基于数学形态学的Sem纸图像填充分割

M. Ait Kbir, Rachid Benslimane, Elisabetta Princi, Silvia Vicini, Enrico Pedemonte
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引用次数: 2

摘要

显微术和图像处理技术的最新发展使得对纤维材料的高分辨率图像进行数字测量成为可能。这有助于在微观层面上更好地了解材料的结构和其他特性。提出了一种基于数学形态学的扫描电镜图像分割方法。事实上,在欧洲地中海纸科技项目中选择的纸模型图像(Whatman, Murillo, Watercolor, Newsprint纸)由于SiAl和CaCO3颗粒的存在,纤维和填料的分布不同。使纸张中的填充颗粒与纸张表面的其他成分区分开来是一项显微镜挑战。这个目标是通过使用可转换的结构元素和数学形态学算子来实现的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Filler Segmentation of Sem Paper Images Based on Mathematical Morphology

Recent developments in microscopy and image processing have made digital measurements on high-resolution images of fibrous materials possible. This helps to gain a better understanding of the structure and other properties of the material at micro level. In this paper SEM image segmentation based on mathematical morphology is proposed. In fact, paper models images (Whatman, Murillo, Watercolor, Newsprint paper) selected in the context of the Euro Mediterranean PaperTech Project have different distributions of fibers and fillers, caused by the presence of SiAl and CaCO3 particles. It is a microscopy challenge to make filler particles in the sheet distinguishable from the other components of the paper surface. This objectif is reached here by using switable strutural elements and mathematical morphology operators.

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