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Unsupervised reconstruction of accelerated cardiac cine MRI using Neural Fields

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arxiv 2307.14363 v1 pith:RD6NZSS4 submitted 2023-07-24 eess.IV cs.LG

classification eess.IVcs.LG
keywords cardiaccinereconstructionproposedundersampledacceleratedacquisitionacquisitions
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Cardiac cine MRI is the gold standard for cardiac functional assessment, but the inherently slow acquisition process creates the necessity of reconstruction approaches for accelerated undersampled acquisitions. Several regularization approaches that exploit spatial-temporal redundancy have been proposed to reconstruct undersampled cardiac cine MRI. More recently, methods based on supervised deep learning have been also proposed to further accelerate acquisition and reconstruction. However, these techniques rely on usually large dataset for training, which are not always available. In this work, we propose an unsupervised approach based on implicit neural field representations for cardiac cine MRI (so called NF-cMRI). The proposed method was evaluated in in-vivo undersampled golden-angle radial multi-coil acquisitions for undersampling factors of 26x and 52x, achieving good image quality, and comparable spatial and improved temporal depiction than a state-of-the-art reconstruction technique.

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Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Subspace Implicit Neural Representations for Real-Time Cardiac Cine MR Imaging

    eess.IV 2024-12 conditional novelty 6.0 of 10

    A subspace implicit neural representation reconstructs continuously sampled radial cardiac cine MRI without temporal binning or NUFFT, reporting higher SNR and edge sharpness than binned NUFFT and GRASP.

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