HAND GESTURE PHASE CLASSIFICATION USING MULTILAYER PERCEPTRON
Journal: International Education and Research Journal (Vol.3, No. 5)Publication Date: 2017-05-15
Authors : Ashutosh Mohite S. M. Ghosh;
Page : 105-106
Keywords : Multilayer Perceptron; Hand Gesture; Human-Computer Interaction (HCI); Non Verbal Communication;
Abstract
Symbolic and Sign language is a most important technique for the non-verbal communication which uses the gestures i.e. the movement of the body part which carry some information to perform the desired goal. Gesture is a meaningful statements or information given by the human beings to accomplish the specific task. This paper presents an approach for Human-Computer Interaction (HCI) where we classify the different hand gesture phases using the movement of the hand as the input device. The main objective of this paper is to make a robust model to identify the different hand gesture phases using Multilayer Perceptron (MLP) with high accuracy.The MLP gives better classification accuracy as 83.95% with learning rate 0.6 and hidden layer 3.
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