RESTORE: Robust estimation of tensors by outlier rejection

被引:526
作者
Chang, LC
Jones, DK
Pierpaoli, C
机构
[1] NICHHD, Sect Tissue Biophys & Biomimet, Lab Integrat Med & Biophys, NIH, Bethesda, MD 20892 USA
[2] Inst Psychiat, Ctr Neuroimaging Sci, London, England
关键词
robust estimation; outliers; trace; anisotropy; diffusion; tensor;
D O I
10.1002/mrm.20426
中图分类号
R8 [特种医学]; R445 [影像诊断学];
学科分类号
1002 [临床医学]; 100207 [影像医学与核医学]; 1009 [特种医学];
摘要
Signal variability in diffusion weighted imaging (DWI) is influenced by both thermal noise and spatially and temporally varying artifacts such as subject motion and cardiac pulsation. In this paper, the effects of DWI artifacts on estimated tensor values, such as trace and fractional anisotropy, are analyzed using Monte Carlo simulations. A novel approach for robust diffusion tensor estimation, called RESTORE (for robust estimation of tensors by outlier rejection), is proposed. This method uses iteratively reweighted least-squares regression to identify potential outliers and subsequently exclude them. Results from both simulated and clinical diffusion data sets indicate that the RESTORE method improves tensor estimation compared to the commonly used linear and nonlinear least-squares tensor fitting methods and a recently proposed method based on the Geman-McClure M-estimator. The RESTORE method could potentially remove the need for cardiac gating in DWI acquisitions and should be applicable to other MR imaging techniques that use univariate or multivariate regression to fit MRI data to a model. Published 2005 Wiley-Liss, Inc.(dagger)
引用
收藏
页码:1088 / 1095
页数:8
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