Tensor estimation for double-pulsed diffusional kurtosis imaging

被引:2
|
作者
Shaw, Calvin B. [1 ,2 ]
Hui, Edward S. [3 ]
Helpern, Joseph A. [1 ,2 ,4 ,5 ]
Jensen, Jens H. [1 ,2 ]
机构
[1] Med Univ South Carolina, Ctr Biomed Imaging, Charleston, SC USA
[2] Med Univ South Carolina, Dept Radiol & Radiol Sci, Charleston, SC 29425 USA
[3] Univ Hong Kong, Li Ka Shing Fac Med, Dept Diagnost Radiol, Pokfulam, Hong Kong, Peoples R China
[4] Med Univ South Carolina, Dept Neurosci, Charleston, SC USA
[5] Med Univ South Carolina, Dept Neurol, Charleston, SC USA
关键词
brain; DKI; double diffusion encoding; kurtosis; least squares; microscopic diffusion anisotropy; MRI; tensor; BRAIN WHITE-MATTER; IN-VIVO; FIELD GRADIENT; MRI; ANISOTROPY; MICROSTRUCTURE; QUANTIFICATION; ECCENTRICITY; CONTRAST; SIGNAL;
D O I
10.1002/nbm.3722
中图分类号
Q6 [生物物理学];
学科分类号
071011 ;
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 DPDKI 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.
引用
收藏
页数:14
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