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Statistical tuning of Adaptive-Weight Depth Map Algorithm

机译:自适应加权深度图算法的统计调整

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摘要

In depth map generation, the settings of the algorithm parameters to yield an accurate disparity estimation are usually chosen empirically or based on unplanned experiments -- A systematic statistical approach including classical and exploratory data analyses on over 14000 images to measure the relative influence of the parameters allows their tuning based on the number of bad pixels -- Our approach is systematic in the sense that the heuristics used for parameter tuning are supported by formal statistical methods -- The implemented methodology improves the performance of dense depth map algorithms -- As a result of the statistical based tuning, the algorithm improves from 16.78% to 14.48% bad pixels rising 7 spots as per the Middlebury Stereo Evaluation Ranking Table -- The performance is measured based on the distance of the algorithm results vs. the Ground Truth by Middlebury -- Future work aims to achieve the tuning by using signicantly smaller data sets on fractional factorial and surface-response designs of experiments
机译:在深度图生成中,通常根据经验或基于计划外的实验来选择算法参数的设置以产生准确的视差估计-一种系统统计方法,包括对超过14000张图像的经典和探索性数据分析,以测量参数的相对影响允许根据不良像素的数量进行调整-我们的方法是系统的,因为用于参数调整的试探法得到了正式的统计方法的支持-实现的方法提高了密集深度图算法的性能-结果统计调整的基础上,根据Middlebury立体声评估排名表,该算法将不良像素从增加了7个点的不良像素提高了16.78%到14.48%-性能是根据Middlebury的算法结果与地面真相的距离进行测量的- -未来的工作旨在通过使用分数阶乘和实验的表面响应设计

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