A study on the classification of ancient glassware based on K-means clustering algorithm

Authors

  • Yiming Liu
  • Chenxu Li

DOI:

https://doi.org/10.54097/hset.v22i.3391

Keywords:

K-means, Cluster analysis, Glass classification.

Abstract

In this paper, a mathematical model based on cluster analysis is developed for the composition of ancient glass products, and the classification rules of high potassium glass and lead-barium glass as well as the method of subclassing them are given. In this paper, scatter plots were used to screen out the chemical constituents in high potassium and lead-barium glasses that varied considerably at different sampling points. The contents of these chemical components were systematically clustered separately and the aggregation coefficient line graphs were plotted to obtain the number of classes of clusters. The K-means algorithm was then used to obtain a classification of high potassium glass into three categories using alumina content and lead-barium glass into two categories using barium oxide content. Finally, the model was subjected to reasonableness and sensitivity analysis, and the results showed that the sensitivity of the model was low.

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Published

07-12-2022

How to Cite

Liu, Y., & Li, C. (2022). A study on the classification of ancient glassware based on K-means clustering algorithm. Highlights in Science, Engineering and Technology, 22, 293-298. https://doi.org/10.54097/hset.v22i.3391