Mr-based attenuation correction in pet/mr imaging with dixon pulse sequence
US-2016202334-A1 · Jul 14, 2016 · US
US9594142B2 · US · B2
| Field | Value |
|---|---|
| Publication number | US-9594142-B2 |
| Application number | US-201214113486-A |
| Country | US |
| Kind code | B2 |
| Filing date | May 9, 2012 |
| Priority date | May 20, 2011 |
| Publication date | Mar 14, 2017 |
| Grant date | Mar 14, 2017 |
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In order to improve contrast in non-orthogonal measurement without sacrificing speed, in imaging which combines a fast imaging sequence for acquiring a plurality of echo signals in one shot with non-orthogonal system measurement, the shape of a blade in which an echo train of each shot is arranged is a fan shape having the radius and the arc of a circle centered on the origin of a k space. At this time, echo signal arrangement is controlled such that an echo signal for desired TE of each fan-shaped blade is arranged in a low spatial frequency region of the k space.
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The invention claimed is: 1. A magnetic resonance imaging apparatus comprising: a static magnetic field generation unit which generates a static magnetic field; a magnetic field application unit which applies a gradient magnetic field and a high-frequency magnetic field to a desired imaging region of an object arranged in the static magnetic field; a detection unit which detects an echo signal from the desired imaging region; a measurement control unit which controls the magnetic field application unit and the detection unit and measures the echo signal so as to acquire data of a predetermined region inside k space; and an image reconstruction unit which reconstructs an image of the imaging region using data of the k space, wherein the measurement control unit performs control such that a unit measurement to acquire a plurality of pieces of data of a unit region for 1 TR is repeated while rotating the unit region at a rotation angle determined in advance centered on the origin of the k space for each unit measurement, in the unit measurement, an echo signal having desired contrast is arranged in a low spatial frequency region of the k space, and the unit region is a region which is surrounded by two line segments with the origin of the k space as a starting point and a line connecting the other end points of the two line segments, and wherein the two line segments are the radius of a circle centered on the k space, and the line connecting the end points is an arc of the circle, and wherein the rotation angle of each unit region is determined such that the unit region is arranged in a circumferential direction of the circle centered on the origin of the k space without overlapping, and wherein, in the unit measurement, when a unit region to be subjected to the unit measurement includes a region inside an internal region of the circle outside an internal region of an ellipse such that the radius of the circle corresponds to a square root multiple of ellipticity, the measurement control unit performs control so as to acquire data of a region having the same area of a different unit region inside an external region of the ellipse outside the internal region of the circle, instead of scanning the region. 2. A magnetic resonance imaging apparatus comprising: a static magnetic field generation unit which generates a static magnetic field; a magnetic field application unit which applies a gradient magnetic field and a high-frequency magnetic field to a desired imaging region of an object arranged in the static magnetic field; a detection unit which detects an echo signal from the desired imaging region; a measurement control unit which controls the magnetic field application unit and the detection unit and measures the echo signal so as to acquire data of a predetermined region inside k space; and an image reconstruction unit which reconstructs an image of the imaging region using data of the k space, wherein the measurement control unit performs control such that a unit measurement to acquire a plurality of pieces of data of a unit region for 1 TR is repeated while rotating the unit region at a rotation angle determined in advance centered on the origin of the k space for each unit measurement, in the unit measurement, an echo signal having desired contrast is arranged in a low spatial frequency region of the k space, and the unit region is a region which is surrounded by two line segments with the origin of the k space as a starting point and a line connecting the other end points of the two line segments, and wherein the two line segments are the radius of a circle centered on the k space, and the line connecting the end points is an arc of the circle, and wherein the magnetic resonance imaging apparatus further comprises: an imaging condition reception unit which receives an imaging condition from an operator; and an imaging sequence generation unit which generates an imaging sequence from the received imaging condition, wherein the measurement control unit performs the control according to the imaging sequence, and the imaging sequence generation unit includes a parameter determination unit which determines the radius of the circle centered on the origin of the k space, a central angle as the angle between the two line segments, and the total number of unit regions which is the number of unit regions having different rotation angles, a region determination unit which determines an arrangement region of each echo signal for each unit measurement, a scan track determination unit which determines a scan track inside each determined arrangement region, and a waveform determination unit which determines the scan track of each unit measurement according to a rotation angle of each unit region and determines the gradient magnetic field waveform of the imaging sequence, and wherein the region determination unit arranges each echo signal according to one of centric arrangement, reverse centric arrangement and echo shift arrangement. 3. The magnetic resonance imaging apparatus according to claim 2 , wherein the radius of the circle centered on the origin of the k space is determined by the number of frequency encodes, the central angle is determined by the diameter of the circle and the total number of pieces of data inside the unit region, and the total number of unit regions is equal to or greater than a value obtained by dividing 2π by the central angle. 4. A magnetic resonance imaging apparatus comprising: a static magnetic field generation unit which generates a static magnetic field; a magnetic field application unit which applies a gradient magnetic field and a high-frequency magnetic field to a desired imaging region of an object arranged in the static magnetic field; a detection unit which detects an echo signal from the desired imaging region; a measurement control unit which controls the magnetic field application unit and the detection unit and measures the echo signal so as to acquire data of a predetermined region inside k space; and an image reconstruction unit which reconstructs an image of the imaging region using data of the k space, wherein the measurement control unit performs control such that a unit measurement to acquire a plurality of pieces of data of a unit region for 1 TR is repeated while rotating the unit region at a rotation angle determined in advance centered on the origin of the k space for each unit measurement, in the unit measurement, an echo signal having desired contrast is arranged in a low spatial frequency region of the k space, and the unit region is a region which is surrounded by two line segments with the origin of the k space as a starting point and a line connecting the other end points of the two line segments, and wherein the two line segments are the radius of a circle centered on the k space, and the line connecting the end points is an arc of the circle, and wherein the magnetic resonance imaging apparatus further comprises: an imaging condition reception unit which receives an imaging condition from an operator; and an imaging sequence generation unit which generates an imaging sequence from the received imaging condition, wherein the measurement control unit performs the control according to the imaging sequence, and the imaging sequence generation unit includes a parameter determination unit which determines the radius of the circle centered on the origin of the k space, a central angle as the angle between the two line segments, and the total number of unit regions which is the number of unit regions having different rotation angles, a region determination unit which determines an arrangement region of each echo signal for each unit measurement, a scan track determination unit which determines a scan track inside each determined
Inverse problem, i.e. transformations from projection space into object space · CPC title
using a non-Cartesian trajectory · CPC title
Echo train techniques involving acquiring plural, differently encoded, echo signals after one RF excitation, e.g. using gradient refocusing in echo planar imaging [EPI], RF refocusing in rapid acquisition with relaxation enhancement [RARE] or using both RF and gradient refocusing in gradient and spin echo imaging [GRASE] · CPC title
in three dimensions · CPC title
involving electronic [EMR] or nuclear [NMR] magnetic resonance, e.g. magnetic resonance imaging · CPC title
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