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Intelligent Data Analytics for Solar Energy Prediction and
Forecasting: Advances in Resource Assessment and PV Systems
Optimization explores the utilization of advanced neural networks,
machine learning and data analytics techniques for solar radiation
prediction, solar energy forecasting, installation and maximum
power generation. The book addresses relevant input variable
selection, solar resource assessment, tilt angle calculation, and
electrical characteristics of PV modules, including detailed
methods, coding, modeling and experimental analysis of PV power
generation under outdoor conditions. It will be of interest to
researchers, scientists and advanced students across solar energy,
renewables, electrical engineering, AI, machine learning, computer
science, information technology and engineers. In addition, R&D
professionals and other industry personnel with an interest in
applications of AI, machine learning, and data analytics within
solar energy and energy systems will find this book to be a
welcomed resource.
This book addresses a range of complex issues associated with
condition monitoring (CM), fault diagnosis and detection (FDD) in
smart buildings, wide area monitoring (WAM), wind energy conversion
systems (WECSs), photovoltaic (PV) systems, structures, electrical
systems, mechanical systems, smart grids, etc. The book's goal is
to develop and combine all advanced nonintrusive CMFD approaches on
a common platform. To do so, it explores the main components of
various systems used for CMFD purposes. The content is divided into
three main parts, the first of which provides a brief introduction,
before focusing on the state of the art and major research gaps in
the area of CMFD. The second part covers the step-by-step
implementation of novel soft computing applications in CMFD for
electrical and mechanical systems. In the third and final part, the
simulation codes for each chapter are included in an extensive
appendix to support newcomers to the field.
This book addresses a range of complex issues associated with
condition monitoring (CM), fault diagnosis and detection (FDD) in
smart buildings, wide area monitoring (WAM), wind energy conversion
systems (WECSs), photovoltaic (PV) systems, structures, electrical
systems, mechanical systems, smart grids, etc. The book's goal is
to develop and combine all advanced nonintrusive CMFD approaches on
a common platform. To do so, it explores the main components of
various systems used for CMFD purposes. The content is divided into
three main parts, the first of which provides a brief introduction,
before focusing on the state of the art and major research gaps in
the area of CMFD. The second part covers the step-by-step
implementation of novel soft computing applications in CMFD for
electrical and mechanical systems. In the third and final part, the
simulation codes for each chapter are included in an extensive
appendix to support newcomers to the field.
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