DocumentCode :
3264028
Title :
Classification and Visualization of Multiclass fMRI Data Using Supervised Self-Organizing Maps
Author :
Haufeld, Lars ; Santoro, Roberta ; Valente, Giancarlo ; Formisano, Elia
Author_Institution :
Dept. of Cognitive Neurosci., Maastricht Univ., Maastricht, Netherlands
fYear :
2012
fDate :
2-4 July 2012
Firstpage :
65
Lastpage :
68
Abstract :
So far, most fMRI studies that analyzed voxel activity patterns of more than two conditions transformed the multiclass problem into a series of binary problems. Furthermore, visualizations of the topology of underlying representations are usually not presented. Here, we explore the feasibility of different types of supervised self-organizing maps (SSOM) to decode and visualize voxel patterns of fMRI datasets consisting of multiple conditions. Our results suggest that - compared to commonly applied classification approaches - SSOMs are well suited when activity patterns consist of a small number of features (e.g. as in searchlight- or region of interest-based approaches). In addition, we demonstrate the utility of using SOM grids for intuitive and exploratory visualization of topological relations among classes of fMRI activity patterns.
Keywords :
biomedical MRI; data visualisation; image classification; medical image processing; self-organising feature maps; SSOM; binary problems; fMRI activity patterns; functional magnetic resonance imaging; multiclass fMRI data classification; multiclass fMRI data visualization; multiclass problem; supervised self-organizing maps; topological relations; visualize voxel pattern decoding; voxel activity patterns; Classification algorithms; Signal to noise ratio; Stability analysis; Support vector machines; Topology; Training; Vectors; decoding; fMRI; multiclass classification; self-organizing maps;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Pattern Recognition in NeuroImaging (PRNI), 2012 International Workshop on
Conference_Location :
London
Print_ISBN :
978-1-4673-2182-2
Type :
conf
DOI :
10.1109/PRNI.2012.34
Filename :
6295929
Link To Document :
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