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Complexity, confusion, and perceptual grouping. Part I: the curve-like representation

机译:复杂性,混乱和感性分组。第一部分:曲线表示

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Intermediate-level vision is central to form perception, and we outline an approach to intermediate-level segmentation based on complexity analysis. We focus on the problem of edge detection, and how edge elements might be grouped together. This is typical because, once the local structure is established, the transition to global structure must be effected and context is critical. To illustrate, consider an edge element inferred from an unknown image. Is this local edge part of a long curve, or part of a texture? If the former, which is the next element along the curve? If the latter, is the texture like a hair pattern, in which nearby elements are oriented similarly, or like a spaghetti pattern, in which they are not? Are there other natural possibilities? Such questions raise issues of dimensionality, since curves are 1-D and textures are 2-D, and also of complexity. Working toward a measure of representational complexity for vision, in this first of a pair of papers we develop a foundation based on geometric measure theory. The main result concerns the distribution of tangents in space and in orientation, which serves as a formal basis for the concrete measure of representational complexity developed in the companion paper.
机译:中级视觉是形成感知的核心,我们概述了基于复杂度分析的中级细分方法。我们专注于边缘检测的问题,以及如何将边缘元素组合在一起。这是典型的原因,因为一旦建立了本地结构,就必须实现向全局结构的过渡,并且上下文至关重要。为了说明,考虑从未知图像推断出的边缘元素。该局部边缘是长曲线的一部分还是纹理的一部分?如果是前者,则曲线的下一个元素是哪个?如果是后者,纹理是像头发图案(附近元素的朝向类似)还是像意大利面条图案(而不是意大利面条的图案)?还有其他自然的可能性吗?这些问题引起了尺寸问题,因为曲线是一维的,纹理是二维的,而且也很复杂。努力衡量视觉的表示复杂性,在这两篇论文的第一篇中,我们建立了基于几何度量理论的基础。主要结果涉及切线在空间和方向上的分布,这是伴随论文中提出的表示复杂性的具体度量的正式基础。

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