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Biologically Inspired Saliency Map Model for Bottom-up Visual Attention

机译:自下而上的视觉注意的生物启发显着性图模型

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摘要

In this paper, we propose a new saliency map model to find a selective attention region in a static color image for human-like fast scene analysis. We consider the roles of cells in our visual receptor for edge detection and cone opponency, and also reflect the roles of the lateral geniculate nucleus to find a symmetrical property of an interesting object such as shape and pattern. Also, independent component analysis (ICA) is used to find a filter that can generate a salient region from feature maps constructed by edge, color opponency and symmetry information, which models the role of redundancy reduction in the visual cortex. Computer experimental results show that the proposed model successfully generates the plausible sequence of salient region.
机译:在本文中,我们提出了一种新的显着性图模型,用于在静态彩色图像中找到选择性关注区域,以进行类似于人的快速场景分析。我们考虑了细胞在我们的视觉感受器中的作用,以进行边缘检测和锥视,并也反映了外侧膝状核的作用,以找到有趣物体的对称特性,例如形状和图案。同样,独立成分分析(ICA)用于查找可以从由边缘,颜色对映性和对称性信息构成的特征图中生成显着区域的过滤器,该模型对冗余减少在视觉皮层中的作用进行了建模。计算机实验结果表明,所提出的模型成功地产生了显着区域的合理序列。

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