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An evolutionary learning approach for adaptive negotiation agents

机译:自适应谈判代理的进化学习方法

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摘要

Developing effective and efficient negotiation mechanisms for real-world applications such as e-Business is challenging since negotiations in such a context are characterised by combinatorially complex negotiation spaces, tough deadlines, very limited information about the opponents, and volatile negotiator preferences. Accordingly, practical negotiation systems should be empowered by effective learning mechanisms to acquire dynamic domain knowledge from the possibly changing negotiation contexts. Thisudpaper illustrates our adaptive negotiation agents which are underpinned by robust evolutionary learning mechanisms to deal with complex and dynamic negotiation contexts. Our experimental results show that GA-based adaptive negotiation agents outperform a theoretically optimal negotiation mechanism which guarantees Pareto optimal. Our research work opens the door to the development of practical negotiation systems for real-world applications.
机译:为现实世界的应用(例如电子商务)开发有效而高效的谈判机制具有挑战性,因为在这种情况下,谈判的特点是谈判空间组合复杂,期限紧迫,对手的信息非常有限以及谈判者的喜好不定。因此,应通过有效的学习机制授权实际的谈判系统,以从可能变化的谈判环境中获取动态领域知识。本 udpaper说明了我们的自适应协商代理,这些代理以强大的进化学习机制为基础来处理复杂而动态的协商环境。我们的实验结果表明,基于GA的自适应协商代理要优于理论上最优的协商机制,该机制可确保Pareto最优。我们的研究工作为实际应用中的实际谈判系统的开发打开了大门。

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