This application claims priority to Taiwan Application Serial Number 104132042, filed on Sep. 30, 2015, which is incorporated by reference herein in its entirety.
Field of the Invention
The present invention relates to a technique of correcting nuclear magnetic resonance images and more particularly to a method and apparatus for detecting dynamic magnetic field distributions.
Description of the Prior Art
The process of nuclear magnetic resonance imaging is predisposed to errors because of dynamic magnetic field distributions. The dynamic magnetic field distributions result from the main magnetic field (B0) drift caused by shim coil heating, eddy current caused by rapid switching of gradient coil, or subject's heart beating and respiration. Methods of characterizing such magnetic field drifts have been proposed, such as using specially designed pulse sequences. However, these pulse sequence methods can only characterize magnetic field distributions with up to the 1st-order polynomial. Furthermore, the pulse sequence is not effective in measuring magnetic field distributions against time timely, dynamically and accurately.
Recently, a technique of measuring magnetic field distributions was proposed. This method uses multiple magnetic field detectors distributed over the outside of the imaging volume in order to measure local magnetic field strengths, which are later fitted to a higher-order polynomial, to characterize the instantaneous magnetic field distribution. A magnetic field detector has been implemented as a device combining a small radio-frequency receiving coil and a nuclear magnetic resonance active sample inside the coil. To ensure that a magnetic field detector measures only local magnetic resonance signal generated from the sample inside the detector without the interference of the magnetic resonance signal from the imaging object, the sample inside the magnetic field detector has been chosen such that magnetic resonance signals of different frequencies are generated by the imaging object and the sample inside the magnetic field detector. In practice, for proton (H1) magnetic resonance imaging measurements, magnetic field detectors detects non-proton (such as F19) magnetic resonance signal elicited by the sample inside the magnetic field detector. This method has the disadvantage of losing signal-to-noise ratio (SNR), because the magnetic resonance signal generated by the sample inside the magnetic field detector is typically much weaker than that generated by the imaging object. Alternatively, magnetic field detectors can use a sample generating the magnetic resonance signal at the same frequency of the magnetic resonance signal elicited by the imaging object, if a shielding device on the magnetic field detector. However, shielding can cause difficulty in exciting the sample inside the magnetic field detector. The bulky size of the shielding also poses the difficulty to arrange multiple magnetic field detectors around the imaging object.
In view of the aforesaid drawbacks of the prior art, the present invention provides a method for detecting dynamic magnetic field distributions. The method comprises the steps of: generating a radio frequency pulse and receiving a magnetic resonance signal of an imaging object; generating a dephasing gradient magnetic field and a rephasing gradient magnetic field; receiving magnetic resonance signal from the signal source sample of a magnetic field detector; obtaining dynamic magnetic field distributions based on a collection of magnetic resonance signals from signal source samples inside multiple magnetic field detectors; and correcting the magnetic resonance signal of the imaging object in accordance with the dynamic magnetic field distribution, wherein the dephasing gradient magnetic field and the rephasing gradient magnetic fields are generated after the radio frequency pulse has been generated, and the magnetic resonance signal of the signal source sample is acquired after the dephasing gradient magnetic field has been generated, wherein the rephasing gradient magnetic field is generated after the magnetic resonance signal of the signal source sample has been acquired by the magnetic field detector but before the magnetic resonance signal of the imaging object is acquired by the receiving coil of a radio frequency transceiver module, wherein the absolute value of the moment (the time integral of the strength of the gradient magnetic field) of dephasing gradient magnetic field equals the absolute value of the moment of rephrasing gradient magnetic field but the signs of these two gradient moments are opposite.
Regarding the method of the present invention, the step of generating the dephasing gradient magnetic field and the rephasing gradient magnetic field comprises generating the dephasing gradient magnetic field and the rephasing gradient magnetic field in at least one direction.
Regarding the method of the present invention, the step of receiving the magnetic resonance signal of the signal source sample of the magnetic field detector comprises receiving the magnetic resonance signal with a plurality of magnetic field detectors distributed over the surface of the imaging volume, wherein the magnetic field detectors each comprise a radio frequency receiving coil enclosing the signal source sample.
Regarding the method of the present invention, constituents of the signal source sample include proton.
The present invention further provides a method for detecting dynamic magnetic field distributions, comprising the steps of: generating a radio frequency pulse and receiving magnetic resonance signal from an imaging object; generating a dephasing gradient magnetic field; receiving a magnetic resonance signal of a signal source sample of a magnetic field detector; obtaining a dynamic magnetic field distribution based on the measured magnetic resonance signal of the signal source sample; and correcting the magnetic resonance signal of the imaging object based on estimated dynamic magnetic field distribution, wherein the dephasing gradient magnetic field is generated after the radio frequency pulse has been generated, and the magnetic resonance signal of the signal source sample is acquired after the dephasing gradient magnetic field has been generated, wherein the magnetic resonance signal of the imaging object is acquired after the magnetic resonance signal of the signal source sample has been acquired.
