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Multimodal image/video fusion rule using generalized pixel significance based on statistical properties of the neighborhood - Springer

机译:基于邻域统计特性的使用广义像素重要性的多峰图像/视频融合规则-Springer

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摘要

Image fusion has been receiving increasing attention in the research community with the aim of investigating general formal solutions to a wide spectrum of applications such as multifocus, multiexposure, multispectral ((IR)-visible) and multimodal medical (CT and MRI) image and video fusion. While there exist many fusion techniques for each of these applications, it is difficult to formulate a common fusion technique that works equally well for all these applications. This is mainly because of the different characteristics of the images involved in various applications and the correspondingly different requirements on the fused image. In this work, we propose a common generalized fusion framework for all these classes, based on the statistical properties of local neighborhood of a pixel. As the eigenvalue of the unbiased estimate of the covariance matrix of an image block depends on the strength of edges in that block, we propose to employ it to compute a quantity we call as the significance of a pixel. This generalized pixel significance in turn can be used as a measure of the useful information content in that block, and hence can be used in the fusion process. Several data sets were fused to compare the results with various recently published methods. The analysis shows that for all the image types into consideration, the proposed methods improve the quality of the fused image, both visually and quantitatively, by preserving all the relevant information.
机译:图像融合已经在研究界引起了越来越多的关注,其目的是研究针对广泛应用的通用形式化解决方案,例如多焦点,多曝光,多光谱((IR)可见)和多峰医学(CT和MRI)图像和视频。融合。尽管对于每种应用都有许多融合技术,但很难制定出一种对所有这些应用都同样有效的通用融合技术。这主要是由于在各种应用中涉及的图像的不同特性以及对融合图像的相应不同要求。在这项工作中,我们基于像素局部邻域的统计特性,为所有这些类提出了一个通用的通用融合框架。由于图像块协方差矩阵的无偏估计的特征值取决于该块中边缘的强度,因此我们建议使用它来计算称为像素重要性的数量。该广义像素重要性又可以用作该块中有用信息内容的度量,因此可以在融合过程中使用。融合了几个数据集,以将结果与最近发布的各种方法进行比较。分析表明,对于所考虑的所有图像类型,所提出的方法通过保留所有相关信息,从视觉和数量上提高了融合图像的质量。

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