Vehicle detection using TD2DHOG features

Mohamed A. Naiel, M. Ahmad, M. Swamy
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引用次数: 8

Abstract

Histogram of oriented gradients (HOG) is often used for object detection in images. These HOG features of images can be referred to as 2DHOG when represented in a 2D matrix format instead of a 1D vector. In this paper, we propose a new vehicle detection algorithm by using 2DHOG in the discrete cosine transform (DCT) domain. The proposed technique consists of extracting 2DHOG from the input image and applying on it 2DDCT. This is followed by a low pass filtering in order to obtain novel features called as transform-domain 2DHOG (TD2DHOG). TD2DHOG is used with a classifier pyramid in order to reduce the multi-scale scanning cost. Experimental results show that the proposed algorithm when applied on two public vehicle detection datasets reduces the storage requirement of the classifier pyramid, while providing about the same performance as that provided by the state-of-the-art techniques.
车辆检测采用TD2DHOG特征
定向梯度直方图(HOG)常用于图像中的目标检测。当以二维矩阵格式而不是一维矢量表示时,这些图像的HOG特征可以称为2DHOG。本文提出了一种基于离散余弦变换(DCT)域的2DHOG车辆检测算法。该方法从输入图像中提取2DHOG,并对其进行2dct处理。然后进行低通滤波,以获得称为变换域2DHOG (TD2DHOG)的新特征。TD2DHOG与分类器金字塔相结合,降低了多尺度扫描成本。实验结果表明,该算法在两个公共车辆检测数据集上的应用降低了分类器金字塔的存储需求,同时提供了与当前技术相同的性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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