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Adaptive Environmental Source Localization and Tracking with Unknown Permittivity and Path Loss Coefficients †

机译:具有未知介电常数和路径损耗系数的自适应环境源定位和跟踪†

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Accurate signal-source and signal-reflector target localization tasks via mobile sensory units and wireless sensor networks (WSNs), including those for environmental monitoring via sensory UAVs, require precise knowledge of specific signal propagation properties of the environment, which are permittivity and path loss coefficients for the electromagnetic signal case. Thus, accurate estimation of these coefficients has significant importance for the accuracy of location estimates. In this paper, we propose a geometric cooperative technique to instantaneously estimate such coefficients, with details provided for received signal strength (RSS) and time-of-flight (TOF)-based range sensors. The proposed technique is integrated to a recursive least squares (RLS)-based adaptive localization scheme and an adaptive motion control law, to construct adaptive target localization and adaptive target tracking algorithms, respectively, that are robust to uncertainties in aforementioned environmental signal propagation coefficients. The efficiency of the proposed adaptive localization and tracking techniques are both mathematically analysed and verified via simulation experiments.
机译:通过移动传感器单元和无线传感器网络(WSN)进行准确的信号源和信号反射器目标定位任务,包括通过传感器无人机进行环境监测的任务,需要精确了解环境的特定信号传播特性,即介电常数和路径损耗电磁信号情况下的系数。因此,对这些系数的精确估计对于位置估计的准确性具有重要意义。在本文中,我们提出了一种几何协作技术来即时估算此类系数,并为基于接收信号强度(RSS)和基于飞行时间(TOF)的距离传感器提供了详细信息。所提出的技术被集成到基于递归最小二乘(RLS)的自适应定位方案和自适应运动控制律中,以分别构建对上述环境信号传播系数的不确定性具有鲁棒性的自适应目标定位和自适应目标跟踪算法。通过仿真实验对提出的自适应定位和跟踪技术的效率进行了数学分析和验证。

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