基于不同分辨率DEM的东北漫川漫岗区 坡度转换模型研究
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作者单位:

1.西北农林科技大学;2.中国科学院教育部水土保持与生态环境研究中心;3.西北农林科技大学水土保持科学院工程学院

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中图分类号:

S157.1

基金项目:

十四五国家重点研发计划项目子课题“黑土地农用土壤质量退化对作物产量降低的作用机制”(2022YFD1500102); 中国科学院A类战略性先导科技专项子课题“典型黑土区风力—水力—冻融驱动的复合侵蚀过程与阻控关键技术”(XDA28010201)


Slope Gradient Conversion Model Based on Different DEM Resolutions in Rolling Hilly Region of the Chinese Mollisol Region
Author:
Affiliation:

1.College of Soil and Water Conservation Science and Engineering, Northwest A&2.F University;3.The Research Center of Soil and Water Conservation and Ecological Environment, Chinese Academy of Sciences and Ministry of Education

Fund Project:

Sub- project of National Key R&D Program of China (2022YFD1500102); The Sub-topics of Class A Strategic Priority Science and Technology Project of Chinese Academy of Sciences “Composite erosion process and key technology of resistance control driven by wind-water-freeze-thaw in typical black soil area” (XDA28010201).

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    摘要:

    :【目的】精确获取东北漫川漫岗区坡度数据将为土壤侵蚀定量评价提供重要数据支持。【方法】为克服目前可免费下载的30 m分辨率DEM在提取东北漫川漫岗区农地坡度时存在的坡度变缓问题,本研究基于无人机航测影像生成5 cm分辨率的DEM并对其重采样获得1、5和12.5 m分辨率的DEM,结合免费下载的 30 m分辨率DEM,得到了5组不同分辨率的DEM;通过对比研究区不同分辨率与5 cm分辨率DEM提取坡度信息的差异,确定了研究区DEM提取坡度的最佳分辨率;基于直方图匹配算法,分坡度段拟合了30 m与最佳分辨率DEM之间的坡度转换模型。【结果】(1)5组DEM分辨率提取的坡度信息表明,1m和5 m与5 cm分辨率DEM提取的坡度分布频率具有较强的相似性,且5 m分辨率DEM与1:10000比例尺地形图的分辨率相对应,据此确定5 m为构建坡度转换模型的最佳DEM分辨率。(2)基于直方图匹配算法分坡度段构建了30 m与5 m分辨率DEM提取坡度的一元一次线性模型和一元二次非线性模型;且当地面坡度小于7°时宜选取线性坡度转换模型,而当地面坡度大于7°时宜选取非线性坡度转换模型。(3)经线性和非线性坡度转换模型优化后,坡度分布频率与5 m分辨率的坡度分布频率基本相似,且协方差、相关系数均大幅度提高,说明30 m分辨率DEM提取的坡度信息经模型转换后能够真实反映地面起伏特征,且非线性坡度转换模型优化效果更佳。【结论】构建的低—高分辨率的坡度转换模型,克服了30 m分辨率DEM无法准确反映地面起伏的局限性,还原了真实的地面坡度特征,为研究区地面真实坡度的获取提供了方法支持。

    Abstract:

    [Objective] Accurately obtaining slope gradient data of the rolling hilly region in the Chinese Mollisol area is crucial for the quantitative evaluation of soil erosion. [Methods] This study aimed to address the issue of slope gradient reduction when extracting farmland slope gradient in the rolling hilly region in the Chinese Mollisol area using the currently available 30 m resolution Digital Elevation Model (DEM). To achieve this, a 5 cm resolution DEM was generated based on drone survey images and resampled to obtain 1 m, 5 m, and 12.5 m DEM-resolutions. Combined with the free downloaded 30 m resolution DEM, five groups of different DEM-resolutions were obtained. A comparative study was conducted to analyze the difference between the slope gradient information extracted by different DEM-resolutions and 5 cm resolution DEM to determine the best resolution of DEM for extracting slope gradient in the study area. Based on the histogram matching algorithm, a slope gradient conversion model between 30 m and the best resolution DEM was fitted for each slope gradient segment. [Results] (1) The slope gradient information extracted by the five groups of DEM resolutions showed that the frequency distribution of slopes gradient extracted by 1 m and 5 m DEMs have strong similarity with those extracted by 5 cm resolution DEM. Considering that the resolution of 5 m DEM corresponds to that of a 1:10000 scale topographic map, 5 m was determined as the best DEM resolution for building the slope gradient conversion model. (2) Based on the histogram matching method, a univariate linear model and a univariate quadratic non-linear model of slope gradient conversion between 30 m and 5 m resolution DEMs were constructed for each slope gradient segment. It was appropriate to select the linear slope gradient conversion model when the ground slope gradient was less than 7°, while it was appropriate to select the non-linear slope gradient conversion model when the ground slope gradient was greater than 7°. (3) After optimization by linear and non-linear slope gradient conversion models, the frequency distribution of slope gradients was basically similar to that of 5 m resolution, and the covariance and correlation coefficient were greatly improved. This indicated that the slope gradient information extracted by 30 m resolution DEM could truly reflect the ground undulation features after model conversion, and the optimization effect of the non-linear slope gradient conversion model was better. [Conclusion] The constructed low-high resolution slope gradient conversion model provides method support for obtaining the real slope gradient of the ground in the study area.

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  • 收稿日期:2024-06-01
  • 最后修改日期:2024-09-02
  • 录用日期:2024-09-05
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