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Dynamic Topology Adaptation and Distributed Estimation for Smart Grids

2014/01/14 by Songcen Xu, S. Xu, Rodrigo C. de Lamare +6
Computer Science · Engineering · Mathematics · #Advanced Adaptive Filtering Techniques #FOS: Computer and information sciences #Image and Signal Denoising Methods #Information Theory (cs.IT) #Machine Learning (cs.LG) #Speech and Audio Processing #cs.IT #cs.LG #math.IT

paper · pdf · doi:10.48550/arxiv.1401.3148

4 figures, 1 table

arxiv created 2014/01/14 · openalex publication_date 2014/01/14 · arxiv updated 2014/01/16 · openalex created_date 2025/10/10 · openalex updated_date 2026/07/28

Abstract

This paper presents new dynamic topology adaptation strategies for distributed estimation in smart grids systems. We propose a dynamic exhaustive search--based topology adaptation algorithm and a dynamic sparsity--inspired topology adaptation algorithm, which can exploit the topology of smart grids with poor--quality links and obtain performance gains. We incorporate an optimized combining rule, named Hastings rule into our proposed dynamic topology adaptation algorithms. Compared with the existing works in the literature on distributed estimation, the proposed algorithms have a better convergence rate and significantly improve the system performance. The performance of the proposed algorithms is compared with that of existing algorithms in the IEEE 14--bus system.

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