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Contribution of Remote Sensing on Crop Models: A Review

机译:遥感对作物模型的贡献:综述

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Crop growth models simulate the relationship between plants and the environment to predict the expected yield for applications such as crop management and agronomic decision making, as well as to study the potential impacts of climate change on food security. A major limitation of crop growth models is the lack of spatial information on the actual conditions of each field or region. Remote sensing can provide the missing spatial information required by crop models for improved yield prediction. This paper reviews the most recent information about remote sensing data and their contribution to crop growth models. It reviews the main types, applications, limitations and advantages of remote sensing data and crop models. It examines the main methods by which remote sensing data and crop growth models can be combined. As the spatial resolution of most remote sensing data varies from sub-meter to 1 km, the issue of selecting the appropriate scale is examined in conjunction with their temporal resolution. The expected future trends are discussed, considering the new and planned remote sensing platforms, emergent applications of crop models and their expected improvement to incorporate automatically the increasingly available remotely sensed products.
机译:作物生长模型模拟植物与环境之间的关系,以预测诸如作物管理和农艺决策等应用的预期产量,以及研究气候变化对粮食安全的潜在影响。作物生长模型的主要局限性在于缺乏每个田地或地区实际情况的空间信息。遥感可以提供作物模型所需的缺失空间信息,以提高产量预测。本文回顾了有关遥感数据及其对作物生长模型的贡献的最新信息。它回顾了遥感数据和作物模型的主要类型,应用,局限性和优势。它研究了将遥感数据与作物生长模型结合起来的主要方法。由于大多数遥感数据的空间分辨率从亚米到1 km不等,因此结合其时间分辨率来研究选择合适的比例尺的问题。讨论了预期的未来趋势,并考虑了新的和计划中的遥感平台,作物模型的新兴应用以及它们的预期改进,以自动合并越来越多的可用遥感产品。

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