175 lines
7.2 KiB
Java
175 lines
7.2 KiB
Java
package net.berack.upo.valpre;
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import java.util.List;
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import java.util.function.BiFunction;
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import net.berack.upo.valpre.rand.Distribution;
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import net.berack.upo.valpre.sim.Net;
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import net.berack.upo.valpre.sim.ServerNode;
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import net.berack.upo.valpre.sim.SimulationMultiple;
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import net.berack.upo.valpre.sim.stats.CsvResult;
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import net.berack.upo.valpre.sim.stats.Result;
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/**
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* This class provides two example networks.
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* The first network is composed of a terminal node and a queue node.
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* The second network is composed of a terminal node and two queue nodes.
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*/
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public final class NetExamples {
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/**
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* Main method to test the networks.
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* The first network will have the distribution changed but the mean will be the
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* same. The second network will have the distribution changed but the mean will
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* be the same. The results will be saved to a csv file.
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*
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* @param args not needed
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* @throws Exception if the simulation fails or the file is not saved
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*/
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public static void main(String[] args) throws Exception {
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var seed = 123456789L;
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runNet(seed, 3.2, 1, "net1.csv", (spawn, dist) -> {
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var name = dist.getClass().getSimpleName() + "_" + spawn;
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return NetExamples.getNet1(spawn, name, dist);
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});
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runNet(seed, 1 / 3.5, 2, "net2.csv", (spawn, dist) -> {
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var name = dist.getClass().getSimpleName() + "_" + spawn;
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return NetExamples.getNet2(spawn, name, dist);
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});
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}
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/**
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* Method to test whatever network you input.
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* The network will have the distribution changed but the mean will be the same.
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* The bifunction requested is to get the network you want to test passing the
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* spawn and the distribution with the same mean.
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* The network will be tested with spawn totals of 1, 2, 5, 7, 10, 25, 50, 75,
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* 100, 250, 500, 750, 1000, 1500, 2000.
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* The results will be saved to a csv passed as argument.
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*
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* @param seed the seed for the simulation
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* @param avg the mean of the distribution
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* @param nodeToWatch the node to watch
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* @param csv the file to save the results
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* @param getNet the bifunction to get the network
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* @throws Exception if the simulation fails or the file is not saved
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*/
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public static void runNet(long seed, double avg, int nodeToWatch, String csv,
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BiFunction<Integer, Distribution, Net> getNet) throws Exception {
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var build = new Result.Builder().seed(seed);
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var spawnTotals = new int[] { 1, 2, 5, 7, 10, 25, 50, 75, 100, 250, 500, 750, 1000, 1500, 2000 };
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var normal = new Distribution.NormalBoxMuller(avg, 0.6);
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var exponential = new Distribution.Exponential(1 / avg);
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var erlang = new Distribution.Erlang(5, 5 / avg);
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var uniform = new Distribution.Uniform(avg - (avg * 0.1), avg + (avg * 0.1));
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var hyper = new Distribution.HyperExponential(
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new double[] { 1 / (avg * 0.5), 1 / (avg * 1.5) },
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new double[] { 0.5f, 0.5f });
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System.out.println("Normal: " + normal.mean);
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System.out.println("Uniform: " + uniform.min + " - " + uniform.max);
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for (var spawn : spawnTotals) {
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System.out.println("Spawn: " + spawn);
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var nets = new Net[] {
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getNet.apply(spawn, normal),
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getNet.apply(spawn, exponential),
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getNet.apply(spawn, erlang),
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getNet.apply(spawn, uniform),
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getNet.apply(spawn, hyper),
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};
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for (var net : nets) {
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var summary = new SimulationMultiple(net).runParallel(build.seed, 1000);
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var name = net.getNode(nodeToWatch).name;
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var stat = summary.getSummaryOf(name).average;
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build.addNode(name, stat);
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}
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}
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var result = build.build();
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new CsvResult(csv).saveResults(List.of(result));
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System.out.println("Results saved to " + csv);
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}
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/**
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* Return the first example network.
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* The net is composed of a terminal node and a queue node.
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* The terminal node generates 10000 jobs with an exponential distribution 4.5.
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* The queue node has a capacity of 1 and a service time of 3.2 with a standard
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* deviation of 0.6.
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*
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* @return the first example network
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*/
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public static Net getNet1() {
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var norm3_2 = new Distribution.NormalBoxMuller(3.2, 0.6);
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return getNet1(10000, "Queue", norm3_2);
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}
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/**
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* Return the first example network.
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* The net is composed of a terminal node and a queue node.
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* The terminal node is connected to the queue node.
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* The terminal node generates N jobs with an exponential distribution 4.5.
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*
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* @param spawn the number of jobs to generate
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* @param name the name of the queue node
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* @param queue the distribution of the queue node
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* @return the first example network
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*/
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public static Net getNet1(int spawn, String name, Distribution queue) {
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var source = new Distribution.Exponential(1.0 / 4.5);
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var net1 = new Net();
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net1.addNode(ServerNode.Builder.terminal("Source", spawn, source));
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net1.addNode(ServerNode.Builder.queue(name, 1, queue));
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net1.addConnection(0, 1, 1.0);
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return net1;
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}
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/**
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* Return the second example network.
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* The net is composed of a terminal node and two queue nodes.
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* The terminal node generates 10000 jobs with an exponential distribution 1.5.
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* The first queue node has a capacity of 1 and a service time of 2.0.
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* The second queue node has a capacity of 1 and a service time of 3.5.
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* The second queue node has an unavailable time of 0.1 with an exponential
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* distribution of 10.0.
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* The terminal node is connected to the first queue node.
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* The first queue node is connected to the second queue node.
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*
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* @return the second example network
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*/
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public static Net getNet2() {
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var exp3_5 = new Distribution.Exponential(3.5);
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return getNet2(10000, "Service2", exp3_5);
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}
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/**
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* Return the second example network.
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* The net is composed of a terminal node and two queue nodes.
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* The terminal node is connected to the first queue node.
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* The first queue node is connected to the second queue node.
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*
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* @param spawn the number of jobs to generate
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* @param name the name of the second queue node
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* @param service2 the distribution of the second queue node
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* @return the second example network
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*/
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public static Net getNet2(int spawn, String name, Distribution service2) {
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var exp1_5 = new Distribution.Exponential(1.5);
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var exp2 = new Distribution.Exponential(2.0);
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var exp10 = new Distribution.Exponential(10.0);
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var unExp = new Distribution.UnavailableTime(0.1, exp10);
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var net3 = new Net();
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net3.addNode(ServerNode.Builder.terminal("Source", spawn, exp1_5));
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net3.addNode(ServerNode.Builder.queue("Service", 1, exp2));
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net3.addNode(ServerNode.Builder.queue(name, 1, service2, unExp));
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net3.addConnection(0, 1, 1.0);
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net3.addConnection(1, 2, 1.0);
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return net3;
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}
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}
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