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Breast cancer diagnosis: a survey of pre-processing, segmentation, feature extraction and classification

Sadeghi Pour, EhsanEsmaeili, MahdiRomoozi, Morteza
International Journal of Electrical and Computer Engineering (IJECE) (Sinta 1)Vol. 0 No. 01 Desember 2022
DOI10.11591/ijece.v12i6.pp6397-6409

Abstrak

Machine learning methods have been an interesting method in the field of medical for many years, and they have achieved successful results in various fields of medical science. This paper examines the effects of using machine learning algorithms in the diagnosis and classification of breast cancer from mammography imaging data. Cancer diagnosis is the identification of images as cancer or non-cancer, and this involves image preprocessing, feature extraction, classification, and performance analysis. This article studied 93 different references mentioned in the previous years in the field of processing and tries to find an effective way to diagnose and classify breast cancer. Based on the results of this research, it can be concluded that most of today’s successful methods focus on the use of deep learning methods. Finding a new method requires an overview of existing methods in the field of deep learning methods in order to make a comparison and case study.

Kata Kunci

Breast cancer classificationBreast cancer diagnosisDeep learningMachine learningMammography

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Breast cancer diagnosis: a survey of pre-processing, segmentation, feature extraction and classification | International Journal of Electrical and Computer Engineering (IJECE) | Publiora