DocumentCode :
2435788
Title :
Minimum Indicator Approach for Use with Precise Differential GPS
Author :
Spinelli, Major Christopher J ; Raquet, John F. ; Kish, Major Brian A
Author_Institution :
416th Flight Test Squadron, Edwards AFB
fYear :
2007
fDate :
3-10 March 2007
Firstpage :
1
Lastpage :
15
Abstract :
This paper describes the design and testing of a high-speed, real-time kinematic, precise differential GPS positioning system for use in airborne applications such as automated aerial-refueling and close formation flying. Many of the current ambiguity resolution techniques use the residuals from the least squares position estimation to determine the true ambiguity set, this paper presents a novel approach to the ambiguity resolution problem, called the minimum indicator. Instead of assuming the ambiguity set with the lowest residuals is the true set, other special characteristics of the residuals are examined. The result was the first-ever successful six-degree of freedom, in-flight demonstration of close formation flight, culminating in over 11 hours of close formation flying with a mean radial spherical error of 3.3 centimeters. Other areas addressed include: the difference between "pre-fit" and "post-fit" residuals in the conditional probability calculation, and the impact of a simplified dynamics model on system performance.
Keywords :
Global Positioning System; least squares approximations; mobile robots; probability; remotely operated vehicles; telerobotics; airborne applications; ambiguity resolution techniques; automated aerial-refueling; conditional probability calculation; differential GPS; dynamics model; least squares position estimation; minimum indicator approach; real-time kinematic; Aerospace electronics; Aircraft navigation; Automatic testing; Fuels; Global Positioning System; Humans; Least squares approximation; Military aircraft; System testing; Unmanned aerial vehicles;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Aerospace Conference, 2007 IEEE
Conference_Location :
Big Sky, MT
ISSN :
1095-323X
Print_ISBN :
1-4244-0524-6
Electronic_ISBN :
1095-323X
Type :
conf
DOI :
10.1109/AERO.2007.352963
Filename :
4161403
Link To Document :
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