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Coal elemental (compositional) data analysis with hierarchical clustering algorithms

delete2022-01-01
delete22
PRE
AI
许娜 cover
许娜 (Na Xu) *
C
Chuanpeng Xu
R
Robert B. Finkelman
M
Mark A. Engle
Q
Qing Li
M
Mengmeng Peng
L
Lizhi He
黄彬 (Bin Huang)
Y
Yuchen Yang
DOI:10.1016/j.coal.2021.103892delete
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Abstract

Abstract

En 中文
The modes of occurrence for elements in coal are extremely important for deciphering geological process of coal formation and for anticipating the technological behavior and environmental and health impacts derived from coal utilization. Hierarchical clustering algorithm has been widely adopted to investigate the modes of occurrence of elements in coal. The traditional statistics (e.g., Pearson correlation, Euclidean distance) for the elemental data of coal may lead to misinterpretation because the elemental data of coal are of compositional nature and follow the rules of Aitchison geometry. This work applied log-ratio transformations in order to overcome this problem. Different hierarchical clustering algorithms with various data transformations can infer modes of occurrence for coal elements, but which algorithm is optimum deserves to be investigated. In this paper, we discuss four commonly used hierarchical clustering algorithms utilizing pivot coordinates and weighted symmetric pivot coordinates (WSPC), two types of log-ratio transformations, to infer modes of occurrence of elements in coal, based on published coal elemental data. Results showed that the Pearson correlation produces more meaningful results than the Euclidean distance in clustering rare earth elements and Y. WSPC produces more interpretable results than those from pivot coordinates transformed data for these coal elemental data. Compared with the single, complete, and centroid, the average-linkage algorithm is indeed the optimum.
Keywords:
Coal elemental data
Log-ratio transformation
Hierarchical clustering algorithms
Pivot coordinates

Journal

International Journal of Coal Geology cover
International Journal of Coal Geology
IF:
5.7
Papers:
3.4K
Citations:
1.6W

Organization

U
University of Texas Dallas
Scholars:
5.6K
Papers: 5.0K
Citations: 15
U
university of texas system
Scholars:
18.5W
Papers: 15.6W
Citations: 210