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Parameter estimation and optimization of multi-objective capacitated stochastic transportation problem for gamma distribution

机译:伽马分布多目标电容随机运输问题的参数估计与优化

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摘要

The transportation problem in real life is an uncertain problem with multi-objective decision-making. In particular, by considering the conflicting objectives/criteria such as transportation costs, transportation time, discount costs, labour costs, damage costs, decision maker searches for the best transportation set-up to find out the optimum shipment quantity subject to certain capacity restrictions on each route. In this paper, capacitated stochastic transportation problem is formulated as a multi-objective optimization model along with some capacitated restrictions on the route. In the formulated problem, we assume that parameters of the supply and demand constraints’ follow gamma distribution, which is handled by the chance constrained programming approach and the maximum likelihood estimation approach has been used to assess the probabilistic distributions of the unknown parameters with a specified probability level. Furthermore, some of the objective function’s coefficients are consider as ambiguous in nature. The ambiguity in the formulated problem has been presented by interval type 2 fuzzy parameter and converted into the deterministic form using an expected value function approach. A case study on transportation illustrates the computational procedure.
机译:现实生活中的运输问题是多目标决策的不确定问题。特别地,通过考虑相互矛盾的目标/标准,如运输成本,运输时间,折扣成本,劳动力成本,损害成本,决策者搜索最佳运输设置,以找出某些容量限制的最佳货件数量每路路线。本文将电容随机运输问题配制为多目标优化模型以及路线上的一些电容限制。在配制的问题中,我们假设供应和需求约束的参数遵循伽玛分布,该方法由机会限制编程方法处理以及最大似然估计方法已经用于评估指定的未知参数的概率分布概率水平。此外,一些客观函数的系数在自然界中认为是暧昧的。配制问题中的歧义已经通过间隔类型2模糊参数呈现,并使用预期的值函数方法转换为确定性形式。运输案例研究说明了计算过程。

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