Working single-threaded version
This commit is contained in:
10
build.sh
10
build.sh
@@ -1,5 +1,13 @@
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(
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(
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cd bin
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cd bin
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rm main.*
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srcs=../src/*
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srcs=../src/*
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cl $srcs -I ../inc/ -Od -std:c++20 -Fe -ZI
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if [ $# -eq 1 ] && [ "$1" == "release" ]
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then
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flags="-O2"
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else
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flags="-Od -ZI"
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fi
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echo $flags
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cl $srcs -I ../inc/ $flags -std:c++20 -Fe
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)
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)
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@@ -1,11 +1,13 @@
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// raddbg 0.9.21 project file
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// raddbg 0.9.21 project file
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recent_file: path: "src/main.cpp"
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recent_file: path: "inc/genetic.h"
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recent_file: path: "inc/genetic.h"
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recent_file: path: "../../../../../Program Files/Microsoft Visual Studio/2022/Community/VC/Tools/MSVC/14.42.34433/include/algorithm"
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recent_file: path: "../../../../../Program Files/Microsoft Visual Studio/2022/Community/VC/Tools/MSVC/14.42.34433/include/xutility"
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recent_file: path: "src/main.cpp"
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target:
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target:
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{
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{
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executable: "bin/main.exe"
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executable: "bin/main.exe"
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working_directory: "bin/"
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working_directory: bin
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label: main
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label: main
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enabled: 1
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enabled: 1
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}
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}
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@@ -7,6 +7,8 @@
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#include "sync.h"
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#include "sync.h"
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#include "rand.h"
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#include "rand.h"
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using namespace sync;
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namespace genetic {
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namespace genetic {
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template <class T> struct Array;
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template <class T> struct Array;
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@@ -58,6 +60,8 @@ template <class T> struct Strategy {
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template<class T> struct Stats {
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template<class T> struct Stats {
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std::vector<T> best_cell;
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std::vector<T> best_cell;
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std::vector<float> best_cell_fitness;
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std::vector<float> best_cell_fitness;
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TimeSpan setup_time;
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TimeSpan run_time;
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};
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};
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struct CellTracker {
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struct CellTracker {
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@@ -80,6 +84,11 @@ template <class T> Array<T> make_array(int len) {
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}
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}
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template <class T> Stats<T> run(Strategy<T> strat) {
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template <class T> Stats<T> run(Strategy<T> strat) {
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Stats<T> stats;
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// ************* SETUP **************
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TimeSpan start_setup = now();
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// Create cells
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// Create cells
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Array<T> cells = make_array<T>(strat.num_cells);
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Array<T> cells = make_array<T>(strat.num_cells);
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for (int i = 0; i < cells.len; i++) cells[i] = strat.make_default_cell();
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for (int i = 0; i < cells.len; i++) cells[i] = strat.make_default_cell();
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@@ -88,10 +97,10 @@ template <class T> Stats<T> run(Strategy<T> strat) {
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Array<CellTracker> trackers = make_array<CellTracker>(strat.num_cells);
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Array<CellTracker> trackers = make_array<CellTracker>(strat.num_cells);
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for (int i = 0; i < trackers.len; i++) trackers[i] = { .score=0, .cellid=i };
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for (int i = 0; i < trackers.len; i++) trackers[i] = { .score=0, .cellid=i };
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// Init stat tracker
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stats.setup_time = now() - start_setup;
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Stats<T> stats;
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// Run the algorithm
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// *********** ALGORITHM ************
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TimeSpan start_algo = now();
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for (int gen = 0; gen < strat.num_generations; gen++) {
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for (int gen = 0; gen < strat.num_generations; gen++) {
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// 1. mutate
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// 1. mutate
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for (int i = 0; i < trackers.len; i++) {
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for (int i = 0; i < trackers.len; i++) {
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@@ -101,24 +110,29 @@ template <class T> Stats<T> run(Strategy<T> strat) {
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}
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}
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// 2. crossover
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// 2. crossover
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if (strat.enable_crossover) {
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if (strat.enable_crossover) {
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int parent_end = strat.crossover_parent_num;
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int npar = strat.crossover_parent_num;
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int child_begin = trackers.len-strat.crossover_children_num;
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int nchild = strat.crossover_children_num;
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int parent_end = npar;
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int child_begin = trackers.len-nchild;
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Array<T*> parents = make_array<T*>(npar);
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Array<T*> children = make_array<T*>(nchild);
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while (parent_end <= child_begin) {
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while (parent_end <= child_begin) {
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// Get pointers to all the parent cells
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// Get pointers to all the parent cells
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Array<T*> parents = make_array<T*>(strat.crossover_parent_num);
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for (int i = parent_end-npar; i < parent_end; i++) {
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for (int i = parent_end-strat.crossover_parent_num; i < parent_end; i++) {
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parents[i - (parent_end-npar)] = &cells[trackers[i].cellid];
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parents[i] = &cells[trackers[i].cellid];
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}
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}
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// Get pointers to all the child cells (these will be overwritten)
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// Get pointers to all the child cells (these will be overwritten)
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Array<T*> children = make_array<T*>(strat.crossover_children_num);
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for (int i = child_begin; i < child_begin+nchild; i++) {
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for (int i = child_begin; i < child_begin+strat.crossover_children_num; i++) {
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children[i-child_begin] = &cells[trackers[i].cellid];
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children[i] = &cells[trackers[i].cellid];
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}
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}
