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3D reconstruction approach based on wavelet analysis in neuro-vision system

机译:基于神经视觉系统小波分析的三维重构方法

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In this paper, a 3D reconstruction approach based on wavelet analysis is presented. It can be used in neuro-vision system. The approach can be divided into two parts. First, the stereo matching problem is solved with wavelet analysis. Dyadic discrete wavelet analysis is adopted in this process and stereo matching process is realized with global optimization. A coherent hierarchical matching strategy is constructed, so that the stereo matching process can be accomplished with coarse to fine techniques. Second, a 3D object reconstruction neural network is constructed by using BP neural network. By feeding the image corresponding points between the left image and right image in a stereo image pair, the 3D coordinates of points on object surface can be obtained using this neural network and the configuration and shape of the object can be reconstructed. With multiple 3D reconstruction neural networks the 3D reconstruction processes can be performed in parallel. The examples for both synthetic and real images are shown in the experiment, and good results are obtained.
机译:本文提出了一种基于小波分析的3D重构方法。它可用于神经视觉系统。该方法可分为两部分。首先,通过小波分析解决了立体声匹配问题。在该过程中采用二元离散小波分析,并通过全局优化实现立体匹配过程。构建了相干的分层匹配策略,以便立体匹配过程可以通过粗略到精细技术来实现。其次,通过使用BP神经网络构建3D对象重建神经网络。通过在立体图像对中馈送左图像和右图像之间的图像对应点,可以使用该神经网络获得物表面上的点上的3D坐标,并且可以重建对象的配置和形状。利用多个三维重建神经网络,可以并行地执行3D重建过程。实验中显示了合成和实图像的实施例,获得了良好的结果。

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