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Optimizing MR Scan Design for Model-Based T1 T2 Estimation from Steady-State Sequences

机译:基于稳态序列的基于模型的T1T2估计的MR扫描设计优化

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摘要

Rapid, reliable quantification of MR relaxation parameters T1 and T2 is desirable for many clinical applications. Steady-state sequences such as Spoiled Gradient-Recalled Echo (SPGR) and Dual-Echo Steady-State (DESS) are fast and well-suited for relaxometry because the signals they produce are quite sensitive to T1 and T2 variation. However, T1, T2 estimation with these sequences typically requires multiple scans with varied sets of acquisition parameters. This paper describes a systematic framework for selecting scan types (e.g., combinations of SPGR and DESS scans) and optimizing their respective parameters (e.g., flip angles and repetition times). The method is based on a Cramér-Rao Bound (CRB)-inspired min-max optimization that finds scan parameter combinations that robustly enable precise object parameter estimation. We apply this technique to optimize combinations of SPGR and DESS scans for T1, T2 relaxometry in white matter (WM) and grey matter (GM) regions of the human brain at 3T field strength. Phantom accuracy experiments show that SPGR/DESS scan combinations are in excellent agreement with reference measurements. Phantom precision experiments show that trends in T1, T2 pooled sample standard deviations reflect CRB-based predictions. In vivo experiments show that in WM and GM, T1 and T2 estimates from a pair of optimized DESS scans exhibit precision (but not necessarily accuracy) comparable to that of optimized combinations of SPGR and DESS scans. To our knowledge, T1 maps from DESS acquisitions alone are new. This example application illustrates that scan optimization may help reveal new parameter mapping techniques from combinations of established pulse sequences.
机译:对于许多临床应用而言,快速,可靠地量化MR弛豫参数T1和T2是理想的。稳态序列(如变差梯度回波(SPGR)和双回波稳态(DESS))快速且非常适合松弛法,因为它们产生的信号对T1和T2的变化非常敏感。但是,使用这些序列进行的T1,T2估算通常需要使用采集参数集不同的多次扫描。本文介绍了一个系统框架,用于选择扫描类型(例如SPGR和DESS扫描的组合)并优化它们各自的参数(例如翻转角和重复时间)。该方法基于Cramér-RaoBound(CRB)启发的最小-最大优化,该优化找到可以可靠地实现精确目标参数估计的扫描参数组合。我们应用这项技术来优化SPGR和DESS扫描在3T场强度下人脑的白质(WM)和灰质(GM)区域中T1,T2弛豫法的组合。幻像精度实验表明,SPGR / DESS扫描组合与参考测量非常吻合。幻像精度实验表明,T1,T2合并样本标准偏差的趋势反映了基于CRB的预测。体内实验表明,在WM和GM中,来自一对优化的DESS扫描的T1和T2估计值显示出与SPGR和DESS扫描的优化组合可比的精度(但不一定是准确性)。据我们所知,仅从DESS收购中获得的T1地图是新的。该示例应用程序说明扫描优化可以帮助从已建立的脉冲序列组合中揭示新的参数映射技术。

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