Publication | Closed Access
Dynamic Hand Gesture Recognition Based on 3D Convolutional Neural Network Models
45
Citations
13
References
2019
Year
Unknown Venue
EngineeringMachine LearningHuman Pose Estimation3D Pose EstimationWearable TechnologyHand GestureKinesiologyImage AnalysisPattern RecognitionRobot LearningMultimodal Human Computer InterfaceMachine VisionAssistive TechnologyComputer ScienceDeep Learning3D Object RecognitionGesture RecognitionComputer VisionSimplest Laptop CameraJester DatasetHuman-computer Interaction
Hand gesture is a natural communication method which could be used to create a more convenient interface for human-robot interaction. In this study, we use the simplest laptop camera as an input sensor. We designed a 3D hand gesture recognition model. The model is trained with the Jester dataset. After being trained about one day in a MacBook Pro (i5 2.3GHz), the model reached an average accuracy of 90%. We built a web application that implements the hand gesture recognition system and provides the recognition service to users.
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