IP Library › Granted Patent US 12,727,862
Granted Patent B2
US 12,727,862 · App. 18/862,405 · Granted Sep 8, 2026

Ultrasound image artefact reduction

Inventor: Tormod Selbekk (Oslo, NO)
Assignee: Sonoclear AS
A61B8/5269A61B8/469G06T5/70G06V10/25G06V10/26G16H10/40G06T2207/10132G06T2207/30004G06V2201/03
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Quick Facts
Patent No.
US 12,727,862
App. No.
18/862,405
Granted
Sep 8, 2026
Kind
B2
Abstract

There is provided a method and system ( 1 ) for reducing an artefact ( 10 ) in an ultrasound image ( 4 ) of biological tissue ( 5 ), the biological tissue ( 5 ) comprising an object ( 6 ) that has different attenuation than surrounding tissue ( 8 ), wherein the object ( 6 ) comprises a cyst, a ventricle, a fluid-filled cavity, or a natural or surgically-created opening. The method comprises: obtaining an ultrasound image ( 4 ) of the biological tissue ( 5 ) including the object ( 6 ) that has different attenuation than the surrounding tissue ( 8 ); identifying the object ( 6 ) in the ultrasound image ( 4 ); identifying a region ( 14 ) of the ultrasound image ( 4 ) that has an enhancement or shadowing artefact ( 10 ) caused by the different attenuation of the object ( 6 ), wherein the region ( 14 ) is identified based on one or more of: geometry of a transducer ( 2 ) used to obtain the ultrasound image ( 4 ), a beam angle of transmitted ultrasound pulse(s) ( 22 ) used to obtain the ultrasound image ( 4 ), and a distance of propagation of the ultrasound pulse(s) ( 22 ) in the object ( 6 ); and applying a spatially varying gain correction to the identified region ( 14 ) to compensate for the difference in attenuation of the object ( 6 ).

Claims (24)

1 . A method for reducing an artefact in an ultrasound image of biological tissue, the biological tissue comprising an object that has different attenuation than surrounding tissue, wherein the object comprises a cyst, a ventricle, a fluid-filled cavity, or a natural or surgically-created opening; the method comprising:

obtaining an ultrasound image of the biological tissue including the object that has different attenuation than the surrounding tissue;

identifying the object in the ultrasound image;

identifying a region of the ultrasound image that has an enhancement or shadowing artefact caused by the different attenuation of the object, wherein the region is identified based on one or more of: geometry of a transducer used to obtain the ultrasound image, a beam angle of transmitted ultrasound pulse(s) used to obtain the ultrasound image, and a distance of propagation of the ultrasound pulse(s) in the object; and

applying a spatially varying gain correction to the identified region to compensate for the difference in attenuation of the object, wherein the gain correction is determined by:

(i) minimizing a difference in intensity between the region of the ultrasound image that has an enhancement or shadowing artefact caused by the different attenuation of the object and a region of the ultrasound image that is not affected by the artefact, wherein the region of the ultrasound image that has the enhancement or shadowing artefact and the region of the ultrasound image that is not affected by the artefact are at a similar depth; wherein the region of the ultrasound image that is not affected by the artefact comprises multiple areas positioned in a grid arrangement or one or more windows sliding over the region that has the enhancement or shadowing artefact; or

(ii) based on an apparent difference in attenuation for an ultrasound pulse propagating in the biological tissue including the object and the surrounding tissue compared to an ultrasound pulse propagating an equivalent distance in a homogeneous tissue, the homogenous tissue having the same attenuation coefficient as the surrounding tissue, wherein the apparent difference in attenuation is calculated as:

ATN_D( R )=( A 1− A 0)*( L 1− R )* f 0

wherein R is the distance along a trajectory of the ultrasound pulse away from a point at which the ultrasound pulse exits the object, A1 is the attenuation coefficient of the object, A0 is the attenuation coefficient of the surrounding tissue and the homogeneous tissue, L1 is the distance the ultrasound pulse travels in the object along the given trajectory, and f0 is a frequency of the ultrasound pulse;

wherein the gain correction is applied in real-time to an ultrasound scanner, and wherein the method comprises subsequently using the ultrasound scanner to obtain a second ultrasound image of the biological tissue including the object.

2 . The method of claim 1 , wherein identifying the object in the ultrasound image comprises using one or more image segmentation methods to detect a boundary of the object.

3 . The method of claim 2 , wherein the one or more image segmentation methods are based on at least one of machine learning, model based methods, threshold segmentation, region growing, and/or edge enhancement and edge detection methods or any combination thereof.

4 . The method of claim 2 , wherein identifying the region of the ultrasound image comprises mirroring the propagation of the ultrasound pulse(s) within the object with respect to the detected boundary of the object.

5 . The method of claim 1 , wherein the gain correction is frequency dependent.

6 . The method of claim 1 , comprising determining the gain correction based on a time of travel of the ultrasound pulse(s) at a given depth and a time of travel of the ultrasound pulse(s) in the object.

7 . The method of claim 1 , comprising determining the gain correction based on pixel intensities in one or more surrounding areas of the ultrasound image that are not affected by the enhancement or shadowing artefact.

8 . The method of claim 1 , comprising determining a gain correction factor for a pixel at depth (z) and lateral position (x) in the ultrasound image based on a sum of attenuation experienced by the ultrasound pulse(s) contributing to a given pixel's intensity.

9 . The method of claim 8 , wherein the sum of attenuation is calculated based on assumed attenuation coefficients of the biological tissue along a given path of the ultrasound pulse(s) that contribute to the given pixel intensity.

10 . The method of claim 1 , wherein the ultrasound image is recorded, and wherein the gain correction is applied by processing the recorded ultrasound image using computer-implemented image processing techniques.

11 . A computer programme product comprising instructions that, when executed, will configure a computer system to carry out the method of claim 1 .

12 . The computer program product of claim 11 , wherein the computer system includes an ultrasound imaging device, and wherein the instructions will configure the computer system to use a transducer of the ultrasound imaging device to obtain the ultrasound image of the biological tissue including the object.

13 . An apparatus reducing an artefact in an ultrasound image of biological tissue, the biological tissue comprising an object that has different attenuation than surrounding tissue, wherein the object comprises a cyst, a ventricle, a fluid-filled cavity, or a natural or surgically-created opening, the apparatus comprising:

a computer system configured to carry out the method of claim 1 .

14 . The apparatus of claim 13 , wherein the computer system comprises an ultrasound imaging device including a transducer configured for obtaining the ultrasound image.

Priority Claims (1)
GB 2206969 · May 12, 2022 · national
Continuity (1)
Related Publication 20250288282A1 · Sep 18, 2025
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