1 | using System;
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2 | using System.Collections.Generic;
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3 | using System.Diagnostics;
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4 | using System.Linq;
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5 | using System.Text;
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6 | using HeuristicLab.Grammars;
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7 |
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8 | namespace CodeGenerator {
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9 | public class RandomSearchCodeGen {
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10 |
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11 | private string solverTemplate = @"
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12 | namespace ?PROBLEMNAME? {
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13 | public sealed class ?IDENT?Solver {
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14 | private static double baseTerminalProbability = 0.05; // 5% of all samples are only a terminal node
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15 | private static double terminalProbabilityInc = 0.05; // for each level the probability to sample a terminal grows by 5%
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16 |
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17 | private static Dictionary<int, int[]> transition = new Dictionary<int, int[]>() {
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18 | ?TRANSITIONTABLE?
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19 | };
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20 | private static Dictionary<int, int> subtreeCount = new Dictionary<int, int>() {
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21 | { -1, 0 }, // terminals
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22 | ?SUBTREECOUNTTABLE?
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23 | };
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24 | private static string[] symb = new string[] { ?SYMBOLNAMES? };
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25 |
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26 |
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27 | public sealed class SolverState : ISolverState {
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28 | public int curDepth;
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29 | public int steps;
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30 | public int depth;
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31 | private readonly Stack<Tree> nodes;
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32 | private readonly ?IDENT?Problem problem;
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33 |
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34 | public SolverState(?IDENT?Problem problem, int seed) {
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35 | this.problem = problem;
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36 | this.nodes = new Stack<Tree>();
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37 |
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38 | // create a random tree
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39 | var tree = SampleTree(new Random(seed), 0, -1); // state 0 is the state for the start symbol
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40 | nodes.Push(tree);
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41 | }
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42 |
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43 | public void Reset() {
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44 | // stack must contain only the root of the tree
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45 | System.Diagnostics.Debug.Assert(nodes.Count == 1);
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46 | }
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47 |
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48 | private Tree SampleTree(Random random, int state, int altIdx) {
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49 | // Console.Write(state + "" "");
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50 | curDepth += 1;
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51 | steps += 1;
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52 | depth = Math.Max(depth, curDepth);
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53 | var t = new Tree(state, altIdx, subtreeCount[state]);
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54 |
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55 | // t.symbol = symb.Length > state ? symb[state] : ""TERM"";
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56 | // if the symbol has alternatives then we must choose one randomly (only one sub-tree in this case)
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57 | if(subtreeCount[state] == 1) {
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58 | var targetStates = transition[state];
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59 | var i = SampleAlternative(random, state);
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60 | if(targetStates.Length == 0) {
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61 | //terminal
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62 | t.subtrees.Add(SampleTree(random, -1, i));
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63 | } else {
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64 | t.subtrees.Add(SampleTree(random, targetStates[i], i));
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65 | }
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66 | } else {
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67 | // if the symbol contains only one sequence we must use create sub-trees for each symbol in the sequence
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68 | for(int i = 0; i < subtreeCount[state]; i++) {
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69 | t.subtrees.Add(SampleTree(random, transition[state][i], i));
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70 | }
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71 | }
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72 | curDepth -=1;
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73 | return t;
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74 | }
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75 |
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76 | public int PeekNextAlternative() {
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77 | // this must only be called nodes that contain alternatives and therefore must only have single-symbols alternatives
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78 | System.Diagnostics.Debug.Assert(nodes.Peek().subtrees.Count == 1);
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79 | return nodes.Peek().subtrees[0].altIdx;
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80 | }
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81 |
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82 | public void Follow(int idx) {
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83 | nodes.Push(nodes.Peek().subtrees[idx]);
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84 | }
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85 |
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86 | public void Unwind() {
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87 | nodes.Pop();
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88 | }
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89 |
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90 | private int SampleAlternative(Random random, int state) {
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91 | switch(state) {
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92 |
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93 | ?SAMPLEALTERNATIVECODE?
