DocumentCode :
337720
Title :
Markov chain Monte Carlo methods for tracking a maneuvering target in clutter
Author :
Logothetis, Andrew ; Doucet, Arnaud
Author_Institution :
S3-Autom. Control, R. Inst. of Technol., Stockholm, Sweden
Volume :
1
fYear :
1998
fDate :
1998
Firstpage :
754
Abstract :
We address the problem of tracking a maneuvering target in a cluttered environment. We propose three algorithms based on stochastic sampling methods to solve the following combinatorial optimization problems: (a) data association, and (b) maneuver detection. The first proposed algorithm is a data augmentation (DA) scheme, that yields conditional mean state estimates of the maneuvering target in clutter. The second proposed scheme is a simulated annealing (SA) version of DA that computes the joint MAP state sequence estimates of the target state, the measurement to target associations and the input maneuvering control sequences. Finally, a SA Metropolis-Hastings DA scheme is designed to yield the MAP state sequence estimate of the measurement to target associations and the input maneuvering control sequences. The cost per iteration is linear in the data length. Furthermore, theoretical convergence results of the three proposed Markov chain Monte Carlo algorithms towards the desired estimates, have been obtained
Keywords :
Markov processes; Monte Carlo methods; clutter; combinatorial mathematics; convergence; iterative methods; sampling methods; sequences; simulated annealing; state estimation; target tracking; Markov chain Monte Carlo methods; Metropolis-Hastings scheme; cluttered environment; combinatorial optimization problems; conditional mean state estimates; cost per iteration; data association; data augmentation; maneuver detection; maneuvering target; stochastic sampling methods; Computational modeling; Convergence; Costs; Optimization methods; Sampling methods; Simulated annealing; State estimation; Stochastic processes; Target tracking; Yield estimation;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Decision and Control, 1998. Proceedings of the 37th IEEE Conference on
Conference_Location :
Tampa, FL
ISSN :
0191-2216
Print_ISBN :
0-7803-4394-8
Type :
conf
DOI :
10.1109/CDC.1998.760776
Filename :
760776
Link To Document :
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