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Improved statistical efficiency of simultaneous multi-slice fMRI by reconstruction with spatially adaptive temporal smoothing

机译:通过在空间自适应时间平滑的重建改进了同时多切片FMRI的统计效率

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摘要

We introduce an approach to reconstruction of simultaneous multi-slice (SMS)-fMRI data that improves statistical efficiency. The method incorporates regularization to adjust temporal smoothness in a spatially varying, encoding-dependent manner, reducing the g-factor noise amplification per temporal degree of freedom. This results in a net improvement in tSNR and GLM efficiency, where the efficiency gain can be derived analytically as a function of the encoding and reconstruction parameters. Residual slice leakage and aliasing is limited when fMRI signal energy is dominated by low frequencies. Analytical predictions, simulated and experimental results demonstrate a marked improvement in statistical efficiency in the temporally regularized reconstructions compared to conventional slice-GRAPPA reconstructions, particularly in central brain regions. Furthermore, experimental results confirm that residual slice leakage and aliasing errors are not noticeably increased compared to slice-GRAPPA reconstruction. This approach to temporally regularized image reconstruction in SMS-fMRI improves statistical power, and allows for explicit choice of reconstruction parameters by directly assessing their impact on noise variance per degree of freedom.
机译:我们介绍了一种改进统计效率的同时多切片(SMS)的重建方法。该方法包括正则化以调整空间变化,依赖性方式的时间平滑度,降低每个时间自由度的G因子噪声放大。这导致TSNR和GLM效率的净改善,其中可以作为编码和重建参数的函数分析效率增益。当FMRI信号能量以低频率主导时,残留的切片泄漏和别名受到限制。分析预测,模拟和实验结果表明,与传统的切片 - 格拉普重建相比,时间正面的重建中的统计效率显着提高,特别是在中央脑区域中。此外,与Slice-Grappa重建相比,实验结果证实,与Slice-Grappa重建相比,残留的切片泄漏和混溶误差并不明显增加。这种方法在SMS-FMRI中的时间上正规化图像重建改善了统计功率,并且通过直接评估它们对每自由度的噪声方差的影响,可以明确的重建参数选择。

著录项

  • 来源
    《NeuroImage》 |2019年第2019期|共14页
  • 作者

    Chiew Mark; Miller Karla L.;

  • 作者单位

    Univ Oxford Nuffield Dept Clin Neurosci FMRIB Wellcome Ctr Integrat Neuroimaging Oxford England;

    Univ Oxford Nuffield Dept Clin Neurosci FMRIB Wellcome Ctr Integrat Neuroimaging Oxford England;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 诊断学;
  • 关键词

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