IP Library Granted Patent US 10,470,685
Granted Patent B2
US 10,470,685 · App. 13/973,395 · Granted Nov 12, 2019

Method and apparatus for capturing magnetic resonance image

Inventors: Jong-bum Son (Seongnam-si, KR); Seong-deok Lee (Seongnam-si, KR); Jae-mock Yi (Hwaseong-si, KR)
Assignee: Samsung Electronics Co., Ltd.
A61B5/055G01R33/5602G01R33/4833
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Quick Facts
Patent No.
US 10,470,685
App. No.
13/973,395
Granted
Nov 12, 2019
Kind
B2
Abstract

A method and apparatus for capturing a magnetic resonance image in which processes of generating T1 contrast for different regions of an object overlap with each other, thereby obtaining a magnetic resonance image having an improved contrast between different tissues within a short time. Therefore, a time required for obtaining a magnetic resonance image may be reduced, and a magnetic resonance image enabling improved diagnosis of a disease or other abnormal condition may be provided.

Claims (46)

1. A method of generating a magnetic resonance image of an object, the method comprising:

generating a T1 contrast for a first region of the object composed of different tissues;

generating a T1 contrast for a second region of the object; and

generating the magnetic resonance image of the object, based on the T1 contrast for the first region and the T1 contrast for the second region,

wherein the generating of the T1 contrast for the first region and the generating of the T1 contrast for the second region overlap with each other,

wherein a scan time for obtaining a T1 image for each of a plurality of regions of the object comprises an inversion time (TI) and a repetition time (TR), which is a time taken for imaging after the inversion time (TI),

wherein the generating of the T1 contrast for the second region starts upon a time delay corresponding to the repetition time (TR) from a start of the generating of the T1 contrast for the first region,

wherein the generating of the magnetic resonance image of the object starts upon a second time delay from a finish of respective generations of a T1 contrast for each of the plurality of regions, the second time delay corresponding to the repetition time.

2. The method of claim 1 , further comprising:

obtaining a magnetic resonance signal from the first region by applying a pulse sequence with a first offset to the first region; and

obtaining a magnetic resonance signal from the second region by applying the pulse sequence with a second offset to the second region.

3. The method of claim 2 , wherein the obtaining of the magnetic resonance signal from the first region by applying the pulse sequence with the first offset to the first region starts during the generating of the T1 contrast for the second region.

4. The method of claim 2 , wherein the obtaining of the magnetic resonance signal from the second region by applying the pulse sequence with the second offset to the second region starts upon completion of the obtaining of the magnetic resonance signal from the first region by applying the pulse sequence with the first offset to the first region.

5. The method of claim 1 , further comprising generating a T1 contrast for a third region of the object;

wherein the generating of the T1 contrast for the second region and the generating of the T1 contrast for the third region overlap with each other.

6. The method of claim 5 , further comprising:

obtaining a magnetic resonance signal from the first region by applying a pulse sequence with a first offset to the first region;

obtaining a magnetic resonance signal from the second region by applying the pulse sequence with a second offset to the second region; and

obtaining a magnetic resonance signal from the third region by applying the pulse sequence with a third offset to the third region.

7. The method of claim 1 , wherein the first region and the second region are different cross-sections of the object.

8. The method of claim 1 , wherein the first region and the second region are different subvolumes of the object.

9. A non-transitory computer-readable storage medium storing a program for controlling a computer to control an apparatus for generating a magnetic resonance image to perform the method of claim 1 .

