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The Choice of an Appropriate Information Dissimilarity Measure for Hierarchical Clustering of River Streamflow Time Series, Based on Calculated Lyapunov Exponent and Kolmogorov Measures
- Source :
- Entropy, Entropy, Vol 21, Iss 2, p 215 (2019), Volume 21, Issue 2
- Publication Year :
- 2019
- Publisher :
- MDPI, 2019.
-
Abstract
- The purpose of this paper was to choose an appropriate information dissimilarity measure for hierarchical clustering of daily streamflow discharge data, from twelve gauging stations on the Brazos River in Texas (USA), for the period 1989&ndash<br />2016. For that purpose, we selected and compared the average-linkage clustering hierarchical algorithm based on the compression-based dissimilarity measure (NCD), permutation distribution dissimilarity measure (PDDM), and Kolmogorov distance (KD). The algorithm was also compared with K-means clustering based on Kolmogorov complexity (KC), the highest value of Kolmogorov complexity spectrum (KCM), and the largest Lyapunov exponent (LLE). Using a dissimilarity matrix based on NCD, PDDM, and KD for daily streamflow, the agglomerative average-linkage hierarchical algorithm was applied. The key findings of this study are that: (i) The KD clustering algorithm is the most suitable among others<br />(ii) ANOVA analysis shows that there exist highly significant differences between mean values of four clusters, confirming that the choice of the number of clusters was suitably done<br />and (iii) from the clustering we found that the predictability of streamflow data of the Brazos River given by the Lyapunov time (LT), corrected for randomness by Kolmogorov time (KT) in days, lies in the interval from two to five days.
- Subjects :
- Kolmogorov complexity-based measures
General Physics and Astronomy
lcsh:Astrophysics
K-means clustering
Lyapunov exponent
01 natural sciences
Measure (mathematics)
Article
010104 statistics & probability
Lyapunov time
symbols.namesake
lcsh:QB460-466
0103 physical sciences
Statistics
streamflow time series
largest Lyapunov exponent
0101 mathematics
lcsh:Science
Cluster analysis
Randomness
Mathematics
Kolmogorov time
Kolmogorov complexity
010308 nuclear & particles physics
Brazos River
k-means clustering
predictability of streamflow time series
average-linkage clustering hierarchical algorithm
lcsh:QC1-999
Hierarchical clustering
symbols
lcsh:Q
lcsh:Physics
Subjects
Details
- Language :
- English
- ISSN :
- 10994300
- Volume :
- 21
- Issue :
- 2
- Database :
- OpenAIRE
- Journal :
- Entropy
- Accession number :
- edsair.doi.dedup.....e574499609a63da3f5c161cc657259c5