IP Library Granted Patent US 11,564,756
Granted Patent B2
US 11,564,756 · App. 16/172,198 · Granted Jan 31, 2023

Method of hub communication with surgical instrument systems

Inventors: Frederick E. Shelton, IV (Hillsboro, OH); Jason L. Harris (Lebanon, OH)
Assignee: Cilag GmbH International
A61B34/25A61B5/00A61B17/0206A61B17/072A61B17/07207A61B17/105A61B17/1155A61B17/1285A61B18/1206A61B34/10A61B34/30A61B34/37A61B34/76A61B90/30A61B90/98G16H40/00A61B17/062A61B17/0644A61B17/083A61B17/1222A61B17/29A61B17/320068A61B17/3421A61B34/20A61B90/90A61B90/96A61B2017/0003A61B2017/00017A61B2017/00022A61B2017/00026A61B2017/00039A61B2017/0046A61B2017/00057A61B2017/00061A61B2017/00084A61B2017/00115A61B2017/00119A61B2017/00199A61B2017/00221A61B2017/00398A61B2017/00464A61B2017/00473A61B2017/00477A61B2017/00725A61B2017/00734A61B2017/00809A61B2017/07214A61B2017/07271A61B2017/2825A61B2017/2926A61B2017/2927A61B2017/2941A61B2017/2943A61B2017/2945A61B2017/320074A61B2017/320094A61B2018/126A61B2018/1253A61B2034/107A61B2034/2051A61B2034/2055A61B2090/061A61B2090/065A61B2090/066A61B2090/0803A61B2090/0808A61B2090/0811A61B2090/365A61B2090/366A61B2217/005A61B2217/007A61B2218/008
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Quick Facts
Patent No.
US 11,564,756
App. No.
16/172,198
Granted
Jan 31, 2023
Kind
B2
Abstract

A method for adjusting the operation of a surgical instrument using machine learning in a surgical suite is disclosed. The method comprises the steps of gathering data during surgical procedures, wherein the surgical procedures include the use of a surgical instrument, analyzing the gathered data to determine an appropriate operational adjustment of the surgical instrument, and adjusting the operation of the surgical instrument to improve the operation of the surgical instrument.

Claims (80)

1. A method for adjusting the operation of a surgical dissecting instrument using machine learning in a surgical suite, wherein said method comprises:

gathering data during surgical procedures, wherein the surgical procedures include the use of a surgical dissecting instrument comprising jaws configured to be mechanically advanced through an opening stroke to displace tissue and apply electrical energy to the tissue;

analyzing the gathered data to determine an appropriate operational adjustment of the surgical dissecting instrument; and

adjusting the operation of the surgical dissecting instrument to improve the operation of the surgical dissecting instrument, wherein adjusting the operation of the surgical dissecting instrument comprises adjusting a parameter of the opening stroke.

2. The method of claim 1 , wherein gathering data comprises storing data in a surgical hub.

3. The method of claim 1 , wherein adjusting the operation of the surgical dissecting instrument comprises adjusting the voltage of the electrical energy applied to the tissue.

4. The method of claim 1 , wherein gathering data comprises accessing existing information based on previous operations.

5. A method for adjusting the operation of a surgical dissecting instrument using machine learning in a surgical suite, wherein said method comprises:

gathering data during surgical procedures, wherein the surgical procedures include the use of a surgical dissecting instrument comprising jaws configured to be mechanically advanced through an opening stroke to displace tissue and apply electrical energy to the tissue;

analyzing the gathered data to determine an appropriate operational adjustment of the surgical dissecting instrument; and

adjusting the operation of the surgical dissecting instrument to improve the operation of the surgical dissecting instrument,

wherein adjusting the operation of the surgical dissecting instrument comprises adjusting the current of the electrical energy applied to the tissue.

6. A method for adjusting the operation of a surgical dissecting instrument using machine learning in a surgical suite, wherein said method comprises:

gathering data during surgical procedures, wherein the surgical procedures include the use of a surgical dissecting instrument comprising jaws configured to be mechanically advanced through an opening stroke to displace tissue and apply electrical energy to the tissue;

analyzing the gathered data to determine an appropriate operational adjustment of the surgical dissecting instrument; and

adjusting the operation of the surgical dissecting instrument to improve the operation of the surgical dissecting instrument,

wherein adjusting the operation of the surgical dissecting instrument comprises adjusting the length of the opening stroke of the jaws.

7. A method for adjusting the operation of a surgical dissecting instrument using machine learning in a surgical suite, wherein said method comprises:

gathering data during surgical procedures, wherein the surgical procedures include the use of a surgical dissecting instrument comprising jaws configured to be mechanically advanced through an opening stroke to displace tissue and apply electrical energy to the tissue;

analyzing the gathered data to determine an appropriate operational adjustment of the surgical dissecting instrument; and

adjusting the operation of the surgical dissecting instrument to improve the operation of the surgical dissecting instrument,

wherein adjusting the operation of the surgical dissecting instrument comprises adjusting the speed of the opening stroke of the jaws.

8. A method for adjusting the operation of a surgical dissecting instrument using machine learning in a surgical suite, wherein said method comprises:

gathering data during surgical procedures, wherein the surgical procedures include the use of a surgical dissecting instrument comprising jaws configured to be mechanically advanced through an opening stroke to displace tissue and apply electrical energy to the tissue;

analyzing the gathered data to determine an appropriate operational adjustment of the surgical dissecting instrument; and

adjusting the operation of the surgical dissecting instrument to improve the operation of the surgical dissecting instrument,

wherein gathering data comprises monitoring each opening stroke during use of the surgical dissecting instrument using a jaw detection circuit.

