IP Library › Granted Patent US 12,539,174
Granted Patent B2
US 12,539,174 · App. 18/563,955 · Granted Feb 3, 2026

Portable virtual endoscopic tool simulator with haptic feedback enhanced handheld controller

Inventors: Zhan Tao Wang (London, CA); Jeremy J. Cepek (London, CA)
A61B34/10A61B34/25G06F3/011G06F3/016A61B2034/102A61B2034/2057
View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 12,539,174
App. No.
18/563,955
Granted
Feb 3, 2026
Kind
B2
Abstract

An augmented reality/virtual reality (AR/VR) system, including a handheld controller, at least two imaging devices and a computer, is capable of simulating a variety of endoscopic, especially urological, procedures, for the purpose of training and/or equipment design evaluation. The handheld controller has inertial sensors for three axes of motion, user actuatable controls for causing the virtual urological endoscope to interact with a virtual urological environment and a haptic feedback generator for providing haptic feedback to the user. The at least two imaging devices are configured to obtain position information relating to the handheld controller and to provide the position information to the computer.

Claims (41)

1 . A urological procedure simulator comprising:

a user interface for control of a virtual urological endoscope by a user; and

a computer in electronic communication with the user interface, the computer configured with computer executable instructions to display the virtual urological endoscope and a virtual urological environment on a display screen, the computer further configured with computer executable instructions to adjust a position of the virtual urological endoscope on the display screen in response to user commands received from the user interface,

wherein the user interface comprises:

a handheld controller comprising inertial sensors for three axes of motion, user actuatable controls for causing the virtual urological endoscope to interact with the virtual urological environment, and a haptic feedback generator for providing haptic feedback to the user;

at least two imaging devices configured to obtain position information relating to the handheld controller and to provide the position information to the computer; and

an optical unit positionable remotely from the handheld controller, wherein the optical unit comprises the at least two imaging devices and each imaging device has a field of view that includes the handheld controller.

2 . The simulator of claim 1 , wherein the handheld controller is in electronic communication with the computer.

3 . The simulator of claim 1 , wherein the inertial sensors sense translation along and/or rotation about the three axes of motion of the handheld controller.

4 . The simulator of claim 1 , wherein the virtual urological environment contains a virtual target, the virtual urological target comprising a kidney stone, a lesion on a wall of a urethra, a bladder tumor or a portion of the virtual urological environment from which to take a biopsy sample.

5 . The simulator of claim 1 , wherein the virtual urological endoscope further comprises a virtual endoscopic tool.

6 . The simulator of claim 5 , wherein the virtual endoscopic tool comprises a wire, an electrode, a laser fiber, an ultrasound device, a grasper, biopsy forceps, a scalpel, a stone basket, a loop or a roller-ball.

7 . The simulator of claim 1 , wherein the user actuatable controls for causing the virtual urological endoscope to interact with the virtual urological environment comprise buttons and/or knobs.

8 . The simulator of claim 1 , wherein the at least two imaging devices comprise optical cameras.

9 . The simulator of claim 1 , wherein the computer is a mobile device, a laptop computer or a desktop computer.

10 . The simulator of claim 9 , wherein the mobile device is a tablet computer or a portable telephone.

11 . The simulator of claim 1 , wherein the user interface and the computer are configured with wireless communication interfaces for wireless electronic communication and the computer is in wireless electronic communication with the user interface.

12 . The simulator of claim 1 , wherein the at least two imaging devices are situated in the controller.

13 . The simulator of claim 1 , wherein the computer is configured with computer executable instructions to track user performance metrics relating to interaction between the virtual urologic endoscope and the virtual urological environment and to provide feedback to the user relating to the performance metrics during a simulated urological procedure and/or after completion of the simulated urological procedure.

14 . The simulator of claim 1 , wherein the user actuatable controls comprise a user actuatable control for curling the tip of the virtual urological endoscope.

