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RadLex Terms and Local Texture Features for Multimodal Medical Case Retrieval

机译:用于多模式医疗案例检索的RadLex术语和局部纹理特征

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Clinicians searching through the large data sets of multi-modal medical information generated in hospitals currently do not fully exploit previous medical cases to retrieve relevant information for a differential diagnosis. The VISCERAL Retrieval benchmark organized a medical case-based retrieval evaluation using a data set composed of patient scans and RadLex term anatomy-pathology lists from the radi-ologic reports. In this paper a retrieval method for medical cases that uses both textual and visual features is presented. It defines a weighting scheme that combines the RadLex terms anatomical and clinical correla-tions with the information from local texture features obtained from the region of interest in the query cases. The method implementation, with an innovative 3D Riesz wavelet texture analysis and an approach to generate a common spatial domain to compare medical images is described. The proposed method obtained overall competitive results in the VISCERAL Retrieval benchmark and could be seen as a tool to perform medical case based retrieval in large clinical data sets.
机译:目前,在医院中搜索大量的多模式医学信息的大型数据集的临床医生并未充分利用先前的医学案例来检索相关信息以进行鉴别诊断。 VISCERAL检索基准使用由患者扫描和放射学报告中的RadLex术语解剖病理列表组成的数据集,组织了基于医疗病例的检索评估。在本文中,提出了一种使用文本和视觉特征的医疗案例检索方法。它定义了一个加权方案,该方案将RadLex术语在解剖和临床上的相关性与在查询案例中从感兴趣区域获得的局部纹理特征信息相结合。描述了具有创新的3D Riesz小波纹理分析的方法实现以及生成公共空间域以比较医学图像的方法。所提出的方法在VISCERAL检索基准中获得了总体竞争结果,可以看作是在大型临床数据集中执行基于医疗案例的检索的工具。

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