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High-Speed Human Detection Using a Multiresolution Cascade of Histograms of Oriented Gradients

机译:使用定向梯度直方图的多分辨率级联进行高速人体检测

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This paper presents a new method for human detection based on a multiresolution cascade of Histograms of Oriented Gradients (HOG) that can highly reduce the computational cost of the detection search without affecting accuracy. The method consists of a cascade of sliding window detectors. Each detector is a Support Vector Machine (SVM) composed by features at different resolution, from coarse for the first level to fine for the last one.rnConsidering that the spatial stride of the sliding window search is affected by the HOG features size, unlike previous methods based on Adaboost cascades, we can adopt a spatial stride inversely proportional to the features resolution. This produces that the speed-up of the cascade is not only due to the low number of features that need to be computed in the first levels, but also to the lower number of detection windows that needs to be evaluated.rnExperimental results shows that our method permits a detection rate comparable with the state of the art, but at the same time a gain in the speed of the detection search of 10-20 times depending on the cascade configuration.
机译:本文提出了一种基于定向梯度直方图(HOG)的多分辨率级联的人类检测新方法,该方法可以在不影响准确性的情况下极大地降低检测搜索的计算成本。该方法由一系列滑动窗口检测器组成。每个检测器都是由不同分辨率的特征组成的支持向量机(SVM),从第一个级别的粗糙到最后一个级别的精细。rn考虑到滑动窗口搜索的空间跨度受HOG特征大小的影响,这与之前的基于Adaboost级联的方法,我们可以采用与特征分辨率成反比的空间跨度。这导致级联的加速不仅是由于需要在第一级中计算的特征数量少,而且还因为需要评估的检测窗口数量较少。rn实验结果表明,该方法允许的检测速率与现有技术相当,但是同时,根据级联配置,检测搜索速度可提高10-20倍。

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