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Multi-view Subspace Clustering via Partition Fusion
[article]
2019
arXiv
pre-print
Multi-view clustering is an important approach to analyze multi-view data in an unsupervised way. Among various methods, the multi-view subspace clustering approach has gained increasing attention due to its encouraging performance. Basically, it integrates multi-view information into graphs, which are then fed into spectral clustering algorithm for final result. However, its performance may degrade due to noises existing in each individual view or inconsistency between heterogeneous features.
arXiv:1912.01201v1
fatcat:v6yj6mnycbajdc5ajby35gt2qy