MASOS: A multi-agent system simulation framework for sustainable supplier evaluation and order allocation

P. Ghadimi, C. Heavey
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引用次数: 5

Abstract

Purchasing activities consume more than half of manufacturing and trading organizations sales capitals. Effective procurement is tied with efficient and highly accurate collection of data needed for purchasing the right material with the acceptable quality from appropriate suppliers. Supply chain management (SCM) consists of complex networks of distributed actors in which the problem of identifying the appropriate suppliers and allocating optimal order quantities based on the Triple Bottom Line (TBL) attributes is strategically important. However, implementation of an autonomous and automated assessment that can incorporate dynamics and uncertainty of the whole supply chain during the assessment period is not addressed. In the current research paper, a novel framework is designed and proposed to narrow the aforementioned gap. Agent technology has been incorporated in the developed framework to decrease the supplier chain uncertainty by decreasing human interactions and automating the process of supplier evaluation and order allocation.
可持续供应商评价与订单分配的多智能体系统仿真框架
采购活动消耗了制造和贸易组织销售资本的一半以上。有效的采购与高效和高度准确的数据收集有关,以便从适当的供应商处采购质量合格的合适材料。供应链管理(SCM)由分布式参与者的复杂网络组成,其中基于三重底线(TBL)属性识别合适的供应商和分配最优订单数量的问题具有重要的战略意义。然而,在评估期间,没有解决可以合并整个供应链的动态和不确定性的自主和自动化评估的实现。在本研究中,我们设计并提出了一个新的框架来缩小上述差距。在开发的框架中引入Agent技术,通过减少人机交互,实现供应商评估和订单分配过程的自动化,降低供应链的不确定性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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