {
991
24329454
  Node n = getNode();
992
12164727
  Kind cmpKind = comparisonKind(n);
993
12164727
  Debug("nf::tmp") << "isNormalForm " << n << " " << cmpKind << endl;
994
12164727
  switch(cmpKind){
995
344551
  case kind::CONST_BOOLEAN:
996
344551
    return true;
997
  case kind::GT:
998
    return isNormalGT();
999
4040385
  case kind::GEQ:
1000
4040385
    return isNormalGEQ();
1001
5294496
  case kind::EQUAL:
1002
5294496
    return isNormalEquality();
1003
1494096
  case kind::LT:
1004
1494096
    return isNormalLT();
1005
  case kind::LEQ:
1006
    return isNormalLEQ();
1007
991199
  case kind::DISTINCT:
1008
991199
    return isNormalDistinct();
1009
  default:
1010
    return false;
1011
  }
1012
}
1013
1014
/** This must be (> qpolynomial constant) */
1015
bool Comparison::isNormalGT() const {
1016
  Node n = getNode();
1017
  Assert(n.getKind() == kind::GT);
1018
  if(!rightIsConstant()){
1019
    return false;
1020
  }else{
1021
    Polynomial left = getLeft();
1022
    if(left.containsConstant()){
1023
      return false;
1024
    }else if(!left.leadingCoefficientIsAbsOne()){
1025
      return false;
1026
    }else{
1027
      return !left.isIntegral();
1028
    }
1029
  }
1030
}
1031
1032
/** This must be (not (> qpolynomial constant)) */
1033
bool Comparison::isNormalLEQ() const {
1034
  Node n = getNode();
1035
  Debug("nf::tmp") << "isNormalLEQ " << n << endl;
1036
  Assert(n.getKind() == kind::NOT);
1037
  Assert(n[0].getKind() == kind::GT);
1038
  if(!rightIsConstant()){
1039
    return false;
1040
  }else{
1041
    Polynomial left = getLeft();
1042
    if(left.containsConstant()){
1043
      return false;
1044
    }else if(!left.leadingCoefficientIsAbsOne()){
1045
      return false;
1046
    }else{
1047
      return !left.isIntegral();
1048
    }
1049
  }
1050
}
1051
1052
1053
/** This must be (>= qpolynomial constant) or  (>= zpolynomial constant) */
1054
4040385
bool Comparison::isNormalGEQ() const {
1055
8080770
  Node n = getNode();
1056
4040385
  Assert(n.getKind() == kind::GEQ);
1057
1058
4040385
  Debug("nf::tmp") << "isNormalGEQ " << n << " " << rightIsConstant() << endl;
1059
1060
4040385
  if(!rightIsConstant()){
1061
    return false;
1062
  }else{
1063
8080770
    Polynomial left = getLeft();
1064
4040385
    if(left.containsConstant()){
1065
      return false;
1066
    }else{
1067
4040385
      if(left.isIntegral()){
1068
2472120
        return left.signNormalizedReducedSum();
1069
      }else{
1070
1568265
        return left.leadingCoefficientIsAbsOne();
1071
      }
1072
    }
1073
  }
1074
}
1075
1076
/** This must be (not (>= qpolynomial constant)) or (not (>= zpolynomial constant)) */
1077
1494096
bool Comparison::isNormalLT() const {
1078
2988192
  Node n = getNode();
1079
1494096
  Assert(n.getKind() == kind::NOT);
1080
1494096
  Assert(n[0].getKind() == kind::GEQ);
1081
1082
1494096
  if(!rightIsConstant()){
1083
    return false;
1084
  }else{
1085
2988192
    Polynomial left = getLeft();
1086
1494096
    if(left.containsConstant()){
1087
      return false;
1088
    }else{
1089
1494096
      if(left.isIntegral()){
1090
1055636
        return left.signNormalizedReducedSum();
1091
      }else{
1092
438460
        return left.leadingCoefficientIsAbsOne();
1093
      }
1094
    }
1095
  }
1096
}
1097
1098
1099
6285695
bool Comparison::isNormalEqualityOrDisequality() const {
1100
12571390
  Polynomial pleft = getLeft();
1101
1102
6285695
  if(pleft.numMonomials() == 1){
1103
12571390
    Monomial mleft = pleft.getHead();
1104
6285695
    if(mleft.isConstant()){
1105
      return false;
1106
    }else{
1107
12571390
      Polynomial pright = getRight();
1108
6285695
      if(allIntegralVariables()){
1109
5689500
        const Rational& lcoeff = mleft.getConstant().getValue();
