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Dense disparity estimation with a divide-and-conquer disparity space image technique

机译:利用分而治之视差空间图像技术进行密集视差估计

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摘要

A new divide-and-conquer technique for disparity estimation is proposed in this paper. This technique performs feature matching following the high confidence first principle, starting with the strongest feature point in the stereo pair of scanlines. Once the first matching pair is established, the ordering constraint in disparity estimation allows the original intra-scanline matching problem to be divided into two smaller subproblems. Each subproblem can then be solved recursively until there is no reliable feature point within the subintervals. This technique is very efficient for dense disparity map estimation for stereo images with rich features. For general scenes, this technique can be paired up with the disparity-space image (DSI) technique to compute dense disparity maps with integrated occlusion detection. In this approach, the divide-and-conquer part of the algorithm handles the matching of stronger features and the DSI-based technique handles the matching of pixels in between feature points and the detection of occlusions. An extension to the standard disparity-space technique is also presented to compliment the divide-and-conquer algorithm. Experiments demonstrate the effectiveness of the proposed divide-and-conquer DSI algorithm.
机译:提出了一种新的视差估计分治技术。该技术遵循高置信度优先原则执行特征匹配,从立体扫描线对中最强的特征点开始。一旦建立了第一对匹配,视差估计中的排序约束就可以将原始的扫描线内匹配问题分为两个较小的子问题。然后可以递归地解决每个子问题,直到子区间内没有可靠的特征点。对于具有丰富特征的立体图像,该技术对于密集视差图估计非常有效。对于一般场景,可以将该技术与视差空间图像(DSI)技术配合使用,以使用集成的遮挡检测来计算密集的视差图。在这种方法中,算法的分而治之部分处理更强特征的匹配,而基于DSI的技术则处理特征点之间的像素匹配以及遮挡的检测。还提出了对标准视差空间技术的扩展,以补充分治法。实验证明了提出的分而治之DSI算法的有效性。

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