基于多特征和流形排序的三维模型检索

Chen-Ta Hsieh, Chin-Chuan Han, Jau-Ling Shih, Chang-Hsing Lee, Kuo-Chin Fan
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引用次数: 4

摘要

随着3D打印机的广泛应用,对三维物体检索的需求日益迫切。提出了一种基于多特征和流形排序的三维目标检索方法。将5个描述符串联成一个新的特征向量,长度为792,用于三维对象检索。它们是基于角径向变换的高程描述符(ART-ED)、主平面描述符(PPD)、3d -角径向变换(3D-ART)、壳网格描述符(SGD)和网格距离2 (GD2)。接下来,使用流形排序方法对检索结果进行重新排序。此外,在流形图的构造中讨论了各种距离度量。在一个基准数据集SHREC-W上的检索结果表明了该方法的可行性。
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3D model retrieval using multiple features and manifold ranking
The demand of 3D object retrieval became urgent according to the widely use of 3D printer. In this paper, a 3D object retrieval method is proposed using multiple features and manifold ranking. Five descriptors are concatenated to be a new feature vector of length 792 for 3D object retrieval. They are angular radial transform-based elevation descriptor(ART-ED), principal plane descriptor(PPD), 3D-angular radial transform(3D-ART), shell grid descriptor(SGD), and Grid Distance 2 (GD2). Next, a manifold ranking method is used to re-rank the retrieved results. In addition, various distance metrics are addressed in the construction of manifold graph. The retrieval results on a benchmark dataset SHREC-W have been reported to show the feasibility of the proposed method.
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