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Perceptual image analysis

机译:感知图像分析

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摘要

The problem considered in this paper is one of extracting perceptually relevant information from groups of objects based on their descriptions. Object descriptions are qualitatively represented by feature-value vectors containing probe function valuescomputed in a manner similar to feature extraction in pattern classification theory. The work presented here is a generalisation of a solution to extracting perceptual information from images using near sets theory which provides a framework for measuring the perceptual nearness of objects. Further, near set theory is used to define a perception-based approach to image analysis that is inspired by traditional mathematical morphology and an application of this methodology is given by way of segmentationevaluation. The contribution of this article is the introduction of a new method of unsupervised segmentation evaluation that is base on human perception rather than on properties of ideal segmentations as is normally the case.
机译:本文考虑的问题是根据对象的描述从对象组中提取与感知相关的信息之一。对象描述由特征值向量定性表示,该特征值向量包含以类似于模式分类理论中特征提取的方式计算的探测函数值。本文介绍的工作是使用近集理论从图像中提取感知信息的解决方案的概括,该理论提供了一个用于测量对象感知接近性的框架。此外,近集理论用于定义基于感知的图像分析方法,该方法受传统数学形态学的启发,并通过分段评估给出了该方法的应用。本文的贡献是引入了一种新的无监督分割评估方法,该方法基于人的感知而不是通常情况下基于理想分割的属性。

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