IP Library Granted Patent US 10,302,725
Granted Patent B2
US 10,302,725 · App. 14/826,554 · Granted May 28, 2019

MRI apparatus that continuously generates and collects multiple echo K-space data from which odd and/or even numbered collected groups of K-space data are extracted and separately processed

Inventor: Shigehide Kuhara (Tochigi, JP)
Assignee: TOSHIBA MEDICAL SYSTEMS CORPORATION
G01R33/5611G01R33/385G01R33/5616G01R33/56554G01R33/56563
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Quick Facts
Patent No.
US 10,302,725
App. No.
14/826,554
Granted
May 28, 2019
Kind
B2
Abstract

A magnetic resonance imaging apparatus according to an embodiment includes sequence controlling circuitry and image generating circuitry. The sequence controlling circuitry is configured to continuously apply, after application of an excitation pulse, a readout gradient magnetic field while inverting polarity to control execution of a pulse sequence that continuously generates multiple echo signals and configured to collect echo signals for multiple channels by parallel imaging. The image generating circuitry is configured to extract at least one of an even-number-th collected echo signal group and an odd-number-th collected echo signal group from multiple echo signals continuously collected and configured to generate at least one of an even-number-th image and an odd-number-th image using the extracted echo signal group for the multiple channels and sensitivity distribution for the multiple channels.

Claims (48)

1. A magnetic resonance imaging apparatus comprising:

sequence controlling circuitry configured to

continuously apply, after application of an excitation pulse, a readout gradient magnetic field while inverting polarity to control execution of a pulse sequence that continuously generates multiple echo signals and

collect echo signals for multiple channels by parallel imaging; and

image generating circuitry configured to

extract at least one of an even-number-th collected echo signal group and an odd-number-th collected echo signal group from multiple echo signals continuously collected,

generate at least one of an even-number-th image and an odd-number-th image using the extracted echo signal group for the multiple channels and sensitivity distribution for the multiple channels, and

perform inverse Fourier transform on at least one of the even-number-th image and the odd-number-th image to generate at least one of high-density k-space data corresponding to the even-number-th image and high-density k-space data corresponding to the odd-number-th image, and

generate an image based on the generated high-density k-space data.

2. The magnetic resonance imaging apparatus according to claim 1 , wherein the image generating circuitry is further configured to

perform inverse Fourier transform on the even-number-th image and the odd-number-th image to generate high-density k-space data corresponding to the even-number-th image and high-density k-space data corresponding to the odd-number-th image,

compare echo signals included in respective pieces of k-space data within same encode lines to derive phase correction values that match phases of even-number-th collected echo signals with phases of odd-number-th collected echo signals, and

generate the image based on the derived phase correction values.

3. The magnetic resonance imaging apparatus according to claim 2 , wherein the image generating circuitry is configured to derive the phase correction values on a k-space that is after performing one-dimensional Fourier transform on a frequency encode axis.

4. The magnetic resonance imaging apparatus according to claim 2 , wherein when echo signals for multiple channels are collected by parallel imaging, and the sequence controlling circuitry is configured to

collect a central part of the k-space with high density, and

collect a peripheral part of the k-space with low density, and

the image generating circuitry is configured to

extract the even-number-th collected echo signal group and the odd-number-th collected echo signal group from the multiple echo signals continuously collected with respect to the central part and

generate the even-number-th image and the odd-number-th image using the extracted echo signal groups and the sensitivity distribution for the multiple channels.

5. The magnetic resonance imaging apparatus according to claim 2 , wherein the image generating circuitry is configured to

generate a phase difference map that corresponds to an entirety of encode lines and that accumulates the phase correction values, and

generate the image using the generated phase difference map.

6. The magnetic resonance imaging apparatus according to claim 2 , wherein

the sequence controlling circuitry is configured to

separately control execution of a first pulse sequence by a first parallel imaging factor and execution of a second pulse sequence by a second parallel imaging factor that is different from the first parallel imaging factor, and

collect echo signals for multiple channels separately, and

the image generating circuitry is configured to

derive the phase correction values from echo signals collected by the execution of the first pulse sequence, and

generate the image using the derived phase correction values and echo signals collected by the execution of the second pulse sequence.

7. The magnetic resonance imaging apparatus according to claim 6 , wherein the first parallel imaging factor has a smaller decimation rate than the second parallel imaging factor.

8. The magnetic resonance imaging apparatus according to claim 2 , wherein the high-density k-space data corresponding to the even-number-th image or the high-density k-space data corresponding to the odd-number-th image data are full sampling k-space data in which data are arranged without decimating any phase encode line.

9. The magnetic resonance imaging apparatus according to claim 1 , wherein the image generating circuitry is configured to

generate at least one image among the even-number-th image, the odd-number-th image, a combined image of the even-number-th image and the odd-number-th image, and a difference image of the even-number-th image and the odd-number-th image and

display the generated image on a display.

10. The magnetic resonance imaging apparatus according to claim 1 , wherein the image generating circuitry is configured to

generate an image designated from the even-number-th image, the odd-number-th image, a combined image of the even-number-th image and the odd-number-th image, and a difference image of the even-number-th image and the odd-number-th image, in preset information of imaging conditions and

display the generated image on a display.

11. A magnetic resonance imaging apparatus comprising:

sequence controlling circuitry configured to

continuously apply a readout gradient magnetic field, after application of an excitation pulse, while decimating phase encode direction and while inverting polarity of the readout gradient magnetic field, to continuously collect multiple echo signals; and

image generating circuitry configured to

extract an even-number-th collected echo signal group and an odd-number-th collected echo signal group from the multiple echo signals continuously collected;

generate an even-number-th image and an odd-number-th image using the even-number-th collected echo signal group and the odd-number-th collected echo signal group, and

generate an image in which phase correction has been performed, based on a phase difference map generated based on the even-number-th image and the odd-number-th image.

12. An image processing apparatus comprising image generating circuitry configured to

generate an even-number-th image based on an even-number-th collected echo signal group and generate an odd-number-th image based on an odd-number-th collected echo signal group, the even-number-th collected echo signal group and the odd-number-th collected echo signal group being extracted from multiple echo signals, the multiple echo signals collected by executing an EPI (Echo Planar Imaging) pulse sequence while decimating phase encode direction, and

generate an image in which phase correction has been performed, based on a phase difference map generated based on the even-number-th image and the odd-number-th image.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 27, 2016
From: KABUSHIKI KAISHA TOSHIBA
To: TOSHIBA MEDICAL SYSTEMS CORPORATION
Reel/Frame 038831/0922 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 14, 2015
From: KUHARA, SHIGEHIDE
To: KABUSHIKI KAISHA TOSHIBA; TOSHIBA MEDICAL SYSTEMS CORPORATION
Reel/Frame 036329/0180 →
Priority Claims (1)
JP 2013-029957 · Feb 19, 2013 · national
Continuity (2)
Continuation PCTJP2014053954 · Feb 19, 2014
Related Publication 20150355303A1 · Dec 10, 2015