Biomedical Engineering, Vanderbilt University, Nashville, Tennessee, USA.
Vanderbilt University Institute of Imaging Science, Nashville, Tennessee, USA.
Magn Reson Med. 2018 Feb;79(2):673-682. doi: 10.1002/mrm.26713. Epub 2017 Apr 20.
Quantitative MRI may require correcting for nuisance parameters which can or must be constrained to independently measured or assumed values. The noise and/or bias in these constraints propagate to fitted parameters. For example, the case of refocusing pulse flip angle constraint in multiple spin echo T mapping is explored.
An analytical expression for the mean-squared error of a parameter of interest was derived as a function of the accuracy and precision of an independent estimate of a nuisance parameter. The expression was validated by simulations and then used to evaluate the effects of flip angle (θ) constraint on the accuracy and precision of T⁁2 for a variety of multi-echo T mapping protocols.
Constraining θ improved T⁁2 precision when the θ-map signal-to-noise ratio was greater than approximately one-half that of the first spin echo image. For many practical scenarios, constrained fitting was calculated to reduce not just the variance but the full mean-squared error of T⁁2, for bias in θ⁁≲6%.
The analytical expression derived in this work can be applied to inform experimental design in quantitative MRI. The example application to T mapping provided specific cases, depending on θ⁁ accuracy and precision, in which θ⁁ measurement and constraint would be beneficial to T⁁2 variance or mean-squared error. Magn Reson Med 79:673-682, 2018. © 2017 International Society for Magnetic Resonance in Medicine.
定量 MRI 可能需要校正混杂参数,这些参数可以或必须约束为独立测量或假定的值。这些约束的噪声和/或偏差会传播到拟合参数。例如,探索了在多自旋回波 T 映射中重聚焦脉冲翻转角约束的情况。
推导出了感兴趣参数的均方误差的解析表达式,作为对混杂参数的独立估计的准确性和精度的函数。该表达式通过模拟进行了验证,然后用于评估翻转角(θ)约束对各种多回波 T 映射协议中 T²精度和精度的影响。
当θ图的信噪比大于第一个自旋回波图像的信噪比的大约一半时,约束θ可以提高 T²的精度。对于许多实际情况,约束拟合不仅可以降低方差,而且可以降低 T²的全均方误差,对于θ的偏差≲6%。
本文推导的解析表达式可用于为定量 MRI 中的实验设计提供信息。以 T 映射为例,具体取决于θ的准确性和精度,在这种情况下,θ测量和约束将有利于 T²方差或均方误差。磁共振医学 79:673-682,2018。©2017 年国际磁共振学会。