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Stereo Matching Using Iterative Dynamic Programming Based on Color Segmentation of Images

机译:基于图像颜色分割的迭代动态编程立体声匹配

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—The traditional dynamic programming stereo matching algorithms usually adopt the disparity assumption based on the intensity change of images; With the development of stereo matching technique, the disparity assumption based on image color segmentation is proved to meet better the need of true scenes. The paper introduces the disparity assumption into the stereo matching using dynamic programming, proposes a new global energy function, which not only resolves the problem of traditional dynamic programming stereo matching algorthm that the energy function is short of intensity and disparity constraints between scan lines but also can be computed more exactly because the adopted dissimillarity function propsed by Birchfield is extended from 2-connect neighborhood to 8-connect neighborhood. The energy function can converge fast because of the proposed pruning algorithm based on color segmentation. The experiments show that the proposed method produces competitive results with the 2-dimensional energy function minimized algorithm but has the much lower computing cost than them.
机译:- 传统的动态编程立体声匹配算法通常根据图像的强度变化采用差异假设;随着立体声匹配技术的发展,证明了基于图像颜色分割的差异假设,以满足对真实场景的需要。本文介绍了使用动态编程的立体声匹配中的差异假设,提出了一种新的全局能量函数,这不仅可以解决传统动态编程立体声匹配的问题,即能量函数是扫描线之间的强度和差异约束的缺点。可以更准确地计算,因为Birchfield所提出的采用的百分比函数从2连接邻域延伸到8个连接邻域。由于基于颜色分割的提出算法,能量函数可以快速收敛。实验表明,该方法采用二维能量函数最小化算法产生竞争力,但计算成本低得多。

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