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首页> 外文期刊>Magnetic Resonance in Medicine >Combination of compressed sensing and parallel imaging for highly accelerated first-pass cardiac perfusion MRI
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Combination of compressed sensing and parallel imaging for highly accelerated first-pass cardiac perfusion MRI

机译:压缩传感和并行成像相结合,用于高度加速的首过性心脏灌注MRI

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First-pass cardiac perfusion MRI is a natural candidate for compressed sensing acceleration since its representation in the combined temporal Fourier and spatial domain is sparse and the required incoherence can be effectively accomplished by k-t random undersampling. However, the required number of samples in practice (three to five times the number of sparse coefficients) limits the acceleration for compressed sensing alone. Parallel imaging may also be used to accelerate cardiac perfusion MRI, with acceleration factors ultimately limited by noise amplification. In this work, compressed sensing and parallel imaging are combined by merging the k-t SPARSE technique with sensitivity encoding (SENSE) reconstruction to substantially increase the acceleration rate for perfusion imaging. We also present a new theoretical framework for understanding the combination of k-t SPARSE with SENSE based on distributed compressed sensing theory. This framework, which identifies parallel imaging as a distributed multisensor implementation of compressed sensing, enables an estimate of feasible acceleration for the combined approach. We demonstrate feasibility of 8-fold acceleration in vivo with whole-heart coverage and high spatial and temporal resolution using standard coil arrays. The method is relatively insensitive to respiratory motion artifacts and presents similar temporal fidelity and image quality when compared to Generalized autocalibrating partially parallel acquisitions (GRAPPA) with 2-fold acceleration. Magn Reson Med, 2010. © 2010 Wiley-Liss, Inc.
机译:首次通过心脏灌注MRI是压缩感测加速度的自然候选者,因为其在组合时域和空间域中的表示稀疏,并且所需的不相干性可以通过k-t随机欠采样有效地实现。但是,实际上所需的样本数量(稀疏系数数量的三到五倍)限制了仅压缩感测的加速度。并行成像还可用于加速心脏灌注MRI,而加速因子最终受噪声放大的限制。在这项工作中,通过将k-t SPARSE技术与灵敏度编码(SENSE)重建相结合,将压缩传感和并行成像相结合,从而大大提高了灌注成像的加速度。我们还提出了一个新的理论框架,用于理解基于分布式压缩感知理论的k-t SPARSE与SENSE的结合。该框架将并行成像识别为压缩传感的分布式多传感器实现,从而可以估算出组合方法的可行加速度。我们证明了使用标准线圈阵列进行全心覆盖并具有高时空分辨率的体内8倍加速的可行性。与具有2倍加速度的广义自动校准部分并行采集(GRAPPA)相比,该方法对呼吸运动伪影相对不敏感,并且呈现相似的时间保真度和图像质量。 Magn Reson Med,2010年。©2010 Wiley-Liss,Inc.。

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