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Occlusion handling and human detection based on Histogram of Oriented Gradients for automatic video surveillance

机译:基于针对自动视频监控的导向梯度直方图的闭塞处理和人体检测

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Human detection in a video surveillance system has vast application areas including suspicious event detection and human activity recognition. In the current environment of our society suspicious event detection is a burning issue. For that reason, this paper proposes a framework for detecting humans in different appearances and poses by generating a human feature vector. Initially, every pixel of a frame is represented as an incorporation of several Gaussians and use a probabilistic method to refurbish the representation. These Gaussian representations are then estimated to classify the background pixels from foreground pixels. Shadow regions are eliminated from foreground by utilizing a Hue-Intensity disparity value between background and current frame. Then morphological operation is used to remove discontinuities in the foreground extracted from the shadow elimination process. Partial occlusion handling is utilized by color correlogram to label objects within a group. After that, the framework generates ROIs by determining which of the foregrounds represent human by considering conditions related to human body. Finally, Histogram of Oriented Gradients (HOG) feature is extracted from ROI for classification. Various videos containing moving humans are utilized to evaluate the proposed framework and presented outcomes demonstrate the adequacy.
机译:视频监控系统中的人类检测具有巨大的应用领域,包括可疑事件检测和人类活动识别。在我们社会的当前环境中,可疑事件检测是一种燃烧问题。因此,本文提出了一种框架,用于通过产生人体特征向量来检测不同外观和姿势的人类的框架。最初,帧的每个像素被表示为多个高斯的结合,并使用概率方法来翻新表示。然后估计这些高斯表示以将背景像素与前景像素分类。通过利用背景和当前帧之间的色调强度视差值,从前景中消除影子区域。然后,形态学操作用于去除从阴影消除过程中提取的前景中的不连续性。通过颜色相关性地利用部分闭塞处理到组内的标签对象。之后,通过考虑与人体有关的条件,该框架通过确定哪个前景代表人体来产生ROI。最后,从ROI中提取取向梯度(HOG)特征的直方图以进行分类。含有移动人类的各种视频用于评估所提出的框架并提出的结果证明了充分性。

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