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towards a professional gesture recognition with rgb d from smartphone

Authors: Pablo Vicente Monivar; Sotiris Manitsaris; Alina Glushkova;

towards a professional gesture recognition with rgb d from smartphone

Abstract

Abstract. The goal of this work is to build the basis for a smartphone application that provides functionalities for recording human motion data, train machine learning algorithms and recognize professional gestures. First, we take advantage of the new mobile phone cameras, either infrared or stereoscopic, to record RGB-D data. Then, a bottom-up pose estimation algorithm based on Deep Learning extracts the 2D human skeleton and exports the 3rd dimension using the depth. Finally, we use a gesture recognition engine, which is based on K-means and Hidden Markov Models (HMMs). The performance of the machine learning algorithm has been tested with professional gestures using a silk-weaving and a TV-assembly datasets.

Keywords

gesture recognition, pose estimation, smartphone, depth map, Hidden Markov Models

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