[1] TAO Y Sh, ZHANG Ch. Research on underwater LED communication based on FBMC technology[J]. Electronic Measurement Technology, 2020, 43(10): 153-157(in Chinese).
[2] CHI N, WANG Ch F, LI W P, et al. Research progress of underwater visible light cummunication technology based on blue/green LED[J]. Journal of Fudan University(Natural Science Edition), 2019, 58(5): 537-548(in Chinese).
[3] CHI N, CHEN H. Progress and prospect of high-speed visible light communication[J]. Opto-Electronic Engineering, 2020, 47(3): 6-17(in Chinese).
[4] QIN L, ZHANG Y Q, LI B S, et al. LED visible light communication systems based on MIMO technology[J]. Laser Technology, 2019, 43(4): 103-109(in Chinese).
[5] LIN T, HUANG Zh T, JI Y F. Hybrid run length limited code and pre-emphasis technique to reduce wander and jitter on on-off keying nonreturn-to-zero visible light communication systems[J]. Optical Engineering, 2016, 55(11): 1105031.
[6] ZENG Zh Q, SHU F, ZHANG H H, et al. A survey of underwater optical wireless communications[J]. IEEE Communications Surveys & Tutorials, 2017, 19(1): 204-238.
[7] FORNEY D, GEORG D. Concatenated codes[M]. Cambridge, MA, USA: MIT Press, 1966: 113-124.
[8] DONG Y, WANG J M, FANG X Y, et al. Simulation research of RS-Turbo code in indoor OFDM based visible light communication system[J]. Electronic Science & Technology, 2018, 31(10): 11-14(in Ch-inese).
[9] MA Ch B, TANG Ch P, AO J, et al. Design of laser communication system with variable code length serial concatenated code[J]. Optical Communication Technology, 2019, 43(5): 40-43(in Chinese).
[10] CAO Y, ZHANG X, PENG X F, et al. Cascade scheme based on multiple-output in spatial optical communication[J]. Acta Optical Sinica, 2018, 38(1): 0106003 (in Chinese). doi: 10.3788/AOS201838.0106003
[11] COSSU G, CORSINI R, KHALID A M, et al. Experimental demonstration of high speed underwater visible light communications[C]//2013 2nd International Workshop on Optical Wireless Communications. New York, USA: IEEE, 2014: 11-15.
[12] WANG W P, ZHENG B. The simulation design of LED-based closerange underwater optical communication system[C]//International Computer Conference Wavelet Active Media Technology and Information Processing. New York, USA: IEEE, 2013: 283-285.
[13] WANG J, ZENG F J, LIANG Q Q, et al. Research on LDPC coding for free space optical communication with modified Bessel-Gaussian beams based on K-distribution[C]// Matec Web of Conferences. Paris, France: EDP Science, 2018: 1-9.
[14] HU S Q, MI L, ZHOU T H, et al. 35.88 attenuation lengths and 332 bits/photon underwater optical wireless communication based on photon-counting receiver with 256-PPM[J]. Optics Express, 2018, 26(17): 21685-21699. doi: 10.1364/OE.26.021685
[15] CHEN L, MIAO D. Study on the baseline excursion in optical fiber network of missile control system[J]. Optical Fiber & Electric Cable, 2006, 13(3): 90-105(in Chinese).
[16] YANG Y, HE F T, GUO Q P, et al. Analysis of underwater wireless optical communication system performance. [J]. Applied Optics, 2019, 58(36): 9808-9814. doi: 10.1364/AO.58.009808
[17] YANG Y, ZHANG J N, YIN Y F. Performance analysis of LDPC code in seawater channel model[J]. Optical Communication Technology, 2018, 42(6): 29-32(in Chinese).
[18] YE D M, LIU Y, WANG Y T, et al. Underwater LED optical communication technology of real-time error detection[J]. Infrared and Laser Engineering, 2019, 48(9): 151-157(in Chinese).
[19] WANG H X, HE F T, ZHAN F, et al. Design of underwater LED blue light communication system based on PPM[J]. Optical Communication Technology, 2018, 42(7): 46-50(in Chinese).
[20] LIU D H, TANG Ch J. Design of interleaver in Turbo code system[J]. Wireless Communication Technology, 2000, 9(1): 41-44(in Chinese).
[21] JIA M J, LU A J. Design and simulation of a new digital interleaving[J]. Modern Information Technology, 2019, 3(5): 53-55(in Chinese).