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Temperature sensing in BOTDA system by using artificial neural network

机译:利用人工神经网络在BOTDA系统中进行温度感测

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摘要

The use of an artificial neural network (ANN) for extraction of a temperature profile from a local Brillouin gain spectrum in a Brillouin optical time-domain analysis fibre sensor system is proposed and demonstrated. An ANN is applied to process the Brillouin time-domain trace in order to extract the temperature information along the fibre after the data acquisition process. The results show that the ANN provides higher accuracy and larger tolerance to measurement error than Lorentzian curve fitting does, especially for a large frequency scanning step. Hence the measurement time can be greatly reduced by adopting a larger frequency scanning step without sacrificing accuracy.
机译:提出并证明了使用人工神经网络(ANN)从布里渊光学时域分析光纤传感器系统中的局部布里渊增益谱中提取温度曲线。为了在数据采集过程之后沿光纤提取温度信息,应用了ANN来处理布里渊时间域轨迹。结果表明,与洛伦兹曲线拟合相比,人工神经网络具有更高的精度和更大的测量误差容限,尤其是对于较大频率的扫描步骤。因此,在不牺牲精度的情况下,通过采用更大的频率扫描步骤可以大大减少测量时间。

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