IP Library Granted Patent US 12,607,697
Granted Patent B1
US 12,607,697 · App. 19/245,871 · Granted Apr 21, 2026

Method for acquiring a magnetic resonance image with an extended field of view

Inventors: Flavio Carinci (Wuerzburg, DE); Stefanie Splitthoff (Uttenreuth, DE)
Assignee: SIEMENS HEALTHINEERS AG
G01R33/56563G01R33/481G01R33/4833G01R33/56572
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Quick Facts
Patent No.
US 12,607,697
App. No.
19/245,871
Granted
Apr 21, 2026
Kind
B1
Abstract

A method for magnetic resonance imaging, the method comprising: provisioning a distortion correction function for an extended field of view; provisioning an optimized position along the slice selection direction, wherein the static magnetic field has a high level of homogeneity within the slice at the optimized position in a region in the periphery of the field of view; provisioning an optimized readout gradient, wherein a strength and polarity of the optimized readout gradient are selected so that distortions in the magnetic resonance image caused by inhomogeneities in the static magnetic field and distortions caused by non-linearities in the readout gradient field are superimposed within the region; acquiring the magnetic resonance image at the optimized position along the slice selection direction with the optimized readout gradient; and performing distortion correction on the acquired magnetic resonance image using the distortion correction function.

Claims (53)

1 . A method for acquiring, with a magnetic resonance tomograph, a magnetic resonance image with an extended field of view that is extended in at least one direction, wherein the magnetic resonance tomograph is configured to, in the extended field of view, produce a static magnetic field and magnetic gradient fields extending in a slice selection direction, a readout direction, and at least one phase encoding direction, wherein during acquisition, an MR signal is acquired from signal-generating spins in the extended field of view, and wherein the method comprises:

provisioning a distortion correction function for the extended field of view;

provisioning at least one optimized position along the slice selection direction, wherein the static magnetic field has a level of homogeneity within a slice at the at least one optimized position in at least one region in a periphery of the extended field of view;

provisioning an optimized readout gradient, wherein a strength and a polarity of the optimized readout gradient are selected so that distortions in the magnetic resonance image caused by inhomogeneities in the static magnetic field and distortions caused by non-linearities in a readout gradient field are superimposed in a compensatory manner within the at least one region;

acquiring the magnetic resonance image at the at least one optimized position along the slice selection direction with the optimized readout gradient; and

performing distortion correction on the magnetic resonance image using the distortion correction function.

2 . The method as claimed in claim 1 , wherein

the readout direction is aligned along a left-right direction of a subject lying in the magnetic resonance tomograph, and

the slice selection direction is aligned along a z-direction of the magnetic resonance tomograph.

3 . The method as claimed in claim 1 , wherein

the at least one optimized position along the slice selection direction is selected so that the static magnetic field has a level of homogeneity within the slice at the at least one optimized position in two regions, and

the two regions are positioned on sides of the extended field of view in the readout direction.

4 . The method as claimed in claim 1 , wherein

two optimized positions along the slice selection direction are selected so that the static magnetic field has a level of homogeneity within a first region of a first slice at a first optimized position and a level of homogeneity within a second region of a second slice at a second optimized position, and

the first region and the second region are arranged on sides of the extended field of view in the readout direction.

5 . The method as claimed in claim 1 , wherein the at least one optimized position along the slice selection direction is further optimized to minimize artifacts due to signal-generating spins outside the slice.

6 . The method as claimed in claim 1 , wherein the at least one optimized position is determined by

analyzing a different magnetic resonance image, which was obtained in a plane that is aligned along the slice selection direction and the readout direction, and

determining, as the at least one optimized position, a position along the slice selection direction in which a distortion of the different magnetic resonance image is minimal at the periphery of the extended field of view in the readout direction.

7 . The method as claimed in claim 1 , wherein the optimized readout gradient is determined by applying B 0 homogenization using gradient enhancement.

