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首页> 外文期刊>IEEE Transactions on Biomedical Engineering >Tensor-Based Method for Residual Water Suppression in $^1$H Magnetic Resonance Spectroscopic Imaging
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Tensor-Based Method for Residual Water Suppression in $^1$H Magnetic Resonance Spectroscopic Imaging

机译:基于张量的 $ ^ 1 $ H磁共振波谱成像中的残留水抑制方法

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Objective: Magnetic resonance spectroscopic imaging (MRSI) signals are often corrupted by residual water and artifacts. Residual water suppression plays an important role in accurate and efficient quantification of metabolites from MRSI. A tensor-based method for suppressing residual water is proposed. Methods: A third-order tensor is constructed by stacking the Lowner matrices corresponding to each MRSI voxel spectrum along the third mode. A canonical polyadic decomposition is applied on the tensor to extract the water component and to, subsequently, remove it from the original MRSI signals. Results: The proposed method applied on both simulated and invivo MRSI signals showed good water suppression performance. Conclusion: The tensor-based Lowner method has better performance in suppressing residual water in MRSI signals as compared to the widely used subspace-based Hankel singular value decomposition method. Significance: A tensor method suppresses residual water simultaneously from all the voxels in the MRSI grid and helps in preventing the failure of the water suppression in single voxels.
机译:目的:磁共振波谱成像(MRSI)信号经常被残留的水和伪影破坏。残留水分抑制在准确有效地定量MRSI代谢产物中起着重要作用。提出了一种基于张量的残余水抑制方法。方法:通过沿第三模式堆叠与每个MRSI体素光谱相对应的Lowner矩阵,构建三阶张量。对张量进行规范的多元分解,以提取水分量,然后将其从原始MRSI信号中删除。结果:该方法在模拟和体内MRSI信号上的应用均显示出良好的抑水性能。结论:与广泛使用的基于子空间的Hankel奇异值分解方法相比,基于张量的Lowner方法在抑制MRSI信号中的残留水方面具有更好的性能。含义:张量方法可同时抑制MRSI网格中所有体素的残留水,并有助于防止单个体素中水抑制的失败。

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