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A novel Adaptive Shape Support Window based cost aggregation method for local stereo matching

机译:一种新的基于自适应形状支持窗口的局部立体匹配成本聚集方法

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Cost aggregation is the most important step in a local stereo matching algorithm. In this paper, a novel cost aggregation method based on Adaptive Shape Support Window (ASSW) is proposed. There are two main parts: At first we construct a local support skeleton anchored each pixel with four varying arm lengths decided on color similarity, as a result, the support window integral of multiple horizontal segments spanned by pixels in the vertical neighboring is established; then we utilize extended implementation of guided filtering to aggregate cost volume within the ASSW, which has better edge-preserving smoothing property than bilateral filter independent of the filtering kernel size. In this way, the proposed method can effectively reduce the number of bad pixels locating in the incorrect depth regions through finding optimal support window with an arbitrary shape and size adaptively. When the proposed cost aggregation method is implemented together with the remaining steps, the overall local stereo matching algorithm achieves more outstanding matching performance compared with other existing algorithms based on cost aggregation strategy on the Middlebury stereo benchmark, especially in depth discontinuities and piecewise smooth regions.
机译:成本汇总是本地立体声匹配算法中最重要的步骤。本文提出了一种新的基于自适应形状支持窗(ASSW)的成本汇总方法。主要有两个部分:首先,我们构建一个局部支撑骨架,将每个像素固定在四个具有不同颜色相似性的臂长上,从而决定颜色相似度,从而建立由垂直相邻像素跨越的多个水平段的支撑窗口积分;然后,我们利用导引过滤的扩展实现来汇总ASSW内的成本量,该方法比双边过滤器具有更好的边缘保留平滑特性,而与过滤内核大小无关。这样,通过自适应地找到具有任意形状和大小的最优支持窗口,该方法可以有效地减少位于错误深度区域中的不良像素的数量。当提出的成本汇总方法与其余步骤一起实施时,与其他现有的基于Middlebury立体声基准上的成本汇总策略的现有算法相比,整体局部立体匹配算法可实现更出色的匹配性能,尤其是在深度不连续和分段平滑区域中。

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