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City-scale Agricultural Land Use Detection using Soil Moisture Derived from GF-1 Images

机译:城市规模的农业用地使用源自GF-1图像的土壤水分检测

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Agricultural land use is essential for prosperity and sustainability of a city. However, the performance of detecting agricultural land use based on vegetation parameters will be substantially reduced when the vegetation changed in type, quantity and condition. This study believed that soil moisture, a fundamental soil parameter, is able to detect agricultural land use. A method was proposed to evaluate city-scale agricultural land use detection capability based on three temporal statistics of soil moisture in both local and global perspectives. Using GF-1 images as a data source, an experiment in Wuhan city was performed to discuss the city-scale agricultural land use detection capability based on soil moisture. Soil moisture were inverted by the modified perpendicular drought index derived from GF-1 images. Under the visual and quantitative comparisons, it was found that the temporal mean of soil moisture performed much better than the temporal standard deviation of soil moisture and the temporal coefficient of variance of soil moisture. The overall accuracy and Kappa coefficient of the temporal mean of soil moisture reach 91.7% and 0.81, respectively, demonstrating its great capability of detecting city-scale agricultural land use. A global analysis is implemented by regression analyses with true zonal agricultural statistics, showing a high global accuracy in agricultural land use detection.
机译:农业用地利用对于城市的繁荣和可持续性至关重要。然而,当植被改变类型,数量和条件时,基于植被参数检测基于植被参数的农业用地使用的性能。本研究认为,土壤水分,一个基础土壤参数,能够检测农业用地使用。提出了一种方法,以评估城市规模的农业土地利用检测能力,基于本地和全球视角的三个时间统计。使用GF-1图像作为数据源,武汉市进行了实验,讨论了基于土壤水分的城市规模农业用地利用检测能力。通过衍生自GF-1图像的改性垂直干旱指数反转土壤水分。在视觉和定量比较下,发现土壤水分的时间平均值比土壤水分的时间标准偏差和土壤湿度的时间变异系数好得多。土壤水分的整体精度和κ系数分别达到91.7%和0.81,展示了其检测城市规模农业用地利用的能力。全球分析由具有真正的民族农业统计数据的回归分析来实施,在农业土地使用检测中显示出高的全球准确性。

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