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Defeasible Contextual Reasoning with Arguments in Ambient Intelligence

机译:在环境智能中带有论点的不合理的上下文推理

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摘要

The imperfect nature of context in Ambient Intelligence environments and the special characteristics of the entities that possess and share the available context information render contextual reasoning a very challenging task. The accomplishment of this task requires formal models that handle the involved entities as autonomous logic-based agents and provide methods for handling the imperfect and distributed nature of context. This paper proposes a solution based on the Multi-Context Systems paradigm in which local context knowledge of ambient agents is encoded in rule theories (contexts), and information flow between agents is achieved through mapping rules that associate concepts used by different contexts. To handle imperfect context, we extend Multi-Context Systems with nonmonotonic features: local defeasible theories, defeasible mapping rules, and a preference ordering on the system contexts. On top of this model, we have developed an argumentation framework that exploits context and preference information to resolve potential conflicts caused by the interaction of ambient agents through the mappings, and a distributed algorithm for query evaluation.
机译:环境智能环境中上下文的不完美特性以及拥有并共享可用上下文信息的实体的特殊特性,使得上下文推理成为一项非常具有挑战性的任务。要完成此任务,需要形式模型来将涉及的实体作为基于逻辑的自主代理来处理,并提供用于处理上下文的不完美和分布式性质的方法。本文提出了一种基于多上下文系统范式的解决方案,其中环境代理的本地上下文知识被编码在规则理论(上下文)中,并且代理之间的信息流通过映射规则来实现,该映射规则关联了不同上下文所使用的概念。为了处理不完美的上下文,我们扩展了具有非单调特征的多上下文系统:本地可废止理论,可废止映射规则以及系统上下文上的优先顺序。在此模型的顶部,我们开发了一个论证框架,该框架利用上下文和首选项信息来解决由环境代理通过映射进行的交互所引起的潜在冲突,以及用于查询评估的分布式算法。

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