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A performance analysis of dense stereo correspondence algorithms and error reduction techniques

机译:密集立体对应算法的性能分析及误差减少技术

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摘要

Dense stereo correspondence has been intensely studied and there exists a wide variety of proposed solutions in the literature. Different datasets have been constructed to test stereo algorithms, however, their ground truth formation and scene types vary. In this paper, state-of-the-art algorithms are compared using a number of datasets captured under varied conditions, with accuracy and density metrics forming the basis of a performance evaluation. Pre- and post-processing disparity map error reduction techniques are quantified.
机译:密集的立体对应已被深入研究,并且在文献中存在各种各样的提出的解决方案。已经构建了不同的数据集来测试立体声算法,但是,它们的地面真相形成和场景类型各不相同。在本文中,使用在不同条件下捕获的许多数据集比较了最新算法,而准确性和密度指标构成了性能评估的基础。量化处理前后的视差图误差减少技术。

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