DocumentCode :
2133227
Title :
The accuracy of factored nonlinear weighted least squares state estimation
Author :
Mathews, George M.
Author_Institution :
Nat. ICT Australia, Eveliegh, NSW, Australia
fYear :
2012
fDate :
9-12 Sept. 2012
Firstpage :
860
Lastpage :
866
Abstract :
The factored decomposition technique was recently proposed as a theoretical framework for distributed and hierarchical nonlinear weighted least squares state estimation algorithms for large interconnected power networks. This paper analyses the accuracy of the technique and shows it to be suboptimal when compared to the direct weighted least squares solution commonly used in existing power system state estimation systems. In addition a closed form expression is developed that predicts the expected error in the factored estimate for a given system operating point. A Monte Carlo analysis shows that the theoretical prediction is accurate for a simulated power system. The structure of the prediction is analysed and shown to be proportional to the square of the standard deviation of the measurement noise, suggesting that the error may be insignificant for power systems with reasonably accurate sensors.
Keywords :
Monte Carlo methods; distributed algorithms; least squares approximations; nonlinear estimation; power system interconnection; power system state estimation; Monte Carlo analysis; closed form expression; direct weighted least squares solution; distributed nonlinear weighted least squares state estimation algorithms; factored decomposition technique; factored nonlinear weighted least squares state estimation; hierarchical nonlinear weighted least squares state estimation algorithms; large interconnected power networks; measurement noise; power system state estimation systems; sensors; simulated power system; Equations; Noise; Noise measurement; Power systems; State estimation; Voltage measurement;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Energy Conference and Exhibition (ENERGYCON), 2012 IEEE International
Conference_Location :
Florence
Print_ISBN :
978-1-4673-1453-4
Type :
conf
DOI :
10.1109/EnergyCon.2012.6348272
Filename :
6348272
Link To Document :
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