Title :
Tradeoff between source and channel coding on a Gaussian channel
Author :
Hochwald, Bertrand
Author_Institution :
Lucent Technol., AT&T Bell Labs., Murray Hill, NJ, USA
fDate :
11/1/1998 12:00:00 AM
Abstract :
Consider a system that quantizes and encodes analog data for transmission across an additive noise Gaussian channel. To minimize distortion, the channel code rate must be chosen to optimally allocate the available transmission rate between lossy source coding and block channel coding. We establish tight upper and lower bounds on the channel code rate that minimizes the average distortion of a vector quantizer cascaded with a channel coder and a Gaussian channel, thus extending some recently obtained results for the binary-symmetric channel. The upper hounds are obtained by averaging, whereas the lower bounds are uniform, over all possible index assignments. Analytic expressions are derived for large and small signal-to-noise ratios, and also for large source vector dimension. As in the binary-symmetric channel, the optimal channel code rate is often substantially smaller than the channel capacity and the distortion decays exponentially with the number of channel uses. Exact exponents are derived
Keywords :
Gaussian channels; combined source-channel coding; rate distortion theory; vector quantisation; Gaussian channel; additive noise Gaussian channel; analog data transmission; binary-symmetric channel; block channel coding; channel code rate; channel coding; distortion minimisation; large source vector dimension; lossy source coding; optimal channel code rate; signal-to-noise ratio; source coding; tight lower bounds; tight upper bounds; vector quantizer; Additive noise; Channel capacity; Channel coding; Gaussian channels; Probability density function; Propagation losses; Signal analysis; Signal to noise ratio; Source coding; Upper bound;
Journal_Title :
Information Theory, IEEE Transactions on