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首页> 外文期刊>Medical Imaging, IEEE Transactions on >A Hybrid System Using Symbolic and Numeric Knowledge for the Semantic Annotation of Sulco-Gyral Anatomy in Brain MRI Images
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A Hybrid System Using Symbolic and Numeric Knowledge for the Semantic Annotation of Sulco-Gyral Anatomy in Brain MRI Images

机译:使用符号和数字知识的混合系统,用于脑MRI图像中的Sulco-Gyal解剖结构的语义注释

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摘要

This paper describes an interactive system for the semantic annotation of brain magnetic resonance images. The system uses both a numerical atlas and symbolic knowledge of brain anatomical structures depicted using the semantic Web standards. This knowledge is combined with graphical data, automatically extracted from the images by imaging tools. The annotations of parts of gyri and sulci, in a region of interest, rely on constraint satisfaction problem solving and description logics inferences. The system is run on a client-server architecture, using Web services and including a sophisticated visualization tool. An evaluation of the system was done using normal (healthy) and pathological cases. The results obtained so far demonstrate that the system produces annotations with high precision and quality.
机译:本文介绍了一种用于脑磁共振图像语义标注的交互式系统。该系统同时使用数字地图集和使用语义Web标准描述的大脑解剖结构的符号知识。这些知识与图形数据结合在一起,可以通过成像工具自动从图像中提取出来。在感兴趣区域中,回旋和舒尔奇部分的注释依赖于约束满足问题的解决和描述逻辑的推论。该系统使用Web服务在客户端-服务器体系结构上运行,并包括复杂的可视化工具。使用正常(健康)和病理病例对系统进行评估。到目前为止获得的结果表明,该系统可以产生高精度和高质量的注释。

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