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Efficient visual system processing of spatial and luminance statistics in representational and non-representational art

机译:代表性和非代表艺术中空间和亮度统计的高效视觉系统处理

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An emerging body of research suggests that artists consistently seek modes of representation that are efficiently processed by the human visual system, and that these shared properties could leave statistical signatures. In earlier work, we showed evidence that perceived similarity of representational art could be predicted using intensity statistics to which the early visual system is attuned, though semantic content was also found to be an important factor. Here we report two studies that examine the visual perception of similarity. We test a collection of non-representational art, which we argue possesses useful statistical and semantic properties, in terms of the relationship between image statistics and basic perceptual responses. We find two simple statistics-both expressed as single values-that predict nearly a third of the overall variance in similarity judgments of abstract art. An efficient visual system could make a quick and reasonable guess as to the relationship of a given image to others (i.e., its context) by extracting these basic statistics early in the visual stream, and this may hold for natural scenes as well as art. But a major component of many types of art is representational content. In a second study, we present findings related to efficient representation of natural scene luminances in landscapes by a wellknown painter. We show empirically that elements of contemporary approaches to high-dynamic range tone-mapping-which are themselves deeply rooted in an understanding of early visual system codingare present in the way Vincent Van Gogh transforms scene luminances into painting luminances. We argue that global tone mapping functions are a useful descriptor of an artist's perceptual goals with respect to global illumination and we present evidence that mapping the scene to a painting with different implied lighting properties produces a less efficient mapping. Together, these studies suggest that statistical regularities in art can shed light on visual processing.
机译:一个新兴的研究体系表明,艺术家始终如一地寻求人类视觉系统有效处理的表示模式,并且这些共享属性可以留下统计签名。在早期的工作中,我们显示了证据表明,可以使用早期视觉系统的强度统计来预测代表艺术的感知相似性,但也发现语义内容是一个重要因素。在这里,我们报告了两项研究,检查了对相似性的视觉感知。我们测试了一系列非代表性的艺术,我们认为在图像统计和基本感知响应之间的关系方面具有有用的统计和语义特性。我们发现两个简单的统计数据 - 都表示为单个值 - 预测抽象艺术的相似性判断的近三分之一。有效的视觉系统可以通过提取在视觉流中提取这些基本统计数据来快速合理地猜测给定图像(即其上下文),这可能适用于自然场景以及艺术。但许多类型的艺术的主要组成部分是代表性内容。在第二次研究中,我们展示了一个有关众所周知的画家在景观中的自然场景亮度的有效代表的结果。我们凭经验展示了当代对高动态范围音调的途径的元素 - 他们自己深深植根于文森克·戈政方式中存在的早期视觉系统编码公路,其自由于文森特梵高将场景亮度转化为绘画亮度。我们认为全局色调映射函数是艺术家关于全局照明的感知目标的有用描述符,并且我们提出了用不同隐含的暗示照明特性将场景映射到绘画的证据,产生了较低的效率映射。这些研究表明,艺术中的统计规律可以在视觉处理中脱光。

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