OR-Tools  9.6
simplification.h
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13 
14 // Implementation of a pure SAT presolver. This roughly follows the paper:
15 //
16 // "Effective Preprocessing in SAT through Variable and Clause Elimination",
17 // Niklas Een and Armin Biere, published in the SAT 2005 proceedings.
18 
19 #ifndef OR_TOOLS_SAT_SIMPLIFICATION_H_
20 #define OR_TOOLS_SAT_SIMPLIFICATION_H_
21 
22 #include <cstdint>
23 #include <deque>
24 #include <memory>
25 #include <utility>
26 #include <vector>
27 
28 #include "absl/container/btree_set.h"
29 #include "absl/types/span.h"
32 #include "ortools/base/macros.h"
35 #include "ortools/sat/sat_base.h"
36 #include "ortools/sat/sat_parameters.pb.h"
37 #include "ortools/sat/sat_solver.h"
38 #include "ortools/util/logging.h"
41 
42 namespace operations_research {
43 namespace sat {
44 
45 // A simple sat postsolver.
46 //
47 // The idea is that any presolve algorithm can just update this class, and at
48 // the end, this class will recover a solution of the initial problem from a
49 // solution of the presolved problem.
51  public:
52  explicit SatPostsolver(int num_variables);
53 
54  // The postsolver will process the Add() calls in reverse order. If the given
55  // clause has all its literals at false, it simply sets the literal x to true.
56  // Note that x must be a literal of the given clause.
57  void Add(Literal x, const absl::Span<const Literal> clause);
58 
59  // Tells the postsolver that the given literal must be true in any solution.
60  // We currently check that the variable is not already fixed.
61  //
62  // TODO(user): this as almost the same effect as adding an unit clause, and we
63  // should probably remove this to simplify the code.
64  void FixVariable(Literal x);
65 
66  // This assumes that the given variable mapping has been applied to the
67  // problem. All the subsequent Add() and FixVariable() will refer to the new
68  // problem. During postsolve, the initial solution must also correspond to
69  // this new problem. Note that if mapping[v] == -1, then the literal v is
70  // assumed to be deleted.
71  //
72  // This can be called more than once. But each call must refer to the current
73  // variables set (after all the previous mapping have been applied).
74  void ApplyMapping(
76 
77  // Extracts the current assignment of the given solver and postsolve it.
78  //
79  // Node(fdid): This can currently be called only once (but this is easy to
80  // change since only some CHECK will fail).
81  std::vector<bool> ExtractAndPostsolveSolution(const SatSolver& solver);
82  std::vector<bool> PostsolveSolution(const std::vector<bool>& solution);
83 
84  // Getters to the clauses managed by this class.
85  // Important: This will always put the associated literal first.
86  int NumClauses() const { return clauses_start_.size(); }
87  std::vector<Literal> Clause(int i) const {
88  // TODO(user): we could avoid the copy here, but because clauses_literals_
89  // is a deque, we do need a special return class and cannot juste use
90  // absl::Span<Literal> for instance.
91  const int begin = clauses_start_[i];
92  const int end = i + 1 < clauses_start_.size() ? clauses_start_[i + 1]
93  : clauses_literals_.size();
94  std::vector<Literal> result(clauses_literals_.begin() + begin,
95  clauses_literals_.begin() + end);
96  for (int j = 0; j < result.size(); ++j) {
97  if (result[j] == associated_literal_[i]) {
98  std::swap(result[0], result[j]);
99  break;
100  }
101  }
102  return result;
103  }
104 
105  private:
106  Literal ApplyReverseMapping(Literal l);
107  void Postsolve(VariablesAssignment* assignment) const;
108 
109  // The presolve can add new variables, so we need to store the number of
110  // original variables in order to return a solution with the correct number
111  // of variables.
112  const int initial_num_variables_;
113  int num_variables_;
114 
115  // Stores the arguments of the Add() calls: clauses_start_[i] is the index of
116  // the first literal of the clause #i in the clauses_literals_ deque.
117  std::vector<int> clauses_start_;
118  std::deque<Literal> clauses_literals_;
119  std::vector<Literal> associated_literal_;
120 
121  // All the added clauses will be mapped back to the initial variables using
122  // this reverse mapping. This way, clauses_ and associated_literal_ are only
123  // in term of the initial problem.
