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Can Multiresolution Fusion Techniques Improve Classification Accuracy?

机译:多分辨率融合技术能否提高分类精度?

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In this paper we propose an analysis of the effects of the multiresolution fusion process on the accuracy provided by supervised classification algorithms. In greater detail, the rationale of this analysis consists in understanding in what conditions the merging process can increase/decrease the classification accuracy of different labeling algorithms. On the one hand, it is expected that the multiresolution fusion process can increase the classification accuracy of simple classifiers, characterized by linear or "moderately" non-linear discriminant functions. On the other hand, the spatial and spectral artifacts unavoidably included in the fused images can decrease the accuracy of more powerful classifiers, characterized by strongly non-linear discriminant functions. In this last case, in fact, the classifier is intrinsically able to extract and emphasize all the information present in the original images without any need of a merging procedure. These effects may be different by considering different fusion methodologies and different classification techniques. Several experiments are carried out by applying the different fusion and classification techniques to an image acquired by the Quickbird sensor on the city of Pavia (Italy). From these experiments it is possible to derive interesting conclusions on the effectiveness and the appropriateness of the different investigated multiresolution fusion techniques with respect to classifiers having different complexity and capacity.
机译:在本文中,我们提出了对多分辨率融合过程对监督分类算法提供的准确性的影响的分析。更详细地说,此分析的原理在于了解合并过程可以在什么条件下增加/减少不同标记算法的分类精度。一方面,期望多分辨率融合过程可以提高简单分类器的分类精度,其特征在于线性或“中等”非线性判别函数。另一方面,不可避免地包括在融合图像中的空间和频谱伪像会降低以强大的非线性判别函数为特征的更强大分类器的准确性。实际上,在最后一种情况下,分类器本质上能够提取并强调原始图像中存在的所有信息,而无需任何合并程序。通过考虑不同的融合方法和不同的分类技术,这些效果可能会有所不同。通过将不同的融合和分类技术应用于通过Pavia(意大利)市的Quickbird传感器获取的图像,进行了一些实验。从这些实验中,有可能得出有趣的结论,即关于具有不同复杂性和能力的分类器,不同研究的多分辨率融合技术的有效性和适当性。

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