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An Uncertainty Quantification Framework for Autonomous Flight System Tracking and Health MonitoringThis work proposes a perspective towards establishing a framework for uncertainty quantification of autonomous system tracking and health monitoring. The approach leverages the use of a predictive process structure, which maps uncertainty sources and their interaction according to the quantity of interest and the goal of the predictive estimation. It is systematic and uses basic elements that are system agnostic, and therefore needs to be tailored according to the specificity of the application. This work is motivated by the interest in low-altitude unmanned aerial vehicle operations, where awareness of vehicle and airspace state becomes more relevant as the density of autonomous operations grows rapidly. Predicted scenarios in the area of small vehicle operations and urban air mobility have no precedent, and holistic frameworks to perform prognostics and health management (PHM) at the system- and airspace-level are missing formal approaches to account for uncertainty. At the end of the paper, two case studies demonstrate implementation framework of trajectory tracking and health diagnosis for a small unmanned aerial vehicle. This work has been accepted for publication at the International Journal of Prognostics and Health Management Jan 2021. Minor edits have been incorporated to this original submission to incorporate complete overview and software integration.
Document ID
20210010553
Acquisition Source
Ames Research Center
Document Type
White Paper
Authors
Matteo Corbetta
(Wyle (United States) El Segundo, California, United States)
Chetan S Kulkarni
(Wyle (United States) El Segundo, California, United States)
Portia Banerjee
(Wyle (United States) El Segundo, California, United States)
John Ossenfort
(KBR Wyle Services, LLC)
Randy Strauss
(KBR Wyle Services, LLC)
Jason Watkins
(Wyle (United States) El Segundo, California, United States)
Date Acquired
February 24, 2021
Publication Date
June 30, 2021
Publication Information
Publication: KBR Technical Journal
Publisher: KBR Inc
Subject Category
Aeronautics (General)
Funding Number(s)
CONTRACT_GRANT: 80ARC020D0010
Distribution Limits
Public
Copyright
Public Use Permitted.
Technical Review
Single Expert
Keywords
Uncertainty Quantification
Systems Health Monitoring
Autonomous Vehicles
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