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Image Processing Issues in Digital Strain Mapping

机译:数字应变映射中的图像处理问题

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We have developed high density image processing techniques for finding the surface strain of an untreated sample of material from a sequence of images taken during the application of force from a test rig. Not all motion detection algorithms have suitable functional characteristics for this task, as image sequences are characterised by both short- and long-range displacements, non-rigid deformations, as well as a low signal-to-noise ratio and methodological artifacts. We show how a probability-based motion detection algorithm can be used as a high confidence estimator of the strain tensor characterising the deformation of the material. An important issue discussed is how to minimise the number of image brightness differences that need to be calculated. We give results from two studies of materials under axial tension: a sample of aluminium alloy exhibiting a propagating plastic deformation, and a preparation of deer antler bone, a natural composite material.
机译:我们开发了高密度图像处理技术,用于从施加在试验台上拍摄的力期间拍摄的图像中未处理的材料样品的表面应变。并非所有运动检测算法都具有适当的该任务的功能特性,因为图像序列的特征在于短和远程位移,非刚性变形以及低信噪比和方法工件。我们展示了如何将基于概率的运动检测算法用作表征材料变形的应变张量的高置信度估计器。讨论的一个重要问题是如何最小化需要计算的图像亮度差异的数量。我们通过轴张力下的两种材料研究提供了结果:铝合金样品,其展示繁殖塑性变形,以及鹿鹿角的制备,是天然复合材料。

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