Title :
Hemodynamic response based mixture model to estimate micro- and macrovasculature contributions in functional MRI
Author :
Singh, Manbir ; Zhou, Yongxia ; Kim, Tae-Seong ; Sungkarat, Witaya
Author_Institution :
Dept. of Radiol. & Biomed. Eng., Univ. of Southern California, Los Angeles, CA, USA
Abstract :
A multicomponent model reflecting the temporal characteristics of micro- and macrovasculature hemodynamic responses was used to fit the time-course of voxels in functional MRI (fMRI). The number of relevant components, the latency of the first component, the time-separation among the components, their relative amplitude and possible interpretation in terms of partial volume contributions of micro- and macrocomponents to the time-course data were investigated. Analysis of a reversing checkerboard experiment revealed that there was no improvement in the filing beyond two components. Using a two-component model, the fractional abundances of the micro- and macrovasculature were estimated in individual voxels. These results suggest the potential of a mixture-model approach to mitigate partial volume effects and separate contributions of vascular components within a voxel in fMRI.
Keywords :
biomedical MRI; haemodynamics; medical computing; fMRI; functional MRI; hemodynamic response based mixture model; macrovasculature contributions; microvasculature contributions; multicomponent model; partial volume contributions; relative amplitude; reversing checkerboard experiment; temporal characteristics; time-course data; time-separation; two-component model; voxels; 1f noise; Biomedical engineering; Delay; Gamma ray detection; Gamma ray detectors; Hemodynamics; Least squares methods; Magnetic resonance imaging; Radiology; Veins;
Conference_Titel :
Nuclear Science Symposium Conference Record, 2003 IEEE
Print_ISBN :
0-7803-8257-9
DOI :
10.1109/NSSMIC.2003.1352394