Reliable And Secure Audio Transmission in Underwater Communication Using Li-Fi

Year : 2025 | Volume : 15 | Issue : 01 | Page : 23 29
    By

    B. Vijayalakshmi,

  • K. Bhavyasri,

  • M. Jhansi,

  • Ch. Lavanya,

  • D. Bhavana,

  1. Associate Professor, Department of Electronics and Communication Engineering, GVP College of Engineering for Women, Visakhapatnam, India
  2. Student, Department of Electronics and Communication Engineering, GVP College of Engineering for Women, Visakhapatnam, India
  3. Student, Department of Electronics and Communication Engineering, GVP College of Engineering for Women, Visakhapatnam, India
  4. Student, Department of Electronics and Communication Engineering GVP College of Engineering for Women, Visakhapatnam, India
  5. Student, Department of Electronics and Communication Engineering GVP College of Engineering for Women, Visakhapatnam, India

Abstract

Ensuring the security of audio transmission becomes crucial as underwater communication systems become more and more important in a variety of areas, including defense, marine research, and offshore organizations. For this reason, Li-Fi technology is an innovative solution that uses its immunity to electromagnetic interference to get around the restrictions of conventional radio frequencies. Li-Fi allows for high-speed data transfer while reducing interference and signal degradation by encoding audio onto light waves. It highlights the benefits of Li-Fi over RF techniques for underwater communication and investigates how encryption algorithms might be integrated to improve data security. The study discusses the difficulties associated with underwater communication, such as signal attenuation and monitoring susceptibility, and it offers a thorough solution that
combines authentication procedures and encryption techniques to guarantee the integrity and confidentiality of audio data. To improve the dependability of communication systems in difficult aquatic situations, this research presents new approaches to the essential demand for secure audio transmission in underwater environments.

Keywords: Underwater communication, security, audio transmission, Li-Fi technology, radio frequencies, encryption algorithms

[This article belongs to Trends in Opto-electro & Optical Communication ]

How to cite this article:
B. Vijayalakshmi, K. Bhavyasri, M. Jhansi, Ch. Lavanya, D. Bhavana. Reliable And Secure Audio Transmission in Underwater Communication Using Li-Fi. Trends in Opto-electro & Optical Communication. 2025; 15(01):23-29.
How to cite this URL:
B. Vijayalakshmi, K. Bhavyasri, M. Jhansi, Ch. Lavanya, D. Bhavana. Reliable And Secure Audio Transmission in Underwater Communication Using Li-Fi. Trends in Opto-electro & Optical Communication. 2025; 15(01):23-29. Available from: https://journals.stmjournals.com/toeoc/article=2025/view=198509


