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体内非均匀欠采样多维光谱成像:最大熵与压缩感知重建

Non-uniformly under-sampled multi-dimensional spectroscopic imaging in vivo: maximum entropy versus compressed sensing reconstruction.

作者信息

Burns Brian, Wilson Neil E, Furuyama Jon K, Thomas M Albert

出版信息

NMR Biomed. 2014 Feb;27(2):191-201. doi: 10.1002/nbm.3052.

DOI:10.1002/nbm.3052
PMID:24738142
Abstract

The four-dimensional (4D) echo-planar correlated spectroscopic imaging (EP-COSI) sequence allows for the simultaneous acquisition of two spatial (ky, kx) and two spectral (t2, t1) dimensions in vivo in a single recording. However, its scan time is directly proportional to the number of increments in the ky and t1 dimensions, and a single scan can take 20–40 min using typical parameters, which is too long to be used for a routine clinical protocol. The present work describes efforts to accelerate EP-COSI data acquisition by application of non-uniform under-sampling (NUS) to the ky–t1 plane of simulated and in vivo EP-COSI datasets then reconstructing missing samples using maximum entropy (MaxEnt) and compressed sensing (CS). Both reconstruction problems were solved using the Cambridge algorithm, which offers many workflow improvements over other l1-norm solvers. Reconstructions of retrospectively under-sampled simulated data demonstrate that the MaxEnt and CS reconstructions successfully restore data fidelity at signal-to-noise ratios (SNRs) from 4 to 20 and 5× to 1.25× NUS. Retrospectively and prospectively 4× under-sampled 4D EP-COSI in vivo datasets show that both reconstruction methods successfully remove NUS artifacts; however, MaxEnt provides reconstructions equal to or better than CS. Our results show that NUS combined with iterative reconstruction can reduce 4D EP-COSI scan times by 75% to a clinically viable 5 min in vivo, with MaxEnt being the preferred method.

摘要

四维(4D)回波平面相关光谱成像(EP-COSI)序列能够在单次记录中同时在体内获取两个空间维度(ky,kx)和两个光谱维度(t2,t1)。然而,其扫描时间与ky和t1维度的增量数量成正比,使用典型参数时单次扫描可能需要20 - 40分钟,这对于常规临床方案来说太长了。目前的工作描述了通过对模拟和体内EP-COSI数据集的ky - t1平面应用非均匀欠采样(NUS),然后使用最大熵(MaxEnt)和压缩感知(CS)重建缺失样本,来加速EP-COSI数据采集的努力。这两个重建问题都使用剑桥算法解决,该算法比其他l1范数求解器在工作流程上有许多改进。对回顾性欠采样模拟数据的重建表明,MaxEnt和CS重建在4至20的信噪比(SNR)以及5倍至1.25倍NUS情况下成功恢复了数据保真度。回顾性和前瞻性4倍欠采样的体内4D EP-COSI数据集表明,两种重建方法都成功去除了NUS伪影;然而,MaxEnt提供了与CS相等或更好的重建效果。我们的结果表明,NUS与迭代重建相结合可以将4D EP-COSI扫描时间在体内减少75%至临床上可行的5分钟,MaxEnt是首选方法。

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