Title :
A decision-theoretic approach to developing robust collision avoidance logic
Author :
Kochenderfer, Mykel J. ; Chryssanthacopoulos, James P.
Author_Institution :
Lincoln Lab., Massachusetts Inst. of Technol., Lexington, MA, USA
Abstract :
All large transport aircraft are required to be equipped with a collision avoidance system that instructs pilots how to maneuver to avoid collision with other aircraft. The uncertainty in the behavior of the intruding aircraft makes developing a robust collision avoidance logic challenging. This paper presents an automated approach for optimizing collision avoidance logic based on probabilistic models of aircraft behavior and a performance metric that balances the competing objectives of maximizing safety and minimizing alert rate. The approach involves framing the problem of collision avoidance as a Markov decision process that is solved using dynamic programming. Although this paper focuses on airborne collision avoidance for manned aircraft, the methods may be applied to collision avoidance for other categories of vehicles, both manned and unmanned.
Keywords :
Markov processes; air safety; air traffic; collision avoidance; decision theory; dynamic programming; transportation; Markov decision process; airborne collision avoidance; aircraft behavior; decision theoretic approach; dynamic programming; probabilistic models; robust collision avoidance logic; safety maximization; transport aircraft; Aircraft; Atmospheric modeling; Collision avoidance; Interpolation; Measurement; Optimization; Safety;
Conference_Titel :
Intelligent Transportation Systems (ITSC), 2010 13th International IEEE Conference on
Conference_Location :
Funchal
Print_ISBN :
978-1-4244-7657-2
DOI :
10.1109/ITSC.2010.5625063