Quality-of-service performance bounds in wireless multi-hop relaying networks

The theoretical analysis on quality-of-service (QoS) performances is required to provide the guides for the developments of the next-generation wireless networks. As a good analysis tool, the probabilistic network calculus with moment generating functions (MGFs) recently can be used for delay and backlog performance measures in wireless networks. Different from the existed studies which mostly focused on the single-hop networks with single-user under a two state Markov channel model, this study develops an analytical framework for wireless multi-hop relaying networks under the finite-state Markov channel by using probabilistic network calculus with MGFs. By using the concatenation character of network calculus, the authors regard a two-hop wireless relaying channel as a single server equivalently, which consisting of two dynamic servers in series. When the single-user model is straightforwardly extended and applied in multi-user scenarios, the state space of service process is increased exponentially with the number of users, which is only applicable in case of very small user number. Then, in order to avoid the limitation of user number, the authors propose to reflect the multi-user effects by using the equivalent data rate of the modified service process, whose transition and stationary probabilities are kept unchanged with those in single-user scenarios. Next, delay and backlog bounds of multi-hop wireless relaying networks are derived with the proposed analytical framework. Simulation results show that analytical bounds match simulation results, whose accuracy depends on the required violation probability. The effectiveness of the relaying techniques in improving the performances is also demonstrated.

[1]  Donald C. Cox,et al.  Wireless personal communications: what is it? , 1995, IEEE Wirel. Commun..

[2]  Frank Kelly,et al.  Notes on effective bandwidths , 1994 .

[3]  Rene L. Cruz,et al.  A calculus for network delay, Part I: Network elements in isolation , 1991, IEEE Trans. Inf. Theory.

[4]  Moshe Sidi,et al.  Stochastically bounded burstiness for communication networks , 1999, IEEE INFOCOM '99. Conference on Computer Communications. Proceedings. Eighteenth Annual Joint Conference of the IEEE Computer and Communications Societies. The Future is Now (Cat. No.99CH36320).

[5]  Cheng-Shang Chang,et al.  Performance guarantees in communication networks , 2000, Eur. Trans. Telecommun..

[6]  Saleem A. Kassam,et al.  Finite-state Markov model for Rayleigh fading channels , 1999, IEEE Trans. Commun..

[7]  Chengzhi Li,et al.  A Network Calculus With Effective Bandwidth , 2007, IEEE/ACM Transactions on Networking.

[8]  Victor C. M. Leung,et al.  Modeling wireless link layer by network for efficient evaluations of multimedia QoS , 2005, IEEE International Conference on Communications, 2005. ICC 2005. 2005.

[9]  Jean-Yves Le Boudec,et al.  Network Calculus: A Theory of Deterministic Queuing Systems for the Internet , 2001 .

[10]  Yuming Jiang,et al.  Analysis on generalized stochastically bounded bursty traffic for communication networks , 2002, 27th Annual IEEE Conference on Local Computer Networks, 2002. Proceedings. LCN 2002..

[11]  Markus Fidler,et al.  WLC15-2: A Network Calculus Approach to Probabilistic Quality of Service Analysis of Fading Channels , 2006, IEEE Globecom 2006.

[12]  Moshe Sidi,et al.  Stochastically bounded burstiness for communication networks , 2000, IEEE Trans. Inf. Theory.

[13]  Markus Fidler,et al.  An End-to-End Probabilistic Network Calculus with Moment Generating Functions , 2005, 200614th IEEE International Workshop on Quality of Service.

[14]  Halim Yanikomeroglu,et al.  On the performance of time division multiple access-based multihop fixed cellular networks with respect to available frequency carriers , 2008, IET Commun..

[15]  Yuming Jiang,et al.  Analysis of Stochastic Service Guarantees in Communication Networks: A Server Model , 2005, IWQoS.

[16]  Wenbo Wang,et al.  Cross-layer queuing analysis on multihop relaying networks with adaptive modulation and coding , 2010, IET Commun..