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Multimodal medical case retrieval using the Dezert-Smarandache theory

机译:基于Dezert-Smarandache理论的多模式医疗案例检索

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摘要

Most medical images are now digitized and stored with semantic information, leading to medical case databases. They may be used for aid to diagnosis, by retrieving similar cases to those in examination. But the information are often incomplete, uncertain and sometimes conflicting, so difficult to use. In this paper, we present a Case Based Reasoning (CBR) system for medical case retrieval, derived from the Dezert-Smarandache theory, which is well suited to handle those problems. We introduce a case retrieval specific frame of discernment θ, which associates each element of θ with a case in the database; we take advantage of the flexibility offered by the DSmT’s hybrid models to finely model the database. The system is designed so that heterogeneous sources of information can be integrated in the system: in particular images, indexed by their digital content, and symbolic information. The method is evaluated on two classified databases: one for diabetic retinopathy follow-up (DRD) and one for screening mammography (DDSM). On these databases, results are promising: the retrieval precision at five reaches 81.8% on DRD and 84.8% on DDSM.
机译:现在,大多数医学图像已被数字化并与语义信息一起存储,从而建立了医学案例数据库。通过检索与检查中相似的病例,可以将它们用于辅助诊断。但是这些信息通常是不完整的,不确定的,有时是相互冲突的,因此难以使用。在本文中,我们提出了一种基于案例推理(CBR)的系统,该系统基于Dezert-Smarandache理论,非常适合处理这些问题。我们介绍了一个区分角度θ的案例检索特定框架,该框架将θ的每个元素与数据库中的案例相关联;我们利用DSmT混合模型提供的灵活性来对数据库进行精细建模。对系统进行设计,以便可以将异构信息源集成到系统中:特别是通过数字内容索引的图像以及符号信息。该方法在两个分类数据库中进行了评估:一个用于糖尿病性视网膜病随访(DRD),另一个用于乳房X线摄影筛查(DDSM)。在这些数据库上,结果是有希望的:在DRD上,五个位置的检索精度分别达到81.8%和DDSM上的84.8%。

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