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An integrated regional water quality assessment method considering interrelationships among monitoring indicators

机译:考虑监测指标之间的相互关系的综合区域水质评估方法

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摘要

To monitor and manage water environments, China developed a centralized multi-level administrative system where governments and agencies at each level are responsible for water quality within their regions. In this case, regional water quality assessment has become a critical issue. However, as a complex multi-criteria decision making (MCDM) problem, it faces many challenges such as diverse implement indicator framework, complicated indicator interrelations, and lack of reliable assessment methods. Therefore, this paper constructs a novel multistage decision support framework for regional water quality assessment. In phase I, we determine indicator framework strictly according to the national standards, involving PH, dissolved oxygen (DO), chemical oxygen demand (COD), etc., totally 21 water quality indicators where the temperature indicator is excluded due to its lack of assessment standard. In addition, considering the matching between the characteristic of water quality data and the probabilistic linguistic term set (PLTS) technique, we employ PLTS theory to process massive monitoring data. In phase II, relative weight considering indicators' interrelationship is produced by the proposed regression-based decision-making trial and evaluation laboratory (DEMATEL) method, and further forms combined weight by balancing single-factor weight. In phase III, we present a new PLTS measure and extend the fuzzy technique for order performance by similarity to ideal solution (FTOPSIS) method to generate assessment results. Then, we investigate water quality status of 16 administrative districts in Shanghai, China, with the proposed method. The collected data are derived from 26 water quality monitoring sites and covers the period during September 2018 to February 2019. The results confirm a hypothesis that the statistically significant interrelationship does exist among indicators, and point out that Huang Pu District remains the best water quality with highest values of CCi in the range of (0.79-0.85) over the 6 months. Moreover, the parameter analysis and comparative analysis are further given that verifies the robustness and reliability of the model in details.
机译:监测和管理水环境,中国开发了一个集中式多级行政制度,各级政府和机构负责其地区内的水质。在这种情况下,区域水质评估已成为一个关键问题。然而,作为复杂的多标准决策(MCDM)问题,它面临着许多挑战,例如不同的实施指示器框架,复杂的指示器相互关系,以及缺乏可靠的评估方法。因此,本文构建了用于区域水质评估的新型多级决策支持框架。在I阶段,我们严格确定指标框架根据国家标准,涉及pH,溶解氧(DO),化学需氧量(COD)等,完全21个水质指标,因为它缺乏而被排除在内的温度指标。评估标准。此外,考虑到水质数据的特征与概率语言术语集(PLTS)技术之间的匹配,我们采用PLTS理论来处理大量监测数据。在II期,考虑指标的相对重量的相互关系是由所提出的基于回归的决策试验和评估实验室(Dematel)方法产生的,并通过平衡单因素重量进一步形成重量。在第三阶段,我们提出了一种新的PLTS测量,并通过相似性与理想解决方案(FTOPSIS)方法的顺序性能扩展模糊技术,以产生评估结果。然后,我们调查了中国上海16个行政区的水质地位,采用了拟议的方法。收集的数据来自26个水质监测网站,并涵盖2018年9月至2019年2月期间的期间。结果证实了一个假设,表明指标之间存在统计上显着的相互关系,并指出黄普区仍然是最好的水质在6个月内(0.79-0.85)范围内CCI的最高值。此外,还提供了参数分析和比较分析,以验证模型的鲁棒性和可靠性详细信息。

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