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首页> 外文期刊>International journal of image mining >Decision based fuzzy logic approach for multimodal medical image fusion in NSCT domain
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Decision based fuzzy logic approach for multimodal medical image fusion in NSCT domain

机译:基于决策的NSCT域多峰医学图像融合的模糊逻辑方法

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摘要

Image fusion is used to reduce the redundancy and increases the needed information in the processed image from two or more input images that have different information generated by different sources. The output image has more information and is more suitable for visual perception or processing tasks like medical imaging, remote sensing, concealed weapon detection, weather forecasting, biometrics etc. Image fusion methods basically accept only registered images to produce a high quality fused single image with spatial and spectral information. The fused image with more information will improve the performance of image analysis algorithms used in medical applications. In this paper, we proposed an image fusion algorithm based on decision approach and NSCT to improve the future resolution of the images. In this, images will be segmented into regions and decomposed into sub-images and then processed using Fuzzy Logic, the information fusion is performed using these images under the certain criteria such as non subsampled contourlet transform (NSCT) and certain fusion rules such as Fuzzy Logic, and finally these sub-images are reconstructed into the resultant image with plentiful information. The various metrices entropy, mutual information (MI) and Fusion Quality are calculated to compare the results. The proposed method is compared both subjectively as well as objectively with the other image fusion methods. The experimental results show that the proposed method is better than other fusion methods and increases the quality and PSNR of fused image.
机译:图像融合用于降低冗余,并从具有不同源生成的不同信息的两个或更多个输入图像增加处理的图像中所需的信息。输出图像具有更多信息,更适合视觉感知或处理任务,如医学成像,遥感,隐藏武器检测,天气预报,生物识别,生物识别。图像融合方法基本上仅接受注册图像,以产生高质量的融合单图像空间和光谱信息。具有更多信息的融合图像将提高医疗应用中使用的图像分析算法的性能。在本文中,我们提出了一种基于决策方法的图像融合算法和NSCT来提高图像的未来解决方案。在此,将图像分段为区域并将其分解成子图像,然后使用模糊逻辑处理,使用这些图像在诸如非分布架构变换(NSCT)和某些融合规则之类的特定标准下执行信息融合,例如模糊诸如模糊的规则逻辑,最后将这些子图像重建为具有丰富信息的结果图像。计算各种熵,相互信息(MI)和融合质量以比较结果。所提出的方法是主观的以及客观地与其他图像融合方法进行比较。实验结果表明,该方法比其他融合方法更好,增加了融合图像的质量和PSNR。

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