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Catchment-scale mapping of surface grain size in gravel bed rivers using airborne digital imagery.

机译:利用机载数字图像对砾石床河流的表层粒度进行集水规模制图。

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摘要

This study develops and assesses two methods for estimating median surface grain sizes using digital image processing from centimeter-resolution airborne imagery. Digital images with ground resolutions of 3 cm and 10 cm were combined with field calibration measurements to establish predictive relationships for grain size as a function of both local image texture and local image semivariance. Independently acquired grain size data were then used to assess the algorithm performance. Results showed that for the 3 cm imagery both local image semivariance and texture are highly sensitive to median grain size, with semivariance being a better predictor than image texture. However, in the case of 10 cm imagery, sensitivity of image semivariance and texture to grain size was poor, and this scale of imagery was found to be unsuitable for grain size estimation. This study therefore demonstrates that local image properties in very high resolution digital imagery allow for automated grain size measurement using image processing and remote sensing methods
机译:这项研究开发并评估了两种使用厘米分辨率机载图像进行数字图像处理来估计中值表面晶粒尺寸的方法。将地面分辨率为3 cm和10 cm的数字图像与现场校准测量值结合起来,以建立晶粒尺寸的预测关系,该关系是局部图像纹理和局部图像半方差的函数。然后使用独立获取的粒度数据来评估算法性能。结果表明,对于3 cm的图像,局部图像半方差和纹理均对中值粒度高度敏感,半方差比图像纹理更好地预测。但是,在10 cm图像的情况下,图像半变异性和纹理对晶粒尺寸的敏感性很差,并且发现此图像比例不适用于晶粒尺寸估计。因此,这项研究表明,非常高分辨率的数字图像中的局部图像属性允许使用图像处理和遥感方法进行自动粒度测量

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