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A framework for assessing the adequacy of Water Quality Index -Quantifying parameter sensitivity and uncertainties in missing values distribution

机译:一种评估水质指标的充分性的框架 - 缺失值分布中的参数灵敏度和不确定性

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摘要

Water quality monitoring is a pillar in water resource management, but it can be resource intensive, especially for developing countries with limited resources. As such, Water Quality Indices (WQI) are developed to summarise general water quality, but efforts to assess the utility, flexibility, and practicality of WQI have been limited. In this study, we introduced an additional step to the traditional WQI development framework by introducing an adjusted form of WQI (WQI_(adjusted)) to handle missing values, and capitalise on the remaining available information for the development of a WQI. A Sub-WQI was also developed to address local water quality conditions. WQI results (weighted and non-weighted) developed using different parameter optimisation methods, namely Multi-variate Linear Regression and Principal Component Analysis were compared. To build upon the current framework, a new procedure was developed to assess the adequacy of WQI based on the sensitivity analysis of parameters and uncertainties associated with each parameter's missing values distribution. The number of observations needed for the development of a robust WQI was optimised with respect to user-defined acceptable change in WQI, based on Monte Carlo probabilistic simulation. The Johor River Basin (JRB), Malaysia is used as a case-study for the application of this new framework. The JRB serves as an important resource for Johor, one of the most populous state in Malaysia, and Singapore, a country south of Johor. WQI_(MLR) performed better in explaining the general water quality than WQI_(pca) for weighted water quality parameters. Optimisation of sampling frequency revealed that around 130 samples will be required if a 2% change in WQI can be tolerated. The results (specific to the JRB) also revealed that total coliform is the most sensitivity parameter to missing values, and the distribution of sensitive parameters are similar for both WQI_(Non-adjusted) and WQI_(adjusted).
机译:水质监测是水资源管理的柱子,但它可以是资源密集型的,特别是对于资源有限的发展中国家。因此,正在开发出水质指数(WQI)总结一般水质,但努力评估WQI的效用,灵活性和实用性受到限制。在这项研究中,我们通过引入调整后的WQI(WQI_(调整))来介绍传统的WQI开发框架的额外步骤,以处理缺失的值,并大写剩余的可用信息,以便开发WQI。还制定了一个亚WQI来解决当地的水质条件。使用不同参数优化方法开发的WQI结果(加权和未加权),即比较多变化线性回归和主成分分析。为了构建当前框架,开发了一种新程序,以评估WQI的充分性,基于与每个参数缺失值分布相关的参数和不确定性的敏感性分析。基于Monte Carlo概率模拟,在WQI的用户定义可接受的变化方面优化了开发强大的WQI所需的观察数。柔佛河流域(JRB),马来西亚被用作案例研究了这个新框架的应用。 JRB是柔佛州的重要资源,是马来西亚最多的人口州之一,新加坡,柔佛州南部的国家。 WQI_(MLR)更好地进行了比WQI_(PCA)用于加权水质参数的一般水质。采样频率的优化显示,如果可以容忍WQI的2%变化,则需要约130个样品。结果(特定于JRB)还透露,总COLIS类是缺失值最敏感的参数,并且敏感参数的分布对于WQI_(未调整)和WQI_(调整)相似。

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  • 来源
    《The Science of the Total Environment》 |2021年第10期|141982.1-141982.22|共22页
  • 作者单位

    Nanyang Environment And Water Research Institute (NEWRI) Nanyang Technological University of Singapore 1 Cleantech Loop 637141 Singapore;

    Nanyang Environment And Water Research Institute (NEWRI) Nanyang Technological University of Singapore 1 Cleantech Loop 637141 Singapore Tembusu College National University of Singapore 28 College Ave E #B1-01 138598 Singapore;

    Geography Section School of Humanities Universiti Sains Malaysia 11800 Penang Malaysia;

    Department of Environmental Engineering Faculty of Civil Engineering Universiti Teknologi Malaysia (UTM) 81310 Johor. Malaysia;

    Nanyang Environment And Water Research Institute (NEWRI) Nanyang Technological University of Singapore 1 Cleantech Loop 637141 Singapore;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Water Quality Index; Johor; Multivariate linear regression; Principal component analysis; Sensitivity analysis; Statistical decision theory;

    机译:水质指数;柔佛;多变量线性回归;主要成分分析;敏感性分析;统计决策理论;

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