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Performance evaluation of image fusion using the Multi-Wavelet and Curvelet transforms

机译:使用多小波和Curvelet变换的图像融合性能评估

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Image fusion refers to the process of combining the relevant information from two or more images into a single highly informative image. The resulting fused image contains more information than the input images. In this paper, an algorithm for fusing two different modality medical images based on the Multi-Wavelet Transform (MWT) and Curvelet transform using different fusion techniques was implemented and results are analyzed using different quantitative measures. The images obtained from different medical imaging techniques such as Computer Tomography (CT) and Magnetic Resonance (MR) images are fused into a new image to improve the information content for diagnosis. In the present fusion algorithm, the input images from two different modalities such as CT and MR are initially registered and then transform namely Multi-Wavelet transform and Curvelet transform are applied on the input images. Finally the resultant images are fused using various fusion techniques. Fusion results are evaluated and compared according to four measures of performance - the Entropy (H), Root Mean Square Error (RMSE), Peak Signal to Noise Ratio (PSNR) and Correlation Coefficient (CC).
机译:图像融合是指将来自两个或更多图像的相关信息组合为单个高信息量图像的过程。生成的融合图像比输入图像包含更多的信息。本文提出了一种基于多小波变换(MWT)和Curvelet变换的融合不同技术的两种医学影像的算法,并采用了不同的融合技术,并对结果进行了定量分析。从不同的医学成像技术(例如计算机断层扫描(CT)和磁共振(MR)图像)获得的图像将融合到新图像中,以改善诊断信息的内容。在本融合算法中,首先对来自两种不同模态(例如CT和MR)的输入图像进行配准,然后将变换(即多小波变换和Curvelet变换)应用于输入图像。最后,使用各种融合技术融合所得图像。根据四个性能指标(熵(H),均方根误差(RMSE),峰值信噪比(PSNR)和相关系数(CC))对融合结果进行评估和比较。

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