Breast cancer diagnosis using feature selection techniques

Sabrine Tounsi, Imen Kallel, Mohamed Kallel · 2022 2nd International Conference on Innovative Research in Applied Science, Engineering and Technology (IRASET) · 2022

This study focuses on feature selection for breast cancer diagnosis. Since the feature selection became a crucial task in machine learning, we will experiment some filter, wrapper approach and embedded approach on Wisconsin breast cancer dataset, which is commonly used by researchers who use machine-learning methods for breast cancer diagnosis. The performance of the feature selection method is evaluated by classification accuracy using two kinds of classifiers SVM and KNN.

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