"Improved Quality Parameter Estimation of Photovoltaic System Models ba" by Rim Attafi, Naoufal Zitouni et al.
 

Improved Quality Parameter Estimation of Photovoltaic System Models based on SAO Algorithm

Document Type

Article

Publication Title

Engineering, Technology and Applied Science Research

Abstract

Solar energy provides one of the most favorable options regarding the transition to clean energy sources. The parameters of a photovoltaic (PV) system play determine its performance under various scenarios. The PV model parameter estimation is an example of nonlinear planning. This study proposes a novel use of the established Smell Agent Optimizer (SAO) algorithm to anticipate the undefined parameters of the PV model's single-diode and two-diode equivalent circuits. This study aims to create a precise PV model that can accurately characterize its performance under changing operational conditions. The desired objective function is defined as the square of the mean squared error between the model's current-voltage curve and the measured curve.

First Page

15882

Last Page

15887

DOI

10.48084/etasr.7919

Publication Date

8-1-2024

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