作者
Anastasios Koulaouzidis, Dimitris K Iakovidis, Diana E Yung, Emanuele Rondonotti, Uri Kopylov, John N Plevris, Ervin Toth, Abraham Eliakim, Gabrielle Wurm Johansson, Wojciech Marlicz, Georgios Mavrogenis, Artur Nemeth, Henrik Thorlacius, Gian Eugenio Tontini
发表日期
2017/6
期刊
Endoscopy international open
卷号
5
期号
06
页码范围
E477-E483
出版商
© Georg Thieme Verlag KG
简介
Background and aims Capsule endoscopy (CE) has revolutionized small-bowel (SB) investigation. Computational methods can enhance diagnostic yield (DY); however, incorporating machine learning algorithms (MLAs) into CE reading is difficult as large amounts of image annotations are required for training. Current databases lack graphic annotations of pathologies and cannot be used. A novel database, KID, aims to provide a reference for research and development of medical decision support systems (MDSS) for CE.
Methods Open-source software was used for the KID database. Clinicians contribute anonymized, annotated CE images and videos. Graphic annotations are supported by an open-access annotation tool (Ratsnake). We detail an experiment based on the KID database, examining differences in SB lesion measurement between human readers and a MLA. The Jaccard Index (JI) was used to …
引用总数
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