IP Library Granted Patent US 12,004,905
Granted Patent B2
US 12,004,905 · App. 16/002,223 · Granted Jun 11, 2024

Medical imaging systems using robotic actuators and related methods

Inventors: Neil R. Crawford (Chandler, AZ); Norbert Johnson (North Andover, MA)
Assignee: Globus Medical, Inc.
A61B8/4218A61B8/14A61B8/4254A61B8/4263A61B8/429A61B8/483A61B8/5207A61B8/54A61B17/7082A61B34/30A61B34/32A61B90/50G06T7/30G06T7/66A61B17/1757A61B2034/107A61B2034/2057A61B2034/2065A61B2034/2072A61B2090/365A61B2090/376A61F2/4611A61F2002/4632G06T2207/10136G06T2207/20221G06T2207/30004
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Quick Facts
Patent No.
US 12,004,905
App. No.
16/002,223
Granted
Jun 11, 2024
Kind
B2
Abstract

Methods may be provided to operate an imaging system using a contact imaging probe to generate imaging of a body. A robotic actuator may be controlled to position the contact imaging probe at a first location on a surface of the body such that the contact imaging probe is in a first radial alignment with an imaging isocenter. The robotic actuator may then be controlled to position the contact imaging probe at a second location on the surface of the body such that the contact imaging probe is in a second radial alignment with the imaging isocenter. Moreover, the first and second radial alignments may be different.

Claims (54)

1. A method of operating an imaging system using a contact imaging probe to generate imaging of a body, the method comprising:

controlling a robotic actuator to position the contact imaging probe at a first location on a surface of the body such that the contact imaging probe is in a first radial alignment with an imaging isocenter; and

controlling the robotic actuator to position the contact imaging probe at a second location on the surface of the body such that the contact imaging probe is in a second radial alignment with the imaging isocenter, wherein the first and second radial alignments are different,

wherein the contact imaging probe has a first tracking array and a second tracking array is rigidly attached to the body,

wherein an initial distance between the contact imaging probe and the imaging isocenter is determined using optical tracking of optical markers on the first tracking array and the second tracking array,

wherein controlling the robotic actuator to position the contact imaging probe at the first location comprises providing contact at the first location based on at least one of capacitive measurement feedback, temperature measurement feedback, conductivity measurement feedback, and/or optical feedback, and/or wherein controlling the robotic actuator to position the contact imaging probe at the second location comprises providing contact at the second location based on at least one of capacitive measurement feedback, temperature measurement feedback, conductivity measurement feedback, and/or optical feedback,

wherein a first definition of the imaging isocenter is determined by a user manually touching at least three points on the surface of the body using a digitizing probe and a processor defining a circle based on the at least three points, and

wherein the first definition of the imaging isocenter is a center of the circle.

2. The method of claim 1 , the method further comprising:

providing a coordinate system used to define locations of the contact imaging probe and the imaging isocenter;

wherein the first radial alignment with the imaging isocenter is based on the first definition of the imaging isocenter in the coordinate system; and

providing a second definition of the imaging isocenter in the coordinate system responsive to detecting movement of the body relative to the coordinate system after controlling the robotic actuator to position the contact imaging probe at the first location, wherein the second radial alignment with the imaging isocenter is based on the second definition of the imaging isocenter in the coordinate system.

3. The method of claim 2 , wherein the imaging isocenter is later determined by registering a prior image in the coordinate system, rendering the prior image on a display, and accepting user input to define the imaging isocenter using the prior image.

4. The method of claim 2 , wherein the imaging isocenter is later determined based on a geometric mean, an arithmetic mean, a center of mass, and/or a moment of inertia of the body.

5. The method of claim 1 further comprising:

generating first imaging information using the contact imaging probe in the first location;

generating second imaging information using the contact imaging probe in the second location; and

generating 3-dimensional information for an image of the body to be rendered on a display, wherein the 3-dimensional information is generated based on the first imaging information and the second imaging information.

6. The method of claim 5 further comprising:

determining a first distance of the contact imaging probe from the imaging isocenter at the first location that is used to generate the first imaging information; and

determining a second distance of the contact imaging probe from the imaging isocenter at the second location that is used to generate the second imaging information, wherein the first and second distances are different;

wherein the 3-dimensional information is generated based on the first and second imaging information and based on the first and second distances.

7. The method of claim 5 , wherein the contact imaging probe is an ultrasound transducer probe, wherein the first imaging information is generated based on first ultrasound echo information generated with the ultrasound transducer probe in the first location, and wherein the second imaging information is generated based on second ultrasound echo information generated with the ultrasound transducer probe in the second location.

