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Structured Learning of Component Dependencies in AmI Systems

机译:AMI系统中组件依赖性的结构化学习

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As information and communication technologies are becoming an integral part of our homes, the demand for AmI systems with assistive functionality is increasing. A great effort has been spent on designing and building interoperable middleware solutions to be used as the basis for such system. What is called for, though, is a clear direction in the way uncertainty about acquired knowledge is learnt and employed. This paper presents a probabilistic framework for learning dependencies between components within a home environment. In our approach, the uncertainty is maintained in a probabilistic knowledge base which is automatically built from semantic descriptions and observations of device states and events. The knowledge base can be used by smart applications for performing reasoning about the current flow of system events. Furthermore, some preliminary results obtained from real world data are presented.
机译:随着信息和通信技术正成为我们家庭的一个组成部分,随着辅助功能的对AMI系统的需求正在增加。在设计和构建可互操作的中间件解决方案上,努力努力被用作这种系统的基础。但是,所谓的是一种清晰的方向,以获得所获得的知识的不确定性被学习和雇用。本文介绍了一个概率框架,用于学习家庭环境中的组件之间的依赖性。在我们的方法中,不确定性保持在概率知识库中,该基础自动由语义描述和设备状态和事件的观察。可以通过智能应用程序使用知识库,以便对系统事件的当前流程进行推理。此外,提出了从现实世界数据获得的一些初步结果。

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