ID | 119379 |
著者 |
Kanagawa, Hiroto
Tokushima University
桑原, 明伸
Tokushima University
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資料タイプ |
学術雑誌論文
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抄録 | We describe a wind speed prediction method using wind vector images as input. The prediction model combines convolutional neural network (CNN) and convolutional long short-term memory (CLSTM), which are effective for image analysis. Several input image data structures expressing wind vector change are considered and the prediction accuracy is compared between them. The performance of the proposed method is evaluated by the root-mean-square error and correlation coefficient between observed and predicted values.
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掲載誌名 |
Journal of Signal Processing
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ISSN | 18801013
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出版者 | Research Institute of Signal Processing
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巻 | 27
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号 | 4
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開始ページ | 125
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終了ページ | 128
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発行日 | 2023-07-01
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備考 | 利用は著作権の範囲内に限られる。
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EDB ID | |
出版社版DOI | |
出版社版URL | |
フルテキストファイル | |
言語 |
eng
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著者版フラグ |
出版社版
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部局 |
理工学系
技術支援部
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