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首页> 外文期刊>Neuroscience Letters: An International Multidisciplinary Journal Devoted to the Rapid Publication of Basic Research in the Brain Sciences >An image fusion algorithm based on multi-resolution decomposition for functional magnetic resonance images.
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An image fusion algorithm based on multi-resolution decomposition for functional magnetic resonance images.

机译:一种基于多分辨率分解的功能磁共振图像图像融合算法。

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摘要

This paper presents a new functional image fusion algorithm which is the combination of SPM and ICA using multi-resolution decomposition. Firstly, we designed the fMRI experiments and obtained the fMRI image data from different experimental conditions. The brain activated regions were extracted by the SPM and ICA methods respectively. Secondly, by constructing the Laplacian pyramids of the source image, a new fusion rule based on the salience and matching measure is proposed in various resolutions. Finally, the fused functional images are reconstructed by the inverse Laplacian pyramid transformation. The results show that the algorithm can retain the details of the source images and pinpoint exactly the brain functional area associated with the hand action, thus outperforming SPM or ICA for functional regions extraction.
机译:本文提出了一种新的功能图像融合算法,该算法是通过多分辨率分解将SPM和ICA结合在一起的。首先,我们设计了功能磁共振成像实验,并从不同的实验条件下获得了功能磁共振成像图像数据。分别通过SPM和ICA方法提取大脑激活区域。其次,通过构造源图像的拉普拉斯金字塔,提出了一种基于显着性和匹配度量的各种分辨率的新融合规则。最后,通过逆拉普拉斯金字塔逆变换来重建融合的功能图像。结果表明,该算法可以保留源图像的细节并精确定位与手部动作相关的大脑功能区域,从而在提取功能区域方面优于SPM或ICA。

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