4.7 Article

Deep reinforcement with spectrum series learning control for a mode-locked fiber laser

Journal

PHOTONICS RESEARCH
Volume 10, Issue 6, Pages 1491-1500

Publisher

CHINESE LASER PRESS
DOI: 10.1364/PRJ.455493

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Funding

  1. Strategic Priority Research Program of Chinese Academy of Sciences [XDA25020302, XDA25020306]
  2. International Partnership Program of Chinese Academy of Sciences [181231KYSB20170022]
  3. National Natural Science Foundation of China [11774364]

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A spectrum series learning-based model is proposed for mode-locked fiber laser state searching and switching. The model combines deep reinforcement learning and long short-term memory networks to obtain the mode-locked operation search policy. The switch of the mode-locked state is realized by a predictive neural network that controls the pump power. Experimental results show that this new method achieves high efficiency and accuracy in searching and switching mode-locked states.
A spectrum series learning-based model is presented for mode-locked fiber laser state searching and switching. The mode-locked operation search policy is obtained by our proposed algorithm that combines deep reinforcement learning and long short-term memory networks. Numerical simulations show that the dynamic features of the laser cavity can be obtained from spectrum series. Compared with the traditional evolutionary search algorithm that only uses the current state, this model greatly improves the efficiency of the mode-locked search. The switch of the mode-locked state is realized by a predictive neural network that controls the pump power. In the experiments, the proposed algorithm uses an average of only 690 ms to obtain a stable mode-locked state, which is one order of magnitude less than that of the traditional method. The maximum number of search steps in the algorithm is 47 in the 16 degrees C-30 degrees C temperature environment. The pump power prediction error is less than 2 mW, which ensures precise laser locking on multiple operating states. This proposed technique paves the way for a variety of optical systems that require fast and robust control. (C) 2022 Chinese Laser Press

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