KERNEL-BASED NAIVE BAYES CLASSIFIER FOR BREAST CANCER PREDICTION

Author:

NAHAR JESMIN1,CHEN YI-PING PHOEBE1,ALI SHAWKAT2

Affiliation:

1. School of Engineering and Information Technology, Faculty of Science and Technology, Deakin University, 221 Burwood Highway, VIC 3125, Australia

2. School of Information Systems, Central Queensland University, QLD 4702, Australia

Abstract

The classification of breast cancer patients is of great importance in cancer diagnosis. Most classical cancer classification methods are clinical-based and have limited diagnostic ability. The recent advances in machine learning technique has made a great impact in cancer diagnosis. In this research, we develop a new algorithm: Kernel-Based Naive Bayes (KBNB) to classify breast cancer tumor based on memography data. The performance of the proposed algorithm is compared with that of classical navie bayes algorithm and kernel-based decision tree algorithm C4.5. The proposed algorithm is found to outperform in the both cases. We recommend the proposed algorithm could be used as a tool to classify the breast patient for early cancer diagnosis.

Publisher

World Scientific Pub Co Pte Lt

Subject

Applied Mathematics,Agricultural and Biological Sciences (miscellaneous),Ecology,Applied Mathematics,Agricultural and Biological Sciences (miscellaneous),Ecology

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