Test-Retest Reliability of Graph Theory Measures of Structural Brain Connectivity

被引:0
|
作者
Dennis, Emily L. [1 ]
Jahanshad, Neda [1 ]
Toga, Arthur W. [2 ]
McMahon, Katie L. [3 ]
De Zubicaray, Greig I. [5 ]
Martin, Nicholas G. [4 ]
Wright, Margaret J. [4 ,5 ]
Thompson, Paul M. [1 ]
机构
[1] Univ Calif Los Angeles, Lab Neuro Imaging, Imaging Genet Ctr, Los Angeles, CA 90024 USA
[2] Univ Calif Los Angeles, Lab Neuro Imaging, Los Angeles, CA 90024 USA
[3] Univ Queensland, Ctr Adv Imaging, Brisbane, Qld, Australia
[4] Queensland Inst Med Res, Brisbane, Qld 4006, Australia
[5] Univ Queensland, Sch Psychol, Brisbane, Qld, Australia
关键词
DIFFUSION;
D O I
暂无
中图分类号
TP18 [人工智能理论];
学科分类号
081104 ; 0812 ; 0835 ; 1405 ;
摘要
The human connectome has recently become a popular research topic in neuroscience, and many new algorithms have been applied to analyze brain networks. In particular, network topology measures from graph theory have been adapted to analyze network efficiency and 'small-world' properties. While there has been a surge in the number of papers examining connectivity through graph theory, questions remain about its test-retest reliability (TRT). In particular, the reproducibility of structural connectivity measures has not been assessed. We examined the TRT of global connectivity measures generated from graph theory analyses of 17 young adults who underwent two high-angular resolution diffusion (HARDI) scans approximately 3 months apart. Of the measures assessed, modularity had the highest TRT, and it was stable across a range of sparsities (a thresholding parameter used to define which network edges are retained). These reliability measures underline the need to develop network descriptors that are robust to acquisition parameters.
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页码:305 / 312
页数:8
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