Title :
Performance analysis of a random packet selection policy for multicast switching
Author :
Ali, Mustafa K.Mehmet ; Yang, Shaying
Author_Institution :
Dept. of Electr. & Comput. Eng., Concordia Univ., Montreal, Que., Canada
fDate :
3/1/1996 12:00:00 AM
Abstract :
This paper studies a random packet selection policy for multicast switching. An input packet generates a fixed number of primary copies plus a random number of secondary copies. Assuming a constant number of contending packets during a slot, the system is modeled as a discrete time birth process. A difference equation describing the dynamics of this process is derived, the solution of which gives a closed form expression for the distribution of the number of packets chosen. Then this result is extended to the steady state distribution through a Markov chain analysis. It is shown that the old packets have larger fanout than the fresh packets and the copy distribution of the mixed packets is determined. The packet and copy throughput taking into account the old packets have been obtained. We determined the mean packet delay as well as an upperbound for packet loss probabilities for finite buffer sizes. The asymptotic distribution of the number of packets is also given for large switch sizes under saturation by applying results from the renewal theory. Finally, simulations are done to determine the performance of the switch under mixed (unicast plus multicast) traffic
Keywords :
Markov processes; broadband networks; channel capacity; difference equations; packet switching; random processes; Markov chain analysis; asymptotic distribution; copy distribution; difference equation; discrete time birth process; dynamics; input packet; mean packet delay; multicast switching; multicast traffic; packet loss probabilities; performance analysis; primary copies; random packet selection policy; renewal theory; secondary copies; simulations; steady state distribution; unicast traffic; Delay; Difference equations; Packet switching; Performance analysis; Random number generation; Steady-state; Switches; Throughput; Traffic control; Unicast;
Journal_Title :
Communications, IEEE Transactions on