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Combining patch matching and detection for robust pedestrian tracking in monocular calibrated cameras

机译:结合斑块匹配和检测,可在单眼校准摄像机中实现可靠的行人跟踪

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摘要

This paper presents a new approach for tracking multiple people in monocular calibrated cameras combining patch matching and pedestrian detection. Initially, background removal and pedestrian detection are used in conjunction with the vertical standing hypothesis to initialize the targets with multiples patches. In the tracking step, each patch related to a given target is matched individually across frames, and their translation vectors are combined robustly with pedestrian detection results in the world coordinate frame using weighted vector median filters. Additionally, the algorithm uses the camera parameters to both estimate the person scale in a straightforward manner and to limit the search region used to track each fragment. Our experimental results indicate that our tracker can deal with occlusions and video sequences with strong appearance variations, presenting results comparable to or better than existing state-of-the-art algorithms.
机译:本文提出了一种新的方法,该方法结合了斑块匹配和行人检测功能,可以在单眼校准摄像机中跟踪多人。最初,将背景去除和行人检测与垂直站立假设结合使用来初始化具有多个补丁的目标。在跟踪步骤中,与给定目标相关的每个面片在帧之间进行单独匹配,并使用加权矢量中值滤波器将它们的转换向量与世界坐标系中的行人检测结果牢固结合在一起。此外,该算法使用相机参数既可以直接估算人员比例,又可以限制用于跟踪每个片段的搜索区域。我们的实验结果表明,我们的跟踪器可以处理具有强烈外观变化的遮挡和视频序列,其结果可与现有的最新算法相媲美或更好。

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