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首页> 外文期刊>Journal of Applied Remote Sensing >Quality assessment of remote sensing image fusion using feature-based fourth-order correlation coefficient
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Quality assessment of remote sensing image fusion using feature-based fourth-order correlation coefficient

机译:基于特征四阶相关系数的遥感影像融合质量评估

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摘要

In remote sensing fusion, the spatial details of a panchromatic (PAN) image and the spectrum information of multispectral (MS) images will be transferred into fused images according to the characteristics of the human visual system. Thus, a remote sensing image fusion quality assessment called feature-based fourth-order correlation coefficient (FFOCC) is proposed. FFOCC is based on the feature-based coefficient concept. Spatial features related to spatial details of the PAN image and spectral features related to the spectrum information of MS images are first extracted from the fused image. Then, the fourth-order correlation coefficient between the spatial and spectral features is calculated and treated as the assessment result. FFOCC was then compared with existing widely used indices, such as Erreur Relative Globale Adimensionnelle de Synthese, and quality assessed with no reference. Results of the fusion and distortion experiments indicate that the FFOCC is consistent with subjective evaluation. FFOCC significantly outperforms the other indices in evaluating fusion images that are produced by different fusion methods and that are distorted in spatial and spectral features by blurring, adding noise, and changing intensity. All the findings indicate that the proposed method is an objective and effective quality assessment for remote sensing image fusion. (C) 2016 Society of Photo-Optical Instrumentation Engineers (SPIE)
机译:在遥感融合中,全色(PAN)图像的空间细节和多光谱(MS)图像的光谱信息将根据人类视觉系统的特性转换为融合图像。因此,提出了一种基于图像特征的四阶相关系数(FFOCC)的遥感图像融合质量评估。 FFOCC基于基于特征的系数概念。首先从融合图像中提取与PAN图像的空间细节有关的空间特征和与MS图像的光谱信息有关的光谱特征。然后,计算空间特征与光谱特征之间的四阶相关系数,并将其作为评估结果。然后将FFOCC与现有的广泛使用的指数(例如Erreur相对全球综合指数)进行比较,并在没有参考的情况下评估质量。融合和失真实验的结果表明,FFOCC与主观评估是一致的。 FFOCC在评估由不同融合方法生成的融合图像时会明显胜过其他指标,这些融合图像由于模糊,增加噪声和改变强度而在空间和光谱特征上失真。所有发现表明,该方法是一种客观有效的遥感图像融合质量评估方法。 (C)2016年光电仪器工程师学会(SPIE)

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