Scheduling Networks of Queues: Heavy Traffic Analysis of a Two-Station Network with Controllable Inputs

Motivated by a factory scheduling problem, we consider the problem of input control, subject to a specified product mix, and priority sequencing in a two-station multiclass queueing network with general service time distributions and a general routing structure. The objective is to minimize the long...

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Published inOperations research Vol. 38; no. 6; pp. 1065 - 1078
Main Author Wein, Lawrence M
Format Journal Article
LanguageEnglish
Published Linthicum, MD INFORMS 01.11.1990
Operations Research Society of America
Institute for Operations Research and the Management Sciences
Subjects
Online AccessGet full text
ISSN0030-364X
1526-5463
DOI10.1287/opre.38.6.1065

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Abstract Motivated by a factory scheduling problem, we consider the problem of input control, subject to a specified product mix, and priority sequencing in a two-station multiclass queueing network with general service time distributions and a general routing structure. The objective is to minimize the long-run expected average number of customers in the system subject to a constraint on the long-run expected average output rate. Under balanced heavy loading conditions, this scheduling problem is approximated by a control problem involving Brownian motion. A reformulation of this Brownian control problem was solved exactly in 1990 by L. M. Wein. In the present paper, this solution is interpreted in terms of the queueing network model in order to obtain an effective scheduling rule. The resulting sequencing policy dynamically prioritizes customers according to reduced costs calculated from a linear program. The input rule is a workload regulating input policy, where a customer is injected into the system whenever the expected total amount of work in the system for the two stations falls within a prescribed region. An example is presented that illustrates the procedure and demonstrates its effectiveness.
AbstractList The problem of input control, subject to a specified product mix, is considered, as well as priority sequencing in a 2-station multiclass queuing network with general service time distributions and a general routing structure. The objective is to minimize the long-run expected average number of customers in the system, subject to a constraint on the long-run expected average output rate. Under balanced heavy loading conditions, this scheduling problem is approximated by a control problem involving Brownian motion. Wein's (1990) solution to a reformulation of this Brownian control problem is interpreted in terms of the queuing network model in order to obtain an effective scheduling rule. The resulting sequencing policy dynamically prioritizes customers according to reduced costs calculated from a linear program. The input rule is a workload-regulating input policy. An example illustrates the procedure and demonstrates its effectiveness.
Motivated by a factory scheduling problem, we consider the problem of input control, subject to a specified product mix, and priority sequencing in a two-station multiclass queueing network with general service time distributions and a general routing structure. The objective is to minimize the long-run expected average number of customers in the system subject to a constraint on the long-run expected average output rate. Under balanced heavy loading conditions, this scheduling problem is approximated by a control problem involving Brownian motion. A reformulation of this Brownian control problem was solved exactly in 1990 by L. M. Wein. In the present paper, this solution is interpreted in terms of the queueing network model in order to obtain an effective scheduling rule. The resulting sequencing policy dynamically prioritizes customers according to reduced costs calculated from a linear program. The input rule is a workload regulating input policy, where a customer is injected into the system whenever the expected total amount of work in the system for the two stations falls within a prescribed region. An example is presented that illustrates the procedure and demonstrates its effectiveness.
Motivated by a factory scheduling problem, we consider the problem of input control, subject to a specified product mix, and priority sequencing in a two-station multiclass queueing network with general service time distributions and a general routing structure. The objective is to minimize the long-run expected average number of customers in the system subject to a constraint on the long-run expected average output rate. Under balanced heavy loading conditions, this scheduling problem is approximated by a control problem involving Brownian motion. A reformulation of this Brownian control problem was solved exactly in 1990 by L. M. Wein. In the present paper, this solution is interpreted in terms of the queueing network model in order to obtain an effective scheduling rule. The resulting sequencing policy dynamically prioritizes customers according to reduced costs calculated from a linear program. The input rule is a workload regulating input policy, where a customer is injected into the system whenever the expected total amount of work in the system for the two stations falls within a prescribed region. An example is presented that illustrates the procedure and demonstrates its effectiveness.
Author Wein, Lawrence M
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Keywords Brownian motion
Approximation
Work load
Traffic
Factory
Scheduling
Queueing network
Queue
Optimization
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Snippet Motivated by a factory scheduling problem, we consider the problem of input control, subject to a specified product mix, and priority sequencing in a...
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SubjectTerms Applied sciences
Commercial regulation
Control theory
Customers
Exact sciences and technology
Factories
Mathematical models
Network servers
Operational research and scientific management
Operational research. Management science
Operations research
production/scheduling: sequencing in a stochastic job shop
Queueing networks
queues: models of network scheduling problems
Queuing
Queuing theory. Traffic theory
Scheduling
Sequencing
Sequential scheduling
Simulation
Theory
Traffic
Workloads
Title Scheduling Networks of Queues: Heavy Traffic Analysis of a Two-Station Network with Controllable Inputs
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