Title :
Space-time codes for high data rate wireless communication: performance criterion and code construction
Author :
Tarokh, Vahid ; Seshadri, Nambi ; Calderbank, A.R.
Author_Institution :
AT&T Labs-Res., Florham Park, NJ, USA
fDate :
3/1/1998 12:00:00 AM
Abstract :
We consider the design of channel codes for improving the data rate and/or the reliability of communications over fading channels using multiple transmit antennas. Data is encoded by a channel code and the encoded data is split into n streams that are simultaneously transmitted using n transmit antennas. The received signal at each receive antenna is a linear superposition of the n transmitted signals perturbed by noise. We derive performance criteria for designing such codes under the assumption that the fading is slow and frequency nonselective. Performance is shown to be determined by matrices constructed from pairs of distinct code sequences. The minimum rank among these matrices quantifies the diversity gain, while the minimum determinant of these matrices quantifies the coding gain. The results are then extended to fast fading channels. The design criteria are used to design trellis codes for high data rate wireless communication. The encoding/decoding complexity of these codes is comparable to trellis codes employed in practice over Gaussian channels. The codes constructed here provide the best tradeoff between data rate, diversity advantage, and trellis complexity. Simulation results are provided for 4 and 8 PSK signal sets with data rates of 2 and 3 bits/symbol, demonstrating excellent performance that is within 2-3 dB of the outage capacity for these channels using only 64 state encoders
Keywords :
Rayleigh channels; Rician channels; cellular radio; channel capacity; channel coding; computational complexity; data communication; decoding; diversity reception; fading; land mobile radio; matrix algebra; phase shift keying; receiving antennas; transmitting antennas; trellis codes; 4 PSK signal sets; 8 PSK signal sets; Gaussian channels; Rayleigh channels; Rician channels; cellular standards; channel codes; code construction; code sequences; coding gain; communications reliability; data encoding; diversity gain; encoding/decoding complexity; fading channels; fast fading channels; frequency nonselective fading; high data rate wireless communication; linear superposition; matrices; minimum determinant; minimum rank; multiple transmit antennas; outage capacity; performance criterion; received signal; simulation results; slow fading; space-time codes; state encoders; trellis codes; trellis complexity; Convolutional codes; Decoding; Diversity methods; Fading; Frequency; Gaussian channels; Receiving antennas; Space time codes; Transmitting antennas; Wireless communication;
Journal_Title :
Information Theory, IEEE Transactions on