DocumentCode :
3580044
Title :
Geometry-based static hand gesture recognition using support vector machine
Author :
Trong-Nguyen Nguyen ; Duc-Hoang Vo ; Huu-Hung Huynh ; Meunier, Jean
Author_Institution :
Dept. of Comput. Sci., Univ. of Sci. & Technol., Danang, Vietnam
fYear :
2014
Firstpage :
769
Lastpage :
774
Abstract :
Static hand gesture recognition plays an important role in developing a system for human-computer interaction. Besides, such systems can be also used by the deaf community in order to convey information through gestures instead of words. A vision-based processing of hand gesture recognition consists of three main stages: preprocessing, feature extraction and identification. In this paper, the first stage involves following two sub-stages: segmentation which locates hand using color information and extracts its silhouette; separation that separates arm, the part with less information, based on geometrical properties. In the second stage, features which extracted from hand-without-arm are general (ratio of width to height, wrist angle and number of fingers) and detailed (calculated based on fingertips and cross sections) characteristics. Finally, support vector machine model with "max-wins" voting strategy is used to classify the hand gestures. The experiment is conducted on color image dataset of Polish Ministry of Science and Higher Education, with 89.5% classification accuracy.
Keywords :
feature extraction; geometry; gesture recognition; human computer interaction; image colour analysis; image segmentation; support vector machines; Polish Ministry of Science and Higher Education; color information; deaf community; feature extraction; geometrical properties; geometry-based static hand gesture recognition; hand-without-arm; human-computer interaction; identification; max-wins voting strategy; preprocessing; segmentation; silhouett extraction; support vector machine; support vector machine model; vision-based processing; Feature extraction; Gesture recognition; Image color analysis; Skin; Thumb; Wrist; cross section; fingertip; geometrical property; hand gesture; skin filter; wrist;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Control Automation Robotics & Vision (ICARCV), 2014 13th International Conference on
Type :
conf
DOI :
10.1109/ICARCV.2014.7064401
Filename :
7064401
Link To Document :
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