Title :
Autonomous Passive Localization Algorithm for Road Sensor Networks
Author :
Jeong, Jaehoon ; Guo, Shuo ; He, Tian ; Du, David H C
Author_Institution :
Dept. of Comput. Sci. & Eng., Univ. of Minnesota, Minneapolis, MN, USA
Abstract :
Road networks are one of important surveillance areas in military scenarios. In these road networks, sensors will be sparsely deployed (hundreds of meters apart) for the cost-effective deployment. This makes the existing localization solutions based on the ranging ineffective. To address this issue, this paper introduces a novel approach based on the passive vehicular traffic measurement, called Autonomous Passive Localization (APL). Our work is inspired by the fact that vehicles move along routes with a known map. Using binary vehicle-detection time stamps, we can obtain distance estimates between any pair of sensors on roadways to construct a virtual graph composed of sensor identifications (i.e., vertices) and distance estimates (i.e., edges). The virtual graph is then matched with the topology of the road map, in order to identify where sensors are located on roadways. We evaluate our design outdoors on Minnesota roadways and show that our distance estimate method works well despite traffic noises. In addition, we show that our localization scheme is effective in a road network with 18 intersections, where we found no location matching error, even with a maximum sensor time synchronization error of 0.07 sec and a vehicle speed deviation of 10 km/h.
Keywords :
graph theory; military vehicles; mobile radio; radionavigation; road traffic; road vehicles; sensor placement; wireless sensor networks; Minnesota roadway; autonomous passive localization algorithm; binary vehicle detection time stamp; cost-effective sensor deployment; distance estimation; localization scheme; location matching error; maximum sensor time synchronization error; military scenario; passive vehicular traffic measurement; road map topology; road sensor network; sensor identification; surveillance area; traffic noise; vehicle speed deviation; virtual graph; Distance measurement; Network topology; Roads; Servers; Topology; Vehicles; Wireless sensor networks; Sensor network; binary vehicle detection; graph matching.; passive localization; prefiltering; road network; time stamp;
Journal_Title :
Computers, IEEE Transactions on
DOI :
10.1109/TC.2010.260