Title :
Coding for a channel with quantization in the presence of an estimable interference
Author :
Herzberg, Hanan ; Saltzberg, Burton R.
Author_Institution :
Lucent Technol. Bell Lab., Morristown, NJ, USA
fDate :
1/1/1997 12:00:00 AM
Abstract :
The encoding and decoding schemes presented are aimed at enabling the transfer of data through a channel in which two types of interference are added to the transmitted signal and the sum is quantized. One of these interferences is known (or can be estimated), whereas the second is an additive white Gaussian noise (AWGN). Since the input of the quantizer is not accessible, the known interference can not be removed from the received signal. We show that the error rate for an uncoded transmission through this channel is unacceptably large, even for low noise levels and linear quantization. It is also shown that the problem becomes even more severe when a nonlinear quantization is present. Therefore, coding is essential and a huge coding gain is achievable in this application. An upper-bound on the error rate, contributed by the component codes of a multilevel code, has been developed for multistage decoding. Results of computer simulations of a practical case with optimal and suboptimal decoding algorithms, both developed in this paper, are presented
Keywords :
Gaussian noise; channel coding; coding errors; data communication; interference (signal); maximum likelihood decoding; quantisation (signal); white noise; AWGN; additive white Gaussian noise; channel coding; coding gain; component codes; computer simulations; data transfer; error rate; estimable interference; interference; linear quantization; low noise levels; maximum likelihood decoding; multilevel code; multistage decoding; nonlinear quantization; optimal decoding algorithms; quantization; received signal; suboptimal decoding algorithms; transmitted signal; uncoded transmission; upper bound; AWGN channels; Additive white noise; Application software; Central office; Constellation diagram; Decoding; Error analysis; Interference; Noise level; Quantization;
Journal_Title :
Communications, IEEE Transactions on