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Local Stereo Matching Using Adaptive Local Segmentation

机译:基于自适应局部分割的局部立体匹配

摘要

We propose a new dense local stereo matching framework for gray-level images based on an adaptive local segmentation using a dynamic threshold. We define a new validity domain of the fronto-parallel assumption based on the local intensity variations in the 4-neighborhood of the matching pixel. The preprocessing step smoothes low textured areas and sharpens texture edges, whereas the postprocessing step detects and recovers occluded and unreliable disparities. The algorithm achieves high stereo reconstruction quality in regions with uniform intensities as well as in textured regions. The algorithm is robust against local radiometrical differences; and successfully recovers disparities around the objects edges, disparities of thin objects, and the disparities of the occluded region. Moreover, our algorithm intrinsically prevents errors caused by occlusion to propagate into nonoccluded regions. It has only a small number of parameters. The performance of our algorithm is evaluated on the Middlebury test bed stereo images. It ranks highly on the evaluation list outperforming many local and global stereo algorithms using color images. Among the local algorithms relying on the fronto-parallel assumption, our algorithm is the best ranked algorithm. We also demonstrate that our algorithm is working well on practical examples as for disparity estimation of a tomato seedling and a 3D reconstruction of a face.
机译:我们基于使用动态阈值的自适应局部分割,为灰度图像提出了一种新的密集局部立体声匹配框架。我们基于匹配像素的4邻域中的局部强度变化,定义了一个正面平行假设的新有效性域。预处理步骤可平滑低纹理区域并锐化纹理边缘,而后处理步骤可检测并恢复被遮挡和不可靠的视差。该算法在强度均匀的区域以及纹理区域中实现了较高的立体声重建质量。该算法对局部辐射测量差异具有鲁棒性。并成功地恢复了物体边缘周围的视差,薄物体的视差以及被遮挡区域的视差。此外,我们的算法从本质上防止了由遮挡引起的错误传播到非遮挡区域。它只有少量参数。我们在米德尔伯里(Middlebury)测试台立体图像上评估了算法的性能。它在评估列表中的排名很高,胜过使用彩色图像的许多本地和全局立体声算法。在依赖额叶平行假设的局部算法中,我们的算法是排名最高的算法。我们还证明了我们的算法在实际示例中效果很好,例如番茄幼苗的视差估计和面部3D重建。

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