首页> 美国卫生研究院文献>Sensors (Basel Switzerland) >Fast Convolution Filter-Bank Based Non-Orthogonal Multiplexed Cognitive Radio (NOMCR) Receiver Design Using Cyclostationarity Based FRESH Filtering
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Fast Convolution Filter-Bank Based Non-Orthogonal Multiplexed Cognitive Radio (NOMCR) Receiver Design Using Cyclostationarity Based FRESH Filtering

机译:基于基于循环平稳性的FRESH滤波的基于快速卷积滤波器组的非正交多路复用认知无线电(NOMCR)接收器设计

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摘要

Non-orthogonal multiple access (NOMA) systems are being considered as candidates for 5G wireless systems due to their promise of improved spectral efficiency. NOMA schemes are being combined with popular multicarrier schemes such as orthogonal frequency division multiplexing (OFDM) to take advantage of the benefits of multicarrier signals. A variant of the power domain NOMA is Layer Division Multiplexing (LDM). The most commonly deployed power domain LDM scheme involves successive interference cancellation (SIC) based decoding at the receiver. Fast convolution based filtered-OFDM (FC-F-OFDM) systems are becoming popular among 5G wireless access technologies due to their ability to process 5G physical layer signals efficiently. In this work, firstly, a cognitive multicarrier non-orthogonal multiplexed system based on the concept of LDM is discussed, which uses FC-F-OFDM and conventional OFDM as its component layers. Secondly, cyclostationary FREquency SHift (FRESH) filter based SIC decoding is used at the receiver side, which also utilizes artificial neural network (ANN) processing. Computer simulations indicate that the system provides good bit error rate (BER) performance under frequency selective Rayleigh fading channels.
机译:由于非正交多址(NOMA)系统有望提高频谱效率,因此正被视为5G无线系统的候选产品。 NOMA方案正与流行的多载波方案(例如正交频分复用(OFDM))组合在一起,以利用多载波信号的优势。功率域NOMA的一种变体是层分复用(LDM)。最普遍部署的功率域LDM方案涉及在接收机处进行基于连续干扰消除(SIC)的解码。基于快速卷积的滤波OFDM(FC-F-OFDM)系统由于能够有效处理5G物理层信号的能力而在5G无线接入技术中变得越来越流行。在这项工作中,首先,讨论了一种基于LDM概念的认知多载波非正交多路复用系统,该系统以FC-F-OFDM和常规OFDM作为其组成层。其次,在接收机侧使用基于循环平稳频率滤波器(FRESH)的SIC解码,该滤波器还利用人工神经网络(ANN)处理。计算机仿真表明,该系统在频率选择性瑞利衰落信道下具有良好的误码率(BER)性能。

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