JOURNAL ARTICLE

Semisupervised Least Squares Support Vector Machine

M.M. AdankonMohamed CherietAlain Biem

Year: 2009 Journal:   IEEE Transactions on Neural Networks Vol: 20 (12)Pages: 1858-1870   Publisher: Institute of Electrical and Electronics Engineers

Abstract

The least squares support vector machine (LS-SVM), like the SVM, is based on the margin-maximization performing structural risk and has excellent power of generalization. In this paper, we consider its use in semisupervised learning. We propose two algorithms to perform this task deduced from the transductive SVM idea. Algorithm 1 is based on combinatorial search guided by certain heuristics while Algorithm 2 iteratively builds the decision function by adding one unlabeled sample at the time. In term of complexity, Algorithm 1 is faster but Algorithm 2 yields a classifier with a better generalization capacity with only a few labeled data available. Our proposed algorithms are tested in several benchmarks and give encouraging results, confirming our approach.

Keywords:
Support vector machine Computer science Heuristics Generalization Margin (machine learning) Artificial intelligence Least squares support vector machine Machine learning Classifier (UML) Structured support vector machine Maximization Pattern recognition (psychology) Algorithm Mathematical optimization Mathematics

Metrics

76
Cited By
4.34
FWCI (Field Weighted Citation Impact)
51
Refs
0.96
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
Neural Networks and Applications
Physical Sciences →  Computer Science →  Artificial Intelligence
Blind Source Separation Techniques
Physical Sciences →  Computer Science →  Signal Processing

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