A Dirichlet-multinomial mixture model-based approach for daily solar radiation classification
•A methodology for classifying days according to the clearness index is proposed.•The appropriate model complexity and size is automatically selected by using an infinite Dirichlet-mixture model.•Collapsed Gibbs sampler is used to infer the posterior probabilities.•A stand-alone PV system is sized a...
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| Published in | Solar energy Vol. 171; pp. 31 - 39 |
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| Main Authors | , , , |
| Format | Journal Article |
| Language | English |
| Published |
New York
Elsevier Ltd
01.09.2018
Pergamon Press Inc |
| Subjects | |
| Online Access | Get full text |
| ISSN | 0038-092X 1471-1257 |
| DOI | 10.1016/j.solener.2018.06.059 |
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| Abstract | •A methodology for classifying days according to the clearness index is proposed.•The appropriate model complexity and size is automatically selected by using an infinite Dirichlet-mixture model.•Collapsed Gibbs sampler is used to infer the posterior probabilities.•A stand-alone PV system is sized according to the classification results.
A challenging problem in the classification of daily solar radiation is the selection of the appropriate model complexity and size that best describe the data. This paper introduces a new nonparametric Bayesian method for automatic classification of daily clearness index, by assuming Dirichlet process as a nonparametric prior on the model parameters. Nonparametric methods are free from the parametric model assumptions, and there is no need to specify any parametric specifications, or to restrict the number of classes. Our approach relies on the inference of the posterior distributions using the collapsed Gibbs sampler. The proposed method is tested using measurements from 2003 to 2016, at the Silver Lake monitoring station in the USA (121°3′W, 43°7′N), with a 5-min logging interval. By applying our classification algorithm, three classes of daily clearness index distributions are identified, corresponding to three types of sky cloudiness, namely cloudy, partially cloudy, and clear sky. The proposed classification framework can facilitate the design of solar radiation conversion systems. |
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| AbstractList | A challenging problem in the classification of daily solar radiation is the selection of the appropriate model complexity and size that best describe the data. This paper introduces a new nonparametric Bayesian method for automatic classification of daily clearness index, by assuming Dirichlet process as a nonparametric prior on the model parameters. Nonparametric methods are free from the parametric model assumptions, and there is no need to specify any parametric specifications, or to restrict the number of classes. Our approach relies on the inference of the posterior distributions using the collapsed Gibbs sampler. The proposed method is tested using measurements from 2003 to 2016, at the Silver Lake monitoring station in the USA (121°3′W, 43°7′N), with a 5-min logging interval. By applying our classification algorithm, three classes of daily clearness index distributions are identified, corresponding to three types of sky cloudiness, namely cloudy, partially cloudy, and clear sky. The proposed classification framework can facilitate the design of solar radiation conversion systems. •A methodology for classifying days according to the clearness index is proposed.•The appropriate model complexity and size is automatically selected by using an infinite Dirichlet-mixture model.•Collapsed Gibbs sampler is used to infer the posterior probabilities.•A stand-alone PV system is sized according to the classification results. A challenging problem in the classification of daily solar radiation is the selection of the appropriate model complexity and size that best describe the data. This paper introduces a new nonparametric Bayesian method for automatic classification of daily clearness index, by assuming Dirichlet process as a nonparametric prior on the model parameters. Nonparametric methods are free from the parametric model assumptions, and there is no need to specify any parametric specifications, or to restrict the number of classes. Our approach relies on the inference of the posterior distributions using the collapsed Gibbs sampler. The proposed method is tested using measurements from 2003 to 2016, at the Silver Lake monitoring station in the USA (121°3′W, 43°7′N), with a 5-min logging interval. By applying our classification algorithm, three classes of daily clearness index distributions are identified, corresponding to three types of sky cloudiness, namely cloudy, partially cloudy, and clear sky. The proposed classification framework can facilitate the design of solar radiation conversion systems. |
| Author | Frimane, Âzeddine Aggour, Mohammed Bahmad, Lahoucine Ouhammou, Badr |
| Author_xml | – sequence: 1 givenname: Âzeddine surname: Frimane fullname: Frimane, Âzeddine email: Azeddine.frimane@uit.ac.ma organization: Laboratory of Renewable Energies and Environment (LR2E), Faculty of Science, IBN TOFAIL University, B.P. 133, 14000 Kenitra, Morocco – sequence: 2 givenname: Mohammed surname: Aggour fullname: Aggour, Mohammed organization: Laboratory of Renewable Energies and Environment (LR2E), Faculty of Science, IBN TOFAIL University, B.P. 133, 14000 Kenitra, Morocco – sequence: 3 givenname: Badr surname: Ouhammou fullname: Ouhammou, Badr organization: Laboratory of Renewable Energies and Environment (LR2E), Faculty of Science, IBN TOFAIL University, B.P. 133, 14000 Kenitra, Morocco – sequence: 4 givenname: Lahoucine surname: Bahmad fullname: Bahmad, Lahoucine organization: Laboratory of Magnetism and Physics of High Energy (PPR-13), Faculty of Science, MOHAMMED V University, B.P. 1014, Rabat, Morocco |
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| Cites_doi | 10.5194/nhess-14-2145-2014 10.1214/aos/1176342360 10.1016/0038-092X(83)90034-8 10.1016/0379-6787(86)90030-X 10.1186/1471-2288-14-75 10.1016/j.solener.2009.01.010 10.1080/00031305.2015.1089789 10.1016/j.solener.2012.11.015 10.3390/en9080607 10.5194/amt-5-2881-2012 10.1016/j.solener.2017.05.072 10.1080/10618600.2000.10474879 10.1016/S0038-092X(99)00031-6 10.1002/wics.35 10.1016/j.patrec.2016.03.019 10.1016/j.cageo.2011.03.004 10.1016/j.solener.2015.03.046 10.1561/2700000006 10.1016/S0196-8904(99)00139-9 10.1109/TIA.2017.2787680 10.1016/j.solener.2015.11.032 10.1016/S0196-8904(00)00090-X 10.1016/j.patcog.2005.01.025 10.1109/TGRS.2003.813550 10.1016/j.solener.2004.08.018 |
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| Snippet | •A methodology for classifying days according to the clearness index is proposed.•The appropriate model complexity and size is automatically selected by using... A challenging problem in the classification of daily solar radiation is the selection of the appropriate model complexity and size that best describe the data.... |
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| SubjectTerms | Bayesian analysis Bayesian nonparametric Classification Dirichlet problem Dirichlet-multinomial Gibbs sampler Parameter estimation Radiation Solar energy Solar radiation Solar radiation classification |
| Title | A Dirichlet-multinomial mixture model-based approach for daily solar radiation classification |
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