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A Fuzzy Based Architecture for Learning Relevant Embedded Agents Associations in Ambient Intelligent Environments

机译:在环境智能环境中学习相关嵌入式代理关联的基于模糊的体系结构

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This paper presents a novel fuzzy-based intelligent architecture that aims to find relevant associations between services provided by devices and embedded agents residing in Ambient Intelligent Environments (AIEs). The embedded agents perform two processes where the first process monitors the inhabitants of the AIE and learns their behaviors in an online, non-intrusive and life-long fashion. The second process then evaluates the relevance and significance of the associations to various services and eliminates the redundant associations in order to minimize the agent computational latency within the AIE. We will present real world experiments that were conducted in the Essex intelligent Dormitory (iDorm) to evaluate and validate the significance of the proposed architecture.
机译:本文介绍了一种新型模糊的智能架构,旨在找到由驻留在环境智能环境(AIE)中的设备和嵌入式代理提供的服务之间的相关关联。嵌入式代理商执行两个过程,其中第一个过程监测艾的居民,并以在线,非侵入性和终身时尚的行为。然后,第二进程评估关联对各种服务的相关性和重要性,并消除冗余关联,以最小化AIE内的代理计算延迟。我们将在Essex智能宿舍(IDORD)中进行真实的世界实验,以评估和验证拟议的架构的重要性。

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