Investigation on High Reliability Wireless Communication of Underwater Sensor Networks for Submerged Acoustic Correspondence

Authors

  • Atif Ishtiaq
  • Dr Sheeraz Ahmed Iqra National University, Peshawar, Pakistan
  • Asif Nawaz, Dr.
  • Muhammad Adil
  • Zeeshan Najam
  • Shahid Latif
  • Malik Taimur Ali
  • Mohsin Tahir

DOI:

https://doi.org/10.30537/sjet.v5i1.928

Keywords:

Underwater wireless sensor networks, Multimodal communication, Acoustic communication, Optical communication, Underwater routing protocol, Underwater MAC protocol

Abstract

The Marine Corps (UWSN) Classification Society and Advanced Information Resources Research Association cooperate with the Information Technology Research Association. Communication Technology Foundation and Ocean Culture Foundation. Notwithstanding, contrasted and the earthly condition, the marine condition is intricate and inconsistent, so correspondence in this condition is extremely troublesome. This article has directed a top to bottom conversation and survey of submerged specialized techniques and organization advances, (for example, submerged acoustic correspondence, submerged optical correspondence, and steering conventions and media access control). (Macintosh) and submarine multimodal transport organizations. This article additionally talks about the accomplishments of high-unwavering quality submerged correspondence innovation, and there are not many difficulties in managing submarine organizations.

Downloads

Download data is not yet available.

References

[1] Z. Zeng, S. Fu, H. Zhang, Y. Dong, J. Cheng, A survey of underwater optical wireless communications, IEEE Communications Surveys and Tutorials 19 (1) (2017) 204-238.

[2] S. Jiang, On reliable data transfer in underwater acoustic networks: a survey from networking perspective, IEEE Communications Surveys and Tutorials 20 (2) (2018) 1036-1055.

[3] G. Tuna, V. Gungor, A survey on deployment techniques, localization algorithms, and research challenges for underwater acoustic sensor networks, International Journal of Communication Systems 30 (17).

[4] C.-Y. Li, H. Lu, W. Tsai, Z. Wang, C. Hung, C. Su, Y. Lu, A 5m/25Gbps underwater wireless optical communication system, IEEE Photonics Journal 10 (3).

[5] M. A. Khalighi, M. Uysal, Survey on free space optical communication: a communication theory perspective, IEEE Communications Surveys and Tutorials 16 (4) (2014) 2231-2258.

[6] J. Shen, J. Wang, C. Yu, X. Chen, J. Wu, M. Zhao, F. Qu, Z. Xu, J. Han, J. Xu, Single LED-based 46-m underwater wireless optical communication enabled by a multi-pixel photon counter with digital output, Optics Communications 438 (2019) 78-82.

[7] U. M. Qureshi, F. K. Shaikh, Z. Aziz, S. M. Z. S. Shah, A. A. Sheikh, E. Felemban, S. B. Qaisar, RF path and absorption loss estimation for underwater wireless sensor networks in different water environments, SENSORS 16 (6).

[8] M. Stojanovic, OFDM for underwater acoustic communications: Adaptive synchronization and sparse channelestimation, in: Proceedings of 33rd IEEE International Conference on Acoustics, Speech and Signal Processing, Las Vegas, NV, 2008, pp. 5288-5291.

[9] B. Li, S. Zhou, J. Huang, P. Willett, Scalable OFDM design for underwater acoustic communications, in: Proceedings 33rd IEEE International Conference on Acoustics, Speech and Signal Processing, 2008, pp. 5304-5307.

[10] J. Aparicio, F. J. Alvarez, J. Urena, A. Jimenez, C. Diego, E. Garcia, Swell effect in shallow underwater acoustic communications, in: Proceedings of 15th IEEE International Conference on Emerging Technologies and Factory Automation, Univ Basque Country, Fac Engn, Bilbao, SPAIN, 2010.

[11] S. Milica, J. Preisig, Underwater acoustic communication channels: Propagation models and statistical characterization, IEEE Communica¬tions Magazine 47 (1) (2009) 84-89.

[12] D. V. Ha, V. D. Nguyen, Q. K. Nguyen, Modeling of doppler power spectrum for underwater acoustic channels, Journal of Communications and Networks 19 (3) (2017) 270-281.

[13] M. B. Porter, L. Jolla, The bellhop manual and user’s guide: Preliminary draft.

[14] K. M. Awan, P. A. Shah, K. Iqbal, S. Gillani, Underwater wireless sensor networks: A review of recent issues and challenges, Wireless Communications and Mobile Computing.

[15] C. Chen, H. Zhu, M. Li, S. You, A review of visual-inertial simultaneous localization and mapping from filtering-based and optimization- based perspectives, ROBOTICS 7 (3).

[16] S. Jiang, State-of-the-art medium access control (mac) protocols for underwater acoustic networks: a survey based on a mac reference mode, IEEE Communications Surveys and Tutorials 21 (1) (2018) 96-131.

[17] S. Jiang, On securing underwater acoustic networks:a survey, IEEE Communications Surveys and Tutorials 21 (1) (2019) 729-752.

[18] H. Esmaiel, D. Jiang, Spectrum and energy efficient ofdm multicarrier modulation for an underwater acoustic channel, Wireless Personal Communications 96 (1) (2017) 1577-1593.

[19] A. Abdelkareem, B. Sharif, C. Tsimenidis, Adaptive time varying doppler shift compensation algorithm for ofdm-based underwater acoustic communication systems, Ad Hoc Networks 45 (2016) 104—119.

[20] M. Wen, X. Cheng, L. Yang, Y. Li, X. Cheng, F. Ji, Index modulated ofdm for underwater acoustic communications, IEEE Communications Magazine 54 (5) (2016) 132-137.

[21] M. Nassiri, G. Baghersalimi, Comparative performance assessment between fft-based and frft-based mimo-ofdm systems in underwater acoustic communications, IET Communications 12 (6) (2018) 719-726.

[22] K. Ramadan, M. I. Dessouky, M. Elkordy, S. Elagooz, F. E. A. El-Samie, Joint low-complexity equalization and carrier frequency offset compensation for underwater acoustic ofdm communication systems with banded-matrix approximation at different channel conditions, International Journal of Communication Systems 31 (17).

[23] S. Yoshizawa, T. Saito, Y. Mabuchi, T. Tsukui, S. Sawada, Parallel resampling of OFDM signals for fluctuating doppler shifts in underwater acoustic communication, Journal of Electrical and Computer Engineering 2018 (2).

[24] J. Han, L. Zhang, Q. Zhang, G. Leus, Eigendecomposition-based partial FFT demodulation for differential OFDM in underwater acoustic communications, IEEE Transactions on Vehicular Technology 67 (7) (2018) 6706-6710.

[25] C.-F. Lin, H.-H. Lai, S.-H. Chang, MIMO GS OVSF/OFDM based underwater acoustic multimedia communication scheme, Wireless Per¬sonal Communications 101 (2) (2018) 601-617.

[26] J. Wu, Iterative compressive sensing for the cancellation of clipping noise in underwater acoustic OFDM system, Wireless Personal Commu¬nications 103 (3) (2018) 2093-2107.

[27] R. Diamant, P. Casari, F. Campagnaro, Fair and throughput-optimal routing in multi-modal underwater networks, Transactions on Wireless Communications 17 (3) (2018) 1738-1754.

[28] T. Qiu, J. Liu, W. Si, D. O. Wu, Robustness optimization scheme with multi-population co-evolution for scale-free wireless sensor

Downloads

Published

2022-06-30