首页> 外文会议>2011 International Conference on Computer Distributed Control and Intelligent Environmental Monitoring >Extraction and Monitoring of Cotton Area and Growth Information Using Remote Sensing at Small Scale: A Case Study in Dingzhuang Town of Guangrao County, China
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Extraction and Monitoring of Cotton Area and Growth Information Using Remote Sensing at Small Scale: A Case Study in Dingzhuang Town of Guangrao County, China

机译:小规模遥感对棉花面积和生长信息的提取与监测-以广饶县丁庄镇为例

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Cotton area and growth information are important basis for cotton production and management. This article took Dingzhuang Town in Guangrao County of Shandong Province as the study area and chose CBERS01 and HJ1B satellite images as the information source. Selecting similar phases with obvious cotton information, the area of cotton was acquired by decision tree classification model according to spectrum characteristics of typical objects after pre-processing. Regular changes of vegetation index and cotton growth condition in spatial and time were analyzed according to four different time remote sensing images of cotton growing season in 2009. The results showed that the extraction accuracy of cotton area was over 90%. In the past 10 years, cotton planting area increased 7529.4 hm2. With the growing of cotton in every period, the growth information of cotton showed different spatial and time distribution regularities. Monitoring results were consistent with surveyed cotton yield. This study manifested that the method can timely achieve and dynamically monitor the cotton area and growth information at small-scale. It can also provide basis for early prediction of cotton production. This research has positive significance to improve the levels of cotton cultural production and management.
机译:棉花面积和增长信息是棉花生产和管理的重要依据。本文占据了山东省冠屋县的鼎庄镇作为研究区,选择了CBERS01和HJ1B卫星图像作为信息来源。选择具有明显棉花信息的相似阶段,根据预处理后的典型物体的光谱特性,通过决策树分类模型获得棉花面积。根据2009年棉花种植季节的四个不同时间遥感图像分析了空间和时间植被指数和棉花生长条件的定期变化。结果表明,棉花面积的提取精度超过90%。在过去的10年里,棉花种植面积增加7529.4 HM2。随着每周期内的棉花成长,棉花的增长信息显示出不同的空间和时间分布规律。监测结果与调查的棉花产量一致。本研究表明,该方法可以在小规模上及时地实现和动态监测棉花面积和生长信息。它还可以为早期预测棉花生产提供依据。该研究具有积极的意义,可以提高棉花文化生产和管理水平。

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