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Physical-Layer Security of a Binary Data Sequence Transmitted With Bessel–Gaussian Beams Over an Optical Wiretap Channel

机译:在窃听通道上以贝塞尔-高斯光束传输的二进制数据序列的物理层安全性

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When an eavesdropper performs an optical beam-splitting attack in a free-space optical communications channel, it is referred to as an optical wiretap channel, which is an extension of Wyner's wiretap channel model. Even though physical-layer security can be compromised, it is possible to exploit the noisy and degraded channel conditions experienced by the eavesdropper to obtain positive secrecy capacity even when a shared secret key is not used. In our previous work, we found that employing Bessel-Gaussian beams can help to improve physical-layer security and provide higher secrecy capacity over that of Laguerre-Gaussian beams in a turbulent free-space optical communications channel. In this companion paper, we conducted an experiment exclusively with Bessel-Gaussian beams onto which we encoded a pseudorandom binary sequence to emulate data transmission over this optical wiretap channel. Bit-error rate curves for the intended receiver and the eavesdropper were calculated from which estimates of secrecy capacity were derived. We found that the bit-error rate curves for the eavesdropper were consistently worse than those of the intended receiver under several turbulence conditions and that further evidence of an error floor even when the eavesdropper uses an optical amplifier is promising for secure communications.
机译:当窃听者在自由空间光通信通道中执行分束攻击时,它被称为光学窃听通道,这是Wyner窃听通道模型的扩展。即使可以损害物理层的安全性,也可以利用窃听者经历的嘈杂和降级的信道条件来获得正的保密容量,即使不使用共享密钥也是如此。在我们之前的工作中,我们发现在湍流自由空间光通信信道中,使用贝塞尔高斯光束可以帮助提高物理层安全性,并提供比拉格高斯光束更高的保密能力。在这篇伴随论文中,我们专门进行了贝塞尔-高斯光束的实验,在其上我们编码了一个伪随机二进制序列,以模拟通过该光学窃听通道的数据传输。计算了预期接收者和窃听者的误码率曲线,从中得出了保密能力的估计值。我们发现,在几种湍流条件下,窃听者的误码率曲线始终比预期接收器的差,而且即使窃听者使用光放大器,也有可能进一步降低误码率,这有望保证安全的通信。

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