DocumentCode :
3173065
Title :
A study of performance and complexity for IEEE 802.11n MIMO-OFDM GIS solutions
Author :
Aziz, M.K.A. ; Nix, A.R. ; Fletcher, P.N.
Author_Institution :
Centre for Commun. Res., Bristol Univ., UK
Volume :
7
fYear :
2004
fDate :
20-24 June 2004
Firstpage :
3822
Abstract :
This paper investigates the point-to-point PHY layer performance of two newly proposed IEEE 802.11n candidate solutions by suggesting extensions to 802.11a. The new solutions incorporate a MIMO architecture for the wireless links between the network terminals. The FEC block in the PHY layer chain is enhanced with a turbo encoder to provide interleaving gains for the larger sized PSDUs (1-4095 bytes). Due to the ambitious data rate targets identified in 802.11n, where ´on-air´ data rates of 108-320 Mbit/s are quoted, a large MIMO architecture comprising of 6 transmit and 6 receive antenna elements is adopted. ML detection using such large configurations is often prohibitively complex due to an unrealistic enumerated symbol list. In this paper we propose ZF-GIS and MMSE-GIS solutions to ease complexity at the receiver. The PER performance offered by both proposals is compared together with the added computational requirements in constructing their matrices. Link throughputs are compared to demonstrate the viability of the chosen solutions.
Keywords :
MIMO systems; OFDM modulation; antenna arrays; computational complexity; forward error correction; interference suppression; least mean squares methods; maximum likelihood detection; mobile radio; radiofrequency interference; receiving antennas; telecommunication terminals; transmitting antennas; turbo codes; wireless LAN; 108 to 320 Mbit/s; IEEE 802.11n MIMO-OFDM GIS solutions; forward error correction; group interference suppression; minimum mean square errors; network terminals; point-to-point layer performance; receive antennas; receiver complexity; transmit antenna; turbo encoder; Geographic Information Systems; Interleaved codes; MIMO; Maximum likelihood decoding; Maximum likelihood detection; Physical layer; Receiving antennas; Throughput; Transmitting antennas; Turbo codes;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Communications, 2004 IEEE International Conference on
Print_ISBN :
0-7803-8533-0
Type :
conf
DOI :
10.1109/ICC.2004.1313268
Filename :
1313268
Link To Document :
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