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Unsupervised Learning for the Automatic Counting of Grains in Nanocrystals and Image Segmentation at the Atomic Resolutionopen access

Authors
Sohn, WoonbaeKim, TaekyungMoon, Cheon WooShin, DongbinPark, YejiJin, HaneulBaik, Hionsuck
Issue Date
Oct-2024
Publisher
MDPI
Keywords
unsupervised learning; Gabor filter; K-means clustering; automated image segmentation
Citation
Nanomaterials, v.14, no.20, pp 1 - 10
Pages
10
Indexed
SCIE
SCOPUS
Journal Title
Nanomaterials
Volume
14
Number
20
Start Page
1
End Page
10
URI
https://scholarworks.dongguk.edu/handle/sw.dongguk/56200
DOI
10.3390/nano14201614
ISSN
2079-4991
2079-4991
Abstract
Identifying the grain distribution and grain boundaries of nanoparticles is important for predicting their properties. Experimental methods for identifying the crystallographic distribution, such as precession electron diffraction, are limited by their probe size. In this study, we developed an unsupervised learning method by applying a Gabor filter to HAADF-STEM images at the atomic level for image segmentation and automatic counting of grains in polycrystalline nanoparticles. The methodology comprises a Gabor filter for feature extraction, non-negative matrix factorization for dimension reduction, and K-means clustering. We set the threshold distance and angle between the clusters required for the number of clusters to converge so as to automatically determine the optimal number of grains. This approach can shed new light on the nature of polycrystalline nanoparticles and their structure-property relationships.
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