DocumentCode
3477429
Title
Data parallel solutions of dimensionality problems in stochastic dynamic programming
Author
Xu, H.H. ; Hanson, F.B. ; Chung, S.-L.
Author_Institution
Lab. for Adv. Comput., Illinois Univ., Chicago, IL, USA
fYear
1991
fDate
11-13 Dec 1991
Firstpage
1717
Abstract
The authors develop fast and efficient methods to solve large stochastic optimal control problems in continuous time. The stochastic perturbations by both Gaussian and Poisson white noise are considered for modeling background fluctuations and the more severe random shocks. The treatment is through the partial differential equation of stochastic dynamic programming or Bellman equation, which simplifies the optimization of the stochastic dynamical system. Massive numbers of physical processors using the 64 K processor Connection Machine has been used. Techniques such as one-to-many broadcasting and operator decomposition are developed in terms of the special characteristics of the stochastic control problems. The improvements achieved show that the optimal stochastic dynamic control problem with a reasonable number of nodes per state can be solved with optimal system memory requirements. The timing performance further demonstrates that the Connection Machine helps to alleviate Bellman´s curse of dimensionality if both the problem and the machine are sufficiently large
Keywords
computational complexity; control engineering computing; dynamic programming; optimal control; parallel algorithms; stochastic programming; stochastic systems; 64 K processor Connection Machine; Bellman equation; CM-2; Gaussian white noise; Poisson white noise; background fluctuations; continuous time; curse of dimensionality; data parallel solutions; large stochastic optimal control problems; one-to-many broadcasting; operator decomposition; partial differential equation; random shocks; stochastic dynamic programming; stochastic perturbations; Differential equations; Dynamic programming; Electric shock; Fluctuations; Optimal control; Partial differential equations; Stochastic processes; Stochastic resonance; Stochastic systems; White noise;
fLanguage
English
Publisher
ieee
Conference_Titel
Decision and Control, 1991., Proceedings of the 30th IEEE Conference on
Conference_Location
Brighton
Print_ISBN
0-7803-0450-0
Type
conf
DOI
10.1109/CDC.1991.261701
Filename
261701
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