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Tensor estimation for double-pulsed diffusional kurtosis imaging

机译:双脉冲扩散峰成像的张量估计

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摘要

Double-pulsed diffusional kurtosis imaging (DP-DKI) represents the double diffusion encoding (DDE) MRI signal in terms of six-dimensional (6D) diffusion and kurtosis tensors. Here a method for estimating these tensors from experimental data is described. A standard numerical algorithm for tensor estimation from conventional (i.e. single diffusion encoding) diffusional kurtosis imaging (DKI) data is generalized to DP-DKI. This algorithm is based on a weighted least squares (WLS) fit of the signal model to the data combined with constraints designed to minimize unphysical parameter estimates. The numerical algorithm then takes the form of a quadratic programming problem. The principal change required to adapt the conventional DKI fitting algorithm to DP-DKI is replacing the three-dimensional diffusion and kurtosis tensors with the 6D tensors needed for DP-DKI. In this way, the 6D diffusion and kurtosis tensors for DP-DKI can be conveniently estimated from DDE data by using constrained WLS, providing a practical means for condensing DDE measurements into well-defined mathematical constructs that may be useful for interpreting and applying DDE MRI. Data from healthy volunteers for brain are used to demonstrate the DP-DKI tensor estimation algorithm. In particular, representative parametric maps of selected tensor-derived rotational invariants are presented.
机译:双脉冲扩散峰成像(DP-DKI)表示六维(6D)扩散和峰氏抗体张量方面的双扩散编码(DDE)MRI信号。这里描述了一种从实验数据中估算这些张量的方法。一种标准数值数值算法,其传统(即单次扩散编码)扩散峰成像(DKI)数据的漫长估计是概括为DP-DKI。该算法基于信号模型的加权最小二乘(WLS)适合于与旨在最小化未能最小化的未存在性参数估计的数据。然后,数值算法采用二次编程问题的形式。使常规DKI拟合算法适应DP-DKI所需的主要变化是用DP-DKI所需的6D张量替换三维扩散和峰峰张量。以这种方式,可以通过使用受约束的WL,从DDE数据方便地估计DP-DKI的6D扩散和峰值张解体,提供了用于将DDE测量冷凝成明确定义的数学构造的实用装置,这对于解释和应用DDE MRI可能是有用的。用于大脑的健康志愿者的数据用于展示DP-DKI张量估计算法。特别地,呈现了所选择的旋转旋转不变的代表性参数映射。

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