每年專案
摘要
CT scanning of the chest is one the most important imaging modalities available for pulmonary disease diagnosis. Lung segmentation plays a crucial step in the pipeline of computer-aided analysis and diagnosis. As deep learning models have achieved human-level accuracy in semantic segmentation of anatomical structures, we propose to use trained deep learning models to predict both healthy and infectious areas in chest CT slices. The semantic segmentation results are summarized and visualized using volume rendering technology in the form of roadmaps. The roadmaps consist of both location and volume information that can be used as a location guidance for inspecting suspected pulmonary lesions of chest CT and can possibly be combined into a rapid triage algorithm for treating acute pulmonary diseases.Clinical Relevance-This research applied trained semantic segmentation models in identifying normal lung and pneumonic infection areas to generate a roadmap for assisting medical doctors in browsing chest CT and prognostication.
原文 | ???core.languages.en_GB??? |
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主出版物標題 | 2023 45th Annual International Conference of the IEEE Engineering in Medicine and Biology Conference, EMBC 2023 - Proceedings |
發行者 | Institute of Electrical and Electronics Engineers Inc. |
ISBN(電子) | 9798350324471 |
DOIs | |
出版狀態 | 已出版 - 2023 |
事件 | 45th Annual International Conference of the IEEE Engineering in Medicine and Biology Conference, EMBC 2023 - Sydney, Australia 持續時間: 24 7月 2023 → 27 7月 2023 |
出版系列
名字 | Proceedings of the Annual International Conference of the IEEE Engineering in Medicine and Biology Society, EMBS |
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ISSN(列印) | 1557-170X |
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???event.eventtypes.event.conference??? | 45th Annual International Conference of the IEEE Engineering in Medicine and Biology Conference, EMBC 2023 |
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國家/地區 | Australia |
城市 | Sydney |
期間 | 24/07/23 → 27/07/23 |
指紋
深入研究「Roadmaps for Guiding Chest Computed Tomography Interpretation involving Pneumonia」主題。共同形成了獨特的指紋。專案
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