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基于预采集 MRI 对比信息互补的最优采样的快速多对比度 MRI 采集。

Fast Multi-Contrast MRI Acquisition by Optimal Sampling of Information Complementary to Pre-Acquired MRI Contrast.

出版信息

IEEE Trans Med Imaging. 2023 May;42(5):1363-1373. doi: 10.1109/TMI.2022.3227262. Epub 2023 May 2.

Abstract

Recent studies on multi-contrast MRI reconstruction have demonstrated the potential of further accelerating MRI acquisition by exploiting correlation between contrasts. Most of the state-of-the-art approaches have achieved improvement through the development of network architectures for fixed under-sampling patterns, without considering inter-contrast correlation in the under-sampling pattern design. On the other hand, sampling pattern learning methods have shown better reconstruction performance than those with fixed under-sampling patterns. However, most under-sampling pattern learning algorithms are designed for single contrast MRI without exploiting complementary information between contrasts. To this end, we propose a framework to optimize the under-sampling pattern of a target MRI contrast which complements the acquired fully-sampled reference contrast. Specifically, a novel image synthesis network is introduced to extract the redundant information contained in the reference contrast, which is exploited in the subsequent joint pattern optimization and reconstruction network. We have demonstrated superior performance of our learned under-sampling patterns on both public and in-house datasets, compared to the commonly used under-sampling patterns and state-of-the-art methods that jointly optimize the reconstruction network and the under-sampling patterns, up to 8-fold under-sampling factor.

摘要

最近关于多对比度 MRI 重建的研究表明,通过利用对比度之间的相关性,可以进一步加速 MRI 的采集。大多数最先进的方法通过开发用于固定欠采样模式的网络架构来实现改进,而没有考虑欠采样模式设计中的对比度间相关性。另一方面,采样模式学习方法显示出比具有固定欠采样模式的方法更好的重建性能。然而,大多数欠采样模式学习算法是为单对比度 MRI 设计的,而没有利用对比度之间的互补信息。为此,我们提出了一种优化目标 MRI 对比度的欠采样模式的框架,该对比度补充了采集的完全采样参考对比度。具体来说,引入了一种新的图像合成网络来提取参考对比度中包含的冗余信息,该信息在随后的联合模式优化和重建网络中得到利用。与常用的欠采样模式和联合优化重建网络和欠采样模式的最先进方法相比,我们在公共和内部数据集上展示了我们学习到的欠采样模式的优越性能,最高可达 8 倍的欠采样因子。

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