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An optical soft-sensor based shape sensing using a bio-inspired pattern recognition technique to realise fly-by-feel capability for intelligent aircraft operation

机译:基于光学软传感器的形状感测,使用生物启发模式识别技术实现智能飞行的逐飞能力

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摘要

Information regarding deformations in large and complex systems is necessary in the prediction of structural failures caused by un-natural flexural occurrences. Sensing systems which are used to predict shapes, in order to develop a global surface picture require high precision and lower time lag. In this work, a unique bio-inspired training mechanism for support vector regression is presented for shape sensing in structures mounted with Fiber Bragg Gratings. Experimental validation was carried out on a simply supported beam, loaded at different positions and an aircraft wing model for different types of bending. The resulting deflections at specified locations along the length of the beam and on both surfaces of the wing were interpreted from the wavelength shifts of the corresponding Fiber Bragg Gratings through the specially modified Support Vector Regression. The method has shown high accuracy, low computational requirements and enhanced prediction times. The proposed bio-inspired training method has also been compared with two conventional training methodologies.
机译:有关大型和复杂系统中变形的信息对于预测由非自然弯曲事件引起的结构破坏是必要的。为了形成整体表面图片而用于预测形状的传感系统需要高精度和较低的时滞。在这项工作中,提出了一种用于支持向量回归的独特的受生物启发的训练机制,用于在装有光纤布拉格光栅的结构中进行形状感测。实验验证是在简单支撑的梁上进行的,梁在不同的位置加载,并且飞机机翼模型可以进行不同类型的弯曲。通过相应修改的支持向量回归,从相应的光纤布拉格光栅的波长偏移可以解释沿波束长度在特定位置以及机翼两个表面上产生的偏转。该方法显示出高精度,低计算要求和延长的预测时间。拟议的生物启发训练方法也已与两种常规训练方法进行了比较。

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