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首页> 外文期刊>Geoscience and Remote Sensing, IEEE Transactions on >A Moving Weighted Harmonic Analysis Method for Reconstructing High-Quality SPOT VEGETATION NDVI Time-Series Data
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A Moving Weighted Harmonic Analysis Method for Reconstructing High-Quality SPOT VEGETATION NDVI Time-Series Data

机译:重构高质量SPOT植被NDVI时间序列数据的移动加权谐波分析方法

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Global or regional environmental change is of wide concern. Extensive studies have indicated that long-term vegetation cover change is one of the most important factors reflecting environmental change, and normalized difference vegetation index (NDVI) time-series data sets have been widely used in vegetation dynamic change monitoring. However, the significant residual effects and noise levels impede the application of NDVI time-series data in environmental change research. This study develops a novel and robust filter method, i.e., the moving weighted harmonic analysis (MWHA) method, which incorporates a moving support domain to assign the weights for all the points, making the determination of the frequency number much easier. Additionally, a four-step process flow is designed to make the data approach the upper NDVI envelope, so that the actual change in the vegetation can be detected. A total of 487 test pixels selected from SPOT VEGETATION 10-day MVC NDVI time-series data from January 1999 to December 2001 were used to illustrate the effectiveness of the new method by comparing the MWHA results with the results of another four existing methods. Finally, the long-term SPOT VEGETATION 10-day maximum-value compositing (MVC) NDVI time series for China from April 1998 to May 2014 was reconstructed by the use of the proposed method, and a test region in China was utilized to validate the effectiveness of the proposed MWHA method. All the results indicate that the reconstructed high-quality NDVI time series fits the actual growth profile of the vegetation and is suitable for use in further remote sensing applications.
机译:全球或区域环境变化引起广泛关注。大量研究表明,长期植被覆盖度变化是反映环境变化的最重要因素之一,归一化植被指数(NDVI)时间序列数据集已被广泛用于植被动态变化监测。但是,显着的残留效应和噪声水平阻碍了NDVI时间序列数据在环境变化研究中的应用。这项研究开发了一种新颖而强大的滤波器方法,即移动加权谐波分析(MWHA)方法,该方法结合了移动支持域来为所有点分配权重,从而使确定频率数变得更加容易。此外,设计了一个四步处理流程,使数据接近NDVI上限,因此可以检测到植被的实际变化。通过比较MWHA结果与其他四种现有方法的结果,从1999年1月至2001年12月的SPOT VEGETATION 10天MVC NDVI时间序列数据中选择了487个测试像素,以说明该方法的有效性。最后,使用提出的方法重建了1998年4月至2014年5月中国长期SPOT植被10天最大价值合成(MVC)NDVI时间序列,并利用中国的一个测试区域来验证MWHA方法的有效性。所有结果都表明,重建的高质量NDVI时间序列符合植被的实际生长情况,适合用于进一步的遥感应用。

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