On the use of marginal statistics of subband images

J. Gluckman
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引用次数: 7

Abstract

A commonly used representation of a visual pattern is the set of marginal probability distributions of the output of a bank of filters (Gaussian, Laplacian, Gabor etc.). This representation has been used effectively for a variety of vision tasks including texture classification, texture synthesis, object detection and image retrieval. We examine the ability of this representation to discriminate between an arbitrary pair of visual stimuli. Examples of patterns are derived that provably possess the same marginal statistical properties, yet are "visually distinct." These results suggest the need for either employing a large and diverse filter bank or incorporating joint statistics in order to represent a large class of visual patterns.
子带图像边缘统计的应用
视觉模式的常用表示是一组滤波器(高斯、拉普拉斯、Gabor等)输出的边际概率分布的集合。该表示已被有效地用于多种视觉任务,包括纹理分类、纹理合成、目标检测和图像检索。我们检验这种表征区分任意一对视觉刺激的能力。模式的例子可以证明具有相同的边际统计特性,但在“视觉上是不同的”。这些结果表明,需要采用一个大的和多样化的过滤器组或合并联合统计,以表示一个大类的视觉模式。
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