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<title>Support vector machines for hyperspectral remote sensing classification</title>

J. Anthony GualtieriRobert F. Cromp

Abstract

The Support Vector Machine provides a new way to design classification algorithms which learn from examples (supervised learning) and generalize when applied to new data. We demonstrate its success on a difficult classification problem from hyperspectral remote sensing, where we obtain performances of 96%, and 87% correct for a 4 class problem, and a 16 class problem respectively. These results are somewhat better than other recent result on the same data. A key feature of this classifier is its ability to use high-dimensional data without the usual recourse to a feature selection step to reduce the dimensionality of the data. For this application, this is important, as hyperspectral data consists of several hundred contiguous spectral channels for each exemplar. We provide an introduction to this new approach, and demonstrate its application to classification of an agriculture scene.

Remote-Sensing Image ClassificationSpectroscopy and Chemometric AnalysesFace and Expression RecognitionHyperspectral imagingComputer scienceSupport vector machineCurse of dimensionalityArtificial intelligenceClassifier (UML)Feature selectionPattern recognition (psychology)Remote sensing applicationFeature vector
Citations
421
FWCI
2.76
field-weighted impact
References
14
Percentile
91%
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References
On the mean accuracy of statistical pattern recognizers
IEEE Transactions on Information Theory · 1968 · 2,808 citations
Support-Vector Networks
Machine Learning · 1995 · 32,108 citations
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