Title :
Blind Fractionally Spaced Equalization and timing synchronization in wireless fading channels
Author :
Nasir, Ali A. ; Durrani, Salman ; Kennedy, Rodney A.
Author_Institution :
Sch. of Eng., Australian Nat. Univ., Canberra, ACT, Australia
Abstract :
The development of low-complexity blind techniques for equalization and timing synchronization is of enormous importance in the design of wireless communication systems. In this paper, we propose a practical solution for blind equalization and timing recovery in fast-fading time and frequency selective wireless communication channels. We develop a general framework for Constant Modulus Algorithm (CMA) based joint Fractionally Spaced Equalization (FSE) and timing recovery. We use differential modulation to deal with any arbitrary carrier offset. We propose a data reuse strategy to achieve improved short burst wireless communication in CMA based equalization systems. Our results show that FSE outperforms T-Spaced Equalization (TSE) with approximately 2 times faster Mean Square Error (MSE) convergence and approximately 2 dB gain in Bit Error Rate (BER) performance in wireless fading channels. In addition, we demonstrate that the BER performance of the proposed FSE receiver meets the theoretical bounds with only a few dB loss in Stanford University Interim (SUI) channels, which are relevant to IEEE 802.16.3c standard for Wireless Metropolitan Area Networks.
Keywords :
blind equalisers; error statistics; fading channels; least mean squares methods; synchronisation; telecommunication network topology; telecommunication standards; CMA based equalization systems; FSE receiver; IEEE 802.16.3c standard; Stanford University Interim channels; T-spaced equalization; arbitrary carrier offset; bit error rate performance; blind fractionally spaced equalization; constant modulus algorithm; data reuse strategy; differential modulation; fast-fading time; frequency selective wireless communication channels; joint fractionally spaced equalization; low-complexity blind techniques; mean square error; short burst wireless communication; timing recovery; timing synchronization; wireless communication systems; wireless fading channels; wireless metropolitan area networks; Bit error rate; Blind equalizers; Convergence; Fading; Frequency synchronization; Mean square error methods; Performance gain; Performance loss; Timing; Wireless communication;
Conference_Titel :
Future Computer and Communication (ICFCC), 2010 2nd International Conference on
Conference_Location :
Wuhan
Print_ISBN :
978-1-4244-5821-9
DOI :
10.1109/ICFCC.2010.5497663