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Weight estimation for feature integration and saliency region extraction in modeling computation of visual selective attention |
Liu Qiong, Qin Shi-Yin |
School of Automation Science and Electrical Engineering,Beihang University,Beijing 100191 |
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Abstract According to the different importance of features during the feature integration process in modeling computation of visual selective attention, a method of weight estimation for different features is presented to highlight the acceptable saliency region of image in the bottom-up computational model. Firstly, the color, orientation and intensity features are extracted by mimicking the function of feature sensitive neurons of human primary visual cortex. Then the importance of each feature is estimated according to the generalized Gaussian distribution and the variance of its feature map. Finally, the saliency regions are extracted by weighted integration and normalization. The experimental results demonstrate that the proposed method outperforms traditional methods to meet the requirement of observers.
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Received: 23 April 2010
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