Publication | Open Access
Parameter extraction of solar cells using particle swarm optimization
371
Citations
26
References
2009
Year
Search OptimizationElectrical EngineeringEngineeringEnergy ManagementSolar PowerEnergy EfficiencySolar Cell ParametersComputer EngineeringPso MethodRooftop PhotovoltaicsParticle Swarm OptimizationPhotovoltaic SystemPhotovoltaic Power StationPhotovoltaicsSolar Energy Utilisation
In this article, particle swarm optimization (PSO) was applied to extract the solar cell parameters from illuminated current-voltage characteristics. The performance of the PSO was compared with the genetic algorithms (GAs) for the single and double diode models. Based on synthetic and experimental current-voltage data, it has been confirmed that the proposed method can obtain higher parameter precision with better computational efficiency than the GA method. Compared with conventional gradient-based methods, even without a good initial guess, the PSO method can obtain the parameters of solar cells as close as possible to the practical parameters only based on a broad range specified for each of the parameters.
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