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首页> 外文期刊>Journal of optics >Efficient design of gain-flattened multi-pump Raman fiber amplifiers using least squares support vector regression
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Efficient design of gain-flattened multi-pump Raman fiber amplifiers using least squares support vector regression

机译:使用最小二乘支持向量回归的增益扁平多泵拉曼光纤放大器的高效设计

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摘要

An efficient method to design the broadband gain-flattened Raman fiber amplifier with multiple pumps is proposed based on least squares support vector regression (LS-SVR). A multi-input multi-output LS-SVR model is introduced to replace the complicated solving process of the nonlinear coupled Raman amplification equation. The proposed approach contains two stages: offline training stage and online optimization stage. During the offline stage, the LS-SVR model is trained. Owing to the good generalization capability of LS-SVR, the net gain spectrum can be directly and accurately obtained when inputting any combination of the pump wavelength and power to the well-trained model. During the online stage, we incorporate the LS-SVR model into the particle swarm optimization algorithm to find the optimal pump configuration. The design results demonstrate that the proposed method greatly shortens the computation time and enhances the efficiency of the pump parameter optimization for Raman fiber amplifier design.
机译:基于最小二乘支持向量回归(LS-SVR),提出了一种利用多个泵设计宽带增益拉伸拉曼光纤放大器的有效方法。引入多输入多输出LS-SVR模型以替换非线性耦合拉曼放大方程的复杂求解过程。所提出的方法包含两个阶段:离线培训阶段和在线优化阶段。在离线阶段,培训LS-SVR模型。由于LS-SVR的良好普遍能力,当输入泵浦波长和功率的任何组合到训练有素的模型时,可以直接且准确地获得净增益谱。在在线阶段,我们将LS-SVR模型纳入粒子群优化算法,以找到最佳泵配置。设计结果表明,该方法大大缩短了计算时间,并提高了拉曼光纤放大器设计的泵参数优化效率。

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