Finger identification and hand posture recognition for human–robot interaction
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摘要
Natural and friendly interface is critical for the development of service robots. Gesture-based interface offers a way to enable untrained users to interact with robots more easily and efficiently. In this paper, we present a posture recognition system implemented on a real humanoid service robot. The system applies RCE neural network based color segmentation algorithm to separate hand images from complex backgrounds. The topological features of the hand are then extracted from the silhouette of the segmented hand region. Based on the analysis of these simple but distinctive features, hand postures are identified accurately. Experimental results on gesture-based robot programming demonstrated the effectiveness and robustness of the system.
论文关键词:Hand finger identification,Hand posture recognition,Hand image segmentation,Human–robot interaction,Robot programming
论文评审过程:Received 4 March 2006, Accepted 16 August 2006, Available online 4 October 2006.
论文官网地址:https://doi.org/10.1016/j.imavis.2006.08.003