10. An apparatus for capturing a magnetic resonance image, the apparatus comprising:

a radio-frequency (RF) coil portion configured to apply an RF pulse to a first region of an object, composed of different tissues, for generating a T1 contrast for the first region, and to apply the pulse to a second region of the object for generating a T1 contrast for the second region; and

a control unit configured to determine a time point at which the RF pulse with a first offset is applied to the first region for the generating of the T1 contrast for the first region and a time point at which the RF pulse with a second offset is applied to the second region for the generating of the T1 contrast for the second region so that the generating of the T1 contrast for the first region and the generating of the T1 contrast for the second region overlap with each other,

wherein a scan time for obtaining a T1 image for each of a plurality of regions of the object comprises an inversion time (TI) and a repetition time (TR), which is a time taken for imaging after the inversion time (TI), and

wherein the control unit is further configured to:

determine a time point at which the RF pulse with the second offset is applied to the second region to be a time point delayed by a time corresponding to the repetition time (TR), from a time point at which the RF pulse with the first offset is applied to the first region; and

start generating the magnetic resonance image of the object upon a time delay after respective generations of a T1 contrast for each of the plurality of regions, the time delay corresponding to the repetition time.

11. The apparatus of claim 10 , wherein the RF coil portion is further configured to apply respective pulse sequences with different offsets, for obtaining a magnetic resonance signal, to the first region and to the second region; and

the apparatus further comprises a signal obtaining unit configured to obtain a magnetic resonance signal from the first region in response to a pulse sequence with the first offset applied to the first region, and a magnetic resonance signal from the second region in response to the pulse sequence with the second offset applied to the second region.

12. The apparatus of claim 11 , wherein the control unit is further configured to start the obtaining of the magnetic resonance signal from the first region during the generating of the T1 contrast for the second region.

13. The apparatus of claim 11 , wherein the control unit is further configured to start the obtaining of the magnetic resonance signal from the second region upon completion of the obtaining of the magnetic resonance signal from the first region.

14. The apparatus of claim 10 , wherein the RF coil portion is further configured to apply the RF pulse with a third offset to a third region of the object for generating a T1 contrast for the third region.

15. The apparatus of claim 14 , wherein the RF coil portion is further configured to apply respective pulse sequences with different offsets, for obtaining a magnetic resonance signal, to the first region, to the second region, and to the third region; and

the apparatus further comprises a signal obtaining unit configured to obtain a magnetic resonance signal from the first region in response to a pulse sequence with a first offset applied to the first region, a magnetic resonance signal from the second region in response to the pulse sequence with a second offset applied to the second region, and a magnetic resonance signal from the third region in response to the pulse sequence with a third offset applied to the third region.

16. The apparatus of claim 10 , wherein the first region and the second region are different cross-sections of the object.

17. The apparatus of claim 10 , wherein the first region and the second region are different subvolumes of the object.

18. An apparatus for generating a magnetic resonance image of an object, the apparatus comprising:

one or more processors configured to:

generate a T1 contrast for a first region of the object composed of different tissues;

generate a TI contrast for a second region of the object after a time delay corresponding to a repetition time from a start of the generating of the T1 contrast for the first region; and

generating the magnetic resonance image of the object, based on the T1 contrast for the first region and the T1 contrast for the second region, the generating of the magnetic resonance image of the object starting upon a second time delay from a finish of respective generations of a T1 contrast for each of a plurality of regions, and the second time delay corresponding to the repetition time, wherein

the generating of the T1 contrast for the first region and the generating of the contrast for the second region overlap with each other, and

a time for obtaining a T1 image for each of a plurality of regions of the object comprises an inversion time and the repetition time, which is a time taken for imaging after the inversion time.

19. The apparatus of claim 18 , wherein a total time for the generating of the magnetic resonance image of the object amounts to a sum of the inversion time and a multiplying result, the multiplying result being obtained from multiplying the repetition time by a number of the plurality of regions.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 18, 2013
From: SON, JONG-BUM; LEE, SEONG-DEOK; YI, JAE-MOCK
To: SAMSUNG ELECTRONICS CO., LTD.
Reel/Frame 031619/0747 →
Priority Claims (1)
KR 10-2012-0091989 · Aug 22, 2012 · national
Continuity (1)
Related Publication 20140066746A1 · Mar 6, 2014
Cited By (2)
US 12,385,509 US 12,402,807