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94 |
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95 | default: throw new InvalidOperationException();
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96 | }
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97 | }
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98 |
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99 | private double TerminalProbForDepth(int depth) {
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100 | return baseTerminalProbability + depth * terminalProbabilityInc;
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101 | }
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102 | }
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103 |
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104 | public static void Main(string[] args) {
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105 | if(args.Length >= 1) ParseArguments(args);
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106 |
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107 | var problem = new ?IDENT?Problem();
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108 | var solver = new ?IDENT?Solver(problem);
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109 | solver.Start();
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110 | }
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111 | private static void ParseArguments(string[] args) {
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112 | var baseTerminalProbabilityRegex = new Regex(@""--terminalProbBase=(?<prob>.+)"");
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113 | var terminalProbabilityIncRegex = new Regex(@""--terminalProbInc=(?<prob>.+)"");
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114 | var helpRegex = new Regex(@""--help|/\?"");
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115 |
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116 | foreach(var arg in args) {
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117 | var baseTerminalProbabilityMatch = baseTerminalProbabilityRegex.Match(arg);
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118 | var terminalProbabilityIncMatch = terminalProbabilityIncRegex.Match(arg);
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119 | var helpMatch = helpRegex.Match(arg);
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120 | if(helpMatch.Success) { PrintUsage(); Environment.Exit(0); }
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121 | else if(baseTerminalProbabilityMatch.Success) {
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122 | baseTerminalProbability = double.Parse(baseTerminalProbabilityMatch.Groups[""prob""].Captures[0].Value, System.Globalization.CultureInfo.InvariantCulture);
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123 | if(baseTerminalProbability < 0.0 || baseTerminalProbability > 1.0) throw new ArgumentException(""base terminal probability must lie in range [0.0 ... 1.0]"");
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124 | } else if(terminalProbabilityIncMatch.Success) {
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125 | terminalProbabilityInc = double.Parse(terminalProbabilityIncMatch.Groups[""prob""].Captures[0].Value, System.Globalization.CultureInfo.InvariantCulture);
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126 | if(terminalProbabilityInc < 0.0 || terminalProbabilityInc > 1.0) throw new ArgumentException(""terminal probability increment must lie in range [0.0 ... 1.0]"");
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127 | } else {
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128 | Console.WriteLine(""Unknown switch {0}"", arg); PrintUsage(); Environment.Exit(0);
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129 | }
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130 | }
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131 | }
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132 | private static void PrintUsage() {
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133 | Console.WriteLine(""Find a solution using random tree search."");
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134 | Console.WriteLine();
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135 | Console.WriteLine(""Parameters:"");
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136 | Console.WriteLine(""\t--terminalProbBase=<prob>\tSets the probability of sampling a terminal alternative in a rule [Default: 0.05]"");
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137 | Console.WriteLine(""\t--terminalProbInc=<prob>\tSets the increment for the probability of sampling a terminal alternative for each level in the syntax tree [Default: 0.05]"");
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138 | }
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139 |
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140 |
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141 | private readonly ?IDENT?Problem problem;
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142 | public ?IDENT?Solver(?IDENT?Problem problem) {
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143 | this.problem = problem;
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144 | }
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145 |
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146 | private void Start() {
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147 | var seedRandom = new Random();
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148 | var bestF = ?MAXIMIZATION? ? double.NegativeInfinity : double.PositiveInfinity;
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149 | int n = 0;
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150 | long sumDepth = 0;
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151 | long sumSize = 0;
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152 | var sumF = 0.0;
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153 | var sw = new System.Diagnostics.Stopwatch();
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154 | sw.Start();
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155 | while (true) {
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156 |
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157 | // must make sure that calling the start-symbol multiple times in the fitness function always leads to the same path through the grammar
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158 | // so we use a PRNG for generating seeds for a separate PRNG that is reset each time the start symbol is called
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159 |
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160 | var _state = new SolverState(problem, seedRandom.Next());
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161 |
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162 | var f = problem.Evaluate(_state);
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163 |
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164 | n++;
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165 | sumSize += _state.steps;
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166 | sumDepth += _state.depth;
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167 | sumF += f;
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168 | if (IsBetter(f, bestF)) {
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169 | bestF = f;
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170 | Console.WriteLine(""{0}\t{1}\t(size={2}, depth={3})"", n, bestF, _state.steps, _state.depth);
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171 | }
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172 | if (n % 1000 == 0) {
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173 | sw.Stop();
