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Visually distinct patterns with matching subband statistics

机译:视觉上截然不同的模式以及匹配的子带统计信息

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A commonly used representation of a visual pattern is a statistical distribution measured from the output of a bank of filters (Gaussian, Laplacian, Gabor, etc.). Both marginal and joint distributions of filter responses have been advocated and effectively used for a variety of vision tasks, including texture classification, texture synthesis, object detection, and image retrieval. This paper examines the ability of these representations to discriminate between an arbitrary pair of visual stimuli. Examples of patterns are derived that provably possess the same marginal and joint statistical properties, yet are "visually distinct." This is accomplished by showing sufficient conditions for matching the first k moments of the marginal distributions of a pair of images. Then, given a set of filters, we show how to match the marginal statistics of the subband images formed through convolution with the filter set. Next, joint statistics are examined and images with similar joint distributions of subband responses are shown. Finally, distinct periodic patterns are derived that possess approximately the same subband statistics for any arbitrary filter set.
机译:视觉模式的常用表示形式是从一组滤波器(高斯,拉普拉斯算子,Gabor等)的输出测得的统计分布。过滤器响应的边际和联合分布已被提倡并有效地用于各种视觉任务,包括纹理分类,纹理合成,对象检测和图像检索。本文研究了这些表示法区分任意一对视觉刺激的能力。推导了模式的示例,这些示例可证明具有相同的边际和联合统计属性,但在视觉上是不同的。这通过显示足够的条件来匹配一对图像的边缘分布的前k个矩来实现。然后,给定一组滤波器,我们展示如何将通过卷积形成的子带图像的边缘统计与滤波器组进行匹配。接下来,检查联合统计数据,并显示子带响应具有相似联合分布的图像。最后,得出不同周期模式,这些周期模式对于任何任意滤波器集都具有大致相同的子带统计量。

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