Magnetic resonance magnification imaging
One aspect of the present disclosure provides an imaging method including: specifying an imaging focus region on a subject to be imaged, applying radiofrequency pulses to the subject to interact with a magnetic field gradient, wherein the radiofrequency pulses successively bend magnetization phases of respective electromagnetic signals from the specified imaging focus region, resulting in magnified pixel data, and generating a magnified image of the imaging focus region based on the magnified pixel data.
1. An imaging method comprising:
specifying an imaging focus region on a subject to be imaged;
applying radiofrequency pulses to a region of interest of the subject to interact with a magnetic field gradient, wherein the radiofrequency pulses successively bend magnetization phases of respective electromagnetic signals from the specified imaging focus region, resulting in magnified pixel data, the radiofrequency pulses being determined by inverting a mathematical transform that relates transverse magnetization to the radiofrequency pulses as a function of the magnetic field gradient over space; and
generating a magnified image of the imaging focus region based on the magnified pixel data.
2. The method of claim 1 , further comprising:
constructing the radiofrequency pulses to be applied according to a process that includes:
designing a smoothly-varying monotonic magnetization phase curve from −π to π as the phase module;
designing a trapezoid magnetization amplitude module with its two top vertices smoothed;
extending the phase module at both ends to match the bottom two vertices of the amplitude module; and
designing the radiofrequency pulses such that an amplitude of the frequency response of the radiofrequency pulses substantially matches the amplitude module, and a phase of the frequency response of the radiofrequency pulses substantially matches the phase module and its multiples.
3. The method of claim 2 , wherein the radiofrequency pulses are designed using a Fourier transform.
4. The method of claim 1 , wherein the generating of the magnified image further comprises:
reconstructing the magnified pixel data in order to form the magnified image of the imaging focus region.
5. The method of claim 4 , wherein the reconstructing of the magnified pixel data further comprises:
mathematically inverting a process by which the magnified pixel data was formed.
6. The method of claim 4 , wherein the reconstructing of the magnified pixel data further comprises:
experimentally measuring a magnetization magnitude and a phase module on an imaging phantom.
7. The method of claim 4 , wherein the magnified pixel data is reconstructed using a Fourier transform.
8. The method of claim 1 , wherein the generating of the magnified image further comprises:
regridding the magnified image to an image of larger size in a phase-encoding direction.
9. The method of claim 1 , wherein the generating of the magnified image further comprises:
smoothing the magnified image.
10. The method of claim 1 , wherein the radiofrequency pulses successively bend the magnetization phases of respective electromagnetic signals during phase-encoding.
11. The method of claim 1 , further comprising:
specifying a plurality of imaging focus regions on the subject to be imaged.
12. The method of claim 1 , wherein the imaging focus region is specified inside an image field-of-view.
13. The method of claim 12 , further comprising:
specifying a length of aperture stop inside the image field-of-view.
14. The method of claim 1 , wherein an image of the subject at the imaging focus region is stretched in a phase-encoding direction, resulting in the magnified pixel data.
15. A non-transitory computer readable medium containing program instructions executable by a processor, the computer readable medium comprising:
program instructions that specify an imaging focus region on a subject to be imaged;
program instructions that determine radiofrequency pulses by inverting a mathematical transform that relates transverse magnetization to the radiofrequency pulses as a function of a magnetic field gradient over space;
program instructions that control application of the radiofrequency pulses to a region of interest of the subject to interact with the magnetic field gradient, wherein the radiofrequency pulses successively bend magnetization phases of respective electromagnetic signals from the specified imaging focus region, resulting in magnified pixel data; and
program instructions that generate a magnified image of the imaging focus region based on the magnified pixel data.
16. A magnetic resonance imaging device comprising:
a magnetic field gradient controller programmed to control operation of a magnetic field gradient amplifier to alter a spinning frequency of atomic nuclei within a subject;
a radio frequency pulse controller programmed to control operation of a radiofrequency transmitter to apply radiofrequency pulses to a region of interest within the subject;
an analog/digital signal converter programmed to convert analog signals received by a radiofrequency receiver coil; and
an imaging sequence controller programmed to:
specify an imaging focus region on the subject;
determine radiofrequency pulses by inverting a mathematical transform that relates transverse magnetization to the radiofrequency pulses as a function of a magnetic field gradient over space;
control application of the radiofrequency pulses to the region of interest of the subject to interact with a magnetic field gradient, wherein the radiofrequency pulses successively bend magnetization phases of respective electromagnetic signals from the specified imaging focus region, resulting in magnified pixel data; and
generate a magnified image of the imaging focus region based on the magnified pixel data.