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The goal of this code is to train and compare the performance of three popular classifiers (e.g., Logistic Regression, Random Forests, and Boosting) on a publicly available data set

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BinaryClassifier

The goal of this code is to train and compare the performance of three popular classifiers (e.g., Logistic Regression, Random Forests, and Boosting) on a publicly available data set.

Steps include: Feature extraction through statistics tests entropy-based feature selection, training, tuning hyper paramaters and testing classifiers and comparing the performance of the classifiers based on different metrics.

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The goal of this code is to train and compare the performance of three popular classifiers (e.g., Logistic Regression, Random Forests, and Boosting) on a publicly available data set

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