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Running person detection from a community patrol robot

机译:从社区巡逻机器人检测跑步者

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摘要

In this paper, a running person detection method is proposed for the community patrol robot. The challenges include the diversity of movement direction and the ego-motion of camera. The diversity of movement direction means that it is difficult to gain high accuracy detection by only using appearance information. The ego-motion of camera means that the motion information contains high noise. To address these limitations, two-stream architecture of convolutional networks, spatial stream and motion stream, is proposed to capture the complementary information on appearance from still frames and motion between frames. In addition, simple but effective filtering based ego-motion elimination technique is applied in motion stream input calculation. We demonstrate the efficiency of the proposed method on the video captured from the community scene and the performance compared with existing methods, which validates that the proposed method detects running person more accurately.
机译:本文提出了一种社区巡逻机器人的运行人检测方法。挑战包括运动方向的多样性和相机的自我运动。移动方向的多样性意味着仅通过使用外观信息就难以获得高精度的检测。相机的自我运动意味着运动信息包含高噪声。为了解决这些局限性,提出了卷积网络的两流体系结构,空间流和运动流,以从静止帧和帧之间的运动中捕获外观上的补充信息。此外,在运动流输入计算中采用了基于简单但有效的自我运动消除技术的滤波技术。与现有方法相比,我们证明了该方法在从社区场景捕获的视频上的效率和性能,这证明了该方法可以更准确地检测跑步者。

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