JOURNAL ARTICLE

Kernel sparse subspace clustering

Abstract

Subspace clustering refers to the problem of grouping data points that lie in a union of low-dimensional subspaces. One successful approach for solving this problem is sparse subspace clustering, which is based on a sparse representation of the data. In this paper, we extend SSC to non-linear manifolds by using the kernel trick. We show that the alternating direction method of multipliers can be used to efficiently find kernel sparse representations. Various experiments on synthetic as well real datasets show that non-linear mappings lead to sparse representation that give better clustering results than state-of-the-art methods.

Keywords:
Kernel (algebra) Linear subspace Sparse approximation Cluster analysis Pattern recognition (psychology) Computer science Artificial intelligence Kernel method Subspace topology Representation (politics) Sparse matrix Clustering high-dimensional data Mathematics Support vector machine Combinatorics

Metrics

248
Cited By
8.20
FWCI (Field Weighted Citation Impact)
41
Refs
0.98
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
Sparse and Compressive Sensing Techniques
Physical Sciences →  Engineering →  Computational Mechanics
Speech and Audio Processing
Physical Sciences →  Computer Science →  Signal Processing

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