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Detection and Tracking of Multiple, Partially Occluded Humans by Bayesian Combination of Edgelet based Part Detectors

机译:基于Edgelet的零件检测器的贝叶斯组合对多个部分被遮挡的人进行检测和跟踪

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摘要

Detection and tracking of humans in video streams is important for many applications. We present an approach to automatically detect and track multiple, possibly partially occluded humans in a walking or standing pose from a single camera, which may be stationary or moving. A human body is represented as an assembly of body parts. Part detectors are learned by boosting a number of weak classifiers which are based on edgelet features. Responses of part detectors are combined to form a joint likelihood model that includes an analysis of possible occlusions. The combined detection responses and the part detection responses provide the observations used for tracking. Trajectory initialization and termination are both automatic and rely on the confidences computed from the detection responses. An object is tracked by data association and meanshift methods. Our system can track humans with both inter-object and scene occlusions with static or non-static backgrounds. Evaluation results on a number of images and videos and comparisons with some previous methods are given.
机译:对视频流中的人进行检测和跟踪对于许多应用而言都很重要。我们提出了一种方法,该方法可以通过单个摄像机(可以是静止的或移动的)以步行或站立姿势自动检测和跟踪多个可能被部分遮挡的人。人体被表示为身体部位的集合。通过增强许多基于Edgelet特征的弱分类器来学习零件检测器。零件检测器的响应被组合以形成一个联合似然模型,该模型包括对可能的咬合的分析。组合的检测响应和零件检测响应提供了用于跟踪的观察结果。轨迹初始化和终止都是自动的,并且依赖于根据检测响应计算出的置信度。通过数据关联和均值漂移方法跟踪对象。我们的系统可以跟踪具有静态或非静态背景的物体间和场景遮挡的人员。给出了许多图像和视频的评估结果,并与一些以前的方法进行了比较。

著录项

  • 来源
    《International Journal of Computer Vision》 |2007年第2期|247-266|共20页
  • 作者

    Bo Wu; Ram Nevatia;

  • 作者单位

    University of Southern California Institute for Robotics and Intelligent Systems Los Angeles CA 90089-0273 USA;

    University of Southern California Institute for Robotics and Intelligent Systems Los Angeles CA 90089-0273 USA;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    human detection; human tracking; AdaBoost;

    机译:人体检测;人体跟踪;AdaBoost;

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