首页> 外文期刊>Ecological informatics: an international journal on ecoinformatics and computational ecology >CropPhenology: An R package for extracting crop phenology from time series remotely sensed vegetation index imagery
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CropPhenology: An R package for extracting crop phenology from time series remotely sensed vegetation index imagery

机译:养殖学:用于从时间序列中提取作物候选的R包,远程感测植被指数图像

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Remotely sensed vegetation indices to measure crop growth through phenological metrics have a high potential for use in agricultural management. However, implementing the analytical routines from remote sensing data acquisition to relating vegetation index information to in-situ plant development and management is complex to even the most experienced user. We present the CropPhenology package, a free, easy to use package designed in the R environment that enables flexibility and interoperability that allows users to progress from downloading remote sensing images to crop phenology analysis and visualisation with only minor processing steps. Furthermore, this environment allowing users to easily incorporate other R packages to form a seamless chain of functions to undertake more complex pre or post image processing and analysis. The package computes 15 phenological metrics based on satellite-based NDVI measurements over the season which can be easily visualised and used for successive spatio-temporal analysis. The metrics are theoretically related to Zadoks growth stages which explicitly characterise cereal crop growth conditions, including new leaf emergence, flowering, ripening, and yield. These metrics provide a systematic understanding of characterisation of the plant-soil-climate interactions. We present examples that illustrate the utility of our package in a Southern Australian broad-acre, rain-fed cereal cropping region.
机译:远程感测的植被指数以衡量农业指标的作物生长具有很大的农业管理潜力。然而,从遥感数据获取实施分析例程,以将植被指数信息与原位工厂开发和管理甚至是最经验最有经验的用户的复杂性。我们介绍了在R环境中设计的自由,易于使用的包,使能灵活性和互操作性,允许用户从下载遥感图像下载到作物候选的分析和可视化,只有轻微的处理步骤。此外,这种环境允许用户轻松地结合其他R包来形成无缝的功能链,以进行更复杂的前或后图像处理和分析。该包基于季节基于卫星的NDVI测量来计算15个噬菌体度量,这可以很容易地可视化并用于连续的时空分析。指标理论上与Zadoks生长阶段有关,明确地表征了谷物作物生长条件,包括新的叶片出现,开花,成熟和产量。这些指标提供了对植物 - 土气相互作用的表征的系统理解。我们提出了说明我们包装在澳大利亚南部雨喂养谷物种植区域的包装的实用性。

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