Proceedings of the 2014 IEEE Emerging Technology and Factory Automation (ETFA) 2014
DOI: 10.1109/etfa.2014.7005139
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Feature selection for hand pose recognition in human-robot object exchange scenario

Abstract: Vision-based hand gesture recognition relies on the extraction of features describing the hand, and the appropriate set of features is usually selected in an empirical manner. We propose in this article a systematic selection of the best features to be considered. An iterative sequential forward feature selection (SFS) approach is proposed to combine the features with the highest recognition rate considering the Gaussian Mixture Modelling within the Expectation Maximization algorithm as classification techniqu… Show more

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Cited by 2 publications
(3 citation statements)
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References 30 publications
(36 reference statements)
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“…The resulting descriptor set always improves the quality of the classification comparing to the best descriptor by its own. This selection techniques can be extended to different datasets and contexts as proved within this paper and previous ones [34][35][36].…”
Section: Discussionmentioning
confidence: 83%
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“…The resulting descriptor set always improves the quality of the classification comparing to the best descriptor by its own. This selection techniques can be extended to different datasets and contexts as proved within this paper and previous ones [34][35][36].…”
Section: Discussionmentioning
confidence: 83%
“…As stated before, the crux of the matter in this paper relies on how to select the different visual features to improve the individual score of each descriptor. Some authors have used different techniques to do this [34,35]. Feature Selection is a machine learning technique that is used in many fields and usually improves the accuracy of the model.…”
Section: Feature Selectionmentioning
confidence: 99%
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