cs.AI updates on arXiv.org 10月28日 12:14
动态MRI重建新方法:DA-INR
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本文提出一种基于隐式神经网络表示的动态MRI重建方法DA-INR,有效解决了传统方法在重建质量、优化时间和超参数调整方面的不足。

arXiv:2501.09049v2 Announce Type: replace-cross Abstract: Dynamic MRI reconstruction, one of inverse problems, has seen a surge by the use of deep learning techniques. Especially, the practical difficulty of obtaining ground truth data has led to the emergence of unsupervised learning approaches. A recent promising method among them is implicit neural representation (INR), which defines the data as a continuous function that maps coordinate values to the corresponding signal values. This allows for filling in missing information only with incomplete measurements and solving the inverse problem effectively. Nevertheless, previous works incorporating this method have faced drawbacks such as long optimization time and the need for extensive hyperparameter tuning. To address these issues, we propose Dynamic-Aware INR (DA-INR), an INR-based model for dynamic MRI reconstruction that captures the spatial and temporal continuity of dynamic MRI data in the image domain and explicitly incorporates the temporal redundancy of the data into the model structure. As a result, DA-INR outperforms other models in reconstruction quality even at extreme undersampling ratios while significantly reducing optimization time and requiring minimal hyperparameter tuning.

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动态MRI 重建方法 隐式神经网络 优化时间 超参数调整
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