Bayesian learning in bilateral multi-issue negotiation and its application in MAS-based electronic commerce

Jian Li, Yuan-Da Cao
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引用次数: 19

Abstract

With the rapid development of multi-agent systems (MAS), automatic negotiation is often needed. But because of incomplete information agents have in the systems, the efficiency of negotiation is rather low. To overcome this problem, a Bayesian learning algorithm is presented to learn incomplete information of the negotiation agent to enhance the negotiation efficiency. The algorithm is applied to bilateral multi-issue negotiation in MAS-based e-commerce. Experiments show that it can help agents to negotiate more efficiently.
双边多议题谈判中的贝叶斯学习及其在基于mas的电子商务中的应用
随着多智能体系统(MAS)的快速发展,往往需要进行自动协商。但由于系统中agent的信息不完全,导致协商效率较低。为了克服这一问题,提出了一种贝叶斯学习算法来学习谈判代理的不完全信息,以提高谈判效率。将该算法应用于基于mas的电子商务中双边多问题协商。实验表明,该方法可以帮助代理更有效地进行谈判。
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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