DocumentCode
1027629
Title
Overload control in a finite message storage buffer
Author
Li, San-qi
Author_Institution
Dept. of Electr. & Comput. Eng., Texas Univ., Austin, TX, USA
Volume
37
Issue
12
fYear
1989
fDate
12/1/1989 12:00:00 AM
Firstpage
1330
Lastpage
1338
Abstract
An approach to the analysis of overload control in a finite buffer is introduced in which the original queuing process is modeled by a birth-and-death (BD) or quasi-birth-and-death (QBD) process. Overload control means to adapt the input process or the service process during the time period when the buffer content exceeds a certain level until it drops to another level. Such a control is necessary to reduce the occurrence of system shutdown periods and to protect high-priority messages against low-priority ones. Since the controlled process two be computed in terms of the will no longer be BD or QBD, the methodology commonly used for analyzing BD or QBD process cannot be applied. This makes direct analysis and computation of the controlled performance more complicated. The analytical methods consists in dividing the controlled process into two altering transient BD or QBD subprocesses, by observing only some selected transitions. Such a division enables the equilibrium probabilities of the controlled process to be computed in terms of the sojourn times of the two transient processes. It is shown that this is equivalent to the analysis and computation of equilibrium probabilities of the underlying stationary BD or QBD process
Keywords
queueing theory; birth-and-death; equilibrium probabilities; finite message storage buffer; input process; overload control; quasi-birth-and-death; queuing process; service process; sojourn times; transient processes; Buffer storage; Closed-form solution; Communication system control; Control systems; Design for quality; Performance analysis; Process control; Protection; Queueing analysis; Transient analysis;
fLanguage
English
Journal_Title
Communications, IEEE Transactions on
Publisher
ieee
ISSN
0090-6778
Type
jour
DOI
10.1109/26.44204
Filename
44204
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