Title :
Joint channel-state estimation and decoding of low-density parity-check codes on the two-state noiseless/useless BSC block interference channel
Author :
Vijacksungsithi, Wongkot ; Winick, Kim A.
Author_Institution :
Univ. of Michigan, Ann Arbor, MI, USA
fDate :
4/1/2005 12:00:00 AM
Abstract :
We apply the density-evolution technique to determine the thresholds of low-density parity-check (LDPC) codes when the sum-product algorithm is employed to perform joint channel-state estimation and decoding. The channel considered is the two-state noiseless/useless binary symmetric channel (BSC) block interference channel, where a block of h consecutive symbols shares the same channel state, which is either a noiseless BSC (crossover probability 0) or a useless BSC (crossover probability 1/2). The channel state is selected independently and at random from block to block, according to a known prior distribution. The threshold of the joint channel-state estimation/decoding scheme when used over such a channel is shown to be greatly superior to that of a decoder that makes no attempt to estimate the channel state. These results are also confirmed by simulation. The maximum-likelihood (ML) performance of LDPC codes when used over this channel is investigated. Lower bounds on the error exponents of regular LDPC codes, when ML decoded, are shown to be close to the random coding channel error exponent when the LDPC variable node degree is high.
Keywords :
channel estimation; combined source-channel coding; interference (signal); maximum likelihood decoding; parity check codes; binary symmetric channel; channel state estimation; density-evolution technique; joint channel-state decoding; joint channel-state estimation; low-density parity-check code; maximum-likelihood performance; random coding channel error exponent; sum-product algorithm; two-state noiseless BSC block interference channel; Bipartite graph; Channel estimation; Interference channels; Iterative algorithms; Iterative decoding; Maximum likelihood decoding; Maximum likelihood estimation; Parity check codes; State estimation; Sum product algorithm; Channel-state estimation; density evolution; error exponent; iterative decoding; low-density parity-check (LDPC) codes;
Journal_Title :
Communications, IEEE Transactions on
DOI :
10.1109/TCOMM.2005.844967