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A simple method for reconstructing a high-quality NDVI time-series data set based on the Savitzky-Golay filter

机译:一种基于Savitzky-Golay滤波器的重构高质量NDVI时间序列数据集的简单方法

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摘要

Although the Normalized Difference Vegetation Index (NDVI) time-series data, derived from NOAA/AVHRR, SPOT/VEGETATION, TERRA or AQUA/MODIS, has been successfully used in research regarding global environmental change, residual noise in the NDVI time-series data, even after applying strict pre-processing, impedes further analysis and risks generating erroneous results, Based on the assumptions that NDVI time-series follow annual cycles of growth and decline of vegetation, and that clouds or poor atmospheric conditions usually depress NDVI values, we have developed in the present study a simple but robust method based on the Savitzky-Golay filter to smooth out noise in NDVI time-series, specifically that caused primarily by cloud contamination and atmospheric variability. Our method was developed to make data approach the upper NDVI envelope and to reflect the changes in NDVI patterns via an iteration process. From the results obtained by applying the newly developed method to a 10-day MVC SPOT VGT-S product, we provide optimized parameters for the new method and compare this technique with the BISE algorithm and Fourier-based fitting method. Our results indicate that the new method is more effective in obtaining high-quality NDVI time-series.
机译:尽管源自NOAA / AVHRR,SPOT / VEGETATION,TERRA或AQUA / MODIS的归一化植被指数(NDVI)时间序列数据已成功用于全球环境变化研究,NDVI时间序列数据中的残留噪声,即使经过严格的预处理,也阻碍了进一步的分析并可能产生错误的结果,基于这样的假设:NDVI时间序列遵循植被的生长和衰退的年度周期,并且云层或恶劣的空气条件通常会降低NDVI值,在本研究中,研究人员开发了一种基于Savitzky-Golay滤波器的简单但健壮的方法,以消除NDVI时间序列中的噪声,特别是主要由云污染和大气多变性引起的噪声。开发我们的方法的目的是使数据接近NDVI上限,并通过迭代过程反映NDVI模式的变化。从将新开发的方法应用于10天的MVC SPOT VGT-S产品获得的结果,我们为新方法提供了优化的参数,并将此技术与BISE算法和基于傅里叶的拟合方法进行了比较。我们的结果表明,该新方法在获取高质量NDVI时间序列方面更为有效。

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