IP Library › Granted Patent US 12,575,810
Granted Patent B2
US 12,575,810 · App. 18/400,500 · Granted Mar 17, 2026

Direction dependent multi-mode ultrasound imaging

Inventors: Mose Kim (Seoul, KR); Yoonchang Lee (Seoul, KR)
Assignee: SAMSUNG MEDISON CO., LTD.
A61B8/5207A61B8/463A61B8/466A61B8/481A61B8/485A61B8/488A61B8/5238
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Quick Facts
Patent No.
US 12,575,810
App. No.
18/400,500
Granted
Mar 17, 2026
Kind
B2
Abstract

Provided is an ultrasound imaging apparatus including a display, a memory storing one or more instructions, and a processor configured to execute the one or more instructions stored in the memory, wherein, by executing the one or more instructions, the processor is further configured to generate at least one contrast-enhanced image of an object based on first ultrasonic signals obtained when a probe sweeps the object in a first direction, generate at least one ultrasonic image of the object based on second ultrasonic signals obtained when the probe sweeps the object in a second direction different from the first direction, and control the display to display the at least one contrast-enhanced image and the at least one ultrasonic image.

Claims (45)

1 . An ultrasound imaging apparatus comprising:

a display;

a memory storing one or more instructions; and

a processor configured to execute the one or more instructions stored in the memory,

wherein, by executing the one or more instructions, the processor is further configured to:

generate at least one contrast-enhanced image corresponding to at least one first cross-section of an object based on first ultrasonic signals obtained when a probe sweeps the object in a first direction;

generate at least one ultrasonic image corresponding to at least one second cross-section of the object based on second ultrasonic signals obtained when the probe sweeps the object in a second direction opposite to the first direction; and

control the display to display the at least one contrast-enhanced image and the at least one ultrasonic image,

wherein the processor is further configured to execute the one or more instructions to perform compensation for the first ultrasonic signals by applying a first gain value to the first ultrasonic signals obtained from a first area in which the at least one first cross-section and the at least one second cross-section intersect each other and applying a second gain value to the first ultrasonic signals obtained from areas other than the first area, and

wherein the first gain value is set to be greater than the second gain value.

2 . The ultrasound imaging apparatus of claim 1 , wherein the first ultrasonic signals include contrast-enhanced signals reflected from a contrast agent, and

the second ultrasonic signals include tissue signals reflected from tissues of the object.

3 . The ultrasound imaging apparatus of claim 1 , wherein the processor is further configured to execute the one or more instructions to:

generate, based on the first ultrasonic signals, contrast-enhanced images corresponding to first cross-sections of the object which do not intersect each other; and

generate, based on the second ultrasonic signals, ultrasonic images corresponding to second cross-sections of the object which do not intersect each other,

wherein the first cross-sections are different from the second cross-sections.

4 . The ultrasound imaging apparatus of claim 3 , wherein the first cross-sections and the second cross-sections do not intersect each other.

5 . The ultrasound imaging apparatus of claim 3 , wherein the processor is further configured to execute the one or more instructions to:

generate a three-dimensional (3D) contrast-enhanced image based on the contrast-enhanced images corresponding to the first cross-sections; and

generate a 3D ultrasonic image based on the ultrasonic images corresponding to the second cross-sections.

6 . The ultrasound imaging apparatus of claim 5 , wherein the 3D contrast-enhanced image has a first resolution, and the 3D ultrasonic image has a second resolution different from the first resolution.

7 . The ultrasound imaging apparatus of claim 6 , wherein the processor is further configured to execute the one or more instructions to set the number of the contrast-enhanced images constituting the 3D contrast-enhanced image to be different from the number of the ultrasonic images constituting the 3D ultrasonic image.

8 . The ultrasound imaging apparatus of claim 6 , wherein the first resolution is determined based on at least one of the number of the contrast-enhanced images constituting the 3D contrast-enhanced image or the number of scanlines constituting one contrast-enhanced image, and

the second resolution is determined based on at least one of the number of the ultrasonic images constituting the 3D ultrasonic image or the number of scanlines constituting one ultrasonic image.

9 . The ultrasound imaging apparatus of claim 5 , wherein a volume rate of the 3D contrast-enhanced image and the 3D ultrasonic image is determined based on the number of the contrast-enhanced images constituting the 3D contrast-enhanced image, the number of scanlines constituting one contrast-enhanced image, the number of the ultrasonic images constituting the 3D ultrasonic image, and the number of scanlines constituting one ultrasonic image.

10 . The ultrasound imaging apparatus of claim 1 , wherein the at least one ultrasonic image includes at least one of a tissue image, a Doppler image, an elastography image, or a microvascular image.

11 . The ultrasound imaging apparatus of claim 1 , wherein the processor is further configured to execute the one or more instructions to:

generate at least one second ultrasonic image of the object based on third ultrasonic signals obtained when the probe sweeps the object in a third direction different from the first direction and the second direction; and

control the display to display the at least one second ultrasonic image.

12 . A method of operating an ultrasound imaging apparatus, the method comprising:

generating at least one contrast-enhanced image corresponding to at least one first cross-section of an object based on first ultrasonic signals obtained when a probe sweeps the object in a first direction;

generating at least one ultrasonic image corresponding to at least one second cross-section of the object based on second ultrasonic signals obtained when the probe sweeps the object in a second direction opposite to the first direction; and

displaying the at least one contrast-enhanced image and the at least one ultrasonic image,

wherein the generating of the at least one contrast-enhanced image of the object includes performing compensation for the first ultrasonic signals by applying a first gain value to the first ultrasonic signals obtained from a first area in which the at least one first cross-section and the at least one second cross-section intersect each other and applying a second gain value to the first ultrasonic signals obtained from areas other than the first area, and

wherein the first gain value is set to be greater than the second gain value.

13 . The method of claim 12 , wherein the first ultrasonic signals include contrast-enhanced signals reflected from a contrast agent, and

the second ultrasonic signals include tissue signals reflected from tissues of the object.

14 . The method of claim 12 , wherein the generating of the at least one contrast-enhanced image of the object further includes generating, based on the first ultrasonic signals, contrast-enhanced images corresponding to first cross-sections of the object which do not intersect each other, and

the generating of the at least one ultrasonic image of the object includes generating, based on the second ultrasonic signals, ultrasonic images corresponding to second cross-sections of the object which do not intersect each other,

wherein the first cross-sections are different from the second cross-sections.

15 . The method of claim 14 , wherein the first cross-sections and the second cross-sections do not intersect each other.

16 . The method of claim 14 , wherein the generating of the at least one contrast-enhanced image of the object further includes generating a three-dimensional (3D) contrast-enhanced image based on the contrast-enhanced images corresponding to the first cross-sections, and

the generating of the at least one ultrasonic image of the object includes generating a 3D ultrasonic image based on the ultrasonic images corresponding to the second cross-sections.

17 . The method of claim 16 , wherein the 3D contrast-enhanced image has a first resolution, and the 3D ultrasonic image has a second resolution different from the first resolution.

18 . A non-transitory computer-readable recording medium having stored therein a program for executing the method of claim 12 .

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 2, 2024
From: KIM, MOSE; LEE, YOONCHANG
To: SAMSUNG MEDISON CO., LTD.
Reel/Frame 065991/0584 →
Priority Claims (1)
KR 10-2023-0117630 · Sep 5, 2023 · national
Continuity (1)
Related Publication 20250072871A1 · Mar 6, 2025
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