8. The method of claim 1 , wherein the imaging isocenter is located within the body.

9. An imaging system configured to generate imaging of a body, the imaging system comprising:

a robotic actuator configured to position a contact imaging probe; and

a controller coupled with the robotic actuator, wherein the controller is configured to,

control the robotic actuator to position the contact imaging probe at a first location on a surface of the body such that the contact imaging probe is in a first radial alignment with an imaging isocenter, and

control the robotic actuator to position the contact imaging probe at a second location on the surface of the body such that the contact imaging probe is in a second radial alignment with the imaging isocenter, wherein the first and second radial alignments are different,

wherein the contact imaging probe has a first tracking array and a second tracking array is rigidly attached to the body,

wherein an initial distance between the contact imaging probe and the imaging isocenter is determined using optical tracking of optical markers on the first tracking array and the second tracking array,

wherein controlling the robotic actuator to position the contact imaging probe at the first location comprises providing contact at the first location based on at least one of capacitive measurement feedback, temperature measurement feedback, conductivity measurement feedback, and/or optical feedback, and/or wherein controlling the robotic actuator to position the contact imaging probe at the second location comprises providing contact at the second location based on at least one of capacitive measurement feedback, temperature measurement feedback, conductivity measurement feedback, and/or optical feedback,

wherein a first definition of the imaging isocenter is determined by a user manually touching at least three points on the surface of the body using a digitizing probe and a processor defining a circle based on the at least three points, and

wherein the first definition of the imaging isocenter is a center of the circle.

10. The imaging system of claim 9 , wherein the controller is further configured to,

provide a coordinate system used to define locations of the contact imaging probe and the imaging isocenter,

wherein the first radial alignment with the imaging isocenter is based on the first definition of the imaging isocenter in the coordinate system, and

provide a second definition of the imaging isocenter in the coordinate system responsive to detecting movement of the body relative to the coordinate system after controlling the robotic actuator to position the contact imaging probe at the first location, wherein the second radial alignment with the imaging isocenter is based on the second definition of the imaging isocenter in the coordinate system.

11. The imaging system of claim 9 , wherein the controller is further configured to,

generate first imaging information using the contact imaging probe in the first location,

generate second imaging information using the contact imaging probe in the second location, and

generate 3-dimensional information for an image of the body to be rendered on a display, wherein the 3-dimensional information is generated based on the first imaging information and the second imaging information.

12. The imaging system of claim 11 , wherein the controller is further configured to,

determine a first distance of the contact imaging probe from the imaging isocenter at the first location that is used to generate the first imaging information, and

determine a second distance of the contact imaging probe from the imaging isocenter at the second location that is used to generate the second imaging information, wherein the first and second distances are different,

wherein the 3-dimensional information is generated based on the first and second imaging information and based on the first and second distances.

13. A method of operating an imaging system using a contact imaging probe to generate imaging of a body, the method comprising:

controlling a robotic actuator to position the contact imaging probe at a first location on a surface of the body such that the contact imaging probe is in a first radial alignment with an imaging isocenter; and

controlling the robotic actuator to position the contact imaging probe at a second location on the surface of the body such that the contact imaging probe is in a second radial alignment with the imaging isocenter, wherein the first and second radial alignments are different,

wherein the contact imaging probe has a first tracking array and a second tracking array is rigidly attached to the body,

wherein an initial distance between the contact imaging probe and the imaging isocenter is determined using optical tracking of optical markers on the first tracking array and the second tracking array

wherein controlling the robotic actuator to position the contact imaging probe at the first location comprises providing contact at the first location based on at least one of capacitive measurement feedback, temperature measurement feedback, conductivity measurement feedback,

wherein a first definition of the imaging isocenter is determined by a user manually touching at least three points on the surface of the body using a digitizing probe and a processor defining a circle based on the at least three points, and

wherein the first definition of the imaging isocenter is a center of the circle.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 7, 2018
From: CRAWFORD, NEIL R.; JOHNSON, NORBERT
To: GLOBUS MEDICAL, INC.
Reel/Frame 046017/0215 →
Continuity (8)
Continuation In Part 15609334 · May 31, 2017
Continuation In Part 15157444 · May 18, 2016
Continuation In Part 15095883 · Apr 11, 2016
Continuation In Part 14062707 · Oct 24, 2013
Continuation In Part 13924505 · Jun 21, 2013
Provisional Application 61800527 · Mar 15, 2013
Provisional Application 61662702 · Jun 21, 2012
Related Publication 20180279993A1 · Oct 4, 2018