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. 2025 Sep;196(Pt B):110785.
doi: 10.1016/j.compbiomed.2025.110785. Epub 2025 Aug 1.

A RF-based end-to-end Breast Cancer Prediction algorithm

Affiliations

A RF-based end-to-end Breast Cancer Prediction algorithm

Khin Nandar Win. Comput Biol Med. 2025 Sep.

Abstract

Breast cancer became the primary cause of cancer-related deaths among women year by year. Early detection and accurate prediction of breast cancer play a crucial role in strengthening the quality of human life. Many scientists have concentrated on analyzing and conducting the development of many algorithms and progressing computer-aided diagnosis applications. Whereas many research have been conducted, feature research on cancer diagnosis is rare, especially regarding predicting the desired features by providing and feeding breast cancer features into the system. In this regard, this paper proposed a Breast Cancer Prediction (RF-BCP) algorithm based on Random Forest by taking inputs to predict cancer. For the experiment of the proposed algorithm, two datasets were utilized namely Breast Cancer dataset and a curated mammography dataset, and also compared the accuracy of the proposed algorithm with SVM, Gaussian NB, and KNN algorithms. Experimental results show that the proposed algorithm can predict well and outperform other existing machine learning algorithms to support decision-making.

Keywords: Algorithms; Breast cancer; Decision trees; Prediction; Random forest.

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Conflict of interest statement

Declaration of competing interest The authors declare that they have no known competing financial interests or personal relationships that could have appeared to influence the work reported in this paper.

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