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Adaptive Critic Neural Network-Based Terminal Area Energy Management and Approach and Landing GuidanceReusable Launch Vehicles (RLVs) have different mission requirements than the Space Shuttle, which is used for benchmark guidance design. Therefore, alternative Terminal Area Energy Management (TAEM) and Approach and Landing (A/L) Guidance schemes can be examined in the interest of cost reduction. A neural network based solution for a finite horizon trajectory optimization problem is presented in this paper. In this approach the optimal trajectory of the vehicle is produced by adaptive critic based neural networks, which were trained off-line to maintain a gradual glideslope.
Document ID
20030093586
Acquisition Source
Marshall Space Flight Center
Document Type
Other
Authors
Grantham, Katie
(Missouri Univ. Rolla, MO, United States)
Date Acquired
September 7, 2013
Publication Date
April 1, 2003
Publication Information
Publication: The 2002 NASA Faculty Fellowship Program Research Reports
Subject Category
Aircraft Communications And Navigation
Funding Number(s)
CONTRACT_GRANT: NAG8-1859
Distribution Limits
Public
Copyright
Work of the US Gov. Public Use Permitted.
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