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Yield and leaf area index estimations for sunflower plants using unmanned aerial vehicle images

机译:利用无人机图像估算向日葵植物的产量和叶面积指数

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Vegetation is commonly monitored to improve efficiency of various agricultural practices. Spatial and temporal changes in plant growth and development can be monitored with the aid of remote sensing techniques employing ground, aerial, and satellite platforms. Unmanned aerial vehicles (UAV) and multi-spectral cameras developed for UAVs have an important potential for agricultural management activities with high-resolution spatial and temporal images. However, UAV images should be assessed based on ground measurements for using these images as a decision-support tool in agriculture. This study was conducted to estimate sunflower leaf area index (LAI) and yield with the aid of Normalized Difference Vegetation Index (NDVI) images generated from raw UAV images. Furthermore, UAV-based NDVI values were compared with NDVI values calculated by using hyper-spectral measurements carried out with a ground-based spectroradiometer. Between July and August of 2017, six flight missions were conducted and spectral measurements were made simultaneously. A significant correlation (R-2=0.77) was determined between NDVI values that belong to UAV platform and spectroradiometer. Also, regression models developed for sunflower LAI and yield estimation depending UAV-based NDVI have R-2 values of 0.88 and 0.91, respectively.
机译:通常对植被进行监测,以提高各种农业实践的效率。借助采用地面,空中和卫星平台的遥感技术,可以监测植物生长和发育的时空变化。为无人机开发的无人机和多光谱相机具有高分辨率的时空图像,在农业管理活动中具有重要的潜力。但是,应基于地面测量评估无人机图像,以将这些图像用作农业中的决策支持工具。进行此项研究以借助从原始UAV图像生成的归一化植被指数(NDVI)图像估算向日葵叶面积指数(LAI)和产量。此外,将基于无人机的NDVI值与通过使用基于地面的分光辐射计进行的高光谱测量计算得出的NDVI值进行比较。在2017年7月至8月之间,进行了6次飞行任务,并同时进行了频谱测量。确定了属于无人机平台的NDVI值与光谱辐射仪之间的显着相关性(R-2 = 0.77)。同样,针对基于向日葵的LAI和基于UAV的NDVI进行的产量估算而开发的回归模型的R-2值分别为0.88和0.91。

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