R. Khan, Qin Zhang, Shayan Darayan, S. Dhandapani, S. Katyal, C. Greene, C. Bajaj, D. Ress
2011.11.1GRAPHICAL MODELS
tlooto Summary
This work presents a set of surface-based methods to exploit the use of high-resolution fMRI for depth analysis, utilizing white-matter segmentations coupled with deformable-surface algorithms to create a smooth surface representation at the gray-white interface and pial membrane.
Abstract
Functional magnetic resonance imaging (fMRI) has become a popular technique for studies of human brain activity. Typically, fMRI is performed with >3-mm sampling, so that the imaging data can be regarded as two-dimensional samples that average through the 1.5—4-mm thickness of cerebral cortex. The increasing use of higher spatial resolutions, <1.5-mm sampling, complicates the analysis of fMRI, as one must now consider activity variations within the depth of the brain tissue. We present a set of surface-based methods to exploit the use of high-resolution fMRI for depth analysis. These methods utilize white-matter segmentations coupled with deformable-surface algorithms to create a smooth surface representation at the gray-white interface and pial membrane. These surfaces provide vertex positions and normals for depth calculations, enabling averaging schemes that can increase contrast-to-noise ratio, as well as permitting the direct analysis of depth profiles of functional activity in the human brain.
Citation format
KHAN, R., et al. Surface-based analysis methods for high-resolution functional magnetic resonance imaging. GRAPHICAL MODELS, 2011, 73: 313–322.