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DoNA-A Domain-Based Negotiation Agent

机译:基于域的DoNA-A协商代理

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摘要

Negotiation is an important skill when interacting actors might have misaligned interests. In order to support automated negotiators research the Automated Negotiation Agent Competition (ANAC) was founded to evaluate automated agents in a bilateral negotiation setting across multiple domains. An analysis of various agents' strategies from past competitions show that most of them used an explicit opponent modeling component. While it is well known that in repeated interactions, learning the opponent and developing reciprocity become of prominent importance to achieve one's goal, when the interactions with the same partner are not repeated, focusing on complex opponent modeling might not be the right approach. With that in mind, we explore a domain-based approach in which we form strategies based solely on two domain parameters: the reservation value and the discount factor. Following the presentation of our cognitive model, we present DoNA, a Domain-based Negotiation Agent that exemplifies our approach.
机译:当交互参与者的利益可能不一致时,谈判是一项重要技能。为了支持自动谈判员的研究,成立了自动谈判代理人竞赛(ANAC)以评估跨多个领域的双边谈判环境中的自动代理人。对过去竞赛中各种特工策略的分析表明,他们中的大多数使用了明确的对手建模组件。众所周知,在反复互动中,学习对手并发展互惠对实现目标至关重要,但如果不重复与同一伙伴的互动,那么专注于复杂的对手建模可能不是正确的方法。考虑到这一点,我们探索了一种基于域的方法,在该方法中,我们仅基于两个域参数(预留值和折扣因子)形成策略。在介绍我们的认知模型之后,我们介绍了DoNA,这是一种基于域的谈判代理,可以例证我们的方法。

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