An Automated Machine Learning and Analytics Framework for Data-Driven Optimization of Multi-Source Regional Energy Systems
Author:
Affiliation:
1. O-SECUL Nigeria Limited, Warri, Delta, Nigeria
2. Nile University, Abuja, Federal Capital Territory, Nigeria
3. CypherCrescent Limited, Port-Harcourt, Rivers, Nigeria
4. Greenville LNG, Rumuji, Rivers, Nigeria
Abstract
Publisher
SPE
Link
https://onepetro.org/SPENAIC/proceedings-pdf/doi/10.2118/221584-MS/3424970/spe-221584-ms.pdf
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3. Automated data-driven modeling of building energy systems via machine learning algorithms;Rätz;Energy and Buildings,2019
4. Bayesopt: a Bayesian optimization library for nonlinear optimization, experimental design and bandits;Martinez-Cantin;J. Mach. Learn. Res.,2014
5. Auto-WEKA: combined selection and hyperparameter optimization of classification algorithms;Thornton;ACM,2013
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