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A comparison of three image-object methods for the multiscale analysis of landscape structure

机译:三种图像对象方法在景观结构多尺度分析中的比较

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摘要

Within the conceptual framework of Complex Systems, we discuss the importance and challenges in extracting and linking multiscale objects from high-resolution remote sensing imagery to improve the monitoring, modeling and management of complex landscapes. In particular, we emphasize that remote sensing data are a particular case of the modifiable areal unit problem (MAUP) and describe how image-objects provide a way to reduce this problem. We then hypothesize that multiscale analysis should be guided by the intrinsic scale of the dominant landscape objects composing a scene and describe three different multiscale image-processing techniques with the potential to achieve this. Each of these techniques, i.e., Fractal Net Evolution Approach (FNEA), Linear Scale-Space and Blob-Feature Detection (SS), and Multiscale Object-Specific Analysis (MOSA), facilitates the multiscale pattern analysis, exploration and hierarchical linking of image-objects based on methods that derive spatially explicit multiscale contextual information from a single resolution of remote sensing imagery. We then outline the weaknesses and strengths of each technique and provide strategies for their improvement.
机译:在复杂系统的概念框架内,我们讨论了从高分辨率遥感影像中提取和链接多尺度对象以改善对复杂景观的监视,建模和管理的重要性和挑战。尤其要强调的是,遥感数据是可修改面积单位问题(MAUP)的特殊情况,并描述了图像对象如何提供一种减少此问题的方法。然后,我们假设多尺度分析应以构成场景的主要景观对象的固有尺度为指导,并描述三种有可能实现这一目标的不同尺度图像处理技术。分形网络演化方法(FNEA),线性尺度空间和斑点特征检测(SS)以及多尺度特定对象分析(MOSA)等每种技术都有助于图像的多尺度模式分析,探索和层次链接-基于从遥感影像的单个分辨率中导出空间上明确的多尺度上下文信息的方法的对象。然后,我们概述了每种技术的弱点和优势,并提供了改进它们的策略。

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