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Mobile sensing and simultaneously node localization in wireless sensor networks for human motion tracking

机译:无线传感网络中的移动感应和同时节点定位,用于人体运动跟踪

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This paper exploits optimal position of the mobile sensor to improve the target tracking performance of wireless sensor networks and simultaneously localize both of the static sensor nodes and mobile sensor nodes when tracking the human motion. In our approach, mobile sensors collaborate with static sensors and move optimally to achieve the required detection performance. The accuracy of final tracking result is then improved as the measurements of mobile sensors have higher signal-to-noise ratios after the movement. Specifically, we can simultaneously localize the mobile sensor and static sensors position when localizing the human's position based on augmented extended Kalman filters (EKF). In the algorithm, we develop a sensor movement optimization algorithm that achieves near-optimal system tracking performance. We also presented an sensor nodes management scheme in order to deduce the computation complexity when localizing the static sensor nodes. The effectiveness of our approach is validated by extensive simulations using the simulations.
机译:本文利用移动传感器的最佳位置来提高无线传感器网络的目标跟踪性能,同时在跟踪人体运动时同时定位静态传感器节点和移动传感器节点。在我们的方法中,移动传感器与静态传感器协作,并以最佳方式移动以实现所需的检测性能。随着移动传感器的测量在运动后具有更高的信噪比,最终跟踪结果的准确性得以提高。具体而言,当基于增强扩展卡尔曼滤波器(EKF)定位人的位置时,我们可以同时定位移动传感器和静态传感器的位置。在该算法中,我们开发了一种传感器运动优化算法,可实现接近最佳的系统跟踪性能。我们还提出了一种传感器节点管理方案,以便在本地化静态传感器节点时推断出计算复杂性。我们的方法的有效性通过使用模拟的广泛模拟得到了验证。

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