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Image fusion methods suitable for biomedical image

机译:适用于生物医学图像的图像融合方法

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Abstract: The application of image fusion in biomedical image analysis has led to a new concept about the nature of disease and to new diagnostic capabilities. However, the algorithm research of fusion is still an open research topic because the algorithm is often changed with different original images, different detectors and different research objects. This paper focuses on comparison of four image fusion algorithms based on wavelet transform to select the suitable methods for biomedical image fusion. The algorithms include: (1) weighted algorithm, (2) maximum selection algorithm, (3) stressing one image and (4) logic OR algorithm. For the sake of selecting the suitable image fusion methods for biomedical images, we propose six quantitative performance measure criterion linked with the characters of the biomedical image: standard deviation ($sigma@), peak signal-to-noise ratio (PSNR), mean deviation ($Delta$mu@), the difference in entropy ($Delta@H), coefficient of correlation between the fusion image and ideal image (Correlation) and the difference in contrast between the fusion image and ideal image ($Delta@Contrast). Using the four algorithms to process biomedical images, such as fluorescence image and the corresponding transmission image, the visual investigation and the six quantitative performance measure criterion indicate that the weighted algorithm is the most suitable method for biomedical images among the four algorithms. !4
机译:摘要:图像融合在生物医学图像分析中的应用导致了关于疾病性质和诊断能力的新概念。然而,融合的算法研究仍然是一个开放的研究课题,因为该算法经常因不同的原始图像,不同的检测器和不同的研究对象而发生变化。本文重点比较四种基于小波变换的图像融合算法,以选择合适的生物医学图像融合方法。这些算法包括:(1)加权算法,(2)最大选择算法,(3)强调一张图像和(4)逻辑或算法。为了选择适合生物医学图像的图像融合方法,我们提出了六个与生物医学图像特征相关的定量性能测量标准:标准偏差($ sigma @),峰信噪比(PSNR),均值偏差($ Delta $ mu @),熵差($ Delta @ H),融合图像和理想图像之间的相关系数(Correlation)以及融合图像和理想图像之间的对比度差异($ Delta @ Contrast )。使用四种算法处理生物医学图像,例如荧光图像和相应的透射图像,目视研究和六种定量性能测量标准表明,加权算法是四种算法中最适合生物医学图像的方法。 !4

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