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首页> 外文期刊>Magnetic resonance in medicine: official journal of the Society of Magnetic Resonance in Medicine >Deconvolution of dynamic contrast-enhanced MRI data by linear inversion: choice of the regularization parameter.
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Deconvolution of dynamic contrast-enhanced MRI data by linear inversion: choice of the regularization parameter.

机译:通过线性反演对动态对比增强MRI数据进行反卷积:选择正则化参数。

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摘要

Truncated singular value decomposition (TSVD) is an effective method for the deconvolution of dynamic contrast-enhanced MRI. Two robust methods for the selection of the truncation threshold on a pixel-by-pixel basis--generalized cross validation (GCV) and the L-curve criterion (LCC)--were optimized and compared to paradigms in the literature. The methods lead to improvements in the estimate of the residue function and of its maximum and converge properly with SNR. The oscillations typically observed in the solution vanish entirely and perfusion is more accurately estimated at small mean transit times. This results in improved image contrast and increased sensitivity to perfusion abnormalities, at the cost of 1-2 min in calculation time and isolated instabilities in the image. It is argued that the latter problem may be resolved by optimization. Simulated results for GCV and LCC are equivalent in terms of performance, but GCV is faster.
机译:截断奇异值分解(TSVD)是动态增强MRI的反卷积的有效方法。优化了两种逐像素选择截断阈值的可靠方法-通用交叉验证(GCV)和L曲线标准(LCC)-并将其与文献中的范例进行比较。该方法导致对残差函数及其最大值的估计的改进,并与SNR正确收敛。通常在溶液中观察到的振荡完全消失,并且在较小的平均传输时间可以更准确地估计灌注。这样可以提高图像对比度,并提高对灌注异常的敏感性,但需要花费1-2分钟的计算时间,并孤立出图像中的不稳定性。有人认为,后一种问题可以通过优化解决。就性能而言,GCV和LCC的模拟结果相当,但GCV更快。

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