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基于主成分分析和LSTM神经网络的海温预报模型
作者:李竞时1 2  匡晓迪1 2  李琼3  何恩业1 2  张聿柏3  袁承仪4  张延琳5 
单位:1. 国家海洋环境预报中心, 北京 100081;
2. 国家海洋环境预报中心 自然资源部海洋灾害预报技术重点实验室, 北京 100081;
3. 山东省海洋预报减灾中心, 青岛 266104;
4. 天津科技大学, 天津 300222;
5. 辽宁省自然资源事务服务中心, 辽宁 沈阳 110033
关键词:主成分分析 长短时记忆神经网络 海温预报 
分类号:P731.31
出版年·卷·期(页码):2023·40·第二期(1-10)
摘要:
利用荣成、海阳两站的自建浮标海温观测数据以及区域大气模式WRF(Weather Researchand Forecasting)的气象数值预报数据,基于主成分分析(Principal Component Analysis,PCA)法和长短时记忆(Long Short-Term Memory,LSTM)神经网络,提出了适用于单站海表温度预报的PCALSTM海温预报模型。该模型可以提供24~120 h预报时效的海温预报,预测效果比数值模型和统计模型明显提高。
Using the sea temperature observation data of buoys at Rongcheng and Haiyang marine stations and the numerical forecast meteorology data of the regional atmospheric model Weather Research and Forecasting (WRF), and based on the Principal Component Analysis (PCA) and Long Short-Term Memory (LSTM) neural network, a PCA-LSTM sea temperature forecasting model suitable for the Sea Surface Temperature (SST) forecasting is proposed in this paper. This model can provide SST forecast for the following 24~120 hours, and its forecasting accuracy is significantly improved compared with the numerical model and statistical model.
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