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Fan, Tianyu
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Yang, Z., Fan, T., Smedby, Ö. & Moreno, R. (2024). 3D Breast Ultrasound Image Classification Using 2.5D Deep learning. In: 17th International Workshop on Breast Imaging, IWBI 2024: . Paper presented at 17th International Workshop on Breast Imaging, IWBI 2024, Chicago, United States of America, Jun 9 2024 - Jun 12 2024. SPIE, 13174, Article ID 131741R.
Öppna denna publikation i ny flik eller fönster >>3D Breast Ultrasound Image Classification Using 2.5D Deep learning
2024 (Engelska)Ingår i: 17th International Workshop on Breast Imaging, IWBI 2024, SPIE , 2024, Vol. 13174, artikel-id 131741RKonferensbidrag, Publicerat paper (Refereegranskat)
Abstract [en]

The 3D breast ultrasound is a radiation-free and effective imaging technology for breast tumor diagnosis. However, checking the 3D breast ultrasound is time-consuming compared to mammograms. To reduce the workload of radiologists, we proposed a 2.5D deep learning-based breast ultrasound tumor classification system. First, we used the pre-trained STU-Net to finetune and segment the tumor in 3D. Then, we fine-tuned the DenseNet-121 for classification using the 10 slices with the biggest tumoral area and their adjacent slices. The Tumor Detection, Segmentation, and Classification on Automated 3D Breast Ultrasound (TDSC-ABUS) MICCAI Challenge 2023 dataset was used to train and validate the performance of the proposed method. Compared to a 3D convolutional neural network model and radiomics, our proposed method has better performance.

Ort, förlag, år, upplaga, sidor
SPIE, 2024
Serie
Proceedings of SPIE - The International Society for Optical Engineering, ISSN 0277-786X ; 13174
Nyckelord
2.5D, 3D Breast Ultrasound, Deep learning, Tumor Classification
Nationell ämneskategori
Radiologi och bildbehandling
Identifikatorer
urn:nbn:se:kth:diva-348289 (URN)10.1117/12.3025534 (DOI)001239315300062 ()2-s2.0-85195360791 (Scopus ID)
Konferens
17th International Workshop on Breast Imaging, IWBI 2024, Chicago, United States of America, Jun 9 2024 - Jun 12 2024
Anmärkning

QC 20240624

Part of ISBN 978-151068020-3

Tillgänglig från: 2024-06-20 Skapad: 2024-06-20 Senast uppdaterad: 2024-07-05Bibliografiskt granskad
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