Movatterモバイル変換


[0]ホーム

URL:


US20210123998A1 - Artefact reduction in magnetic resonance imaging - Google Patents

Artefact reduction in magnetic resonance imaging
Download PDF

Info

Publication number
US20210123998A1
US20210123998A1US17/078,660US202017078660AUS2021123998A1US 20210123998 A1US20210123998 A1US 20210123998A1US 202017078660 AUS202017078660 AUS 202017078660AUS 2021123998 A1US2021123998 A1US 2021123998A1
Authority
US
United States
Prior art keywords
space
spatial frequency
sectors
sampling path
frequency data
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Abandoned
Application number
US17/078,660
Inventor
Carole Lazarus
Rafael O'Halloran
Hadrien A. Dyvorne
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Hyperfine Inc
Original Assignee
Hyperfine Research Inc
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Hyperfine Research IncfiledCriticalHyperfine Research Inc
Priority to US17/078,660priorityCriticalpatent/US20210123998A1/en
Assigned to Hyperfine Research, Inc.reassignmentHyperfine Research, Inc.ASSIGNMENT OF ASSIGNORS INTEREST (SEE DOCUMENT FOR DETAILS).Assignors: Dyvorne, Hadrien A., LAZARUS, Carole, O'HALLORAN, RAFAEL
Publication of US20210123998A1publicationCriticalpatent/US20210123998A1/en
Assigned to HYPERFINE, INC.reassignmentHYPERFINE, INC.CHANGE OF NAME (SEE DOCUMENT FOR DETAILS).Assignors: Hyperfine Research, Inc.
Assigned to Hyperfine Operations, Inc.reassignmentHyperfine Operations, Inc.CHANGE OF NAME (SEE DOCUMENT FOR DETAILS).Assignors: HYPERFINE, INC.
Abandonedlegal-statusCriticalCurrent

Links

Images

Classifications

Definitions

Landscapes

Abstract

A method of operating a low-field magnetic resonance imaging (MRI) system, the method comprising: obtaining an initial set of k-space phase-encoding coordinates; generating a sampling path through at least some of the k-space phase-encoding coordinates in the initial set to mitigate impact of eddy currents on operation of the low-field MRI system; and operating the low-field MRI system using a pulse sequence in accordance with the sampling path to obtain spatial frequency data for generating one or more magnetic resonance (MR) images of a subject.

Description

Claims (25)

