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Opponent Modeling with Information Adaptation (OMIA) in Automated Negotiations

机译:在自动谈判中与信息适应(OMIA)的对手建模

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Opponent modeling is an important technique in automated negotiations. Many of the existing opponent modeling methods are focusing on predicting the opponent's private information to improve the agent's benefits. However, these modeling methods overlook an ability to improve the negotiation outcomes by adapting to different types of private information about the opponent when they are available beforehand. This availability may be provided by some prediction algorithms, or be prior knowledge of the agent. In this paper, we name the above ability as Information Adaptation, and propose a novel Opponent Modeling method with Information Adaptation (OMIA). Specifically, the future concessions of the opponent will firstly be learned based on the opponent's historical offers. Then, an expected utility calculation function is introduced to adaptively guide the agent's negotiation strategy by considering the availability and value of the opponent's private information. The experimental results show that OMIA can adapt to different types of information, helping the agent reach agreements with the opponent and achieve higher utility values comparing to those which lack the information adaptation ability.
机译:对手建模是自动谈判中的重要技术。许多现有的对手建模方法都专注于预测对手的私人信息,以提高代理人的好处。然而,这些建模方法通过在事先上市时适应对对手的不同类型的私人信息来忽视改善谈判结果的能力。该可用性可以由一些预测算法提供,或者是代理的先验知识。在本文中,我们将上述能力命名为信息适配,并提出了一种新颖的对手建模方法,具有信息适应(OMIA)。具体而言,将基于对手的历史优惠来汲取对手的未来优惠。然后,通过考虑对手私人信息的可用性和价值,引入预期的实用计算功能以自适应引导代理人的谈判策略。实验结果表明,OMIA可以适应不同类型的信息,帮助代理商与对手达成协议,并实现与缺乏信息适应能力的那些相比的较高的效用价值。

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