面向对象的不同空间分辨率图像变化检测分类

Yongdae Gweon, Yun Zhang
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引用次数: 3

摘要

航空照片在各种空间相关应用中得到越来越广泛的应用。许多城市和政府机构已经在世界各地建立了航空照片数据库。使这些数据库保持最新是使它们有效的最重要的部分,以便期望航空照片数据库尽可能频繁地更新。然而,在实际操作中,由于成本高,有些设备几乎没有更新。本研究采用中空间分辨率图像检测变化。我们没有使用航空照片,而是使用来自GeoBase的免费的Landsat ETM+和来自SODB的正射影图来进行变化检测。为了与不同空间分辨率的图像进行比较,采用小波变换和面向对象的分类方法对正射影像图进行分解、分割和分类。虽然检测到的变化是粗糙的,但结果表明,该方法具有很高的成本效益和实用性。此外,它还可以为更新航空照片数据库提供决策支持。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Object-Oriented Classification for Change Detection with Different Spatial Resolution Images
Aerial photos have been increasingly and commonly used in various spatially related applications. Many municipalities and government agencies have constructed aerial photo databases all over the world. Keeping these databases up to date is the most important part of making them effective so that aerial photo databases are expected to be updated as frequently as possible. However, in practice, some of them are barely updated because of high cost. In this study, medium spatial resolution imagery is proposed to detect changes. Instead of using aerial photos, free accessible Landsat ETM+ from GeoBase and orthophotomaps from SODB are used for change detection. In order to compare with different spatial resolution images orthophotomaps are decomposed, segmented, and classified through wavelet transform and object-oriented classification. Although the detected changes are rough, the result shows that the method is quite cost-effective and practical. Moreover, it could support decision making for updating aerial photo databases.
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