DocumentCode
764977
Title
Performance bounds for coded free-space optical communications through atmospheric turbulence channels
Author
Zhu, Xiaoming ; Kahn, Joseph M.
Author_Institution
Dept. of Electr. Eng. & Comput. Sci., California Univ., Berkeley, CA, USA
Volume
51
Issue
8
fYear
2003
Firstpage
1233
Lastpage
1239
Abstract
Error-control codes can help to mitigate atmospheric turbulence-induced signal fading in free-space optical communication links using intensity modulation/direct detection (IM/DD). Error performance bound analysis can yield simple analytical upper bounds or approximations to the bit-error probability. We first derive an upper bound on the pairwise codeword-error probability for transmission through channels with correlated turbulence-induced fading, which involves complicated multidimensional integration. To simplify the computations, we derive an approximate upper bound under the assumption of weak turbulence. The accuracy of this approximation under weak turbulence is verified by numerical simulation. Its invalidity when applied to strong turbulence is also shown. This simple approximate upper bound to the pairwise codeword-error probability is then applied to derive an upper bound to the bit-error probability for block codes, convolutional codes, and turbo codes for free-space optical communication through weak atmospheric turbulence channels. We also discuss the choice of interleaver length in block codes and turbo codes based on numerical evaluation of our performance bounds.
Keywords
approximation theory; atmospheric turbulence; block codes; convolutional codes; demodulation; error correction codes; error statistics; fading channels; integration; intensity modulation; interleaved codes; optical links; turbo codes; atmospheric turbulence channels; bit-error probability; block codes; convolutional codes; direct detection; error-control codes; free-space optical communications; intensity modulation; interleaver length; multidimensional integration; pairwise codeword-error probability; signal fading; turbo codes; Block codes; Error analysis; Fading; Intensity modulation; Multidimensional systems; Numerical simulation; Optical fiber communication; Performance analysis; Turbo codes; Upper bound;
fLanguage
English
Journal_Title
Communications, IEEE Transactions on
Publisher
ieee
ISSN
0090-6778
Type
jour
DOI
10.1109/TCOMM.2003.815052
Filename
1221769
Link To Document