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Triple-SGM: Stereo Processing using Semi-Global Matching with Cost Fusion

机译:Triple-SGM:使用半全局匹配和成本融合的立体声处理

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In this work, we propose an extension of the Semi-Global Matching framework for three images from a triplet-stereo rig consisting of a horizontal and vertical camera pair. After calculating the matching costs separately for both image pairs, these are merged at cost level using cubic spline interpolation. For cost values near the left/bottom image boundaries, we propose an advanced weighting strategy. Subsequently, the fused matching can be used directly for the cost aggregation and disparity estimation.The benefits of the proposed fusion strategy are demonstrated by an evaluation based on synthetic and real-world data. To encourage further comparisons on triple stereo algorithms, the dataset used for evaluation is made publicly available.
机译:在这项工作中,我们提出了一种“半全局匹配”框架的扩展,该框架可用于由三对立体声装置(由水平和垂直相机对组成)组成的三幅图像。在分别计算了两个图像对的匹配成本之后,使用三次样条插值以成本级别合并这些图像。对于左侧/底部图像边界附近的成本值,我们提出了一种先进的加权策略。随后,融合匹配可直接用于成本汇总和差异估计。通过基于合成数据和实际数据的评估,证明了所提出融合策略的优势。为了鼓励对三重立体声算法进行进一步的比较,用于评估的数据集已公开提供。

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