基于极限学习机(ELM)的CO-OFDM信道估计高精度技术

N. Joseph, P. C.
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引用次数: 0

摘要

在无线系统中,由于无线信道的时间差和噪声的影响,信道估计被认为是一个有问题的技术。正交频分复用技术(OFDM)是未来光通信的一个很有前途的发展方向,受到了广泛的关注。本文提出了一种相干光(CO)正交频分复用(OFDM)方案,该方案为提高传输速率提供了可扩展和灵活的解决方案,对色散和偏振模色散具有极强的鲁棒性。然而,无论是相干检测还是OFDM都容易产生相位噪声,这是由于发射端和接收端的激光振荡器之间的相位不匹配,以及OFDM的符号持续时间相对于单载波通信而言相对较长。提出了一种具有导频辅助均衡(PEM)的极限学习机(ELM),用于补偿相干光通信系统中光纤非线性造成的损伤。利用ELM和失真值进行信道估计,根据失真信息发送到OSTBC接收端,对数据进行解码并去除导频数据。对数据进行FFT处理,并对数据进行QPSK解调,得到数据的原始形式。此外,本文还采用了一种改进接收机结构的多输入多输出正交频分复用(MIMO-OFDM)自由空间光通信系统。仿真结果表明,与传统系统相比,该模型具有显著的误码率(0.0112),具有更好的频谱效率和更低的计算复杂度。这表明,采用基于co - ofdm - fso - mimo - elm的信道估计技术分别在高速数据通信网络实时场景下具有更好的性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Highly Accurate Technique for CO-OFDM Channel Estimation Technique Using Extreme Learning Machine (ELM)
In wireless systems, channel estimation is considered a problematic technology, due to the fact of the difference in time between wireless channels and the noise effect. Orthogonal frequency-division multiplexing (OFDM) is a promising candidate for future optical communications and has received wide concern. The article proposed a Coherent Optical (CO) orthogonal frequency division multiplexing (OFDM) scheme, which gives a scalable and flexible solution for increasing the transmission rate, being extremely robust to chromatic dispersion as well as polarization mode dispersion. Nevertheless, both coherent detection and OFDM are prone to phase noise due to the phase mismatch between the laser oscillators at the transmitter and receiver sides and the relatively long OFDM symbol duration compared to that of single carrier communications. An Extreme Learning Machine (ELM) with Pilot Assisted Equalization (PEM) is proposed for compensation of impairments caused by fibre nonlinearity in coherent optical communication systems. Channel estimation using ELM and the value of distortion is sent to the OSTBC receiving end based on the distortion information the data is decoded and pilot data is removed. FFT is applied to the data and QPSK demodulation is done in the data to get its original form. In addition, the article utilized a free-space optical communication system of multi-input multi-output orthogonal frequency division multiplexing (MIMO-OFDM) with a modified receiver structure. Simulation reveals that the proposed model exhibits significant BER (0.0112) performance and provides better spectral efficiency as compared with conventional systems and less computational complexity. This suggested that the proposed method shows better performance by using the CO-OFDM-FSO-MIMO-ELM-based channel estimation technique for high-speed data communication networks in real-time scenarios respectively.
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