forked from s425077/PotatoPlan
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700979aded
BIN
Game1/Content/ML/MLmodel_Joel
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BIN
Game1/Content/ML/MLmodel_Joel
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Binary file not shown.
1048576
Game1/Content/ML/Rainfall.csv
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1048576
Game1/Content/ML/Rainfall.csv
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File diff suppressed because it is too large
Load Diff
@ -74,6 +74,7 @@ namespace Game1
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cropTypesNames[11] = "Wheat";
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Engine.init();
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//Sources.ML_Joel.Engine.CreateModel();
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@ -90,6 +90,10 @@
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<Compile Include="Sources\Crops\PerlinNoise.cs" />
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<Compile Include="Sources\Crops\SoilProperties.cs" />
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<Compile Include="Sources\ML\Engine.cs" />
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<Compile Include="Sources\ML_Joel\DataModel\Input.cs" />
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<Compile Include="Sources\ML_Joel\DataModel\Output.cs" />
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<Compile Include="Sources\ML_Joel\Engine.cs" />
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<Compile Include="Sources\ML_Joel\Model.cs" />
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<Compile Include="Sources\Objects\DayNightCycle.cs" />
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<Compile Include="Sources\Objects\Fertilizer.cs" />
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<Compile Include="Sources\Objects\FertilizerHolder.cs" />
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@ -9,7 +9,12 @@ namespace Game1.Sources.ML_Joel
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{
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class Output
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{
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[ColumnName("PredictedLabel")]
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//[ColumnName("PredictedLabel")]
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public float Prediction { get; set; }
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public float Score { get; set; }
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//[ColumnName("Score")]
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// public float[] Score { get; set; }
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}
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}
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44
Game1/Sources/ML_Joel/Engine.cs
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44
Game1/Sources/ML_Joel/Engine.cs
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@ -0,0 +1,44 @@
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using System;
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using System.Collections.Generic;
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using System.Linq;
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using System.Text;
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using System.Threading.Tasks;
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using Microsoft.ML;
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namespace Game1.Sources.ML_Joel
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{
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static class Engine
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{
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private static MLContext mlContext = new MLContext(seed: 1);
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private static PredictionEngine<ModelInput, ModelOutput> PredictionEngine;
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public static void CreateModel()
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{
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Model.CreateModel();
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}
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public static void init()
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{
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PredictionEngine = MLModel.CreateEngine();
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}
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public static string PredictFertilizer(Crops crop, CropTypes cropTypes)
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{
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ModelInput modelInput = new ModelInput
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{
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Temperature = crop.getSoilProperties().Temperature,
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Humidity = crop.getSoilProperties().Humidity,
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Moisture = crop.getSoilProperties().Moisture,
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Soil_Type = crop.getSoilProperties().soilType,
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Crop_Type = cropTypes.CropName,
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Nitrogen = crop.getSoilProperties().Nitrogen,
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Potassium = crop.getSoilProperties().Potassium,
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Phosporous = crop.getSoilProperties().Phosphorous
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};
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return PredictionEngine.Predict(modelInput).Prediction;
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}
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}
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}
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@ -13,56 +13,75 @@ namespace Game1.Sources.ML_Joel
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class Model
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{
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private static MLContext mlContext = new MLContext(seed: 1);
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/*
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private static string path = "C:/Users/Joel/source/repos/Oskars Repo/Game1/Content/ML/Rainfall.csv";
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private static string modelpath = "C:/Users/Joel/source/repos/Oskars Repo/Game1/Content/ML/MLmodel_Joel";
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private static string report = "C:/Users/Joel/source/repos/Oskars Repo/Game1/Content/ML/report_Joel";
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*/
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private static string path = "C:/Users/Oskar/source/repos/PotatoPlanFinal/Game1/Content/ML/Rainfall.csv";
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private static string modelpath = "C:/Users/Oskar/source/repos/PotatoPlanFinal/Game1/Content/ML/MLmodel_Joel";
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private static string report = "C:/Users/Oskar/source/repos/PotatoPlanFinal/Game1/Content/ML/report_Joel";
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// Loading data, creatin and saving ML model for smaller dataset (100)
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public static void CreateModel()
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{
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IDataView trainingDataView = mlContext.Data.LoadFromTextFile<ModelInput>(
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IDataView trainingDataView = mlContext.Data.LoadFromTextFile<Input>(
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path: path,
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hasHeader: true,
