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CeilingSee: Device-free occupancy inference through lighting infrastructure based LED sensing

机译:天花板请参阅:通过基于照明基础设施的LED感应进行无设备占用率推断

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As a key component of building management and security, occupancy inference through smart sensing has attracted a lot of research attentions for nearly two decades. Nevertheless, existing solutions mostly rely on either pre-deployed infrastructures or user device participation, thus hampering their wide adoption. This paper presents CeilingSee, a dedicated occupancy inference system free of heavy infrastructure deployments and user involvements. Building upon existing LED lighting systems, CeilingSee converts part of the ceiling-mounted LED luminaires to act as sensors, sensing the variances in diffuse reflection caused by occupants. In realizing CeilingSee, we first re-design the LED driver to leverage LED's photoelectric effect so as to transform a light emitter to a light sensor. In order to produce accurate occupancy inference, we then engineer efficient learning algorithms to fuse sensing information gathered by multiple LED luminaires. We build a testbed covering a 30m2 office area; extensive experiments show that CeilingSee is able to achieve very high accuracy in occupancy inference.
机译:作为建筑物管理和安全性的重要组成部分,通过智能感应进行占用推断已经引起了近二十年来的研究关注。尽管如此,现有的解决方案大多依赖于预先部署的基础架构或用户设备的参与,因此妨碍了它们的广泛采用。本文介绍了CeilingSee,这是一个专用的占用推断系统,无需繁重的基础架构部署和用户参与。在现有的LED照明系统的基础上,CeilingSee将部分安装在天花板上的LED灯具转换为传感器,以感应由乘员引起的漫反射变化。在实现CeilingSee时,我们首先重新设计LED驱动器,以利用LED的光电效应,从而将发光器转换为光传感器。为了产生准确的占用推断,我们然后设计有效的学习算法来融合由多个LED灯具收集的感测信息。我们建立了一个占地30平方米的测试平台;大量的实验表明,CeilingSee能够在占用推断中实现非常高的准确性。

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