A New Approach For Hand Gestures Recognition Based on Depth Map Captured by RGB-D Camera

Abstract This paper introduces a new approach for hand gesture recognition based on depth Map captured by an RGB-D Kinect camera. Although this camera provides two types of information "Depth Map" and "RGB Image", only the depth data information is used to analyze and recognize the hand gestures. Given the complexity of this task, a new method based on edge detection is proposed to eliminate the noise and segment the hand. Moreover, new descriptors are introduce to model the hand gesture. These features are invariant to scale, rotation and translation. Our approach is applied on French sign language alphabet to show its effectiveness and evaluate the robustness of the proposed descriptors. The experimental results clearly show that the proposed system is very satisfactory as it to recognizes the French alphabet sign with an accuracy of more than 93%. Our approach is also applied to a public dataset in order to be compared in the existing studies. The results prove that our system can outperform previous methods using the same dataset.

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Principais autores: Ben Jmaa,Ahmed, Mahdi,Walid, Ben Jemaa,Yousra, Ben Hamadou,Abdelmajid
Formato: Digital revista
Idioma:English
Publicado em: Instituto Politécnico Nacional, Centro de Investigación en Computación 2016
Acesso em linha:http://www.scielo.org.mx/scielo.php?script=sci_arttext&pid=S1405-55462016000400709
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