125 
126  // This will stores the fixed variables value and later the postsolved
127  // assignment.
128  VariablesAssignment assignment_;
129 
130  DISALLOW_COPY_AND_ASSIGN(SatPostsolver);
131 };
132 
133 // This class holds a SAT problem (i.e. a set of clauses) and the logic to
134 // presolve it by a series of subsumption, self-subsuming resolution, and
135 // variable elimination by clause distribution.
136 //
137 // Note that this does propagate unit-clauses, but probably much
138 // less efficiently than the propagation code in the SAT solver. So it is better
139 // to use a SAT solver to fix variables before using this class.
140 //
141 // TODO(user): Interact more with a SAT solver to reuse its propagation logic.
142 //
143 // TODO(user): Forbid the removal of some variables. This way we can presolve
144 // only the clause part of a general Boolean problem by not removing variables
145 // appearing in pseudo-Boolean constraints.
147  public:
148  // TODO(user): use IntType!
149  typedef int32_t ClauseIndex;
150 
151  explicit SatPresolver(SatPostsolver* postsolver, SolverLogger* logger)
152  : postsolver_(postsolver),
153  num_trivial_clauses_(0),
154  drat_proof_handler_(nullptr),
155  logger_(logger) {}
156 
157  void SetParameters(const SatParameters& params) { parameters_ = params; }
158  void SetTimeLimit(TimeLimit* time_limit) { time_limit_ = time_limit; }
159 
160  // Registers a mapping to encode equivalent literals.
161  // See ProbeAndFindEquivalentLiteral().
164  equiv_mapping_ = mapping;
165  }
166 
167  // Adds new clause to the SatPresolver.
168  void SetNumVariables(int num_variables);
170  void AddClause(absl::Span<const Literal> clause);
171 
172  // Presolves the problem currently loaded. Returns false if the model is
173  // proven to be UNSAT during the presolving.
174  //
175  // TODO(user): Add support for a time limit and some kind of iterations limit
176  // so that this can never take too much time.
177  bool Presolve();
178 
179  // Same as Presolve() but only allow to remove BooleanVariable whose index
180  // is set to true in the given vector.
181  bool Presolve(const std::vector<bool>& var_that_can_be_removed);
182 
183  // All the clauses managed by this class.
184  // Note that deleted clauses keep their indices (they are just empty).
185  int NumClauses() const { return clauses_.size(); }
186  const std::vector<Literal>& Clause(ClauseIndex ci) const {
187  return clauses_[ci];
188  }
189 
190  // The number of variables. This is computed automatically from the clauses
191  // added to the SatPresolver.
192  int NumVariables() const { return literal_to_clause_sizes_.size() / 2; }
193 
194  // After presolving, Some variables in [0, NumVariables()) have no longer any
195  // clause pointing to them. This return a mapping that maps this interval to
196  // [0, new_size) such that now all variables are used. The unused variable
197  // will be mapped to BooleanVariable(-1).
199 
200  // Loads the current presolved problem in to the given sat solver.
201  // Note that the variables will be re-indexed according to the mapping given
202  // by GetMapping() so that they form a dense set.
203  //
204  // IMPORTANT: This is not const because it deletes the presolver clauses as
205  // they are added to the SatSolver in order to save memory. After this is
206  // called, only VariableMapping() will still works.
207  void LoadProblemIntoSatSolver(SatSolver* solver);
208 
209  // Visible for Testing. Takes a given clause index and looks for clause that
210  // can be subsumed or strengthened using this clause. Returns false if the
211  // model is proven to be unsat.
212  bool ProcessClauseToSimplifyOthers(ClauseIndex clause_index);
213 
214  // Visible for testing. Tries to eliminate x by clause distribution.
215  // This is also known as bounded variable elimination.
216  //
217  // It is always possible to remove x by resolving each clause containing x
218  // with all the clauses containing not(x). Hence the cross-product name. Note
219  // that this function only do that if the number of clauses is reduced.
220  bool CrossProduct(Literal x);
221 
222  // Visible for testing. Just applies the BVA step of the presolve.
223  void PresolveWithBva();
224 
225  void SetDratProofHandler(DratProofHandler* drat_proof_handler) {
226  drat_proof_handler_ = drat_proof_handler;
227  }
228 
229  private:
230  // Internal function used by ProcessClauseToSimplifyOthers().
