DocumentCode
3511227
Title
Overview of Terrain Relative Navigation Approaches for Precise Lunar Landing
Author
Johnson, Andrew E. ; Montgomery, James F.
Author_Institution
Jet Propulsion Lab., California Inst. of Technol., Pasadena, CA
fYear
2008
fDate
1-8 March 2008
Firstpage
1
Lastpage
10
Abstract
The driving precision landing requirement for the Autonomous Landing and Hazard Avoidance Technology project is to autonomously land within 100 m of a predetermined location on the lunar surface. Traditional lunar landing approaches based on inertial sensing do not have the navigational precision to meet this requirement. The purpose of Terrain Relative Navigation (TRN) is to augment inertial navigation by providing position or bearing measurements relative to known surface landmarks. From these measurements, the navigational precision can be reduced to a level that meets the 100 m requirement. There are three different TRN functions: global position estimation, local position estimation and velocity estimation. These functions can be achieved with active range sensing or passive imaging. This paper gives a survey of many TRN approaches and then presents some high fidelity simulation results for contour matching and area correlation approaches to TRN using active sensors. Since TRN requires an a-priori reference map, the paper concludes by describing past and future lunar imaging and digital elevation map data sets available for this purpose.
Keywords
Moon; aircraft landing guidance; inertial navigation; terrain mapping; a priori reference map; active sensors; area correlation; autonomous landing; contour matching; digital elevation map data set; hazard avoidance; inertial navigation; lunar imaging; lunar surface; precise lunar landing; surface landmark; terrain relative navigation; Aircraft navigation; Extraterrestrial measurements; Hazards; Image sensors; Inertial navigation; Land surface; Lighting; Moon; Optical imaging; Position measurement;
fLanguage
English
Publisher
ieee
Conference_Titel
Aerospace Conference, 2008 IEEE
Conference_Location
Big Sky, MT
ISSN
1095-323X
Print_ISBN
978-1-4244-1487-1
Electronic_ISBN
1095-323X
Type
conf
DOI
10.1109/AERO.2008.4526302
Filename
4526302
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