mirror of
https://github.com/Z3Prover/z3
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237 lines
7.6 KiB
C#
237 lines
7.6 KiB
C#
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/*++
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Copyright (c) 2015 Microsoft Corporation
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--*/
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using System;
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using System.Collections.Generic;
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using System.Diagnostics;
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using System.Linq;
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using System.IO;
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using Microsoft.Z3;
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using Microsoft.SolverFoundation.Common;
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using Microsoft.SolverFoundation.Services;
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using Microsoft.SolverFoundation.Plugin;
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namespace Microsoft.SolverFoundation.Plugin.Z3
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{
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/// <summary>
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/// The class is implementation of the MSF mixed linear programming solver
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/// using the Microsoft Z3 solver as the backend.
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/// </summary>
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public class Z3MILPSolver : LinearModel, ILinearSolver, ILinearSolution, IReportProvider
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{
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#region Private members
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private LinearResult _result;
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private LinearSolutionQuality _solutionQuality;
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private Z3BaseSolver _solver;
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#endregion Private members
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#region Solver construction and destruction
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/// <summary>Constructor that initializes the base classes</summary>
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public Z3MILPSolver() : base(null)
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{
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_result = LinearResult.Feasible;
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_solver = new Z3BaseSolver(this);
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}
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/// <summary>Constructor that initializes the base classes</summary>
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public Z3MILPSolver(ISolverEnvironment context) : this() { }
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/// <summary>
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/// Shutdown can be called when when the solver is not active, i.e.
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/// when it is done with Solve() or it has gracefully returns from Solve()
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/// after an abort.
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/// </summary>
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public void Shutdown() { _solver.DestructSolver(true); }
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#endregion Solver construction and destruction
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#region Obtaining information about the solution
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public ILinearSolverReport GetReport(LinearSolverReportType reportType)
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{
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// We don't support sensitivity report
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return null;
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}
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#endregion Obtaining information about the solution
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#region Construction of the problem
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/// <summary>
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/// Get corresponding Z3 formula of a MSF row.
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/// </summary>
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/// <param name="rid">The MSF row id</param>
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private ArithExpr MkGoalRow(int rid)
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{
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// Start with the 0 term
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List<ArithExpr> row = new List<ArithExpr>();
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// Now, add all the entries of this row
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foreach (LinearEntry entry in GetRowEntries(rid))
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{
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// Get the variable and constant in the row
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ArithExpr e = _solver.GetVariable(entry.Index);
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if (!entry.Value.IsOne)
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{
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e = _solver.Context.MkMul(_solver.GetNumeral(entry.Value, e.Sort), e);
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}
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row.Add(e);
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}
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switch (row.Count)
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{
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case 0: return _solver.GetNumeral(new Rational());
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case 1: return row[0];
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default: return _solver.Context.MkAdd(row.ToArray());
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}
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}
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/// <summary>
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/// Adds a MSF row to the Z3 assertions.
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/// </summary>
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/// <param name="rid">The MSF row id</param>
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private void AddRow(int rid)
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{
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// Start with the 0 term
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ArithExpr row = MkGoalRow(rid);
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_solver.AssertArith(rid, row);
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}
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/// <summary>
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/// Set results based on internal solver status
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/// </summary>
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private void SetResult(Z3Result status)
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{
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switch (status)
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{
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case Z3Result.Optimal:
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_result = LinearResult.Optimal;
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_solutionQuality = LinearSolutionQuality.Exact;
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break;
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case Z3Result.LocalOptimal:
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_result = LinearResult.Feasible;
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_solutionQuality = LinearSolutionQuality.Approximate;
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break;
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case Z3Result.Feasible:
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_result = LinearResult.Feasible;
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_solutionQuality = LinearSolutionQuality.Exact;
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break;
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case Z3Result.Infeasible:
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_result = LinearResult.InfeasiblePrimal;
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_solutionQuality = LinearSolutionQuality.None;
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break;
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case Z3Result.Interrupted:
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_result = LinearResult.Interrupted;
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_solutionQuality = LinearSolutionQuality.None;
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break;
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default:
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Debug.Assert(false, "Unrecognized Z3 Result");
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break;
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}
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}
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#endregion Construction of the problem
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#region Solving the problem
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/// <summary>
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/// Starts solving the problem using the Z3 solver.
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/// </summary>
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/// <param name="parameters">Parameters to the solver</param>
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/// <returns>The solution to the problem</returns>
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public ILinearSolution Solve(ISolverParameters parameters)
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{
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// Get the Z3 parameters
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var z3Params = parameters as Z3BaseParams;
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Debug.Assert(z3Params != null, "Parameters should be an instance of Z3BaseParams.");
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_solver.Solve(z3Params, Goals, AddRow, MkGoalRow, SetResult);
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return this;
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}
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#endregion Solving the problem
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#region ILinearSolution Members
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public Rational GetSolutionValue(int goalIndex)
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{
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var goal = Goals.ElementAt(goalIndex);
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Debug.Assert(goal != null, "Goal should be an element of the goal list.");
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return GetValue(goal.Index);
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}
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public void GetSolvedGoal(int goalIndex, out object key, out int vid, out bool minimize, out bool optimal)
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{
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var goal = Goals.ElementAt(goalIndex);
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Debug.Assert(goal != null, "Goal should be an element of the goal list.");
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key = goal.Key;
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vid = goal.Index;
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minimize = goal.Minimize;
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optimal = _result == LinearResult.Optimal;
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}
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// LpResult is LP relaxation assignment.
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public LinearResult LpResult
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{
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get { return _result; }
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}
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public Rational MipBestBound
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{
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get
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{
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Debug.Assert(GoalCount > 0, "MipBestBound is only applicable for optimization instances.");
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return GetSolutionValue(0);
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}
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}
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public LinearResult MipResult
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{
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get { return _result; }
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}
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public LinearResult Result
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{
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get { return _result; }
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}
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public LinearSolutionQuality SolutionQuality
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{
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get { return _solutionQuality; }
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}
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public int SolvedGoalCount
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{
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get { return GoalCount; }
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}
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#endregion
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public Report GetReport(SolverContext context, Solution solution, SolutionMapping solutionMapping)
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{
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LinearSolutionMapping lpSolutionMapping = solutionMapping as LinearSolutionMapping;
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if (lpSolutionMapping == null && solutionMapping != null)
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throw new ArgumentException("solutionMapping is not a LinearSolutionMapping", "solutionMapping");
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return new Z3LinearSolverReport(context, this, solution, lpSolutionMapping);
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}
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}
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/// <summary>
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/// Class implementing the LinearReport.
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/// </summary>
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public class Z3LinearSolverReport : LinearReport
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{
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public Z3LinearSolverReport(SolverContext context, ISolver solver, Solution solution, LinearSolutionMapping solutionMapping)
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: base(context, solver, solution, solutionMapping) {
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}
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}
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}
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