室内无线光学定位系统的设计与优化

SPIE OPTO Pub Date : 2016-03-16 DOI:10.1117/12.2208722
M. H. Bergen, Daniel Guerrero, Xian Jin, Blago A. Hristovski, Hugo A. L. F. Chaves, R. Klukas, J. Holzman
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引用次数: 4

摘要

光无线技术是利用光源取代现有无线电波长技术的新兴领域。OW的绝大多数工作都集中在沟通上;然而,一个较小的新兴领域是室内OW定位。这一新兴领域的主要目标是取代室内GPS。到达角(AOA)是室内OW定位的主要竞争方法之一。AOA定位使用从几个光学信标接收到的矢量对其位置进行三角测量。这种三角测量的可靠性基本上基于两个方面:光学接收器位置的几何形状与光学信标位置的比较,以及光学接收器正确解析入射矢量的能力。根据定义测量矢量的方位角和极角的标准偏差对光接收机进行量化。利用精度稀释系数(DOP)对光学信标几何质量进行了量化。本文讨论了超宽视场(FOV)透镜的AOA标准偏差以及几种光学信标几何形状的DOP特性。使用的光学信标几何形状是简单的三角形、正方形和六边形光学信标几何形状。为了帮助实现大型光学信标几何形状,建议使用频率和波分复用。研究发现,使用超宽视场透镜,加上适当尺寸的光学信标几何形状,可以在大面积上实现高精度定位。这项工作的结果将使可靠的OW定位部署成为可能。
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Design and optimization of indoor optical wireless positioning systems
Optical wireless (OW) technologies are an emerging field utilizing optical sources to replace existing radio wavelength technologies. The vast majority of work in OW focuses on communication; however, one smaller emerging field is indoor OW positioning. This emerging field essentially aims to replace GPS indoors. One of the primary competing methods in indoor OW positioning is angle-of-arrival (AOA). AOA positioning uses the received vectors from several optical beacons to triangulate its position. The reliability of this triangulation is fundamentally based on two aspects: the geometry of the optical receiver’s location compared to the optical beacon locations, and the ability for the optical receiver to resolve the incident vectors correctly. The optical receiver is quantified based on the standard deviation of the azimuthal and polar angles that define the measured vector. The quality of the optical beacon geometry is quantified using dilution of precision (DOP). This proceeding discusses the AOA standard deviation of an ultra-wide field-of-view (FOV) lens along with the DOP characteristics for several optical beacon geometries. The optical beacon geometries used were simple triangle, square, and hexagon optical beacon geometries. To assist the implementation of large optical beacon geometries it is proposed to use both frequency and wavelength division multiplexing. It is found that with an ultra-wide FOV lens, coupled with the appropriately sized optical beacon geometry, allow for high accuracy positioning over a large area. The results of this work will enable reliable OW positioning deployments.
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