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174 | Console.WriteLine(""{0}\tbest: {1:0.000}\t(avg: {2:0.000})\t(avg size: {3:0.0})\t(avg. depth: {4:0.0})\t({5:0.00} sols/ms)"", n, bestF, sumF/1000.0, sumSize/1000.0, sumDepth/1000.0, 1000.0 / sw.ElapsedMilliseconds);
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175 | sw.Reset();
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176 | sumSize = 0;
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177 | sumDepth = 0;
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178 | sumF = 0.0;
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179 | sw.Start();
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180 | }
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181 | }
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182 | }
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183 |
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184 | private bool IsBetter(double a, double b) {
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185 | return ?MAXIMIZATION? ? a > b : a < b;
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186 | }
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187 | }
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188 | }";
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189 |
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190 | public void Generate(IGrammar grammar, bool maximization, SourceBuilder problemSourceCode) {
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191 | var solverSourceCode = new SourceBuilder();
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192 | solverSourceCode.Append(solverTemplate)
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193 | // .Replace("?TERMINALFIELDS?", GenerateTerminalFields(grammar))
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194 | // .Replace("?CONSTRUCTORCODE?", GenerateConstructorCode(grammar))
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195 | .Replace("?MAXIMIZATION?", maximization.ToString().ToLowerInvariant())
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196 | .Replace("?SYMBOLNAMES?", grammar.Symbols.Select(s => s.Name).Aggregate(string.Empty, (str, symb) => str + "\"" + symb + "\", "))
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197 | .Replace("?TRANSITIONTABLE?", GenerateTransitionTable(grammar))
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198 | .Replace("?SUBTREECOUNTTABLE?", GenerateSubtreeCountTable(grammar))
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199 | .Replace("?SAMPLEALTERNATIVECODE?", GenerateSampleAlternativeSource(grammar))
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200 | // .Replace("?SAMPLETERMINALCODE?", GenerateSampleTerminalSource(grammar))
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201 | ;
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202 |
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203 | problemSourceCode.Append(solverSourceCode.ToString());
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204 | }
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205 |
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206 |
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207 | //private string GenerateSampleTerminalSource(IGrammar grammar) {
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208 | // StringBuilder sb = new StringBuilder();
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209 | // foreach (var t in grammar.TerminalSymbols) {
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210 | // sb.AppendFormat("public void {0}(ISolverState _state, {1}) {{", t.Name, t.GetAttributeString()).AppendLine();
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211 | // foreach (var att in t.Attributes) {
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212 | // // need constraints
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213 | // sb.AppendFormat("{0}", att.Name);
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214 | // }
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215 | // sb.AppendLine("}");
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216 | // }
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217 | // return sb.ToString();
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218 | //}
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219 |
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220 |
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221 | private string GenerateTransitionTable(IGrammar grammar) {
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222 | Debug.Assert(grammar.Symbols.First().Equals(grammar.StartSymbol));
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223 | var sb = new SourceBuilder();
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224 |
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225 | // state idx = idx of the corresponding symbol in the grammar
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226 | var allSymbols = grammar.Symbols.ToList();
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227 | var attributes = new List<string>();
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228 | foreach (var s in grammar.Symbols) {
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229 | var targetStates = new List<int>();
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230 | if (grammar.IsTerminal(s)) {
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231 | foreach (var att in s.Attributes) {
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232 | targetStates.Add(allSymbols.Count + attributes.Count);
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233 | attributes.Add(s.Name + "_" + att);
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234 | }
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235 | } else {
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236 | if (grammar.NumberOfAlternatives(s) > 1) {
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237 | foreach (var alt in grammar.GetAlternatives(s)) {
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238 | // only single-symbol alternatives are supported
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239 | Debug.Assert(alt.Count() == 1);
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240 | targetStates.Add(allSymbols.IndexOf(alt.Single()));
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241 | }
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242 | } else {
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243 | // rule is a sequence of symbols
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244 | var seq = grammar.GetAlternatives(s).Single();
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245 | targetStates.AddRange(seq.Select(symb => allSymbols.IndexOf(symb)));
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246 | }
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247 | }
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248 |
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249 | var targetStateString = targetStates.Aggregate(string.Empty, (str, state) => str + state + ", ");
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250 |
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251 | var idxOfSourceState = allSymbols.IndexOf(s);
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252 | sb.AppendFormat("// {0}", s).AppendLine();
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253 | sb.AppendFormat("{{ {0} , new int[] {{ {1} }} }},", idxOfSourceState, targetStateString).AppendLine();
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254 | }
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255 | for (int attIdx = 0; attIdx < attributes.Count; attIdx++) {
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256 | sb.AppendFormat("// {0}", attributes[attIdx]).AppendLine();
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257 | sb.AppendFormat("{{ {0} , new int[] {{ }} }},", attIdx + allSymbols.Count).AppendLine();
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258 | }
