Study on Representation Invariances of CNNs and Human Visual Information Processing Based on Data Augmentation.
CNNs
data augmentation
fMRI visual encoding model
human visual information processing
representation invariance
Journal
Brain sciences
ISSN: 2076-3425
Titre abrégé: Brain Sci
Pays: Switzerland
ID NLM: 101598646
Informations de publication
Date de publication:
02 Sep 2020
02 Sep 2020
Historique:
received:
29
06
2020
revised:
09
08
2020
accepted:
13
08
2020
entrez:
5
9
2020
pubmed:
6
9
2020
medline:
6
9
2020
Statut:
epublish
Résumé
Representation invariance plays a significant role in the performance of deep convolutional neural networks (CNNs) and human visual information processing in various complicated image-based tasks. However, there has been abounding confusion concerning the representation invariance mechanisms of the two sophisticated systems. To investigate their relationship under common conditions, we proposed a representation invariance analysis approach based on data augmentation technology. Firstly, the original image library was expanded by data augmentation. The representation invariances of CNNs and the ventral visual stream were then studied by comparing the similarities of the corresponding layer features of CNNs and the prediction performance of visual encoding models based on functional magnetic resonance imaging (fMRI) before and after data augmentation. Our experimental results suggest that the architecture of CNNs, combinations of convolutional and fully-connected layers, developed representation invariance of CNNs. Remarkably, we found representation invariance belongs to all successive stages of the ventral visual stream. Hence, the internal correlation between CNNs and the human visual system in representation invariance was revealed. Our study promotes the advancement of invariant representation of computer vision and deeper comprehension of the representation invariance mechanism of human visual information processing.
Identifiants
pubmed: 32887405
pii: brainsci10090602
doi: 10.3390/brainsci10090602
pmc: PMC7564968
pii:
doi:
Types de publication
Journal Article
Langues
eng
Subventions
Organisme : National Basic Research Program of China (973 Program)
ID : No. 2017YFB1002502
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