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separatorChar: ',',
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allowQuoting: true,
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allowSparse: false);
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ModelInput sample = mlContext.Data.CreateEnumerable<ModelInput>(trainingDataView, false).ElementAt(0);
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ITransformer MLModel = BuildAndTrain(mlContext, trainingDataView, sample, report);
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var splitData = mlContext.Data.TrainTestSplit(trainingDataView, testFraction: 0.2);
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trainingDataView = splitData.TrainSet;
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IDataView testDataView = splitData.TestSet;
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Input sample = mlContext.Data.CreateEnumerable<Input>(trainingDataView, false).ElementAt(0);
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ITransformer MLModel = BuildAndTrain(mlContext, trainingDataView, testDataView, sample, report);
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SaveModel(mlContext, MLModel, modelpath, trainingDataView.Schema);
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}
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// Building and training ML model, very small dataset (100 entries)
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public static ITransformer BuildAndTrain(MLContext mLContext, IDataView trainingDataView, ModelInput sample, string reportPath)
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// Building and training ML model
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public static ITransformer BuildAndTrain(MLContext mLContext, IDataView trainingDataView, IDataView testDataView, Input sample, string reportPath)
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{
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var options = new LightGbmMulticlassTrainer.Options
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var options = new LightGbmRegressionTrainer.Options
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{
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MaximumBinCountPerFeature = 8,
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LearningRate = 0.00025,
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NumberOfIterations = 40000,
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NumberOfLeaves = 10,
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LabelColumnName = "Fertilizer_NameF",
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MaximumBinCountPerFeature = 40,
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LearningRate = 0.00020,
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NumberOfIterations = 50000,
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NumberOfLeaves = 55,
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LabelColumnName = "Production",
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FeatureColumnName = "Features",
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//EarlyStoppingRound = 20,
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//UseCategoricalSplit = true,
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//L2CategoricalRegularization = 1,
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//CategoricalSmoothing = 1,
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Booster = new DartBooster.Options()
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{
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MaximumTreeDepth = 10
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MaximumTreeDepth = 20
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}
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};
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var pipeline = mlContext.Transforms
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.Text.FeaturizeText("Soil_TypeF", "Soil_Type")
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.Append(mlContext.Transforms.Text.FeaturizeText("Crop_TypeF", "Crop_Type"))
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.Append(mlContext.Transforms.Concatenate("Features", "Temperature", "Humidity", "Moisture", "Soil_TypeF", "Crop_TypeF", "Nitrogen", "Potassium", "Phosphorous"))
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.Append(mlContext.Transforms.Conversion.MapValueToKey("Fertilizer_NameF", "Fertilizer_Name"), TransformerScope.TrainTest)
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.AppendCacheCheckpoint(mLContext)
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.Append(mLContext.MulticlassClassification.Trainers.LightGbm(options))
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.Append(mlContext.Transforms.Conversion.MapKeyToValue("PredictedLabel", "PredictedLabel"));
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.Text.FeaturizeText("SeasonF", "Season")
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.Append(mlContext.Transforms.Text.FeaturizeText("CropF", "Crop"))
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.Append(mlContext.Transforms.Concatenate("Features", "SeasonF", "CropF", "Rainfall"))
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//.Append(mlContext.Transforms.Conversion.MapValueToKey("ProductionF", "Production"), TransformerScope.TrainTest)
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//.AppendCacheCheckpoint(mLContext)
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.Append(mLContext.Regression.Trainers.LightGbm(options));
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//.Append(mlContext.Transforms.Conversion.MapKeyToValue("PredictedLabel", "PredictedLabel"));
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//Evaluate(mlContext, trainingDataView, pipeline, 10, reportPath, "ProductionF");
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//var Evaluate = mlContext.Regression.CrossValidate(trainingDataView, pipeline, numberOfFolds: 100, labelColumnName: "Production");
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//var Evaluate = mlContext.Regression.Evaluate(testDataView, labelColumnName: "Production", scoreColumnName: "Score");
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//var metricsInMultipleFolds = Evaluate.Select(r => r.Metrics);
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Evaluate(mlContext, trainingDataView, pipeline, 10, reportPath, "Fertilizer_NameF");
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ITransformer MLModel = pipeline.Fit(trainingDataView);
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var testEval = MLModel.Transform(testDataView);
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var Evaluate = mlContext.Regression.Evaluate(testEval, labelColumnName: "Production");
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return MLModel;
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}
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@ -104,10 +123,10 @@ namespace Game1.Sources.ML_Joel
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return mlContext.Model.Load(modelpath, out DataViewSchema inputSchema);
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}
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public static Microsoft.ML.PredictionEngine<ModelInput, ModelOutput> CreateEngine()
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public static Microsoft.ML.PredictionEngine<Input, Output> CreateEngine()
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{
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ITransformer mlModel = LoadModel(false);
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return mlContext.Model.CreatePredictionEngine<ModelInput, ModelOutput>(mlModel);
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return mlContext.Model.CreatePredictionEngine<Input, Output>(mlModel);
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}
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}
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@ -16,72 +16,72 @@ class FertilizerHolder
