首页> 外文会议>IEEE International Geoscience and Remote Sensing Symposium >CROP MAPPING APPLICATIONS AT SCALE: USING GOOGLE EARTH ENGINE TO ENABLE GLOBAL CROP AREA AND STATUS MONITORING USING FREE AND OPEN DATA SOURCES
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CROP MAPPING APPLICATIONS AT SCALE: USING GOOGLE EARTH ENGINE TO ENABLE GLOBAL CROP AREA AND STATUS MONITORING USING FREE AND OPEN DATA SOURCES

机译:裁剪裁剪应用程序:使用Google地球引擎使用自由和开放数据源启用全局裁剪区域和状态监控

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The confluence of rapidly growing streams of "free and open" satellite imagery at 10-30 m spatial resolution, expending libraries of sophisticated open source software components for geospatial data processing and the increase in publicly available open data sets is driving major changes in agricultural monitoring activities. In the next years, we can expect a scale step in derived crop area and status information at parcel level from the combined use of global sensors such as Landsat-8, Sentinel 1 and 2. In order to handle the unprecedented flow of such data into value adding agricultural mapping and monitoring applications, novel approaches need to be developed to ensure a globally consistent use in a "knowledge inference" context in support of, for instance, food security analysis. We demonstrate the use of Google Earth Engine (GEE) as a prototype environment that could possibly support such a context with 3 different examples.
机译:在10-30米空间分辨率下,“自由和开放”卫星图像的快速生长流的汇合,用于地理空间数据处理的复杂开源软件组件的消耗库和公开的开放数据集的增加是在农业监测的主要变化活动。在未来几年,我们可以期待派生裁剪区域和地块级别的状态信息,从组合使用Landsat-8,Sentinel 1和2中的全局传感器的组合使用。为了处理前所未有的这种数据流入增值添加农业映射和监测应用,需要开发新的方法,以确保在“知识推理”背景下全球一致使用,以支持,例如食品安全分析。我们展示了使用Google地球发动机(Gee)作为原型环境,可能支持这种情况3不同的例子。

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