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RiceSAP: An Efficient Satellite-Based AquaCrop Platform for Rice Crop Monitoring and Yield Prediction on a Farm- to Regional-Scale

机译:Ricsap:一种高效的卫星基于稻田的水稻作物监测平台,对农场 - 区域规模的产量预测

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摘要

Advanced technologies in the agricultural sector have been adopted as global trends in response to the impact of climate change on food sustainability. An ability to monitor and predict crop yields is imperative for effective agronomic decision making and better crop management. This work proposes RiceSAP, a satellite-based AquaCrop processing system for rice whose climatic input is derived from TERRA/MODIS-LST and FY-2/IR-rainfall products to provide crop monitoring and yield prediction services at regional-scale with no need for weather station. The yield prediction accuracy is significantly improved by our proposed recalibration algorithm on the simulated canopy cover (CC) using Sentinel-2 NDVI product. A developed mobile app provides an intuitive interface for collecting farm-scale inputs and providing timely feedbacks to farmers to make informed decisions. We show that RiceSAP could predict yields 2 months before harvest with a mean absolute percentage error (MAPE) of 14.8%, in the experimental field. Further experiments on randomly selected 20 plots with various soil series showed comparable results with an average MAPE of 16.7%. Thus, this work is potentially applicable countrywide; and can be beneficial to all stakeholders in the entire rice supply chain for effective adaptation to climate change.
机译:由于气候变化对粮食可持续性的影响,农业部门的先进技术被采用为全球趋势。监测和预测作物产量的能力对于有效的农艺决策,以及更好的作物管理是必不可少的。这项工作提出了一种卫星基础的水稻水上浴室加工系统,其气候投入来自Terra / Modis-LST和FY-2 / IR降雨产品,以在区域规模提供作物监测和产量预测服务,无需气象站。通过使用Sentinel-2 NDVI产品的模拟顶篷覆盖(CC)上所提出的核校准算法显着改善了产量预测精度。开发的移动应用程序提供了一个直观的接口,用于收集农业规模的投入,并为农民提供及时反馈,以提出明智的决策。我们展示Ricsap可以在实验领域中收获2个月的收获前2个月的产量预测。关于随机选择的20个具有各种土壤系列的图表的进一步实验显示出可比的结果,平均mape为16.7%。因此,这项工作可能适用于全国范围内;并且可以对整个米饭供应链中的所有利益攸关方有利于有效适应气候变化。

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