2019 IEEE 46th Photovoltaic Specialists Conference (PVSC) 2019
DOI: 10.1109/pvsc40753.2019.8980480
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Intra-day Solar Irradiance Forecasting Based on Artificial Neural Networks

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Cited by 7 publications
(10 citation statements)
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“…Please note that CVRMSE results are particularly high due to nighttime 0 values that decrease the mean of the active power production. These results are on a par with the state-of-the-art research on solar forecasting [13,14].…”
supporting
confidence: 77%
See 1 more Smart Citation
“…Please note that CVRMSE results are particularly high due to nighttime 0 values that decrease the mean of the active power production. These results are on a par with the state-of-the-art research on solar forecasting [13,14].…”
supporting
confidence: 77%
“…The higher penetration of solar energy gives an ever-growing importance to increasingly accurate forecasting [12]. To capture the local circumstances and phenomena of each individual plant, Machine Learning (ML) provides a widely used solution [13,14]. These algorithms on the day-ahead market are trained on historical Numerical Weather Prediction data and other cyclical variables, where the target is the active power production at the point of common coupling.…”
Section: Solar Forecasting Reviewmentioning
confidence: 99%
“…The output layer gives the output predictive result based on the analysis of the hidden layers. The contributions of the works [30–56] that propose ANN‐based SPF are presented in Table 2.…”
Section: Methodsmentioning
confidence: 99%
“…The forecasting horizon typically ranges from 1 h to 1 day [93]. Reviewed works [30, 32–36, 38, 39, 41–45, 47, 48, 59–63, 71, 75, 81, 82, 84] focus on short‐term SPF by using different models and methodologies.…”
Section: Methodologies and Data Analysismentioning
confidence: 99%
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