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Development of a Robust UFIR Filter with Consensus on Estimates for Missing Data and unknown noise statistics over WSNs

机译:开发一种鲁棒的UFIR滤波器,在WSN上对丢失数据和未知噪声统计的估计达成共识

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Wireless sensor networks (WSN) are often deployed in harsh environments, where electromagnetic interference, damaged sensors, or the landscape itself cause the network to suffer from faulty links and missing data. In this paper, we develop an unbiased finite impulse response (UFIR) filtering algorithm for optimal consensus on estimates in distributed WSN. Simulations are provided assuming two possible scenarios with missing data. The results show that the distributed UFIR filter is more robust than the distributed Kalman filter against missing data.
机译:无线传感器网络(WSN)通常部署在恶劣的环境中,在这些环境中,电磁干扰,传感器损坏或景观本身会使网络遭受链路故障和数据丢失的困扰。在本文中,我们开发了一种无偏有限冲激响应(UFIR)过滤算法,用于对分布式WSN中的估计值达成最佳共识。假设缺少数据的两种可能情况下提供了仿真。结果表明,针对丢失数据,分布式UFIR滤波器比分布式Kalman滤波器更健壮。

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