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Fusion of MRI and CT images using guided image filter and image statistics

机译:使用引导图像过滤器和图像统计融合MRI和CT图像

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摘要

In medical imaging using different modalities such as MRI and CT, complementary information of a targeted organ will be captured. All the necessary information from these two modalities has to be integrated into a single image for better diagnosis and treatment of a patient. Image fusion is a process of combining useful or complementary information from multiple images into a single image. In this article, we present a new weighted average fusion algorithm to fuse MRI and CT images of a brain based on guided image filter and the image statistics. The proposed algorithm is as follows: detail layers are extracted from each source image by using guided image filter. Weights corresponding to each source image are calculated from the detail layers with help of image statistics. Then a weighted average fusion strategy is implemented to integrate source image information into a single image. Fusion performance is assessed both qualitatively and quantitatively. Proposed method is compared with the traditional and recent image fusion methods. Results showed that our algorithm yields superior performance.
机译:在使用不同方式(例如MRI和CT)的医学成像中,将捕获目标器官的补充信息。这两种方式的所有必要信息都必须集成到单个图像中,以更好地诊断和治疗患者。图像融合是将来自多个图像的有用或补充信息组合为单个图像的过程。在本文中,我们提出了一种新的加权平均融合算法,可基于引导图像过滤器和图像统计信息融合大脑的MRI和CT图像。所提出的算法如下:通过使用引导图像过滤器从每个源图像中提取细节层。在图像统计的帮助下,根据细节层计算与每个源图像相对应的权重。然后,实施加权平均融合策略以将源图像信息集成到单个图像中。融合性能通过定性和定量评估。将提出的方法与传统和最近的图像融合方法进行了比较。结果表明,我们的算法产生了卓越的性能。

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