Title :
A generalized LDPC decoder for blind turbo equalization
Author :
Gunther, Jacob H. ; Ankapura, Madan ; Moon, Todd K.
Author_Institution :
Dept. of Electr. & Comput. Eng., Utah State Univ., Logan, UT, USA
Abstract :
The equations for iteratively decoding low-density parity-check (LDPC) codes are generalized to compute joint probabilities of arbitrary sets of codeword bits and parity checks. The standard iterative LDPC decoder, which computes single variable probabilities, is realized as a special case. Another specialization allows pairwise joint posterior probabilities of pairs of codeword bits to be computed. These pairwise joint probabilities are used in an expectation-maximization (EM) based blind channel estimator that is ignorant of the code constraints. Channel estimates are input to a turbo equalizer that exploits the structure of the LDPC code. Feeding pairwise posterior probabilities back to the channel estimator eliminates the need to average across time for channel estimation. Therefore, this scheme can be used to equalize very long codewords, even when the channel is time varying. This blind turbo equalizer is evaluated through computer simulations and found to perform as well as a channel-informed turbo equalizer but with approximately twice the number of turbo iterations.
Keywords :
blind equalisers; channel coding; channel estimation; constraint theory; intersymbol interference; iterative decoding; parity check codes; probability; time-varying channels; turbo codes; EM; blind channel estimator; blind turbo equalization; code constraint; codeword bit; expectation-maximization; generalized LDPC decoder; intersymbol interference; iteratively decoding; joint posterior probability; low-density parity-check code; time varying channel; Blind equalizers; Channel estimation; Decision feedback equalizers; Forward error correction; Intersymbol interference; Iterative decoding; Jacobian matrices; Moon; Nonlinear filters; Parity check codes; Blind equalization; LDPC codes; equalization; intersymbol interference; iterative methods; turbo equalization;
Journal_Title :
Signal Processing, IEEE Transactions on
DOI :
10.1109/TSP.2005.855396