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Using Bipartite Graphs for 3D Cardiac Model Retrieval

机译:使用三维心模型检索的二分图

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Three-dimensional models have been used to aid medical diagnoses, using images generated by modalities like Magnetic Resonance Imaging. They can provide a more complete vision of objects since their depth is taken into account. Content-based Image Retrieval (CBIR) has also been used to aid the diagnosis. One important step in Three-dimensional CBIR (Model Retrieva) systems is the comparison between two models by using a set of features extracted and stored in a database. In this paper we present a novel method to compare two models, using the Bipartite graphs technique, with the aim to improve the retrieval precision. This technique retrieves 3D medical models of the left ventricle in order to aid the diagnosis of Congestive Heart Failure. Results showed that the novel method improved the precision by 10% when compared to the Similarity Function of Euclidean and Manhattan distance. These results confirmed that bipartite graph techniques can be used to improve the accuracy of Model Retrieval systems.
机译:已经使用三维模型来帮助医疗诊断,使用由磁共振成像等模态产生的图像。他们可以提供更完整的物体愿景,因为他们的深度被考虑在内。基于内容的图像检索(CBIR)也已用于帮助诊断。三维CBIR(Model Retieva)系统中的一个重要步骤是通过使用提取并存储在数据库中的一组功能之间的两个模型之间的比较。在本文中,我们介绍了一种使用二分图技术比较两种型号的新方法,旨在提高检索精度。该技术检索左心室的3D医疗模型,以帮助诊断充血性心力衰竭。结果表明,与欧几里德和曼哈顿距离的相似函数相比,新型方法提高了10%的精度。这些结果证实,双链图技术可用于提高模型检索系统的准确性。

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