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{
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ID = 999,
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Name = "None",
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Nitrogen = 0.0f / 5,
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Phosphorus = 0 * 0.436f / 5,
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Potassium = 0 * 0.83f / 5
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Nitrogen = 0.0f / 2,
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Phosphorus = 0 * 0.436f / 2,
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Potassium = 0 * 0.83f / 2
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};
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FertilizerType[1] = new Fertilizer
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{
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ID = 0,
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Name = "10-26-26",
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Nitrogen = 10.0f / 5,
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Phosphorus = 26 * 0.436f / 5,
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Potassium = 26 * 0.83f / 5
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Nitrogen = 10.0f / 2,
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Phosphorus = 26 * 0.436f / 2,
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Potassium = 26 * 0.83f / 2
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};
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FertilizerType[2] = new Fertilizer
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{
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ID = 1,
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Name = "14-35-14",
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Nitrogen = 14.0f / 5,
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Phosphorus = 35 * 0.436f / 5,
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Potassium = 14 * 0.83f / 5
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Nitrogen = 14.0f / 2,
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Phosphorus = 35 * 0.436f / 2,
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Potassium = 14 * 0.83f / 2
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};
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FertilizerType[3] = new Fertilizer
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{
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ID = 2,
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Name = "17-17-17",
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Nitrogen = 17.0f / 5,
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Phosphorus = 17 * 0.436f / 5,
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Potassium = 17 * 0.83f / 5
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Nitrogen = 17.0f / 2,
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Phosphorus = 17 * 0.436f / 2,
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Potassium = 17 * 0.83f / 2
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};
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FertilizerType[4] = new Fertilizer
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{
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ID = 3,
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Name = "20-20",
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Nitrogen = 20.0f / 5,
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Phosphorus = 20 * 0.436f / 5,
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Potassium = 0 * 0.83f / 5
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Nitrogen = 20.0f / 2,
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Phosphorus = 20 * 0.436f / 2,
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Potassium = 0 * 0.83f / 2
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};
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FertilizerType[5] = new Fertilizer
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{
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ID = 4,
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Name = "28-28",
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Nitrogen = 28.0f / 5,
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Phosphorus = 28 * 0.436f / 5,
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Potassium = 0 * 0.83f / 5
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Nitrogen = 28.0f / 2,
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Phosphorus = 28 * 0.436f / 2,
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Potassium = 0 * 0.83f / 2
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};
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FertilizerType[6] = new Fertilizer
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{
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ID = 5,
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Name = "DAP",
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Nitrogen = 18.0f / 5,
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Phosphorus = 46 * 0.436f / 5,
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Potassium = 0 * 0.83f / 5
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Nitrogen = 18.0f / 2,
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Phosphorus = 46 * 0.436f / 2,
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Potassium = 0 * 0.83f / 2
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};
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FertilizerType[7] = new Fertilizer
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{
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ID = 6,
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Name = "Urea",
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Nitrogen = 46.0f / 5,
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Phosphorus = 0 * 0.436f / 5,
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Potassium = 0 * 0.83f / 5
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Nitrogen = 46.0f / 2,
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Phosphorus = 0 * 0.436f / 2,
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Potassium = 0 * 0.83f / 2
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};
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}
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*/
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@ -89,72 +89,72 @@ class FertilizerHolder
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{
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ID = 999,
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Name = "None",
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Nitrogen = 0.0f / 5,
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Phosphorus = 0 * 0.436f / 5,
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Potassium = 0 * 0.83f / 5
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Nitrogen = 0.0f / 2,
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Phosphorus = 0 * 0.436f / 2,
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Potassium = 0 * 0.83f / 2
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};
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FertilizerType[1] = new Fertilizer
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{
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ID = 0,
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Name = "10-26-26",
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Nitrogen = 17.21f / 5,
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Phosphorus = 12.14f / 5,
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Potassium = 0.64f / 5
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Nitrogen = 17.21f / 2,
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Phosphorus = 12.14f / 2,
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Potassium = 0.64f / 2
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};
