A model of saliency-based visual attention for rapid scene analysis

Laurent Itti(California Institute of Technology), Christof Koch(California Institute of Technology), Ernst Niebur(Kennedy Krieger Institute)
IEEE Transactions on Pattern Analysis and Machine Intelligence
January 1, 1998
Cited by 11,292

Abstract

A visual attention system, inspired by the behavior and the neuronal architecture of the early primate visual system, is presented. Multiscale image features are combined into a single topographical saliency map. A dynamical neural network then selects attended locations in order of decreasing saliency. The system breaks down the complex problem of scene understanding by rapidly selecting, in a computationally efficient manner, conspicuous locations to be analyzed in detail.


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