What is claimed is:
1. A method of operating a low-field magnetic resonance imaging (MRI) system, the method comprising:
obtaining an initial set of k-space phase-encoding coordinates;
generating a sampling path through at least some of the k-space phase-encoding coordinates in the initial set to mitigate impact of eddy currents on operation of the low-field MRI system; and
operating the low-field MRI system using a pulse sequence in accordance with the sampling path to obtain spatial frequency data for generating one or more magnetic resonance (MR) images of a subject.
2. The method ofclaim 1, wherein generating the sampling path comprises generating the sampling path such that substantially all k-space phase-encoding coordinates, which are neighboring along the generated sampling path, are within a threshold distance of one another, wherein the threshold distance depends on a Nyquist spatial frequency for the low-field MRI system.
3. The method ofclaim 1, wherein generating the sampling path comprises generating the sampling path such that at least 95% of k-space phase-encoding coordinates, which are neighboring along the generated sampling path, are within a threshold distance of one another, wherein the threshold distance depends on a Nyquist spatial frequency for the low-field MRI system.
4. The method ofclaim 1, wherein generating the sampling path comprises generating the sampling path such that at least 99% of k-space phase-encoding coordinates, which are neighboring along the generated sampling path, are within a threshold distance of one another, wherein the threshold distance depends on a Nyquist spatial frequency for the low-field MRI system.
5. The method ofclaim 1, wherein generating the sampling path comprises generating the sampling path such that all of k-space phase-encoding coordinates, which are neighboring along the generated sampling path, are within a threshold distance of one another, wherein the threshold distance depends on a Nyquist spatial frequency for the low-field MRI system.
6. The method ofclaim 2, wherein the threshold distance is less than or equal to C/FOV, wherein 1≤C≤5 and FOV represents a length of an imaging field of view of the low-field MRI system along a given direction.
7. The method ofclaim 1, wherein generating the sampling path comprises:
grouping the initial set of k-space phase encoding coordinates into a plurality of k-space sectors;
determining a sequence of k-space sectors, each k-space sector in the sequence being selected from among the plurality of k-space sectors; and
generating the sampling path in accordance with the sequence of k-space sectors.
8. The method ofclaim 7, wherein the sequence of k-space sectors includes at least one of the plurality of k-space sectors multiple times.
9. The method ofclaim 7, wherein generating the sampling path in accordance with the sequence of k-space sectors comprises:
generating a plurality of sector sub-paths corresponding to the plurality of k-space sectors;
generating a plurality of transition sub-paths for transitioning among the plurality of k-space sectors; and
generating the sampling path from the plurality of sector sub-paths and the plurality of transition sub-paths.
10. The method ofclaim 9, wherein generating the plurality of transition sub-paths comprises selecting neighboring k-space phase-encoding coordinates along the transition sub-paths to be within a threshold distance of one another, wherein the threshold distance depends on a Nyquist spatial frequency for the low-field MRI system.
11. The method ofclaim 1, wherein the generated sampling path comprises one or more spiral sub-paths, and wherein the generated sampling path traverses k-space phase-encoding coordinates grouped in concentric k-space sectors.
12. The method ofclaim 1, wherein the generated sampling path traverses k-space phase encoding coordinates in a sequence of radial k-space sectors, wherein at least some consecutive radial sectors in the sequence of radial k-space sectors are angled by approximately a golden angle relative to one another in k-space.
13. The method ofclaim 1, wherein the pulse sequence is a diffusion weighted imaging (DWI) sequence.
14. The method ofclaim 1, wherein the generated sampling path includes at least some coordinates not in the initial set of k-space phase encoding coordinates.
15. The method ofclaim 1,
wherein k-space comprises a central region and at least one region outside the central region, and
wherein the generated sampling path repeatedly samples the central region.
16. The method ofclaim 15, wherein the generated sampling path includes multiple non-contiguous sub-paths containing k-space phase-encoding coordinates in the central region.
17. The method ofclaim 15, wherein the central region of k-space is a region located entirely within a threshold distance of an origin of k-space.
18. The method ofclaim 15, wherein the central region comprises a two-dimensional (2D) elliptical, circular, rectangular, and/or square region that includes an origin of k-space.
19. The method ofclaim 16, wherein the spatial frequency data comprises keyhole spatial frequency data collected using phase-encoding gradients corresponding to coordinates in the multiple non-contiguous sub-paths, the method further comprising:
correcting the spatial frequency data and/or the one or more MR images of the subject for motion artifacts by using the keyhole spatial frequency data.
20. The method ofclaim 1, further comprising: generating the one or more MR images using the spatial frequency data.
21. A method, comprising:
obtaining an initial set of k-space phase-encoding coordinates;
generating a sampling path through at least some of the k-space phase-encoding coordinates in the initial set to mitigate impact of eddy currents on operation of the low-field MRI system, the generating comprising:
grouping the initial set of k-space phase encoding coordinates into a plurality of k-space sectors;
determining a sequence of k-space sectors, each k-space sector in the sequence being selected from among the plurality of k-space sectors; and
generating the sampling path in accordance with the sequence of k-space sectors.
22. The method ofclaim 21, further comprising:
operating the low-field MRI system using a pulse sequence in accordance with the sampling path to obtain spatial frequency data for generating one or more magnetic resonance (MR) images of a subject.
23. A method, comprising:
performing an initial sampling of k-space;
dividing the initial sampling into a plurality of sectors; and
selecting a desired succession of sectors that minimizes a distance between phase-encoding coordinates within a sector and between sectors.
24. The method ofclaim 23, further comprising sampling a central region of the k-space multiple times using a sampling path through the desired succession of sectors.
25. The method ofclaim 23, further comprises correcting for one or more of: motion drift, phase drift, and phase errors by using spatial frequency data collected using a sampling path through the desired succession of sectors, wherein the sampling path repeatedly samples a central region of k-space.
US17/078,6602019-10-252020-10-23Artefact reduction in magnetic resonance imagingAbandonedUS20210123998A1 (en)

Priority Applications (1)

Application NumberPriority DateFiling DateTitle
US17/078,660US20210123998A1 (en)2019-10-252020-10-23Artefact reduction in magnetic resonance imaging

Applications Claiming Priority (2)

Application NumberPriority DateFiling DateTitle
US201962925924P2019-10-252019-10-25
US17/078,660US20210123998A1 (en)2019-10-252020-10-23Artefact reduction in magnetic resonance imaging

Publications (1)

Publication NumberPublication Date
US20210123998A1true US20210123998A1 (en)2021-04-29

Family

ID=73476232

Family Applications (5)

