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Projection-to-Projection Translation for Hybrid X-ray and Magnetic Resonance Imaging

机译:混合X射线和磁共振成像的投影对投影翻译

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Hybrid X-ray and magnetic resonance (MR) imaging promises large potential in interventional medical imaging applications due to the broad variety of contrast of MRI combined with fast imaging of X-ray-based modalities. To fully utilize the potential of the vast amount of existing image enhancement techniques, the corresponding information from both modalities must be present in the same domain. For image-guided interventional procedures, X-ray fluoroscopy has proven to be the modality of choice. Synthesizing one modality from another in this case is an ill-posed problem due to ambiguous signal and overlapping structures in projective geometry. To take on these challenges, we present a learning-based solution to MR to X-ray projection-to-projection translation. We propose an image generator network that focuses on high representation capacity in higher resolution layers to allow for accurate synthesis of fine details in the projection images. Additionally, a weighting scheme in the loss computation that favors high-frequency structures is proposed to focus on the important details and contours in projection imaging. The proposed extensions prove valuable in generating X-ray projection images with natural appearance. Our approach achieves a deviation from the ground truth of only 6% and structural similarity measure of 0.913?±?0.005. In particular the high frequency weighting assists in generating projection images with sharp appearance and reduces erroneously synthesized fine details.
机译:由于MRI与基于X射线方式的快速成像的鲜明对比度,混合X射线和磁共振(MR)成像引起的介入医学成像应用中的巨大潜力。为了充分利用大量现有图像增强技术的潜力,必须存在于同一域中的两种方式的相应信息。对于图像引导的介入程序,X射线荧光镜已被证明是选择的模式。在这种情况下,在这种情况下合成一个模态是由于突出的几何形状中的模糊信号和重叠结构,这是一个不良问题。要采取这些挑战,我们向X射线投影到投影翻译的基于学习的解决方案。我们提出了一种图像生成器网络,其专注于更高分辨率层中的高表示容量,以允许精确地合成投影图像中的细细节。另外,提出了一种损失计算中的加权方案,其提出了高频结构的损失计算,专注于投影成像中的重要细节和轮廓。所提出的延伸在利用天然外观产生X射线投影图像中证明了有价值的。我们的方法实现了偏离的地面真理,仅为6%,结构相似度为0.913?±0.005。特别地,高频加权辅助在具有尖锐的外观上产生投影图像,并减少错误合成的细节。

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