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A novel two-phase approach for the bi-objective simultaneous delivery and pickup problem with fuzzy pickup demands

机译:模糊拾取需求的双目标同时递送和拾取问题的一种新型两相方法

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摘要

This paper is dedicated to providing a solution framework for the bi-objective vehicle routing problem with simultaneous delivery and pickup which aims to minimize the comprehensive cost as well as maximize the recycling revenue in each round of dispatching. Considering that the real weights of goods to be recycled from the customers are fixed but cannot be precisely given while making one-time routing scheme in the daily operations, the pickup demands are considered as fuzzy numbers, and accordingly a fuzzy chance-constraint programming model for obtaining a prior route solution from the perspective of risk is presented. Afterwards, by demonstrating the continuity and monotonicity of the objective functions, a two-phase approach based on the operational law of the inverse credibility distribution is introduced to solve the model, including translating it into an equivalent nonlinear programming model and resorting to the existing algorithms for obtaining optimal solutions afterwards. Subsequently, in order to validate the performance of the proposed approach and in consideration of the inherent complexity of the vehicle routing problem, a two-phase-based genetic algorithm and the conventional fuzzy simulation-based genetic algorithm are designed and compared by a clothes delivery and pickup problem. The computational results demonstrate that the proposed solution framework is competitive in effectiveness and efficiency, and the parameter analyses provide some suggestions for guidance.
机译:本文致力于为双目标车辆路由问题提供同时交付和拾取的解决方案框架,旨在最大限度地减少综合成本,并在每轮调度中最大化回收收入。考虑到从客户回收的实际重量是固定的,但在日常运营中进行一次性路由方案的同时无法精确给出,拾取需求被视为模糊数,因此一个模糊的机会约束编程模型从呈现风险的角度获取现有路线解决方案。之后,通过展示客观函数的连续性和单调性,引入了一种基于逆信誉分布的操作规律的两相方法来解决模型,包括将其转化为相当于非线性编程模型,并诉诸现有算法以后获得最佳解决方案。随后,为了验证所提出的方法的性能,并考虑到车辆路由问题的固有复杂性,通过衣服递送设计和比较了基于两相的遗传算法和传统的模糊仿真遗传算法和拾取问题。计算结果表明,所提出的解决方案框架在有效和效率方面具有竞争力,参数分析提供了一些关于指导的建议。

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