Smart home simulation using avatar control and probabilistic sampling

J. Lundström, J. Synnott, E. Järpe, C. Nugent
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引用次数: 16

Abstract

Development, testing and validation of algorithms for smart home applications are often complex, expensive and tedious processes. Research on simulation of resident activity patterns in Smart Homes is an active research area and facilitates development of algorithms of smart home applications. However, the simulation of passive infrared (PIR) sensors is often used in a static fashion by generating equidistant events while an intended occupant is within sensor proximity. This paper suggests the combination of avatar-based control and probabilistic sampling in order to increase realism of the simulated data. The number of PIR events during a time interval is assumed to be Poisson distributed and this assumption is used in the simulation of Smart Home data. Results suggest that the proposed approach increase realism of simulated data, however results also indicate that improvements could be achieved using the geometric distribution as a model for the number of PIR events during a time interval.
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基于虚拟角色控制和概率抽样的智能家居仿真
智能家居应用程序算法的开发、测试和验证通常是一个复杂、昂贵和繁琐的过程。智能家居中居民活动模式的模拟研究是一个活跃的研究领域,促进了智能家居应用算法的发展。然而,被动红外(PIR)传感器的模拟通常以静态方式使用,当目标乘员在传感器附近时,通过产生等距事件。为了提高仿真数据的真实感,本文提出了基于虚拟人物的控制与概率抽样相结合的方法。假设在一个时间间隔内的PIR事件数为泊松分布,并将此假设用于智能家居数据的仿真。结果表明,所提出的方法增加了模拟数据的真实性,但结果也表明,使用几何分布作为一个时间间隔内PIR事件数量的模型可以实现改进。
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