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A Constraint-Softened Interval-Fuzzy Linear Programming Approach for Environmental Management Under Uncertainty

机译:不确定性环境管理的约束软化区间模糊线性规划方法

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In this study, a constraint-softened interval-fuzzy linear programming (CS-IFLP) method is developed for violation analysis of environmental management systems under uncertainty. CS-IFLP can deal with uncertainties presented in terms of fuzzy sets and intervals. Moreover, a number of fuzzy relaxation levels for system constraints are allowed, such that the relevant decision space can be expanded. This can help generate a range of decision alternatives under various system conditions, and facilitate in-depth analyses of tradeoffs among economic objective, satisfaction degree, and constraint-violation risk. The developed method is applied to a case study of long-term municipal solid waste management planning. Results indicate that reasonable solutions for both binary and continuous variables have been generated. A higher relaxation level could result in a lower system cost and a higher satisfaction degree, but with a higher constraint-violation risk. Results of the sensitivity analyses demonstrate that violated system constraints have various effects on the system cost and satisfaction degree.
机译:在这项研究中,开发了一种约束软化的区间模糊线性规划(CS-IFLP)方法,用于不确定性环境管理系统的违规分析。 CS-IFLP可以处理以模糊集和间隔表示的不确定性。此外,允许用于系统约束的许多模糊松弛水平,从而可以扩展相关的决策空间。这有助于在各种系统条件下生成一系列决策方案,并有助于深入分析经济目标,满意度和约束违约风险之间的权衡。将该方法应用于城市生活垃圾长期管理规划的案例研究。结果表明,已经生成了针对二进制和连续变量的合理解。较高的松弛级别可能会导致较低的系统成本和较高的满意度,但是存在更高的违反约束的风险。敏感性分析的结果表明,违反系统约束条件会对系统成本和满意度产生各种影响。

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