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Reputation-based decisions for logic-based cognitive agents

机译:基于逻辑的认知代理的基于信誉的决策

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摘要

Computational trust and reputation models have been recognized as one of the key technologies required to design and implement agent systems. These models manage and aggregate the information needed by agents to efficiently perform partner selection in uncertain situations. For simple applications, a game theoretical approach similar to that used in most models can suffice. However, if we want to undertake problems found in socially complex virtual societies, we need more sophisticated trust and reputation systems. In this context, reputation-based decisions that agents make take on special relevance and can be as important as the reputation model itself. In this paper, we propose a possible integration of a cognitive reputation model, Repage, into a cognitive BDI agent. First, we specify a belief logic capable to capture the semantics of Repage information, which encodes probabilities. This logic is defined by means of a two first-order languages hierarchy, allowing the specification of axioms as first-order theories. The belief logic integrates the information coming from Repage in terms if image and reputation, and combines them, defining a typology of agents depending of such combination. We use this logic to build a complete graded BDI model specified as a multi-context system where beliefs, desires, intentions and plans interact among each other to perform a BDI reasoning. We conclude the paper with an example and a related work section that compares our approach with current state-of-the-art models. © 2010 The Author(s).
机译:计算信任和信誉模型已被认为是设计和实现代理系统所需的关键技术之一。这些模型管理和汇总代理所需的信息,以在不确定的情况下有效地执行合作伙伴选择。对于简单的应用程序,类似于大多数模型中使用的博弈论方法就足够了。但是,如果我们要承担在社会复杂的虚拟社会中发现的问题,则需要更复杂的信任和声誉系统。在这种情况下,代理做出的基于信誉的决策具有特殊的意义,并且与信誉模型本身一样重要。在本文中,我们提出了将认知信誉模型Repage集成到认知BDI代理中的可能方法。首先,我们指定一种信念逻辑,该逻辑能够捕获Repage信息的语义,该语义对概率进行编码。此逻辑是通过两个一阶语言层次结构定义的,从而允许将公理指定为一阶理论。信念逻辑按照图像和声誉来整合来自Repage的信息,并将其组合起来,从而根据这种组合定义代理的类型。我们使用此逻辑来构建一个完整的分级BDI模型,该模型被指定为一个多上下文系统,在该系统中,信念,愿望,意图和计划相互交互以执行BDI推理。我们以一个示例和一个相关的工作部分作为本文的结尾,该示例将我们的方法与当前的最新模型进行了比较。 ©2010作者。

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