Breast cancer is becoming the major factor of death amongst women in the world. However, it is found that longer lifespan of this disease’s patients can be guaranteed through early detection and accurate diagnosis of this disease. When it comes to the treatment given to patients, a doctor needs to put his/her knowledge and experience in practice by specifying the source of the suspected disease (out of a list of the possible causes with similar symptoms). This is followed by confirming the diagnosis through a number of tests. Therefore, identifying the disease without receiving assistance from intelligence systems is time consuming. The objective of this study is to introduce the intelligence system which develops Random Binary Search algorithm-based feature selection in Mahalanobis Taguchi System (MTS). It is also with the purpose to validate the techniques of feature selection problems which are computationally efficient, and to apply Random Binary Search algorithm in solving medical classification problems. In this study, in order to improve the step of choosing the most useful variables, Random Binary Search (RBS) algorithm is proposed, which is incorporated between MTS. Besides being a relatively new statistical methodology where various mathematical concepts are combined, MTS is used in the field of diagnosis and classification in multidimensional systems. It is also a highly efficient method, and it has been utilized in a wide range of disciplines such as engineering, medical, financial, and more. Datasets of medical fields, which were concerning cancer, diabetes and hepatitis, were used in this study. Besides, binary class classification problems were also represented by these data sets.
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28 June 2018
PROCEEDING OF THE 25TH NATIONAL SYMPOSIUM ON MATHEMATICAL SCIENCES (SKSM25): Mathematical Sciences as the Core of Intellectual Excellence
27–29 August 2017
Pahang, Malaysia
Research Article|
June 28 2018
Random binary search algorithm based feature selection in Mahalanobis Taguchi system for breast cancer diagnosis
Wan Zuki Azman Wan Muhamad;
Wan Zuki Azman Wan Muhamad
a)
1
Institute of Engineering Mathematics, Universiti Malaysia Perlis
, Kampus Pauh Putra, 02600 Arau, Perlis, Malaysia
2
Genichi Taguchi Centre for Quality and Sustainability, UTM Razak School of Engineering and Advanced Technology Universiti Teknologi
Malaysia
a)Corresponding author: [email protected]
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Khairur Rijal Jamaludin;
2
Genichi Taguchi Centre for Quality and Sustainability, UTM Razak School of Engineering and Advanced Technology Universiti Teknologi
Malaysia
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Syafawati Ab. Saad;
1
Institute of Engineering Mathematics, Universiti Malaysia Perlis
, Kampus Pauh Putra, 02600 Arau, Perlis, Malaysia
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Zainor Ridzuan Yahya;
1
Institute of Engineering Mathematics, Universiti Malaysia Perlis
, Kampus Pauh Putra, 02600 Arau, Perlis, Malaysia
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Siti Aisyah Zakaria
1
Institute of Engineering Mathematics, Universiti Malaysia Perlis
, Kampus Pauh Putra, 02600 Arau, Perlis, Malaysia
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a)Corresponding author: [email protected]
AIP Conf. Proc. 1974, 020027 (2018)
Citation
Wan Zuki Azman Wan Muhamad, Khairur Rijal Jamaludin, Syafawati Ab. Saad, Zainor Ridzuan Yahya, Siti Aisyah Zakaria; Random binary search algorithm based feature selection in Mahalanobis Taguchi system for breast cancer diagnosis. AIP Conf. Proc. 28 June 2018; 1974 (1): 020027. https://doi.org/10.1063/1.5041558
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