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首页> 外文期刊>International Journal of Social Robotics >Vision-Based System for Human Detection and Tracking in Indoor Environment
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Vision-Based System for Human Detection and Tracking in Indoor Environment

机译:基于视觉的室内环境下人体检测与跟踪系统

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摘要

In this paper, we propose a vision-based system for human detection and tracking in indoor environment using a static camera. The proposed method is based on object recognition in still images combined with methods using temporal information from the video. Doing that, we improve the performance of the overall system and reduce the task complexity. We first use background subtraction to limit the search space of the classifier. The segmentation is realized by modeling each background pixel by a single Gaussian model. As each connected component detected by the background subtraction potentially corresponds to one person, each blob is independently tracked. The tracking process is based on the analysis of connected components position and interest points tracking. In order to know the nature of various objects that could be present in the scene, we use multiple cascades of boosted classifiers based on Haar-like filters. We also present in this article a wide evaluation of this system based on a large set of videos.
机译:在本文中,我们提出了一种基于视觉的系统,用于使用静态相机在室内环境中进行人体检测和跟踪。所提出的方法基于静止图像中的对象识别,并结合了使用视频中的时间信息的方法。这样做,我们可以改善整个系统的性能并降低任务复杂性。我们首先使用背景减法来限制分类器的搜索空间。通过使用单个高斯模型对每个背景像素建模来实现分割。由于通过背景减法检测到的每个连接的组件都可能对应一个人,因此每个斑点都被独立跟踪。跟踪过程基于对连接组件位置和兴趣点跟踪的分析。为了了解场景中可能存在的各种对象的性质,我们使用了基于类似Haar滤波器的增强分类器的多个级联。在本文中,我们还将根据大量视频对该系统进行广泛的评估。

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