Publication | Open Access
Human Behavior and Hand Gesture Classification for Smart Human-robot Interaction
37
Citations
17
References
2017
Year
EngineeringMachine LearningHuman Pose EstimationActivity RecognitionWearable TechnologyIntelligent SystemsHuman Behavior RecognitionKinesiologyData SciencePattern RecognitionRobot LearningGesture ProcessingIntuitive Human-robot InteractionMultimodal Human Computer InterfaceHealth SciencesManmachine InteractionAssistive TechnologyHidden Markov ModelsHuman-robot InteractionComputer VisionGesture RecognitionAutomationHuman MovementRoboticsHand Gesture Classification
This paper presents an intuitive human-robot interaction (HRI) framework for gesture and human behavior recognition. It relies on a vision-based system as interaction technology to classify gestures and a 3-axis accelerometer for behavior classification (stand, walking, etc.). An intelligent system integrates static gesture recognition recurring to artificial neural networks (ANNs) and dynamic gesture recognition using hidden Markov models (HMM). Results show a recognition rate of 95% for a library of 22 gestures and 97% for a library of 6 behaviors. Experiments show a robot controlled using gestures in a HRI process.
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