2021
DOI: 10.22266/ijies2021.0430.17
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The Use of Modified K-Means Algorithm to Enhance the Performance of Support Vector Machine in Classifying Breast Cancer

Abstract: Breast cancer has been recently considered as one of the broadly spread diseases that causes death among women. Early disease diagnosis is a critical aim in building the treatment policies and is extremely related to safety of patient. Therefore, there is a necessity for computer aided detection (CAD) in order to provide accurate and rapid diagnosis for breast cancer. Recently, many classification models utilizing machine learning approaches have been adopted and modified to diagnose breast cancer disease. Mor… Show more

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Cited by 12 publications
(5 citation statements)
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“…Preprocessing using K-Means clustering complements existing techniques for addressing overfitting in MLP models (Al-Yaseen et al, 2021). While techniques like regularization and dropout directly manipulate the model parameters, K-Means clustering focuses on transforming the input data, providing an additional layer of preprocessing to enhance model robustness and generalization (Andreoni Lopez et al, 2019).…”
Section: Preprocessing Using K-meansmentioning
confidence: 99%
“…Preprocessing using K-Means clustering complements existing techniques for addressing overfitting in MLP models (Al-Yaseen et al, 2021). While techniques like regularization and dropout directly manipulate the model parameters, K-Means clustering focuses on transforming the input data, providing an additional layer of preprocessing to enhance model robustness and generalization (Andreoni Lopez et al, 2019).…”
Section: Preprocessing Using K-meansmentioning
confidence: 99%
“…Al-Yaseen et al [14] introduced a novel breast cancer prediction model based on both the modified K-means and the support vector machine (SVM) algorithms. The newly developed model significantly outperforms the standalone SVM model in classification performance.…”
Section: Literature Surveymentioning
confidence: 99%
“…Pilihan paling terpopuler dalam pengelompoka data yaitu k-means namun memiliki sensitif terhadap poses inisiasi yang bertujuan untuk menemukan centroid awal yang optimal meski ada beberapa yang tegolong tidak valid secara menyeluruh [10]. Pengelompokan yang dilakukan untuk menemukan pola yang berarti dengan melakukan pengelompokan terhadap dataset yang serupa dari data yang tidak berlabel [11].…”
Section: A Mengidentifikasi Masalahunclassified