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Application of artificial neural network, fuzzy logic and decision tree algorithms for modelling of streamflow at Kasol in India

机译:人工神经网络,模糊逻辑和决策树算法在印度Kasol流模型中的应用

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The prediction of streamflow is required in many activities associated with the planning and operation of the components of a water resources system. Soft computing techniques have proven to be an efficient alternative to traditional methods for modelling qualitative and quantitative water resource variables such as streamflow, etc. The focus of this paper is to present the development of models using multiple linear regression (MLR), artificial neural network (ANN), fuzzy logic and decision tree algorithms such as M5 and REPTree for predicting the streamflow at Kasol located at the upstream of Bhakra reservoir in Sutlej basin in northern India. The input vector to the various models using different algorithms was derived considering statistical properties such as autocorrelation function, partial auto-correlation and cross-correlation function of the time series. It was found that REPtree model performed well compared to other soft computing techniques such as MLR, ANN, fuzzy logic, and M5P investigated in this study and the results of the REPTree model indicate that the entire range of streamflow values were simulated fairly well. The performance of the na?ve persistence model was compared with other models and the requirement of the development of the na?ve persistence model was also analysed by persistence index.
机译:在与水资源系统组件的计划和操作相关的许多活动中都需要对流量进行预测。事实证明,软计算技术可以替代传统方法来对诸如流量等定性和定量水资源变量进行建模。本文的重点是介绍使用多元线性回归(MLR),人工神经网络的模型的开发(ANN),模糊逻辑和决策树算法(例如M5和REPTree),用于预测印度北部Sutlej盆地Bhakra水库上游Kasol处的流量。考虑到统计特性,例如时间序列的自相关函数,部分自相关和互相关函数,得出了使用不同算法的各种模型的输入向量。结果发现,与本研究中研究的其他软计算技术(例如MLR,ANN,模糊逻辑和M5P)相比,REPtree模型的性能良好,并且REPTree模型的结果表明,整个流量值范围都得到了很好的模拟。将朴素持久性模型的性能与其他模型进行了比较,并通过持久性指标分析了朴素持久性模型发展的要求。

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