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A model-based approach to multiresolution fusion in remotely sensed images

机译:基于模型的遥感图像多分辨率融合方法

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摘要

In this paper, a model-based approach to multiresolution fusion of remotely sensed images is presented. Given a high spatial resolution panchromatic (Pan) image and a lowspatial resolution multispectral (MS) image acquired on the same geographical area, the presented method aims to enhance the spatial resolution of the MS image to the resolution of the Pan observation. The proposed fusion technique utilizes the spatial correlation of each of the high-resolution MS channels by using an autoregressive (AR) model, whose parameters are learnt from the analysis of the Pan data. Under the assumption that the parameters of the AR model for the Pan image are the same as those that represent the MS images due to spectral correlation, the proposed technique exploits the learnt parameter values in the context of a proper regularization technique to estimate the high spatial resolution fields for the MS bands. This results in a combination of the spectral characteristics of the low-resolution MS data with the high spatial resolution of the Pan image. The main advantages of the proposed technique are: 1) unlike standard methods proposed in the literature, it requires no registration between the Pan and the MS images; 2) it models effectively the texture of the scene during the fusion process; 3) it shows very small spectral distortion (as it is less affected, compared to standard methods, by the specific digital numbers of pixels in the Pan image, since it exploits the learnt parameters from the Pan image rather than the actual Pan digital numbers for fusion); and 4) it can be used in critical situations in which the Pan and the MS images are acquired (also by different sensors) in slightly different areas. Quantitative experimental results obtained using Landsat-7 Enhanced Thematic Mapper Plus (ETM+) and Quickbird images point out the effectiveness of the proposed method.
机译:本文提出了一种基于模型的遥感图像多分辨率融合方法。给定在同一地理区域上获取的高空间分辨率全色(Pan)图像和低空间分辨率多光谱(MS)图像,提出的方法旨在将MS图像的空间分辨率提高到Pan观察的分辨率。所提出的融合技术通过使用自回归(AR)模型来利用每个高分辨率MS通道的空间相关性,该模型的参数是从Pan数据的分析中获悉的。在假设Pan图像的AR模型参数与代表MS图像的参数由于频谱相关而相同的情况下,所提出的技术在适当的正则化技术的背景下利用学习的参数值来估计高空间MS频段的分辨率字段。这导致低分辨率MS数据的光谱特性与Pan图像的高空间分辨率相结合。所提出的技术的主要优点是:1)与文献中提出的标准方法不同,它不需要在Pan和MS图像之间进行配准; 2)在融合过程中有效地建模场景的纹理; 3)它显示出非常小的光谱失真(与标准方法相比,它受Pan图像中特定像素数字数量的影响较小,因为它利用了从Pan图像中学习到的参数,而不是实际的Pan数字)融合);和4)它可用于需要在稍微不同的区域(也通过不同的传感器)获取Pan和MS图像的紧急情况下。使用Landsat-7增强主题映射器(ETM +)和Quickbird图像获得的定量实验结果表明了该方法的有效性。

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