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MRI image reconstruction from undersampled data using adversarially trained generative neural network

机译:利用普遍培训的生成神经网络从欠采样数据的MRI图像重建

摘要

A method of magnetic resonance imaging acquires undersampled MRI data and generates by an adversarially trained generative neural network MRI data having higher quality without using any fully-sampled data as a ground truth. The generative neural network is adversarially trained using a discriminative neural network that distinguishes between undersampled MRI training data and candidate undersampled MRI training data produced by applying an MRI measurement function containing an undersampling mask to generated MRI training data produced by the generative neural network from the undersampled MRI training data.
机译:磁共振成像的方法获取欠采样的MRI数据,并通过具有更高质量的离前星培训的生成神经网络MRI数据产生,而不使用任何完全采样的数据作为地面真理。使用鉴别的神经网络对生成的神经网络进行离子训练,该辨别性神经网络通过应用包含未采样掩码的MRI测量函数来利用包含未采样的MRI测量函数来生成由发电神经网络产生的MRI测量功能来产生的候选神经网络。 MRI培训数据。

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