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Bias-corrected optical flow estimation for road vehicle tracking

机译:偏差校正的光流量估算,用于道路车辆跟踪

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Model-based vehicle tracking in traffic image sequences can be made more robust by matching expected displacement rates of vehicle surface points to optical flow (OF) vectors computed from an image sequence. The capability to track vehicles uninterruptedly in this manner over extended image sequences results in the ability to investigate even small errors in OF estimation. It turns out that the OF magnitudes are systematically underestimated. The-albeit small-bias can be corrected by analyzing the influence of explicitly modeled grey value noise on the precision of OF values estimated by means of the neighborhood sampling method.
机译:通过将车辆表面点的预期位移率与从图像序列计算出的光流(OF)向量相匹配,可以使交通图像序列中基于模型的车辆跟踪更加鲁棒。以这种方式在扩展的图像序列上不间断地跟踪车辆的能力导致了研究OF估计中甚至很小的误差的能力。事实证明,OF量级被系统地低估了。尽管可以通过分析显式建模的灰度值噪声对借助邻域采样方法估算的OF值的精度的影响来校正小偏差。

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