JOURNAL ARTICLE

Latent Space Sparse Subspace Clustering

Abstract

We propose a novel algorithm called Latent Space Sparse Subspace Clustering for simultaneous dimensionality reduction and clustering of data lying in a union of subspaces. Specifically, we describe a method that learns the projection of data and finds the sparse coefficients in the low-dimensional latent space. Cluster labels are then assigned by applying spectral clustering to a similarity matrix built from these sparse coefficients. An efficient optimization method is proposed and its non-linear extensions based on the kernel methods are presented. One of the main advantages of our method is that it is computationally efficient as the sparse coefficients are found in the low-dimensional latent space. Various experiments show that the proposed method performs better than the competitive state-of-the-art subspace clustering methods.

Keywords:
Cluster analysis Spectral clustering Kernel (algebra) Linear subspace Pattern recognition (psychology) Dimensionality reduction Computer science Clustering high-dimensional data Sparse matrix Subspace topology Sparse approximation Similarity (geometry) Artificial intelligence Projection (relational algebra) Correlation clustering Mathematics CURE data clustering algorithm Algorithm Combinatorics

Metrics

221
Cited By
11.44
FWCI (Field Weighted Citation Impact)
42
Refs
0.99
Citation Normalized Percentile
Is in top 1%
Is in top 10%

Citation History

Topics

Face and Expression Recognition
Physical Sciences →  Computer Science →  Computer Vision and Pattern Recognition
Video Surveillance and Tracking Methods
Physical Sciences →  Computer Science →  Computer Vision and Pattern Recognition
Remote-Sensing Image Classification
Physical Sciences →  Engineering →  Media Technology

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