9. A method for adjusting control parameters of a surgical dissecting instrument using a surgical hub, wherein said method comprises:

gathering data during surgical procedures, wherein each surgical procedure includes the use of a surgical dissecting instrument comprising jaws configured to be advanced through an opening stroke to move tissue and apply electrical energy to the tissue;

evaluating the gathered data to determine the appropriate operation of the surgical dissecting instrument;

operating the surgical dissecting instrument;

monitoring the operation of the surgical dissecting instrument;

determining if the operation of the surgical dissecting instrument needs to be adjusted based on the evaluated data; and

adjusting the operation of the surgical dissecting instrument, wherein adjusting the operation of the surgical dissecting instrument comprises adjusting a parameter of the opening stroke.

10. The method of claim 9 , wherein gathering data comprises storing data in a surgical hub system.

11. The method of claim 9 , wherein the adjustment comprises adjusting the current of the electrical energy applied to the tissue.

12. The method of claim 9 , wherein the adjustment comprises adjusting the voltage of the electrical energy applied to the tissue.

13. The method of claim 9 , wherein gathering data comprises accessing existing information based on previous operations.

14. A method for adjusting control parameters of a surgical dissecting instrument using a surgical hub, wherein said method comprises:

gathering data during surgical procedures, wherein each surgical procedure includes the use of a surgical dissecting instrument comprising jaws configured to be advanced through an opening stroke to move tissue and apply electrical energy to the tissue;

evaluating the gathered data to determine the appropriate operation of the surgical dissecting instrument;

operating the surgical dissecting instrument;

monitoring the operation of the surgical dissecting instrument;

determining if the operation of the surgical dissecting instrument needs to be adjusted based on the evaluated data; and

adjusting the operation of the surgical dissecting instrument,

wherein the adjustment comprises changing the length of the opening stroke of the jaws.

15. A method for adjusting control parameters of a surgical dissecting instrument using a surgical hub, wherein said method comprises:

gathering data during surgical procedures, wherein each surgical procedure includes the use of a surgical dissecting instrument comprising jaws configured to be advanced through an opening stroke to move tissue and apply electrical energy to the tissue;

evaluating the gathered data to determine the appropriate operation of the surgical dissecting instrument;

operating the surgical dissecting instrument;

monitoring the operation of the surgical dissecting instrument;

determining if the operation of the surgical dissecting instrument needs to be adjusted based on the evaluated data; and

adjusting the operation of the surgical dissecting instrument,

wherein the adjustment comprises adjusting the speed of the opening stroke of the jaws.

16. A method for adjusting control parameters of a surgical dissecting instrument using a surgical hub, wherein said method comprises:

gathering data during surgical procedures, wherein each surgical procedure includes the use of a surgical dissecting instrument comprising jaws configured to be advanced through an opening stroke to move tissue and apply electrical energy to the tissue;

evaluating the gathered data to determine the appropriate operation of the surgical dissecting instrument;

operating the surgical dissecting instrument;

monitoring the operation of the surgical dissecting instrument;

determining if the operation of the surgical dissecting instrument needs to be adjusted based on the evaluated data; and

adjusting the operation of the surgical dissecting instrument,

wherein gathering data comprises monitoring each opening stroke during the use of the surgical dissecting instrument using a jaw detection circuit.

17. A method for adjusting control parameters of a surgical dissecting instrument using a surgical hub, wherein said method comprises:

gathering data during surgical procedures, wherein each surgical procedure includes the use of a surgical dissecting instrument comprising jaws configured to be advanced through an opening stroke to move tissue and apply electrical energy to the tissue;

evaluating the gathered data to determine the appropriate operation of the surgical dissecting instrument;

operating the surgical dissecting instrument;

monitoring the operation of the surgical dissecting instrument;

determining if the operation of the surgical dissecting instrument needs to be adjusted based on the evaluated data; and

adjusting the operation of the surgical dissecting instrument,

wherein determining if the operation of the surgical dissecting instrument needs to be adjusted is based on the forces experienced on the jaws during the opening stroke.

18. The method of claim 17 , wherein the adjustment comprises stopping the opening stroke when the forces experienced by the jaws exceed a force threshold.

19. A method for adjusting control parameters of a surgical dissecting system using a surgical hub, wherein the surgical dissecting system comprises an end effector comprising movable jaws and outwardly-facing electrodes, a firing system comprising a motor, a jaw detection circuit, wherein the firing system is configured to apply control motions to the jaws to move the jaws through an opening stroke, and an electrical power circuit configured to supply electrical energy to the electrodes, wherein the jaw detection circuit is configured to detect a parameter of the jaws during the opening stroke, and wherein the method for adjusting control parameters of the surgical dissecting system comprises:

evaluating data originating from the jaw detection circuit, the electrical power circuit, and the surgical hub;

determining if the control motions of the surgical dissecting system need to be adjusted based on the evaluated data;

determining if the electrical energy supplied to the electrodes needs to be adjusted based on the evaluated data; and

adjusting the operation of the surgical dissecting system.

20. The method of claim 19 , wherein the surgical dissecting system is attached to a surgical robot.

21. The method of claim 19 , wherein the data from the surgical hub comprises data gathered during previous operations.

22. The method of claim 19 , wherein electrical power is supplied to the electrodes during the opening stroke.

23. The method of claim 19 , wherein electrical power is supplied to the electrodes after the opening stroke.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 27, 2021
From: ETHICON LLC
To: CILAG GMBH INTERNATIONAL
Reel/Frame 056601/0339 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 8, 2019
From: SHELTON, FREDERICK E., IV; HARRIS, JASON L.
To: ETHICON LLC
Reel/Frame 047933/0768 →
Cited By (54)
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