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Endoscopy Disease Detection and Segmentation (EDD2020)

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IEEE2020-01-15 更新2026-04-17 收录
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https://ieee-dataport.org/competitions/endoscopy-disease-detection-and-segmentation-edd2020
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Endoscopy is a widely used clinical procedure for the early detection of cancers in hollow-organs such as oesophagus, stomach, and colon. Computer-assisted methods for accurate and temporally consistent localisation and segmentation of diseased region-of-interests enable precise quantification and mapping of lesions from clinical endoscopy videos which is critical for monitoring and surgical planning. Innovations have the potential to improve current medical practices and refine healthcare systems worldwide. However, well-annotated, representative publically-available datasets for disease detection for assessing reproducibility and facilitating standardised comparison of methods is still lacking. Many methods to detect diseased regions in endoscopy have been proposed however these have primarily focussed on the task of polyp detection in the gastrointestinal tract with demonstration on datasets acquired from at most a few data centres and single modality imaging, most commonly white light. Here, we present our multi-class disease detection and segmentation challenge in clinical endoscopy. With this sub-challenge we aim to establish a comprehensive dataset to benchmark algorithms for disease detection.
提供机构:
Université de Versailles St-Quentin en Yvelines, Hôpital Ambroise Paré; CRO Centro Riferimento Oncologico IRCCS Aviano Italy; CRAN UMR 7039, University of Lorraine, CNRS, Nancy, France; University of Oxford, Translational Gastroenterology Unit, Nuffield Department of Medicine, Experimental Medicine Div., John Radcliffe; Instituto Onclologico Veneto, IOV-IRCCS, Padova, Italy; University of Lincoln, UK; University of Oxford, Big Data Institute, Department of Engineering Science
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2020-01-15
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