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A genetic algorithm for minimizing total tardiness/earliness of weighted jobs in a batched delivery system

机译:最小化批处理交付系统中加权作业的总拖延/提前性的遗传算法

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摘要

This paper endeavors to solve a novel complex single-machine scheduling problem using two different approaches. One approach exploits mathematical modeling, and the other is based upon genetic algorithms. The problem involves earliness, tardiness, and inventory costs and considers a batched delivery system. The same conditions might apply to some real supply chains, in which delivery of products is conducted in a batched form and with some costs. In such delivery systems, the act of buffering the products can have both positive effects (i.e., decreasing the delivery costs and early jobs) and negative ones (i.e., increasing the number of tardy and holding costs). Accordingly, the proposed solution takes into account both effects and tries to find a trade-off between them to hold the total costs low. The suggestions are compared to existing solutions for older non-batched systems and have illustrated outperformance.
机译:本文致力于使用两种不同的方法来解决一个新颖的复杂单机调度问题。一种方法利用数学建模,另一种方法则基于遗传算法。该问题涉及早期性,延误性和库存成本,并考虑采用分批交付系统。相同的条件可能适用于某些实际的供应链,其中产品的交付以批处理的形式进行且成本较高。在这种交付系统中,缓冲产品的行为既可以具有积极的作用(即降低交付成本和早期工作),也可以具有消极的影响(即增加停滞和保持成本的数量)。因此,所提出的解决方案考虑了两种效果,并试图在它们之间进行权衡以使总成本保持较低。将这些建议与较旧的非批处理系统的现有解决方案进行了比较,并说明了其出色的性能。

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