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CORPUS-BASED GESTURE ANALYSIS: AN EXTENSION OF THE FORM DATASET FOR THE AUTOMATIC DETECTION OF PHASES IN A GESTURE
2007
International Journal of Semantic Computing (IJSC)
We present the results of using an extension of the FORM gesture dataset to predict the mid-level phenomenon of phase. We compare the results of human phase predition with automated prediction using machine-learning techniques. Specifically, we present the results of hidden-Markov model experiments using an extended version of the FORM data to predict phase labels. Additionally, we compare FORM to the currently most accepted method of data gathering in this field-motion capture-by comparing the
doi:10.1142/s1793351x07000287
fatcat:5nhsxlsg2faefkxe34py3tcrra