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CEC
2010
IEEE

Evolutionary automated recognition and characterization of an individual's artistic style

14 years 1 months ago
Evolutionary automated recognition and characterization of an individual's artistic style
In this paper, we introduce a new image database, consisting of examples of artists' work. Successful classification of this database suggests the capacity to automatically recognize an artist's aesthetic style. We utilize the notion of Transformbased Evolvable Features as a means of evolving features on the space, these features are then evaluated through a standard classifier. We obtain recognition rates for our six artistic styles -- relative to images by the other artists and images randomly downloaded from a search engine -- of a mean true positive rate of 0.946 and a mean false positive rate of 0.017. Distance metrics designed to indicate the similarity between an arbitrary greyscale image and one of the artistic styles are created from the evolved features. These metrics are capable of ranking control images so that artist-drawn instances appear at the front of the list. We provide evidence that other images ranked as similar by the metric correspond to na
Taras Kowaliw, Jon McCormack, Alan Dorin
Added 08 Nov 2010
Updated 08 Nov 2010
Type Conference
Year 2010
Where CEC
Authors Taras Kowaliw, Jon McCormack, Alan Dorin
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