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259 | return sb.ToString();
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260 | }
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261 | private string GenerateSubtreeCountTable(IGrammar grammar) {
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262 | Debug.Assert(grammar.Symbols.First().Equals(grammar.StartSymbol));
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263 | var sb = new SourceBuilder();
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264 |
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265 | // state idx = idx of the corresponding symbol in the grammar
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266 | var allSymbols = grammar.Symbols.ToList();
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267 | var attributes = new List<string>();
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268 | foreach (var s in grammar.Symbols) {
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269 | int subtreeCount;
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270 | if (grammar.IsTerminal(s)) {
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271 | subtreeCount = s.Attributes.Count();
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272 | attributes.AddRange(s.Attributes.Select(att => s.Name + "_" + att.Name));
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273 | } else {
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274 | if (grammar.NumberOfAlternatives(s) > 1) {
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275 | Debug.Assert(grammar.GetAlternatives(s).All(alt => alt.Count() == 1));
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276 | subtreeCount = 1;
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277 | } else {
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278 | subtreeCount = grammar.GetAlternative(s, 0).Count();
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279 | }
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280 | }
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281 |
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282 | sb.AppendFormat("// {0}", s).AppendLine();
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283 | sb.AppendFormat("{{ {0} , {1} }},", allSymbols.IndexOf(s), subtreeCount).AppendLine();
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284 | }
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285 |
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286 | for (int attIdx = 0; attIdx < attributes.Count; attIdx++) {
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287 | sb.AppendFormat("// {0}", attributes[attIdx]).AppendLine();
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288 | sb.AppendFormat("{{ {0} , 1 }},", attIdx + allSymbols.Count).AppendLine();
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289 | }
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290 | return sb.ToString();
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291 | }
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292 |
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293 | private string GenerateSampleAlternativeSource(IGrammar grammar) {
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294 | Debug.Assert(grammar.Symbols.First().Equals(grammar.StartSymbol));
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295 | var sb = new SourceBuilder();
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296 | int stateCount = 0;
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297 | foreach (var s in grammar.Symbols) {
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298 | sb.AppendFormat("case {0}: ", stateCount++);
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299 | if (grammar.IsTerminal(s)) {
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300 | // ignore
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301 | } else {
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302 | var terminalAltIndexes = grammar.GetAlternatives(s)
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303 | .Select((alt, idx) => new { alt, idx })
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304 | .Where((p) => p.alt.All(symb => grammar.IsTerminal(symb)))
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305 | .Select(p => p.idx);
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306 | var nonTerminalAltIndexes = grammar.GetAlternatives(s)
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307 | .Select((alt, idx) => new { alt, idx })
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308 | .Where((p) => p.alt.Any(symb => grammar.IsNonTerminal(symb)))
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309 | .Select(p => p.idx);
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310 | var hasTerminalAlts = terminalAltIndexes.Any();
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311 | var hasNonTerminalAlts = nonTerminalAltIndexes.Any();
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312 | if (hasTerminalAlts && hasNonTerminalAlts) {
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313 | sb.Append("if(random.NextDouble() < TerminalProbForDepth(depth)) {").BeginBlock();
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314 | GenerateReturnStatement(terminalAltIndexes, sb);
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315 | sb.Append("} else {");
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316 | GenerateReturnStatement(nonTerminalAltIndexes, sb);
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317 | sb.Append("}").EndBlock();
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318 | } else {
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319 | GenerateReturnStatement(grammar.NumberOfAlternatives(s), sb);
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320 | }
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321 | }
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322 | }
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323 | return sb.ToString();
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324 | }
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325 | private void GenerateReturnStatement(IEnumerable<int> idxs, SourceBuilder sb) {
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326 | if (idxs.Count() == 1) {
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327 | sb.AppendFormat("return {0};", idxs.Single()).AppendLine();
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328 | } else {
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329 | var idxStr = idxs.Aggregate(string.Empty, (str, idx) => str + idx + ", ");
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330 | sb.AppendFormat("return new int[] {{ {0} }}[random.Next({1})]; ", idxStr, idxs.Count()).AppendLine();
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331 | }
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332 | }
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333 |
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334 | private void GenerateReturnStatement(int nAlts, SourceBuilder sb) {
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335 | if (nAlts > 1) {
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336 | sb.AppendFormat("return random.Next({0});", nAlts).AppendLine();
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337 | } else if (nAlts == 1) {
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338 | sb.AppendLine("return 0; ");
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339 | } else {
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340 | sb.AppendLine("throw new InvalidProgramException();");
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341 | }
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342 | }
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343 | }
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344 | }
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