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Ontology-Guided Approach to Retrieving Disease Manifestation Images for Health Image Base Construction

机译:疾病表现形式图像对健康形象基础建设的本体论引导方法

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Building a comprehensive medical image database, in the spirit of the UMLS, can be beneficial for assisting diagnosis, patient education and self-care. However, a highly curated, comprehensive image database is difficult to collect as well as to annotate. We present an approach to combine visual object detection technologies with medical ontology to automatically mine web photos and retrieve a large number of disease manifestation images with minimal manual labeling. Comparing to a supervised approach, our ontology-guided approach reduces manual labeling effort to 1/10 on a variety of eye/ear/mouth diseases and improves the precision of retrieval by over 10% in many cases.
机译:在UMLS的精神中建立一个全面的医学图像数据库,可以有利于协助诊断,患者教育和自我保健。但是,一个高度策划,综合的图像数据库难以收集和注释。我们提出了一种与医疗本体中的视觉对象检测技术相结合的方法,以自动挖掘网页,并通过最小的手动标记检索大量疾病表现形式图像。与监督方法相比,我们的本体导向方法将手工标记努力降低至10/10,在许多情况下提高了检索的精度超过10%。

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