15 . A urological procedure simulator comprising:

a user interface for control of a virtual urological endoscope by a user; and

a computer in electronic communication with the user interface, the computer configured with computer executable instructions to display the virtual urological endoscope and a virtual urological environment on a display screen, the computer further configured with computer executable instructions to adjust a position of the virtual urological endoscope on the display screen in response to user commands received from the user interface,

wherein the user interface comprise:

a handheld controller comprising inertial sensors for three axes of motion, user actuatable controls for causing the virtual urological endoscope to interact with the virtual urological environment, and a haptic feedback generator for providing haptic feedback to the user;

at least two imaging devices configured to obtain position information relating to the handheld controller and to provide the position information to the computer; and

an optical unit positionable remotely from the handheld controller, wherein the at least two imaging devices are situated in the controller and each imaging device has a field of view that includes the optical unit.

16 . A urological procedure simulator comprising:

a user interface for control of a virtual urological endoscope by a user; and

a computer in electronic communication with the user interface, the computer configured with computer executable instructions to display the virtual urological endoscope and a virtual urological environment on a display screen, the computer further configured with computer executable instructions to adjust a position of the virtual urological endoscope on the display screen in response to user commands received from the user interface,

wherein the user interface comprise:

a handheld controller comprising inertial sensors for three axes of motion, user actuatable controls for causing the virtual urological endoscope to interact with the virtual urological environment, and a haptic feedback generator for providing haptic feedback to the user; and

at least two imaging devices configured to obtain position information relating to the handheld controller and to provide the position information to the computer,

wherein the computer is configured with computer executable instructions to track user performance metrics relating to interaction between the virtual urologic endoscope and the virtual urological environment and to provide feedback to the user relating to the performance metrics during a simulated urological procedure and/or after completion of the simulated urological procedure.

17 . A urological procedure simulator comprising:

a user interface for control of a virtual urological endoscope by a user; and

a computer in electronic communication with the user interface, the computer configured with computer executable instructions to display the virtual urological endoscope and a virtual urological environment on a display screen, the computer further configured with computer executable instructions to adjust a position of the virtual urological endoscope on the display screen in response to user commands received from the user interface,

wherein the user interface comprise:

a handheld controller comprising inertial sensors for three axes of motion, user actuatable controls for causing the virtual urological endoscope to interact with the virtual urological environment, and a haptic feedback generator for providing haptic feedback to the user; and

at least two imaging devices configured to obtain position information relating to the handheld controller and to provide the position information to the computer,

wherein the user actuatable controls comprise a user actuatable control for curling the tip of the virtual urological endoscope.

