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Methods of Stochastic Geometry in Recognition of Weld Defects

机译:焊接缺陷识别中的随机几何方法

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摘要

Stochastic geometry is a valuable tool for fighting fuzziness inherent in some applied problems of pattern recognition. Defects in welds are hard to recognize because of the variability of their shapes, intensities, and background noise. To overcome these difficulties, a theory of feature recognition based on stochastic geom-etry was developed. In this paper, a new method for nonlinear filtering of images based on trace transform is suggested; it can be used to reduce noise, quantize images, and construct their polygonal approxima-tions. A new class of features characterizing the weld shape, structure, and geometry is constructed. The effi-ciency of the method is confirmed by the results of experimental tests of a system recognizing weld defects.
机译:随机几何是一种有用的工具,可以解决模式识别的某些应用问题中固有的模糊性。由于焊缝形状,强度和背景噪音的变化,很难识别出焊缝缺陷。为了克服这些困难,提出了一种基于随机几何的特征识别理论。本文提出了一种基于迹线变换的图像非线性滤波新方法。它可用于减少噪声,量化图像并构造其多边形近似值。构造了表征焊缝形状,结构和几何形状的新型特征。该方法的有效性由识别焊接缺陷的系统的实验测试结果证实。

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