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Cascaded image analysis for dynamic crack detection in material testing

机译:级联图像分析用于材料测试中的动态裂纹检测

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Concrete probes in civil engineering material testing often show fissures or hairline-cracks. These cracks develop dynamically. Starting at a width of a few microns, they usually cannot be detected visually or in an image of a camera imaging the whole probe. Conventional image analysis techniques will detect fissures only if they show a width in the order of one pixel. To be able to detect and measure fissures with a width of a fraction of a pixel at an early stage of their development, a cascaded image analysis approach has been developed, implemented and tested. The basic idea of the approach is to detect discontinuities in dense surface deformation vector fields. These deformation vector fields between consecutive stereo image pairs, which are generated by cross correlation or least squares matching, show a precision in the order of 1 /50 pixel. Hairline-cracks can be detected and measured by applying edge detection techniques such as a Sobel operator to the results of the image matching process. Cracks will show up as linear discontinuities in the deformation vector field and can be vectorized by edge chaining. In practical tests of the method, cracks with a width of 1/20 pixel could be detected, and their width could be determined at a precision of 1/50 pixel.
机译:土木工程材料测试中的混凝土探针通常会出现裂缝或发际线裂缝。这些裂缝是动态发展的。从几微米的宽度开始,通常无法从视觉上或在整个探头成像的相机图像中检测到它们。常规的图像分析技术仅在裂缝显示出一个像素数量级的宽度时才能检测出裂缝。为了能够在其发展的早期阶段检测和测量宽度仅为像素的几分之一的裂缝,已经开发,实施和测试了级联图像分析方法。该方法的基本思想是检测密集表面变形矢量场中的不连续性。通过互相关或最小二乘匹配生成的连续立体图像对之间的这些变形矢量场显示的精度约为1/50像素。可以通过将边缘检测技术(例如Sobel算子)应用于图像匹配过程的结果来检测和测量发际线裂缝。裂纹将在变形矢量场中显示为线性不连续点,并且可以通过边链进行矢量化。在该方法的实际测试中,可以检测到宽度为1/20像素的裂缝,并且可以以1/50像素的精度确定其宽度。

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