A novel spatial–temporal generative autoencoder for wind speed uncertainty forecasting

Wind speed interval prediction is one of the most long-standing challenges because of the high uncertainty and the complex spatial–temporal correlation between wind turbines. In this paper, based on variational Bayesian inference, we propose a novel spatial–temporal generative autoencoder (STGAE) mo...

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Bibliographic Details
Published in:Energy (Oxford) Vol. 282; p. 128946
Main Authors: Ma, Long, Huang, Ling, Shi, Huifeng
Format: Journal Article
Language:English
Published: 01.11.2023
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ISSN:0360-5442
Online Access:Get full text
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