首页> 外文会议>Conference on Interferometry XI: Techniques and Analysis, Jul 8-10, 2002, Seattle, USA >Optical processing for the detection of faults in interferometric patterns
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Optical processing for the detection of faults in interferometric patterns

机译:用于检测干涉图中的故障的光学处理

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The detection and classification of faults is a major task for optical nondestructive testing in industrial quality control. Interferometric fringes, obtained by real-time optical measurement methods, contain a large amount of image data with information about possible defect features. This mass of data must be reduced for further evaluation. One possible way is the filtering of these images applying the adaptive wavelet transform. The wavelet transform has been proved to be a capable tool in the detection of structures with definite spatial resolution. In this paper it is shown the extraction and classification of disturbances in interferometric fringe patterns, the application of several wavelet functions with different parameters for the detection of faults, and the combination of wavelet filters for fault classification. Furthermore the implementation of complex valued wavelet filters and correlation filters is shown. We will present an algorithm to classify interferometric fringe patterns. In order to achieve real-time processing a hybrid opto-electronic system with a digital image processing and an optical correlation module is favored. The calculated wavelet filters are implemented into the optical correlator system that is based on liquid-crystal spatial light modulators. So, all discussed items were verified experimentally in the optical setup.
机译:故障的检测和分类是工业质量控制中光学无损检测的主要任务。通过实时光学测量方法获得的干涉条纹包含大量图像数据以及有关可能的缺陷特征的信息。必须减少此数据量以进行进一步评估。一种可能的方法是使用自适应小波变换对这些图像进行滤波。小波变换已被证明是检测具有确定空间分辨率的结构的有力工具。本文展示了干涉条纹图模式中干扰的提取和分类,几种具有不同参数的小波函数在故障检测中的应用,以及小波滤波器的组合在故障分类中的应用。此外,还显示了复值小波滤波器和相关滤波器的实现。我们将提出一种算法来对干涉条纹图案进行分类。为了实现实时处理,优选具有数字图像处理和光学相关模块的混合光电系统。计算出的小波滤波器被实现到基于液晶空间光调制器的光学相关器系统中。因此,所有讨论的项目都在光学装置中进行了实验验证。

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