Anatomy and Deployment of Robust AI-Centric Indoor Positioning System

Yiannis Gkoufas, S. Braghin
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引用次数: 3

Abstract

Indoor Positioning Systems are gaining market momentum, mainly due to the significant reduction of sensor cost (on smartphones or standalone) and leveraging standardization of related technology. Among various alternatives for accurate and cost-effective Indoor Positioning System, positioning based on the Magnetic Field has proven popular, as it does not require specialized infrastructure. Related experimental results have demonstrated good positioning accuracy. However, when transitioned to production deployments, these systems exhibit serious drawbacks to make them practical: a) accuracy fluctuates significantly across smartphone models and configurations and b) costly continuous manual fingerprinting of the area is required. The developed Indoor Positioning System Copernicus is a self-learning, adaptive system that is shown to exhibit improved accuracy across different smartphone models. Copernicus leverages a minimal deployment of Bluetooth Low Energy Beacons to infer the trips of users, learn and eventually build tailored Magnetic Maps for every smartphone model for the specific indoor area. In a practical deployment, after each trip execution by the users we can observe an increase in the accuracy of positioning.
鲁棒ai中心室内定位系统的剖析与部署
室内定位系统正在获得市场动力,主要是由于传感器成本的显着降低(智能手机或独立)以及利用相关技术的标准化。在各种精确且具有成本效益的室内定位系统中,基于磁场的定位已被证明是受欢迎的,因为它不需要专门的基础设施。相关实验结果表明,该系统具有良好的定位精度。然而,当过渡到生产部署时,这些系统显示出严重的缺点,使其难以实现:a)智能手机型号和配置的准确性波动很大;b)需要昂贵的连续手动指纹识别区域。哥白尼室内定位系统是一种自我学习、自适应的系统,在不同的智能手机型号上显示出更高的准确性。哥白尼利用蓝牙低能量信标的最小部署来推断用户的行程,学习并最终为特定室内区域的每种智能手机型号构建量身定制的磁地图。在实际部署中,用户每次执行行程后,我们都可以观察到定位精度的提高。
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