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DISTRIBUTED SCHEDULING OF MEASUREMENTS IN A SENSOR NETWORK FOR PARAMETER ESTIMATION OF SPATIO-TEMPORAL SYSTEMS

机译:传感器网络中测量的分布式调度以用于时空系统的参数估计

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摘要

The main aim of the paper is to develop a distributed algorithm for optimal node activation in a sensor network whose measurements are used for parameter estimation of the underlying distributed parameter system. Given a fixed partition of the observation horizon into a finite number of consecutive intervals, the problem under consideration is to optimize the percentage of the total number of observations spent at given sensor nodes in such a way as to maximize the accuracy of system parameter estimates. To achieve this, the determinant of the Fisher information matrix related to the covariance matrix of the parameter estimates is used as the qualitative design criterion (the so-called D-optimality). The proposed approach converts the measurement scheduling problem to a convex optimization one, in which the sensor locations are given a priori and the aim is to determine the associated weights, which quantify the contributions of individual gaged sites to the total measurement plan. Then, adopting a pairwise communication scheme, a fully distributed procedure for calculating the percentage of observations spent at given sensor locations is developed, which is a major novelty here. Another significant contribution of this work consists in derivation of necessary and sufficient conditions for the optimality of solutions. As a result, a simple and effective computational scheme is obtained which can be implemented without resorting to sophisticated numerical software. The delineated approach is illustrated by simulation examples of a sensor network design for a two-dimensional convective diffusion process.
机译:本文的主要目的是开发一种用于传感器网络中最佳节点激活的分布式算法,该传感器网络的测量值用于基础分布式参数系统的参数估计。给定观察范围的固定划分成有限数量的连续间隔,正在考虑的问题是,以使系统参数估计的准确性最大化的方式,优化在给定传感器节点上花费的观察总数的百分比。为此,将与参数估计的协方差矩阵相关的Fisher信息矩阵的行列式用作定性设计标准(所谓的D优化)。所提出的方法将测量调度问题转换为凸优化问题,其中先验地确定了传感器的位置,目的是确定相关的权重,从而量化各个测量站点对总体测量计划的贡献。然后,采用成对通信方案,开发了一种用于计算在给定传感器位置花费的观测百分比的全分布式程序,这在这里是一个主要的新颖性。这项工作的另一个重要贡献在于,为解决方案的优化推导了必要和充分的条件。结果,获得了一种简单而有效的计算方案,该方案无需依靠复杂的数值软件即可实现。通过二维对流扩散过程的传感器网络设计的仿真示例来说明所描绘的方法。

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