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首页> 外文期刊>Remote Sensing of Environment: An Interdisciplinary Journal >Land cover mapping at sub-pixel scales using linear optimization techniques
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Land cover mapping at sub-pixel scales using linear optimization techniques

机译:使用线性优化技术以亚像素比例绘制土地覆盖图

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摘要

Mixed pixels result when the sensor's instantaneous field-of-view includes more than one land cover class on the ground. For mixed pixels, fuzzy classifiers can be used, which assign a pixel to several land cover classes in proportion to the area of the pixel that each class covers. These fraction values can be assigned to sub-pixels, based on the assumption of spatial dependence and the application of linear optimization techniques. A newly proposed sub-pixel mapping algorithm was first applied to a synthetic data set with a 1-km resolution, derived from a 20-m resolution image. This algorithm yielded land cover maps at 500, 200, and 100 m resolution with accuracies close to 89%. Subsequent mode filtering further increased these values. When applied to a real data set, the accuracy reached 78%. While this study suggests the potential of the proposed technique, there is still ample scope for improvements and extensions.
机译:当传感器的瞬时视场在地面上包含多个地面覆盖类别时,将产生混合像素。对于混合像素,可以使用模糊分类器,模糊分类器根据每个类别覆盖的像素面积按比例将像素分配给多个土地覆被类别。基于空间依赖性的假设和线性优化技术的应用,可以将这些分数值分配给子像素。首先将新提出的子像素映射算法应用于从20 m分辨率的图像中提取的1 km分辨率的合成数据集。该算法产生了分辨率为500、200和100 m的土地覆盖图,其精度接近89%。随后的模式过滤进一步增加了这些值。当应用于真实数据集时,准确性达到78%。尽管这项研究表明了所提出技术的潜力,但仍有很大的改进和扩展空间。

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