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A two-step approach to building bilateral consensus between agents based on relationship learning theory

机译:基于关系学习理论的两步建立代理之间的双边共识的方法

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摘要

Researchers are increasingly focusing on the agent based approach to transaction support in ubiquitous commerce. These agents work autonomously to maximize utility on the user's behalf. In the case of a cooperative game, rather than a win-lose zero-sum game, agents may negotiate with each other or have a negotiating agent provide a suggestion that can be reasonably accepted by the dyad to build a consensus. In this paper we propose a novel methodology that increases agent performance in terms of costs associated with building consensus and successful negotiation rates. To do so, we develop a two-step approach: joint learning and negotiation to consensus building. We also conduct an experimental study to show the feasibility of the methodology.
机译:研究人员越来越关注基于代理的方法来为无处不在的商业提供交易支持。这些代理自主工作,以代表用户最大程度地发挥效用。在合作博弈的情况下,代理商可以彼此协商或让谈判代理商提供建议,该建议可以被二元组合理接受以建立共识,而不是输赢的零和博弈。在本文中,我们提出了一种新颖的方法,可以通过提高与建立共识和成功谈判率相关的成本来提高代理绩效。为此,我们开发了两步方法:联合学习和协商以建立共识。我们还进行了一项实验研究,以证明该方法的可行性。

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