1110
5689500
        if(pright.isConstant()){
1111
2139690
          return pright.isIntegral() && lcoeff.isOne();
1112
        }
1113
7099620
        Polynomial varRight = pright.containsConstant() ? pright.getTail() : pright;
1114
3549810
        if(lcoeff.sgn() <= 0){
1115
          return false;
1116
        }else{
1117
7099620
          Integer lcm = lcoeff.getDenominator().lcm(varRight.denominatorLCM());
1118
7099620
          Integer g = lcoeff.getNumerator().gcd(varRight.numeratorGCD());
1119
3549810
          Debug("nf::tmp") << lcm << " " << g << endl;
1120
3549810
          if(!lcm.isOne()){
1121
            return false;
1122
3549810
          }else if(!g.isOne()){
1123
            return false;
1124
          }else{
1125
7099620
            Monomial absMinRight = varRight.selectAbsMinimum();
1126
3549810
            Debug("nf::tmp") << mleft.getNode() << " " << absMinRight.getNode() << endl;
1127
3549810
            if( mleft.absCmp(absMinRight) < 0){
1128
94199
              return true;
1129
            }else{
1130
3455611
              return (!(absMinRight.absCmp(mleft)< 0)) && mleft < absMinRight;
1131
            }
1132
          }
1133
        }
1134
      }else{
1135
596195
        if(mleft.coefficientIsOne()){
1136
1192390
          Debug("nf::tmp")
1137
596195
            << "dfklj " << mleft.getNode() << endl
1138
596195
            << pright.getNode() << endl
1139
1192390
            << pright.variableMonomialAreStrictlyGreater(mleft)
1140
596195
            << endl;
1141
596195
          return pright.variableMonomialAreStrictlyGreater(mleft);
1142
        }else{
1143
          return false;
1144
        }
1145
      }
1146
    }
1147
  }else{
1148
    return false;
1149
  }
1150
}
1151
1152
/** This must be (= qvarlist qpolynomial) or (= zmonomial zpolynomial)*/
1153
5294496
bool Comparison::isNormalEquality() const {
1154
5294496
  Assert(getNode().getKind() == kind::EQUAL);
1155
15883488
  return Theory::theoryOf(getNode()[0].getType()) == THEORY_ARITH &&
1156
15883488
         isNormalEqualityOrDisequality();
1157
}
1158
1159
/**
1160
 * This must be (not (= qvarlist qpolynomial)) or
1161
 * (not (= zmonomial zpolynomial)).
1162
 */
1163
991199
bool Comparison::isNormalDistinct() const {
1164
991199
  Assert(getNode().getKind() == kind::NOT);
1165
991199
  Assert(getNode()[0].getKind() == kind::EQUAL);
1166
1167
2973597
  return Theory::theoryOf(getNode()[0][0].getType()) == THEORY_ARITH &&
1168
2973597
         isNormalEqualityOrDisequality();
1169
}
1170
1171
77470
Node Comparison::mkRatEquality(const Polynomial& p){
1172
77470
  Assert(!p.isConstant());
1173
77470
  Assert(!p.allIntegralVariables());
1174
1175
154940
  Monomial minimalVList = p.minimumVariableMonomial();
1176
154940
  Constant coeffInv = -(minimalVList.getConstant().inverse());
1177
1178
154940
  Polynomial newRight = (p - minimalVList) * coeffInv;
1179
154940
  Polynomial newLeft(Monomial::mkMonomial(minimalVList.getVarList()));
1180
1181
154940
  return toNode(kind::EQUAL, newLeft, newRight);
1182
}
1183
1184
282336
Node Comparison::mkRatInequality(Kind k, const Polynomial& p){
1185
282336
  Assert(k == kind::GEQ || k == kind::GT);
1186
282336
  Assert(!p.isConstant());
1187
282336
  Assert(!p.allIntegralVariables());
1188
1189
564672
  SumPair sp = SumPair::mkSumPair(p);
1190
564672
  Polynomial left = sp.getPolynomial();
1191
564672
  Constant right = - sp.getConstant();
1192
1193
564672
  Monomial minimalVList = left.getHead();
1194
282336
  Assert(!minimalVList.isConstant());
1195
1196
564672
  Constant coeffInv = minimalVList.getConstant().inverse().abs();
1197
564672
  Polynomial newLeft = left * coeffInv;
1198
564672
  Constant newRight = right * (coeffInv);
1199
1200
