噪声存在下立体对应中均值、高斯和S&G聚集窗口的评价

F. Calderon, C. Parra, Cesar L. Nino
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引用次数: 0

摘要

图像处理中很少有像立体对应这样被广泛研究的主题,这些算法可以分为两类,局部和全局,这取决于如何在图像中进行处理。如果对图像的部分进行处理,则称为局部立体对应算法;如果对整个图像进行处理,则称为全局立体对应算法。特别是在局部算法中,该聚合窗口用于平滑体积配对代价,以便在存在前并行区域的情况下进行更好的匹配。本文对局部匹配算法中的均值、高斯和Savitzky-Golay聚集窗口进行了比较,分析了测试图像中的噪声以及聚集窗口的选择对立体匹配算法性能的影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Evaluation of Mean, Gaussian and S&G aggregation windows in stereo correspondence under presence of noise
Few topics in image processing have been as extensively studied as stereo correspondence, these algorithms can be divided into two categories, local and global, depending on how the processing is done in the image. A stereo correspondence algorithm is called local if operate on sections of the images and global this treatment is performed on the entire images. In local algorithms specifically, this aggregation window is used for smoothing volume pairing cost, so that a better match is performed in presence of fronto-parallel regions. This article presents a comparison between Mean, Gaussian and Savitzky-Golay aggregation windows in local algorithms, analyzing the noise in test images and how the selection of the aggregation window affects the performance of the stereo matching algorithm.
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