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Application of BP Neural Network Approach for Cost Estimation of Wastewater Treatment Plants: A Case Study of Taiwan Region

机译:BP神经网络方法在废水处理厂成本估算中的应用 - 以台湾地区为例

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Reliable cost estimation is crucial to the planning process of a wastewater treatment plant (WWTP). Among the developed methods in literatures, not only the assumption of linearity but the existence of a great deal of uncertainty limits the actual application. In this paper, cost estimation of WWTPs in Taiwan region using BP neural network (NN) was investigated. The correlations between cost related variables and total construction cost and plant construction cost were obtained based on 26 collected data sets of design flow rate, influent BOD5 concentration and cost data etc. The study revealed that the proposed NN outperformed linear regression in respect to performance measures such as mean absolute error rate and coefficient of determination. Results from weight interpretation reflected the relative importance of input variables to costs. The NN-based approach can provide an economical and rapid means of cost estimation of WWTP.
机译:可靠的成本估计对废水处理厂(WWTP)的规划过程至关重要。在文献中的开发方法中,不仅存在线性的假设,而且存在大量不确定性限制了实际应用。本文研究了使用BP神经网络(NN)的台湾地区WWTP的成本​​估计。基于26个收集的数据集,流入BOD 5 浓度和成本数据等,获得了成本相关变量与总建筑成本和工厂施工成本之间的相关性。该研究表明,建议的NN关于诸如平均绝对误差率和确定系数的性能测量,表现出直线性的线性回归。重量解释结果反映了输入变量对成本的相对重要性。基于NN的方法可以提供WWTP的经济和快速的成本估算方法。

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