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首页> 外文期刊>Journal of magnetic resonance imaging: JMRI >Evaluation of measurement uncertainties in human diffusion tensor imaging (DTI)-derived parameters and optimization of clinical DTI protocols with a wild bootstrap analysis.
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Evaluation of measurement uncertainties in human diffusion tensor imaging (DTI)-derived parameters and optimization of clinical DTI protocols with a wild bootstrap analysis.

机译:评估人类扩散张量成像(DTI)衍生参数中的测量不确定度,并通过野生自举分析优化临床DTI协议。

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摘要

PURPOSE: To quantify measurement uncertainties of fractional anisotropy, mean diffusivity, and principal eigenvector orientations in human diffusion tensor imaging (DTI) data acquired with common clinical protocols using a wild bootstrap analysis, and to establish optimal scan protocols for clinical DTI acquisitions. MATERIALS AND METHODS: A group of 13 healthy volunteers were scanned using three commonly used DTI protocols with similar total scan times. Two important parameters-the number of unique diffusion gradient directions (NUDG) and the ratio of the total number of diffusion-weighted (DW) images to the total number of non-DW images (DTIR)-were analyzed in order to investigate their combined effects on uncertainties of DTI-derived parameters, using results from both the Monte Carlo simulation and the wild bootstrap analysis of uncertainties in human DTI data. RESULTS: The wild bootstrap analysis showed that uncertainties in human DTI data are significantly affected by both NUDG and DTIR in many brain regions. These results agree with previous predictions based on error-propagations as well as results from simulations. CONCLUSION: Our results demonstrate that within a clinically feasible DTI scan time of about 10 minutes, a protocol with number of diffusion gradient directions close to 30 provides nearly optimal measurement results when combined with a ratio of the total number of DW images over non-DW images equal to six. Wild bootstrap can serve as a useful tool to quantify the measurement uncertainty from human DTI data.
机译:目的:量化使用野生自举分析通过常规临床方案获得的人类扩散张量成像(DTI)数据中分数各向异性,平均扩散率和主要特征向量方向的测量不确定度,并建立临床DTI采集的最佳扫描方案。材料与方法:使用三种常用的DTI方案对13名健康志愿者进行了扫描,总扫描时间相似。为了研究它们的组合,分析了两个重要的参数-唯一扩散梯度方向(NUDG)的数量和扩散加权(DW)图像的总数与非DW图像的总数(DTIR)的比率蒙特卡罗模拟结果和人类DTI数据不确定性的野生自举分析结果对DTI衍生参数不确定性的影响。结果:野生自举分析表明,人类DTI数据的不确定性在许多大脑区域都受到NUDG和DTIR的显着影响。这些结果与以前基于错误传播的预测以及模拟结果相符。结论:我们的结果表明,在大约10分钟的临床可行DTI扫描时间内,与DW图像总数与非DW图像总数之比结合时,扩散梯度方向数量接近30的协议可提供近乎最佳的测量结果图片等于六。野生引导程序可以用作从人类DTI数据量化测量不确定性的有用工具。

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