A multi-objective supplier selection framework based on user-preferences

被引:0
作者
Federico Toffano
Michele Garraffa
Yiqing Lin
Steven Prestwich
Helmut Simonis
Nic Wilson
机构
[1] University College Cork,Insight Centre for Data Analytics, School of Computer Science and IT
[2] United Technologies Research Centre,School of Computer Science and IT
[3] University College Cork,undefined
[4] United Technologies Research Centre,undefined
来源
Annals of Operations Research | 2022年 / 308卷
关键词
Supplier selection; Preference elicitation; Incremental elicitation; Multi-attribute utility theory; Multi-objective optimization; Mathematical programming;
D O I
暂无
中图分类号
学科分类号
摘要
This paper introduces an interactive framework to guide decision-makers in a multi-criteria supplier selection process. State-of-the-art multi-criteria methods for supplier selection elicit the decision-maker’s preferences among the criteria by processing pre-collected data from different stakeholders. We propose a different approach where the preferences are elicited through an active learning loop. At each step, the framework optimally solves a combinatorial problem multiple times with different weights assigned to the objectives. Afterwards, a pair of solutions among those computed is selected using a particular query selection strategy, and the decision-maker expresses a preference between them. These two steps are repeated until a specific stopping criterion is satisfied. We also introduce two novel fast query selection strategies, and we compare them with a myopically optimal query selection strategy. Computational experiments on a large set of randomly generated instances are used to examine the performance of our query selection strategies, showing a better computation time and similar performance in terms of the number of queries taken to achieve convergence. Our experimental results also show the usability of the framework for real-world problems with respect to the execution time and the number of loops needed to achieve convergence.
引用
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页码:609 / 640
页数:31
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