商用Wi-Fi卡的亚纳秒级飞行时间

Deepak Vasisht, Swarun Kumar, D. Katabi
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引用次数: 26

摘要

信号的飞行时间是指信号从发射机传播到接收机所花费的时间。飞行时间可能是使用无线信号进行定位的最直观的方法。如果一个人能精确地测量出发射机的飞行时间,那么他就可以简单地用飞行时间乘以光速来计算发射机的距离。如今,使用最广泛的户外定位系统GPS利用来自卫星的无线电信号的飞行时间对设备进行定位。然而,将同样的概念应用于室内定位已被证明是困难的。室内空间定位系统预计将使用面向消费者的技术(例如,手机上的Wi-Fi)提供高精度(例如,一米或更低)。不幸的是,过去的工作无法在Wi-Fi设备上如此精确地测量飞行时间。因此,多年来,对精确室内定位的研究已经转向更复杂的替代方案,例如使用大型多天线阵列来计算信号的到达角。这些新技术提供了高度精确的室内定位系统。尽管取得了这些进步,但基于飞行时间的定位仍然具有一些最先进的室内定位系统所缺乏的基本特征。特别是,测量飞行时间不需要接收器上的多个天线。事实上,通过测量一个信号到两个天线的飞行时间,接收器就可以通过相应的距离相交来定位信号的来源。因此,接收器可以在没有周围基础设施支持的情况下定位无线发射器。这与目前的室内定位系统完全不同,后者需要在已知位置的多个接入点来找到一对移动设备之间的距离。此外,每个接入点都需要有许多天线,这远远超出了商用Wi-Fi设备所支持的天线。在这个演示中,我们将介绍Chronos,这是一个结合了一组新颖算法的系统,可以在商用Wi-Fi卡上测量飞行时间到亚纳秒的精度。特别是,我们将测量两个配备商用Wi-Fi卡的设备之间的距离/飞行时间,而不需要任何基础设施或环境指纹的支持。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Sub-Nanosecond Time of Flight on Commercial Wi-Fi Cards
The time-of-flight of a signal captures the time it takes to propagate from a transmitter to a receiver. Time-of-flight is perhaps the most intuitive method for localization using wireless signals. If one can accurately measure the time-of-flight from a transmitter, one can compute the transmitter's distance simply by multiplying the time-of-flight by the speed of light. Today, GPS, the most widely used outdoor localization system, localizes a device using the time-of-flight of radio signals from satellites. However, applying the same concept to indoor localization has proven difficult. Systems for localization in indoor spaces are expected to deliver high accuracy (e.g., a meter or less) using consumer-oriented technologies (e.g., Wi-Fi on one's cellphone). Unfortunately, past work could not measure time-of-flight at such an accuracy on Wi-Fi devices. As a result, over the years, research on accurate indoor positioning has moved towards more complex alternatives such as employing large multi-antenna arrays to compute the angle-of-arrival of the signal. These new techniques have delivered highly accurate indoor localization systems. Despite these advances, time-of-flight based localization has some of the basic desirable features that state-of-the-art indoor localization systems lack. In particular, measuring time-of-flight does not require more than a single antenna on the receiver. In fact, by measuring time-of-flight of a signal to just two antennas, a receiver can intersect the corresponding distances to locate its source. Thus, a receiver can locate a wireless transmitter with no support from the surrounding infrastructure. This is quite unlike current indoor localization systems, which require multiple access points at known locations, to find the distance between a pair of mobile devices. Furthermore, each of these access points need to have many antennas -- far beyond what is supported in commercial Wi-Fi devices. In this demo, we will present Chronos, a system that combines a set of novel algorithms to measure the time-of-flight to sub-nanosecond accuracy on commercial Wi-Fi cards. In particular, we will measure distance/time-of-flight between two devices equipped with commercial Wi-Fi cards, without any support from the infrastructure or environment fingerprinting.
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