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Quantitatively Evaluating Difficulty in Reaching Agreements in Multilateral Closed Negotiation Scenarios

机译:定量评估多边封闭谈判方案中达成协议的难度

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Negotiation is one type of these possible interactions through which intelligent agents can resolve their conflicts and maximize their utility. Furthermore, automated negotiation approaches are expected to greatly reduce the efforts that stakeholders have to expend during real-life negotiations. In this regard, we conceal the preference information of negotiation participants to protect privacy in a real-world negotiation environment. However, in such a negotiation environment, it is difficult for negotiation participants to search effective agreement candidates as reaching agreements. Therefore, in this study, we propose a metric called the Metric of Opposition Level (MOL), which is used for analyzing negotiation scenarios in an environment in which participants' preferences are concealed. The proposed metric MOL quantitatively indicates the difficulty in reaching an agreement by measuring how hostile the opponent agent is. In particular, a third person can analyze negotiation scenarios in consideration of the difficulty in negotiation participants searching agreement candidates. Experimental results indicate the impact of the MOL on agent negotiation results and its vital role in building better negotiation strategies.
机译:协商是这些可能的交互的一种,通过这种交互,智能代理可以解决其冲突并最大化其效用。此外,自动谈判方法有望大大减少利益相关者在现实生活中必须付出的努力。在这方面,我们隐藏了谈判参与者的偏好信息,以保护现实世界中的谈判环境中的隐私。然而,在这样的谈判环境中,谈判参与者难以在达成协议时搜索有效的协议候选者。因此,在这项研究中,我们提出了一种称为“对等度量标准”(MOL)的度量标准,该度量标准用于分析隐藏了参与者偏好的环境中的协商方案。拟议的度量MOL通过衡量对手的敌对程度如何定量表示达成协议的难度。特别地,第三人可以考虑到谈判参与者搜索协议候选者的困难来分析谈判场景。实验结果表明,MOL对代理协商结果的影响及其在建立更好的协商策略中的重要作用。

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