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Capacity limit for faster-than-Nyquist non-orthogonal frequency-division multiplexing signaling

机译:比奈奎斯特快的非正交频分复用信令的容量限制

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摘要

Faster-than-Nyquist (FTN) signal achieves higher spectral efficiency and capacity compared to Nyquist signal due to its smaller pulse interval or narrower subcarrier spacing. Shannon limit typically defines the upper-limit capacity of Nyquist signal. To the best of our knowledge, the mathematical expression for the capacity limit of FTN non-orthogonal frequency-division multiplexing (NOFDM) signal is first demonstrated in this paper. The mathematical expression shows that FTN NOFDM signal has the potential to achieve a higher capacity limit compared to Nyquist signal. In this paper, we demonstrate the principle of FTN NOFDM by taking fractional cosine transform-based NOFDM (FrCT-NOFDM) for instance. FrCT-NOFDM is first proposed and implemented by both simulation and experiment. When the bandwidth compression factor α is set to 0.8 in FrCT-NOFDM, the subcarrier spacing is equal to 40% of the symbol rate per subcarrier, thus the transmission rate is about 25% faster than Nyquist rate. FTN NOFDM with higher capacity would be promising in the future communication systems, especially in the bandwidth-limited applications.
机译:与Nyquist信号相比,比Nyquist更快的信号实现了更高的频谱效率和容量,这是因为其脉冲间隔更小或子载波间隔更窄。香农极限通常定义了奈奎斯特信号的上限容量。据我们所知,本文首先展示了FTN非正交频分复用(NOFDM)信号容量极限的数学表达式。数学表达式表明,与Nyquist信号相比,FTN NOFDM信号具有实现更高容量限制的潜力。在本文中,我们以基于分数余弦变换的NOFDM(FrCT-NOFDM)为例来说明FTN NOFDM的原理。 FrCT-NOFDM最早是通过仿真和实验提出并实现的。当在FrCT-NOFDM中将带宽压缩因子α设置为0.8时,子载波间隔等于每个子载波的符号率的40%,因此传输速率比奈奎斯特速率快约25%。具有更高容量的FTN NOFDM将在未来的通信系统中大有希望,尤其是在带宽受限的应用中。

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