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THE ADVANTAGES OF DESIGNING ADAPTIVE BUSINESS AGENTS USING REPUTATION MODELING COMPARED TO THE APPROACH OF RECURSIVE MODELING

机译:与递归建模方法相比,使用信誉建模设计自适应业务代理的优势

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Adaptive business agents operate in electronic marketplaces, learning from past experiences to make effective decisions on behalf of their users. How best to design these agents is an open question. In this article, we present an approach for the design of adaptive business agents that uses a combination of reinforcement learning and reputation modeling. In particular, we take into account the fact that multiple selling agents may offer the same good with different qualities, and that selling agents may alter the quality of their goods. We also consider the possibility of dishonest agents in the marketplace. Our buying agents exploit the reputation of selling agents to avoid interaction with the disreputable ones, and therefore to reduce the risk of purchasing low value goods. We then experimentally compare the performance of our agents with those designed using a recursive modeling approach. We are able to show that agents designed according to our algorithms achieve better performance in terms of satisfaction and computational time and as such are well suited for the design of electronic marketplaces.
机译:适应性业务代理在电子市场中运作,从过去的经验中汲取经验,以代表其用户做出有效的决策。如何最好地设计这些代理是一个悬而未决的问题。在本文中,我们提出了一种结合了强化学习和声誉建模的自适应业务代理设计方法。特别是,我们考虑到以下事实:多个销售代理商可能会提供具有不同质量的同一商品,并且销售代理商可能会改变其商品质量。我们还考虑了市场上不诚实代理商的可能性。我们的买方代理商利用卖方代理商的声誉来避免与信誉不佳的代理商进行互动,从而降低购买低价商品的风险。然后,我们通过实验将代理的性能与使用递归建模方法设计的代理性能进行比较。我们能够证明,根据我们的算法设计的代理在满意度和计算时间方面可以实现更好的性能,因此非常适合电子市场的设计。

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