DocumentCode :
272691
Title :
Ultra-dense networks in millimeter-wave frequencies
Author :
Baldemair, Robert ; Irnich, Tim ; Balachandran, Krishna ; Dahlman, Erik ; Mildh, Gunnar ; Selén, Yngve ; Parkvall, Stefan ; Meyer, Michael ; Osseiran, Afif
Volume :
53
Issue :
1
fYear :
2015
fDate :
Jan-15
Firstpage :
202
Lastpage :
208
Abstract :
Demands for very high system capacity and end-user data rates of the order of 10 Gb/s can be met in localized environments by Ultra-Dense Networks (UDN), characterized as networks with very short inter-site distances capable of ensuring low interference levels during communications. UDNs are expected to operate in the millimeter-wave band, where wide bandwidth signals needed for such high data rates can be designed, and will rely on high-gain beamforming to mitigate path loss and ensure low interference. The dense deployment of infrastructure nodes will make traditional wire-based backhaul provisioning challenging. Wireless self-backhauling over multiple hops is proposed to enhance flexibility in deployment. A description of the architecture and a concept based on separation of mobility, radio resource coordination among multiple nodes, and data plane handling, as well as on integration with wide-area networks, is introduced. A simulation of a multi-node office environment is used to demonstrate the performance of wireless self-backhauling at various loads.
Keywords :
array signal processing; interference suppression; mobility management (mobile radio); wide area networks; UDN; bit rate 10 Gbit/s; data plane handling; dense deployment; end-user data rate; high-gain beamforming; infrastructure nodes; interference level; interference mitigation; intersite distance; millimeter-wave band; millimeter-wave frequencies; mobility separation; multinode office environment; path loss mitigation; radio resource coordination; system capacity; ultradense networks; wide-area networks; wide-bandwidth signals; wire-based backhaul provisioning; wireless self-backhauling; 5G mobile communication; Array signal processing; Bandwidth; Dense estimation; Interference; Millimeter wave communication; Mobile communication; OFDM; Routing; Wireless communication;
fLanguage :
English
Journal_Title :
Communications Magazine, IEEE
Publisher :
ieee
ISSN :
0163-6804
Type :
jour
DOI :
10.1109/MCOM.2015.7010535
Filename :
7010535
Link To Document :
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