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Visual Odometry for Autonomous Deep-Space Navigation ProjectAutonomous rendezvous and docking (AR&D) is a critical need for manned spaceflight, especially in deep space where communication delays essentially leave crews on their own for critical operations like docking. Previously developed AR&D sensors have been large, heavy, power-hungry, and may still require further development (e.g. Flash LiDAR). Other approaches to vision-based navigation are not computationally efficient enough to operate quickly on slower, flight-like computers. The key technical challenge for visual odometry is to adapt it from the current terrestrial applications it was designed for to function in the harsh lighting conditions of space. This effort leveraged Draper Laboratory’s considerable prior development and expertise, benefitting both parties. The algorithm Draper has created is unique from other pose estimation efforts as it has a comparatively small computational footprint (suitable for use onboard a spacecraft, unlike alternatives) and potentially offers accuracy and precision needed for docking. This presents a solution to the AR&D problem that only requires a camera, which is much smaller, lighter, and requires far less power than competing AR&D sensors. We have demonstrated the algorithm’s performance and ability to process ‘flight-like’ imagery formats with a ‘flight-like’ trajectory, positioning ourselves to easily process flight data from the upcoming ‘ISS Selfie’ activity and then compare the algorithm’s quantified performance to the simulated imagery. This will bring visual odometry beyond TRL 5, proving its readiness to be demonstrated as part of an integrated system.Once beyond TRL 5, visual odometry will be poised to be demonstrated as part of a system in an in-space demo where relative pose is critical, like Orion AR&D, ISS robotic operations, asteroid proximity operations, and more.
Document ID
20160012723
Acquisition Source
Johnson Space Center
Document Type
Conference Paper
Authors
Robinson, Shane
(NASA Johnson Space Center Houston, TX, United States)
Pedrotty, Sam
(NASA Johnson Space Center Houston, TX, United States)
Date Acquired
October 28, 2016
Publication Date
November 2, 2016
Subject Category
Space Transportation And Safety
Spacecraft Design, Testing And Performance
Report/Patent Number
JSC-CN-37742
Report Number: JSC-CN-37742
Meeting Information
Meeting: JTWG IRAD Meeting
Location: Houston, TX
Country: United States
Start Date: November 2, 2016
End Date: November 6, 2016
Sponsors: NASA Johnson Space Center
Distribution Limits
Public
Copyright
Work of the US Gov. Public Use Permitted.
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