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首页> 外文期刊>IEEE transactions on circuits and systems . I , Regular papers >A Novel Physical Layer Authentication With PAPR Reduction Based on Channel and Hardware Frequency Responses
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A Novel Physical Layer Authentication With PAPR Reduction Based on Channel and Hardware Frequency Responses

机译:基于信道和硬件频率响应的PAPR降低的新型物理层认证

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Next generation wireless communications such as 5G are expected to feature wide channel bandwidths on the order of hundreds of MHz. As bandwidths increase, circuit impairments caused by frequency dependent behaviour such as ripple and tilt in gain and group delay become more significant. PAPR of OFDM signals also increase with increasing number of sub-carriers. Transmitter circuit characterisation for the wide-band frequency response is needed to pre-compensate the signal to be transmitted. In this article, we propose a novel scheme which uses the circuit characteristics combined with the channel response to generate the keys for encrypting signals to provide an additional tier of security at the physical layer. The modulated constellation of the signal of interest is encrypted by dispersing its phases in addition to encrypting the bits using Diffie Hellman scheme. It is also shown that the method is able to reduce the PAPR of OFDM signals. This scheme is experimentally validated from end-to-end on a millimetre wave wireless link at 28.9 GHz demonstrating security against a well-positioned eavesdropper and a reduction of PAPR by 3.5 dB in a 2048 point OFDM signal with 1664 active QPSK modulated sub-carriers.
机译:预计诸如5G的下一代无线通信将在数百MHz的顺序上具有宽通道带宽。随着带宽增加,电路损伤由频率依赖行为引起的诸如波纹和增益中的倾斜和群体延迟的倾斜变得更加重要。随着越来越多的子载体,OFDM信号的PAPR也会增加。需要对宽带频率响应进行宽带频率响应的发射器电路表征来预补偿要传输的信号。在本文中,我们提出了一种新颖的方案,该方案使用电路特性与信道响应组合以生成用于加密信号的键,以在物理层提供额外的安全性。除了使用Diffie Hellman方案加密比特之外,还通过分散其相位来加密感兴趣的信号的调制星座。还表明该方法能够减少OFDM信号的PAPR。该方案在28.9GHz的毫米波无线链路上从端到端实验验证,在28.9GHz上展示了抵御定位的窃听器的安全性,并在2048点OFDM信号中通过3.5 dB减少PAPR,具有1664个有效QPSK调制子载波。

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