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    1. Naturvetenskap och teknik
    2. Teknik och industri
    3. Energiteknik

    AI-Based Forecasting of Solar Photovoltaics Power Generation

    AvElham Shirazi,Wilfried van Sark

    Inbunden, Engelska, 2026

    Del i serien Energy Engineering

    1 623 kr

    Beställningsvara. Skickas inom 3-6 vardagar. Fri frakt över 249 kr.

    Beskrivning

    The widespread deployment of photovoltaics (PV) technology has emerged as a key element in the global shift toward a carbon-neutral and sustainable energy system. Driven by a combination of supportive regulatory frameworks, government incentive programs, technical developments, and increasing environmental awareness, the adoption of PV technologies has witnessed remarkable growth in recent years. However, the rapid integration of distributed PV systems into existing electricity grid infrastructure introduces new challenges, particularly concerning voltage regulation, reverse power flow, and congestion within the electricity grid. These issues are intensified when PV systems are integrated without proper strategy. In this context, solar PV power forecasting has become an essential tool for ensuring the reliable and efficient integration of solar PV systems into power systems. Artificial intelligence (AI) and machine learning (ML) offer means to forecast PV power and energy generation based on historical data of PV generation, meteorological data, and/or weather forecasts.AI-Based Forecasting of Solar Photovoltaics Power Generation blends theoretical knowledge with practical case studies, serving as a comprehensive and timely contribution to the rapidly evolving field of solar PV forecasting. It covers topics such as data collection and processing, solar forecasting based on statistical time-series, machine and deep learning, hybrid and probabilistic approaches, model optimization, hyperparameter tuning, and solar PV forecasting for energy system integration and control.As solar PV systems become increasingly integrated into energy systems, a dedicated book on PV generation forecasting is incredibly useful, making this book an important resource for energy system operators, policymakers, researchers, and students seeking to improve the reliability, resiliency, and efficiency of solar PV systems and the broader systems into which they are integrated.

    Produktinformation

    • Utgivningsdatum:2026-03-10
    • Mått:156 x 234 x 19 mm
    • Vikt:603 g
    • Format:Inbunden
    • Språk:Engelska
    • Serie:Energy Engineering
    • Antal sidor:302
    • Förlag:Institution of Engineering and Technology
    • ISBN:9781837240197

    Utforska kategorier

    • Energiteknik inom Naturvetenskap och teknik

    Mer om författaren

    Elham Shirazi is an assistant professor at the University of Twente, the Netherlands. Her multidisciplinary research focuses on applying AI/ML methods to forecasting, integration, and control of energy systems. She joined the University of Twente in 2021, following postdoctoral research at KU Leuven's and prior work at IMEC's Energy Department in Belgium. She is a member of IEA PVPS and ETIP PV and serves on technical committees for EUPVSEC, IEEE ISGT, and ACM e-Energy.Wilfried van Sark is a professor in photovoltaics integration at the Copernicus Institute of Sustainable Development, Utrecht University, The Netherlands. He has over 40 years' experience in PV solar energy R&D. His research includes next-generation PV, performance analysis of photovoltaic modules and systems, smart grids with EV and vehicle-to-grid technology, and solar forecasting. He is an associate editor or board member for several related journals and a senior member of IEEE.

    Innehållsförteckning

    • Chapter 1: Introduction to solar photovoltaics forecastingChapter 2: Data, data collection, and preprocessing for solar photovoltaics forecastingChapter 3: Statistical time series for solar photovoltaic forecastingChapter 4: Machine learning approaches for PV forecastingChapter 5: Deep learning approaches for PV forecastingChapter 6: Hybrid and ensemble models for solar energy forecastChapter 7: Probabilistic PV forecastingChapter 8: Model optimisation, hyperparameter tuning and performance evaluation in machine learning models for solar PV generation forecastChapter 9: Sky imager based solar photovoltaic forecastChapter 10: Solar photovoltaic forecasting for energy system integration and control