Supervised Machine Learning in Wind Forecasting and Ramp Event Prediction Supervised Machine Learning in Wind Forecasting and Ramp Event Prediction
Wind Energy Engineering

Supervised Machine Learning in Wind Forecasting and Ramp Event Prediction

Harsh S. Dhiman and Others
    • $129.99
    • $129.99

Publisher Description

Supervised Machine Learning in Wind Forecasting and Ramp Event Prediction provides an up-to- date overview on the broad area of wind generation and forecasting, with a focus on the role and need of Machine Learning in this emerging field of knowledge. Various regression models and signal decomposition techniques are presented and analyzed, including least-square, twin support and random forest regression, all with supervised Machine Learning. The specific topics of ramp event prediction and wake interactions are addressed in this book, along with forecasted performance.

Wind speed forecasting has become an essential component to ensure power system security, reliability and safe operation, making this reference useful for all researchers and professionals researching renewable energy, wind energy forecasting and generation. Features various supervised machine learning based regression models Offers global case studies for turbine wind farm layouts Includes state-of-the-art models and methodologies in wind forecasting

GENRE
Science & Nature
RELEASED
2020
January 21
LANGUAGE
EN
English
LENGTH
216
Pages
PUBLISHER
Elsevier Science
SELLER
Elsevier Ltd.
SIZE
37.1
MB
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