Modeling hourly diffuse solar-radiation in the city of São Paulo using a neural-network technique
In this work, a perceptron neural-network technique is applied to estimate hourly values of the diffuse solar-radiation at the surface in São Paulo City, Brazil, using as input the global solar-radiation and other meteorological parameters measured from 1998 to 2001. The neural-network verification was performed using the hourly measurements of diffuse solar-radiation obtained during the year 2002. The neural network was developed based on both feature determination and pattern selection techniques. It was found that the inclusion of the atmospheric long-wave radiation as input improves the neural-network performance. On the other hand traditional meteorological parameters, like air temperature and atmospheric pressure, are not as important as long-wave radiation which acts as a surrogate for cloud-cover information on the regional scale. An objective evaluation has shown that the diffuse solar-radiation is better reproduced by neural network synthetic series than by a correlation model.
Year of publication: |
2004
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Authors: | Soares, Jacyra ; Oliveira, Amauri P. ; Boznar, Marija Zlata ; Mlakar, Primoz ; Escobedo, João F. ; Machado, Antonio J. |
Published in: |
Applied Energy. - Elsevier, ISSN 0306-2619. - Vol. 79.2004, 2, p. 201-214
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Publisher: |
Elsevier |
Keywords: | Hourly diffuse solar radiation Perceptron neural network Sao Paulo City |
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