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View-Based 3D Model Retrieval via Multi-graph Matching

机译:通过多图匹配进行基于视图的3D模型检索

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摘要

With the rapid development of 3D technology, 3D model retrieval has attracted a large amount of interest in computer vision field. In this paper, we propose a composition-based multi-graph matching method in this paper. Firstly, compute the pairwise matching affinity one-to-one graph matching. Secondly, seek the optimal intermediate graph by diverse graph matching orders, according to the consistency of global matching. Finally, the classic optimization method is used to get the best matching result for similarity measurement. We validate our approach using ETH, NTU and MV-RED 3D model datasets with convolutional neural network features. Extensive experiments show the superiority of the proposed method.
机译:随着3D技术的飞速发展,3D模型检索在计算机视觉领域引起了人们的极大兴趣。在本文中,我们提出了一种基于构图的多图匹配方法。首先,计算成对匹配亲和力一对一图匹配。其次,根据全局匹配的一致性,通过不同的图匹配顺序寻找最优中间图。最后,经典的优化方法被用来获得最佳的相似度测量结果。我们使用具有卷积神经网络功能的ETH,NTU和MV-RED 3D模型数据集验证了我们的方法。大量的实验证明了该方法的优越性。

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