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Feature extraction for NDVI AVHRR/NOAA time series classification

机译:NDVI AVHRR / NOAA时间序列分类的特征提取

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One of the biggest problems of agribusiness in Brazil is related to estimation and forecasting of agricultural crops. In this problem, time series classification enters as a way to help production estimation. In this paper, we are concerned with the development of an automatic classifier that identifies the areas covered with the sugarcane culture by using Normalized Difference Vegetation Index (NDVI) time series, from the AVHRR/NOAA data warehouse of Center of Meteorological and Climatic Research Applied to Agriculture (CEPAGRI). We assumed that a multidimensional space generated by information obtained in the harmonics is a appropriate space to study the similarity between time series. Here we used the word features of a series to refer the coefficients extracted by time series in Fourier decomposition. The proposed methodology has shown to be efficient with a high success rate for the classification of the culture of sugarcane in images from Jaboticabal city, in Brazil, 2004/2005.
机译:巴西农业综合企业最大的问题之一是与农作物的估计和预报有关。在此问题中,时间序列分类作为一种帮助进行产量估算的方法而进入。在本文中,我们关注于自动气象分类器的开发,该分类器使用了应用气象和气候研究中心的AVHRR / NOAA数据仓库,通过使用归一化植被指数(NDVI)时间序列来识别甘蔗养殖覆盖的区域。农业(CEPAGRI)。我们假设由谐波获得的信息生成的多维空间是研究时间序列之间相似性的合适空间。在这里,我们使用序列的词特征来指代傅立叶分解中按时间序列提取的系数。在2004/2005年巴西Jaboticabal市的图像中,所提出的方法已显示出对甘蔗文化进行分类的高效且很高的成功率。

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