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首页> 外文期刊>Journal of Software Engineering and Applications >A Retrieval Matching Method Based Case Learning for 3D Model
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A Retrieval Matching Method Based Case Learning for 3D Model

机译:基于检索匹配的3D模型案例学习方法

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The similarity metric in traditional content based 3D model retrieval method mainly refers the distance metric algorithm used in 2D image retrieval. But this method will limit the matching breadth. This paper proposes a new retrieval matching method based on case learning to enlarge the retrieval matching scope. In this method, the shortest path in Graph theory is used to analyze the similarity how the nodes on the path between query model and matched model effect. Then, the label propagation method and k nearest-neighbor method based on case learning is studied and used to improve the retrieval efficiency based on the existing feature extraction.
机译:传统的基于内容的3D模型检索方法中的相似性度量主要是指2D图像检索中使用的距离度量算法。但是这种方法会限制匹配的宽度。提出了一种基于案例学习的新的检索匹配方法,以扩大检索匹配的范围。在这种方法中,使用图论中的最短路径来分析查询模型和匹配模型之间路径上的节点如何产生相似性。然后,研究了基于案例学习的标签传播方法和k最近邻方法,并在已有特征提取的基础上提高了检索效率。

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