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3D Model Retrieval Based on Depth Line Descriptor

机译:基于深度线描述符的3D模型检索

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In this paper, we propose a novel 2D/3D approach for 3D model matching and retrieving. Each model is represented by a set of depth lines which will be afterward transformed into sequences. The depth sequence information provides a more accurate description of 3D shape boundaries than using other 2D shape descriptors. Retrieval is performed when dynamic programming distance (DPD) is used to compare the depth line descriptors. The DPD leads to an accurate matching of sequences even in the presence of local shifting on the shape. Experimentally, we show absolute improvement in retrieval performance on the Princeton 3D Shape Benchmark database.
机译:在本文中,我们提出了一种用于3D模型匹配和检索的新型2D / 3D方法。每个模型由一组深度线表示,这将后方将被转换为序列。深度序列信息提供比使用其他2D形状描述符的3D形边界的更准确描述。当使用动态编程距离(DPD)进行比较深度线描述符时执行检索。即使在形状的局部移位存在下,DPD也能够准确地匹配序列。实验,我们在普林斯顿3D形状基准数据库上显示了对检索性能的绝对改进。

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