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A non-destructive method for estimating onion leaf area

机译:洋葱叶面积的非破坏性方法

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Leaf area is one of the most important parameters for characterizing crop growth and development, and its measurement is useful for examining the effects of agronomic management on crop production. It is related to interception of radiation, photosynthesis, biomass accumulation, transpiration and gas exchange in crop canopies. Several direct and indirect methods have been developed for determining leaf area. The aim of this study is to develop an indirect method, based on the use of a mathematical model, to compute leaf area in an onion crop using non-destructive measurements with the condition that the model must be practical and useful as a Decision Support System tool to improve crop management. A field experiment was conducted in a 4.75 ha commercial onion plot irrigated with a centre pivot system in Aguas Nuevas (Albacete, Spain), during the 2010 irrigation season. To determine onion crop leaf area in the laboratory, the crop was sampled on four occasions between 15 June and 15 September. At each sampling event, eight experimental plots of 1 m(2)were used and the leaf area for individual leaves was computed using two indirect methods, one based on the use of an automated infrared imaging system, LI-COR-31000, and the other using a digital scanner EPSON GT-8000, obtaining several images that were processed using Image J v 1.43 software. A total of 1146 leaves were used. Before measuring the leaf area, 25 parameters related to leaf length and width were determined for each leaf. The combined application of principal components analysis and cluster analysis for grouping leaf parameters was used to reduce the number of variables from 25 to 12. The parameter derived from the product of the total leaf length (L) and the leaf diameter at a distance of 25% of the total leaf length (A25) gave the best results for estimating leaf area using a simple linear regression model. The model obtained was useful for computing leaf area using a non-destructive method.
机译:叶面积是用于表征作物生长和发展的最重要参数之一,其测量对于研究农艺管理对作物生产的影响是有用的。它与作物Canopies中的辐射,光合作用,生物质积累,蒸腾和气交换截取有关。已经开发了几种直接和间接方法来确定叶面积。本研究的目的是基于使用数学模型的使用,使用非破坏性测量来计算洋葱作物中的叶面积的间接方法,其中模型必须实用,并且有用作为决策支持系统改善作物管理的工具。在2010年灌溉季节,在Aguas Nuevas(Albacete)的中心枢轴系统中,在4.75公顷的商业洋葱图中进行了一个田间实验。为了确定实验室中的洋葱作物叶面积,在6月15日至9月15日之间进行了四次进行了抽样。在每个采样事件中,使用1米(2)的八个实验图,使用两个间接方法计算单个叶片的叶面积,一个基于自动红外成像系统,LI-COR-31000和所述其他使用数字扫描仪EPSON GT-8000,获取使用图像J V 1.43软件处理的多个图像。共使用1146个叶子。在测量叶面积之前,针对每个叶子测定与叶长度和宽度相关的25个参数。主要成分分析和聚类分析对分组叶参数的综合应用用于减少25至12的变量数。从总叶片长度(L)的乘积和距离的叶子直径衍生的参数总叶片长度(A25)的百分比使用简单的线性回归模型给出了估计叶面积的最佳结果。所获得的模型对于使用非破坏性方法计算叶面积。

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