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Integrating user preference to similarity queries over medical images datasets

机译:将用户偏好与医学图像数据集上的相似性查询整合

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Large amounts of images from medical exams are being stored in databases, so developing retrieval techniques is an important research problem. Retrieval based on the image visual content is usually better than using textual descriptions, as they seldom gives every nuances that the user may be interested in. Content-based image retrieval employs the similarity among images for retrieval. However, similarity is evaluated using numeric methods, and they often orders the images by similarity in a way rather distinct from the user's intention. In this paper, we propose a technique to allow expressing the user's preference over attributes associated to the images, so similarity queries can be refined by preference rules. Experiments performed over a dataset with computed tomography lung images shows that correctly expressing the user's preferences, the similarity query precision can increase from an average of 60% up to close to 100%, when enough interesting images exists in the database.
机译:来自医学检查的大量图像被存储在数据库中,因此开发检索技术是一个重要的研究问题。基于图像视觉内容的检索通常比使用文本描述更好,因为它们很少提供用户可能感兴趣的每一个细微差别。基于内容的图像检索利用图像之间的相似性进行检索。但是,使用数字方法评估相似性,并且它们通常以与用户意图完全不同的方式通过相似性对图像进行排序。在本文中,我们提出了一种技术,该技术允许通过与图像相关联的属性来表达用户的偏好,因此可以通过偏好规则来细化相似性查询。使用计算机断层扫描肺图像对数据集进行的实验表明,如果数据库中存在足够有趣的图像,则正确表达用户的偏爱的相似性查询精度可以从平均60%提高到接近100%。

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