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3D Shape Sensing With Multicore Optical Fibers: Transformation Matrices Versus Frenet-Serret Equations for Real-Time Application

机译:3D与多芯光纤的形状传感:变换矩阵与FRENET-SERRET方程进行实时应用

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This paper presents the characterization of an algorithm aimed at performing accurate fiber optic-based shape sensing. The measurement of the shape relies on the evaluation of the strains applied to an optic fiber in order to identify relevant spatial parameters, such as the curvature radii and bending direction, which define its shape. The measurement system is based on a 7-core multicore fiber, containing up to 9 triplets of fiber Bragg grating sensors (FBGs) organized around a central core used as reference. The proposed study aims at comparing the widely used Frenet-Serret equations with an algorithm based on the homogeneous transformation matrices that are normally used in robotics to express the position of a point in different frames, i.e. from local to global coordinates. The numerical results of the performed experiments (with different multicore fibers and setups) extensively prove the superiority of the alternative method over the Frenet-Serret equations in terms of finding a trade-off between accuracy and execution time.
机译:本文介绍了一种旨在执行精确的光学光学形状感测的算法的表征。形状的测量依赖于施加到光纤的应变的评估,以识别相关的空间参数,例如曲率半径和弯曲方向,其限定其形状。测量系统基于7核多核光纤,围绕用作参考的中心核心组织多达9个三胞胎光纤布拉格光栅传感器(FBG)。所提出的研究旨在将广泛使用的FRENET-SERRET方程与基于均匀变换矩阵的算法进行比较,该算法通常用于机器人,以表达不同帧中的点的位置,即从本地到全局坐标。所执行的实验的数值结果(具有不同的多芯纤维和设置)在精度和执行时间之间的折衷方面,在FRENET-SERRET方程中广泛地证明了替代方法的优越性。

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