Bottom-up caution information extraction method
A bottom-up, information-attentive technology, applied in psychological devices, instruments, character and pattern recognition, etc., can solve problems that cannot be widely used to extract various types of features
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[0052] Example 1: According to visual saliency, based on local complexity and primary visual features, a new bottom-up attention information extraction algorithm LOCEV (Integration of local complexity and early visual features) is proposed. Compared with the prior art, the present invention has the following prominent features: first, the LOCEV algorithm is based on the local information of the image, and uses a circular sampling window, so the global transformation of the image, such as rotation, scaling, etc. Note that the message has little effect. Second, although the function used to define the local complexity does not have translation invariance, the LOCEV algorithm takes the position of the pixel in the image as a variable, so that the algorithm has translation invariance. Third, the LOCEV algorithm replaces the saliency of points with the saliency of regions, and makes the extracted attention information less susceptible to noise by measuring the statistical dissimila...
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