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首页> 外文期刊>Medical Physics >The use of novel gradient directions with DTI to synthesize data with complicated diffusion behavior.
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The use of novel gradient directions with DTI to synthesize data with complicated diffusion behavior.

机译:在DTI中使用新颖的梯度方向来合成具有复杂扩散行为的数据。

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摘要

This study demonstrates a new technique for synthesizing diffusion tensor imaging (DTI) data sets that exhibit complex diffusion characteristics by performing operations on acquired DTI data of simple structures with anisotropic diffusive properties. The motivation behind this technique is to characterize the behavior of noise in complicated data using a phantom. Compared to simulations, an advantage to this approach is that the acquired data contain noise characteristic of the scanner and protocol. Using this technique, a simple capillary phantom is employed to infer the quality of data for more clinically realistic tissue structures (e.g., crossing fiber tracts). A water-filled phantom containing capillary arrays was constructed to demonstrate this technique, which uses a DTI protocol with typical clinical parameters. Eigenvalues and fractional anisotropy were calculated for the initial prolate data. Data were adjusted to synthesize different apparent diffusion coefficient (ADC) spatial distributions, which were compared to theoretical and analytical models. RMS differences and volumetric overlap between expected and measured ADC distributions were quantified for all synthesized distributions. Differences between synthesized and actual distributions were discussed.
机译:这项研究演示了一种新技术,可以通过对具有各向异性扩散特性的简单结构的DTI数据执行操作,来合成具有复杂扩散特性的扩散张量成像(DTI)数据集。该技术背后的动机是使用幻像来表征复杂数据中的噪声行为。与模拟相比,此方法的优势在于所获取的数据包含扫描仪和协议的噪声特征。使用此技术,可以使用简单的毛细管体模来推断临床上更现实的组织结构(例如,交叉纤维束)的数据质量。构造了一个充满水的幻影毛细管阵列,以演示该技术,该技术使用具有典型临床参数的DTI方案。计算初始分布数据的特征值和分数各向异性。调整数据以合成不同的视在扩散系数(ADC)空间分布,并将其与理论模型和分析模型进行比较。对于所有合成分布,量化了预期和测量的ADC分布之间的RMS差异和体积重叠。讨论了合成分布与实际分布之间的差异。

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