Title :
Development and demonstration of a TDOA-based GNSS interference signal localization system
Author :
Bhatti, Jahshan A. ; Humphreys, Todd E. ; Ledvina, Brent M.
Author_Institution :
Univ. of Texas at Austin, Austin, TX, USA
Abstract :
Background theory, a reference design, and demonstration results are given for a Global Navigation Satellite System (GNSS) interference localization system comprising a distributed radio-frequency sensor network that simultaneously locates multiple interference sources by measuring their signals´ time difference of arrival (TDOA) between pairs of nodes in the network. The end-to-end solution offered here draws from previous work in single-emitter group delay estimation, very long baseline interferometry, subspace-based estimation, radar, and passive geolocation. Synchronization and automatic localization of sensor nodes is achieved through a tightly-coupled receiver architecture that enables phase-coherent and synchronous sampling of the interference signals and so-called reference signals which carry timing and positioning information. Signal and cross-correlation models are developed and implemented in a simulator. Multiple-emitter subspace-based TDOA estimation techniques are developed as well as emitter identification and localization algorithms. Simulator performance is compared to the Cramér-Rao lower bound for single-emitter TDOA precision. Results are given for a test exercise in which the system accurately locates emitters broadcasting in the amateur radio band in Austin, TX.
Keywords :
interference (signal); satellite navigation; wireless sensor networks; Cramér-Rao lower bound; TDOA-based GNSS interference signal localization system; automatic localization; cross-correlation models; distributed radio-frequency sensor network; global navigation satellite system; multiple-emitter subspace-based TDOA estimation; passive geolocation; radar; reference signals; sensor nodes; single-emitter group delay estimation; subspace-based estimation; synchronization; time difference of arrival; very long baseline interferometry; Doppler effect; Global Positioning System; Radio frequency;
Conference_Titel :
Position Location and Navigation Symposium (PLANS), 2012 IEEE/ION
Conference_Location :
Myrtle Beach, SC
Print_ISBN :
978-1-4673-0385-9
DOI :
10.1109/PLANS.2012.6236915