常时间加权中值滤波用于立体匹配及以后

Ziyang Ma, Kaiming He, Yichen Wei, Jian Sun, E. Wu
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引用次数: 284

摘要

尽管近年来在局部立体匹配方面不断取得进展,但大多数努力都集中在开发鲁棒的成本计算和聚合方法上。对于视差的细化,很少有人重视。在这项工作中,我们研究了视差细化的加权中值滤波。我们发现,通过这种细化,即使是简单的框式过滤器聚合也可以与各种复杂的聚合方法(具有相同的细化)达到相当的精度。这是由于良好的加权中值滤波特性,在尊重边缘/结构的同时去除离群值误差。这表明之前被忽略的细化至少可以和聚合一样重要。我们还为以前耗时的加权中值滤波器开发了第一个常数时间算法。这使得简单的组合“框聚合+加权中值”在速度和准确性方面都是一个有吸引力的解决方案。作为副产品,快速加权中值滤波在其他被高度复杂性阻碍的应用中释放了它的潜力。我们展示了它在各种应用中的优势,如深度向上采样,剪贴艺术JPEG伪影去除和图像风格化。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Constant Time Weighted Median Filtering for Stereo Matching and Beyond
Despite the continuous advances in local stereo matching for years, most efforts are on developing robust cost computation and aggregation methods. Little attention has been seriously paid to the disparity refinement. In this work, we study weighted median filtering for disparity refinement. We discover that with this refinement, even the simple box filter aggregation achieves comparable accuracy with various sophisticated aggregation methods (with the same refinement). This is due to the nice weighted median filtering properties of removing outlier error while respecting edges/structures. This reveals that the previously overlooked refinement can be at least as crucial as aggregation. We also develop the first constant time algorithm for the previously time-consuming weighted median filter. This makes the simple combination ``box aggregation + weighted median'' an attractive solution in practice for both speed and accuracy. As a byproduct, the fast weighted median filtering unleashes its potential in other applications that were hampered by high complexities. We show its superiority in various applications such as depth up sampling, clip-art JPEG artifact removal, and image stylization.
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