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Deep learning for position fixing in the micron scale by using convolutional neural networks 被引量:1

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摘要 We propose here a novel method for position fixing in the micron scale by combining the convolutional neural network(CNN) architecture and speckle patterns generated in a multimode fiber. By varying the splice offset between a single mode fiber and a multimode fiber, speckles with different patterns can be generated at the output of the multimode fiber. The CNN is utilized to learn these specklegrams and then predict the offset coordinate. Simulation results show that predicted positions with the precision of 2 μm account for 98.55%.This work provides a potential high-precision two-dimensional positioning method.
作者 李宏业 梁鹄 胡琪浩 王蒙 王泽锋 Hongye Li;Hu Liang;Qihao Hu;Meng Wang;Zefeng Wang(College of Advanced In ter discipl in ary Studies,National University of Defense Technology,Changsha 410073,China;State Key Laboratory of Pulsed Power Laser Technology,Changsha 410073,China;Hunan Provincial Key Laboratory of High Energy Laser Technology,Changsha 410073,China;Tianjin Navigation Instruments Research Institute,Tianjin 300131,China)
出处 《Chinese Optics Letters》 SCIE EI CAS CSCD 2020年第5期6-10,共5页 中国光学快报(英文版)
基金 the Out standing Youth Science Fund of Hunan Provincial Natural Science Foundation(No.2019JJ20023) the National Natural Science Foundation of China(NSFC)(No.11974427).
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