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Rate-Constrained Distributed Estimation in Wireless Sensor Networks

机译:无线传感器网络中的速率约束分布式估计

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摘要

In this paper, we consider the distributed parameter estimation in wireless sensor networks where a total bit rate constraint is imposed. We study the optimal tradeoff between the number of active sensors and the quantization bit rate for each active sensor to minimize the estimation mean-square error (MSE). To facilitate the solution, we first introduce a concept of equivalent 1-bit MSE function. Next, we present an optimal distributed estimation algorithm for homogeneous sensor networks based on minimizing the equivalent 1-bit MSE function. Then, we present a quasi-optimal distributed estimation algorithm for heterogeneous sensor networks, which is also based on the equivalent 1-bit MSE function, and the upper bound of the estimation MSE of the proposed algorithm is addressed. Furthermore, a theoretical nonachievable lower bound of the estimation MSE under the total bit rate constraint is stated and it is shown that our proposed algorithm is quasi-optimal within a factor 2.2872 of the theoretical lower bound. Simulation results also show that significant reduction in estimation MSE is achieved by our proposed algorithm when compared with other uniform methods.
机译:在本文中,我们考虑了施加总比特率约束的无线传感器网络中的分布式参数估计。我们研究了有源传感器的数量与每个有源传感器的量化比特率之间的最佳折衷,以最小化估计均方误差(MSE)。为了简化解决方案,我们首先引入等效的1位MSE功能的概念。接下来,我们提出一种基于最小化等效1位MSE函数的同类传感器网络的最佳分布式估计算法。然后,我们提出了一种针对异构传感器网络的准最优分布式估计算法,该算法也是基于等效的1位MSE函数,并解决了该算法的估计MSE的上限。进一步地,给出了在总比特率约束下估计MSE的理论上无法实现的下界,并且表明我们提出的算法在理论下界的2.2872内是最佳的。仿真结果还表明,与其他统一方法相比,通过我们的算法可以显着降低估计的MSE。

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