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Crop Area Estimation from UAV Transect and MSR Image Data Using Spatial Sampling Method

机译:使用空间采样方法从UAV TransCECT和MSR图像数据的裁剪区域估计

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Using remote sensing data to estimate crop area is efficient to a wide range of end-users, including government agencies, farmers and researchers. Moderate spatial resolution (MSR) image data are widely used to estimate crop area. But its accuracy can't meet the demands of precision. Spatial sampling techniques integrated the strengths of remote sensing and sampling survey are being widely used. This method need large sample size which is cannot be guaranteed by remote sensing due to weather. The Unmanned Aerial Vehicle (UAV) can be used as an effective way to guarantee enough sample size. This paper proposed a spatial sampling method using MSR image classification results and UAV transects, a stratified random sampling method was proposed, area-scale (from MSR image classification) was used as auxiliary variable to guide the distribution of UAV transects, which had proved that 2% sampling ratio can make the crop area estimation accuracy more than 95% with a 95% confidence interval.
机译:使用遥感数据来估计作物区域是有效的,包括各种最终用户,包括政府机构,农民和研究人员。中等空间分辨率(MSR)图像数据被广泛用于估计作物区域。但其准确性无法满足精确的需求。空间采样技术集成了遥感和采样调查的优势。这种方法需要大量的样本量,由于天气而无法通过遥感来保证。无人驾驶飞行器(UAV)可用作保证足够的样品大小的有效方法。本文提出了一种使用MSR图像分类结果和UAV横切的空间采样方法,提出了一种分层随机采样方法,面积级(从MSR图像分类)用作辅助变量,以指导UAV横切的分布,这证明了这一点2%采样比率可以使作物面积估计精度超过95%,置信区间95%。

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