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首页> 外文期刊>Fortschritte der Physik >Secure transmission mechanism based on time reversal over wireless multipath channels
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Secure transmission mechanism based on time reversal over wireless multipath channels

机译:基于无线多径通道的时间反转的安全传输机制

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摘要

Broadband wireless communication is implemented primarily in a complicated environment. The complex environment with time-varying multi-path propagation characteristics will seriously affect the performance of communication. To solve the problem of insecurity in information transmission in wireless channels, in this paper a system is modeled by using the multi-input single output eavesdropping channel model and the security of information transmission through time reversal technology is ensured. Another problem is that the information focuses on the receiving point. Owing to the temporal and spatial focusing characteristics of the time reversal technology the information near the receiving point can be eavesdropped easily. To solve this problem, a secure transmission scheme based on time reversal technology with artificial noise interference on the transmitter side is proposed. One of the core technologies to solve this problem is to introduce the environment adaptive technique-time reversal in the wireless link. Further, the problem of a wiretap channel in physical layer security research has become a popular research topic in recent years. To solve the problems about the physical layer wiretap channel and multi-path fading in wireless channels, a novel concept combining time reversal technology with physical layer security technology is proposed. In this paper, a physical layer secure transmission scheme based on the joint time reversal technique and artificial noise at the sending end is proposed for the wireless multi-path channel. First, in a typical wiretap channel model the time reversal technique is used to improve the security of the information transmission process by using the properties of spatial and temporal focusing. It refers to the fact that information can be focused at a given moment and in space. Second, as the information is easily eavesdropped near the focus point, artificial noise is added to the sending end to disrupt the ability of the eavesdropper to eavesdrop. The artificial noise has no effect on legitimate user due to the use of null-space artificial noise in legitimate user. Based on this scheme, a closed expression, such as secure signal-to-interference and signal-to-noise ratio, an achievable secrecy rate and bit error rate are obtained, and the influences of the number of antennas, signal-to-noise ratio, and artificial noise are analyzed. The theoretical analysis and simulation results show that the proposed scheme has a higher secrecy signal-to-noise ratio, a higher rate of secrecy, and a lower bit error rate of the legitimate user than the the existing physical layer security schemes.
机译:宽带无线通信主要在复杂的环境中实现。具有时变多路径传播特性的复杂环境将严重影响通信的性能。为了解决无线信道中信息传输中的不安全感的问题,在本文中,通过使用多输入单输出窃听信道模型建模一个系统,并确保了通过时间反转技术的信息传输的安全性。另一个问题是信息集中在接收点上。由于时间逆转技术的时间和空间聚焦特性,可以轻松地窃听接收点附近的信息。为了解决这个问题,提出了一种基于时间反转技术的安全传输方案,发射机侧的人工噪声干扰。解决此问题的核心技术之一是在无线链路中介绍环境自适应技术时间逆转。此外,近年来,物理层安全研究中的窃听信道的问题已成为一个流行的研究主题。为了解决关于无线信道中物理层Wiretap信道和多路径衰落的问题,提出了一种与物理层安全技术相结合时间反转技术的新颖概念。本文提出了一种基于联合时间反转技术和发送端的人工噪声的物理层安全传输方案,用于无线多路径信道。首先,在典型的丝网通道模型中,时间反转技术用于通过使用空间和时间聚焦的性质来改善信息传输过程的安全性。它指的是,信息可以在给定的时刻和空间中聚焦信息。其次,由于信息很容易挖掘焦点附近,因此将人工噪声添加到发送端以破坏窃听器窃听的能力。由于在合法用户中使用空空间人工噪声,人工噪声对合法用户没有影响。基于该方案,获得封闭式表达,例如安全的信号 - 干扰和信噪比,可实现的保密率和误码率,以及天线数量,信号对噪声的影响分析比率和人工噪声。理论分析和仿真结果表明,所提出的方案具有更高的保密信噪比,较高的保密率,以及合法用户的较低误码率而不是现有的物理层安全方案。

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