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An HOG-CT human detector with histogram-based search

机译:基于直方图搜索的HOG-CT人体探测器

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This paper addresses the problem of human detection in still images. We first describe a novel descriptor concatenating the local normalized histogram of oriented gradients (HOG) and the global normalized histogram of census transform (CT) of images for human detection. The detector is trained by using cascade learning method based on AdaBoost. In addition, we propose an easy histogram-based search method, termed the block histogram, which can reduce the computational cost and speed up the process of detection when sliding in the test image. Experimental results on the INRIA person dataset show that the proposed method can achieve competitive results both in discriminating power and detection speed as compared to the state-of-the-art.
机译:本文解决了静态图像中人为检测的问题。我们首先描述一个新颖的描述符,它将人类定向的图像的局部梯度直方图(HOG)和普查变换的全局归一化直方图(CT)连接起来。通过使用基于AdaBoost的级联学习方法对检测器进行训练。此外,我们提出了一种简单的基于直方图的搜索方法,称为块直方图,该方法可以降低计算成本并加快在测试图像中滑动时的检测过程。在INRIA人数据集上的实验结果表明,与最新技术相比,该方法在辨别能力和检测速度上均可以达到竞争性结果。

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