Modeling and design of a Session Initiation Protocol overload control algorithm

Author:

Hong Yang1,Huang Changcheng1,Yan James1

Affiliation:

1. Department of Systems and Computer Engineering, Carleton University, Ottawa, ON, Canada

Abstract

Recent collapses of Session Initiation Protocol (SIP) servers indicate that the built-in SIP overload control mechanism cannot mitigate overload effectively. In this paper, we propose a new SIP overload control algorithm by introducing a novel analytical approach to model the dynamic behavior of a SIP network where each server has a finite buffer. Three key breakthroughs of our modeling approach are the formulations of the message loss process, message retransmission process, and the complex departure process through detailed analysis. Our modeling results indicate that retransmissions triggered by the queuing delay are redundant, thus we propose a feedback control mechanism that regulates the retransmission message rate to mitigate the overload. We then demonstrate how to extend our analytical approach to the modeling of our overload control solution. Simulation based on this analytical model runs much faster than event-driven simulation, which needs to track thousands of retransmission timers for outstanding messages and may crash a simulator due to limited computation resources. Performance evaluation demonstrates that: (1) without the control algorithm applied, the overload at a downstream server may propagate to its upstream servers and cause widespread network failure; (2) in the case of short-term overload, our feedback control solution can mitigate the overload effectively without rejecting calls intentionally or reducing network utilization, thus avoiding the disadvantages of existing overload control solutions. In addition, compared with the pushback solution, our retransmission-based solution achieves a better trade-off between the speed to cancel the overload and the call rejection rate when an overload lasts a short period.

Publisher

SAGE Publications

Subject

Computer Graphics and Computer-Aided Design,Modeling and Simulation,Software

Cited by 4 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. On modeling of priority-based SIP request scheduling;Simulation Modelling Practice and Theory;2018-01

2. On fluid-flow modeling of priority based request scheduling for finite buffer SIP server;International Journal of Communication Systems;2017-07-31

3. Modeling of Priority-based Request Scheduling Mechanism for Finite Buffer SIP Servers;Proceedings of the 11th International Conference on Queueing Theory and Network Applications;2016-12-13

4. Strict Prioritization of New Requests over Retransmissions for Enhancing Scalability of SIP Servers;IEICE Transactions on Communications;2014

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