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Modulation comparison over OFDM channel for facial expression recognition

conference contribution
posted on 2024-10-31, 09:28 authored by Seyed Lajevardi, Khaizuran Abdullah, Zahir Hussain
Facial expression recognition (FER) has attracted significant interest in the scientific community due to its importance for human centred interfaces. This study compare the effect of different modulation for person-independent facial expression recognition from face images. The image is transmitted based on OFDM channel. Then, The higher order local autocorrelation (HLAC) is used for feature extraction and the features are classified using the naive Bayesian (NB) classifier. Six different facial expressions are considered. Experiments carried out on Cohn-Kanade database shows comparable performance between different modulation in received images based on classification accuracy. BER performance is also included to observe when FER is applied to an OFDM channel in two different QAM modulations, 4- and 16-QAMs. It is shown that the empirical error performances obtain about similar results as compared to the theoretical error performances for both modulations.

History

Start page

137

End page

140

Total pages

4

Outlet

The 2009 International Conference on Advanced Technologies for Communications

Editors

Ngoc-Mai Nguyen, Van-Mien Nguyen, Van-Huan Tran, and Xuan-Tu Tran

Name of conference

2009 International Conference on Advanced Technologies for Communications (ATC '09)

Publisher

IEEE

Place published

Vietnam

Start date

2009-10-12

End date

2009-10-14

Language

English

Copyright

©2009 IEEE.

Former Identifier

2006018563

Esploro creation date

2020-06-22

Fedora creation date

2011-06-10

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