231  bool ProcessClauseToSimplifyOthersUsingLiteral(ClauseIndex clause_index,
232  Literal lit);
233 
234  // Internal function to add clauses generated during the presolve. The clause
235  // must already be sorted with the default Literal order and will be cleared
236  // after this call.
237  void AddClauseInternal(std::vector<Literal>* clause);
238 
239  // Clause removal function.
240  void Remove(ClauseIndex ci);
241  void RemoveAndRegisterForPostsolve(ClauseIndex ci, Literal x);
242  void RemoveAndRegisterForPostsolveAllClauseContaining(Literal x);
243 
244  // Call ProcessClauseToSimplifyOthers() on all the clauses in
245  // clause_to_process_ and empty the list afterwards. Note that while some
246  // clauses are processed, new ones may be added to the list. Returns false if
247  // the problem is shown to be UNSAT.
248  bool ProcessAllClauses();
249 
250  // Finds the literal from the clause that occur the less in the clause
251  // database.
252  Literal FindLiteralWithShortestOccurrenceList(
253  const std::vector<Literal>& clause);
254  LiteralIndex FindLiteralWithShortestOccurrenceListExcluding(
255  const std::vector<Literal>& clause, Literal to_exclude);
256 
257  // Tests and maybe perform a Simple Bounded Variable addition starting from
258  // the given literal as described in the paper: "Automated Reencoding of
259  // Boolean Formulas", Norbert Manthey, Marijn J. H. Heule, and Armin Biere,
260  // Volume 7857 of the series Lecture Notes in Computer Science pp 102-117,
261  // 2013.
262  // https://www.research.ibm.com/haifa/conferences/hvc2012/papers/paper16.pdf
263  //
264  // This seems to have a mostly positive effect, except on the crafted problem
265  // familly mugrauer_balint--GI.crafted_nxx_d6_cx_numxx where the reduction
266  // is big, but apparently the problem is harder to prove UNSAT for the solver.
267  void SimpleBva(LiteralIndex l);
268 
269  // Display some statistics on the current clause database.
270  void DisplayStats(double elapsed_seconds);
271 
272  // Returns a hash of the given clause variables (not literal) in such a way
273  // that hash1 & not(hash2) == 0 iff the set of variable of clause 1 is a
274  // subset of the one of clause2.
275  uint64_t ComputeSignatureOfClauseVariables(ClauseIndex ci);
276 
277  // The "active" variables on which we want to call CrossProduct() are kept
278  // in a priority queue so that we process first the ones that occur the least
279  // often in the clause database.
280  void InitializePriorityQueue();
281  void UpdatePriorityQueue(BooleanVariable var);
282  struct PQElement {
283  PQElement() : heap_index(-1), variable(-1), weight(0.0) {}
284 
285  // Interface for the AdjustablePriorityQueue.
286  void SetHeapIndex(int h) { heap_index = h; }
287  int GetHeapIndex() const { return heap_index; }
288 
289  // Priority order. The AdjustablePriorityQueue returns the largest element
290  // first, but our weight goes this other way around (smaller is better).
291  bool operator<(const PQElement& other) const {
292  return weight > other.weight;
293  }
294 
295  int heap_index;
296  BooleanVariable variable;
297  double weight;
298  };
301 
302  // Literal priority queue for BVA. The literals are ordered by descending
303  // number of occurrences in clauses.
304  void InitializeBvaPriorityQueue();
305  void UpdateBvaPriorityQueue(LiteralIndex lit);
306  void AddToBvaPriorityQueue(LiteralIndex lit);
307  struct BvaPqElement {
308  BvaPqElement() : heap_index(-1), literal(-1), weight(0.0) {}
309 
310  // Interface for the AdjustablePriorityQueue.
311  void SetHeapIndex(int h) { heap_index = h; }
312  int GetHeapIndex() const { return heap_index; }
313 
314  // Priority order.
315  // The AdjustablePriorityQueue returns the largest element first.
316  bool operator<(const BvaPqElement& other) const {
317  return weight < other.weight;
318  }
319 
320  int heap_index;
321  LiteralIndex literal;
322  double weight;
323  };
324  std::deque<BvaPqElement> bva_pq_elements_; // deque because we add variables.
