Handover management in dense cellular networks: A stochastic geometry approach
Type
Conference PaperKAUST Department
Computer, Electrical and Mathematical Sciences and Engineering (CEMSE) DivisionElectrical Engineering Program
Date
2016-07-26Online Publication Date
2016-07-26Print Publication Date
2016-05Permanent link to this record
http://hdl.handle.net/10754/622555
Metadata
Show full item recordAbstract
Cellular operators are continuously densifying their networks to cope with the ever-increasing capacity demand. Furthermore, an extreme densification phase for cellular networks is foreseen to fulfill the ambitious fifth generation (5G) performance requirements. Network densification improves spectrum utilization and network capacity by shrinking base stations' (BSs) footprints and reusing the same spectrum more frequently over the spatial domain. However, network densification also increases the handover (HO) rate, which may diminish the capacity gains for mobile users due to HO delays. In highly dense 5G cellular networks, HO delays may neutralize or even negate the gains offered by network densification. In this paper, we present an analytical paradigm, based on stochastic geometry, to quantify the effect of HO delay on the average user rate in cellular networks. To this end, we propose a flexible handover scheme to reduce HO delay in case of highly dense cellular networks. This scheme allows skipping the HO procedure with some BSs along users' trajectories. The performance evaluation and testing of this scheme for only single HO skipping shows considerable gains in many practical scenarios. © 2016 IEEE.Citation
Arshad R, ElSawy H, Sorour S, Al-Naffouri TY, Alouini M-S (2016) Handover management in dense cellular networks: A stochastic geometry approach. 2016 IEEE International Conference on Communications (ICC). Available: http://dx.doi.org/10.1109/ICC.2016.7510709.Conference/Event name
2016 IEEE International Conference on Communications, ICC 2016arXiv
1604.08552Additional Links
http://ieeexplore.ieee.org/document/7510709/ae974a485f413a2113503eed53cd6c53
10.1109/ICC.2016.7510709