OR-Tools  9.2
linear_relaxation.h
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1// Copyright 2010-2021 Google LLC
2// Licensed under the Apache License, Version 2.0 (the "License");
3// you may not use this file except in compliance with the License.
4// You may obtain a copy of the License at
5//
6// http://www.apache.org/licenses/LICENSE-2.0
7//
8// Unless required by applicable law or agreed to in writing, software
9// distributed under the License is distributed on an "AS IS" BASIS,
10// WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
11// See the License for the specific language governing permissions and
12// limitations under the License.
13
14#ifndef OR_TOOLS_SAT_LINEAR_RELAXATION_H_
15#define OR_TOOLS_SAT_LINEAR_RELAXATION_H_
16
17#include <vector>
18
20#include "ortools/sat/integer.h"
23#include "ortools/sat/model.h"
24
25namespace operations_research {
26namespace sat {
27
29 std::vector<LinearConstraint> linear_constraints;
30 std::vector<std::vector<Literal>> at_most_ones;
31 std::vector<CutGenerator> cut_generators;
32};
33
34// Looks at all the encoding literal (li <=> var == value_i) that have a
35// view and add a linear relaxation of their relationship with var.
36//
37// If the encoding is full, we can just add:
38// - Sum li == 1
39// - var == min_value + Sum li * (value_i - min_value)
40//
41// When the set of such encoding literals do not cover the full domain of var,
42// we do something a bit more involved. Let min_not_encoded/max_not_encoded the
43// min and max value of the domain of var that is NOT part of the encoding.
44// We add:
45// - Sum li <= 1
46// - var >= (Sum li * value_i) + (1 - Sum li) * min_not_encoded
47// - var <= (Sum li * value_i) + (1 - Sum li) * max_not_encoded
48//
49// Note of the special case where min_not_encoded == max_not_encoded that kind
50// of reduce to the full encoding, except with a different "rhs" value.
51//
52// We also increment the corresponding counter if we added something. We
53// consider the relaxation "tight" if the encoding was full or if
54// min_not_encoded == max_not_encoded.
55void AppendRelaxationForEqualityEncoding(IntegerVariable var,
56 const Model& model,
57 LinearRelaxation* relaxation,
58 int* num_tight, int* num_loose);
59
60// This is a different relaxation that use a partial set of literal li such that
61// (li <=> var >= xi). In which case we use the following encoding:
62// - li >= l_{i+1} for all possible i. Note that the xi need to be sorted.
63// - var >= min + l0 * (x0 - min) + Sum_{i>0} li * (xi - x_{i-1})
64// - and same as above for NegationOf(var) for the upper bound.
65//
66// Like for AppendRelaxationForEqualityEncoding() we skip any li that do not
67// have an integer view.
69 const Model& model,
70 LinearRelaxation* relaxation);
71
72// Returns a vector of new literals in exactly one relationship.
73// In addition, this create an IntegerView for all these literals and also add
74// the exactly one to the LinearRelaxation.
75std::vector<Literal> CreateAlternativeLiteralsWithView(
76 int num_literals, Model* model, LinearRelaxation* relaxation);
77
79 LinearRelaxation* relaxation);
80
82 LinearRelaxation* relaxation);
83
85 LinearRelaxation* relaxation);
86
88 LinearRelaxation* relaxation);
89
90// Adds linearization of int max constraints. Returns a vector of z vars such
91// that: z_vars[l] == 1 <=> target = exprs[l].
92//
93// Consider the Lin Max constraint with d expressions and n variables in the
94// form: target = max {exprs[l] = Sum (wli * xi + bl)}. l in {1,..,d}.
95// Li = lower bound of xi
96// Ui = upper bound of xi.
97// Let zl be in {0,1} for all l in {1,..,d}.
98// The target = exprs[l] when zl = 1.
99//
100// The following is a valid linearization for Lin Max.
101// target >= exprs[l], for all l in {1,..,d}
102// target <= Sum_i(wki * xi) + Sum_l((Nkl + bl) * zl), for all k in {1,..,d}
103// Where Nkl is a large number defined as:
104// Nkl = Sum_i(max((wli - wki)*Li, (wli - wki)*Ui))
105// = Sum (max corner difference for variable i, target expr k, max expr l)
106// Reference: "Strong mixed-integer programming formulations for trained neural
107// networks" by Ross Anderson et. (https://arxiv.org/pdf/1811.01988.pdf).
108// TODO(user): Support linear expression as target.
110 LinearRelaxation* relaxation);
111
113 IntegerVariable target, const std::vector<Literal>& alternative_literals,
114 const std::vector<LinearExpression>& exprs, Model* model,
115 LinearRelaxation* relaxation);
116
117// Note: This only works if all affine expressions share the same variable.
119 LinearRelaxation* relaxation);
120
121// Appends linear constraints to the relaxation. This also handles the
122// relaxation of linear constraints with enforcement literals.
123// A linear constraint lb <= ax <= ub with enforcement literals {ei} is relaxed
124// as following.
125// lb <= (Sum Negated(ei) * (lb - implied_lb)) + ax <= inf
126// -inf <= (Sum Negated(ei) * (ub - implied_ub)) + ax <= ub
127// Where implied_lb and implied_ub are trivial lower and upper bounds of the
128// constraint.
