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Robust Occupancy Inference with Commodity WiFi

机译:商品WiFi的可靠占用推断

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摘要

Accurate occupancy information of indoor environments is one of the key prerequisites for many pervasive and context-aware services, e.g. smart building/home systems. Some of the existing occupancy inference systems can achieve impressive accuracy, but they either require labour-intensive calibration phases, or need to install bespoke hardware such as CCTV cameras, which are privacy-intrusive by default. In this paper, we present the design and implementation of a practical end-to-end occupancy inference system, which requires minimum user effort, and is able to infer room-level occupancy accurately with commodity WiFi infrastructure. Depending on the needs of different occupancy information subscribers, our system is flexible enough to switch between snapshot estimation mode and continuous inference mode, to trade estimation accuracy for delay and communication cost. We evaluate the system on a hardware testbed deployed in a 600m 2 workspace with 25 occupants for 6 weeks. Experimental results show that the proposed system significantly outperforms competing systems in both inference accuracy and robustness.
机译:室内环境的准确占用信息是许多普适性和情境感知服务(例如网络服务)的关键前提之一。智能建筑/家庭系统。现有的某些占用推断系统可以达到令人印象深刻的准确性,但是它们要么需要大量的劳动校准阶段,要么需要安装定制的硬件(例如CCTV摄像机),默认情况下这些组件会侵犯隐私。在本文中,我们介绍了一种实用的端到端占用率推断系统的设计和实现,该系统需要最少的用户精力,并且能够利用商品WiFi基础设施准确地推断出房间级别的占用率。根据不同占用信息订户的需求,我们的系统足够灵活,可以在快照估计模式和连续推理模式之间切换,以牺牲估计准确性来换取延迟和通信成本。我们在一个硬件测试台上评估该系统,该测试台部署在600m 2的工作区中,该工作区有25名乘客,为期6周。实验结果表明,所提出的系统在推理准确性和鲁棒性方面均明显优于竞争系统。

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