326 
327  // Temporary data for SimpleBva().
328  absl::btree_set<LiteralIndex> m_lit_;
329  std::vector<ClauseIndex> m_cls_;
330  absl::StrongVector<LiteralIndex, int> literal_to_p_size_;
331  std::vector<std::pair<LiteralIndex, ClauseIndex>> flattened_p_;
332  std::vector<Literal> tmp_new_clause_;
333 
334  // List of clauses on which we need to call ProcessClauseToSimplifyOthers().
335  // See ProcessAllClauses().
336  std::vector<bool> in_clause_to_process_;
337  std::deque<ClauseIndex> clause_to_process_;
338 
339  // The set of all clauses.
340  // An empty clause means that it has been removed.
341  std::vector<std::vector<Literal>> clauses_; // Indexed by ClauseIndex
342 
343  // The cached value of ComputeSignatureOfClauseVariables() for each clause.
344  std::vector<uint64_t> signatures_; // Indexed by ClauseIndex
345  int64_t num_inspected_signatures_ = 0;
346  int64_t num_inspected_literals_ = 0;
347 
348  // Occurrence list. For each literal, contains the ClauseIndex of the clause
349  // that contains it (ordered by clause index).
351  literal_to_clauses_;
352 
353  // Because we only lazily clean the occurrence list after clause deletions,
354  // we keep the size of the occurrence list (without the deleted clause) here.
355  absl::StrongVector<LiteralIndex, int> literal_to_clause_sizes_;
356 
357  // Used for postsolve.
358  SatPostsolver* postsolver_;
359 
360  // Equivalent literal mapping.
362 
363  int num_trivial_clauses_;
364  SatParameters parameters_;
365  DratProofHandler* drat_proof_handler_;
366  TimeLimit* time_limit_ = nullptr;
367  SolverLogger* logger_;
368 
369  DISALLOW_COPY_AND_ASSIGN(SatPresolver);
370 };
371 
372 // Visible for testing. Returns true iff:
373 // - a subsume b (subsumption): the clause a is a subset of b, in which case
374 // opposite_literal is set to -1.
375 // - b is strengthened by self-subsumption using a (self-subsuming resolution):
376 // the clause a with one of its literal negated is a subset of b, in which
377 // case opposite_literal is set to this negated literal index. Moreover, this
378 // opposite_literal is then removed from b.
379 //
380 // If num_inspected_literals_ is not nullptr, the "complexity" of this function
381 // will be added to it in order to track the amount of work done.
382 //
383 // TODO(user): when a.size() << b.size(), we should use binary search instead
384 // of scanning b linearly.
385 bool SimplifyClause(const std::vector<Literal>& a, std::vector<Literal>* b,
386  LiteralIndex* opposite_literal,
387  int64_t* num_inspected_literals = nullptr);
388 
389 // Visible for testing. Returns kNoLiteralIndex except if:
390 // - a and b differ in only one literal.
391 // - For a it is the given literal l.
392 // In which case, returns the LiteralIndex of the literal in b that is not in a.
393 LiteralIndex DifferAtGivenLiteral(const std::vector<Literal>& a,
394  const std::vector<Literal>& b, Literal l);
395 
396 // Visible for testing. Computes the resolvant of 'a' and 'b' obtained by
397 // performing the resolution on 'x'. If the resolvant is trivially true this
398 // returns false, otherwise it returns true and fill 'out' with the resolvant.
399 //
400 // Note that the resolvant is just 'a' union 'b' with the literals 'x' and
401 // not(x) removed. The two clauses are assumed to be sorted, and the computed
402 // resolvant will also be sorted.
403 //
404 // This is the basic operation when a variable is eliminated by clause
405 // distribution.
406 bool ComputeResolvant(Literal x, const std::vector<Literal>& a,
407  const std::vector<Literal>& b, std::vector<Literal>* out);
408 
409 // Same as ComputeResolvant() but just returns the resolvant size.
410 // Returns -1 when ComputeResolvant() returns false.
411 int ComputeResolvantSize(Literal x, const std::vector<Literal>& a,
412  const std::vector<Literal>& b);
413 
414 // Presolver that does literals probing and finds equivalent literals by
415 // computing the strongly connected components of the graph:
416 // literal l -> literals propagated by l.
