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    Gesture Recognition using Dynamic Movement Primitives

    , M.Sc. Thesis Sharif University of Technology Asemanrafat, Amirreza (Author) ; Taheri, Alireza (Supervisor) ; Meghdari, Ali (Supervisor)
    Abstract
    In this thesis, we introduced a new augmentation method that takes into account the inherent properties of trajectory data and regenerates valid trajectories while preserving all the distinctive features of the main path. Our method uses Dynamic movement primitives (DMP) formulation, which is widely used in path generation in robotics, to manipulate the data in a kinematically accurate way. We implemented the presented method on our Iranian sign language data set by augmenting each group in our data set with a proper form of our DMP data augmentation method. After training our augmented data set with two deep classification models, We achieved 82.95 percent maximum and 77.61 percent mean...