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Study of a New Hybrid Optimization-Based Method for Obtaining Parameter Values of Solar Cells

In: Solar Cells - Theory, Materials and Recent Advances

Author

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  • Selma Tchoketch Kebir

Abstract

This chapter presents a comprehensive study of a new hybrid method developed for obtaining the electrical unknown parameters of solar cells. The combination of a traditional method and a recent smart swarm-based optimization method is done, with a big focus on the application of the topic of artificial intelligence algorithms into solar photovoltaic production. The combined approach was done between the traditional method, which is the noniterative Levenberg-Marquardt technic and between the recent meta-heuristic optimization technic, called Grey Wolf optimizer algorithm. For comparison purposes, some other classical solar cell parameter determination optimization-based methods are carried out, such as the numerical (iterative, noniterative) methods, the meta-heuristics (evolution, human, physic, and swarm) methods, and other hybrid methods. The final obtained results show that the used hybrid method outperforms the above-mentioned classical methods, under this study.

Suggested Citation

  • Selma Tchoketch Kebir, 2021. "Study of a New Hybrid Optimization-Based Method for Obtaining Parameter Values of Solar Cells," Chapters, in: Ahmed Mourtada Elseman (ed.), Solar Cells - Theory, Materials and Recent Advances, IntechOpen.
  • Handle: RePEc:ito:pchaps:216266
    DOI: 10.5772/intechopen.93324
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    More about this item

    Keywords

    solar cell; identification; optimization; meta-heuristics; swarm-based intelligence;
    All these keywords.

    JEL classification:

    • Q40 - Agricultural and Natural Resource Economics; Environmental and Ecological Economics - - Energy - - - General

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