2021
DOI: 10.3390/en14196075
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Development of a Low-Cost Data Acquisition System for Very Short-Term Photovoltaic Power Forecasting

Abstract: The rising adoption of renewable energy sources means we must turn our eyes to limitations in traditional energy systems. Intermittency, if left unaddressed, may lead to several power-quality and energy-efficiency issues. The objective of this work is to develop a working tool to support photovoltaic energy forecast models for real-time operation applications. The current paradigm of intra-hour solar-power forecasting is to use image-based approaches to predict the state of cloud composition for short time hor… Show more

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Cited by 6 publications
(3 citation statements)
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“…Furthermore, data-driven approaches can aid in the prediction and forecasting of renewable energy generation. By utilizing real-time monitoring data, weather forecasts, and predictive modeling techniques, decision makers can estimate the expected output from renewable energy sources with greater accuracy [10]. These forecasts enable effective grid integration, better resource allocation, and improved energy management, ultimately optimizing the utilization of renewable energy resources.…”
Section: Data-driven Decision Making (Dddm)mentioning
confidence: 99%
See 1 more Smart Citation
“…Furthermore, data-driven approaches can aid in the prediction and forecasting of renewable energy generation. By utilizing real-time monitoring data, weather forecasts, and predictive modeling techniques, decision makers can estimate the expected output from renewable energy sources with greater accuracy [10]. These forecasts enable effective grid integration, better resource allocation, and improved energy management, ultimately optimizing the utilization of renewable energy resources.…”
Section: Data-driven Decision Making (Dddm)mentioning
confidence: 99%
“…DDDM also plays a critical role in monitoring and maintenance of renewable energy infrastructure [10].…”
Section: Data-driven Decision Making (Dddm)mentioning
confidence: 99%
“…Various methods and techniques have been proposed for photovoltaic (PV) data cleaning [13,14]. Sun and Zhang (2018), Wang et al, (2023), and Li et al, (2021) introduced a PV data cleaning method based on interpolation and outlier detection algorithms [1,4,6], which effectively handles missing values and outliers.…”
Section: Related Workmentioning
confidence: 99%