A linear performance drop is generally assumed during the photovoltaic (PV) lifetime. However, operational data demonstrate that the PV module degradation rate (Rd) is often nonlinear, which, if neglected, may increase the financial uncertainty. Although nonlinear behavior has been the subject of numerous publications, it was only recently that statistical models able to detect change-points and extract multiple Rd values from PV performance time-series were introduced. A comparative analysis of six open-source libraries, which can detect change-points and calculate nonlinear Rd, is presented in this article. Since the real Rd and change-point locations are unknown in field data, 960 synthetic datasets from six locations and two PV module technologies have been generated using different aggregation and normalization decisions and nonlinear degradation rate patterns. The results demonstrated that coarser temporal aggregation (i.e., monthly vs. weekly), temperature correction, and both PV module technologies and climates with lower seasonality can benefit the change-point detection and Rd extraction. This also raises a concern that statistical models typically deployed for Rd analysis may be highly climatic-and technology-dependent. The comparative analysis of the six approaches demonstrated median mean absolute errors (MAE) ranging from 0.06 to 0.26%/year, given a maximum absolute Rd of 2.9%/year. The median MAE in change-point position detection varied from 3.5 months to 6 years.

Comparative analysis of change-point techniques for nonlinear photovoltaic performance degradation rate estimations / Theristis, M.; Livera, A.; Micheli, L.; Ascencio-Vasquez, J.; Makrides, G.; Georghiou, G. E.; Stein, J. S.. - In: IEEE JOURNAL OF PHOTOVOLTAICS. - ISSN 2156-3381. - 11:6(2021), pp. 1511-1518. [10.1109/JPHOTOV.2021.3112037]

Comparative analysis of change-point techniques for nonlinear photovoltaic performance degradation rate estimations

Micheli L.;
2021

Abstract

A linear performance drop is generally assumed during the photovoltaic (PV) lifetime. However, operational data demonstrate that the PV module degradation rate (Rd) is often nonlinear, which, if neglected, may increase the financial uncertainty. Although nonlinear behavior has been the subject of numerous publications, it was only recently that statistical models able to detect change-points and extract multiple Rd values from PV performance time-series were introduced. A comparative analysis of six open-source libraries, which can detect change-points and calculate nonlinear Rd, is presented in this article. Since the real Rd and change-point locations are unknown in field data, 960 synthetic datasets from six locations and two PV module technologies have been generated using different aggregation and normalization decisions and nonlinear degradation rate patterns. The results demonstrated that coarser temporal aggregation (i.e., monthly vs. weekly), temperature correction, and both PV module technologies and climates with lower seasonality can benefit the change-point detection and Rd extraction. This also raises a concern that statistical models typically deployed for Rd analysis may be highly climatic-and technology-dependent. The comparative analysis of the six approaches demonstrated median mean absolute errors (MAE) ranging from 0.06 to 0.26%/year, given a maximum absolute Rd of 2.9%/year. The median MAE in change-point position detection varied from 3.5 months to 6 years.
2021
change-point analysis; modeling; nonlinear degradation; photovoltaics (PVs)
01 Pubblicazione su rivista::01a Articolo in rivista
Comparative analysis of change-point techniques for nonlinear photovoltaic performance degradation rate estimations / Theristis, M.; Livera, A.; Micheli, L.; Ascencio-Vasquez, J.; Makrides, G.; Georghiou, G. E.; Stein, J. S.. - In: IEEE JOURNAL OF PHOTOVOLTAICS. - ISSN 2156-3381. - 11:6(2021), pp. 1511-1518. [10.1109/JPHOTOV.2021.3112037]
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11573/1625149
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