Combating performance degradation in optical channels using successful noise reduction adaptive equalizer

G. Attia, I. El Dokany, A. Mohamed
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Abstract

Optical communications either wire or wireless are a promising candidate to support multimedia such as: “local area network (LAN), wide area network (WAN), metropolitan area network (MAN), wireless optical microwave link for TV and broadcast as well as the inter satellite link communications”. Where, they have substantial advantages such as ultra high bit rate, extremely high speed, secure and immune communications. However, its high-speed data transfer, transmission distance and bandwidth often limited by pulse dispersion which causes pulse brooding and hence signal distortion or inter symbol interference (I.S.I). The current paper, proposes an adaptive equalizer by integrating the fractional spaced equalizer (FSE) with decision feedback equalizer (DFE) for optical channel to remedy the problem of pulse dispersion effect in optical link, in addition, for further improvement in the performance of the equalizer we propose adopting the activity detection guidance (ADG) with tap decoupling (TD) in the fractional spaced decision feedback equalizer (FSDFE) to get fruitful outcomes in the performance of the system without shortcomings. Where, we could improve the stability, the steady-state error performance and the convergence rate. A typical optical channel will be analyzed; channel equalization will be performed using the addressed structures of adaptive equalizer. Numerical results have been carried out using a careful choice for the parameters which affect the equalizer performance such as: noise variance has been set at 0.1 and the adaptation step size has been set at 0.005 and the adaptation of FSDFE has been run for 30000 sample input. The simulation results revealed that: the FSDFE with ADG and TD offers a superior performance than its counterpart without ADG and TD. Where, it offers improvement in the effectiveness of amplitude distortion. Moreover, as the impulse response of a typical optical link would have regions that are essentially zero, the employment of the ADG scheme would further enhances the steady-state error performance and convergence rate.
利用成功的降噪自适应均衡器对抗光信道的性能下降
有线或无线光通信是支持多媒体的一个有前途的候选人,例如:“局域网(LAN),广域网(WAN),城域网(MAN),用于电视和广播的无线光微波链路以及卫星间链路通信”。其中,它们具有超高比特率,极高速度,安全和免疫通信等实质性优势。然而,它的高速数据传输、传输距离和带宽往往受到脉冲色散的限制,导致脉冲孕育,从而导致信号失真或符号间干扰(isi)。本文提出了一种将分数阶间隔均衡器(FSE)与判决反馈均衡器(DFE)相结合的自适应均衡器,以解决光链路中脉冲色散效应的问题。为了进一步提高均衡器的性能,我们提出在分数间隔决策反馈均衡器(FSDFE)中采用带抽头解耦(TD)的活动检测制导(ADG),使系统在性能上取得了良好的效果。其中,可以提高系统的稳定性、稳态误差性能和收敛速度。本文将分析一种典型的光通道;信道均衡将使用自适应均衡器的寻址结构进行。通过仔细选择影响均衡器性能的参数,例如:将噪声方差设置为0.1,将自适应步长设置为0.005,并对30000个样本输入运行FSDFE自适应。仿真结果表明:与不带ADG和TD的FSDFE相比,带ADG和TD的FSDFE具有更好的性能。其中,它提高了幅度失真的有效性。此外,由于典型光链路的脉冲响应具有基本为零的区域,因此采用ADG方案将进一步提高稳态误差性能和收敛速度。
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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