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首页> 外文期刊>Biosystems Engineering >Multi-temporal imaging using an unmanned aerial vehicle for monitoring a sunflower crop
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Multi-temporal imaging using an unmanned aerial vehicle for monitoring a sunflower crop

机译:使用无人机监测向日葵作物的多时相成像

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摘要

The objective of this study is to determine the capability of an unmanned aerial vehicle system carrying a multispectral sensor to acquire multitemporal images during the growing season of a sunflower crop. Measurements were made at different times of the day and with different resolutions to estimate the normalised difference vegetation index (NDVI) and study its relationship with several indices related to crop status with the aim of generating useful information for application to precision agriculture techniques. NDVI was calculated from images acquired on four different dates during the cropping season. On two of these dates, two images were acquired to determine how the time of day when the images were taken influences NDVI value. To study the influence of image resolution on NDVI, the original images were resampled to 30 x 30 and 100 x 100 cm pixel sizes. The results showed that the linear regressions between NDVI and grain yield, aerial biomass and nitrogen content in the biomass were significant at the 99% confidence level, except during very early growth stages, whereas the time of day when the images were acquired, the classification process, and image resolution had no effect on the results. The methodology provides information that is related to crop yield from the very early stages of growth and its spatial variability within the crop field to be harvested, which can subsequently be used to prescribe the most appropriate management strategy on a site-specific basis. (C) 2015 IAgrE. Published by Elsevier Ltd. All rights reserved.
机译:这项研究的目的是确定带有多光谱传感器的无人机系统在向日葵作物生长季节期间获取多时相图像的能力。在一天的不同时间以不同的分辨率进行测量,以估算归一化植被指数(NDVI),并研究其与几种与作物状况有关的指数的关系,目的是为实用农业技术提供有用的信息。 NDVI是根据作物季节在四个不同日期获取的图像计算得出的。在这两个日期中,获取了两个图像,以确定拍摄图像的一天中的时间如何影响NDVI值。为了研究图像分辨率对NDVI的影响,将原始图像重新采样为30 x 30和100 x 100 cm像素大小。结果表明,NDVI与谷物产量,空中生物量和生物量中的氮含量之间的线性回归在99%置信水平下非常显着,除了在非常早期的生长阶段,而在一天中获取图像时,分类过程,图像分辨率对结果没有影响。该方法学提供了与生长初期有关的作物产量及其在待收获作物田中的空间变异性相关的信息,这些信息随后可用于制定针对特定地点的最合适的管理策略。 (C)2015年。由Elsevier Ltd.出版。保留所有权利。

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