Application NumberTitlePriority DateFiling Date
US17/078,660AbandonedUS20210123998A1 (en)2019-10-252020-10-23Artefact reduction in magnetic resonance imaging
US17/078,788Active2041-04-01US11714151B2 (en)2019-10-252020-10-23Artefact reduction in magnetic resonance imaging
US17/078,729ActiveUS11573282B2 (en)2019-10-252020-10-23Artefact reduction in magnetic resonance imaging
US18/333,358ActiveUS12105175B2 (en)2019-10-252023-06-12Artefact reduction in magnetic resonance imaging
US18/903,929PendingUS20250264564A1 (en)2019-10-252024-10-01Artefact reduction in magnetic resonance imaging

Family Applications After (4)

Application NumberTitlePriority DateFiling Date
US17/078,788Active2041-04-01US11714151B2 (en)2019-10-252020-10-23Artefact reduction in magnetic resonance imaging
US17/078,729ActiveUS11573282B2 (en)2019-10-252020-10-23Artefact reduction in magnetic resonance imaging
US18/333,358ActiveUS12105175B2 (en)2019-10-252023-06-12Artefact reduction in magnetic resonance imaging
US18/903,929PendingUS20250264564A1 (en)2019-10-252024-10-01Artefact reduction in magnetic resonance imaging

Country Status (5)

CountryLink
US (5)US20210123998A1 (en)
EP (1)EP4049052B1 (en)
AU (1)AU2020370365A1 (en)
CA (1)CA3158640A1 (en)
WO (1)WO2021081309A2 (en)

Cited By (2)

* Cited by examiner, † Cited by third party
Publication numberPriority datePublication dateAssigneeTitle
US11573282B2 (en)2019-10-252023-02-07Hyperfine Operations, Inc.Artefact reduction in magnetic resonance imaging
WO2025171228A1 (en)*2024-02-082025-08-14Johnson Curtis LaurenceMagnetic resonance elastography (mre) pulse sequence using magnetization preparation and imaging readouts

Families Citing this family (6)

* Cited by examiner, † Cited by third party
Publication numberPriority datePublication dateAssigneeTitle
US11995744B2 (en)*2017-12-202024-05-28Shanghai United Imaging Healthcare Co., Ltd.Systems and methods for positron emission tomography imaging
US20210124001A1 (en)*2019-10-252021-04-29Hyperfine Research, Inc.Systems and methods for detecting patient motion during magnetic resonance imaging
EP4523142A1 (en)*2022-05-102025-03-19New York UniversitySystem, method and computer-accessible medium for direct visualization with power spectrum regularization
US12332333B2 (en)*2023-01-112025-06-17Neuro42, Inc.Accelerating magnetic resonance imaging using parallel imaging and iterative image reconstruction
WO2025076140A1 (en)*2023-10-022025-04-10Hyperfine Operations, Inc.Multi-direction diffusion weighted imaging on portable, low-field magnetic resonance imaging
US20250157098A1 (en)*2023-11-102025-05-15GE Precision Healthcare LLCSystem and method for scan time reduction for propeller magnetic resonance imaging acquisition using deep learning reconstruction

Family Cites Families (47)

