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Dual-Domain Cascaded Regression for Synthesizing 7T from 3T MRI

机译:从3T MRI合成7T的双域级联回归

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Due to the high cost and low accessibility of 7T magnetic resonance imaging (MRI) scanners, we propose a novel dual-domain cascaded regression framework to synthesize 7T images from the routine 3T images. Our framework is composed of two parallel and interactive multi-stage regression streams, where one stream regresses on spatial domain and the other regresses on frequency domain. These two streams complement each other and enable the learning of complex mappings between 3T and 7T images. We evaluated the proposed framework on a set of 3T and 7T images by leave-one-out cross-validation. Experimental results demonstrate that the proposed framework generates realistic 7T images and achieves better results than state-of-the-art methods.
机译:由于7T磁共振成像(MRI)扫描仪的高成本和低可及性,我们提出了一种新颖的双域级联回归框架来从常规3T图像合成7T图像。我们的框架由两个并行且交互式的多阶段回归流组成,其中一个流在空间域上回归,另一个流在频域上回归。这两个流相互补充,可以学习3T和7T图像之间的复杂映射。我们通过留一法交叉验证在一组3T和7T图像上评估了提出的框架。实验结果表明,所提出的框架可生成逼真的7T图像,并且比最新方法可获得更好的结果。

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