add mlflow
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@ -17,9 +17,9 @@ predictions = model.predict(X_test)
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with open("predictions.txt", "w") as f:
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f.write(str(predictions))
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accuracy = root_mean_squared_error(y_test, predictions)
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rmse = root_mean_squared_error(y_test, predictions)
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with open("rmse.txt", 'a') as file:
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file.write(str(accuracy)+"\n")
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file.write(str(rmse)+"\n")
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with open("rmse.txt", 'r') as file:
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lines = file.readlines()
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@ -3,3 +3,4 @@ scikit-learn
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tensorflow
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numpy
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matplotlib
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mlflow
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13
train.py
13
train.py
@ -2,7 +2,9 @@ import pandas as pd
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from tensorflow import keras
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from tensorflow.keras import layers
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import argparse
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import mlflow
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import mlflow.sklearn
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mlflow.set_experiment("s464980")
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class RegressionModel:
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def __init__(self, optimizer="adam", loss="mean_squared_error"):
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self.model = keras.Sequential([
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@ -26,7 +28,6 @@ class RegressionModel:
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self.y_test = data_test["Performance Index"]
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def train(self, epochs=30):
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self.model.compile(optimizer=self.optimizer, loss=self.loss)
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self.model.fit(self.X_train, self.y_train, epochs=epochs, batch_size=32, validation_data=(self.X_test, self.y_test))
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@ -37,6 +38,7 @@ class RegressionModel:
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def evaluate(self):
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test_loss = self.model.evaluate(self.X_test, self.y_test)
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print(f"Test Loss: {test_loss:.4f}")
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return test_loss
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def save_model(self):
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self.model.save("model.keras")
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@ -48,6 +50,9 @@ parser.add_argument('--epochs')
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args = parser.parse_args()
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model = RegressionModel()
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model.load_data("df_train.csv", "df_test.csv")
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model.train(epochs=int(args.epochs))
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model.evaluate()
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with mlflow.start_run() as run:
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model.train(epochs=int(args.epochs))
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rmse = model.evaluate()
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mlflow.log_param("epoch", int(args.epochs))
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mlflow.log_metric("rmse", rmse)
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model.save_model()
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