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Artificial Intelligence-Based Breast and Cervical Cancer Diagnosis and Management System

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dc.contributor.author Zewde, Elbetel Taye
dc.contributor.author Degu, Mizanu Zelalem
dc.contributor.author Simegn, Gizeaddis Lamesgin
dc.date.accessioned 2023-11-27T12:03:39Z
dc.date.available 2023-11-27T12:03:39Z
dc.date.issued 2023-02-23
dc.identifier.uri https://repository.ju.edu.et//handle/123456789/8908
dc.description.abstract Breast cancer and cervical cancer are two of the most common and deadly malignancies in women. Early diagnosis and treatment can save lives and improve quality of life. However, there is a shortage of pathologists and physicians in most developing countries, including Ethiopia, preventing many breast and cer vical cancer patients from early cancer screening. Many women, particularly in low resource settings, have limited access to early diagnosis of breast and cervical cancer and receive poor treatment which in turn increases the morbidity and mor tality due to these cancers. In this paper, an integrated intelligent decision support system is proposed for the diagnosis and management of breast and cervical cancer using multimodal im-age data. The system includes breast cancer type, sub-type and grade classification, cervix type (transformation zone) detection and classifi cation, pap smear image classification, and histopathology-based cervical cancer type classification. In addition, patient registration, data retrieval, and storage as well as cancer statistical analysis mechanisms are integrated into the proposed system. A ResNet152 deep learning model was used for classification tasks and satisfactory results were achieved when testing the model. The developed system was deployed to an offline web page which has added the advantage of storing the digital medical images and the labeled results for future use by the physicians or other researchers en_US
dc.language.iso en_US en_US
dc.subject Breast cancer en_US
dc.subject Cervical cancer en_US
dc.subject Decision support system en_US
dc.subject Screening en_US
dc.subject Histopathological images en_US
dc.subject Cancer management en_US
dc.title Artificial Intelligence-Based Breast and Cervical Cancer Diagnosis and Management System en_US
dc.type Article en_US


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