基于OFDM的新一代三维光接入网在各种系统损伤下的性能分析

Pravindra Kumar, A. Srivastava
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引用次数: 9

摘要

基于正交频分复用(OFDM-PON)的无源光网络(PON)具有较强的抗光纤色散性,是高光接入网的理想选择。由于在频域中重叠的所有子载波之间的正交性,也实现了高频谱效率。二维(2-D)信号映射器和一维(1-D)快速反傅立叶变换(IFFT)是传统OFDM通信系统的主要组成部分。本文采用三维信号映射器和二维IFFT的概念,构成三维OFDM通信系统。分析了在不使用色散补偿的相干光正交频分复用(CO-OFDM)中,采用多级调制方案的40gb /s二维OFDM-PON和三维OFDM-PON在不同系统损伤下的性能。由于误码率(BER)取决于最小欧氏距离(MED), 3d OFDM的误码率比2d OFDM高15.46%。分析结果表明,在前向纠错(FEC)极限误码率为10-3时,信噪比增益约为2.5 dB。采用二维OFDM的40gb /s光接入网的光预算(下行)为47.1 dB,采用16-QAM的三维OFDM的光预算(下行)约为48.4 dB, 64-QAM的相应值分别为45.3 dB和46.5 dB。
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Performance analysis of next generation 3-D OFDM based optical access networks under various system impairments
Passive optical network (PON) based on orthogonal frequency division multiplexing (OFDM-PON) is a promising candidate for high optical access network due to its greater resistance to fiber dispersion. High spectral efficiency is also achieved due to the orthogonality among all sub-carriers which overlap in the frequency domain. Two-dimensional (2-D) signal mapper and one-dimensional (1-D) inverse fast fourier transform (IFFT) are the major elements of the conventional OFDM communication system. In this paper, we use the concept of three-dimensional (3-D) signal mapper and 2-D IFFT which is called as 3-D OFDM communication system. The performance of 40 Gb/s 2-D OFDM-PON and 3-D OFDM-PON using multi-level modulation scheme under various system impairments is analytically analyzed for coherent optical orthogonal frequency division multiplexing (CO-OFDM) without using any optical dispersion compensation. As bit error rate (BER) depends on minimum Euclidean distance (MED) which is 15.46 % more in case of 3-D OFDM as compared to 2-D OFDM. Analytical result show that at BER of 10-3 which is the limit of forward error correction (FEC), there is about 2.5 dB signal-to-noise ratio (SNR) gain. An optical budget (downstream) of 47.1 dB is obtained for 40 Gb/s optical access networks using 2-D OFDM and about 48.4 dB for 3-D OFDM with 16-QAM and corresponding values are 45.3 dB and 46.5 dB respectively for 64-QAM.
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