DocumentCode
3034567
Title
Implementation of Cluster analysis for Learning Style classification using brain Asymmetry
Author
Rashid, Nazre Abdul ; Taib, Mohd Nasir ; Lias, Sahrim ; Sulaiman, Norizam
fYear
2011
fDate
4-6 March 2011
Firstpage
310
Lastpage
313
Abstract
This study highlighted the use of Cluster analysis approach to classify the participants´ Learning Style (LS) based on the EEG brain asymmetry (BA) dataset. BA is importance to indicate brain activity in both right hemisphere (RH) and left hemisphere (LH). The RH and LH dominant states are closely related to human learning traits such as Attention, Perception and Emotions. In this research, we determine the LS of 41 participants using Kolb´s Learning Style Inventory (LSI). The LSI will group them into the LS of either Diverger, Assimilator, Converger or Accommodator. Simultaneously, their Electroencephalogram (EEG) is recorded from which the BA will be calculated using the Asymmetry Relation Ratio (ARR) formula. The Alpha and Beta Energy Spectral Density (ESD) are used as input for the ARR. Finally, the SPSS 2Steps cluster analysis will be deployed to classify the BA towards the corresponding LS. The result obtained shown that the classification of each LS is achieving 100% accuracy. We also managed to specify the significant state of LH or RH dominant for each LS.
Keywords
electroencephalography; medical signal processing; signal classification; statistical analysis; EEG; Kolb learning style inventory; accommodator; alpha energy spectral density; assimilator; asymmetry relation ratio; attention; beta energy spectral density; brain asymmetry; cluster analysis; converger; diverger; electroencephalogram; emotions; learning style classification; left hemisphere; perception; right hemisphere; Barium; Conferences; Education; Electroencephalography; Humans; Large scale integration; Signal processing; Brain Asymmetry; Classification; EEG; Kolb´s LSI; Learning Style;
fLanguage
English
Publisher
ieee
Conference_Titel
Signal Processing and its Applications (CSPA), 2011 IEEE 7th International Colloquium on
Conference_Location
Penang
Print_ISBN
978-1-61284-414-5
Type
conf
DOI
10.1109/CSPA.2011.5759893
Filename
5759893
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