Image-based 3D model retrieval using manifold learning

被引:0
|
作者
Pan-pan Mu
San-yuan Zhang
Yin Zhang
Xiu-zi Ye
Xiang Pan
机构
[1] Zhejiang University,College of Computer Science and Technology
[2] Wenzhou University,College of Mathematics and Information Science
[3] Zhejiang University of Technology,College of Computer Science and Technology
关键词
Model retrieval; Euclidean space; Riemannian manifold; Hilbert space; Metric learning; TP391;
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学科分类号
摘要
We propose a new framework for image-based three-dimensional (3D) model retrieval. We first model the query image as a Euclidean point. Then we model all projected views of a 3D model as a symmetric positive definite (SPD) matrix, which is a point on a Riemannian manifold. Thus, the image-based 3D model retrieval is reduced to a problem of Euclid-to-Riemann metric learning. To solve this heterogeneous matching problem, we map the Euclidean space and SPD Riemannian manifold to the same high-dimensional Hilbert space, thus shrinking the great gap between them. Finally, we design an optimization algorithm to learn a metric in this Hilbert space using a kernel trick. Any new image descriptors, such as the features from deep learning, can be easily embedded in our framework. Experimental results show the advantages of our approach over the state-of-the-art methods for image-based 3D model retrieval.
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页码:1397 / 1408
页数:11
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