首页> 外文期刊>Photogrammetric Engineering & Remote Sensing: Journal of the American Society of Photogrammetry >Hybrid Object-based Change Detection and Hierarchical Image Segmentation for Thematic Map Updating
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Hybrid Object-based Change Detection and Hierarchical Image Segmentation for Thematic Map Updating

机译:主题地图更新的基于对象的混合变化检测和分层图像分割

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摘要

A hybrid object-based change detection (OBCD) method incorporating a hierarchical image segmentation strategy and cross-correlation analysis (CCA) is described and demonstrated. The proposed hybrid OBCD method was used to update an existing thematic map derived from Landsat-5 and -7 imagery (circa 2000), with imagery consisting of markedly different sensor specifications (Landsat-2, circa 1976). The proposed hierarchical image segmentation strategy successfully constrained change objects within existing land cover boundaries, avoiding the production of “sliver objects,” an issue related to other image segmentation strategies used in OBCD. In combination with the CCA method, the hybrid OBCD method is capable of generating change thresholds for individual land-cover classes, providing a mechanism to limit the amount of spurious change detected. Two change threshold methods were tested: (a) change threshold values based on two standard deviations, and, (b) an unsupervised threshold method. No statistically significant difference was found between these threshold methods.
机译:描述和演示了一种基于混合对象的变化检测(OBCD)方法,该方法结合了分层图像分割策略和互相关分析(CCA)。提出的混合OBCD方法用于更新从Landsat-5和-7影像(大约2000年)衍生的现有专题图,其中影像包含明显不同的传感器规格(Landsat-2大约1976年)。拟议的分层图像分割策略成功地将变化对象限制在现有土地覆盖范围内,避免了“条状对象”的产生,这是与OBCD中使用的其他图像分割策略有关的问题。结合CCA方法,混合OBCD方法能够生成各个土地覆盖类别的变化阈值,从而提供一种机制来限制检测到的虚假变化量。测试了两种更改阈值方法:(a)基于两个标准偏差的更改阈值,以及(b)无监督阈值方法。这些阈值方法之间没有发现统计学上的显着差异。

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