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首页> 外文期刊>Selected Areas in Communications, IEEE Journal on >Full-Duplex Versus Half-Duplex Amplify-and-Forward Relaying: Which is More Energy Efficient in 60-GHz Dual-Hop Indoor Wireless Systems?
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Full-Duplex Versus Half-Duplex Amplify-and-Forward Relaying: Which is More Energy Efficient in 60-GHz Dual-Hop Indoor Wireless Systems?

机译:全双工与半双工放大转发中继:60 GHz双跳室内无线系统中哪一种能效更高?

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摘要

We provide a comprehensive energy efficiency (EE) analysis of the full-duplex (FD) and half-duplex (HD) amplify-and-forward (AF) relay-assisted 60-GHz dual-hop indoor wireless systems, aiming to answer the question of which relaying mode is greener (more energy efficient) and to address the issue of EE optimization. We develop an opportunistic relaying mode selection scheme, where FD relaying with one-stage self-interference cancellation (passive suppression) or two-stage self-interference cancellation (passive suppression + analog cancellation) or HD relaying is opportunistically selected, together with transmission power adaptation, to maximize the EE with given channel gains. A low-complexity joint mode selection and EE optimization algorithm are proposed. We show a counter-intuitive finding that with a relatively loose maximum transmission power constraint, FD relaying with two-stage self-interference cancellation is preferable to both FD relaying with one-stage self-interference cancellation and HD relaying, resulting in a higher optimized EE. A full range of power consumption sources is considered to rationalize our analysis. The effects of imperfect self-interference cancellation at relay, drain efficiency, and static circuit power on EE are investigated. Simulation results verify our theoretical analysis.
机译:我们提供全双工(FD)和半双工(HD)放大转发(AF)中继辅助60 GHz双跳室内无线系统的综合能效(EE)分析,旨在解决这些问题。哪种中继模式更环保(更节能)以及解决EE优化问题。我们开发了一种机会中继模式选择方案,其中机会性地选择具有一级自干扰消除(无源抑制)或两阶段自干扰消除(无源抑制+模拟消除)或高清中继的FD中继以及发射功率自适应,以在给定的信道增益下最大化EE。提出了一种低复杂度联合模式选择和EE优化算法。我们发现与直觉相反的发现是,在最大传输功率约束相对宽松的情况下,具有两级自干扰消除功能的FD中继比具有一级自干扰消除功能的FD中继和HD中继都更可取,从而获得了更高的优化EE。可以考虑使用各种电源来合理化我们的分析。研究了继电器上不完善的自干扰消除,漏极效率和静态电路功率对EE的影响。仿真结果验证了我们的理论分析。

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