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首页> 外文期刊>IEEE Transactions on Systems, Man, and Cybernetics >A computational structure for preattentive perceptual organization: graphical enumeration and voting methods
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A computational structure for preattentive perceptual organization: graphical enumeration and voting methods

机译:专注性感知组织的计算结构:图形枚举和投票方法

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摘要

Presents an efficient computational structure for preattentive perceptual organization. By perceptual organization the authors refer to the ability of a vision system to organize features detected in images based on viewpoint consistency and other Gestaltic perceptual phenomena. This usually has two components, a primarily bottom up preattentive part and a top down attentive part, with meaningful features emerging in a synergistic fashion from the original set of (very) primitive features. In this work the authors advance a computational structure for preattentive perceptual organization. The authors propose a hierarchical approach, using voting methods to build associations through consensus and relational graphs to represent the organization at each level. The voting method is very efficient in terms of time and space and performs impressively for a wide range of organizations. The graphical representation allows the ready extraction of higher order features, or perceptual tokens, because the relational information is rendered explicit.
机译:为注意力集中的感知组织提供了一种有效的计算结构。通过感知组织,作者指的是视觉系统根据视点一致性和其他Gestaltic感知现象组织图像中检测到的特征的能力。它通常具有两个部分,一个主要是自下而上的注意部分和一个自上而下的注意部分,有意义的功能以协同方式从原始的(非常)原始功能集中出现。在这项工作中,作者提出了一种专心的感知组织的计算结构。作者提出了一种分级方法,即使用投票方法通过共识和关系图建立协会来代表各个级别的组织。投票方法在时间和空间方面非常有效,并且在众多组织中表现出色。图形表示允许随时提取高阶特征或感知标记,因为关系信息已明确显示。

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