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移动同步恢复的超声室内定位。

Mobile Synchronization Recovery for Ultrasonic Indoor Positioning.

机构信息

DIIES Department, University Mediterranea of Reggio Calabria, 89126 Reggio Calabria, Italy.

HWA srl, Spin-off University Mediterranea of Reggio Calabria, Via R. Campi II tr. 135, 89126 Reggio Calabria, Italy.

出版信息

Sensors (Basel). 2020 Jan 27;20(3):702. doi: 10.3390/s20030702.

DOI:10.3390/s20030702
PMID:32012789
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC7038533/
Abstract

The growing interest for indoor position-based applications and services, as well as ubiquitous computing and location aware information, have led to increasing efforts toward the development of positioning techniques. Many applications require accurate positioning or tracking of people and assets inside buildings, and some market sectors are waiting for such technologies for starting a fast growth. Ultrasonic systems have already been shown to possess the desired positioning accuracy and refresh rate. However, they still require accurate synchronization between ultrasound emitters and receivers to work properly. Usually, synchronization is carried out through radio frequency (RF) signals, adding system complexity and raising the cost. In this work, this limit is overcome by introducing a novel self-synchronizing indoor positioning technique. Ultrasonic signals travel from emitters placed at fixed reference positions to any number of mobile devices (MD). The travelled distance is computed from the time of flight (TOF), which requires in turn synchronism between emitter and receiver. It is shown that this synchronism can be indirectly estimated from the time difference of arrival (TDOA) of the ultrasonic signals. The obtained positioning information is private, in the sense that the positioning infrastructure is not aware of the number or identity of the MDs that use it. Computer simulations and experimental results obtained in a typical office room are provided.

摘要

基于位置的室内应用和服务的日益普及,以及无处不在的计算和位置感知信息,促使人们越来越努力地开发定位技术。许多应用程序需要在建筑物内对人员和资产进行精确的定位或跟踪,一些市场领域也在等待这些技术来实现快速增长。超声系统已经被证明具有所需的定位精度和刷新率。然而,它们仍然需要超声发射器和接收器之间的精确同步才能正常工作。通常,通过射频 (RF) 信号进行同步,这增加了系统的复杂性并提高了成本。在这项工作中,通过引入一种新颖的自同步室内定位技术克服了这一限制。超声信号从固定参考位置的发射器传播到任意数量的移动设备 (MD)。飞行时间 (TOF) 计算传播距离,这反过来又需要发射器和接收器之间的同步。结果表明,这种同步可以通过超声信号到达时间差 (TDOA) 来间接估计。所获得的定位信息是私密的,因为定位基础设施不知道使用它的 MD 的数量或身份。提供了在典型的办公室内进行的计算机模拟和实验结果。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9de9/7038533/7664569c1b30/sensors-20-00702-g015.jpg
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https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9de9/7038533/7664569c1b30/sensors-20-00702-g015.jpg

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