130 bool linearize_enforced_constraints,
131 Model* model,
132 LinearRelaxation* relaxation);
133
135 LinearRelaxation* relaxation);
136
138 LinearRelaxation* relaxation);
139
140// Adds linearization of no overlap constraints.
141// It adds an energetic equation linking the duration of all potential tasks to
142// the actual span of the no overlap constraint.
144 const ConstraintProto& ct, Model* model,
145 LinearRelaxation* relaxation);
146
147// Adds linearization of cumulative constraints.The second part adds an
148// energetic equation linking the duration of all potential tasks to the actual
149// max span * capacity of the cumulative constraint.
151 const ConstraintProto& ct, Model* model,
152 LinearRelaxation* relaxation);
153
154// Cut generators.
155void AddIntProdCutGenerator(const ConstraintProto& ct, int linearization_level,
156 Model* m, LinearRelaxation* relaxation);
157
159 LinearRelaxation* relaxation);
160
162 LinearRelaxation* relaxation);
163
165 LinearRelaxation* relaxation);
166
168 LinearRelaxation* relaxation);
169
171 LinearRelaxation* relaxation);
172
174 LinearRelaxation* relaxation);
175
177 LinearRelaxation* relaxation);
178
179// Adds linearization of different types of constraints.
181 const ConstraintProto& ct,
182 int linearization_level, Model* model,
183 LinearRelaxation* relaxation);
184
185// Builds the linear relaxation of a CpModelProto.
187 Model* m);
188
189} // namespace sat
190} // namespace operations_research
191
192#endif // OR_TOOLS_SAT_LINEAR_RELAXATION_H_
Class that owns everything related to a particular optimization model.
Definition: sat/model.h:38
CpModelProto const * model_proto
const Constraint * ct
IntVar * var
Definition: expr_array.cc:1874
GRBmodel * model
void AddCumulativeCutGenerator(const ConstraintProto &ct, Model *m, LinearRelaxation *relaxation)
void AppendLinMaxRelaxationPart1(const ConstraintProto &ct, Model *model, LinearRelaxation *relaxation)
void AppendBoolOrRelaxation(const ConstraintProto &ct, Model *model, LinearRelaxation *relaxation)
void TryToLinearizeConstraint(const CpModelProto &model_proto, const ConstraintProto &ct, int linearization_level, Model *model, LinearRelaxation *relaxation)
void AppendNoOverlapRelaxation(const CpModelProto &model_proto, const ConstraintProto &ct, Model *model, LinearRelaxation *relaxation)
void AppendAtMostOneRelaxation(const ConstraintProto &ct, Model *model, LinearRelaxation *relaxation)
void AppendCumulativeRelaxation(const CpModelProto &model_proto, const ConstraintProto &ct, Model *model, LinearRelaxation *relaxation)
void AddNoOverlapCutGenerator(const ConstraintProto &ct, Model *m, LinearRelaxation *relaxation)
void AppendBoolAndRelaxation(const ConstraintProto &ct, Model *model, LinearRelaxation *relaxation)
void AppendLinearConstraintRelaxation(const ConstraintProto &ct, bool linearize_enforced_constraints, Model *model, LinearRelaxation *relaxation)
void AddNoOverlap2dCutGenerator(const ConstraintProto &ct, Model *m, LinearRelaxation *relaxation)
void AddIntProdCutGenerator(const ConstraintProto &ct, int linearization_level, Model *m, LinearRelaxation *relaxation)
void AddCircuitCutGenerator(const ConstraintProto &ct, Model *m, LinearRelaxation *relaxation)
void AppendMaxAffineRelaxation(const ConstraintProto &ct, Model *model, LinearRelaxation *relaxation)
void AppendExactlyOneRelaxation(const ConstraintProto &ct, Model *model, LinearRelaxation *relaxation)
std::vector< Literal > CreateAlternativeLiteralsWithView(int num_literals, Model *model, LinearRelaxation *relaxation)
void AppendCircuitRelaxation(const ConstraintProto &ct, Model *model, LinearRelaxation *relaxation)
void AddAllDiffCutGenerator(const ConstraintProto &ct, Model *m, LinearRelaxation *relaxation)
void AddLinMaxCutGenerator(const ConstraintProto &ct, Model *m, LinearRelaxation *relaxation)
void AppendRoutesRelaxation(const ConstraintProto &ct, Model *model, LinearRelaxation *relaxation)
void AppendRelaxationForEqualityEncoding(IntegerVariable var, const Model &model, LinearRelaxation *relaxation, int *num_tight, int *num_loose)
void AddRoutesCutGenerator(const ConstraintProto &ct, Model *m, LinearRelaxation *relaxation)
LinearRelaxation ComputeLinearRelaxation(const CpModelProto &model_proto, Model *m)
void AppendLinMaxRelaxationPart2(IntegerVariable target, const std::vector< Literal > &alternative_literals, const std::vector< LinearExpression > &exprs, Model *model, LinearRelaxation *relaxation)
void AppendPartialGreaterThanEncodingRelaxation(IntegerVariable var, const Model &model, LinearRelaxation *relaxation)
Collection of objects used to extend the Constraint Solver library.
std::vector< std::vector< Literal > > at_most_ones
std::vector< LinearConstraint > linear_constraints
std::vector< CutGenerator > cut_generators