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Multiscale Statistical Analysis of Massive Corrosion Pits Based on Image Recognition of High Resolution and Large Field-of-View Images

机译:基于高分辨率和大型视野图像图像识别的大型腐蚀坑的多尺度统计分析

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摘要

In the present study, a new multiscale method is proposed for the statistical analysis of spatial distribution of massive corrosion pits, based on the image recognition of high resolution and large field-of-view (montage) optical images. Pitting corrosion for high strength pipeline steel exposed to sodium chloride solution was observed using an optical microscope. Montage images of the corrosion pits were obtained, with a single image containing a large number of corrosion pits. The diameters and locations of all the pits were determined simultaneously using an image recognition algorithm, followed by statistical analysis of the two-dimensional spatial point pattern. The multiscale spatial distributions of pits were analyzed by dividing the montage image into a number of different windows. The results indicate the clear dependence of distribution features on the spatial scales. The proposed method can provide a better understanding of the pit growth from the perspective of multiscale spatial evolution.
机译:在本研究中,提出了一种新的多尺度方法,用于基于高分辨率和大视野(蒙太奇)光学图像的图像识别来统计分析大规模腐蚀凹坑的空间分布。使用光学显微镜观察到暴露于氯化钠溶液的高强度管线钢的蚀腐蚀。获得腐蚀凹坑的蒙太奇图像,用含有大量腐蚀凹坑的单个图像。使用图像识别算法同时确定所有凹坑的直径和位置,然后通过对二维空间点图案的统计分析来确定。通过将蒙太奇图像划分为许多不同的窗口来分析多尺度的凹坑的空间分布。结果表明分布特征在空间尺度上的明显依赖性。所提出的方法可以从多尺度空间演进的角度来提供对坑增长的更好理解。

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