* Cited by examiner, † Cited by third party
Publication numberPriority datePublication dateAssigneeTitle
US6393313B1 (en)2000-08-232002-05-21Ge Medical Systems Global Technology Company, LlcProducing a phase contrast MR image from a partial Fourier data acquisition
US6518759B2 (en)2001-04-092003-02-11Mayo Foundation For Medical Education And ResearchMotion correction of magnetic resonance images
DE10218515B4 (en)2002-04-252005-12-29Siemens Ag Method for improving the vascular tissue contrast in the time-of-flight angiography of a magnetic resonance tomography measurement
WO2006119164A2 (en)*2005-05-042006-11-09Mayo Foundation For Medical Education And ResearchMri acquisition using 2d sense and partial fourier space sampling
US7265547B2 (en)2005-09-162007-09-04General Electric CompanyMethod and apparatus for acquiring MR data with a segmented multi-shot radial fan beam encoding order
US20070103155A1 (en)2005-11-102007-05-10Tsekos Nikolaos VMethod and apparatus for magnetic resonance imaging using directional selective K-space acquisition
US7683620B2 (en)2007-05-032010-03-23The General Hospital CorporationSuppression of noise in MR images and MR spectroscopic images using signal space projection filtering
EP2183612A2 (en)2007-08-242010-05-12Koninklijke Philips Electronics N.V.Mri involving dynamic profile sharing such as keyhole and motion correction
US8120360B2 (en)*2008-01-152012-02-21General Electric CompanySystem and method of angular elliptic centric view ordering for 3D MR acquisitions
US20090285463A1 (en)2008-04-182009-11-19Ricardo OtazoSuperresolution parallel magnetic resonance imaging
US8022700B2 (en)2008-11-072011-09-20General Electric CompanyMethod and apparatus for view ordering of magnetic resonance imaging data for dynamic studies
US8233524B2 (en)2009-03-122012-07-31Freescale Semiconductor, Inc.Radio transmitter IQ imbalance measurement and correction methods and apparatus
JP5613065B2 (en)*2010-01-212014-10-22株式会社東芝 Magnetic resonance imaging system
US20180120401A1 (en)*2012-02-292018-05-03Heartvista, Inc.Methods for optimal gradient design and fast generic waveform switching
GB201301795D0 (en)2013-02-012013-03-20Ucl Business PlcApparatus and method for correcting susceptibility artefacts in a magnetic resonance image
US9513358B2 (en)*2013-03-122016-12-06Vaposun Inc.Method and apparatus for magnetic resonance imaging
US9933505B2 (en)2013-04-032018-04-03Dignity HealthSystem and method for motion correction in magnetic resonance imaging
WO2015116881A1 (en)*2014-01-312015-08-06The General Hospital CorporationSystem and method for simulaneous multislice excitation using combined multiband and periodic slice excitation
US10120048B2 (en)*2014-07-282018-11-06Northshore University HealthsystemSystems and methods for efficient radial magnetic resonance imaging with azimuthal equidistant projections
BR112017004353A2 (en)2014-09-052017-12-05Hyperfine Res Inc ferromagnetic magnification for magnetic resonance imaging
WO2016077417A1 (en)2014-11-112016-05-19Hyperfine Research, Inc.Low field magnetic resonance methods and apparatus
AU2015346431B2 (en)2014-11-112020-06-18Hyperfine Operations, Inc.Pulse sequences for low field magnetic resonance
BR112017021999A2 (en)2015-04-132018-07-10Hyperfine Res Inc magnetic coil feeding apparatus and methods
US10709387B2 (en)2015-05-122020-07-14Hyperfine Research, Inc.Radio frequency coil methods and apparatus
CN109073681B (en)2016-03-222020-10-23海珀菲纳研究股份有限公司 Method and apparatus for magnetic field shimming
US10311601B2 (en)2016-09-262019-06-04Siemens Healthcare Gmbh3D motion correction using 3D deformable registration and patient respiratory signals
TWI667487B (en)2016-09-292019-08-01美商超精細研究股份有限公司Radio frequency coil tuning methods and apparatus
US10627464B2 (en)2016-11-222020-04-21Hyperfine Research, Inc.Low-field magnetic resonance imaging methods and apparatus
US10718842B2 (en)2016-11-222020-07-21Hyperfine Research, Inc.Systems and methods for automated detection in magnetic resonance images
US10585153B2 (en)2016-11-222020-03-10Hyperfine Research, Inc.Rotatable magnet methods and apparatus for a magnetic resonance imaging system
TWI744629B (en)2018-04-202021-11-01美商海珀菲纳股份有限公司Deployable guard devices and apparatus and system comprising the same
MX2020012537A (en)2018-05-212021-02-16Hyperfine Res IncB<sub>0</sub> MAGNET METHODS AND APPARATUS FOR A MAGNETIC RESONANCE IMAGING SYSTEM.
TW202011687A (en)2018-05-212020-03-16美商超精細研究股份有限公司Radio-frequency coil signal chain for a low-field MRI system
TW202015621A (en)2018-07-192020-05-01美商超精細研究股份有限公司Methods and apparatus for patient positioning in magnetic resonance imaging
CN120370238A (en)2018-07-302025-07-25海珀菲纳股份有限公司System, method, storage medium and magnetic resonance imaging system for a deep learning technique for magnetic resonance image reconstruction
TW202012951A (en)2018-07-312020-04-01美商超精細研究股份有限公司Low-field diffusion weighted imaging
JP2021532885A (en)2018-07-312021-12-02ハイパーファイン,インコーポレイテッド Medical Imaging Equipment Messaging Service
AU2019321607A1 (en)2018-08-152021-02-11Hyperfine Operations, Inc.Deep learning techniques for suppressing artefacts in magnetic resonance images
EP3899565A2 (en)2018-12-192021-10-27Hyperfine, Inc.System and methods for grounding patients during magnetic resonance imaging
JP2022515825A (en)2018-12-282022-02-22ハイパーファイン,インコーポレイテッド Hysteresis correction in magnetic resonance imaging
JP7245076B2 (en)*2019-03-012023-03-23キヤノンメディカルシステムズ株式会社 MAGNETIC RESONANCE IMAGING APPARATUS AND MAGNETIC RESONANCE IMAGING METHOD
KR20210137142A (en)2019-03-122021-11-17하이퍼파인, 인크. Systems and methods for magnetic resonance imaging of infants
US11185249B2 (en)2019-03-142021-11-30Hyperfine, Inc.Self ensembling techniques for generating magnetic resonance images from spatial frequency data
EP3959529A1 (en)2019-04-262022-03-02Hyperfine, Inc.Techniques for dynamic control of a magnetic resonance imaging system
WO2020227054A1 (en)2019-05-072020-11-12Hyperfine Research, Inc.Systems, devices, and methods for magnetic resonance imaging of infants
EP4014057A1 (en)2019-08-152022-06-22Hyperfine Operations, Inc.Eddy current mitigation systems and methods
US20210123998A1 (en)2019-10-252021-04-29Hyperfine Research, Inc.Artefact reduction in magnetic resonance imaging

