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基于机器学习的降雨量雷达回波数据建模与预测
引用本文:陈晓平,陈易旺,施建华.基于机器学习的降雨量雷达回波数据建模与预测[J].南京气象学院学报,2020,12(4):483-494.
作者姓名:陈晓平  陈易旺  施建华
作者单位:福建师范大学 数学与信息学院, 福州, 350117,福建师范大学 数学与信息学院, 福州, 350117,闽南师范大学 数学与统计学院, 漳州, 363000
基金项目:国家自然科学基金(11601083);福建师范大学创新团队基金(IRTL1704);福建省高等学校科技创新团队培育计划(IRTSTFJ);福建师范大学研究生教育教学改革研究项目资助;数字福建气象大数据研究所项目;福建省数据科学与统计重点实验室开放课题(2020L0704,2020L0703)
摘    要:以浙江省2016年1-10月的雷达回波强度数据为基础,分别应用随机森林模型、BP神经网络模型、卷积神经网络模型来预测降雨量并进行对比.建模分析结果表明,随机森林模型预测效果精确度较低,容易低估较大的降雨强度,而BP神经网络和卷积神经网络预测的效果都比随机森林好,特别是卷积神经网络,其预测值与真实值更加接近,且对较大的降雨强度拟合较好.

关 键 词:降雨量  BP神经网络  卷积神经网络  随机森林
收稿时间:2019/3/7 0:00:00

Rainfall modeling and prediction by radar echo data based on machine learning
CHEN Xiaoping,CHEN Yiwang and SHI Jianhua.Rainfall modeling and prediction by radar echo data based on machine learning[J].Journal of Nanjing Institute of Meteorology,2020,12(4):483-494.
Authors:CHEN Xiaoping  CHEN Yiwang and SHI Jianhua
Institution:College of Mathematics and Informatics, Fujian Normal University, Fuzhou 350117,College of Mathematics and Informatics, Fujian Normal University, Fuzhou 350117 and School of Mathematics and Statistics, Minnan Normal University, Zhangzhou 363000
Abstract:The rainfall is modeled and predicted based on the radar echo intensity data during January to October of 2016 in Zhejiang province,and the prediction results are compared between random forest method,BP neural network model,and convolutional neural network (CNN) model.The results show that the random forest model is relatively low in accuracy,and is easy to underestimate large rainfall intensity.The BP neural network and the CNN method perform better than random forest method,especially the convolutional neural network model.Compared with the other two machine learning methods,the CNN is better in prediction accuracy and large rainfall intensity fitting.
Keywords:rainfall  BP neural network (BPNN)  convolutional neural network (CNN)  random forest
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