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MAGNETIC RESONANCE AND COMPUTED TOMOGRAPHY IMAGE FUSION USING BIDIMENSIONAL EMPIRICAL MODE DECOMPOSITION

机译:磁共振和计算机断层扫描图像融合使用BIDIMININIINAL经验模式分解

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Image Fusion has been widely used for medical images to improve diagnosis accuracy and time by providing medical personnel with more comprehensive picture of the patient condition, where a single modality cannot provide. In this work, we explore image fusion using Empirical Mode Decomposition (EMD) for medical imaging purposes. In particular, we use Bidimensional Empirical Mode Decomposition (BEMD) to analyze Magnetic Resonance (MRI) and Computed Tomography (CT) Images and fuse the generated Bidimensional Intrinsic Mode Functions (BIMFs) using simple fusion rules. BEMD is particularly useful for medical images since the fused images are, in general, anatomically consistent. Thus, BEMD is more likely to yield homogeneous BIMFs, which in turn are easy to fuse computationally. Results of BEMD-based fusion are reported and compared with two other fusion techniques: Curvelet Fusion and Wavelet Fusion. Performance of BEMD is evaluated using perceived quality as well as using three popular image fusion quality metrics; namely, Peak Signal-to-noise Ratio (PSNR), Structure Similarity Index Metric (SSIM), and Mutual Information parameter (MI).
机译:图像融合已被广泛用于医学图像,通过提供具有更全面的患者状况的医疗人员来提高诊断精度和时间,其中单个模态无法提供。在这项工作中,我们使用经验模式分解(EMD)进行医学成像目的的图像融合。特别地,我们使用竞争经验模式分解(BEMD)来分析磁共振(MRI)和计算机断层扫描(CT)图像,并使用简单的Fusion规则融合产生的产生的BIVimensionic IntrinicS模式功能(BIMF)。由于融合的图像是一般的,BEMD对于医学图像特别有用,通常是一个解剖学一致的。因此,BEMD更有可能产生均匀的BIMFS,这又易于计算地保险。报道了BEMD系列的结果,并与另外两种融合技术进行了比较:Curvelet融合和小波融合。使用感知质量以及使用三种流行的图像融合质量指标来评估BEMD的性能;即,峰值信噪比(PSNR),结构相似度指数度量(SSIM)和相互信息参数(MI)。

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