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strat.crossover(parents, children);
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strat.crossover(parents, children);
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parent_end += strat.crossover_parent_stride;
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parent_end += strat.crossover_parent_stride;
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child_begin -= strat.crossover_children_num;
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child_begin -= nchild;
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}
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}
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free(parents.data);
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free(children.data);
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}
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}
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// 3. evaluate
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// 3. evaluate
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if (strat.test_all) {
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if (strat.test_all) {
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@@ -133,12 +147,13 @@ template <class T> Stats<T> run(Strategy<T> strat) {
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}
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}
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}
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}
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// 4. sort
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// 4. sort
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std::sort(&trackers[0], &trackers[trackers.len-1], [strat](CellTracker &a, CellTracker &b){ return strat.higher_fitness_is_better ? a.score < b.score : a.score > b.score; });
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std::sort(&trackers[0], &trackers[trackers.len-1], [strat](CellTracker &a, CellTracker &b){ return strat.higher_fitness_is_better ? a.score > b.score : a.score < b.score; });
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printf("Gen: %d, Best Score: %f\n", gen, trackers[0].score);
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printf("Gen: %d, Best Score: %f\n", gen, trackers[0].score);
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stats.best_cell.push_back(cells[trackers[0].cellid]);
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stats.best_cell.push_back(cells[trackers[0].cellid]);
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stats.best_cell_fitness.push_back(trackers[0].score);
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stats.best_cell_fitness.push_back(trackers[0].score);
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}
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}
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stats.run_time = now() - start_algo;
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return stats;
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return stats;
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}
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}
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35
src/main.cpp
35
src/main.cpp
@@ -6,19 +6,19 @@
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using namespace genetic;
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using namespace genetic;
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const int len = 10;
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const int len = 12;
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const float max_float = 9999.9f;
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const float max_float = 999.9f;
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static uint64_t seed = 12;
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static uint64_t seed = 12;
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static float num_mutate_chance = 0.5;
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static float num_mutate_chance = 0.5;
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static int num_parents = 2;
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static int num_parents = 2;
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static int num_children = 2;
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static int num_children = 2;
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static int target_sum = 200;
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static int target_sum = 20000;
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static int target_product = 300;
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static int target_product = 10*target_sum;
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Array<float> make_new_arr() {
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Array<float> make_new_arr() {
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Array<float> arr = { (float*)malloc(sizeof(float)*len), len };
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Array<float> arr = make_array<float>(len);
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for (int i = 0; i < arr.len; i++) {
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for (int i = 0; i < arr.len; i++) {
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arr[i] = norm_rand(seed) * max_float;
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arr[i] = norm_rand(seed) * max_float;
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}
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}
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@@ -50,15 +50,16 @@ float fitness(const Array<float> &cell) {
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sum += cell.data[i];
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sum += cell.data[i];
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product *= cell.data[i];
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product *= cell.data[i];
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}
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}
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return abs(sum - target_sum) + abs(product - target_product);
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return abs(sum - target_sum)*abs(sum - target_sum) + abs(product - target_product);
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}
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}
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int main(int argc, char **argv) {
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int main(int argc, char **argv) {
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int num_gens = 2000;
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Strategy<Array<float>> strat {
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Strategy<Array<float>> strat {
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.num_threads = 1,
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.num_threads = 1,
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.batch_size = 1,
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.batch_size = 1,
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.num_cells = 10,
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.num_cells = 100000,
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.num_generations = 10,
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.num_generations = num_gens,
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.test_all = true,
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.test_all = true,
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.test_chance = 0.0, // doesn't matter
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.test_chance = 0.0, // doesn't matter
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.enable_crossover = true,
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.enable_crossover = true,
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@@ -66,7 +67,7 @@ int main(int argc, char **argv) {
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.crossover_parent_stride = 1,
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.crossover_parent_stride = 1,
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.crossover_children_num = 2,
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.crossover_children_num = 2,
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.enable_mutation = true,
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.enable_mutation = true,
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.mutation_chance = 0.8,
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.mutation_chance = 0.7,
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.rand_seed = seed,
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.rand_seed = seed,
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.higher_fitness_is_better = false,
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.higher_fitness_is_better = false,
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.make_default_cell=make_new_arr,
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.make_default_cell=make_new_arr,
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@@ -76,4 +77,20 @@ int main(int argc, char **argv) {
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};
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};
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auto res = run(strat);
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auto res = run(strat);
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float sum = 0;
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float product = 1;
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printf("Winning cell: ");
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for (int i = 0; i < res.best_cell.back().len; i++) {
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float val = res.best_cell.back()[i];
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sum += val;
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product *= val;
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printf("%f ", val);
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}
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printf("\n");
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printf("Final Sum: %f\n", sum);
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printf("Final Product: %f\n", product);
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printf("Setup Time (s): %f\n", sync::to_s(res.setup_time));
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printf("Run Time (s): %f\n", sync::to_s(res.run_time));
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printf("Average Gen Time (s): %f\n", sync::to_s(res.run_time)/num_gens);
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}
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}
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