基于成本聚合的局部立体视差估计提高了汽车应用的亚像素精度

Zhen Zhang, X. Ai, C. N. Canagarajah, N. Dahnoun
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引用次数: 11

摘要

提出了一种基于成本聚合的标定立体图像局部视差计算算法。不同于大多数基于颜色相似度分组的成本聚合方法,该算法采用局部成本相似度分组。该算法还应用双边滤波器来增强归一化代价量,然后使用赢家通吃技术来选择对应的候选对象。最后,利用候选图像及其邻域值进行二次多项式插值,实现亚像素级的视差分辨率。实验结果表明,该算法能够提供亚像素分辨率的密集视差图,与两种相似的立体匹配算法相比,具有更好的精度。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Local stereo disparity estimation with novel cost aggregation for sub-pixel accuracy improvement in automotive applications
This paper presents a local disparity calculation algorithm on calibrated stereo images based on cost aggregation. Unlike most of the existing cost aggregation methods which are mainly based on the grouping of colour similarities, the proposed algorithm is grouped by local cost similarities. The proposed algorithm also applies a bilateral filter to enhance the normalised cost volume and, then, uses the winner-take-all technique to select the correspondence candidates. Finally, a quadratic polynomial interpolation is performed using the candidates and their neighbourhood values to achieve sub-pixel disparity resolution. The experimental results indicate that the proposed algorithm is able to provide dense disparity maps with sub-pixel resolution and achieves better accuracy compared to two similar stereo matching algorithms.
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