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Optimization weather parameters influencing rainfall prediction using Adaptive Network-Based Fuzzy Inference Systems (ANFIS) and linier regression

机译:基于自适应网络模糊推理系统(ANFIS)和线性回归的优化天气参数影响降雨预报

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This paper conducted a study to investigate the ability of Adaptive Network-Based Fuzzy Inference System (ANFIS) in doing modeling to determine the weather parameters that influence the output parameters of rainfall (RF) and have good predictive ability. Plotting the data of the prediction is also made to the Linear Regression (LR). The data is tested daily at the weather station in Badau area, Belitung province, Indonesia. A total consisting of 433 pairs of data for 1 year containing seven weather parameters as input and one parameter as output. As for the performance evaluation criteria used indicator of the ability of ANFIS statistic model: Pearson correlation coefficient (r), coefficient of determination (R2) and root mean squared error (RMSE), from several input parameters in the analysis, 1-input RHmax most optimal influencing rainfall (RF) output, (RMSE = 1.8896 mm / day at the training phase and RMSE = 3.2370 mm / day at the checking phase). Plot the data ANFIS against Linear Regression, 1-input parameter RHmax has optimal value of the influence of rainfall (RF) output with optimal statistical indicator (R2 = 0.7065, r = 0.8405, RMSE = 0.8732 mm / day).
机译:本文进行了一项研究,以研究基于自适应网络的模糊推理系统(ANFIS)在建模中确定影响降雨(RF)输出参数并具有良好预测能力的天气参数的能力。还对线性回归(LR)绘制预测数据。每天都会在印度尼西亚勿里洞省Badau地区的气象站对数据进行测试。总共包括433对一年的数据,其中包含七个天气参数作为输入,一个参数作为输出。至于用于性能评估标准的指标是ANFIS统计模型的能力指标:皮尔逊相关系数(r),测定系数(R2)和均方根误差(RMSE),来自分析中的多个输入参数,1输入RHmax最优化的影响降雨(RF)输出(在训练阶段,RMSE = 1.8896 mm /天,在检查阶段,RMSE = 3.2370 mm /天)。用线性回归绘制数据ANFIS,一输入参数RHmax具有最佳的统计指标(R2 = 0.7065,r = 0.8405,RMSE = 0.8732 mm /天),具有降雨(RF)输出影响的最佳值。

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