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From pixels to grixels: a unified functional model for geographic-object-based image analysis

机译:从像素到像素:用于基于地理对象的图像分析的统一功能模型

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摘要

Geographic Object-Based Image Analysis (GEOBIA) aims to better exploit earth remotely sensed imagery by focusing on building image-objects resembling the real-world objects instead of using raw pixels as basis for classification. Due to the recentness of the field, concurrent and sometimes competing methods, terminology, and theoretical approaches are evolving. This risk of babelization has been identified as one of the central threats for GEOBIA, as it could hinder scientific discourse and the development of a generallyudaccepted theoretical framework. This paper contributes to the definition of such ontology by proposing a general functional model of the remote sensing image analysis. The model compartmentalizes the remote sensing process into six stages: (i) sensing the earth surface in order to derive pixels which represent incomplete data about real-world objects; (ii) pre-processing the pixels in order to removeudatmospheric, geometric, and radiometric distortions; (iii) grouping the pre-processed pixels (prixels) to produce image-objects (grouped pixels or grixels) at one or several scales; (iv) feature analysis to examine and measure relevant spectral, geometric and contextual properties and relationships of grixels in order to produce feature vectors (vexcels) and decision rules for subsequent discrimination;ud(v) assignation of grixels to pre-defined qualitative or quantitative land cover classes, thus producing pre-objects (preliminary objects); and (vi) post-processing to refine the previous results and output the geographic objects of interest. The grouping stage may be analized from two different perpectives: (i) discrete segmentation which produces well-defined image-objects, and (ii) continuous segmentation which produces image-fields with indeterminate boundaries. The proposed generic model is applied to analyze two specific GEOBIA software implementations. A functional decomposition of discrete segmentation is also discussed and tested. It is concluded that the proposed framework enhances the evaluation and comparison of different GEOBIA approaches and by this is helping to establish a generally accepted ontology.
机译:基于地理对象的图像分析(GEOBIA)旨在通过专注于构建类似于真实对象的图像对象,而不是使用原始像素作为分类基础来更好地利用地球遥感图像。由于该领域的最新性,并发的,有时甚至是相互竞争的方法,术语和理论方法也在不断发展。人们已经将这种通货膨胀的风险确定为GEOBIA的主要威胁之一,因为它可能会阻碍科学论述和普遍接受的理论框架的发展。本文通过提出遥感图像分析的通用功能模型,为这种本体的定义做出了贡献。该模型将遥感过程分为六个阶段:(i)感测地球表面,以得出代表有关现实世界对象的不完整数据的像素; (ii)预处理像素,以消除大气压,几何和辐射畸变; (iii)将预处理后的像素(像素)分组以产生一个或多个比例的图像对象(分组的像素或像素像素); (iv)特征分析,以检查和测量相关的光谱,几何和上下文属性以及网格像素的关系,以生成特征向量(vexcels)和决策规则,以便随后进行区分; ud(v)将网格像素分配给预先定义的定性或定量的土地覆盖类别,从而产生前提(初步对象); (vi)后处理以优化先前的结果并输出感兴趣的地理对象。分组阶段可以从两种不同的角度进行分析:(i)离散分割产生定义良好的图像对象;(ii)连续分割产生产生不确定边界的图像域。所提出的通用模型用于分析两种特定的GEOBIA软件实现。还讨论和测试了离散分段的功能分解。结论是,提出的框架增强了对不同GEOBIA方法的评估和比较,从而有助于建立一个普遍接受的本体。

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    Lizarazo Ivan; Elsner Paul;

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  • 年度 2008
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