利用图像分割从立体对中重建基于图的表面

M. Bleyer, M. Gelautz
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引用次数: 99

摘要

提出了一种新的极极校正图像立体匹配算法。该方法对参考图像进行颜色分割。分割的使用使得该算法能够处理大面积的无纹理区域,估计精确的深度边界,并将视差信息传播到遮挡区域,这些都是传统立体方法所面临的挑战。我们用平面方程来模拟线段内的视差。将初始视差段聚类形成一组视差层,视差层是场景中可能出现的平面。然后,通过使用图切割的鲁棒优化技术,通过最小化全局成本函数来导出区段到视差层的分配。成本函数是在像素级和段级上定义的。像素级基于当前视差图测量数据相似度,并在两个视图中对称检测遮挡,而段级传播分割信息并包含平滑项。然后根据视差层的空间范围生成新的平面模型。基准和自记录图像对的结果表明,所提出的方法能够与性能最好的最先进的算法竞争。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Graph-based surface reconstruction from stereo pairs using image segmentation
This paper describes a novel stereo matching algorithm for epipolar rectified images. The method applies colour segmentation on the reference image. The use of segmentation makes the algorithm capable of handling large untextured regions, estimating precise depth boundaries and propagating disparity information to occluded regions, which are challenging tasks for conventional stereo methods. We model disparity inside a segment by a planar equation. Initial disparity segments are clustered to form a set of disparity layers, which are planar surfaces that are likely to occur in the scene. Assignments of segments to disparity layers are then derived by minimization of a global cost function via a robust optimization technique that employs graph cuts. The cost function is defined on the pixel level, as well as on the segment level. While the pixel level measures the data similarity based on the current disparity map and detects occlusions symmetrically in both views, the segment level propagates the segmentation information and incorporates a smoothness term. New planar models are then generated based on the disparity layers' spatial extents. Results obtained for benchmark and self-recorded image pairs indicate that the proposed method is able to compete with the best-performing state-of-the-art algorithms.
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