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ID 118128
著者
Horihata, Daichi Tokushima University
桑原, 明伸 Tokushima University
瀧川, 喜義 Shikoku Research Institute
資料タイプ
学術雑誌論文
抄録
This paper describes a statistical correction model for wind speed data of the Meso-Scale Model Grid Point Value (MSM-GPV), which is one of the numerical weather forecasting systems. In the numerical forecasting system, there are calculation errors caused by both the physical modeling and estimation of initial values. Because numerical forecast data have two-dimensional spatial information, convolution with a convolutional neural network (CNN) is used to grasp and correct the two-dimensional features of errors contained in the forecast data. In the simulations, several MSM-GPV data used for the input data and various correction models are prepared and compared with the results of a fully connected neural network from the viewpoints of the error improvement rate and error distribution.
掲載誌名
Journal of Signal Processing
ISSN
18801013
出版者
Research Institute of Signal Processing
24
4
開始ページ
195
終了ページ
198
発行日
2020-07-15
備考
利用は著作権の範囲内に限られる。
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言語
eng
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出版社版
部局
理工学系
技術支援部