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Support Vector Machines for classification and regression

The Analyst · 2009 · Vol. 135(2) · pp. 230–267
Richard G. BreretonGavin R. Lloyd

Abstract

The increasing interest in Support Vector Machines (SVMs) over the past 15 years is described. Methods are illustrated using simulated case studies, and 4 experimental case studies, namely mass spectrometry for studying pollution, near infrared analysis of food, thermal analysis of polymers and UV/visible spectroscopy of polyaromatic hydrocarbons. The basis of SVMs as two-class classifiers is shown with extensive visualisation, including learning machines, kernels and penalty functions. The influence of the penalty error and radial basis function radius on the model is illustrated. Multiclass implementations including one vs. all, one vs. one, fuzzy rules and Directed Acyclic Graph (DAG) trees are described. One-class Support Vector Domain Description (SVDD) is described and contrasted to conventional two- or multi-class classifiers. The use of Support Vector Regression (SVR) is illustrated including its application to multivariate calibration, and why it is useful when there are outliers and non-linearities.

Spectroscopy and Chemometric AnalysesAdvanced Chemical Sensor TechnologiesFault Detection and Control SystemsSupport vector machineOutlierComputer scienceLeast squares support vector machineRadial basis functionMulticlass classificationRelevance vector machineArtificial intelligenceStructured support vector machineBasis (linear algebra)
Citations
984
FWCI
12.32
field-weighted impact
References
52
Percentile
99%
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Citations per year
References
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