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Local image statistics: maximum-entropy constructions and perceptual salience

机译:本地图像统计:最大熵结构和感知凸显

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摘要

The space of visual signals is high-dimensional and natural visual images have a highly complex statistical structure. While many studies suggest that only a limited number of image statistics are used for perceptual judgments, a full understanding of visual function requires analysis not only of the impact of individual image statistics, but also, how they interact. In natural images, these statistical elements (luminance distributions, correlations of low and high order, edges, occlusions, etc.) are intermixed, and their effects are difficult to disentangle. Thus, there is a need for construction of stimuli in which one or more statistical elements are introduced in a controlled fashion, so that their individual and joint contributions can be analyzed. With this as motivation, we present algorithms to construct synthetic images in which local image statistics—including luminance distributions, pair-wise correlations, and higher-order correlations—are explicitly specified and all other statistics are determined implicitly by maximum-entropy. We then apply this approach to measure the sensitivity of the human visual system to local image statistics and to sample their interactions.
机译:视觉信号的空间是高维,自然的视觉图像具有高度复杂的统计结构。虽然许多研究表明,只有有限数量的图像统计用于感知判断,但完全了解视觉函数不仅需要分析个体图像统计的影响,还需要如何互动。在自然图像中,这些统计元素(亮度分布,低阶,高阶,边缘,闭塞等)的混合都是混合的,并且它们的效果难以解开。因此,需要施用刺激,其中以受控的方式引入一个或多个统计元件,从而可以分析它们的个体和联合贡献。随着这种激励,我们提供了构建综合图像的算法,其中局部图像统计包括亮度分布,配对相关性和高阶相关性 - 被明确地指定,并且通过最大熵隐式确定所有其他统计数据。然后,我们应用这种方法来测量人类视觉系统对局部图像统计的敏感性,并采样它们的交互。

著录项

  • 期刊名称 other
  • 作者单位
  • 年(卷),期 -1(29),7
  • 年度 -1
  • 页码 1313–1345
  • 总页数 62
  • 原文格式 PDF
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