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Distributed estimation of a parametric field under energy constraint

机译:能量约束下参数域的分布估计

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This paper studies the problem of distributed parameter estimation in wireless sensor network under energy constraints. Optimization formulas that guarantee the best estimation performance from the available energy are derived. The network consists of sensors that are deployed over an area at random. Sensors' observations are noisy measurements of an underlying field. Sensors have limited energy for the transmission process. Each sensor processes its observation prior to transmitting it to a fusion center, where a field parameter vector is estimated. Transmission channels between the sensors and the fusion center are assumed to be noisy parallel channels. The sensors' locations, the noise probability density function, and the field characteristic function are assumed to be known at the fusion center. This work presents two strategies that can be followed for optimal energy allocation:(1) Minimizing Cramer-Rao Lower Bound of the estimates with respect to energy allocation (2) Minimizing the sensors' observations transmission error with respect to energy allocation. Simulation results which support the optimization formulas are shown.
机译:本文研究了能量约束下无线传感器网络中分布式参数估计问题。提供了从可用能量中获得最佳估计性能的优化公式。该网络由随机部署在区域上的传感器组成。传感器的观察结果是底层的噪声测量。传感器能量有限的传动过程。每个传感器在将其发送到融合中心之前,每个传感器处理其观察,其中估计场参数向量。假设传感器和融合中心之间的传输通道被假定为嘈杂的并行通道。在融合中心假设传感器的位置,噪声概率密度函数和场特征函数。这项工作提出了两种策略,可以遵循最佳能量分配:(1)最小化关于能量分配(2)最小化传感器观察到能量分配的观察传输误差的估计的升降率。显示了支持优化公式的仿真结果。

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