IP Library › Granted Patent US 10,546,423
Granted Patent B2
US 10,546,423 · App. 15/699,273 · Granted Jan 28, 2020

Surgeon head-mounted display apparatuses

Inventors: Kenneth Milton Jones (Wellesley Hills, MA); John Popoolapade (Arlington, VA); Thomas Calloway (Arlington, VA); Thierry Lemoine (St. Germain du Corbels, FR); Christian Jutteau (Orgeval, FR); Christophe Bruzy (Cergy, FR); Yannick James (Cergy, FR); Joachim Laguarda (Cergy, FR); Dong-Mei Pei Xing (Cergy, FR); Sebastien Gorges (St. Jean da Moirans, FR); Paul Michael Yarin (Cambridge, MA)
Assignee: Globus Medical, Inc.
G06T19/006A61B34/10A61B90/37G06F3/011G06F3/012G06F3/017G06F3/0346G06T19/20A61B2034/105A61B2090/365A61B2090/368A61B2090/372G06T2207/30204G06T2210/41G06T2219/2016
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Quick Facts
Patent No.
US 10,546,423
App. No.
15/699,273
Granted
Jan 28, 2020
Kind
B2
Abstract

An augmented reality surgical system includes a head mounted display (HMD) with a see-through display screen, a motion sensor, a camera, and computer equipment. The motion sensor outputs a head motion signal indicating measured movement of the HMD. The computer equipment computes the relative location and orientation of reference markers connected to the HMD and to the patient based on processing a video signal from the camera. The computer equipment generates a three dimensional anatomical model using patient data created by medical imaging equipment, and rotates and scales at least a portion of the three dimensional anatomical model based on the relative location and orientation of the reference markers, and further rotate at least a portion of the three dimensional anatomical model based on the head motion signal to track measured movement of the HMD. The rotated and scaled three dimensional anatomical model is displayed on the display screen.

Claims (38)

1. An augmented reality surgical system comprising:

a display comprising a see-through display screen that display images while allowing transmission of ambient light therethrough;

a motion sensor connected to the display and configured to output a motion signal indicating measured movement of the display;

at least one camera coupled to a portion of the display and configured to observe reference markers connected to a patient, and reference markers connected to a surgical tool located within a surgical room; and

a position tracking system configured to track the location of the surgical tool and/or a prosthetic, the display, a surgical site and a target location on the patient,

computer equipment configured to:

compute the relative location and orientation of the display and the reference markers connected to the patient based on processing an image signal from the at least one camera;

generate a three dimensional anatomical image using patient data created by medical imaging equipment that has imaged a portion of the patient;

rotate and scale at least a portion of the three dimensional anatomical model based on the relative location and orientation of the reference markers connected to the head mounted display and the reference markers connected to the patient, and further rotate at least a portion of the three dimensional anatomical model based on the head motion signal to track measured movement of the head mounted display; and generate a video signal based on at least a portion of the three dimensional anatomical image and the location and orientation of the reference makers coupled to the patient and an active surgical instrument,

output a video signal to the display screen on the display,

wherein the video signal is a graphical representation of a virtual trajectory of a surgical instrument that intersects a target location on a patient, the target location corresponds to a point the surgical instrument impacts the three dimensional anatomical image which is oriented and scaled to match the patient's anatomy, and

wherein the virtual trajectory is continuously updated and dynamically displayed to a surgeon who repositioning and reorienting the surgical instrument.

2. The augmented reality surgical system of claim 1 , wherein the user sees a graphical representation on the display screen of the at least a portion of the three dimensional anatomical model oriented and scaled to provide a displayed overlay on the portion of the patient that was imaged by the medical imaging equipment.

3. The augmented reality surgical system of claim 1 , wherein the computer equipment compares patterns of anatomical objects in a video stream from at least one video camera coupled to the surgical system to patterns of anatomical objects in the patient data created by the medical imaging equipment, and controls generation of the three dimensional anatomical model from the patient data responsive to identifying a threshold level of correspondence between the compared patterns of anatomical objects.

4. The augmented reality surgical system of claim 1 , wherein the computer equipment compares patterns of anatomical objects in a video stream from at least one video camera to patterns of anatomical objects in the patient data created by the medical imaging equipment, and displays a graphical indicia on the display screen aligned with one of the anatomical objects displayed on the display screen from the rotated and scaled three dimensional anatomical model responsive to identifying a threshold level of correspondence between a pattern of the one of the anatomical objects and a pattern of one of the anatomical objects in the video stream from the at least one video camera.

5. The augmented reality surgical system of claim 1 , wherein: the at least one camera is further configured to observe reference markers connected to a surgical tool located within a surgical room; and generate the video signal to include a graphical representation of the surgical tool illustrated at a position relative to the three dimensional anatomical model that is determined based on the relative location and orientation of the reference markers connected to the head mounted display, the reference markers connected to the patient, and the reference markers connected to the surgical tool.

