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Mapping Pasture Areas In Western Region Of SÃO Paulo State, Brazil

机译:绘制巴西圣保罗州西部地区的牧场图

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Brazil is one of the largest exporters of cattle meat production. Most of this production is under pasture areas, with different levels of livestock and field management. Remotely sensed images could be interesting tools to detect distinct temporal and spatial patterns of these systems. In this context, classification algorithms have been proposed to use information from satellite images to map different land covers. The Time-Weighted Dynamic Time Warping (TWDTW) is an algorithm that has the advantage of working well with datasets with enough amounts of temporal information and seasonality patterns. In the present work, the TWDTW was performed to classify pasture managements in farms located in Western region of São Paulo State in Brazil for the years 2017 and 2018, as a primary study. It was used Normalized Difference Vegetation Index (NDVI) time series images from Moderate Resolution Imaging Spectroradiometer – MODIS sensor (products MOD13Q1 and MYD13Q) with 250 meters of spatial resolution. In classifications for the years 2017 and 2018, it was observed a predominance of traditional pasture. Total areas of degraded and traditional pasture were very similar between 2017 and 2018. The year of 2017 showed higher spatial distribution of intensified pastures than year 2018. The classification achieved satisfying results with complete accuracy in validation. The information collected from field visits were important to analyse general aspects of the results. Therefore, in this pilot study TWDTW algorithm demonstrated to have potential in differentiating classes of pasture management. Next steps will be to explor e the possibilities to classify pasture systems in large areas.
机译:巴西是牛肉生产的最大出口国之一。这些产品大部分位于牧场地区,牲畜和田间管理水平不同。遥感图像可能是检测这些系统不同的时空格局的有趣工具。在这种情况下,已经提出了分类算法以使用来自卫星图像的信息来绘制不同的土地覆盖图。时间加权动态时间规整(TWDTW)是一种算法,其优点是可以很好地处理具有足够数量的时间信息和季节性模式的数据集。在当前工作中,进行了TWDTW,以对2017年和2018年位于巴西圣保罗州西部地区的农场中的牧场管理进行分类,这是一项主要研究。使用中分辨率成像光谱仪– MODIS传感器(产品MOD13Q1和MYD13Q)的归一化植被指数(NDVI)时间序列图像,其空间分辨率为250米。在2017年和2018年的分类中,观察到传统牧场占主导地位。 2017年至2018年间,退化牧场和传统牧场的总面积非常相似。2017年的集约化牧场的空间分布比2018年高。分类的结果令人满意,验证完全准确。从实地访问中收集的信息对于分析结果的一般方面很重要。因此,在该初步研究中,TWDTW算法被证明在区分牧场管理类别方面具有潜力。下一步将是探索对大面积牧场系统进行分类的可能性。

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