Title :
Fluid-stochastic-event graphs for evaluation and optimization of discrete-event systems with failures
Author_Institution :
INRIA & LGIPM, Metz, France
fDate :
6/1/2002 12:00:00 AM
Abstract :
This paper addresses the performance evaluation and optimization of failure-prone discrete-event systems. We propose a fluid-stochastic-event graph model that is a decision-free Petri net. Tokens are considered as continuous flows. A transition can be in operating state or in failure state. Jumps between failure and operating states do not depend on the firing conditions, and the sojourn time in each state is a random variable of general distribution. For performance evaluation, a set of evolution equations that determines continuous-state variables at epochs of failure/repair events is established. The cumulative firing quantity of each transition is proven to be concave in system parameters, including firing rates and initial marking. Gradient estimators are derived. Finally, an optimization problem of maximizing a concave function of throughput rate and system parameters is addressed
Keywords :
Petri nets; discrete event systems; Petri net; continuous flows; continuous-state variables; discrete-event systems; evolution equations; firing quantity; fluid Petri nets; fluid-stochastic-event; graph model; performance evaluation; Control systems; Discrete event systems; Equations; Explosions; Fires; Fluid flow control; Manufacturing systems; Petri nets; Random variables; Throughput;
Journal_Title :
Robotics and Automation, IEEE Transactions on
DOI :
10.1109/TRA.2002.1019465