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Evaluation of crack opening phenomenon using subset-optimized digital image correlation

机译:利用子集优化的数字图像相关评估裂缝开口现象

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摘要

This paper presents crack opening phenomenon evaluation using digital image correlation (DIC) with a statistically optimized subset size. In conventional DIC analysis, the subset sizes varying from several pixels to more than hundred pixels have been often selected by experts' subjective judgement based on conventional subset size determination algorithms. Since these conventional subset size determination algorithms, however, calculate speckle pattern features at a certain location of a single target image, it is difficult to consider not only all speckle pattern features within region of interest (ROI) but also the random measurement noises during the digital image acquisition process. To overcome the technical limitation, a statistical optimization algorithm of the subset size, which calculates the optimal subset size by the 3-loop iteration of normalized cross correlation within the entire ROI, is newly proposed. In addition, the optimal subset-based DIC analysis is applied to crack opening phenomenon evaluation in a mock-up concrete specimen under step loading conditions. The validation test results show 3.6 mu m maximum error compared with the ground truth which is obtained by direct measurement, while a conventional subset size determination algorithm-based DIC analysis produces the maximum error of 62.7 mu m.
机译:本文介绍了使用具有统计优化的子集大小的数字图像相关(DIC)的裂缝开口现象评估。在传统的DIC分析中,基于传统的子集尺寸确定算法,经常选择从几个像素到超过百像素的多个像素变化的子集大小。然而,由于这些传统的子集尺寸确定算法计算了单个目标图像的某个位置处的散斑图案特征,因此难以考虑感兴趣区域内的所有散斑模式特征(ROI),而且难以考虑在数字图像采集过程。为了克服技术限制,新的是,新提出了通过整个ROI内的3循环迭代计算最佳子集大小的子集大小的统计优化算法。此外,基于最佳的基于子集的DIC分析应用于在阶梯负载条件下在模拟混凝土样本中裂缝开口现象评估。验证测试结果显示3.6 mu m的最大误差与通过直接测量获得的地面真理相比,而传统的子集尺寸确定算法的DIC分析产生62.7μm的最大误差。

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