On the Performance of Single Side-Band OFDM for Band-Limited Visible Light Communication

Hossein Kazemi, H. Haas
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引用次数: 2

Abstract

The use of a multicarrier modulation scheme based on orthogonal frequency division multiplexing (OFDM) is a very promising approach to enable high-speed transmissions for band-limited visible light communication (VLC) systems. The existing variants of optical OFDM have been designed mostly to establish a compromise between spectral and power efficiencies, with the premise that the signal is purely transmitted in the baseband, thereby it needs to be real-valued. A common way to synthesize a real waveform with the digital implementation of OFDM is to use Hermitian symmetry. An alternative, but not fully explored, solution without imposing Hermitian symmetry is to upconvert the complex baseband OFDM signal within the limited bandwidth of VLC systems using an appropriate carrier frequency. In this paper, the bandpass transmission of OFDM signals based on optical single side-band OFDM (SSB-OFDM) is considered. The detailed mechanism for the generation and detection of an SSB-OFDM signal with discrete-time processing is presented. To address the bandwidth constraint, spectrum shaping of the SSB-OFDM signal is discussed. Furthermore, performance analyses of spectral efficiency (SE) and bit error ratio (BER) are carried out and the results are verified using Monte-Carlo simulations. Novel insights are provided, highlighting the signal-to-noise ratio (SNR) gain of SSB-OFDM over a baseline direct current-biased optical OFDM (DCO-OFDM) system.
限带可见光通信中单边带OFDM的性能研究
使用基于正交频分复用(OFDM)的多载波调制方案是实现带宽受限可见光通信(VLC)系统高速传输的一种非常有前途的方法。现有的光OFDM变体的设计主要是为了在频谱效率和功率效率之间建立一种折衷,前提是信号纯粹在基带中传输,因此需要实值。用数字实现OFDM合成真实波形的一种常用方法是使用厄米对称。在不施加厄米对称的情况下,另一种解决方案是在VLC系统的有限带宽内,使用适当的载波频率对复杂基带OFDM信号进行上转换。本文研究了基于光单边带OFDM (SSB-OFDM)的OFDM信号的带通传输。详细介绍了SSB-OFDM信号离散时间处理的产生和检测机理。为了解决带宽限制问题,讨论了SSB-OFDM信号的频谱整形。此外,还进行了频谱效率(SE)和误码率(BER)的性能分析,并通过蒙特卡罗仿真对结果进行了验证。提供了新的见解,突出了SSB-OFDM在基线直流偏置光OFDM (DCO-OFDM)系统上的信噪比(SNR)增益。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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