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Machine learning techniques for breast cancer computer aided diagnosis using different image modalities: A systematic
Nisreen I R Yassin1, Shaimaa Omran1, Enas M F El Houby1
1Systems & Information Department, Engineering Research Division, National Research Centre, Dokki, Cairo 12311, Egypt.
Computer-aided diagnosis (CAD) systems enhance breast cancer detection. This systematic review analyzes current CAD technologies, focusing on image modalities and machine learning classifiers to improve diagnostic accuracy.
Area of Science:
- Medical Imaging
- Artificial Intelligence in Healthcare
- Oncology
Background:
- Increasing incidence of breast cancer necessitates advanced diagnostic tools.
- Physician expertise in breast cancer diagnosis can be augmented by computational methods.
- Computer-aided diagnosis/detection (CAD) systems offer potential for improved accuracy.
Purpose of the Study:
- To conduct a systematic review of the state-of-the-art in computer-aided diagnosis/detection (CAD) systems for breast cancer.
- To analyze current CAD systems based on image modalities and machine learning classifiers.
- To identify potential research directions for more objective and efficient CAD systems.
Main Methods:
- Systematic review methodology employed.
- Searches conducted across Springer Link, Science Direct, IEEE Xplore, and PubMed databases.
- Inclusion/exclusion criteria applied to 320 retrieved studies, with 154 selected for analysis.
Main Results:
- Analysis of current CAD systems categorized by image modalities and machine learning classifiers.
- Discussion of potential research avenues for enhancing CAD system objectivity and efficiency.
- Overview of the landscape of academic and scientific CAD research, excluding commercial interests.
Conclusions:
- The review highlights the current advancements and challenges in CAD systems for breast cancer.
- Further research is needed to develop more objective and efficient CAD systems.
- CAD systems show promise in assisting physicians with breast cancer diagnosis and detection.
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