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Extraction of Rice Cropping Area from High Resolution Remote Sensing Image Based on Sample Knowledge Mining

机译:基于样本知识挖掘的高分辨率遥感图像提取水稻种植面积

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A new method of extracting rice cropping area from high resolution remote sensing image based on sample knowledge mining was proposed to aim at the fact that rice cropping area in high-resolution remote sensing images is actually mixed information of rice, soil, water, weeds and duckweed. Based on the spatial autocorrelation theory, this method makes use of the combined features of rice cropping area based on various basic units of spectrum and texture, to build an extraction strategy of rice cropping area: firstly, achieve image segmentation to obtain the basic unit of various mixed ground information. Then the rice basic unit types are determined by analyzing the basic unit types contained in the rice sample polygon, and the basic units of the corresponding types are all classified into the initial rice cropping area. Finally, eliminate the initial rice cropping area polygons which do not conform to the basic unit combination rule of rice cropping area learnt from the samples. The result of extracting rice cropping area shows that the method in this paper is precise and practical.
机译:提出了一种从基于样本知识挖掘的高分辨率遥感图像中提取水稻种植面积的新方法,以旨在高分辨率遥感图像中的稻米种植面积实际上是大米,土壤,水,杂草和杂草的混合信息浮萍。基于空间自相关理论,这种方法利用基于各种基本的谱和质地单元的稻米种植面积的组合特征,建立水稻种植面积的提取策略:首先,实现图像分割以获得基本单位各种混合地面信息。然后通过分析米样品多边形中包含的基本单元类型来确定水稻基本单元类型,并且相应类型的基本单元全部分为初始稻米种植区域。最后,消除初始稻米种植区域多边形,不符合来自样品的基础裁剪区域的基本单元组合规则。提取稻田种植区的结果表明,本文的方法精确实用。

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