DocumentCode :
36271
Title :
A Phase-Reconstruction Technique for Low-Power Centimeter-Accurate Mobile Positioning
Author :
Pesyna, Kenneth M. ; Kassas, Zaher M. ; Heath, Robert W. ; Humphreys, Todd E.
Author_Institution :
Univ. of Texas, Austin, TX, USA
Volume :
62
Issue :
10
fYear :
2014
fDate :
15-May-14
Firstpage :
2595
Lastpage :
2610
Abstract :
A carrier phase reconstruction technique is presented as an enabler for low-power centimeter-accurate mobile positioning. Reliable carrier phase reconstruction permits the duty cycling of a Global Navigation Satellite System (GNSS) receiver whose outputs are used for precise carrier-phase differential GNSS (CDGNSS) positioning. Existing CDGNSS techniques are power intensive because they require continuous tracking of each GNSS signal´s carrier phase. By contrast, the less-precise code-ranging technique that is commonly used in mobile devices for 3-to-10-meter-accurate positioning allows for aggressive measurement duty-cycling, which enables low-power implementations. The technique proposed in this paper relaxes the CDGNSS continuous phase tracking requirement by solving a mixed real and integer estimation problem to reconstruct a continuous carrier phase time history from intermittent phase measurement intervals each having an ambiguous initial phase. Theoretical bounds on the probability of successful phase reconstruction, corroborated by Monte-Carlo-type simulation, are used to investigate the sensitivity of the proposed technique to various system parameters, including the time period between successive phase measurement intervals, the duration of each interval, the carrier-to-noise ratio, and the line-of-sight acceleration uncertainty. A demonstration on real data indicates that coupling a GNSS receiver with a consumer-grade inertial measurement unit enables reliable phase reconstruction with phase measurement duty cycles as low as 5%.
Keywords :
Monte Carlo methods; estimation theory; parameter estimation; phase measurement; satellite navigation; telecommunication power management; CDGNSS techniques; GNSS receiver; Monte Carlo type simulation; aggressive measurement duty-cycling; carrier phase reconstruction technique; carrier-phase differential GNSS positioning; carrier-to-noise ratio; code-ranging technique; consumer-grade inertial measurement unit; continuous carrier phase time history; distance 3 m to 10 m; global navigation satellite system; integer estimation problem; line-of-sight acceleration uncertainty; low-power centimeter-accurate mobile positioning; phase measurement duty cycles; phase measurement intervals; phase tracking; phase-reconstruction technique; power intensive; system parameters; Clocks; Global Positioning System; History; Phase measurement; Position measurement; Receivers; Reliability; Carrier phase differential GNSS (CDGNSS); Global Positioning System (GPS); Kalman filtering; inertial measurement unit (IMU); integer ambiguity resolution; low-power positioning; precise positioning; real time kinematic (RTK); satellite navigation;
fLanguage :
English
Journal_Title :
Signal Processing, IEEE Transactions on
Publisher :
ieee
ISSN :
1053-587X
Type :
jour
DOI :
10.1109/TSP.2014.2311967
Filename :
6767125
Link To Document :
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