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Fusion of Multispectral and Panchromatic Satellite Images using Principal Component Analysis and Nonsubsampled Contourlet Transform

机译:使用主成分分析和非正斑卫星图像的多光谱和全色卫星图像的融合

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A novel fusion scheme is proposed for multispectral (MS) and panchromatic (PAN) satellite images using Principal Component Analysis (PCA) and Nonsubsampled Contourlet Transform (NSCT). This scheme first performs PCA on MS, and NSCT on PAN and the first principal component (PC) to get corresponding low-frequency and high-frequency coefficients, then fuses the approximation coefficients using PCA again for the tradeoff between the spectral and spatial information, and fuses the subbands coefficients based on local variance for the spatial detail information, finally a fused image is formed through inverse NSCT and inverse PCA. Experimental results show that the proposed fusion scheme can effectively preserve spectral information while improving the spatial quality, and outperforms the general IHS-, PCA-, wavelet-, contourlet-based fusion methods.
机译:使用主成分分析(PCA)和非法均采样Contourlet变换(NSCT),提出了一种用于多光谱(MS)和Panchromic(PAN)卫星图像的新型融合方案。该方案首先在MS上执行PCA,并且NSCT在PAN和第一主组件(PC)上获得相应的低频和高频系数,然后使用PCA再次熔化近似系数,以便在光谱和空间信息之间进行折衷,基于用于空间细节信息的局部方差来解决基于空间细节信息的子带系数,最后通过逆NSCT和逆PCA形成融合图像。实验结果表明,该融合方案可以有效地保护光谱信息,同时提高空间质量,优于一般IHS,PCA-,小波,基于轮廓的融合方法。

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