Claims
- 1. A method of magnetic resonance spectroscopic imaging (MRSI) comprising the steps of:
- a) placing an object to be imaged in a magnetic field aligned along an axis (z),
- b) exciting nuclei in said body to excite desired spectral components for imaging,
- c) applying time-varying gradients (G.sub.x, G.sub.y) along two axes to define a first plurality of spiral trajectories in k-space with said spiral trajectories extending along a frequency axis in k-space (k.sub.f), and
- d) detecting signals emitted by said spectral components.
- 2. The method as defined by claim 1 and further including the step of:
- e) repeating steps b), c), and d) with the time-varying gradients of step c) altered in time relative to signal echo time whereby a second plurality of spiral trajectories in k-space is defined which is interleaved with said first plurality of spiral trajectories.
- 3. The method as defined by claim 2 wherein step c) includes applying a gradient pulse along a third axis (z) to define a plane orthogonal to an axis in k-space (k.sub.z) in which said plurality of spiral trajectories are located.
- 4. The method as defined by claim 3 wherein in step e) said gradient along a third axis is altered in amplitude for each repetition thereby defining a plurality of planes along said axis in k-space (k.sub.z) in which each plurality of spiral trajectories are located.
- 5. The method as defined by claim 4 wherein said planes of spiral trajectories provide a spherical coverage in (k.sub.x, k.sub.y, k.sub.z)-space.
- 6. The method as defined by claim 4 wherein said planes of spiral trajectories provide a cylindrical coverage in (k.sub.x, k.sub.y, k.sub.z)-space.
- 7. Apparatus for magnetic resonance spectroscopic imaging (MRSI) comprising:
- a) means for establishing a magnetic field aligned along an axis (z) through an object to be imaged,
- b) means for selectively exciting nuclei in said body to excite desired spectral components for imaging,
- c) means for applying time-varying gradients (G.sub.x, G.sub.y) along two axes to define a first plurality of spiral trajectories in k-space with said spiral trajectories extending along a frequency axis in k-space (k.sub.f), and
- d) a detector for detecting signals emitted by said spectral components.
- 8. Apparatus as defined by claim 7 wherein said means for applying time-varying gradients alters said gradients relative to signal echo time whereby a second plurality of spiral trajectories in k-space is defined which is interleaved with said first plurality of spiral trajectories.
- 9. Apparatus as defined by claim 8 wherein said means for applying time-varying gradients applies a gradient pulse along a third axis (z) to define a plane orthogonal to an axis in k-space (k.sub.z) in which said plurality of spiral trajectories are located.
- 10. Apparatus as defined by claim 9 wherein said gradient along a third axis is altered in phase for each repetition thereby defining a plurality of planes along said axis in k-space (k.sub.z) in which each plurality of spiral trajectories are located.
- 11. Apparatus as defined by claim 10 wherein said planes of spiral trajectories provide a spherical coverage in (k.sub.x, k.sub.y, k.sub.z)-space.
- 12. Apparatus as defined by claim 10 wherein said planes of spiral trajectories provide a cylindrical coverage in (k.sub.x, k.sub.y, k.sub.z)-space.
Government Interests
This invention was made using funding under National Institute of Health grant number CA48269 to Stanford University. The U.S. Government has rights in the invention.
US Referenced Citations (11)
Non-Patent Literature Citations (2)
Entry |
G. Morrell et al., "Fast spectroscopic imaging with time-varying gradients". Dept. Elec. Eng. Stanford Uni. Date of Publication Unknown. |
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