The present invention further provides an apparatus for detecting dynamic magnetic field distributions, comprising: a radio frequency-excited receiving module configured to generate a radio frequency pulse and receive a magnetic resonance signal of an imaging object; a gradient coil module configured to generate a dephasing gradient magnetic field and a rephasing gradient magnetic field; a magnetic field detector module comprising a plurality of magnetic field detectors disposed within an imaging space, wherein the magnetic field detectors each comprise a radio frequency receiving coil enclosing a signal source sample of the magnetic field detectors and are configured to receive the magnetic resonance signal of the signal source sample; and a computation unit module configured to obtain a dynamic magnetic field fluctuation in accordance with the magnetic resonance signal of the signal source sample and correct the magnetic resonance signal of the imaging object in accordance with the dynamic magnetic field fluctuation, wherein the dephasing gradient magnetic field and the rephasing gradient magnetic field are generated after the radio frequency pulse has been generated, and the magnetic resonance signal of the signal source sample is acquired after the dephasing gradient magnetic field has been generated, wherein the rephasing gradient magnetic field is generated after the magnetic resonance signal of the signal source sample has been acquired but before the magnetic resonance signal of the imaging object is acquired, wherein cumulative strength of gradient magnetic field of the dephasing gradient magnetic field equals cumulative strength of gradient magnetic field of the rephasing gradient magnetic field.
The present invention further provides an apparatus for detecting dynamic magnetic field distributions, comprising: a radio frequency transceiver module to transmit radio frequency pulses and to receive magnetic resonance signal of an imaging object; a gradient coil module configured to generate dephasing gradient magnetic field; a magnetic field detector module comprising a plurality of magnetic field detectors distributed over the surface of the imaging volume, wherein the magnetic field detectors each comprise a radio frequency receiving coil enclosing a signal source sample of the magnetic field detectors and are configured to receive the magnetic resonance signal of the signal source sample; and a computation unit module configured to obtain dynamic magnetic field distributions based on the measured magnetic resonance signal of the signal source sample and to correct the magnetic resonance signal of the imaging object based on the estimated dynamic magnetic field distributions, wherein the dephasing gradient magnetic field is generated after the radio frequency pulse has been generated, and the magnetic resonance signal of the signal source sample is acquired after the dephasing gradient magnetic field has been generated, wherein the magnetic resonance signal of the imaging object is acquired after the magnetic resonance signal of the signal source sample has been acquired.
All equivalent amendments or changes made by persons skilled in the art to the other additional features and advantages of the present invention without departing from the spirit and scope of the present invention should be covered by the claims of the present invention.
Embodiments of the present invention are described hereunder with reference to the accompanying drawings. The description below provides a thorough account of the subject matters of the present invention. The accompany drawings, which are indispensable to the elucidation of the present invention, illustrate the embodiments of the present invention. The subject matters of the present invention can be implemented variably; hence, the subject matters covered or claimed by the present invention should not be interpreted in a way to be restricted to the illustrative embodiments. The illustrative embodiments serve only a purpose of explaining the subject matters of the present invention. Therefore, after studying the disclosure presented herein, persons skilled in the art understand that the embodiments described hereunder are illustrative rather than restrictive of the appended claims and the objectives defined in accordance with the equivalent scope of the appended claims.
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In a preferred embodiment of the present invention, we used the following pulse sequence parameters: TR=100 ms, α=30°, TE=30 ms, resolution=2 mm×2 mm×5 mm, with a slew rate of 110 T/m/s. It takes the computation unit module 105 9 ms to acquire the magnetic resonance signal generated by the signal source sample and received by the magnetic field detectors 1041. The moments of the dephasing and rephrasing gradient magnetic field along two directions were all 59 mTms/m. In another embodiment of the present invention, the gradient coil module 102 is not restricted to the generation of gradient magnetic field in two directions; instead, it is practicable for the gradient coil module 102 to generate gradient magnetic field in only one direction or in at least three directions, such that different moments of the gradient magnetic field cause the magnetic resonance signal of the imaging object in a dephasing state.
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The above description of preferred embodiments of the present invention enables persons skilled in the art to understand that various modifications and changes can be made to the preferred embodiments of the present invention without departing from the spirit and the appended claims, and understand that the present invention is not restricted to the ways of implementing the embodiments described in the specification.
Number | Date | Country | Kind |
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104132042 | Sep 2015 | TW | national |