Title :
An analytical model for partially blocking finite-buffered switching networks
Author :
Luciani, James V. ; Chen, C. Y Roger
Author_Institution :
Dept. of Comput. Eng., Syracuse Univ., NY, USA
fDate :
10/1/1994 12:00:00 AM
Abstract :
This paper presents a finite state analytical model and supporting simulation for performance analysis of a partially blocking, packet-switched, multistage communication network whose crossbar switches are output queued, non-lossy, and have an internal bandwidth (BW) such that 1⩽BW⩽a, where a is the number of inputs to the crossbar. To the knowledge of the authors, this is the only analytical model in the current literature that addresses this problem without making at least one of the following simplifying assumptions: (1) infinite number of inputs, (2) infinite number of buffers, (3) BW=a, (4) use of only a single crossbar (as opposed to multiple stages). The analytical model presented herein gives a set of closed-form equations which lead to an iterative solution for normalized bandwidth and normalized delay. The model provides results which are quite accurate (as shown by simulation) over a large range of parameter values (e.g., crossbar size, number of buffers in each queue, etc)
Keywords :
packet switching; queueing theory; switching networks; analytical model; closed-form equations; crossbar switches; finite state analytical model; finite-buffered switching networks; iterative solution; multistage communication network; normalized bandwidth; normalized delay; output queueing; packet-switched network; partially blocking networks; performance analysis; simulation; Analytical models; Bandwidth; Communication networks; Communication switching; Delay; Equations; Packet switching; Performance analysis; Queueing analysis; Switches;
Journal_Title :
Networking, IEEE/ACM Transactions on