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Feasibility study of strain and temperature discrimination in a BOTDA system via Artificial Neural Networks

机译:通过人工神经网络在BOTDA系统中进行应变和温度判别的可行性研究

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Automatic discrimination between strain and temperature in a Brillouin optical time domain analyzer via artificial neural networks is proposed and discussed in this paper. Using a standard monomode optical fiber as the sensing element, the ability of the proposed solution to detect the known changes that the Brillouin gain spectrum exhibits depending on the applied temperature and/or strain will be studied. Experimental results, where different simultaneous strain and temperature situations have been considered, will show the feasibility of this technique.
机译:本文提出并讨论了在布里渊光学时域分析仪中通过人工神经网络自动识别应变和温度的问题。使用标准的单模光纤作为传感元件,将研究提出的解决方案检测布里渊增益频谱根据所施加的温度和/或应变而显示的已知变化的能力。考虑不同同时应变和温度情况的实验结果将证明该技术的可行性。

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