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Human tracking from a mobile agent: Optical flow and Kalman filter arbitration

机译:来自移动代理的人工跟踪:光流和卡尔曼滤波器仲裁

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摘要

Tracking moving objects is one of the most important but problematic features of motion analysis and understanding. The Kalman filter (KF) has commonly been used for estimation and prediction of the target position in succeeding frames. In this paper, we propose a novel and efficient method of tracking, which performs well even when the target takes a sudden turn during its motion. The proposed method arbitrates between KF and Optical flow (OF) to improve the tracking performance. Our system utilizes a laser to measure the distance to the nearest obstacle and an infrared camera to find the target. The relative data is then fused with the Arbitrate OFKF filter to perform real-time tracking. Experimental results show our suggested approach is very effective and reliable for estimating and tracking moving objects.
机译:跟踪运动对象是运动分析和理解的最重要但有问题的功能之一。卡尔曼滤波器(KF)通常用于后续帧中目标位置的估计和预测。在本文中,我们提出了一种新颖有效的跟踪方法,即使目标在运动过程中突然转弯,该方法也能很好地执行跟踪。所提出的方法在KF和光流(OF)之间进行仲裁以提高跟踪性能。我们的系统利用激光测量到最近障碍物的距离,并使用红外热像仪找到目标。然后,将相对数据与仲裁OFKF过滤器融合以执行实时跟踪。实验结果表明,我们提出的方法对于估计和跟踪运动物体非常有效且可靠。

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