Estimation of average monthly rainfall with neighbourhood values: comparative study between soft computing and statistical approach

B. Datta, Susanta Mitra, S. Pal
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引用次数: 3

Abstract

In this study, we demonstrate how connectionist models, in particular, multilayer perceptron network can be used for prediction of rainfall. Here we give a comparative study between conventional approach (using multivariate linear regression) and soft computing approach using artificial neural network (ANN). The basic idea is to identify a computational model to characterise the relation between the average monthly rainfalls of a region with that of different neighbouring regions. The model exploits both spatial as well as temporal information to achieve better prediction. Once the computational model is obtained, it is used to predict the average monthly rainfall. Early prediction of rainfall is expected to play a key role in economic planning.
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邻值估算月平均降雨量:软计算与统计方法的比较研究
在本研究中,我们展示了连接模型,特别是多层感知器网络如何用于预测降雨。本文对传统方法(多元线性回归)和软计算方法(人工神经网络)进行了比较研究。其基本思想是确定一个计算模型来描述一个地区的月平均降雨量与邻近不同地区的月平均降雨量之间的关系。该模型同时利用空间和时间信息来实现更好的预测。一旦获得计算模型,就可以用来预测月平均降雨量。降雨的早期预测预计将在经济规划中发挥关键作用。
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