论文标题

总和TDD多用户大量MIMO无线网络的秘密关键率最大化

Sum Secret Key Rate Maximization for TDD Multi-User Massive MIMO Wireless Networks

论文作者

Li, Guyue, Sun, Chen, Jorswieck, Eduard, Zhang, Junqing, Hu, Aiqun, Chen, You

论文摘要

基于频道互惠的物理层密钥生成(PKG)最近已成为一种新技术,以在设备之间建立秘密钥匙。大多数作品专注于与单一或小型天线的成对通信方案。但是,第五代(5G)无线通信采用大量的多输入多输出(MIMO)同时支持多个用户,从而带来了相互渠道获取的严重开销。本文介绍了大型MIMO无线网络中的多用户秘密密钥一代。我们提供了一个梁域通道模型,其中不同的元素代表从不同的传输方向到不同接收方向的通道增益。基于此通道模型,我们在独立的通道条件下分析了秘密关键率并得出封闭形式的表达。为了最大程度地提高秘密密钥速率,我们为预编码和接收矩阵的Kronecker产品提供了最佳条件,并提出了一种算法,以生成这些矩阵,并使用Pilot Rease生成这些矩阵。提出的优化设计可以大大减少互惠渠道信息获取的飞行员开销。此外,我们分析了用户终端(UTS)之间的通道相关性下的安全性,并提出了一个低架空间的多用户密钥生成,UTS之间的非重叠梁。仿真结果证明了所提出的预编码和接收矩阵设计的最佳性能以及非重叠光束分配的优势。

Physical-layer key generation (PKG) based on channel reciprocity has recently emerged as a new technique to establish secret keys between devices. Most works focus on pairwise communication scenarios with single or small-scale antennas. However, the fifth generation (5G) wireless communications employ massive multiple-input multiple-output (MIMO) to support multiple users simultaneously, bringing serious overhead of reciprocal channel acquisition. This paper presents a multi-user secret key generation in massive MIMO wireless networks. We provide a beam domain channel model, in which different elements represent the channel gains from different transmit directions to different receive directions. Based on this channel model, we analyze the secret key rate and derive a closed-form expression under independent channel conditions. To maximize the sum secret key rate, we provide the optimal conditions for the Kronecker product of the precoding and receiving matrices and propose an algorithm to generate these matrices with pilot reuse. The proposed optimization design can significantly reduce the pilot overhead of the reciprocal channel state information acquisition. Furthermore, we analyze the security under the channel correlation between user terminals (UTs), and propose a low overhead multi-user secret key generation with non-overlapping beams between UTs. Simulation results demonstrate the near optimal performance of the proposed precoding and receiving matrices design and the advantages of the non-overlapping beam allocation.

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