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Three hypothesis algorithm with occlusion reasoning for multiple people tracking

机译:具有遮挡推理的多人跟踪三种假设算法

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This work proposes a detection-based tracking algorithm able to locate and keep the identity of multiple people, who may be occluded, in uncontrolled stationary environments. Our algorithm builds a tracking graph that models spatio-temporal relationships among attributes of interacting people to predict and resolve partial and total occlusions. When a total occlusion occurs, the algorithm generates various hypotheses about the location of the occluded person considering three cases: (a) the person keeps the same direction and speed, (b) the person follows the direction and speed of the occluder, and (c) the person remains motionless during occlusion. By analyzing the graph, our algorithm can detect trajectories produced by false alarms and estimate the location of missing or occluded people. Our algorithm performs acceptably under complex conditions, such as partial visibility of individuals getting inside or outside the scene, continuous interactions and occlusions among people, wrong or missing information on the detection of persons, as well as variation of the person's appearance due to illumination changes and background-clutter distracters. Our algorithm was evaluated on test sequences in the field of intelligent surveillance achieving an overall precision of 93%. Results show that our tracking algorithm outperforms even trajectory-based state-of-the-art algorithms. (C) 2015 SPIE and IS&T
机译:这项工作提出了一种基于检测的跟踪算法,该算法能够在不受控制的固定环境中定位并保留可能被遮挡的多个人的身份。我们的算法构建了一个跟踪图,该图对交互的人的属性之间的时空关系进行建模,以预测和解决部分和全部遮挡。当发生完全遮挡时,该算法会考虑以下三种情况生成有关被遮挡人员位置的各种假设:(a)该人员保持相同的方向和速度,(b)该人员遵循遮挡物的方向和速度,并且( c)该人在闭塞过程中保持不动。通过分析图形,我们的算法可以检测到由错误警报产生的轨迹,并估计失踪或被遮挡人员的位置。我们的算法在复杂的条件下(例如,进入场景内或场景外的人员的部分可见性,人与人之间的持续交互和遮挡,关于人的检测的错误或丢失的信息以及由于光照变化而导致的人的外观变化)的可接受性能和背景混乱的干扰因素。我们的算法在智能监控领域的测试序列上进行了评估,总体精度达到93%。结果表明,我们的跟踪算法甚至优于基于轨迹的最新算法。 (C)2015 SPIE和IS&T

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