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A local approach to optimize the scale parameter in multiresolution segmentation for multispectral imagery

机译:一种用于在多光谱图像的多分辨率分割中优化比例参数的局部方法

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The results obtained using the object-based image analysis approach for remote sensing image analysis depend strongly on the quality of the segmentation step. In this paper, to optimize the scale parameter in a multiresolution segmentation, we analyse a high-resolution image of a large and heterogeneous agricultural area. This approach is based on using a set of agricultural plots extracted from official maps as uniform spatial units. The scale parameter is then optimized in each uniform spatial unit. Intra-object and inter-object heterogeneity measurements are used to evaluate each segmentation. To avoid subsegmentation, some oversegmentation is allowed, but is attenuated in a second step using the spectral difference segmentation algorithm. The statistical distribution of the scale parameter is not equal in all land uses, indicating the soundness of this local approach. A quantitative assessment of the results was also conducted for the different land covers. The results indicate that the spectral contrast between objects is larger with the local approach than with the global approach. These differences were statistically significant in all land uses except irrigated fruit trees and greenhouses. In the absence of subsegmentation, this suggests that the objects will be placed far apart in the space of variables, even if they are very close in the physical space. This is an obvious advantage in a subsequent classification of the objects.
机译:使用基于对象的图像分析方法进行遥感图像分析所获得的结果在很大程度上取决于分割步骤的质量。在本文中,为了优化多分辨率分割中的比例参数,我们分析了一个大型且异类的农业区域的高分辨率图像。此方法基于将从官方地图中提取的一组农业地块用作统一的空间单位。然后在每个统一的空间单位中优化比例参数。对象内和对象间异质性度量用于评估每个细分。为了避免细分,可以允许一些过度细分,但在第二步中使用频谱差异分割算法将其衰减。比例参数的统计分布在所有土地用途中均不相等,这表明这种局部方法的合理性。还对不同的土地覆盖范围进行了结果的定量评估。结果表明,与全局方法相比,局部方法的对象之间的光谱对比度更大。这些差异在除灌溉果树和温室外的所有土地用途上均具有统计学意义。在没有细分的情况下,这表明对象将在变量空间中放置得很远,即使它们在物理空间中非常接近也是如此。在对象的后续分类中,这是一个明显的优势。

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