LAPSE:2023.23070
Published Article
LAPSE:2023.23070
Phasor Estimation for Grid Power Monitoring: Least Square vs. Linear Kalman Filter
March 27, 2023
This paper deals with a comparative study of two phasor estimators based on the least square (LS) and the linear Kalman filter (KF) methods, while assuming that the fundamental frequency is unknown. To solve this issue, the maximum likelihood technique is used with an iterative Newton−Raphson-based algorithm that allows minimizing the likelihood function. Both least square (LSE) and Kalman filter estimators (KFE) are evaluated using simulated and real power system events data. The obtained results clearly show that the LS-based technique yields the highest statistical performance and has a lower computation complexity.
Keywords
IEEE standard C37.118, kalman filter estimation (KFE), least square estimation (LSE), phasor and frequency estimation, phasor measurement units, power quality monitoring
Suggested Citation
Amirat Y, Oubrahim Z, Ahmed H, Benbouzid M, Wang T. Phasor Estimation for Grid Power Monitoring: Least Square vs. Linear Kalman Filter. (2023). LAPSE:2023.23070
Author Affiliations
Amirat Y: Institut de Recherche Dupuy de Lôme (UMR CNRS 6027 IRDL), ISEN Yncréa Ouest, 29200 Brest, France [ORCID]
Oubrahim Z: AKKA Technologies Group, 75008 Paris, France [ORCID]
Ahmed H: School of Mechanical, Aerospace and Automotive Engineering, Coventry University, Coventry CV1 5FB, UK [ORCID]
Benbouzid M: Institut de Recherche Dupuy de Lôme (UMR CNRS 6027 IRDL), University of Brest, 29238 Brest, France; Logistics Engineering College, Shanghai Maritime University, Shanghai 201306, China [ORCID]
Wang T: Logistics Engineering College, Shanghai Maritime University, Shanghai 201306, China [ORCID]
Journal Name
Energies
Volume
13
Issue
10
Article Number
E2456
Year
2020
Publication Date
2020-05-13
Published Version
ISSN
1996-1073
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PII: en13102456, Publication Type: Journal Article
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doi:10.3390/en13102456
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