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Defect detection and classification system for automatic analysis of digital radiography images of PM parts

机译:缺陷检测和分类系统,用于自动分析PM零件的数字射线照相图像

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摘要

Digital radiography is a promising nondestructive testing tool for powder metallurgy (PM) parts, in which transmitted X-rays are recorded to generate data for an advanced defect detection system. An important part of this system is the data processing platform for pattern recognition in X-ray images. Combinations of advanced techniques for noise reduction, contrast enhancement and image segmentation are employed. Algorithms of registration for images in regions of interest are discussed, e.g. the scale invariant feature transform (SIFT). Modern pattern recognition methodologies such as smoothing, moment representation, image alignment and optical flow towards feature classification are evaluated. The proposed defect detection and classification capability for automatic analysis of digital radiographic images from PM parts potentially allows integration into multiple-view inspection systems, which should enhance quality control in the PM manufacturing and production environment. Defect detection systems able to work at the speed of current production lines are of great interest to both PM manufacturers and users.
机译:数字射线照相术是一种用于粉末冶金(PM)零件的有前途的无损检测工具,其中记录透射的X射线以生成用于高级缺陷检测系统的数据。该系统的重要部分是用于X射线图像模式识别的数据处理平台。结合了用于降噪,对比度增强和图像分割的先进技术。讨论了感兴趣区域中图像的配准算法,例如尺度不变特征变换(SIFT)。评估了现代模式识别方法,例如平滑,矩表示,图像对齐和朝向特征分类的光流。拟议的缺陷检测和分类功能,用于自动分析PM零件中的数字射线照相图像,有可能允许集成到多视图检查系统中,这将增强PM制造和生产环境中的质量控制。能够以当前生产线的速度运行的缺陷检测系统对PM制造商和用户都非常感兴趣。

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