8 . The method as claimed in claim 1 , further comprising:

providing an optimized slice selection gradient with respect to a slice thickness used during acquisition of the magnetic resonance image, wherein

a strength and a polarity of a slice selection gradient are optimized to minimize interfering signals from spins outside the slice.

9 . The method as claimed in claim 8 , wherein at least one of the at least one optimized position or the optimized strength and the optimized polarity of the optimized slice selection gradient are determined by evaluating magnetic resonance images, which are corrected for the extended field of view using the distortion correction function.

10 . The method as claimed in claim 1 , further comprising:

acquiring a magnetic resonance image separately for each of two regions at an edge of the extended field of view on sides in the readout direction.

11 . The method as claimed in claim 1 , further comprising:

acquiring a series of magnetic resonance images at the at least one optimized position along the slice selection direction, wherein

a subject lying in the magnetic resonance tomograph is moved along the slice selection direction between acquisition of individual images in the series.

12 . A method of producing an attenuation correction (AC) map of a subject, the method comprising:

using a magnetic resonance image with an extended field of view to produce the AC map, the magnetic resonance tomograph obtained using the method as claimed in claim 1 .

13 . A non-transitory computer program product including program code that, when executed by at least one processor at a magnetic resonance tomograph, triggers the magnetic resonance tomograph to execute the method as claimed in claim 1 .

14 . A non-transitory computer-readable storage medium, storing computer-executable instructions that, when executed by at least one processor at a magnetic resonance tomograph, cause the magnetic resonance tomograph to perform the method as claimed in claim 1 .

15 . A magnetic resonance tomograph configured to execute the method as claimed in claim 1 , wherein the magnetic resonance tomograph comprises:

a main magnet configured to produce the static magnetic field;

gradient coils configured to produce the magnetic gradient fields extending in the slice selection direction, the readout direction, and the at least one phase encoding direction;

a gradient controller configured to control the gradient coils;

a radio frequency controller configured to control a radio frequency coil; and

a control unit configured to control the radio frequency controller and the gradient controller.

16 . The method as claimed in claim 2 , wherein

the at least one optimized position along the slice selection direction is selected so that the static magnetic field has a level of homogeneity within the slice at the at least one optimized position in two regions, and

the two regions are positioned on sides of the extended field of view in the readout direction.

17 . The method as claimed in claim 2 , wherein

two optimized positions along the slice selection direction are selected so that the static magnetic field has a level of homogeneity within a first region of a first slice at a first optimized position and a level of homogeneity within a second region of a second slice at a second optimized position, and

the first region and the second region are arranged on sides of the extended field of view in the readout direction.

18 . The method as claimed in claim 17 , wherein

the at least one optimized position is determined by analyzing a different magnetic resonance image, which was obtained in a plane that is aligned along the slice selection direction and the readout direction, and

determining, as the at least one optimized position, a position along the slice selection direction in which a distortion of the different magnetic resonance image is minimal at the periphery of the extended field of view in the readout direction.

19 . The method as claimed in claim 4 , wherein the at least one optimized position along the slice selection direction is further optimized to minimize artifacts due to signal-generating spins outside the slice.

20 . The method as claimed in claim 4 , wherein the at least one optimized position is determined by

analyzing a different magnetic resonance image, which was obtained in a plane that is aligned along the slice selection direction and the readout direction, and

determining, as the at least one optimized position, a position along the slice selection direction in which a distortion of the different magnetic resonance image is minimal at the periphery of the extended field of view in the readout direction.

21 . The method as claimed in claim 1 , wherein the distortion correction function for the extended field of view is based on a map of a gradient field which covers the extended field of view.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 6, 2025
From: CARINCI, FLAVIO; SPLITTHOFF, STEFANIE
To: SIEMENS HEALTHINEERS AG
Reel/Frame 071948/0654 →
Priority Claims (1)
DE 10 2024 205 850.5 · Jun 24, 2024 · national
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