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FertilizerType[2] = new Fertilizer
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{
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ID = 1,
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Name = "14-35-14",
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Nitrogen = 16.89f / 5,
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Phosphorus = 6.21f / 5,
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Potassium = 5.21f / 5
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Nitrogen = 16.89f / 2,
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Phosphorus = 6.21f / 2,
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Potassium = 5.21f / 2
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};
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FertilizerType[3] = new Fertilizer
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{
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ID = 2,
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Name = "17-17-17",
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Nitrogen = 14.92f / 5,
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Phosphorus = 14.42f / 5,
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Potassium = 3.0f / 5
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Nitrogen = 14.92f / 2,
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Phosphorus = 14.42f / 2,
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Potassium = 3.0f / 2
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};
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FertilizerType[4] = new Fertilizer
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{
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ID = 3,
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Name = "20-20",
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Nitrogen = 15.39f / 5,
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Phosphorus = 15.21f / 5,
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Potassium = 9.5f / 5
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Nitrogen = 15.39f / 2,
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Phosphorus = 15.21f / 2,
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Potassium = 9.5f / 2
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};
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FertilizerType[5] = new Fertilizer
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{
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ID = 4,
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Name = "28-28",
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Nitrogen = 9.67f / 5,
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Phosphorus = 10.47f / 5,
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Potassium = 9.5f / 5
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Nitrogen = 9.67f / 2,
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Phosphorus = 10.47f / 2,
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Potassium = 9.5f / 2
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};
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FertilizerType[6] = new Fertilizer
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{
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ID = 5,
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Name = "DAP",
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Nitrogen = 14.52f / 5,
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Phosphorus = 1.77f / 5,
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Potassium = 9.5f / 5
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Nitrogen = 14.52f / 2,
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Phosphorus = 1.77f / 2,
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Potassium = 9.5f / 2
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};
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FertilizerType[7] = new Fertilizer
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{
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ID = 6,
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Name = "Urea",
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Nitrogen = 1.81f / 5,
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Phosphorus = 21.0f / 5,
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Potassium = 9.5f / 5
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Nitrogen = 1.81f / 2,
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Phosphorus = 21.0f / 2,
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Potassium = 9.5f / 2
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};
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}
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|
@ -7,7 +7,7 @@ using System.Threading.Tasks;
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class Cargo
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{
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private Items[,] items = new Items[2, 351];
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private Items[,] items = new Items[2, 281];
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private int[] Count = new int[2];
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@ -11,7 +11,7 @@ using Microsoft.Xna.Framework.Input;
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class Inventory
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{
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private int Weight = 0;
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private int maxWeight = 350;
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private int maxWeight = 280;
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private int[] totalHarvested = new int[11];
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private int[] totalFertilizerUsed = new int[8];
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private Cargo cargo = new Cargo();
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@ -54,11 +54,16 @@ class AI
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int testsize = 2;
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Path newTarget;
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Nodes nodes;
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Random random = new Random();
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if (astar.GetAdjacentNodes(tractorPos).Count == 0)
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nodes = new Nodes(housePos);
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else
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nodes = astar.GetAdjacentNodes(tractorPos)[0];
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{
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List<Nodes> templist = astar.GetAdjacentNodes(tractorPos);
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nodes = templist[random.Next(0, templist.Count())];
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templist.Clear();
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}
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if (tractorPos != housePos)
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if (inventory.getWeight() == inventory.getMaxWeight() || inventory.isMissingFertilizer())
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@ -168,7 +173,7 @@ class AI
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saturationScore = -100;
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}
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return score + (-aproxDistance * 5) + statusScore + timerScore + saturationScore;
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return score + (-aproxDistance * 10) + statusScore + timerScore + saturationScore;
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}
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private float norm(float min, float max, float val)
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||||
|
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