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Cithara Journal
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Freq.MonthlyJCI0.14
ISSN
0009-7527 QuartileQ3
Category
MultidisciplinaryCountry
USA
 
Editor-in-Chief
Prof. V. M. Bychkov
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B.C.. St. Bonaventure, NY 14778
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ST BONAVENTURE UNIV, ST BONAVENTURE, USA, NY, 14778
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DOI LINK: https://doi.org/10.59879/tnIyw
Paper ID:tnIyw
Volume:64
Issue:10
Title:A Hybrid Multistage Deep Learning System for Breast Cancer Classification
Abstract:Breast cancer is the second cancer-related death cause among women worldwide. Mammography is the main screening tool for breast cancer detection. This study introduces a simple yet effective deep-learning approach for distinguishing malignant from benign masses in mammography images. Utilizing unsupervised clustering algorithms to clear image noise, and preprocessing images with custom filters yielded exceptional outcomes for both digital and film scan images. The proposed methodology allowed us to build a robust model that achieved an accuracy of 96.6% overcoming the base model by 3%.
Keywords:Breast Cancer, Mammography, DDSM, MIAS, INbreast, Resnet, K-Means
Authors:Saad Alkentar1 , Abdulkareem Assalem2
Paper PDF Link: View full PDF