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An optical-fiber sensor for use in water systems utilizing digital signal processing techniques and artificial neural network pattern recognition

机译:利用数字信号处理技术和人工神经网络模式识别的水系统中使用的光纤传感器

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摘要

An optical-fiber sensor is reported which is capable of detecting ethanol in water. A single optical-fiber sensor was incorporated into a 1-km length of 62.5-Μm core diameter polymer-clad silica optical fiber. In order to maximize sensitivity, a U-bend configuration was used for the sensor where the cladding was removed and the core exposed directly to the fluid under test. The sensor was interrogated using optical time domain reflectrometry, as it is intended to extend this work to multiple sensors on a single fiber. In this investigation, the sensor was exposed to air, water, and alcohol. The signal processing technique has been designed to optimize the neural network adopted in the existing sensor system. In this investigation, a discrete Fourier transform, using a fast Fourier transform algorithm, is chosen and its application leads to an improvement in efficiency of the neural network i.e., minimizing the computing resources. Using the Stuttgart neural network simulator, a feed-forward three-layer neural network was constructed with the number of input nodes corresponding to the number of points required to represent the sensor frequency domain response.
机译:报道了一种能够检测水中乙醇的光纤传感器。将单根光纤传感器并入1公里长的62.5μm芯径聚合物包覆二氧化硅光纤中。为了最大程度地提高灵敏度,传感器采用了U形弯曲的结构,其中去除了金属包层,并将纤芯直接暴露在被测流体中。使用光学时域反射仪对传感器进行了询问,因为它旨在将这项工作扩展到单根光纤上的多个传感器。在此调查中,传感器暴露于空气,水和酒精中。信号处理技术已被设计为优化现有传感器系统中采用的神经网络。在这项研究中,选择了使用快速傅立叶变换算法的离散傅立叶变换,并且其应用导致神经网络效率的提高,即,最小化了计算资源。使用斯图加特神经网络仿真器,构建了一个前馈三层神经网络,其输入节点数与代表传感器频域响应所需的点数相对应。

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