Cited By (4)

* Cited by examiner, † Cited by third party
Publication numberPriority datePublication dateAssigneeTitle
US11573282B2 (en)2019-10-252023-02-07Hyperfine Operations, Inc.Artefact reduction in magnetic resonance imaging
US11714151B2 (en)2019-10-252023-08-01Hyperfine Operations, Inc.Artefact reduction in magnetic resonance imaging
US12105175B2 (en)2019-10-252024-10-01Hyperfine Operations, Inc.Artefact reduction in magnetic resonance imaging
WO2025171228A1 (en)*2024-02-082025-08-14Johnson Curtis LaurenceMagnetic resonance elastography (mre) pulse sequence using magnetization preparation and imaging readouts

Also Published As

Publication numberPublication date
EP4049052B1 (en)2025-09-17
US12105175B2 (en)2024-10-01
WO2021081309A2 (en)2021-04-29
AU2020370365A1 (en)2022-05-19
US11714151B2 (en)2023-08-01
US20230341494A1 (en)2023-10-26
EP4049052A2 (en)2022-08-31
US20250264564A1 (en)2025-08-21
WO2021081309A3 (en)2021-06-03
US20210124003A1 (en)2021-04-29
US11573282B2 (en)2023-02-07
US20210124002A1 (en)2021-04-29
CA3158640A1 (en)2021-04-29

Similar Documents

PublicationPublication DateTitle
US12105175B2 (en)Artefact reduction in magnetic resonance imaging
US10955500B2 (en)Pulse sequences for low field magnetic resonance
US12181553B2 (en)Deep learning techniques for magnetic resonance image reconstruction
CN103260510B (en) Magnetic resonance imaging device and contrast-enhanced image acquisition method
CN104781685A (en)Image reconstruction for dynamic MRI with incoherent sampling and redundant HAAR wavelets
US11740309B2 (en)Systems and methods for dynamically extending magnetic resonance imaging of a subject
US20250110196A1 (en)Electromagnetic interference suppression techniques for magnetic resonance imaging
HK1241679A1 (en)Pulse sequences for low field magnetic resonance

Legal Events

DateCodeTitleDescription
ASAssignment

Owner name:HYPERFINE RESEARCH, INC., CONNECTICUT

Free format text:ASSIGNMENT OF ASSIGNORS INTEREST;ASSIGNORS:LAZARUS, CAROLE;O'HALLORAN, RAFAEL;DYVORNE, HADRIEN A.;SIGNING DATES FROM 20210322 TO 20210323;REEL/FRAME:055919/0876

STPPInformation on status: patent application and granting procedure in general

Free format text:DOCKETED NEW CASE - READY FOR EXAMINATION

ASAssignment

Owner name:HYPERFINE, INC., CONNECTICUT

Free format text:CHANGE OF NAME;ASSIGNOR:HYPERFINE RESEARCH, INC.;REEL/FRAME:056715/0901

Effective date:20210525

ASAssignment

Owner name:HYPERFINE OPERATIONS, INC., CONNECTICUT

Free format text:CHANGE OF NAME;ASSIGNOR:HYPERFINE, INC.;REEL/FRAME:059332/0615

Effective date:20211222

STPPInformation on status: patent application and granting procedure in general

Free format text:NON FINAL ACTION MAILED

STCBInformation on status: application discontinuation

Free format text:ABANDONED -- FAILURE TO RESPOND TO AN OFFICE ACTION


[8]ページ先頭

©2009-2025 Movatter.jp