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Osseous and digital subtraction angiography image fusion via various enhancement schemes and Laplacian pyramid transformations

机译:通过各种增强方案和拉普拉斯金字塔变换进行骨和数字减影血管造影图像融合

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Image fusion is a significant medical imaging tool which integrates the complimentary information from various sources into a single frame for enhanced visual perception. The fusion of osseous and vascular information is used for the localization of various medical abnormalities. The emergence of gradient reversal artefacts and halo effects in the fused image are of major concern for the researchers. In this paper we propose an image fusion technique to mitigate the artefact issues in case of bone and vessel image fusion. An ideal image fusion rule transfers maximum information from source images to fused image with least amount of distortion or loss. In this regard we have transformed the source images with the help of KL transformations and Ripplet transform. The artefacts are controlled via anisotropic diffusion filtering. The Laplacian pyramidal based fusion is employed to fuse the mask and DSA images. For the validation of our proposed methodology conventional as well gradient based metrics along with human visual perception are employed. The proposed methodology outperforms eight other state-of-the-art image fusion techniques with far better visual results. The entire algorithm is implemented in MATLAB 2012 with core i5 processor.
机译:图像融合是一种重要的医学成像工具,可将来自各种来源的互补信息整合到单个帧中,以增强视觉感知。骨和血管信息的融合用于各种医学异常的定位。研究人员主要关注融合图像中梯度反转伪像和光晕效应的出现。在本文中,我们提出了一种图像融合技术来减轻骨骼和血管图像融合情况下的伪影问题。理想的图像融合规则将最大程度的信息从源图像传输到融合图像,而失真或损失量最少。在这方面,我们借助KL变换和Ripplet变换对源图像进行了变换。伪影通过各向异性扩散过滤进行控制。基于拉普拉斯金字塔的融合用于融合蒙版和DSA图像。为了验证我们提出的方法,采用了常规的以及基于梯度的度量以及人类的视觉感知。所提出的方法优于其他八种最新的图像融合技术,其视觉效果要好得多。整个算法在带有核心i5处理器的MATLAB 2012中实现。

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