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Heat Map Visualizations Allow Comparison of Multiple Clustering Results and Evaluation of Dataset Quality: Application to Microarray Data

Authors :
John Sharko
Hans Georg Simon
Georges Grinstein
Chia-Ho Cheng
Shannon J. Odelberg
Kenneth A. Marx
Jianping Zhou
Source :
IV
Publication Year :
2007
Publisher :
IEEE, 2007.

Abstract

Since clustering algorithms are heuristic, multiple clustering algorithms applied to the same dataset will typically not generate the same sets of clusters. This is especially true for complex datasets such as those from microarray time series experiments. Two such microarray datasets describing gene expression activities from regenerating newt forelimbs at various times following limb amputation were used in this study. A cluster stability matrix, which shows the number of times two genes appear in the same cluster, was generated as a heat map. This was used to evaluate the overall variation among the clustering algorithms and to identify similar clusters. A comparison of the cluster stability matrices for two related microarray experiments with different levels of precision was shown to be an effective basis for comparing the quality of the two sets of experiments. A pairwise heat map was generated to show which pairs of clustering algorithms grouped the data into similar clusters.

Details

ISSN :
15506037
Database :
OpenAIRE
Journal :
2007 11th International Conference Information Visualization (IV '07)
Accession number :
edsair.doi...........51279eadf634f3cc4e926b01e304dc85
Full Text :
https://doi.org/10.1109/iv.2007.61