Documentation/Nightly/Extensions/SlicerDMRI

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Introduction and Acknowledgements

DMRI 3D SLICER-icon.png

Extension: SlicerDMRI
Acknowledgments: This work is supported in part by the National Cancer Institute and the National Institute of Biomedical Imaging and Bioengineering of the National Institutes of Health through the following grants:

  • NIH NCI ITCR U01CA199459 (Open Source Diffusion MRI Technology For Brain Cancer Research)
  • NIH P41EB015898 (National Center for Image-Guided Therapy)
  • NIH P41EB015902 (Neuroimaging Analysis Center)
  • National Alliance for Medical Image Computing (NA-MIC), funded by the National Institutes of Health through the NIH Roadmap for Medical Research, Grant U54 EB005149.

Major Contributors: Lauren J. O'Donnell (SPL), Isaiah Norton (Brigham and Women's Hospital), Raul San Jose Estepar (Brigham and Women's Hospital), Carl-Fredrik Westin (Brigham and Women's Hospital), Alex Yarmarkovich

License: Slicer License


SlicerDMRI  
Surgical Planning Laboratory  
NAC  
NCIGT  

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Extension Description

SlicerDMRI extension hosts various modules to facilitate

  • processing and management of diffusion MRI image data
  • utilizing diffusion MRI tractography for neuroscience studies and for planning image-guided interventions
  • quantitative analysis of diffusion MRI data

Modules

  • DICOM2Full Brain Tractography:
  • Diffusion Brain Masking: Creates a brain mask from a diffusion weighted image volume
  • Diffusion Tensor Estimation: Estimates the diffusion tensor model from diffusion weighted images.
  • Diffusion Tensor Scalar Maps: Computes scalar measures from a diffusion tensor dataset.
  • DWIConverter: Converts diffusion weighted MR images in dicom series into Nrrd format for analysis in Slicer.
  • DWI to Full Brain Tractography:
  • Resample DTIVolume: Implements DT image resampling through the use of itk Transforms.
  • Resample Scalar/Vector/DWI Volume: Implements image and vector-image resampling through the use of its Transforms.
  • Tractography Display: Allows the user to modify the display of diffusion tractography.
  • Tractography Measurements: Computes whole-fiber scalar measurements from a directory of VTK fiber bundle files
  • Tractography ROI Selection: Allows a user to select tracts passing or not passing through single or multiple labels.
  • Tractography ROI Seeding: Seeds tractography from a Diffusion Tensor Image (DTI) within a region defined by a label map.
  • Tractography Seeding: Allows interactive seeding of DTI fiber tracts starting from a list of fiducial points or vertices of a model, or a label map volume.
  • Tractography to Mask Image: Allows a user to set the specified label value in the label map at every vertex in each of the fibers in a bundle.
  • UKFTractography: Traces fibers in a DWI Volume using the multiple tensor unscented Kalman Filter methodology.

References

[1] O’Donnell LJ, Westin CF. An introduction to diffusion tensor image analysis. Neurosurgery clinics of North America. 2011 Apr 30;22(2):185-96.

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