DocumentCode :
2286269
Title :
Adaptive interference mitigation techniques for femtocells
Author :
Ibrahim, Ahmed S. ; Darwish, Ahmed M. ; Makled, Esraa A. ; Elgebaly, Hani
Author_Institution :
Wireless Commun. Lab. Intel Middle East Mobile Innovation Center (MEMIC), Intel Corp., Cairo, Egypt
fYear :
2012
fDate :
1-4 April 2012
Firstpage :
1218
Lastpage :
1223
Abstract :
Heterogeneous Networks (HetNets) comprising of Macro and Femto stations are very promising to increase indoor coverage and throughput of the future cellular networks. In this paper, we characterize the interference environment of the Femto HetNets based on the Femto dual strip deployment model. We show that the Macro Indoor subscribers or User Equipments (UEs), who are not associated with Femto stations (FSs), are the victim UEs. Motivated by this performance degradation, we propose three interference mitigation (IM) techniques. The first technique turns off the interfering FSs in some of the available time-frequency resource blocks (RBs) to free these RBs to be utilized by the Macro UEs. The second technique applies adaptive multi-user zero-forcing (A-MUZF) scheme causing zero interference to the Macro Indoor UEs. The third scheme applies power control in addition to either A-ICIC or A-MUZF. Via Extensive system level simulations (SLS), we show that the proposed schemes significantly improve the performance of the Macro Indoor UEs, while maintaining the high throughput achieved by the FSs.
Keywords :
femtocellular radio; indoor radio; interference suppression; mobility management (mobile radio); power control; sensor placement; telecommunication equipment; time-frequency analysis; A-MUZF; FS; RB; SLS; UE; adaptive interference mitigation; adaptive multiuser zero forcing scheme; cellular network; femto HetNets; femto dual strip deployment model; femtocell station; heterogeneous network; macro indoor coverage; macro station; power control; resource block; system level simulations; throughput; time-frequency anlysis; user equipment; Frequency selective surfaces; Interference; Signal to noise ratio; Strips; Throughput; Ultrafast electronics;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Wireless Communications and Networking Conference (WCNC), 2012 IEEE
Conference_Location :
Shanghai
ISSN :
1525-3511
Print_ISBN :
978-1-4673-0436-8
Type :
conf
DOI :
10.1109/WCNC.2012.6213963
Filename :
6213963
Link To Document :
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