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A novel technique for medical image fusion using improved contourlet transformation with modified DFBs

机译:使用改进的轮廓波变换和改进的DFB的医学图像融合新技术

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Medical Image fusion plays an critical and vital role in today's medical field to diagnose particular disease and this concept is still under research. Image Fusion is a process in which we merge two or more images captured by different instruments or modalities to produce single image that provide accurate and clear information without any degradation in quality of image. Fused image will be analyses by doctors to diagnose the disease in particular patient. In this paper, we proposed novel technique which is based on contourlet transformation. We proposed improved contourlet in which pyramid decomposition is replaced by multiscale decomposition with improved DBFs: replace low pass filter and high pass filter with log Gabor filters. This novel technique not only sharply localizes image also eliminates DC component to provide accurate information which is main feature of log Gabor filter. In this paper, we are fusing CT and MRI modalities images into single image without any degradation in quality. We are considering registered images only (same size and same alignment). Performance of new technique is evaluated by quality measures like EN (entropy), STD (standard deviation), MI (mutual information), Quality index and PSNR.
机译:医学图像融合在当今医学领域中诊断特定疾病起着至关重要的作用,这一概念仍在研究中。图像融合是一个过程,在该过程中,我们合并由不同工具或方式捕获的两个或更多图像,以生成单个图像,这些图像可提供准确而清晰的信息,而不会降低图像质量。医生将对融合图像进行分析,以诊断特定患者的疾病。在本文中,我们提出了一种基于轮廓波变换的新技术。我们提出了一种改进的轮廓波,其中用改进的DBF将金字塔分解替换为多尺度分解:用对数Gabor滤波器代替低通滤波器和高通滤波器。这种新颖的技术不仅可以对图像进行局部定位,而且还消除了直流分量,从而提供了准确的信息,这是对数Gabor滤波器的主要特征。在本文中,我们将CT和MRI模态图像融合为单个图像,而质量没有任何下降。我们仅考虑注册的图像(相同尺寸和相同对齐)。新技术的性能通过EN(熵),STD(标准差),MI(互信息),质量指标和PSNR等质量度量进行评估。

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