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Context-aware decision making under uncertainty for voice-based control of smart home

机译:基于语音的智能家居控制不确定性下的上下文感知决策

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This paper presents a framework to build home automation systems reactive to voice for improved comfort and autonomy at home. The focus of this paper is on the context-aware decision process which must reason from uncertain facts inferred from real sensor data. This framework for building context aware systems uses a hierarchical knowledge model so that different inference modules can communicate and reason with same concepts and relations. The context-aware decision module is based on a Markov Logic Network, a recent approach which make it possible to benefit from formal logical representation and to model uncertainty of this knowledge. In this work, uncertainty of the decision model has been learned from data. Although some expert systems are able to deal with uncertainty, the Markov Logic Network approach brings a unified theory for dealing with logical entailment, uncertainty and missing data. Moreover, the ability to use a priori knowledge and to learn weights and structure from data make this model appealing to address the challenge of adaptation of expert systems to new applications. Finally, the framework has been implemented in an on-line system which has been evaluated in a real smart home with real naive users. Results of the experiment show the interest of context-aware decision making and the advantages of a statistical relational model for the framework. (C) 2017 Elsevier Ltd. All rights reserved.
机译:本文提出了一个框架,用于构建对语音有反应的家庭自动化系统,以提高家庭的舒适度和自主性。本文的重点是上下文感知决策过程,该决策过程必须基于真实传感器数据推断出的不确定事实。用于构建上下文感知系统的此框架使用分层知识模型,以便不同的推理模块可以使用相同的概念和关系进行通信和推理。上下文感知决策模块基于马尔可夫逻辑网络(Markov Logic Network),这是一种最新方法,可以从形式逻辑表示中受益并为这种知识的不确定性建模。在这项工作中,决策模型的不确定性已从数据中获悉。尽管某些专家系统能够处理不确定性,但是马尔可夫逻辑网络方法为处理逻辑蕴含,不确定性和数据丢失带来了统一的理论。此外,使用先验知识并从数据中学习权重和结构的能力使该模型具有吸引力,可以解决专家系统适应新应用的挑战。最后,该框架已在在线系统中实施,该系统已在具有真正天真用户的真实智能家居中进行了评估。实验结果显示了上下文感知决策的兴趣以及该框架的统计关系模型的优势。 (C)2017 Elsevier Ltd.保留所有权利。

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