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Fringe patterns recognition in digital photoelasticity images using texture features and multispectral wavelength analysis

机译:使用纹理特征和多光谱波长分析识别数字光弹性图像中的条纹图案

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摘要

In digital photoelasticity, fringe pattern analysis is crucial because the photoelastic fringes provide information about direction and magnitudes of the principal stresses at the surface of the inspected object. These fringes exhibit visual properties that depend on the applied load, their spatial location in the inspected object geometry, and the illumination source. Traditional methods for fringe analysis in photoelasticity have limited performance when dealing with noisy or not well contrasted fringes, or if the spatial resolution of the fringes is lost. This work presents an approach for analyzing fringe patterns in photoelasticity images using texture information, in conjunction with machine learning techniques. Stress fields are simulated in multiple spectral bands for two models. Then, different regions of interest in these models are characterized with well-known texture descriptors. Furthermore, feature ranking and five classification schemes are used to describe the texture variations that occur in the models when they undergo diametral compression in the different spectral bands considered. The results show that texture descriptors are suitable tools for describing the stress information provided by photoelastic fringe patterns. Also, it is possible to use machine learning techniques to learn, recognize, and predict the behavior of models subjected to mechanical load in photoelasticity experiments.
机译:在数字光弹性中,条纹图案分析至关重要,因为光弹性条纹可提供有关被检对象表面主应力方向和大小的信息。这些条纹的视觉特性取决于所施加的负载,它们在被检对象几何形状中的空间位置以及光源。当处理嘈杂的或对比度不佳的条纹,或者条纹的空间分辨率丢失时,传统的光弹性条纹分析方法的性能有限。这项工作提出了一种结合纹理和机器学习技术来分析光弹图像中条纹图案的方法。在两个模型的多个光谱带中模拟了应力场。然后,使用众所周知的纹理描述符来表征这些模型中的不同关注区域。此外,特征分级和五种分类方案用于描述模型在所考虑的不同光谱带中受到径向压缩时在模型中发生的纹理变化。结果表明,纹理描述符是描述光弹性条纹图案提供的应力信息的合适工具。同样,可以使用机器学习技术来学习,识别和预测在光弹性实验中受到机械负载的模型的行为。

著录项

  • 来源
    《Optical engineering》 |2018年第9期|093105.1-093105.15|共15页
  • 作者单位

    lnstituto Tecnologico Metropolitano, Grupo de Automatica, Electronica y Ciencias Computacionales, Medellin, Colombia,Universidad Nacional de Colombia-Sede Medellin, Grupo de Investigacion y Desarrollo en Inteligencia Artificial, Medellin, Colombia;

    lnstituto Tecnologico Metropolitano, Grupo de Automatica, Electronica y Ciencias Computacionales, Medellin, Colombia;

    Universidad Nacional de Colombia-Sede Medellin, Grupo de Investigacion y Desarrollo en Inteligencia Artificial, Medellin, Colombia;

    Universidad Nacional de Colombia-Sede Medellin, Grupo de Investigacion y Desarrollo en Inteligencia Artificial, Medellin, Colombia;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    digital photoelasticity; high-fringe density patterns; texture descriptors; infrared electromagnetic bands;

    机译:数字光弹性高条纹密度图案;纹理描述符;红外电磁带;

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