Title :
Vehicle-to-Vehicle Real-Time Relative Positioning Using 5.9 GHz DSRC Media
Author :
Ansari, Keyvan ; Wang, Chingyue ; Lei Wang ; Yanming Feng
Author_Institution :
Sch. of Electr. Eng. & Comput. Sci., Queensland Univ. of Technol., Brisbane, QLD, Australia
Abstract :
Vehicular accidents are one of the deadliest safety hazards and accordingly an immense concern of individuals and governments. Although, a wide range of active autonomous safety systems, such as advanced driving assistance and lane keeping support, are introduced to facilitate safer driving experience, these stand-alone systems have limited capabilities in providing safety. Therefore, cooperative vehicular systems were proposed to fulfill more safety requirements. Most of cooperative vehicle-to-vehicle safety applications require relative positioning accuracy of decimeter with an update rate of at least 10 Hz. These requirements cannot be met via direct navigation or differential positioning techniques. This paper studies a cooperative vehicle platform that aims to facilitate real-time relative positioning (RRP) among adjacent vehicles. The developed system is capable of exchanging both GPS position solutions and raw observations using RTCM-104 format over vehicular dedicated short range communication (DSRC) links. Real-time kinematic (RTK) positioning technique is integrated into the system to enable RRP to be served as an embedded real-time warning system. The 5.9 GHz DSRC technology is adopted as the communication channel among road-side units (RSUs) and on-board units (OBUs) to distribute GPS corrections data received from a nearby reference station via the Internet using cellular technologies, by means of RSUs, as well as to exchange the vehicular real-time GPS raw observation data. Ultimately, each receiving vehicle calculates relative positions of its neighbors to attain a RRP map. A series of real-world data collection experiments was conducted to explore the synergies of both DSRC and positioning systems. The results demonstrate a significant enhancement in precision and availability of relative positioning at mobile vehicles.
Keywords :
Global Positioning System; Internet; cellular radio; cooperative communication; road safety; DSRC links; DSRC media; DSRC technology; Internet; OBU; RRP map; RSU; RTCM-104 format; RTK positioning technique; active autonomous safety systems; advanced driving assistance; cellular technologY; communication channel; cooperative vehicle platform; cooperative vehicle-to-vehicle safety application; cooperative vehicular systems; differential positioning technique; direct navigation; driving experience; embedded real-time warning system; frequency 5.9 GHz; lane keeping support; mobile vehicles; nearby reference station; on-board units; real-time kinematic positioning technique; real-time relative positioning; real-world data collection experiment; receiving vehicle; relative positioning accuracy; road-side units; safety hazards; safety requirement; stand-alone systems; vehicle-to-vehicle real-time relative positioning; vehicular accidents; vehicular real-time GPS raw observation data; vehicular-dedicated short range communication links; Accuracy; Global Positioning System; Real-time systems; Receivers; Roads; Safety; Vehicles;
Conference_Titel :
Vehicular Technology Conference (VTC Fall), 2013 IEEE 78th
Conference_Location :
Las Vegas, NV
DOI :
10.1109/VTCFall.2013.6692454