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MAP Estimator for Target Tracking in Wireless Sensor Networks for Unknown Transmit Power

机译:MAP估计器,用于未知传感器的无线传感器网络中的目标跟踪

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This paper addresses the target tracking problem, by extracting received signal strength (RSS) and angle of arrival (AoA) information from the received radio signal, in the case where the target transmit power is considered unknown. By combining the radio observations with prior knowledge given by the target transition state model, we apply the maximum a posteriori (MAP) criterion to the marginal posterior distribution function (PDF). However, the derived MAP estimator cannot be solved directly, so we tightly approximate it for small noise power. The target state estimate is then easily obtained at any time step by employing a recursive approach, typical for Bayesian methods. Our simulations confirm the effectiveness of the proposed algorithm, offering good estimation accuracy in all considered scenarios.
机译:在目标发射功率未知的情况下,本文通过从接收到的无线电信号中提取接收信号强度(RSS)和到达角(AoA)信息来解决目标跟踪问题。通过将无线电观测结果与目标过渡状态模型给出的先验知识相结合,我们将最大后验(MAP)标准应用于边际后验分布函数(PDF)。但是,导出的MAP估计器无法直接求解,因此对于较小的噪声功率,我们将其紧密逼近。然后,通过采用贝叶斯方法典型的递归方法,可以轻松地在任何时间步获得目标状态估计值。我们的仿真证实了所提出算法的有效性,在所有考虑的情况下都提供了良好的估计精度。

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