Title :
Serially concatenated space-time codes with iterative decoding and performance limits of block-fading channels
Author :
Goulet, Laurent ; Leib, Harry
Author_Institution :
Dept. of Electr. & Comput. Eng., McGill Univ., Montreal, Canada
fDate :
6/1/2003 12:00:00 AM
Abstract :
This work considers space-time channel coding for systems with multiple-transmit and a single-receive antenna, over space uncorrelated block-fading (quasi-static) channels. Analysis of the outage probability over such channels reveals the existence of a threshold phenomenon. The outage probability can be made arbitrary small by increasing the number of transmit antennas, only if the Eb/N0 is above a threshold which depends on the coding rate. Furthermore, it is shown that when the number of transmit antennas is increased, the ε-capacity of a block-fading Rayleigh channel tends to the Shannon capacity of an additive white Gaussian noise channel. This paper also presents space-time codes constructed as a serial concatenation of component convolutional codes separated by an interleaver. These schemes provide full transmit diversity and are suitable for iterative decoding. The rate of these schemes is less than 1 bit/s/Hz, but can be made arbitrary close to 1 bit/s/Hz by the use of Wyner-Ash codes as outer components. Comparison of these schemes with structures from literature shows that performance gains can be obtained at the expense of a small decrease in rate. Computer simulation results over block-fading Rayleigh channels show that the frame-error rate of several of these schemes is within 2-3 dB from the theoretical outage probability.
Keywords :
AWGN channels; Rayleigh channels; antenna arrays; channel coding; concatenated codes; convolutional codes; iterative decoding; personal communication networks; space-time codes; ϵ-capacity; Wyner-Ash codes; additive white Gaussian noise channel; block-fading Rayleigh channel; block-fading channels; coding rate; convolutional codes; frame-error rate; interleaver; iterative decoding; multiple-transmit antennas; outage probability; outer components; performance limits; personal communication service; serially concatenated space-time codes; single-receive antenna; space-time channel coding; threshold phenomenon; wireless radio channels; Additive white noise; Channel coding; Computer simulation; Concatenated codes; Convolutional codes; Iterative decoding; Performance gain; Rayleigh channels; Space time codes; Transmitting antennas;
Journal_Title :
Selected Areas in Communications, IEEE Journal on
DOI :
10.1109/JSAC.2003.810337