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Combining Probabilistic Contexts in Multi-Agent Systems

机译:结合多智能体系统中的概率上下文

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摘要

We propose an approach for modelling, integrating, and querying distributed probabilistic contexts in multi-agent systems. We assume each agent to be equipped with an independently acquired uncertain context. By taking advantage of established database technologies, we represent the uncertain context of each agent as a set of probabilistic facts conveniently stored in a probabilistic database. Members of a multi-agent system act autonomously and interact with each other. The interaction between agents consists of sharing access to their contexts with each other and allowing queries over the combined shared contexts. This amounts to the challenge of combining and querying distributed probabilistic databases. To combine probabilistic contexts, we define a context-matching operator that creates a joint probability distribution with given marginal probabilities. Furthermore, we propose a query answering method over combinations of probabilistic contexts.
机译:我们提出了一种在多主体系统中建模,集成和查询分布式概率上下文的方法。我们假定每个代理都配备有独立获取的不确定上下文。通过利用已建立的数据库技术,我们将每个代理的不确定上下文表示为方便地存储在概率数据库中的一组概率事实。多代理系统的成员可以自主行动并相互交互。代理之间的交互包括彼此共享对其上下文的访问,并允许在组合的共享上下文中进行查询。这相当于组合和查询分布式概率数据库的挑战。为了结合概率上下文,我们定义了一个上下文匹配运算符,该运算符创建具有给定边际概率的联合概率分布。此外,我们提出了一种基于概率上下文组合的查询回答方法。

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