417 //
418 // Clears the mapping if there are no equivalent literals. Otherwise, mapping[l]
419 // is the representative of the equivalent class of l. Note that mapping[l] may
420 // be equal to l.
421 //
422 // The postsolver will be updated so it can recover a solution of the mapped
423 // problem. Note that this works on any problem the SatSolver can handle, not
424 // only pure SAT problem, but the returned mapping do need to be applied to all
425 // constraints.
427  SatSolver* solver, SatPostsolver* postsolver,
428  DratProofHandler* drat_proof_handler,
430 
431 // Given a 'solver' with a problem already loaded, this will try to simplify the
432 // problem (i.e. presolve it) before calling solver->Solve(). In the process,
433 // because of the way the presolve is implemented, the underlying SatSolver may
434 // change (it is why we use this unique_ptr interface). In particular, the final
435 // variables and 'solver' state may have nothing to do with the problem
436 // originaly present in the solver. That said, if the problem is shown to be
437 // SAT, then the returned solution will be in term of the original variables.
438 //
439 // Note that the full presolve is only executed if the problem is a pure SAT
440 // problem with only clauses.
442  std::unique_ptr<SatSolver>* solver, TimeLimit* time_limit,
443  std::vector<bool>* solution /* only filled if SAT */,
444  DratProofHandler* drat_proof_handler /* can be nullptr */,
445  SolverLogger* logger);
446 
447 } // namespace sat
448 } // namespace operations_research
449 
450 #endif // OR_TOOLS_SAT_SIMPLIFICATION_H_
size_type size() const
A simple class to enforce both an elapsed time limit and a deterministic time limit in the same threa...
Definition: time_limit.h:106
void Add(Literal x, const absl::Span< const Literal > clause)
std::vector< Literal > Clause(int i) const
void ApplyMapping(const absl::StrongVector< BooleanVariable, BooleanVariable > &mapping)
std::vector< bool > PostsolveSolution(const std::vector< bool > &solution)
std::vector< bool > ExtractAndPostsolveSolution(const SatSolver &solver)
void SetNumVariables(int num_variables)
void LoadProblemIntoSatSolver(SatSolver *solver)
void AddBinaryClause(Literal a, Literal b)
SatPresolver(SatPostsolver *postsolver, SolverLogger *logger)
const std::vector< Literal > & Clause(ClauseIndex ci) const
void SetEquivalentLiteralMapping(const absl::StrongVector< LiteralIndex, LiteralIndex > &mapping)
void SetParameters(const SatParameters &params)
absl::StrongVector< BooleanVariable, BooleanVariable > VariableMapping() const
void SetDratProofHandler(DratProofHandler *drat_proof_handler)
void AddClause(absl::Span< const Literal > clause)
bool ProcessClauseToSimplifyOthers(ClauseIndex clause_index)
void SetTimeLimit(TimeLimit *time_limit)
int64_t b
int64_t a
ModelSharedTimeLimit * time_limit
IntVar * var
Definition: expr_array.cc:1874
void swap(IdMap< K, V > &a, IdMap< K, V > &b)
Definition: id_map.h:269
int ComputeResolvantSize(Literal x, const std::vector< Literal > &a, const std::vector< Literal > &b)
LiteralIndex DifferAtGivenLiteral(const std::vector< Literal > &a, const std::vector< Literal > &b, Literal l)
bool SimplifyClause(const std::vector< Literal > &a, std::vector< Literal > *b, LiteralIndex *opposite_literal, int64_t *num_inspected_literals)
bool ComputeResolvant(Literal x, const std::vector< Literal > &a, const std::vector< Literal > &b, std::vector< Literal > *out)
SatSolver::Status SolveWithPresolve(std::unique_ptr< SatSolver > *solver, TimeLimit *time_limit, std::vector< bool > *solution, DratProofHandler *drat_proof_handler, SolverLogger *logger)
void ProbeAndFindEquivalentLiteral(SatSolver *solver, SatPostsolver *postsolver, DratProofHandler *drat_proof_handler, absl::StrongVector< LiteralIndex, LiteralIndex > *mapping)
Collection of objects used to extend the Constraint Solver library.
Literal literal
Definition: optimization.cc:88
int64_t weight
Definition: pack.cc:510
std::optional< int64_t > end