Title :
Forward error correction based on block turbo code with 3-bit soft decision for 10-Gb/s optical communication systems
Author :
Mizuochi, Takashi ; Miyata, Yoshikuni ; Kobayashi, Tatsuya ; Ouchi, Kazuhide ; Kuno, Katsuhiko ; Kubo, Kazuo ; Shimizu, Katsuhiro ; Tagami, Hitoyuki ; Yoshida, Hideo ; Fujita, Hachiro ; Akita, Masashi ; Motoshima, Kuniaki
Author_Institution :
Mitsubishi Electr. Corp., Kamakura, Japan
Abstract :
The first experimental demonstration of a forward error correction (FEC) for 10-Gb/s optical communication systems based on a block turbo code (BTC) is reported. Key algorithms, e.g., extrinsic information, log-likelihood ratio, and soft decision reliability, are optimized to improve the correction capability. The optimum thresholds for a 3-bit soft decider are investigated analytically. A theoretical prediction is verified by experiment using a novel 3-bit soft decision large scale integrated circuit (LSI) and a BTC encoder/decoder evaluation circuit incorporating a 10-Gb/s return-to-zero on-off keying optical transceiver. A net coding gain of 10.1 dB was achieved with only 24.6% redundancy for an input bit error rate of 1.98×10-2. This is only 0.9 dB away from the Shannon limit for a code rate of 0.8 for a binary symmetric channel. Superior tolerance to error bursts given by the adoption of 64-depth interleaving is demonstrated. The ability of the proposed FEC system to achieve a receiver sensitivity of seven photons per information bit when combined with return-to-zero differential phase-shift keying modulation is demonstrated.
Keywords :
amplitude shift keying; block codes; decoding; differential phase shift keying; encoding; forward error correction; interleaved codes; large scale integration; optical communication; transceivers; turbo codes; 10 Gbit/s; 10-Gb/s optical communication systems; 10-Gb/s return-to-zero on-off keying optical transceiver; 10.1 dB; 3 bit; 3-bit soft decider; 3-bit soft decision; 64-depth interleaving; Shannon limit; binary symmetric channel; block turbo code decoder evaluation circuit; block turbo code encoder evaluation circuit; coding gain; correction capability; error bursts; extrinsic information; forward error correction; input bit error rate; large scale integrated circuit; log-likelihood ratio; receiver sensitivity; return-to-zero differential phase-shift keying modulation; soft decision reliability; Decoding; Forward error correction; Integrated circuit reliability; Integrated optics; Large scale integration; Optical fiber communication; Optical receivers; Optical sensors; Photonic integrated circuits; Turbo codes; BCH; Bose, Chaudhuri, and Hocquenghem; codes; differential phase-shift keying; forward error correction; optical communication; product codes; soft decision; turbo codes;
Journal_Title :
Selected Topics in Quantum Electronics, IEEE Journal of
DOI :
10.1109/JSTQE.2004.827846