Riehle Timothy H, Anderson Shane M, Lichter Patrick A, Giudice Nicholas A, Sheikh Suneel I, Knuesel Robert J, Kollmann Daniel T, Hedin Daniel S
Koronis Biomedical Technologies, Inc. Maple Grove, MN 55369, USA.
Annu Int Conf IEEE Eng Med Biol Soc. 2012;2012:1972-5. doi: 10.1109/EMBC.2012.6346342.
Indoor navigation technology is needed to support seamless mobility for the visually impaired. This paper describes the construction of and evaluation of a navigation system that infers the users' location using only magnetic sensing. It is well known that the environments within steel frame structures are subject to significant magnetic distortions. Many of these distortions are persistent and have sufficient strength and spatial characteristics to allow their use as the basis for a location technology. This paper describes the development and evaluation of a prototype magnetic navigation system consisting of a wireless magnetometer placed at the users' hip streaming magnetic readings to a smartphone processing location algorithms. Human trials were conducted to assess the efficacy of the system by studying route-following performance with blind and sighted subjects using the navigation system for real-time guidance.
需要室内导航技术来支持视障人士的无缝移动性。本文描述了一种仅使用磁传感来推断用户位置的导航系统的构建与评估。众所周知,钢框架结构内的环境会受到显著的磁畸变影响。其中许多畸变是持续存在的,并且具有足够的强度和空间特征,使其能够作为一种定位技术的基础。本文描述了一个原型磁导航系统的开发与评估,该系统由一个放置在用户臀部的无线磁力计组成,它将磁读数传输到处理定位算法的智能手机上。通过使用该导航系统进行实时引导,对盲人和有视力的受试者的路线跟随性能进行研究,从而开展人体试验以评估该系统的有效性。