TY - GEN
T1 - Fast kalman equalization for cooperative relay networks with both time and frequency offsets
AU - Wang, Hui Ming
AU - Yin, Qinye
AU - Xia, Xiang Gen
PY - 2011
Y1 - 2011
N2 - Cooperative relay networks are inherently time- and frequency- asynchronous due to their distributed nature. The existence of multiple time and frequency offsets results in a time-varying and frequency-selective equivalent channel between relay nodes and destination node. In this paper, we propose a transceiver scheme to combat both time and frequency offsets for cooperative relay networks. At the relay nodes, the distributed linear convolutive space-time coding is adopted to achieve the time-asynchronous full cooperative diversity. This transmission scheme leads to an equivalent channel with special structure at the destination node. By taking full advantage of this special structure, fast Kalman equalizations based on linear minimum mean square error (LMMSE) and MMSE decision feedback equalizers (MMSE-DFE) are proposed for the receiver, where the estimation of the state vector (information symbols) can be operated recursively and computational efficiently. The proposed scheme can achieve considerable diversity gain with both time and frequency offsets, and also applies to frequency-selective fading channels.
AB - Cooperative relay networks are inherently time- and frequency- asynchronous due to their distributed nature. The existence of multiple time and frequency offsets results in a time-varying and frequency-selective equivalent channel between relay nodes and destination node. In this paper, we propose a transceiver scheme to combat both time and frequency offsets for cooperative relay networks. At the relay nodes, the distributed linear convolutive space-time coding is adopted to achieve the time-asynchronous full cooperative diversity. This transmission scheme leads to an equivalent channel with special structure at the destination node. By taking full advantage of this special structure, fast Kalman equalizations based on linear minimum mean square error (LMMSE) and MMSE decision feedback equalizers (MMSE-DFE) are proposed for the receiver, where the estimation of the state vector (information symbols) can be operated recursively and computational efficiently. The proposed scheme can achieve considerable diversity gain with both time and frequency offsets, and also applies to frequency-selective fading channels.
UR - http://www.scopus.com/inward/record.url?scp=80052178353&partnerID=8YFLogxK
U2 - 10.1109/icc.2011.5962614
DO - 10.1109/icc.2011.5962614
M3 - Conference contribution
AN - SCOPUS:80052178353
SN - 9781612842332
T3 - IEEE International Conference on Communications
BT - 2011 IEEE International Conference on Communications, ICC 2011
T2 - 2011 IEEE International Conference on Communications, ICC 2011
Y2 - 5 June 2011 through 9 June 2011
ER -