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Inexact fuzzy-stochastic constraint-softened programming - A case study for waste management

机译:不精确的模糊随机约束软化编程-废物管理案例研究

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摘要

In this study, an inexact fuzzy-stochastic constraint-softened programming method is developed for municipal solid waste (MSW) management under uncertainty. The developed method can deal with multiple uncertainties presented in terms of fuzzy sets, interval values and random variables. Moreover, a number of violation levels for the system constraints are allowed. This is realized through introduction of violation variables to soften system constraints, such that the model's decision space can be expanded under demanding conditions. This can help generate a range of decision alternatives under various conditions, allowing in-depth analyses of tradeoffs among economic objective, satisfaction degree, and constraint-violation risk. The developed method is applied to a case study of planning a MSW management system. The uncertain and dynamic information can be incorporated within a multi-layer scenario tree; revised decisions are permitted in each time period based on the realized values of uncertain events. Solutions associated with different satisfaction degree levels have been generated, corresponding to different constraint-violation risks. They are useful for supporting decisions of waste flow allocation and system-capacity expansion within a multistage context.
机译:在这项研究中,为不确定性下的城市固体废物(MSW)管理开发了一种不精确的模糊随机约束软化编程方法。所开发的方法可以处理以模糊集,区间值和随机变量表示的多种不确定性。此外,对于系统约束,允许有许多违反级别。这可以通过引入违规变量来减轻系统约束来实现,从而可以在苛刻的条件下扩展模型的决策空间。这有助于在各种条件下生成一系列决策方案,从而可以对经济目标,满意度和违反约束风险之间的权衡取舍进行深入分析。将该方法应用于规划城市生活垃圾管理系统的案例研究。不确定性和动态信息可以合并到多层方案树中。根据不确定事件的实现值,可以在每个时间段内进行修订的决策。已生成与不同满意度级别相关联的解决方案,对应于不同的违反约束风险。它们对于在多阶段环境中支持废物流分配和系统容量扩展的决策非常有用。

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  • 来源
    《Waste Management》 |2009年第7期|2165-2177|共13页
  • 作者单位

    College of Urban and Environmental Sciences, Peking University, Beijing 100871. China;

    Environmental Systems Engineering Program, Faculty of Engineering, University of Regina, Regina, Sask S4S 0A2, Canada Chinese Research Academy of Environmental Science, North China Electric Power University, Beijing 100012-102206, China;

    State Key Laboratory of Water Environment Simulation, School of Environment, Beijing Normal University, Beijing 100875, China;

    Key Laboratory of Oasis Ecology and Desert Environment, Xinjiang Institute of Ecology and Geography, Chinese Academy of Sciences, Urumqi, Xinjiang 830011, China;

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