Continuity (2)
Provisional Application 63193166 · May 26, 2021
Related Publication 20240252250A1 · Aug 1, 2024
References Cited (46)
US 6857878B1 · Chosack et al. · 2005 [cited by applicant]
US 6939138B2 · Chosack et al. · 2005 [cited by applicant]
US 8616894B2 · Ehrhardt et al. · 2013 [cited by applicant]
US 10610303B2 · Johnson et al. · 2020 [cited by applicant]
US 20030091967A1 · Chosack · 2003 [cited by examiner]
US 20100273134A1 · Chen · 2010 [cited by examiner]
US 20190197919A1 · Vazquez · 2019 [cited by applicant]
CA 2484586C · 2011 [cited by applicant]
GR 20040100100A · 2005 [cited by applicant]
WO 2019204615A1 · 2019 [cited by applicant]
International Search Report and Written Opinion dated Jul. 21, 2022 on PCT/CA2022/050781. [cited by applicant]
Al Bareeq R, Jayaraman S, Kiaii B, Schlachta C, Denstedt JD, Pautler SE. The role of surgical simulation and the learning curve in robot-assisted surgery. J Robot Surg. 2008;2(1):11-15. [cited by applicant]
Aljamal Y, et al. Journal of Surgical Research . Nov. 2019 (243 ) 560-566. [cited by applicant]
Aloosh M. is There a Role for Virtual Reality Simulators in Training Procedural Skills? A pilot study on flexible ureteroscopic stone extraction skills. MacGill University. Master's thesis submission: Nov. 2016. [cited by applicant]
Brewin J, Ahmed K, Challacombe B. An update and review of simulation in urological training. Int J Surg. 2014., 12:103-108. [cited by applicant]
Carnegie SW. Endoscopic Targeting Tasks Simulator: An Approach Using Game Engines. University of Western Ontario. (2015) Electronic Thesis and Dissertation Repository. 3248. [cited by applicant]
Chaloub M, et al. Advances in Medical Education and Practice (2018) 9: 541-547. [cited by applicant]
Chou DS, et al. Journal of Endourology. vol. 20, No. 4, Apr. 2006, 266-271. [cited by applicant]
Coles TR, et al. IEEE Transactions on Haptics, vol. 4, No. 1, (2011), 51-66. [cited by applicant]
Dargar S, et al. IEEE Transactions on Haptics, vol. 9, No. 3, Jul.-Sep. 2016, 333-344. [cited by applicant]
Gettman MT, Le CQ, Rangel LJ, Slezak JM, Bergstralh EJ, Krambeck AE. Analysis of a Computer Based Simulator as an Educational Tool for Cystoscopy: Subjective and Objective Results. J Urol. 2008;179(1):267-271. [cited by applicant]
Granado E, et al. Remote Experimentation Using a Smartphone Application with Haptic Feedback. 2016 IEEE Global Engineering Education Conference (EDUCON). Apr. 10-13, 2016, Abu Dhabi, UAE. [cited by applicant]
Ikuta K, et al. Portable Virtual Endoscope System with Force and Visual Display. Proceedings of the 2000 IEEE/RSJ International Conference on Intelligent Robots and Systems. [cited by applicant]
Jacomides L, et al. The Journal of Urology. vol. 171, 320-323, Jan. 2004. [cited by applicant]
John NW, et al. An Endoscope Interface for Immersive Virtual Reality. Eurographics Workshop on Visual Computing for Biology and Medicine (2020) K. Nieselt and R. G. Raidou (Editors). [cited by applicant]
Knoll T, Trojan L, Haecker A, Alken P, Michel MS. Validation of computer-based training in ureterorenoscopy. BJU Int. 2005. doi:10.1111/j.1464-410X.2005.05518.x. [cited by applicant]
Korzeniowski P, et al. Int J CARS (2016) 11:2303-2315. [cited by applicant]
Kunkler K. the International Journal of Medical Robotics and Computer Assisted Surgery Int J Med Robotics Comput Assist Surg 2006; 2: 203-210. [cited by applicant]
Leleve A, et al. Haptic Training Simulation. Frontiers in Virtual Reality www.frontiersin.org Jul. 2020 | vol. 1 | Article 3. [cited by applicant]
Matsumoto ED, et al. International Journal of Urology (2006) 13, 896-901. [cited by applicant]
Michel MS, et al. BJU International (2002) 89, 174-177. [cited by applicant]
Moon Y, et al. (JMIR Mhealth Uhealth 2020;8(9):e17057) doi: 10.2196/17057. [cited by applicant]
Ogan K, et al. The Journal of Urology. vol. 172, 667-671, Aug. 2004. [cited by applicant]
Preece R. The current role of simulation in urological training. Cent European J Urol. 2015; 68: 207-211. [cited by applicant]
Schout BMA, et al. Journal Compilation. 2009 BJU International | 105, 234-239. [cited by applicant]
Scott DJ, et al. J Gastrointest Surg (2008) 12:213-221. [cited by applicant]
Shah J, et al. BJU International (2002), 90, 828-832. [cited by applicant]
Shah J, et al. BJU International (2002), 90, 833-835. [cited by applicant]
Shane MD, et al. Surg Endosc (2008) 22:1294-1297. [cited by applicant]
Watterson JD, et al. The Journal of Urology. vol. 168, 1928-1932, Nov. 2002. [cited by applicant]
White MA, et al. The Journal of Urology. vol. 183, 673-677, Feb. 2010. [cited by applicant]
Wignall GR, et al. The Journal of Urology. vol. 179, 1690-1699, May 2008. [cited by applicant]
Wilhelm DM, et al. J Am Coll Surg. vol. 195, No. 5, Nov. 2002, 675-681. [cited by applicant]
Baas W, Schwartz B. Simulation in Urology. 2019:289-317. [cited by applicant]
Woodman R. Surgeons should train like pilots. BMJ. 1999;319(7220):1312. [cited by applicant]
Watterson JD, Denstedt JD. Ureteroscopy and cystoscopy simulation in urology. J Endourol. 2007;21(3):263-269. [cited by applicant]