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AUTOMATIC GAIN CONTROL NETWORKS FOR MULTIDIMENSIONAL VISUAL ADAPTATION

机译:用于多维视觉适应的自动增益控制网络

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Processing and analysis of images are implemented in the multidimensional space of visual information representation. This space includes the well investigated dimensions of intensity, color and spatio-temporal frequency. There are, however, additional less investigated dimensions such as curvature, size and depth (for example - from binocular disparity). Along these dimensions, the human visual system (HVS) enhances and emphasizes important image attributes by adaptation and nonlinear filtering. It is interesting and possible to emulate the visual system processing of images along these dimensions, in order to achieve intelligent image processing and computer vision. Sparsely connected, recurrent adaptive sensory neural network (NN), incorporating non-linear interactions in the feedback loops, are presented. Such generic NN exhibit Automatic Gain Control (AGC) model of processing along the visual dimensions. The results are compared with those of psychophysical experiments exhibiting good reproduction of visual illusions.
机译:图像的处理和分析在视觉信息表示的多维空间中实现。该空间包括强度,颜色和时空时间频率的井的研究尺寸。然而,存在额外的较少调查的尺寸,例如曲率,尺寸和深度(例如 - 从双目视差)。沿着这些尺寸,人类视觉系统(HVS)通过适应和非线性滤波增强和强调重要的图像属性。可以沿着这些维度模拟图像的视觉系统处理是有趣的,以实现智能图像处理和计算机视觉。呈现稀疏连接的反复间自适应感官神经网络(NN),包括在反馈环中的非线性相互作用。这种通用NN沿着视尺寸展示了自动增益控制(AGC)处理模型。将结果与表现出良好的视觉幻想繁殖的心理物理实验进行比较。

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