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April 11, 2026Energies4 citationsOpen Access

A Comprehensive Survey of AI/ML-Driven Optimization, Predictive Control, and Innovative Solar Technologies

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AAAli Alhazmi

Key Points

  • The survey aims to evaluate the role of AI and ML in enhancing solar energy technologies through various methodologies.
  • Evaluation of AI/ML methodologies in solar energy value chain
  • Assessment of forecasting techniques using deep learning
  • Analysis of maximum power point tracking efficiencies
  • Investigation of fault identification techniques
  • Examination of materials optimization using machine learning
  • Forecasting improvements of 10–40% via deep learning over traditional methods
  • Mean absolute error reductions of 15–25% achieved by hybrid models
  • Reinforcement learning yields MPPT efficiencies over 99% under partial shading
  • CNN-based fault classification accuracy exceeds 95%
  • ML accelerates perovskite optimization by 5–10 times

Abstract

By 2024, global photovoltaic (PV) capacity exceeded 2000 GW, corresponding with a decline in levelized costs of approximately 90% since 2010. Artificial intelligence (AI) and machine learning (ML) are enabling novel approaches to solar energy system design and implementation. This survey offers a detailed evaluation of AI/ML methodologies utilized across the solar energy value chain, with a focus on solar irradiance forecasting, maximum power point tracking (MPPT), fault identification, and the expeditious discovery of system materials. The distinction between AI as the broader paradigm and ML as its data-driven subset is drawn and maintained throughout. The primary results cite forecasting improvements via deep learning architectures (LSTM, CNN, Transformer) of 10–40% over traditional methods, while hybrid numerical weather prediction and deep learning models achieve mean absolute error reductions of 15–25%. Reinforcement learning-based MPPT achieves tracking efficiencies in excess of 99% under partial shading, CNN-based fault classification reaches accuracies above 95%, and ML-based screening of materials accelerates perovskite optimization by a factor of 5–10×. Promising paradigms such as explainable AI, federated learning, digital twins, and physics-informed neural networks are evaluated alongside technical, economic, and regulatory constraints. This survey provides a consolidated reference and practical roadmap for the advancement of AI-driven solar energy technologies.

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Cite This Study

Ali Alhazmi (2026) studied this question.

synapsesocial.com/papers/69d9e5ec78050d08c1b7627dhttps://doi.org/10.3390/en19081847
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