Literature DB >> 33817036

BCD-WERT: a novel approach for breast cancer detection using whale optimization based efficient features and extremely randomized tree algorithm.

Shafaq Abbas1, Zunera Jalil2, Abdul Rehman Javed2, Iqra Batool1, Mohammad Zubair Khan3, Abdulfattah Noorwali4, Thippa Reddy Gadekallu5, Aqsa Akbar1.   

Abstract

Breast cancer is one of the leading causes of death in the current age. It often results in subpar living conditions for a patient as they have to go through expensive and painful treatments to fight this cancer. One in eight women all over the world is affected by this disease. Almost half a million women annually do not survive this fight and die from this disease. Machine learning algorithms have proven to outperform all existing solutions for the prediction of breast cancer using models built on the previously available data. In this paper, a novel approach named BCD-WERT is proposed that utilizes the Extremely Randomized Tree and Whale Optimization Algorithm (WOA) for efficient feature selection and classification. WOA reduces the dimensionality of the dataset and extracts the relevant features for accurate classification. Experimental results on state-of-the-art comprehensive dataset demonstrated improved performance in comparison with eight other machine learning algorithms: Support Vector Machine (SVM), Random Forest, Kernel Support Vector Machine, Decision Tree, Logistic Regression, Stochastic Gradient Descent, Gaussian Naive Bayes and k-Nearest Neighbor. BCD-WERT outperformed all with the highest accuracy rate of 99.30% followed by SVM achieving 98.60% accuracy. Experimental results also reveal the effectiveness of feature selection techniques in improving prediction accuracy.
© 2021 Abbas et al.

Entities:  

Keywords:  Breast cancer; Machine learning; Support vector machine; Whale optimization algorithm

Year:  2021        PMID: 33817036      PMCID: PMC7959601          DOI: 10.7717/peerj-cs.390

Source DB:  PubMed          Journal:  PeerJ Comput Sci        ISSN: 2376-5992


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