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Variational disparity estimation framework for plenoptic images

机译:全光像差方差估计框架

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This paper presents a computational framework for accurately estimating the disparity map of plenoptic images. The proposed framework is based on the variational principle and provides intrinsic sub-pixel precision. The light-field motion tensor introduced in the framework allows us to combine advanced robust data terms as well as provides explicit treatments for different color channels. A warping strategy is embedded in our framework for tackling the large displacement problem. We also show that by applying a simple regularization term and a guided median filtering, the accuracy of displacement field at occluded area could be greatly enhanced. We demonstrate the excellent performance of the proposed framework by intensive comparisons with the Lytro software and contemporary approaches on both synthetic and real-world datasets.
机译:本文提出了一种用于准确估计全光像差图的计算框架。所提出的框架基于变分原理并提供固有的子像素精度。框架中引入的光场运动张量使我们能够组合高级鲁棒数据项,并为不同的颜色通道提供显式处理。翘曲策略已嵌入到我们的框架中,以解决大位移问题。我们还表明,通过应用简单的正则化项和引导中值滤波,可以大大提高在遮挡区域的位移场的准确性。我们通过与Lytro软件和现代方法在合成数据集和实际数据集上进行深入比较,证明了所提出框架的出色性能。

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