DocumentCode :
1590204
Title :
Self-organising map representations of greyscale images reflect human similarity judgements
Author :
Gale, Tim M. ; Davey, Neil ; Laws, Keith R. ; Loomes, Martin ; Frank, Ray J.
Author_Institution :
Hertfordshire Univ., Herts, UK
Volume :
1
fYear :
2004
Firstpage :
66
Abstract :
In this study we assessed a Kohonen network´s ability to represent visual similarity between grayscale pictures and whether these representations were associated with human ratings of perceived similarity. We trained a Kohonen network (SOM) with 370 standardized grayscale pictures deriving from 70 basic level object categories (e.g. dog, apple, chair, etc.) and measured, for each category, the average Euclidean distance of the SOM output patterns to provide an index of the visual similarity between exemplars of the same basic level category. We then asked human subjects to provide visual similarity ratings for the same categories of stimuli and compared these with the measures extracted from the SOM. The significant correlation between the SOM and human measures suggests that a SOM may be a useful way of modeling certain stages of human visual categorization. Interestingly, the human ratings showed category-specific differences in the level of similarity ascribed to living and nonliving things. However, this pattern was not reflected in the SOM representations of the same stimuli. This has important implications for theories of object recognition and, specifically, our understanding of category-specific naming impairments.
Keywords :
object recognition; self-organising feature maps; Euclidean distance; Kohonen network; category-specific differences; category-specific disorder; greyscale images; human ratings; human similarity; human visual categorization; self-organising map representations; visual object recognition; visual similarity; Anthropometry; Biological neural networks; Computer science; Euclidean distance; Fellows; Gray-scale; Humans; Object recognition; Organizing; Predictive models;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Intelligent Systems, 2004. Proceedings. 2004 2nd International IEEE Conference
Print_ISBN :
0-7803-8278-1
Type :
conf
DOI :
10.1109/IS.2004.1344638
Filename :
1344638
Link To Document :
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