DocumentCode :
1624138
Title :
Predicting the imagined contents using brain activation
Author :
Miyapuram, Krishna Prasad ; Schultz, Wolfram ; Tobler, Philippe N.
Author_Institution :
Cognitive Sci. Program, IIT Gandhinagar, Ahmedabad, India
fYear :
2013
Firstpage :
1
Lastpage :
3
Abstract :
Mental imagery refers to percept-like experiences in the absence of sensory input. Brain imaging studies suggest common, modality-specific, neural correlates imagery and perception. We associated abstract visual stimuli with either visually presented or imagined monetary rewards and scrambled pictures. Brain images for a group of 12 participants were collected using functional magnetic resonance imaging. Statistical analysis showed that human midbrain regions were activated irrespective of the monetary rewards being imagined or visually present. A support vector machine trained on the midbrain activation patterns to the visually presented rewards predicted with 75% accuracy whether the participants imagined the monetary reward or the scrambled picture during imagination trials. Training samples were drawn from visually presented trials and classification accuracy was assessed for imagination trials. These results suggest the use of machine learning technique for classification of underlying cognitive states from brain imaging data.
Keywords :
biomedical MRI; brain; learning (artificial intelligence); medical image processing; statistical analysis; support vector machines; abstract visual stimuli; brain activation; brain imaging data; cognitive state classification; functional magnetic resonance imaging; human midbrain regions; imagination trials; imagined content prediction; imagined monetary rewards; machine learning technique; mental imagery; midbrain activation patterns; scrambled pictures; sensory input; statistical analysis; support vector machine; training samples; Abstracts; Brain; Magnetic resonance imaging; Support vector machines; Training; Visualization; brain imaging; brain reading; machine learning; mental imagery; support vector machine;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Computer Vision, Pattern Recognition, Image Processing and Graphics (NCVPRIPG), 2013 Fourth National Conference on
Conference_Location :
Jodhpur
Print_ISBN :
978-1-4799-1586-6
Type :
conf
DOI :
10.1109/NCVPRIPG.2013.6776230
Filename :
6776230
Link To Document :
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