Data Science for Wind Energy
English


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About The Book

Data Science For Wind Energy Provides An In-Depth Discussion On How Data Science Methods Can Improve Decision Making For Wind Energy Applications Near-Ground Wind Field Analysis And Forecast Turbine Power Curve Fitting And Performance Analysis Turbine Reliability Assessment And Maintenance Optimization For Wind Turbines And Wind Farms. A Broad Set Of Data Science Methods Covered Including Time Series Models Spatio-Temporal Analysis Kernel Regression Decision Trees Knn Splines Bayesian Inference And Importance Sampling. More Importantly The Data Science Methods Are Described In The Context Of Wind Energy Applications With Specific Wind Energy Examples And Case Studies. Please Also Visit The Author’S Book Site At Https://Aml.Engr.Tamu.Edu/Book-Dswe.Featuresprovides An Integral Treatment Of Data Science Methods And Wind Energy Applicationsincludes Specific Demonstration Of Particular Data Science Methods And Their Use In The Context Of Addressing Wind Energy Needspresents Real Data Case Studies And Computer Codes From Wind Energy Research And Industrial Practicecovers Material Based On The Author'S Ten Plus Years Of Academic Research And Insights
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