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基于学习增强光纤散斑图传感器的空间分辨弯曲识别。

Spatially-resolved bending recognition based on a learning-empowered fiber specklegram sensor.

出版信息

Opt Express. 2023 Feb 27;31(5):7671-7683. doi: 10.1364/OE.482953.

Abstract

Fiber specklegram sensors do not rely on complex fabrication processes and expensive sensor interrogation schemes and provide an alternative to routinely used fiber sensing technologies. Most of the reported specklegram demodulation schemes focus on correlation calculation based on statistical properties or classification according to features, resulting in limited measurement range and resolution. In this work, we propose and demonstrate a learning-empowered spatially resolved method for fiber specklegram bending sensors. This method can learn the evolution process of speckle patterns through a hybrid framework constructed by a data dimension reduction algorithm and regression neural network, which can simultaneously identify the curvature and perturbed position according to the specklegram, even for the unlearned curvature configuration. Rigorous experiments are performed to verify the feasibility and robustness of the proposed scheme, and the results show that the prediction accuracy for the perturbed position is 100%, and the average prediction errors for the curvature of the learned and unlearned configurations are 7.79 × 10m and 7.02 × 10m, respectively. The proposed method promotes the application of fiber specklegram sensors in the practical scene and provides insights for the interrogation of sensing signals by deep learning.

摘要

光纤斑纹传感器不依赖复杂的制造工艺和昂贵的传感器检测方案,为常用的光纤传感技术提供了一种替代方案。大多数已报道的斑纹图解调方案侧重于基于统计特性的相关计算或根据特征进行分类,导致测量范围和分辨率有限。在这项工作中,我们提出并演示了一种用于光纤斑纹弯曲传感器的基于学习的空间分辨方法。该方法可以通过由数据降维算法和回归神经网络构建的混合框架来学习斑纹图案的演变过程,根据斑纹图同时识别曲率和扰动位置,即使对于未学习的曲率配置也是如此。进行了严格的实验来验证所提出方案的可行性和鲁棒性,结果表明,扰动位置的预测精度为 100%,对于学习和未学习配置的曲率的平均预测误差分别为 7.79×10^-3 m 和 7.02×10^-3 m。所提出的方法促进了光纤斑纹传感器在实际场景中的应用,并为深度学习在传感信号检测方面提供了思路。

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