Araştırma Makalesi

An Investigation on the Use of Clustering Algorithms for Data Preprocessing in Breast Cancer Diagnosis

Cilt: 13 Sayı: 1 26 Mart 2024
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An Investigation on the Use of Clustering Algorithms for Data Preprocessing in Breast Cancer Diagnosis

Abstract

Classification algorithms are commonly used as a decision support system for diagnosing many diseases, such as breast cancer. The accuracy of classification algorithms can be affected negatively if the data contains outliers and/or noisy data. For this reason, outlier detection methods are frequently used in this field. In this study, we propose and compare various models that use clustering algorithms to detect outliers in the data preprocessing stage of classification to investigate their effects on classification accuracy. Clustering algorithms such as DBSCAN, HDBSCAN, OPTICS, FuzzyCMeans, and MCMSTClustering (MCMST) were used separately in the data preprocessing stage of the k Nearest Neighbor (kNN) classification algorithm for outlier elimination, and then the results were compared. According to the obtained results, MCMST algorithm was more successful in outlier elimination. The classification accuracy of the kNN + MCMST model was 0.9834, which was the best one, while the accuracy of kNN algorithm without using any data preprocessing was 0.9719.

Keywords

Kaynakça

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Ayrıntılar

Birincil Dil

İngilizce

Konular

Karar Desteği ve Grup Destek Sistemleri

Bölüm

Araştırma Makalesi

Erken Görünüm Tarihi

26 Mart 2024

Yayımlanma Tarihi

26 Mart 2024

Gönderilme Tarihi

21 Eylül 2023

Kabul Tarihi

26 Şubat 2024

Yayımlandığı Sayı

Yıl 2024 Cilt: 13 Sayı: 1

Kaynak Göster

APA
Şenol, A., & Kaya, M. (2024). An Investigation on the Use of Clustering Algorithms for Data Preprocessing in Breast Cancer Diagnosis. Türk Doğa ve Fen Dergisi, 13(1), 70-77. https://doi.org/10.46810/tdfd.1364397
AMA
1.Şenol A, Kaya M. An Investigation on the Use of Clustering Algorithms for Data Preprocessing in Breast Cancer Diagnosis. TDFD. 2024;13(1):70-77. doi:10.46810/tdfd.1364397
Chicago
Şenol, Ali, ve Mahmut Kaya. 2024. “An Investigation on the Use of Clustering Algorithms for Data Preprocessing in Breast Cancer Diagnosis”. Türk Doğa ve Fen Dergisi 13 (1): 70-77. https://doi.org/10.46810/tdfd.1364397.
EndNote
Şenol A, Kaya M (01 Mart 2024) An Investigation on the Use of Clustering Algorithms for Data Preprocessing in Breast Cancer Diagnosis. Türk Doğa ve Fen Dergisi 13 1 70–77.
IEEE
[1]A. Şenol ve M. Kaya, “An Investigation on the Use of Clustering Algorithms for Data Preprocessing in Breast Cancer Diagnosis”, TDFD, c. 13, sy 1, ss. 70–77, Mar. 2024, doi: 10.46810/tdfd.1364397.
ISNAD
Şenol, Ali - Kaya, Mahmut. “An Investigation on the Use of Clustering Algorithms for Data Preprocessing in Breast Cancer Diagnosis”. Türk Doğa ve Fen Dergisi 13/1 (01 Mart 2024): 70-77. https://doi.org/10.46810/tdfd.1364397.
JAMA
1.Şenol A, Kaya M. An Investigation on the Use of Clustering Algorithms for Data Preprocessing in Breast Cancer Diagnosis. TDFD. 2024;13:70–77.
MLA
Şenol, Ali, ve Mahmut Kaya. “An Investigation on the Use of Clustering Algorithms for Data Preprocessing in Breast Cancer Diagnosis”. Türk Doğa ve Fen Dergisi, c. 13, sy 1, Mart 2024, ss. 70-77, doi:10.46810/tdfd.1364397.
Vancouver
1.Ali Şenol, Mahmut Kaya. An Investigation on the Use of Clustering Algorithms for Data Preprocessing in Breast Cancer Diagnosis. TDFD. 01 Mart 2024;13(1):70-7. doi:10.46810/tdfd.1364397

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