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Application of the Hough transform for the automatic determination of soot aggregate morphology

机译:Hough变换在烟灰团粒形态自动确定中的应用

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摘要

We report a new method for automated identification and measurement of primary particles within soot aggregates as well as the sizes of the aggregates and discuss its application to high-resolution transmission electron microscope (TEM) images of the aggregates. The image processing algorithm is based on an optimized Hough transform, applied to the external border of the aggregate. This achieves a significant data reduction by decomposing the particle border into fragments, which are assumed to be spheres in the present application, consistent with the known morphology of soot aggregates. Unlike traditional techniques, which are ultimately reliant on manual (human) measurement of a small sample of primary particles from a subset of aggregates, this method gives a direct measurement of the sizes of the aggregates and the size distributions of the primary particles of which they are composed. The current version of the algorithm allows processing of high-resolution TEM images by a conventional laptop computer at a rate of 1\u20132 ms per aggregate. The results were validated by comparison with manual image processing, and excellent agreement was found.
机译:我们报告了一种新的方法,用于自动识别和测量烟灰聚集体内的初级颗粒以及聚集体的尺寸,并讨论了其在聚集体的高分辨率透射电子显微镜(TEM)图像中的应用。图像处理算法基于优化的霍夫变换,并应用于集合体的外部边界。通过将颗粒边界分解成碎片(在本申请中假定为球形),这与烟灰聚集体的已知形态相一致,从而显着减少了数据。与传统技术不同,传统技术最终依赖于手动(人类)测量来自聚集体子集的少量初级颗粒样品,而该方法可以直接测量聚集体的尺寸及其所含初级颗粒的尺寸分布组成。该算法的当前版本允许常规便携式计算机以每个集合1 \ u20132 ms的速率处理高分辨率TEM图像。通过与手动图像处理进行比较,验证了结果,并且发现了极好的一致性。

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