首页> 外文期刊>Magnetic resonance in medicine: official journal of the Society of Magnetic Resonance in Medicine >Linear least-squares method for unbiased estimation of T1 from SPGR signals.
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Linear least-squares method for unbiased estimation of T1 from SPGR signals.

机译:从SPGR信号无偏估计T1的线性最小二乘法。

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摘要

The longitudinal relaxation time, T(1), can be estimated from two or more spoiled gradient recalled echo images (SPGR) acquired with different flip angles and/or repetition times (TRs). The function relating signal intensity to flip angle and TR is nonlinear; however, a linear form proposed 30 years ago is currently widely used. Here we show that this linear method provides T(1) estimates that have similar precision but lower accuracy than those obtained with a nonlinear method. We also show that T(1) estimated by the linear method is biased due to improper accounting for noise in the fitting. This bias can be significant for clinical SPGR images; for example, T(1) estimated in brain tissue (800 ms < T(1) < 1600 ms) can be overestimated by 10% to 20%. We propose a weighting scheme that correctly accounts for the noise contribution in the fitting procedure. Monte Carlo simulations of SPGR experiments are used to evaluate the accuracy of the estimated T(1) from the widely-used linear, the proposed weighted-uncertainty linear, and the nonlinear methods. We show that the linear method with weighted uncertainties reduces the bias of the linear method, providing T(1) estimates comparable in precision and accuracy to those of the nonlinear method while reducing computation time significantly.
机译:可以从以不同翻转角和/或重复时间(TRs)获取的两个或更多个变质梯度回波图像(SPGR)估算纵向弛豫时间T(1)。将信号强度与翻转角和TR相关的函数是非线性的;然而,30年前提出的线性形式目前被广泛使用。在这里,我们证明了这种线性方法提供的T(1)估计值与使用非线性方法获得的估计值相似,但准确性较低。我们还表明,由于拟合中噪声的不正确计算,通过线性方法估计的T(1)存在偏差。这种偏见对于临床SPGR图像可能很重要。例如,脑组织中估计的T(1)(800 ms

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