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Cross-Based Local Stereo Matching Using Orthogonal Integral Images

机译:基于正交积分图像的基于交叉的局部立体匹配

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摘要

We propose an area-based local stereo matching algorithm for accurate disparity estimation across all image regions. A well-known challenge to local stereo methods is to decide an appropriate support window for the pixel under consideration, adapting the window shape or the pixelwise support weight to the underlying scene structures. Our stereo method tackles this problem with two key contributions. First, for each anchor pixel an upright cross local support skeleton is adaptively constructed, with four varying arm lengths decided on color similarity and connectivity constraints. Second, given the local cross-decision results, we dynamically construct a shape-adaptive full support region on the fly, merging horizontal segments of the crosses in the vertical neighborhood. Approximating image structures accurately, the proposed method is among the best performing local stereo methods according to the benchmark Middlebury stereo evaluation. Additionally, it reduces memory consumption significantly thanks to our compact local cross representation. To accelerate matching cost aggregation performed in an arbitrarily shaped 2-D region, we also propose an orthogonal integral image technique, yielding a speedup factor of 5-15 over the straightforward integration.
机译:我们提出了一种基于区域的局部立体匹配算法,用于在所有图像区域上进行准确的视差估计。局部立体方法的一个众所周知的挑战是为所考虑的像素确定合适的支撑窗口,使窗口形状或像素级支撑权重适应基础场景结构。我们的立体声方法通过两个关键方面解决了这个问题。首先,对于每个锚点像素,自适应地构建一个垂直的交叉局部支撑骨架,其中四个不同的臂长取决于颜色相似性和连接性约束。其次,根据本地的交叉决策结果,我们动态地动态构建了一个形状自适应的全支撑区域,在垂直邻域中合并了交叉的水平段。准确地近似图像结构,根据基准Middlebury立体声评估,该方法是性能最佳的局部立体声方法之一。此外,得益于我们紧凑的本地交叉表示,它大大减少了内存消耗。为了加速在任意形状的2D区域中执行的匹配成本聚合,我们还提出了一种正交积分图像技术,在直接积分中产生5-15的加速因子。

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