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Fuzzy multi-objective optimization for optimum allocation in multivariate stratified sampling with quadratic cost and parabolic fuzzy numbers

机译:具有二次成本和抛物线模糊数的多元分层抽样中最优分配的模糊多目标优化

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This article deals with the uncertainties in a multivariate stratified sampling problem. The uncertain parameters of the problem, such as stratum standard deviations, measurement costs, travel costs and total budget of the survey, are considered as parabolic fuzzy numbers and the problem is formulated as a fuzzy multi-objective nonlinear programming problem with quadratic cost function. Using -cut, parabolic fuzzy numbers are defuzzified and then the compromise allocations of the problem are obtained by fuzzy programming for a prescribed value of . To demonstrate the utility of the proposed problem a numerical example is solved with the help of [LINGO User?s Guid. Lindo Systems Inc., 1415 North Dayton Street, Chicago,Illinois-60622, (USA), 2013] software and the derived compromise optimum allocation is compared with deterministic and proportional allocations.
机译:本文讨论了多元分层抽样问题中的不确定性。问题的不确定参数,例如地层标准差,测量成本,旅行成本和调查总预算,被视为抛物线模糊数,并且将该问题表述为具有二次成本函数的模糊多目标非线性规划问题。使用-cut,对抛物线模糊数进行模糊处理,然后通过对指定值进行模糊编程来获得问题的折衷分配。为了证明所提出问题的效用,在[LINGO User?s Guid的帮助下,解决了一个数值示例。 Lindo Systems Inc.,1415 North Dayton Street,Chicago,伊利诺斯州60622,(美国),2013年),然后将得出的折衷最优分配与确定性分配和比例分配进行比较。

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