...
首页> 外文期刊>Crop & Pasture Science >In-field methods for rapid detection of frost damage in Australian dryland wheat during the reproductive and grain-filling phase
【24h】

In-field methods for rapid detection of frost damage in Australian dryland wheat during the reproductive and grain-filling phase

机译:在生殖和籽粒灌装阶段期间澳大利亚旱地小麦冻融损坏的现场方法

获取原文
获取原文并翻译 | 示例
           

摘要

Frost damage causes significant production losses and costs to Australian dryland wheat, and frost impacts are not expected to decline in the near future, despite global warming. Rapid estimation of frost damage to crops on a spatial basis would allow for timely management decisions to reduce the economic impact of frost events. In this paper, we take a first step in evaluating the utility of hyperspectral reflectance and active light fluorescence for detecting frost damage to wheat during its reproductive phase. Two experiments were conducted immediately after the first observation of frost damage, (i) in 2006, five plots in an existing trial were opportunistically subdivided to take spectral reflectance measurements on frost damaged plants along with yield measurements, and (ii) in 2015, a transect across 31 rows within a commercial paddock was established to evaluate spectral reflectance, fluorometer measurements, and yield along a gradient from non-frosted to frost damaged plants. The results of the hyperspectral reflectance data appeared variable in response across the two experimental sites where frost was observed in-crop. In 2006, hyperspectral-derived indices showed significant differences (P 0.05) between measurements of frosted and non-frosted canopies, but this was not the case for observations taken in 2015, where the mean response was reversed between experimental sites for several of the indices. In contrast, fluorometer measurements in the 2015 trial resulted in higher correlations with yield and observed frost damage compared with the reflectance measurements. Seven of the nine fluorometer indices evaluated were correlated with yield (used as an indicator of frost damage) at P 0.01. An index of compounds which absorbs at 375 nm, FLAV, had the best correlation coefficients of 0.91 and 0.90 for the two dates in 2015. The fluorescence index FLAV was selected to evaluate whether it could be used to classify the canopy as frost affected or not, using discriminant analysis for the 2015 transect data. The overall classification accuracy, defined as the number of correctly classified measurements (57) divided by the total number (62) was 92%. The present study was not able to provide insight into how rapidly the sensors could detect frost damage before detection with the naked eye, as the survey data constituted a transect based on early visual symptoms, however this study does provide important insight into what sensors and/or indices may be sensitive to 'seeing' early frost damage in-crop. The next steps, which build on this work and need to be resolved are (i) what is the nominal scale of measurements required, and for which portions of the plant canopy? (ii) How robust (over space and time) are any relationships between frost damage and index response? (iii) Can frost damage be detected before the onset of visual damage?
机译:霜冻损伤导致澳大利亚旱地小麦的显着生产损失和成本,尽管全球变暖,但仍未在不久的将来下降霜冻影响。在空间基础上快速估计对作物的霜冻损伤将允许及时管理决策,以降低霜冻事件的经济影响。在本文中,我们参加了评估高光谱反射率和活性光荧光的效用,以检测其生殖阶段对小麦的霜损伤。在第一次观察霜冻损伤后立即进行了两次实验,2006年,现有试验中的五个地块机会分类为霜冻损坏植物的光谱反射测量以及2015年的收益率测量和(ii)建立了在商业围场内的31行横跨31行,以评估光谱反射,荧光计测量,以及沿着非​​磨损到霜冻损伤植物的梯度的屈服。在两种实验部位响应的两个实验遗迹上出现了多高光谱反射率数据的结果。 2006年,高光谱衍生的指数显示出磨砂和非束缚檐蛋白的测量之间的显着差异(P <0.05),但2015年采取的观察结果并非如此,其中均衡在实验部位之间的逆转索引。相比之下,与反射率测量相比,2015年试验中的荧光计测量结果与产量和观察到的霜损较高。评价的九个荧光计索引中的七个与P&LT的产率(用作霜损伤的指示器)相关。 0.01。在375nm,Flav中吸收的化合物指数,在2015年的两个日期的最佳相关系数为0.91和0.90.选择荧光指数Flav以评估它是否可用于将冠层分类为影响或不受霜冻,利用2015年横断面数据的判别分析。定义为正确分类的测量数(57)除以总数(62)的整体分类准确性为92%。本研究无法深入了解传感器在用肉眼检测前检测到霜冻损伤的快速损坏,因为调查数据基于早期视觉症状构成横断面,但本研究确实为传感器提供了重要的洞察力和/或指数可能对“看到”在作物中的早期霜冻损伤敏感。在这项工作中建立的下一步是(i)所需测量的标称比例以及植物冠层的哪个部分是什么? (ii)霜冻损伤和指数响应之间的任何关系如何鲁棒(空间和时间)是多么强大? (iii)在视觉损坏开始之前可以检测到霜冻损坏吗?

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号