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首页> 外文期刊>IEEE transactions on wireless communications >End-to-End Virtual MIMO Transmission in Ad Hoc Cognitive Radio Networks
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End-to-End Virtual MIMO Transmission in Ad Hoc Cognitive Radio Networks

机译:Ad Hoc认知无线电网络中的端到端虚拟MIMO传输

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摘要

Ad hoc cognitive radio networks (CRNs) have the potential for meeting the challenge of increasing radio spectrum efficiency. However, traditional control of ad hoc networking demands end-to-end information channel feedback, whose feasibility is hard in ad hoc CRNs due to the opportunistic nature of spectrum access. In this paper, we propose a virtual multiple-input multiple-output (MIMO) approach to facilitate error-resilient end-to-end transmission with no need for feedback information. An erasure-channel model is used to describe the randomness of outage caused by opportunistic links. At source node, a discrete Fourier transform (DFT)-based path—time code (PTC) is used to exploit path diversity. The a priori erasure probability is analyzed, and a pipeline scheduling scheme with unequal waiting periods is designed to reduce such probability. At destination node, knowledge of the a priori erasure probability is exploited to overcome the decoding challenge raised by the presence of random erasures. A joint sphere decoder (JSD) with a minimum mean-squared error sorted QR decomposition (MMSE-SQRD) effectively implements maximum a posteriori (MAP) probability decoding. This decoder simultaneously performs erasure identification and data decoding. Numerical results show that the proposed virtual MIMO framework can pave the way to efficient and reliable end-to-end transmission in ad hoc CRNs.
机译:Ad hoc认知无线电网络(CRN)有潜力应对提高无线电频谱效率的挑战。但是,传统的ad hoc网络控制需要端到端的信息信道反馈,由于频谱访问的机会性质,其在ad hoc CRN中的可行性很难。在本文中,我们提出了一种虚拟的多输入多输出(MIMO)方法,以实现无需反馈信息的具有弹性的端到端传输。擦除信道模型用于描述由机会链接引起的中断的随机性。在源节点,使用基于离散傅里叶变换(DFT)的路径时间码(PTC)来利用路径多样性。分析了先验擦除概率,并设计了等待周期不相等的流水线调度方案来降低这种概率。在目的地节点,利用先验擦除概率的知识来克服由于存在随机擦除而引起的解码挑战。具有最小均方误差排序QR分解(MMSE-SQRD)的联合球面解码器(JSD)有效地实现了最大后验(MAP)概率解码。该解码器同时执行擦除识别和数据解码。数值结果表明,提出的虚拟MIMO框架可以为ad hoc CRN中高效,可靠的端到端传输铺平道路。

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