564672
  return toNode(k, newLeft, newRight);
1201
}
1202
1203
499421
Node Comparison::mkIntInequality(Kind k, const Polynomial& p){
1204
499421
  Assert(kind::GT == k || kind::GEQ == k);
1205
499421
  Assert(!p.isConstant());
1206
499421
  Assert(p.allIntegralVariables());
1207
1208
998842
  SumPair sp = SumPair::mkSumPair(p);
1209
998842
  Polynomial left = sp.getPolynomial();
1210
998842
  Rational right = - (sp.getConstant().getValue());
1211
1212
1213
998842
  Monomial m = left.getHead();
1214
499421
  Assert(!m.isConstant());
1215
1216
998842
  Integer lcm = left.denominatorLCM();
1217
998842
  Integer g = left.numeratorGCD();
1218
998842
  Rational mult(lcm,g);
1219
1220
998842
  Polynomial newLeft = left * mult;
1221
998842
  Rational rightMult = right * mult;
1222
1223
499421
  bool negateResult = false;
1224
499421
  if(!newLeft.leadingCoefficientIsPositive()){
1225
    // multiply by -1
1226
    // a: left >= right or b: left > right
1227
    // becomes
1228
    // a: -left <= -right or b: -left < -right
1229
    // a: not (-left > -right) or b: (not -left >= -right)
1230
101358
    newLeft = -newLeft;
1231
101358
    rightMult = -rightMult;
1232
101358
    k = (kind::GT == k) ? kind::GEQ : kind::GT;
1233
101358
    negateResult = true;
1234
    // the later stages handle:
1235
    // a: not (-left >= -right + 1) or b: (not -left >= -right)
1236
  }
1237
1238
998842
  Node result = Node::null();
1239
499421
  if(rightMult.isIntegral()){
1240
494520
    if(k == kind::GT){
1241
      // (> p z)
1242
      // (>= p (+ z 1))
1243
198014
      Constant rightMultPlusOne = Constant::mkConstant(rightMult + 1);
1244
99007
      result = toNode(kind::GEQ, newLeft, rightMultPlusOne);
1245
    }else{
1246
791026
      Constant newRight = Constant::mkConstant(rightMult);
1247
395513
      result = toNode(kind::GEQ, newLeft, newRight);
1248
    }
1249
  }else{
1250
    //(>= l (/ n d))
1251
    //(>= l (ceil (/ n d)))
1252
    //This also hold for GT as (ceil (/ n d)) > (/ n d)
1253
9802
    Integer ceilr = rightMult.ceiling();
1254
9802
    Constant ceilRight = Constant::mkConstant(ceilr);
1255
4901
    result = toNode(kind::GEQ, newLeft, ceilRight);
1256
  }
1257
499421
  Assert(!result.isNull());
1258
499421
  if(negateResult){
1259
101358
    return result.notNode();
1260
  }else{
1261
398063
    return result;
1262
  }
1263
}
1264
1265
764799
Node Comparison::mkIntEquality(const Polynomial& p){
1266
764799
  Assert(!p.isConstant());
1267
764799
  Assert(p.allIntegralVariables());
1268
1269
1529598
  SumPair sp = SumPair::mkSumPair(p);
1270
1529598
  Polynomial varPart = sp.getPolynomial();
1271
1529598
  Constant constPart = sp.getConstant();
1272
1273
1529598
  Integer lcm = varPart.denominatorLCM();
1274
1529598
  Integer g = varPart.numeratorGCD();
1275
1529598
  Constant mult = Constant::mkConstant(Rational(lcm,g));
1276
1277
1529598
  Constant constMult = constPart * mult;
1278
1279
764799
  if(constMult.isIntegral()){
1280
1528538
    Polynomial varPartMult = varPart * mult;
1281
1282
1528538
    Monomial m = varPartMult.selectAbsMinimum();
1283
764269
    bool mIsPositive =  m.getConstant().isPositive();
1284
1285
1528538
    Polynomial noM = (varPartMult + (- m)) + Polynomial::mkPolynomial(constMult);
1286
1287
    // m + noM = 0
1288
1528538
    Polynomial newRight = mIsPositive ? -noM : noM;
1289
1528538
    Polynomial newLeft  = mIsPositive ? m  : -m;
1290
1291
764269
    Assert(newRight.isIntegral());
1292
764269
    return toNode(kind::EQUAL, newLeft, newRight);
1293
  }else{
1294
530
    return mkBoolNode(false);
1295
  }
1296
}
1297
1298
2575265
Comparison Comparison::mkComparison(Kind k, const Polynomial& l, const Polynomial& r){
1299
1300
  //Make this special case fast for sharing!
