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Attitude estimation for large field-of-view sensors

  • SUNY Buffalo
  • NASA Goddard Space Flight Center

Research output: Chapter in Book/Report/Conference proceedingConference contributionpeer-review

2 Scopus citations

Abstract

The QUEST measurement noise model for unit vector observations has been widely used in spacecraft attitude estimation for more than twenty years. It was derived under the approximation that the noise lies in the tangent plane of the respective unit vector and is axially symmetrically distributed about the vector. For large field-of-view sensors, however, this approximation may be poor, especially when the measurement falls near the edge of the field of view. In this paper a new measurement noise model is derived based on a realistic noise distribution in the focal plane of a large field-of-view sensor, which shows significant differences from the QUEST model for unit vector observations far away from the sensor boresight. An extended Kalman filter for attitude estimation is then designed with the new measurement noise model. Simulation results show that with the new measurement model the extended Kalman filter achieves better estimation performance using large field-of-view sensor observations.

Original languageEnglish
Title of host publicationMalcolm D. Shuster Astronautics Symposium - Advances in the Astronautical Sciences - Proceedings of the University at Buffalo, State University of New York/AAS Malcolm D. Shuster Astronautics Symp.
Pages193-208
Number of pages16
StatePublished - 2006
EventMalcolm D. Shuster Astronautics Symposium - Grand Island, NY, United States
Duration: Jun 12 2005Jun 15 2005

Publication series

NameAdvances in the Astronautical Sciences
Volume122
ISSN (Print)0065-3438

Conference

ConferenceMalcolm D. Shuster Astronautics Symposium
Country/TerritoryUnited States
CityGrand Island, NY
Period06/12/0506/15/05

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