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首页> 外文期刊>Quality and Reliability Engineering International >Detection of circlelike overlapping objects in thermal spray images
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Detection of circlelike overlapping objects in thermal spray images

机译:检测热喷涂图像中的圆形重叠物体

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摘要

In this paper, we present a new algorithm for the detection of distorted and overlapping circlelike objects in noisy grayscale images. Its main step is an edge detection using rotated difference kernel estimators. To the resulting estimated edge points, circles are fitted in an iterative manner using a circular clustering algorithm. A new measure of similarity can assess the performance of algorithms for the detection of circlelike objects, even if the number of detected circles does not coincide with the number of true circles. We apply the algorithm to scanning electron microscope images of a high-velocity oxygen fuel (HVOF) spray process, which is a popular coating technique. There, a metal powder is fed into a jet, gets accelerated and heated up by means of a mixture of oxygen and fuel, and finally deposits as coating upon a substrate. If the process is stopped before a continuous layer is formed, the molten metal powder solidifies in form of small, almost circular so-called splats, which vary with regard to their shape, size, and structure and can overlap each other. As these properties are challenging for existing image processing algorithms, engineers analyze splat images manually up to now. We further compare our new algorithm with a baseline approach that uses the Laplacian of Gaussian blob detection. It turns out that our algorithm performs better on a set of test images of round, spattered, and overlapping circles.
机译:在本文中,我们提出了一种在嘈杂的灰度图像中检测失真和重叠的扭曲和重叠线圈对象的新算法。其主要步骤是使用旋转差异核估计器的边缘检测。对于所产生的估计边缘点,圆圈以循环聚类算法以迭代方式配备。即使检测到的圆数的数量与真实圆数不一致,也可以评估相似性的算法的性能。我们将算法应用于扫描电子显微镜图像的高速氧气燃料(HVOF)喷涂过程,这是一种流行的涂装技术。在那里,将金属粉末进料到射流中,通过氧气和燃料的混合物加速并加热,并且最后作为涂层沉积在基材上。如果在形成连续层之前该过程停止,则熔融金属粉末以小的几乎圆形的Splats的形式固化,其在其形状,尺寸和结构方面变化,并且可以彼此重叠。由于这些属性对现有图像处理算法有挑战性,因此工程师现在可以手动分析Splat图像。我们进一步将新算法与使用高斯BLOB检测的Laplacian的基线方法进行了比较。事实证明,我们的算法在一组圆形,溅射和重叠圆圈的一组测试图像上执行更好。

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