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Improved target tracking using regression tree in wireless sensor networks

机译:使用无线传感器网络中的回归树改进目标跟踪

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Positioning and tracking of wireless devices in indoor environment is a challenging research problem. Accurate localization of a moving target is a fundamental requirement in Wireless Sensor Networks monitoring applications. In this paper, a novel location tracking algorithm which combines learning methods is proposed. In previous work, regression tree using received signal strength method is proposed to localize a static sensor node. This approach is employed in this paper to solve the complex relation between the received signal strength and the target position. Then, an ensemble of trees are applied leading to more accurate position of the moving target. The proposed algorithm has been experimentally evaluated using real measurement of a moving target in an office room. The performance results have been analyzed through a comparison with the standard regression tree and ordinary Kalman filter.
机译:室内环境中无线设备的定位和跟踪是一个具有挑战性的研究问题。移动目标的精确定位是无线传感器网络监视应用程序的基本要求。本文提出了一种结合学习方法的新型位置跟踪算法。在先前的工作中,提出了使用接收信号强度方法的回归树来定位静态传感器节点。本文采用这种方法来解决接收信号强度与目标位置之间的复杂关系。然后,应用树木的集合,以使移动目标的位置更加准确。所提出的算法已通过对办公室中移动目标的真实测量进行了实验评估。通过与标准回归树和普通卡尔曼滤波器进行比较,对性能结果进行了分析。

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