Since security has been one of the crucial issues for high-yield communications such as 5G and 6G, the researchers continuously come up with newer techniques to enhance the security and performance of these progressive wireless communications. Reconfigurable intelligent surface (RIS) is one of those techniques that artificially rearrange and optimize the propagation environment of electromagnetic waves to improve both spectrum and energy efficiency of wireless networks. Besides, in underwater communication, underwater optical wireless communication (UOWC) is a better alternative/replacement for conventional acoustic and radio frequency (RF) technologies. Hence, mixed RIS-aided RF-UOWC can be treated as a promising technology for future wireless networks. This work focuses on the secrecy performance of mixed dual-hop RIS-aided RF-UOWC networks under the intercepting effort of a probable eavesdropper. The RF link operates under generalized Gamma fading distribution; likewise, the UOWC link experiences the mixture exponential generalized Gamma distribution. The secrecy analysis subsumes the derivations of closed-form expressions for average secrecy capacity, exact and lower bound of secrecy outage probability, and strictly positive secrecy capacity, all in terms of Meijer G functions. Capitalizing on these derivations, the effects of heterodyne and intensity modulation/direct detection systems, underwater turbulence resulting from air bubble levels, temperature gradients, and salinity gradients, are measured. Unlike conventional models that merely deal with thermally uniform scenarios, this proposed model is likely to be unique in terms of dealing with secrecy analysis of a temperature gradient RIS-aided RF-UOWC network. Lastly, the derivations are validated via Monte-Carlo simulations.
翻译:由于安全一直是5G和6G等高收益通信的关键问题之一,研究人员不断提出更新技术,以加强这些进步无线通信的安全和性能。重新配置智能表面(RIS)是人为调整和优化电磁波传播环境,以提高无线网络的频谱和能效的技术之一。此外,在水下通信中,水下光学无线通信(UOWC)是常规声频和无线电频率(RF)技术的一种更好的替代/替换。因此,混合的RIS-UOWC可以被视为未来无线通信网络的有希望的技术。这项工作侧重于混合的双霍新创RIS-RF-UOWC网络的保密性能,在可能的降压式网络的干扰下,RFRF联系在一般伽马变光分布下运作;同样,UOWC将混合的升温模型的通用伽马分布联系起来。 保密分析是平均保密能力、精确和较低约束的RF-UOFC的透明性变现,在深度交易中,最精确的变现性变压的变压能力是这些变压的系统。