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Situation-Aware Decision Making in Smart Homes

机译:智能家居中的情境感知决策

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The ability to efficiently predict the elderly's future situations and make the right decision accordingly is a necessity in developing smart homes. In this paper, we propose a hybrid and dynamic predictive model which utilizes higher order Markov models integrated with a situation ranking technique. More specifically, we employ a revised version of PageRank algorithm to take the properties of the situation-graph (structure and semantics) into account and dynamically rank the situations considering the user's mental state. Then we apply rankings as prior probabilities in order to build the corresponding Markov model. Also, we utilize rankings to identify milestone situations and transitions in order to compress the representation model. Experiments show that the predictions obtained by this approach are more efficient and effective than the ones produced from the pure predictive graphical model-based approaches.
机译:有效地预测老年人的未来状况并做出正确决定的能力是开发智能家居的必要条件。在本文中,我们提出了一种混合动态预测模型,该模型利用了高阶马尔可夫模型和情景排序技术。更具体地说,我们采用修订版的PageRank算法,以考虑到情境图的属性(结构和语义),并根据用户的心理状态对情境进行动态排名。然后,我们将排名作为先验概率,以建立相应的马尔可夫模型。此外,我们利用排名来识别里程碑情况和过渡情况,以压缩表示模型。实验表明,通过这种方法获得的预测比基于纯预测图形模型的方法所产生的预测更有效。

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