首页> 外文期刊>International journal of remote sensing >Exploitation of the red-edge bands of Sentinel 2 to improve the estimation of durum wheat yield in Grombalia region (Northeastern Tunisia)
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Exploitation of the red-edge bands of Sentinel 2 to improve the estimation of durum wheat yield in Grombalia region (Northeastern Tunisia)

机译:哨兵2的利用剥削2,提高格伦比亚地区杜兰麦小麦产量估算(东北突尼斯)

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摘要

Worldwide, cereals are of great interest for national food security. The recently released free Sentinel 2 imagery is promising for cereal production systems management, both at field and regional scale. The present study aims to estimate and map the durum wheat yield in Grombalia region using the Sentinel 2 red-edge bands. First, the spatial distribution of wheat in Grombalia region was mapped applying the maximum likelihood classification of Sentinel 2 images spread out between October, 2017, and June, 2018. Then the wheat yield of eleven sampled fields was estimated based on these images through empirical regressions models. The independent variable of the regressions was the yield measured in-situ by objective method. The dependent variables were different types of vegetation indices derived from Sentinel 2 red, red-edge and near-infrared bands. The vegetation index of the best model was chosen to estimate and map the wheat yield over the entire study area. The maximum likelihood method classifies accurately the wheat in Grombalia region with wheat Kappa index (K) of 0.95, wheat user accuracy of 0.95 and wheat producer accuracy of 0.99. The area of wheat cultivated in Grombalia during the campaign 2017/2018 is about 1200 ha. On the other hand, the coefficient of determination (R-2) of the tested empirical regressions models for yield estimation is between 0.55 and 0.73 and the Root Mean Square Error (RMSE) varies from 3.80 to 4.90 Qx ha(-1). The best model is the one that employsB(7)andB(5)bands. According to this model the wheat yield of the entire study area ranges from 0.90 to 53.00 Qx ha(-1)with a mean of 21.00 Qx ha(-1)and a total production of 23,452 Qx. This mean is very close to the official mean recorded during the campaign 2017/2018 in Nabeul governorate, which is 22.10 Qx ha(-1).
机译:在全球范围内,谷物对国家粮食安全有益。最近发布的免费Sentinel 2图像是谷物生产系统管理的有前途,无论是领域和区域规模。本研究旨在使用Sentinel 2红边带估计并映射Grombala地区的硬质小麦产量。首先,在2017年10月和2018年6月在2018年6月间展开了Grombala地区的小麦的空间分布。然后通过经验回归基于这些图像估计11个采样场的小麦产量楷模。回归的独立变量是通过客观方法地原位测量的产率。依赖变量是来自哨兵2红色,红边和近红外条带的不同类型的植被指数。选择最佳模型的植被指数来估计和映射整个研究区域的小麦产量。最大似然法准确地分类了Grombalia地区的小麦,小麦kappa指数(k)为0.95,小麦用户精度为0.95,小麦生产者精度为0.99。 2017/2018竞选活动期间,在格伦比亚的小麦面积约为1200公顷。另一方面,用于产量估计的测试经验回归模型的确定系数(R-2)为0.55和0.73之间,根均方误差(RMSE)从3.80到4.90 QX HA(-1)变化。最好的模型是雇用(7)和B(5)频段的模型。根据该模型,整个研究面积的小麦产量为0.90至53.00 QX HA(-1),平均值为21.00 QX HA(-1),总产量为23,452 QX。这意味着非常接近于Nabeul州的竞选2017/2018期间记录的官方卑鄙,这是22.10 QX HA(-1)。

著录项

  • 来源
    《International journal of remote sensing》 |2020年第24期|8986-9008|共23页
  • 作者

    Mehdaoui Rim; Anane Makram;

  • 作者单位

    Water Res & Technol Ctr Wastewaters & Environm Lab Soliman 8020 Tunisia;

    Water Res & Technol Ctr Wastewaters & Environm Lab Soliman 8020 Tunisia;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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