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A perceptually based comparison of image similarity metrics

机译:基于感知的图像相似性指标比较

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The assessment of how well one image matches another forms a critical component both of models of human visual processing and of many image analysis systems. Two of the most commonly used norms for quantifying image similarity are L1 and L2, which are specific instances of the Minkowski metric. However, there is often not a principled reason for selecting one norm over the other. One way to address this problem is by examining whether one metric, better than the other, captures the perceptual notion of image similarity. This can be used to derive inferences regarding similarity criteria the human visual system uses, as well as to evaluate and design metrics for use in image-analysis applications. With this goal, we examined perceptual preferences for images retrieved on the basis of the L1 versus the L2 norm. These images were either small fragments without recognizable content, or larger patterns with recognizable content created by vector quantization. In both conditions the participants showed a small but consistent preference for images matched with the L1 metric. These results suggest that, in the domain of natural images of the kind we have used, the L1 metric may better capture human notions of image similarity.
机译:评估一幅图像与另一幅图像的匹配程度是人类视觉处理模型和许多图像分析系统的关键组成部分。 L1和L2是量化图像相似性的两个最常用准则,它们是Minkowski度量的特定实例。但是,通常没有原则上的理由选择一个规范。解决此问题的一种方法是检查一种指标是否优于另一种指标,以捕捉图像相似性的感知概念。这可用于得出有关人类视觉系统使用的相似性标准的推论,以及评估和设计用于图像分析应用程序的度量。为了这个目标,我们研究了基于L1对L2规范检索的图像的感知偏好。这些图像要么是没有可识别内容的小碎片,要么是由矢量量化创建的具有可识别内容的大图案。在这两种情况下,参与者对与L1指标匹配的图像都表现出较小但一致的偏好。这些结果表明,在我们使用的自然图像领域中,L1度量可以更好地捕捉人类图像相似性的概念。

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