6. The augmented reality surgical system of claim 5 , wherein the computer equipment is further configured to: generate a graphical representation of a virtual trajectory extending from the surgical tool into the three dimensional anatomical model based on the relative location and orientation of the reference markers connected to the head mounted display, the reference markers connected to the patient, and the reference markers connected to the surgical tool; and generate the video signal to include the graphical representation of the virtual trajectory.

7. The augmented reality surgical system of claim 6 , wherein: the computer equipment is further configured to select an image slice from among a plurality of image slices contained in the three dimensional anatomical model, the image slice being selected based on the computer equipment determining that the image slice is traversed by the virtual trajectory extending from the surgical tool, and to generate the video signal to include the image slice.

8. The augmented reality surgical system of claim 7 , wherein a graphical representation of the image slice and the graphical representation of the virtual trajectory that are displayed on the display screen are responsive to the head motion signal from the motion sensor and/or responsive to a command received from a user.

9. The augmented reality surgical system of claim 7 , wherein a graphical representation of the image slice and the graphical representation of the virtual trajectory that are displayed on the display screen to provide a view of the image slice that is perpendicular to a direction of the virtual trajectory.

10. The augmented reality surgical system of claim 9 , wherein: the computer equipment is further configured to identify a target location within the image slice, and to display the target location relative to the graphical representation of the virtual trajectory.

11. An augmented reality surgical system for displaying multiple video streams to a user, the augmented reality surgical system comprising:

a display comprising a see-through display screen that display images while allowing transmission of ambient light therethrough;

at least one camera coupled to a portion of the display and configured to observe reference markers connected to a patient, and reference markers connected to a surgical tool located within a surgical room,

a motion sensor connected to the display and configured to output a motion signal indicating measured movement of the display; and a computer equipment configured to receive a plurality of video streams from one or more source devices and to control which of the video streams are output as a video signal to the display screen based on the head motion signal,

wherein the display is configured as glasses; and

a position tracking system configured to track the location of the surgical tool and/or a prosthetic, the display, a surgical site and a target location on the patient

wherein the video signal is a graphical representation of a virtual trajectory of a surgical instrument that intersects a target location on a patient, the target location corresponds to a point the surgical tool impacts the three dimensional anatomical image which is oriented and scaled to match the patient's anatomy, and

wherein the virtual trajectory is continuously updated and dynamically displayed to a surgeon who repositioning and reorienting the surgical instrument.

12. The augmented reality surgical system of claim 11 , wherein: the computer equipment is communicatively connected to a surgical video server to receive the video streams, one of the video streams comprises data generated by medical imaging equipment, another one of the video streams comprises information from a patient database defining a patient's medical history, and another one of the video streams comprises data generated by medical equipment based on real-time monitoring of the patient's vitals.

13. The augmented reality surgical system of claim 11 , wherein: the computer equipment is configured to select one of the video streams from among the video streams based on the motion signal, and to output the selected one of the video streams as a video signal to the display screen.

14. The augmented reality surgical system of claim 11 , wherein the motion sensor is configured to output the motion signal containing a pitch component that provides an indication of pitch angle of the head mounted display.

15. The augmented reality surgical system of claim 11 , wherein the computer equipment recognizes voice commands and/or gesture commands from the user, and defines and/or adjusts coordinates of virtual floating panels displayed through the display screen responsive to the recognized voice commands and/or gesture commands.

16. The augmented reality surgical system of claim 11 , further comprising a gesture sensor electrically coupled to the display and configured to provide a gesture signal to the computer equipment, wherein the computer equipment is configured to identify a gesture made by the user responsive to the gesture signal and perform a command associated with the identified gesture, the command controls which of the video streams are output as a video signal to the display screen.

17. The augmented reality surgical system of claim 16 , wherein the gesture sensor comprises a video camera that outputs the gesture signal to the computer equipment.

18. The augmented reality surgical system of claim 16 , wherein the gesture sensor comprises a photoelectric motion sensor and/or a proximity sensor comprising at least infrared emitter that is adjacent to at least one photodiode, the at least one photodiode senses infrared light emitted by the infrared emitter which is reflected back by an object placed by the user within a field of view of the at least one photodiode, the at least one photodiode outputting the gesture signal to the computer equipment.

19. The augmented reality surgical system of claim 16 , wherein the gesture sensor comprises one or more ultrasonic echo ranging transducers that output the gesture signal to the computer equipment responsive to bouncing an ultrasonic signal off an object placed by the user within range of the one or more ultrasonic echo ranging transducers.

20. The augmented reality surgical system of claim 11 , wherein the computer equipment communicates video from the video camera through a network to another display worn by another person.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 8, 2017
From: THALES USA, INC.
To: GLOBUS MEDICAL, INC.
Reel/Frame 043534/0019 →
Continuity (5)
Continuation 15013594 · Feb 2, 2016
Provisional Application 62270895 · Dec 22, 2015
Provisional Application 62181433 · Jun 18, 2015
Provisional Application 62111379 · Feb 3, 2015
Related Publication 20180012413A1 · Jan 11, 2018
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