BRAIN. Broad Research in Artificial Intelligence and Neuroscience

Volume: 7 | Issue: 1 |

Measuring Customer Behavior with Deep Convolutional Neural Networks

Published March 14, 2016
Cite
Veaceslav Albu - Institute of Mathematics and Computer Science (MD),

Abstract

In this paper, we propose a neural network model for human emotion and gesture classification. We demonstrate that the proposed architecture represents an effective tool for real-time processing of customer's behavior for distributed on-land systems, such as information kiosks, automated cashiers and ATMs. The proposed approach combines most recent biometric techniques with the neural network approach for real-time emotion and behavioral analysis. In the series of experiments, emotions of human subjects were recorded, recognized, and analyzed to give statistical feedback of the overall emotions of a number of targets within a certain time frame. The result of the study allows automatic tracking of user's behavior based on a limited set of observations.


Academic discipline and sub-disciplines: Cognitive Science, Psychology

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