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MADE: A Composite Visual-Based 3D Shape Descriptor

机译:MADE:基于视觉的复合3D形状描述符

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摘要

Due to the widely application of 3D models, the techniques of content-based 3D shape retrieval become necessary. In this paper, a modified Principal Component Analysis (PCA) method for model nor-malization is introduced at first, and each model is projected in 6 different viewpoints. Secondly, a new adjacent angle distance Fouriers (AADF) descriptor is presented, which captures more precise contour feature of black-white images. Finally, based on modified PCA method, a novel composite 3D shape descriptor MADE is proposed by concatenating AADF, Tchebichef and D-buffer descriptors. Experimental results on the criterion of 3D model database PSB show that the proposed descriptor MADE has gained the best retrieval effectiveness compared with three single descriptors and two composite descriptors LFD and DESIRE.
机译:由于3D模型的广泛应用,基于内容的3D形状检索技术变得必要。本文首先介绍了一种用于模型标准化的改进主成分分析(PCA)方法,并将每个模型投影到6个不同的角度。其次,提出了一种新的相邻角距离傅立叶(AADF)描述符,该描述符捕获了黑白图像的更精确的轮廓特征。最后,基于改进的PCA方法,通过结合AADF,Tchebichef和D-buffer描述符,提出了一种新颖的复合3D形状描述符MADE。根据3D模型数据库PSB的标准进行的实验结果表明,与三个单个描述符和两个复合描述符LFD和DESIRE相比,所提出的描述符MADE具有最佳的检索效果。

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