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Multi-sensor image fusion at signal level for improved near-surface crack detection

机译:信号级别的多传感器图像融合,可改善近表面裂纹检测

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摘要

This study aims at improving the detection of near-surface defects in magnetizable and conductive specimens by combining the measurements of eddy current, magnetic flux leakage and thermography testing. Different signal processing methods for data normalization are proposed to enable data fusion at the pixel level. These methods are applied to a test specimen which contains 10 variably-sized defects. We quantitatively evaluate the performances of a total of 29 detection methods with respect to false alarm reduction at a fixed level of true positive rate. We report that false positive rate could be reduced from 1.65% down to 0.28% by the best multi-sensor method compared to the best single-sensor performance on the smallest defect, when 50% found flaw pixels are required for successful detection.
机译:这项研究旨在通过结合涡流测量,磁通量泄漏和热成像测试来改进可磁化和导电样品中近表面缺陷的检测。为了实现像素级的数据融合,提出了用于数据归一化的不同信号处理方法。这些方法适用于包含10个大小可变的缺陷的试样。我们以固定的真阳性率定量评估了总共29种检测方法在减少误报方面的性能。我们报告说,与50%的缺陷像素才能成功检测到的缺陷相比,采用最佳的多传感器方法可以将假阳性率从1.65%降低到0.28%,而对于最小的缺陷,则具有最佳的单传感器性能。

著录项

  • 来源
    《NDT & E international》 |2015年第4期|16-22|共7页
  • 作者单位

    BAM Federal Institute for Materials Research and Testing, Unter den Eichen 87, 12205 Berlin, Germany;

    BAM Federal Institute for Materials Research and Testing, Unter den Eichen 87, 12205 Berlin, Germany,Department of Civil and Environmental Engineering, The Pennsylvania State University, 215 Sackett Bldg., University Park, PA 16802, United States;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Data fusion; Image processing; Surface flaw; Detection;

    机译:数据融合;图像处理;表面缺陷;检测;

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