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Recursive segmentation based on higher order statistics in thermal imaging pedestrian detection

机译:热成像行人检测中基于高阶统计量的递归分割

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Automatic pedestrian detection based on thermal imaging is currently performed in two steps. The segmentation step subdivides the image into multiple regions of interest (ROIs) discarding background regions, while the classification step discriminates pedestrians from non pedestrians in each candidate ROI. In this paper a computationally inexpensive new method is proposed for the segmentation step, which recursively subdivides the image into smaller and smaller rectangular ROIs until a candidate pedestrian is identified. ROI boundaries are found on the base of an adaptive threshold updated at each step of the algorithm, while threshold tuning relies on higher order statistics of gray level histograms. Tests performed on OTCBVS database demonstrate significant improvement over a recent literature method in terms of accuracy and efficiency of segmentation.
机译:当前,基于热成像的自动行人检测分两个步骤执行。分割步骤将图像细分为丢弃背景区域的多个感兴趣区域(ROI),而分类步骤则将每个候选ROI中的行人与非行人区分开。在本文中,为分割步骤提出了一种计算上便宜的新方法,该方法将图像递归地细分为越来越小的矩形ROI,直到识别出候选行人为止。在算法的每个步骤更新的自适应阈值的基础上找到ROI边界,而阈值调整则依赖于灰度直方图的高阶统计量。在OTCBVS数据库上执行的测试证明,在分割的准确性和效率方面,与最近的文献方法相比有了显着的改进。

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