Microcalcification Detection for Digital Breast Tomosynthesis Images Using Faster-RCNN

The transformative impact of Digital Breast Tomosynthesis (DBT) in breast imaging, highlights its three-dimensional reconstruction capabilities to address tissue overlap issues. The emphasis is on the critical importance of accurate microcalcification detection in DBT images for early breast cancer...

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Published in:14th IEEE International Conference on Control System, Computing and Engineering, ICCSCE 2024 - Proceedings
Main Author: Harron N.A.; Sulaiman S.N.; Nizam M.A.I.M.; Karim N.K.A.; Ani A.I.C.; Saifudin S.A.
Format: Conference paper
Language:English
Published: Institute of Electrical and Electronics Engineers Inc. 2024
Online Access:https://www.scopus.com/inward/record.uri?eid=2-s2.0-85207049891&doi=10.1109%2fICCSCE61582.2024.10696812&partnerID=40&md5=314dd6935c06a3087a5e0a06aa789c3b
id 2-s2.0-85207049891
spelling 2-s2.0-85207049891
Harron N.A.; Sulaiman S.N.; Nizam M.A.I.M.; Karim N.K.A.; Ani A.I.C.; Saifudin S.A.
Microcalcification Detection for Digital Breast Tomosynthesis Images Using Faster-RCNN
2024
14th IEEE International Conference on Control System, Computing and Engineering, ICCSCE 2024 - Proceedings


10.1109/ICCSCE61582.2024.10696812
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85207049891&doi=10.1109%2fICCSCE61582.2024.10696812&partnerID=40&md5=314dd6935c06a3087a5e0a06aa789c3b
The transformative impact of Digital Breast Tomosynthesis (DBT) in breast imaging, highlights its three-dimensional reconstruction capabilities to address tissue overlap issues. The emphasis is on the critical importance of accurate microcalcification detection in DBT images for early breast cancer diagnosis. This study investigates the application of deep learning, specifically Region-based Convolutional Neural Networks (RCNN) to enhance microcalcification detection in Digital Breast Tomosynthesis (DBT) images. The study proposes leveraging deep learning in conjunction with DBT to enhance microcalcification detection, capitalising on DBT's unique capabilities. The study aims to address existing gaps in microcalcification detection within DBT and evaluates the potential advantages of a DBT CAD system. The model's performance is thoroughly evaluated across diverse image scenarios, encompassing both noisy (blur) and clean (non-blur) datasets. A comprehensive comparative analysis is conducted, assessing overall performance, detection confidence, and training progress between the two datasets. Results and outcomes showcase the remarkable flexibility and improved microcalcification detection confidence of the RCNN model, even in the presence of image noise. The comparative analysis provides valuable insights into the model's performance under different imaging situations, aiding in informed decision-making for diagnostic purposes. The findings emphasize the critical role of image clarity in improving detection performance and offering valuable insights for future developments in the field. © 2024 IEEE.
Institute of Electrical and Electronics Engineers Inc.

English
Conference paper

author Harron N.A.; Sulaiman S.N.; Nizam M.A.I.M.; Karim N.K.A.; Ani A.I.C.; Saifudin S.A.
spellingShingle Harron N.A.; Sulaiman S.N.; Nizam M.A.I.M.; Karim N.K.A.; Ani A.I.C.; Saifudin S.A.
Microcalcification Detection for Digital Breast Tomosynthesis Images Using Faster-RCNN
author_facet Harron N.A.; Sulaiman S.N.; Nizam M.A.I.M.; Karim N.K.A.; Ani A.I.C.; Saifudin S.A.
author_sort Harron N.A.; Sulaiman S.N.; Nizam M.A.I.M.; Karim N.K.A.; Ani A.I.C.; Saifudin S.A.
title Microcalcification Detection for Digital Breast Tomosynthesis Images Using Faster-RCNN
title_short Microcalcification Detection for Digital Breast Tomosynthesis Images Using Faster-RCNN
title_full Microcalcification Detection for Digital Breast Tomosynthesis Images Using Faster-RCNN
title_fullStr Microcalcification Detection for Digital Breast Tomosynthesis Images Using Faster-RCNN
title_full_unstemmed Microcalcification Detection for Digital Breast Tomosynthesis Images Using Faster-RCNN
title_sort Microcalcification Detection for Digital Breast Tomosynthesis Images Using Faster-RCNN
publishDate 2024
container_title 14th IEEE International Conference on Control System, Computing and Engineering, ICCSCE 2024 - Proceedings
container_volume
container_issue
doi_str_mv 10.1109/ICCSCE61582.2024.10696812
url https://www.scopus.com/inward/record.uri?eid=2-s2.0-85207049891&doi=10.1109%2fICCSCE61582.2024.10696812&partnerID=40&md5=314dd6935c06a3087a5e0a06aa789c3b
description The transformative impact of Digital Breast Tomosynthesis (DBT) in breast imaging, highlights its three-dimensional reconstruction capabilities to address tissue overlap issues. The emphasis is on the critical importance of accurate microcalcification detection in DBT images for early breast cancer diagnosis. This study investigates the application of deep learning, specifically Region-based Convolutional Neural Networks (RCNN) to enhance microcalcification detection in Digital Breast Tomosynthesis (DBT) images. The study proposes leveraging deep learning in conjunction with DBT to enhance microcalcification detection, capitalising on DBT's unique capabilities. The study aims to address existing gaps in microcalcification detection within DBT and evaluates the potential advantages of a DBT CAD system. The model's performance is thoroughly evaluated across diverse image scenarios, encompassing both noisy (blur) and clean (non-blur) datasets. A comprehensive comparative analysis is conducted, assessing overall performance, detection confidence, and training progress between the two datasets. Results and outcomes showcase the remarkable flexibility and improved microcalcification detection confidence of the RCNN model, even in the presence of image noise. The comparative analysis provides valuable insights into the model's performance under different imaging situations, aiding in informed decision-making for diagnostic purposes. The findings emphasize the critical role of image clarity in improving detection performance and offering valuable insights for future developments in the field. © 2024 IEEE.
publisher Institute of Electrical and Electronics Engineers Inc.
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language English
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