ID | 118132 |
Author |
Fukuoka, Rui
Tokushima University
Kitajima, Takahiro
Tokushima University
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Kuwahara, Akinobu
Tokushima University
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Content Type |
Journal Article
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Description | This paper describes a prediction method for wind speed using a neural network and an investigation of the structure of the network. Generally, wind speed is observed as time series data, and the current wind speed is related to the past wind speed. Therefore, we propose a prediction model using long short-term memory (LSTM) and a one-dimensional convolutional neural network (1DCNN) in order to consider the past information for prediction. The prediction results of these networks and a fully connected neural network are compared for evaluation. The prediction accuracy and time delay are found to be improved by using LSTM and the 1D-CNN.
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Journal Title |
Journal of Signal Processing
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ISSN | 18801013
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Publisher | Research Institute of Signal Processing
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Volume | 22
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Issue | 4
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Start Page | 207
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End Page | 210
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Published Date | 2018-07-25
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Remark | 利用は著作権の範囲内に限られる。
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EDB ID | |
DOI (Published Version) | |
URL ( Publisher's Version ) | |
FullText File | |
language |
eng
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TextVersion |
Publisher
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departments |
Science and Technology
Technical Support Department
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