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EVALUATION OF PENALTY FUNCTIONS FOR SEMI-GLOBAL MATCHING COST AGGREGATION

机译:半全球匹配成本聚集罚款罚款评估

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The stereo matching method semi-global matching (SGM) relies on consistency constraints during the cost aggregation which are enforced by so-called penalty terms. This paper proposes new and evaluates four penalty functions for SGM. Due to mutual dependencies, two types of matching cost calculation, census and rank transform, are considered. Performance is measured using original and degenerated images exhibiting radiometric changes and noise from the Middlebury benchmark. The two best performing penalty functions are inversely proportional and negatively linear to the intensity gradient and perform equally with 6.05 % and 5.91 % average error, respectively. The experiments also show that adaptive penalty terms are mandatory when dealing with difficult imaging conditions. Consequently, for highest algorithmic performance in real-world systems, selection of a suitable penalty function and thorough parametrization with respect to the expected image quality is essential.
机译:立体声匹配方法半全局匹配(SGM)依赖于通过所谓的惩罚术语强制执行的成本聚合期间的一致性约束。本文提出了新的并评估了SGM的四个惩罚职能。由于相互依赖性,考虑了两种类型的匹配成本计算,人口普查和等级变换。使用具有辐射测量和来自中间基准的辐射变化和噪声的原始和退化的图像来测量性能。两个最佳性能的惩罚功能对强度梯度成反比地和负面地线性,并且分别以6.05%和5.91%的平均误差同样执行。实验还表明,在处理困难的成像条件时,自适应罚款是强制性的。因此,对于真实世界系统中的最高算法性能,对相对于预期图像质量的选择合适的惩罚功能和彻底参数化是必不可少的。

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