Journal article
Ensemble Fuzzy Clustering Using Cumulative Aggregation on Random Projections
P Rathore, JC Bezdek, SM Erfani, S Rajasegarar, M Palaniswami
IEEE Transactions on Fuzzy Systems | IEEE-INST ELECTRICAL ELECTRONICS ENGINEERS INC | Published : 2018
Abstract
Random projection is a popular method for dimensionality reduction due to its simplicity and efficiency. In the past few years, random projection and fuzzy c-means based cluster ensemble approaches have been developed for high-dimensional data clustering. However, they require large amounts of space for storing a big affinity matrix, and incur large computation time while clustering in this affinity matrix. In this paper, we propose a new random projection, fuzzy c-means based cluster ensemble framework for high-dimensional data. Our framework uses cumulative agreement to aggregate fuzzy partitions. Fuzzy partitions of random projections are ranked using external and internal cluster validit..
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Grants
Awarded by Australian Research Council
Funding Acknowledgements
This work was supported in part by Australian Research Council (ARC) Linkage Project under Grant LP120100529 and in part by the ARC Linkage Infrastructure, Equipment and Facilities scheme (LIEF) under Grant LF120100129. (Corresponding author: Punit Rathore.)