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Analysis of KITTI Data for Stereo Analysis with Stereo Confidence Measures

机译:具有立体置信度的用于立体分析的KITTI数据分析

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The recently published KITTI stereo dataset provides a new quality of stereo imagery with partial ground truth for benchmarking stereo matchers. Our aim is to test the value of stereo confidence measures (e.g. a left-right consistency check of disparity maps, or an analysis of the slope of a local interpolation of the cost function at the taken minimum) when applied to recorded datasets, such as published with KITTI. We choose popular measures as available in the stereo-analysis literature, and discuss a naive combination of these. Evaluations are carried out using a sparsification strategy. While the best single confidence measure proved to be the right-left consistency check for high disparity map densities, the best overall performance is achieved with the proposed naive measure combination. We argue that there is still demand for more challenging datasets and more comprehensive ground truth.
机译:最近发布的KITTI立体数据集提供了新的立体图像质量,具有部分地面真实性,可用于对基准立体声匹配器进行基准测试。我们的目标是在应用于记录的数据集时,测试立体置信度量度的值(例如,视差图的左右一致性检查,或对成本函数的局部插值的斜率进行分析,并取其最小值),例如由KITTI发布。我们选择立体分析文献中可用的流行措施,并讨论这些措施的幼稚组合。使用稀疏化策略进行评估。虽然最好的单一置信度量度被证明是针对高视差图密度的左右一致性检查,但是通过提出的幼稚量度组合可以实现最佳的整体性能。我们认为仍然需要更具挑战性的数据集和更全面的地面真理。

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