轮廓方向直方图代码:一个有效的基于hog的描述符,用于准确的人体检测

Wei Yang, Zhan Song, Xinyu Wu
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引用次数: 6

摘要

定向梯度直方图(Histograms of Oriented Gradients, HOG)是从图像或视频中进行人体检测的一种有效手段。基于HOG原理,本文提出了一种更有效的剪影方向直方图(Histogram of Silhouette Direction, HSD)方法。为了提取人体的轮廓图案,采用了平均背景模型。提出了一种结合亮度和颜色信息的新函数,对前景进行准确的自适应分割。方向码的直方图通过Freeman八方向链码(FCCE)沿着提取的轮廓构造,并作为特征描述符。与传统HOG描述符计算所有图像像素的梯度相比,HSD描述符可以大大减少特征维数和整个计算量。对真实视频序列的实验结果表明,该方法在分割效率和分割精度上都有所提高。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Histogram of Silhouette Direction code: An efficient HOG-based descriptor for accurate human detection
Histograms of Oriented Gradients (HOG) is an effective means for the human detection from image or video. Based on the HOG principle, this paper presents a more efficient method named Histogram of Silhouette Direction (HSD). To extract the silhouette pattern of human body, the average background model is used. A novel function that combined with brightness and color information is proposed to segment the foreground accurately and adaptively. The histogram of direction code is constructed via Freeman Chain Code of Eight Directions (FCCE) along the extracted silhouette and used as the feature descriptor. Compared with traditional HOG descriptor which calculates gradients of all image pixels, the proposed HSD descriptor can reduce the feature dimension and whole computation greatly. Experimental results with real video sequences show its improvements in both segmentation efficiency and accuracy.
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