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基于随机并行梯度下降算法的光束相干合成技术

Coherent beam combining experiments based on stochastic parallel gradient descent algorithm

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【作者】 潘旭东贺喜雍松林张生帅田俊林

【Author】 Pan Xudong;He Xi;Yong Songlin;Zhang Shengshuai;Tian Junlin;Key Laboratory of Science and Technology on High Energy Laser,CAEP;Institute of Applied Electronics,CAEP;

【机构】 中国工程物理研究院高能激光科学与技术重点实验室中国工程物理研究院应用电子学研究所

【摘要】 介绍了随机并行梯度下降算法的基本原理,对算法流程进行了仿真验证,并对其中随机扰动幅度和增益系数两个关键参数进行了仿真分析。分析结果表明,这两个参数存在一个最适区间,只有在此区间内取值时算法才能有效收敛。以仿真分析为依据开展了光纤激光的相干合成实验,结果表明光束相干合成效果显著,有效地验证了仿真分析的结果。

【Abstract】 The principle of stochastic parallel gradient descent(SPGD)algorithm is introduced,and the algorithm flow is verified through simulation.Two critical factors,the stochastic perturbation and the gain coefficient,are especially analyzed.The simulation results show that there is a most appropriate interval for selecting the two factors.Only with the two factors selected in this interval,the algorithm can achieve the best convergence value.Based on the simulation results,the coherent beam combining experiments are carried out with fiber lasers,resulting in significant effect of beam combining.The experimental results prove the results of simulation above.In conclusion,the research results would improve the design of coherent beam combining experiments for high power laser in the future.

  • 【文献出处】 强激光与粒子束 ,High Power Laser and Particle Beams , 编辑部邮箱 ,2013年10期
  • 【分类号】TP301.6
  • 【被引频次】5
  • 【下载频次】99
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