1301
2575265
  if((k == kind::EQUAL || k == kind::DISTINCT) && l.isVarList() && r.isVarList()){
1302
1218164
    VarList vLeft = l.asVarList();
1303
1218164
    VarList vRight = r.asVarList();
1304
1305
609082
    if(vLeft == vRight){
1306
      // return true for equalities and false for disequalities
1307
804
      return Comparison(k == kind::EQUAL);
1308
    }else{
1309
1216556
      Node eqNode = vLeft < vRight ? toNode( kind::EQUAL, l, r) : toNode( kind::EQUAL, r, l);
1310
1216556
      Node forK = (k == kind::DISTINCT) ? eqNode.notNode() : eqNode;
1311
608278
      return Comparison(forK);
1312
    }
1313
  }
1314
1315
  //General case
1316
3932366
  Polynomial diff = l - r;
1317
1966183
  if(diff.isConstant()){
1318
342157
    bool res = evaluateConstantPredicate(k, diff.asConstant(), Rational(0));
1319
342157
    return Comparison(res);
1320
  }else{
1321
3248052
    Node result = Node::null();
1322
1624026
    bool isInteger = diff.allIntegralVariables();
1323
1624026
    switch(k){
1324
842269
    case kind::EQUAL:
1325
842269
      result = isInteger ? mkIntEquality(diff) : mkRatEquality(diff);
1326
842269
      break;
1327
    case kind::DISTINCT:
1328
      {
1329
        Node eq = isInteger ? mkIntEquality(diff) : mkRatEquality(diff);
1330
        result = eq.notNode();
1331
      }
1332
      break;
1333
122525
    case kind::LEQ:
1334
    case kind::LT:
1335
      {
1336
245050
        Polynomial neg = - diff;
1337
122525
        Kind negKind = (k == kind::LEQ ? kind::GEQ : kind::GT);
1338
122525
        result = isInteger ?
1339
122525
          mkIntInequality(negKind, neg) : mkRatInequality(negKind, neg);
1340
      }
1341
122525
      break;
1342
659232
    case kind::GEQ:
1343
    case kind::GT:
1344
659232
      result = isInteger ?
1345
        mkIntInequality(k, diff) : mkRatInequality(k, diff);
1346
659232
      break;
1347
    default: Unhandled() << k;
1348
    }
1349
1624026
    Assert(!result.isNull());
1350
1624026
    if(result.getKind() == kind::NOT && result[0].getKind() == kind::CONST_BOOLEAN){
1351
      return Comparison(!(result[0].getConst<bool>()));
1352
    }else{
1353
3248052
      Comparison cmp(result);
1354
1624026
      Assert(cmp.isNormalForm());
1355
1624026
      return cmp;
1356
    }
1357
  }
1358
}
1359
1360
38639
bool Comparison::isBoolean() const {
1361
38639
  return getNode().getKind() == kind::CONST_BOOLEAN;
1362
}
1363
1364
1365
38639
bool Comparison::debugIsIntegral() const{
1366
38639
  return getLeft().isIntegral() && getRight().isIntegral();
1367
}
1368
1369
54612801
Kind Comparison::comparisonKind(TNode literal){
1370
54612801
  switch(literal.getKind()){
1371
41629078
  case kind::CONST_BOOLEAN:
1372
  case kind::GT:
1373
  case kind::GEQ:
1374
  case kind::EQUAL:
1375
41629078
    return literal.getKind();
1376
12983723
  case  kind::NOT:
1377
    {
1378
25967446
      TNode negatedAtom = literal[0];
1379
12983723
      switch(negatedAtom.getKind()){
1380
      case kind::GT: //(not (GT x c)) <=> (LEQ x c)
1381
        return kind::LEQ;
1382
5841656
      case kind::GEQ: //(not (GEQ x c)) <=> (LT x c)
1383
5841656
        return kind::LT;
1384
7142067
      case kind::EQUAL:
1385
7142067
        return kind::DISTINCT;
1386
      default:
1387
        return  kind::UNDEFINED_KIND;
1388
      }
1389
    }
1390
  default:
1391
    return kind::UNDEFINED_KIND;
1392
  }
1393
}
1394
1395
1396
Node Polynomial::makeAbsCondition(Variable v, Polynomial p){
1397
  Polynomial zerop = Polynomial::mkZero();
1398
1399
  Polynomial varp = Polynomial::mkPolynomial(v);
1400
  Comparison pLeq0 = Comparison::mkComparison(kind::LEQ, p, zerop);
1401
  Comparison negP = Comparison::mkComparison(kind::EQUAL, varp, -p);
1402
  Comparison posP = Comparison::mkComparison(kind::EQUAL, varp, p);
1403
1404
  Node absCnd = (pLeq0.getNode()).iteNode(negP.getNode(), posP.getNode());
1405
  return absCnd;
1406
}
1407
1408
38639
bool Polynomial::isNonlinear() const {
1409
1410
112208
  for(iterator i=begin(), iend =end(); i != iend; ++i){
1411
149616
    Monomial m = *i;
1412
76047
    if(m.isNonlinear()){
1413
2478
      return true;
1414
    }
1415
  }
1416
36161
  return false;
1417
}
1418
1419
} //namespace arith
1420
} //namespace theory
1421
29577
}  // namespace cvc5