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Smartphone-Based Real-Time Indoor Location Tracking With 1-m Precision

机译:基于智能手机的1-m精度实时室内位置跟踪

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摘要

Monitoring the activities of daily living of the elderly at home is widely recognized as useful for the detection of new or deteriorating health conditions. However, the accuracy of existing indoor location tracking systems remains unsatisfactory. The aim of this study was, therefore, to develop a localization system that can identify a patient's real-time location in a home environment with maximum estimation error of 2 m at a 95% confidence level. A proof-of-concept system based on a sensor fusion approach was built with considerations for lower cost, reduced intrusiveness, and higher mobility, deployability, and portability. This involved the development of both a step detector using the accelerometer and compass of an iPhone 5, and a radio-based localization subsystem using a Kalman filter and received signal strength indication to tackle issues that had been identified as limiting accuracy. The results of our experiments were promising with an average estimation error of 0.47 m. We are confident that with the proposed future work, our design can be adapted to a home-like environment with a more robust localization solution.
机译:监测老年人在家中的日常生活活动被广泛认为对发现新的或恶化的健康状况很有用。但是,现有的室内位置跟踪系统的准确性仍然不能令人满意。因此,本研究的目的是开发一种定位系统,该系统可以在95%置信水平下以2m的最大估计误差识别家庭环境中患者的实时位置。构建了基于传感器融合方法的概念验证系统,并考虑到了较低的成本,降低的侵入性以及更高的移动性,可部署性和可移植性。这涉及开发使用iPhone 5的加速度计和指南针的步进检测器,以及使用卡尔曼滤波器和接收信号强度指示的基于无线电的定位子系统,以解决已被识别为精度限制的问题。我们的实验结果令人鼓舞,平均估计误差为0.47 m。我们有信心,随着拟议的未来工作,我们的设计可以通过更强大的本地化解决方案适应家庭般的环境。

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