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Speeding up Magnetic Resonance Image Acquisition by Bayesian Multi-Slice Adaptive Compressed Sensing

机译:贝叶斯多层自适应压缩感知加速磁共振图像采集

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We show how to sequentially optimize magnetic resonance imaging measurement designs over stacks of neighbouring image slices, by performing convex varia-tional inference on a large scale non-Gaussian linear dynamical system, tracking dominating directions of posterior covariance without imposing any factorization constraints. Our approach can be scaled up to high-resolution images by reductions to numerical mathematics primitives and parallelization on several levels. In a first study, designs are found that improve significantly on others chosen independently for each slice or drawn at random.
机译:我们展示了如何通过在大型非高斯线性动力学系统上执行凸变率推理,跟踪后协方差的主导方向而不施加任何因式分解约束,来在相邻图像切片的堆栈上顺序优化磁共振成像测量设计。通过减少数值数学原语和在几个级别上进行并行化,我们的方法可以按比例放大到高分辨率图像。在第一个研究中,发现设计可以显着改善针对每个切片独立选择或随机绘制的其他设计。

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