Title :
Transmit FDE weight design for single-carrier space-time block coded joint transmit/receive diversity
Author :
Miyazaki, H. ; Adachi, Fumiyuki
Author_Institution :
Dept. of Commun. Eng., Tohoku Univ., Sendai, Japan
Abstract :
Single-carrier (SC) transmission using frequency-domain space-time block coded joint transmit/receive diversity (FD-STBC-JTRD) combined with transmit frequency-domain equalization (FDE) obtains full spatial diversity gain and frequency diversity gain. Channel state information (CSI) is required only at transmitter for transmit FDE. In our previous study of SC FD-STBC-JTRD, single transmit FDE weight matrix was used. In this paper, noting that a sequence of data blocks is STBC encoded into a code-word composed of a new sequence of coded data blocks, we derive the optimal transmit FDE weight design. Multiple transmit FDE weight matrices, each associated with each coded block in a STBC code-word, are used unlike our previous transmit FDE weight design. Transmit FDE weight matrices are jointly optimized based on the minimization of the mean square error (MSE) between the transmitted signal before STBC encoding and the received signal after STBC decoding. We show by theoretical analysis that the optimal transmit FDE weight design can achieve 1/RSTBC times higher signal-to-interference plus noise power ratio (SINR) than our previous design (single transmit FDE weight matrix), where RSTBC denotes the STBC coding rate. And then, we show, by computer simulation, the optimal transmit FDE weight design achieves better bit error rate (BER) performance than our previous design.
Keywords :
decoding; diversity reception; equalisers; error statistics; intersymbol interference; matrix algebra; mean square error methods; space-time block codes; BER; CSI; FD-STBC-JTRD; MSE; SINR; STBC code-word; STBC decoding; STBC encoding; bit error rate performance; channel state information; coded data block sequence; computer simulation; frequency-domain space-time block coded joint transmit-receive diversity; full frequency diversity gain; full spatial diversity gain; intersymbol interference; mean square error minimization; multiple transmit FDE weight matrices; signal-to-interference-plus-noise power ratio; single transmit FDE weight matrix design; single-carrier space-time block coded joint transmit-receive diversity; transmit frequency-domain equalization; Bit error rate; Encoding; Frequency-domain analysis; Interference; Optimized production technology; Signal to noise ratio; Transmitters; Frequency-domain space-time coded joint transmit/receive diversity; single-carrier transmission; transmit frequency-domain equalization;
Conference_Titel :
Information, Communications and Signal Processing (ICICS) 2013 9th International Conference on
Conference_Location :
Tainan
Print_ISBN :
978-1-4799-0433-4
DOI :
10.1109/ICICS.2013.6782817