DocumentCode
1266757
Title
Evaluation of pipelined dilated banyan switch architectures for ATM networks
Author
Al-Mouhamed, Mayez A. ; Kaleemuddin, Mohammed ; Yousef, Habib
Author_Institution
Dept. of Comput. Eng., King Fahd Univ. of Pet. & Miner., Dhahran, Saudi Arabia
Volume
7
Issue
5
fYear
1999
fDate
10/1/1999 12:00:00 AM
Firstpage
724
Lastpage
740
Abstract
In the pipeline banyan (PB), the reservation cycle in the control plane is made several times faster than payload transmission in data plane. This enables pipelining multiple banyans. It is observed that the ratio of throughput to switching delay (service rate) is relatively low in the PB due to the banyan. For this, we present a scalable pipelined asynchronous transfer mode (ATM) switch architecture employing a family of dilated banyan (DB) networks together with their complexity analysis and performance. A DB can be engineered between two extremes: (1) a low-cost banyan with internal and external conflicts, or (2) a high-cost conflict-free fully connected network with multiple outlets. Between the two extremes lies a family of DBs having different switching delays and throughputs. Increasing the dilation degree reduces path conflicts, which produces noticeable increase in service rate due to increase in throughput and decrease in path delay. Compared to PB, the pipelined dilated banyan (PDB) requires smaller number of data planes for the same throughput, or provides higher throughput for a given number of data planes. Simulation of PDB is carded out under uniform traffic and simulated ATM traffic. We study the switch performance while varying the load, buffer size, and number of data planes. To analyze the robustness of the switch, we show that performance is not degradable under ATM traffic with temporal and spatial burstiness generated using the on-off model. The PDB is scalable with respect to service rate and can be engineered with respect to: (1) cell loss rate; (2) hardware resources; (3) size of buffers; (4) switching delays; and (5) delay incurred to higher priority traffic. The PDB can deliver up to 3.5 times the service rate of the PB with only linear increase in hardware cost
Keywords
asynchronous transfer mode; buffer storage; delays; multistage interconnection networks; packet switching; pipeline processing; queueing theory; telecommunication traffic; ATM networks; asynchronous transfer mode; buffer size; cell loss rate; complexity analysis; conflict-free fully connected network; control plane; data plane; dilated banyan networks; external conflicts; hardware resources; internal conflicts; load; on-off model; path delay; payload transmission; performance; pipelined dilated banyan switch architectures; queueing delays; reservation cycle; scalable pipelined ATM switch architecture; service rate; simulation; spatial burstiness; switching delays; temporal burstiness; throughput to switching delay ratio; uniform traffic; Asynchronous transfer mode; Delay; Hardware; Payloads; Performance analysis; Pipeline processing; Robustness; Switches; Throughput; Traffic control;
fLanguage
English
Journal_Title
Networking, IEEE/ACM Transactions on
Publisher
ieee
ISSN
1063-6692
Type
jour
DOI
10.1109/90.803386
Filename
803386
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