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首页> 外文期刊>Photogrammetric Engineering & Remote Sensing: Journal of the American Society of Photogrammetry >Comparison of change-detection techniques for monitoring tropical forest clearing and vegetation regrowth in a time series
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Comparison of change-detection techniques for monitoring tropical forest clearing and vegetation regrowth in a time series

机译:在时间序列中监测热带森林砍伐和植被再生的变化检测技术的比较

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摘要

The once remote and inaccessible forests of Guatemala's Maya Biosphere Reserve (MBR) have recently experienced high rates of deforestation corresponding to human migration and expansion of the agricultural frontier. Given the importance of land-cover and land-use change data in conservation planning, accurate and efficient techniques to detect forest change from multi-temporal satellite imagery were desired for implementation by local conservation organizations. Three dates of Landsat Thematic Mapper imagery, each acquired two years apart, were radiometrically normalized and preprocessed to remove clouds, water, and wetlands, prior to employing the change-detection algorithm. Three changedetection methods were evaluated: normalized difference vegetation index (NDVI) image differencing, principal component analysis, and RGB-NDVI change detection. A technique to generate reference points by visual interpretation of color composite Landsat images, for Kappa-optimizing thresholding and accuracy assessment, was employed. The highest overall accuracy was achieved with the RGB-NDVI method (85 percent). This method was also preferred for its simplicity in design and ease in interpretation, which were important considerations for transferring remote sensing technology to local and international non-governmental organizations.
机译:危地马拉的玛雅生物圈保护区(MBR)曾经是偏远且人迹罕至的森林,最近因人类迁徙和农业疆界的扩大而遭受了严重的毁林。鉴于土地覆盖和土地利用变化数据在保护规划中的重要性,因此需要由本地保护组织实施的准确有效的技术来从多时相卫星图像中检测森林变化。在采用变化检测算法之前,对三幅Landsat专题制图仪图像进行了辐射归一化处理,并进行了预处理,以去除云,水和湿地,每幅图像的间隔时间均为两年。评估了三种变化检测方法:归一化植被指数(NDVI)图像差分,主成分分析和RGB-NDVI变化检测。采用了一种通过视觉解释彩色合成Landsat图像来生成参考点的技术,用于Kappa优化阈值和准确性评估。使用RGB-NDVI方法可获得最高的总体精度(85%)。该方法还因为其设计简单和易于解释而被首选,这是将遥感技术转让给本地和国际非政府组织的重要考虑因素。

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