IP Library › Granted Patent US 9,107,686
Granted Patent B2
US 9,107,686 · App. 13/921,340 · Granted Aug 18, 2015

Surgical robot and surgical robot control method

Inventors: Kyung Won Moon (Yongin-si, KR); Tae Sin Ha (Seongnam-si, KR)
Assignee: SAMSUNG ELECTRONICS CO., LTD.
A61B19/2203A61B2019/2223A61B2019/2292A61B2019/2296Y10S901/08
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Quick Facts
Patent No.
US 9,107,686
App. No.
13/921,340
Filed
Jun 19, 2013
Granted
Aug 18, 2015
Kind
B2
Art Unit
3664
USPC
700/245
Abstract

A surgical robot and a surgical robot control method ensure a stable change of an operation mode. The surgical robot includes a master device having an input unit, a slave device having at least one robotic surgical instrument that is remotely controlled by the master device, and a controller that performs a mode change process to gradually vary the strength of a feedback signal fed back from the slave device to the input unit for a predetermined time when a signal for a change of an operation mode is input via the input unit.

Claims (35)

1. A surgical robot, comprising:

a master device having an input unit;

a slave device having at least one robotic surgical instrument configured to be remotely controlled by the master device; and

a controller configured to perform a mode change process to gradually vary a strength of a feedback signal fed back from the slave device to the input unit for a predetermined time when a signal for change of an operation mode is input via the input unit;

wherein the operation mode includes a force feedback mode that feeds back force generated in the at least one robotic surgical instrument via interaction with an external environment to the master device, and a non-force feedback mode that does not feed back the force generated in the at least one robotic surgical instrument to the master device, and

wherein the controller is further configured to gradually decrease the strength of the feedback signal fed back to the input unit for the predetermined time using a decreasing scaling function if the operation mode is changed from the force feedback mode to the non-force feedback mode.

2. The surgical robot according to claim 1 , wherein an output value of the decreasing scaling function is configured to vary from 1 to 0 for the predetermined time.

3. The surgical robot according to claim 1 , wherein the decreasing scaling function is selectable by an operator of the surgical robot from among a plurality of pre-stored decreasing scaling functions.

4. The surgical robot according to claim 1 , wherein the predetermined time is changeable by an operator of the surgical robot.

5. The surgical robot according to claim 1 , wherein the predetermined time varies according to the strength of the feedback signal fed back to the input unit.

6. The surgical robot according to claim 1 , wherein the decreasing scaling function is non-linear.

7. The surgical robot according to claim 1 , wherein the controller is included in the master device or the slave device.

8. A surgical robot, comprising:

a master device having an input unit;

a slave device having at least one robotic surgical instrument configured to be remotely controlled by the master device; and

a controller configured to perform a mode change process to gradually vary a strength of a feedback signal fed back from the slave device to the input unit for a predetermined time when a signal for change of an operation mode is input via the input unit;

wherein the operation mode includes a force feedback mode that feeds back force generated in the at least one robotic surgical instrument via interaction with an external environment to the master device, and a non-force feedback mode that does not feed back the force generated in the at least one robotic surgical instrument to the master device,

wherein the controller is further configured to gradually increase the strength of the feedback signal fed back to the input unit for the predetermined time using an increasing scaling function if the operation mode is changed from the non-force feedback mode to the force feedback mode, and

wherein the predetermined time varies according to the strength of the feedback signal fed back to the input unit.

9. The surgical robot according to claim 8 , wherein an output value of the increasing scaling function is configured to vary from 0 to 1 for the predetermined time.

10. The surgical robot according to claim 8 , wherein the increasing scaling function is selectable by an operator of the surgical robot from among a plurality of pre-stored increasing scaling functions.

11. The surgical robot according to claim 8 , wherein the predetermined time is changeable by an operator of the surgical robot.

12. The surgical robot according to claim 8 , wherein the increasing scaling function is non-linear.

13. A surgical robot control method for a surgical robot including a master device and a slave device, the method comprising:

generating a control signal to control at least one robotic surgical instrument provided in the slave device;

transmitting the control signal to the slave device; and

performing a mode change process to gradually vary a strength of a feedback signal fed back from the slave device to the master device for a predetermined time when an operation mode is changed;

wherein the operation mode includes a force feedback mode that feeds back force generated in the at least one robotic surgical instrument via interaction with an external environment to the master device, and a non-force feedback mode that does not feed back the force generated in the at least one robotic surgical instrument to the master device, and

wherein performing the mode change process includes gradually decreasing the strength of the feedback signal fed back from the slave device to the master device for the predetermined time using a decreasing scaling function if the operation mode is changed from the force feedback mode to the non-force feedback mode.

14. A robot, comprising:

a slave device having at least one instrument;

a master device configured to remotely perform an operation using the at least one instrument via the slave device; and

a controller configured to determine whether a change in a feedback mode is requested, and configured to perform a feedback mode change process by temporarily applying a scaling function to a feedback signal fed back from the slave device to the master device in response to the requested change in the feedback mode;

wherein the feedback mode includes a force feedback mode that feeds back force generated in the at least one instrument via interaction with an external environment to the master device, and a non-force feedback mode that does not feed back the force generated in the at least one instrument to the master device, and

wherein the controller is further configured to gradually decrease a strength of the feedback signal fed back from the slave device to the master device using a decreasing scaling function if the feedback mode is changed from the force feedback mode to the non-force feedback mode.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 20, 2013
From: MOON, KYUNG WON; HA, TAE SIN
To: SAMSUNG ELECTRONICS CO., LTD.
Reel/Frame 030712/0142 →
Priority Claims (1)
KR 10-2012-0132922 · Nov 22, 2012 · national
Continuity (1)
Related Publication 20140142592A1 · May 22, 2014