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First and second order semi-Markov chains for wind speed modeling
Authors:Guglielmo D&rsquo  Amico,Filippo Petroni,Flavio Prattico
Affiliation:1. Dipartimento di Farmacia, Università G. D’Annunzio, 66013 Chieti, Italy;2. Dipartimento di Scienze Economiche ed Aziendali, Università di Cagliari, 09123 Cagliari, Italy;3. Dipartimento di Ingegneria Meccanica, Energetica e Gestionale, Università degli studi dell’Aquila, 67100 L’Aquila, Italy
Abstract:The increasing interest in renewable energy, particularly in wind, has given rise to the necessity of accurate models for the generation of good synthetic wind speed data. Markov chains are often used for this purpose but better models are needed to reproduce the statistical properties of wind speed data. We downloaded a database, freely available from the web, in which are included wind speed data taken from L.S.I. -Lastem station (Italy) and sampled every 10 min. With the aim of reproducing the statistical properties of this data we propose the use of three semi-Markov models. We generate synthetic time series for wind speed by means of Monte Carlo simulations. The time lagged autocorrelation is then used to compare statistical properties of the proposed models with those of real data and also with a synthetic time series generated through a simple Markov chain.
Keywords:Wind models   Semi-Markov chains   Synthetic time series   Autocorrelation
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