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BraveCat: Iterative Deepening Distance-Based Opponent Modeling and Hybrid Bidding in Nonlinear Ultra Large Bilateral Multi Issue Negotiation Domains

机译:BraveCat:非线性超大型双边多问题协商域中基于迭代加深距离的对手建模和混合竞标

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摘要

In this study, we propose BraveCat agent, one of the ANAC 2014 finalists. The main challenge of ANAC 2014 was dealing with nonlinear utility scenarios and ultra large-size domains. Since the conventional frequency and Bayesian opponent models cannot be used to model the unknown complex nonlinear utility space or preference profile of the opponent in ultra large domains, we design a new distance based opponent model to estimate the utility of a candidate bid to be sent to the opponent in each round of the negotiation. Moreover, by using iterative deepening search, BraveCat overcomes the limitations imposed by the huge amount of memory needed in the ultra large domains. It also uses a hybrid bidding strategy that combines behaviors of time dependent, random, and imitative strategies.
机译:在这项研究中,我们提出了BraveCat代理,它是ANAC 2014决赛入围者之一。 ANAC 2014的主要挑战是处理非线性实用程序场景和超大型域。由于无法使用常规的频率和贝叶斯对手模型来对超大域中对手的未知复杂非线性效用空间或对手的偏好分布进行建模,因此,我们设计了一种基于距离的新对手模型来估算要发送到的候选出价的效用在每一轮谈判中的对手。此外,通过使用迭代加深搜索,BraveCat克服了超大型域中所需的大量内存所带来的限制。它还使用混合出价策略,该策略结合了时间依赖性,随机和模仿策略的行为。

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  • 会议地点 Paris(FR)
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    Department of Information Technology Engineering, University of Isfahan, Hezar Jerib Avenue, 81746-73441 Isfahan, Iran,Faculty of Science, Engineering and Technology, Swinburne University of Technology, Melbourne, VIC 3122, Iran;

    Department of Information Technology Engineering, University of Isfahan, Hezar Jerib Avenue, 81746-73441 Isfahan, Iran;

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