Spin images for retrieval of 3D objects by local and global similarity

J. Assfalg, A. Bimbo, P. Pala
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引用次数: 18

Abstract

The ever increasing availability of 3D models demands for tools supporting their effective and efficient management. Among these tools, those enabling content-based retrieval play a key role. In this paper, we present a novel approach to global and local content-based retrieval of 3D objects that is based on spin images. Spin images are used to derive a view-independent description of both database and query objects. A set of spin images is first created for each object and the parts it is composed of; then, a descriptor is evaluated for each spin image in the set; clustering is performed on the set of image-based descriptors of each object to achieve a compact representation. Experimental results are presented for a test database of about 300 models, showing the effectiveness of retrieval for both object and part similarity.
旋转图像检索三维对象的局部和全局相似度
不断增加的3D模型的可用性要求工具支持其有效和高效的管理。在这些工具中,支持基于内容的检索的工具起着关键作用。在本文中,我们提出了一种基于旋转图像的全局和局部内容检索3D对象的新方法。旋转图像用于派生与视图无关的数据库和查询对象的描述。首先为每个对象及其组成部分创建一组旋转图像;然后,对集合中的每个自旋图像求描述符;对每个对象的基于图像的描述符集进行聚类,以实现紧凑的表示。在一个包含约300个模型的测试数据库中进行了实验,结果表明该方法在对象相似度和零件相似度方面都是有效的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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