首页> 外文会议>Conference on image and signal processing for remote sensing >Extracting Information about Vegetation Seasons in Africa from Pathfinder AVHRR NDVI Imagery using Temporal Filtering and Least-Squares Fits to Asymmetric Gaussian Functions
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Extracting Information about Vegetation Seasons in Africa from Pathfinder AVHRR NDVI Imagery using Temporal Filtering and Least-Squares Fits to Asymmetric Gaussian Functions

机译:用颞滤波和最小二乘拟合到非对称高斯函数,从探测法植被植被季节中的信息。

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Time-series of NASA/NOAA Pathfinder AVHRR Land (PAL) data have been analysed to extract parameters describing the seasonality of vegetation in Africa. Two methods have been developed to fit smooth curves to the time-series. The first method is based on an adaptive Savitzky-Golay filtering technique, and the second on non-linear least-squares fits of asymmetric Gaussian model functions. Both processing methods involve a preliminary definition of the number and timing of growing seasons using a least-squares fit of sinusoidal functions and a second order polynomial. The fit to the sinusoidal functions is used to determine the type of seasonal pattern (uni-modal or bi-modal) and to obtain starting values for the non-linear Gaussian function fits to the data. The processing incorporates qualitative information on cloudiness from the CLAVR dataset. The resulting smooth curves are used for defining parameters describing the growing seasons. The method has been applied to PAL NDVI data, and resulting imagery have been generated that show parameters such as beginnings and ends of seasons, seasonal integrated NDVI, seasonal amplitudes etc. The results indicate that the two methods complement each other and that they may be suitable in different areas depending on the behaviour of the NDVI signal.
机译:已经分析了NASA / NOAA PATHFINDER AVHRR土地(PAL)数据的时间系列以提取描述非洲植被季节性的参数。已经开发了两种方法以将平滑曲线适合于时序。第一种方法基于自适应Savitzky-Golay滤波技术,第二种方法是非线性最小二乘函数的非对称高斯模型功能。处理方法涉及使用正弦功能的最小二乘拟合和二阶多项式的最小二乘拟合来初步定义生长季节的数量和时间。适用于正弦函数来确定季节性模式(UNI-MODAL或BI-MODAL)的类型,并获得非线性高斯函数的启动值适合数据。处理包含来自Clavr DataSet的混浊信息。由此产生的平滑曲线用于定义描述生长季节的参数。该方法已应用于PAL NDVI数据,并生成了结果的成果图像,显示了季节,季节集成NDVI,季节性幅度等的参数,季节集成的NDVI,季节性幅度等。结果表明这两种方法彼此相互补充,并且它们可以相互补充适用于不同区域,这取决于NDVI信号的行为。

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