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Pre-Processing of Signals Observed from Laser Diode Self-mixing Intereferometries using Neural Networks

机译:使用神经网络从激光二极管自混合嵌剂瘤观察的信号的预处理

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This paper presents a novel neural network signal interpolation technique in order to eliminate the noise and disturbance associated with the self-mixing signal observed from optical feedback self-mixing interferometry (OFSMI). The proposed technique aims to improve the accuracy for displacement and moving track measurement of a target. The performance of the proposed approach is evaluated by both simulation and experimentation, with simulation revealing a measuring accuracy of λ/25 for weak feedback and λ/20 for moderate feed back.
机译:本文提出了一种新型神经网络信号插值技术,以消除与从光学反馈自混合干涉 - 干涉法(OFSSMI)观察到的自混合信号相关的噪声和扰动。该提出的技术旨在提高目标的位移和移动轨道测量的准确性。通过仿真和实验评估所提出的方法的性能,模拟显示λ/ 25的测量精度,用于弱反馈和λ/ 20,适量反馈。

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