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On the use of principal component analysis (PCA) for evaluating interannual vegetation anomalies from SPOT/VEGETATION NDVI temporal series

机译:关于使用主成分分析(PCA)评估SPOT / VEGETATION NDVI时间序列的年际植被异常

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In this work, we discuss the use of principal component analysis (PCA) for evaluating the vegetation interannual anomalies. The analysis was preformed on a temporal series (1999-2002) of the yearly Maximum Value Composit of SPOT/VEGETATION NDVI acquired for Sicily Island. The PCA was used as a data transform to enhance regions of localized change in multi-temporal data sets. This is a direct result of the high correlation that exists among images for regions that do not change significantly and the relatively low correlation associated with regions that change substantially. Both naturally vegetated areas (forest, shrub-land, herbaceous cover) and agricultural lands have been investigated in order to extract the most prominent natural and/or man-induced alterations affecting vegetation behavior. our findings suggest that PCA can provide valuable information for environmental management policies involving biodiversity preservation and rational exploitation of natural and agricultural resources. (c) 2005 Elsevier B.V. All rights reserved.
机译:在这项工作中,我们讨论使用主成分分析(PCA)评估植被年际异常。该分析是根据西西里岛获得的SPOT / VEGETATION NDVI的年度最大值组合的时间序列(1999-2002)进行的。 PCA用作数据转换以增强多时间数据集中的局部变化区域。这是图像之间不存在明显变化的区域之间存在高相关性,而与变化较大的区域相关联的较低相关性的直接结果。为了提取影响植被行为的最主要的自然和/或人为改变,已经对自然植被区(森林,灌木丛,草本覆盖)和农业用地进行了研究。我们的发现表明,五氯苯甲醚可以为环境管理政策提供有价值的信息,这些政策涉及生物多样性保护以及对自然和农业资源的合理开发。 (c)2005 Elsevier B.V.保留所有权利。

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