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Multilevel medical image fusion using multi-level local extrema and non sub-sampled contourlet transformation

机译:多级医学图像融合,使用多级局部极值和非子采样轮廓变换

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In recent days, Multimodal image fusion is one of the important aspects especially in clinical diagnosis applications. Multimodal image fusion fuses two images obtained from the different imaging devices. This paper proposed a two-stage multimodal image fusion framework using the parallel combination of Multilevel Local Extrema (MLE) and Non Sub-Sampled Contourlet Transform (NSCT). Furthermore to improve the shift variance, directionality, and phase information in the fused image using the NSCT technique. The performance of the proposed work is tested with six different standard data set images. The experimental results shows that the performance of proposed method superior than several existing state-of-art methods in terms of quality metrics.
机译:最近的几天,多模式图像融合是特别是在临床诊断应用中的重要方面之一。多模式图像融合熔断来自不同的成像装置获得的两个图像。本文提出了一种使用多级局部极值(MLE)和非子采样轮廓件变换(NSCT)的并联组合的两级多峰图像融合框架。此外,为了使用NSCT技术改善熔融图像中的移位方差,方向性和相位信息。用六个不同的标准数据集图像测试所提出的工作的性能。实验结果表明,在质量指标方面,所提出的方法优于几种现有的现有方法。

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