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Dense disparity maps from sparse disparity measurements

机译:稀疏视差测量的密集视差图

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摘要

In this work we propose a method for estimating disparity maps from very few measurements. Based on the theory of Compressive Sensing, our algorithm accurately reconstructs disparity maps only using about 5% of the entire map. We propose a conjugate subgradient method for the arising optimization problem that is applicable to large scale systems and recovers the disparity map efficiently. Experiments are provided that show the effectiveness of the proposed approach and robust behavior under noisy conditions.
机译:在这项工作中,我们提出了一种从极少的测量值估计视差图的方法。基于压缩感测理论,我们的算法仅使用整个地图的5%即可准确地重建视差图。针对提出的优化问题,我们提出了一种共轭次梯度方法,该方法适用于大规模系统,可以有效地恢复视差图。提供的实验表明,该方法的有效性和在嘈杂条件下的鲁棒行为。

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