Machine Learning Photovoltaic String Analyzer
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- @Article{rodrigues:2020:Entropy,
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author = "Sandy Rodrigues and Gerhard Muetter and
Helena {Geirinhas Ramos} and F. Morgado-Dias",
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title = "Machine Learning Photovoltaic String Analyzer",
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journal = "Entropy",
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year = "2020",
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volume = "22",
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number = "2",
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keywords = "genetic algorithms, genetic programming",
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ISSN = "1099-4300",
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URL = "https://www.mdpi.com/1099-4300/22/2/205",
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DOI = "doi:10.3390/e22020205",
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abstract = "Photovoltaic (PV) system energy production is
non-linear because it is influenced by the random
nature of weather conditions. The use of machine
learning techniques to model the PV system energy
production is recommended since there is no known way
to deal well with non-linear data. In order to detect
PV system faults, the machine learning models should
provide accurate outputs. The aim of this work is to
accurately predict the DC energy of six PV strings of a
utility-scale PV system and to accurately detect PV
string faults by benchmarking the results of four
machine learning methodologies known to improve the
accuracy of the machine learning models, such as the
data mining methodology, machine learning technique
benchmarking methodology, hybrid methodology, and the
ensemble methodology. A new hybrid methodology is
proposed in this work which combines the use of a fuzzy
system and the use of a machine learning system
containing five different trained machine learning
models, such as the regression tree, artificial neural
networks, multi-gene genetic programming, Gaussian
process, and support vector machines for regression.
The results showed that the hybrid methodology provided
the most accurate machine learning predictions of the
PV string DC energy, and consequently the PV string
fault detection is successful.",
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notes = "also known as \cite{e22020205}",
- }
Genetic Programming entries for
Sandy Rodrigues
Gerhard Muetter
Helena Maria dos Santos Geirinhas Ramos
F Morgado-Dias
Citations