Browse Figures

References

  1. Chaudhary AK, Shukla S, Singh S. Analysis of underwater wireless communication using visible light LEDs. In2020 IEEE International Students’ Conference on Electrical, Electronics and Computer Science (SCEECS) 2020 Feb 22 (pp. 1-4). IEEE.
  2. Arun Kumar P, Naresh Subray Harikant, Malashree A V, N Sridhar, K. Venkateswaran, “Development of Data Transmission Model for Under Water Communication using Li-Fi Technology”, 5th International Conference on Communication and Electronics Systems, pp.312-316, 2020.
  3. S. Islam and M. F. Younis, “Analyzing visible light communication through air-water interface”, IEEE Access, vol. 7, pp. 123830-123845, 2019.
  4. Ruonan Ji, Shaowei Wang, Qing Quan Liu and Wie leu, “High speed visible light communications: Enabling Technologies and State of the Art”, MDPI Applied Sciences, Vol.8, no.4598, 2018.
  5. Anwesha Chakraborty, T Rina Dutta, “Latest advancement in Light Fidelity (Li-Fi) Technology”, International Journal of Advanced Research in Computer Science and Management Studies, 2017.
  6. Karthika R, Balakrishnan S. Wireless communication using Li-Fi technology. SSRG International Journal of Electronics and Communication Engineering (SSRG-IJECE). 2015 Mar 25;2(3):32-40.
  7. Sharma RR, Sanganal A, Pati S. Implementation of a simple Li-Fi based system. International journal of computing and technology. 2014 Oct 1;1(9):437-43.
  8. Minglun Z, Peng Z, Yinjie J. A 5.7 Km visible light communications experiment demonstration. In2015 seventh international conference on ubiquitous and future networks 2015 Jul 7 (pp. 58-60). IEEE.
  9. Bhut JH, Parmar DN, Mehta KV. LI-FI Technology–A Visible Light Communication. International Journal of Engineering Development and Research. 2014 Jan;4(2):25-8.
  10. Amrutha S, Mathew A, Rajasree R, Sugathan S, Aravind S. A visible light communication system for indoor application. International Journal of Engineering and Innovative Technology (IJEIT). 2014 Jun;3(12):2014-40.
  11. Kaushal H, Kaddoum G. Underwater optical wireless communication. IEEE access. 2016 Apr 11;4:1518-47.
  12. Jovicic A, Li J, Richardson T. Visible light communication: opportunities, challenges and the path to market. IEEE communications magazine. 2013 Dec 19;51(12):26-32.
  13. Gabriel C, Khalighi MA, Bourennane S, Léon P, Rigaud V. Investigation of suitable modulation techniques for underwater wireless optical communication. In2012 International Workshop on Optical Wireless Communications (IWOW) 2012 Oct 22 (pp. 1-3). IEEE.
  14. Jana S, Dutta N, Maji AK, Pal RK. A novel time-stamp-based audio encryption scheme using sudoku puzzle. InProceedings of International Conference on Frontiers in Computing and Systems: COMSYS 2021 2022 Jun 28 (pp. 159-169). Singapore: Springer Nature Singapore.
  15. Kumar A, Dua M. Audio encryption using two chaotic maps based dynamic diffusion and double DNA encoding. Applied Acoustics. 2023 Feb 28; 203:109196.
  16. Wu R, Gao S, Wang X, Liu S, Li Q, Erkan U, Tang X. AEA-NCS: An audio encryption algorithm based on a nested chaotic system. Chaos, Solitons & Fractals. 2022 Dec 1;165:112770.
  17. Wang X, Su Y. An audio encryption algorithm based on DNA coding and chaotic system. IEEE Access. 2019 Dec 31;8:9260-70.
  18. Abdelfatah RI. Audio encryption scheme using self-adaptive bit scrambling and two multi chaotic-based dynamic DNA computations. IEEE Access. 2020 Apr 10;8:69894-907.
  19. Kordov K. A novel audio encryption algorithm with permutation-substitution architecture. Electronics. 2019 May 11;8(5):530.
  20. Geng Z, Khan FN, Guan X, Dong Y. Advances in visible light communication technologies and applications. InPhotonics 2022 Nov 23 (Vol. 9, No. 12, p. 893). MDPI.
  21. Gupta S, Roy D, Bose S, Dixit V, Kumar A. Illuminating the future: A comprehensive review of visible light communication applications. Optics & Laser Technology. 2024 Oct 1; 177:111182.
  22. Jiang S. On securing underwater acoustic networks: A survey. IEEE Communications Surveys & Tutorials. 2018 Aug 7;21(1):729-52.
  23. Khan LU. Visible light communication: Applications, architecture, standardization and research challenges. Digital Communications and Networks. 2017 May 1;3(2):78-88.
  24. Kumar A, Harikant NS, Malashree AV, Sridhar N, Venkateswaran K. Development of Data Transmission Model for Under Water Communication using Li-Fi Technology. In2020 5th International Conference on Communication and Electronics Systems (ICCES) 2020 Jun 10 (pp. 317-321). IEEE.
  25. Ali MF, Jayakody DN, Li Y. Recent trends in underwater visible light communication (UVLC) systems. IEEE Access. 2022 Feb 8; 10:22169-225.
  26. Han G, Jiang J, Bao N, Wan L, Guizani M. Routing protocols for underwater wireless sensor networks. IEEE Communications Magazine. 2015 Nov 9;53(11):72-8.
  27. Vijayalakshmi BA, Lekashri S, Gomathi M, Ashwini R, Arunsundar B, Nesasudha M. VLC system using LEDs for transmitting underwater information. Journal of Optics. 2024 Jun 18:1-0.
  28. Menaka D, Gauni S, Manimegalai CT, Kalimuthu K. Challenges and vision of wireless optical and acoustic communication in underwater environment. International Journal of Communication Systems. 2022 Aug;35(12):e5227.
  29. Urick, R. J. (1983). Principles of Underwater Sound. McGraw-Hill.
  30. Noor K, Shahid H, Obaid HM, Rauf A, Yousaf A, Shahid A. Hybrid underwater intelligent communication system. Wireless Personal Communications. 2022 Aug;125(3):2219-38.
  31. Luo H, Wang X, Bu F, Yang Y, Ruby R, Wu K. Underwater real-time video transmission via wireless optical channels with swarms of auvs. IEEE Transactions on Vehicular Technology. 2023 May 25;72(11):14688-703.

Regular Issue Subscription Review Article
Volume 15
Issue 01
Received 23/01/2025
Accepted 31/01/2025
Published 08/02/2025
Publication Time 16 Days


Login


My IP

PlumX Metrics