首页> 外文期刊>Optik: Zeitschrift fur Licht- und Elektronenoptik: = Journal for Light-and Electronoptic >Multiscale fusion of multimodal medical images using lifting scheme based biorthogonal wavelet transform
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Multiscale fusion of multimodal medical images using lifting scheme based biorthogonal wavelet transform

机译:使用基于提升方案的双正交小波变换的多模式医学图像的多尺度融合

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摘要

Medical image fusion has been used to improve useful and relevant information (e.g., precise localization of abnormalities) of multimodal medical images, such as computed tomography (CT), magnetic resonance imaging (MRI) and positron emission tomography (PET) images, and the information obtained from the fused images can then be utilized as an assistive tool for better diagnosis and treatment. In this work, we propose an algorithm for fusing multimodal medical images using lifting scheme-based biorthogonal wavelet transform. The multiscale fusion scheme is performed for the multimodal medical images in the wavelet domain at multiple scales by adopting either average or absolute maximum fusion rules. To verify the effectiveness of the proposed method, a series of visual and quantitative performance evaluations of the proposed method are compared with those of five representative wavelet-based fusion methods including contourlet transform (CLT), nonsubsampled CLT (NSCLT), lifting wavelet transform (LWT), multiwavelet transform (MWT), and stationary wavelet transform (SWT). For the quantitative performance evaluations, we adopted five metrics: fusion factor, fusion symmetry, entropy, standard deviation and edge strength. The experimental results demonstrated that the proposed method could yield better results than other wavelet transform-based fusion methods. Furthermore, from the additional comparison study of fusing noise-contaminated images, we could conclude that the proposed method is noise resilient in fusing images corrupted by Gaussian and speckle noise with varying variances.
机译:医学图像融合已被用于改善多模式医学图像的有用和相关信息(例如,精确定位),例如计算机断层扫描(CT),磁共振成像(MRI)和正电子发射断层扫描(PET)图像,以及然后,从融合图像获得的信息可以用作辅助工具,以便更好地诊断和治疗。在这项工作中,我们提出了一种利用基于提升方案的双正交小波变换融合多模医学图像的算法。通过采用平均值或绝对最大融合规则,在多个尺度下对小波域中的多模式医学图像执行多尺度融合方案。为了验证所提出的方法的有效性,将所提出的方法的一系列视觉和定量性能评估与包括Contoullet变换(CLT),非求采样的CLT(NSCLT)的五个代表性小波的融合方法进行比较,提升小波变换( LWT),多小波变换(MWT)和固定小波变换(SWT)。对于定量绩效评估,我们采用五个度量:融合因子,融合对称,熵,标准偏差和边缘强度。实验结果表明,所提出的方法可以产生比其他基于小波变换的融合方法更好的结果。此外,从融合噪声污染图像的额外比较研究,我们可以得出结论,所提出的方法是由高斯和散斑噪声损坏的融合图像中具有变化的差异的噪声弹性。

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