Automatic morphological attribute profiles

Gabriele Cavallaro, M. Mura, N. Falco, J. Benediktsson
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引用次数: 1

Abstract

Attribute profiles (APs) have increasingly been receiving more attention over the last years, as they are able to extract and model spatial information that is useful for the analysis of remote sensing images of very high spatial resolution (VHR). However, one of the major issues in employing APs is the choice of a proper range of thresholds, able to provide a representative and non-redundant multi-level image decomposition. This paper presents a novel method for the automatic selection of adequate thresholds to compute the AP. A new concept of cumulative function, which can be seen as an extension of the basic notion of granulometry, is introduced. In particular, different information on the spatial context is achieved according to the measure used for computing the cumulative function, which is computed on the AP composed by considering all possible values of the attribute. The proposed approach aims at selecting the set of thresholds that provides the best approximation of the resulting cumulative function based on the chosen measure. Experimental analysis carried out on a very high resolution image shows the effectiveness of the presented strategy in providing a set of thresholds able to retain the salient spatial structures in the scene.
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自动形态属性配置文件
属性剖面图(ap)由于能够提取和模拟空间信息,对非常高空间分辨率(VHR)遥感图像的分析非常有用,近年来受到越来越多的关注。然而,使用ap的主要问题之一是选择合适的阈值范围,能够提供具有代表性和非冗余的多级图像分解。本文提出了一种自动选择适当阈值来计算AP的新方法。引入了累积函数的新概念,该概念可以看作是粒度学基本概念的扩展。特别是,根据计算累积函数所使用的度量来获得关于空间上下文的不同信息,累积函数是在考虑属性的所有可能值所组成的AP上计算的。所提出的方法旨在选择一组阈值,这些阈值提供了基于所选测量的结果累积函数的最佳近似值。在非常高分辨率的图像上进行的实验分析表明,所提出的策略在提供一组能够保留场景中显著空间结构的阈值方面是有效的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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