Stochastic dynamic job shops and hierarchical production planning
Стохастические динамические цеха и иерархическое планирование производства
1994-01-01
SCID: 54.1/sx2argx9
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asymptotic analysisdynamic job shopshierarchical production planningstate-constrained controlunreliable machines
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Abstract (AI)
This paper presents an asymptotic analysis of hierarchical production planning in a general manufacturing system consisting of a network of unreliable machines producing a variety of products. The concept of a dynamic job shop is introduced by interpreting the system as a directed graph, and the structure of the system dynamics is characterized for its use in the asymptotic analysis. The optimal control problem for the system is a state-constrained problem, since the number of parts in any buffer between any two machines must remain nonnegative. A limiting problem is introduced in which the stochastic machine capacities are replaced by corresponding equilibrium mean capacities, as the rate of change in machine states approaches infinity. The value function of the original problem is shown to converge to that of the limiting problem, and the convergence rate is obtained. Furthermore, near-optimal controls for the original problem are constructed from near-optimal controls of the limiting problem, and an error estimate is obtained on the near optimality of the constructed controls.>
Key Findings
1
As machine-state transition rates become infinitely fast, stochastic capacities can be replaced by their equilibrium mean capacities in a deterministic limiting problem.
2
Hierarchical production planning is formulated as a state-constrained control problem requiring all inter-machine buffer inventories to remain nonnegative.
3
Near-optimal controls for the original stochastic system are constructed from limiting-problem controls, with an explicit near-optimality error estimate.
4
The paper models stochastic dynamic job shops as directed graphs within a network of unreliable machines producing multiple products.
5
The value function of the stochastic production-planning problem converges to that of the limiting problem, with an established convergence rate.
Research Object
a stochastic dynamic job shop manufacturing system consisting of a network of unreliable machines producing multiple products
Research Subject
the asymptotic behavior and hierarchical production-planning control of the system under rapidly varying stochastic machine capacities and nonnegative buffer constraints
Publication Details
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1994-01-01
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