Plurality and resemblance in fMRI data analysis

被引:113
作者
Lange, N
Strother, SC
Anderson, JR
Nielsen, FÅ
Holmes, AP
Kolenda, T
Savoy, R
Hansen, LK
机构
[1] McLean Hosp, Mailman Res Ctr, Stat Neuroimaging Lab, Belmont, MA 02478 USA
[2] McLean Hosp, Mailman Res Ctr, Mol Pharmacol Lab, Belmont, MA 02478 USA
[3] Harvard Univ, Fac Med, Consolidated Dept Psychiat, Belmont, MA 02478 USA
[4] VA Med Ctr, PET Imaging Serv, Minneapolis, MN USA
[5] Univ Minnesota, Minneapolis, MN 55455 USA
[6] Danish Tech Univ, Inst Math Modeling, Lyngby, Denmark
[7] Univ Glasgow, Wellcome Dept Cognit Neurol, Funct Imaging Lab, Glasgow G12 8QQ, Lanark, Scotland
[8] Univ Glasgow, Dept Stat, Robertson Ctr Biostat, Glasgow G12 8QQ, Lanark, Scotland
[9] Rowland Inst, Cambridge, MA USA
[10] MGH NMR Ctr, Boston, MA USA
基金
美国国家卫生研究院;
关键词
D O I
10.1006/nimg.1999.0472
中图分类号
Q189 [神经科学];
学科分类号
071006 ;
摘要
We apply nine analytic methods employed currently in imaging neuroscience to simulated and actual BOLD fMRI signals and compare their performances under each signal type. Starting with baseline time series generated by a resting subject during a null hypothesis study, we compare method performance with embedded focal activity in these series of three different types whose magnitudes and time courses are simple, convolved with spatially varying hemodynamic responses, and highly spatially interactive. We then apply these same nine methods to BOLD fMRI time series from contralateral primary motor cortex and ipsilateral cerebellum collected during a sequential finger opposition study. Paired comparisons of results across methods include a voxel-specific concordance correlation coefficient for reproducibility and a resemblance measure that accommodates spatial autocorrelation of differences in activity surfaces. Receiver-operating characteristic curves show considerable model differences in ranges less than 10% significance level (false positives) and greater than 80% power (true positives). Concordance and resemblance measures reveal significant differences between activity surfaces in both data sets. These measures can assist researchers by identifying groups of models producing similar and dissimilar results, and thereby help to validate, consolidate, and simplify reports of statistical findings. A pluralistic strategy for fMRI data analysis can uncover invariant and highly interactive relationships between local activity foci and serve as a basis for further discovery of organizational principles of the brain. Results also suggest that a pluralistic empirical strategy coupled formally with substantive prior knowledge can help to uncover new brain-behavior relationships that may remain hidden if only a single method is employed. (C) 1999 Academic Press.
引用
收藏
页码:282 / 303
页数:22
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