光场图像分布式压缩感知中的字典设计与视差插值

Yusaku Akiyoshi, T. Sumi, Y. Kuroki
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引用次数: 2

摘要

本文讨论了光场相机生成的多视点图像的分布式压缩感知的两个方面。我们首先讨论了用ADMM(乘法器交替方向法)和K-SVD设计的字典的性能,因为重建图像的质量取决于字典。第二个讨论是非关键帧的视差插值。插值精度对重建图像质量和有效的字典设计有重要影响。然后对重叠块匹配、传统光流和tvl1光流三种视差插值方法进行了比较。实验结果表明,ADMM的字典设计速度比K-SVD快,而PSNR值略低于K-SVD, tvl1光流保持最高PSNR值最快。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Dictionary design and disparity interpolation on distributed compressed sensing for light field image
This paper discusses two terms of distributed compressed sensing for multi-view point images generated with a light field camera. Our first discussion is on the performance of dictionary designed with ADMM (Alternating Direction Method of Multipliers) and that of K-SVD since reconstructed image quality depends on the dictionary. The second discussion is disparity interpolation of non-key frames. The interpolation accuracy contributes to reconstructed image quality and effective dictionary design. Then, this paper compares three disparity interpolation methods: the overlapped block matching, the conventional optical flow, and the TVL1-optical-flow. Experimental results show that the dictionary design with ADMM is faster than that with K-SVD whereas PSNR values using ADMM are slightly lower than those of K-SVD, and the TVL1-optical flow is the fastest holding the highest PSNR values.
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