Award Abstract # 2106901
IRES: Track 1: International Research Experiences in Design of Next Generation VR Simulation based Training Approaches for Orthopedic Surgery

NSF Org: OISE
Office of International Science and Engineering
Recipient: OKLAHOMA STATE UNIVERSITY
Initial Amendment Date: May 26, 2021
Latest Amendment Date: May 26, 2021
Award Number: 2106901
Award Instrument: Standard Grant
Program Manager: Kristin Kuyuk
kkuyuk@nsf.gov
 (703)292-4904
OISE
 Office of International Science and Engineering
O/D
 Office Of The Director
Start Date: June 1, 2021
End Date: May 31, 2024 (Estimated)
Total Intended Award Amount: $300,759.00
Total Awarded Amount to Date: $300,759.00
Funds Obligated to Date: FY 2021 = $300,759.00
History of Investigator:
  • Joe Cecil (Principal Investigator)
    j.cecil@okstate.edu
Recipient Sponsored Research Office: Oklahoma State University
401 WHITEHURST HALL
STILLWATER
OK  US  74078-1031
(405)744-9995
Sponsor Congressional District: 03
Primary Place of Performance: Oklahoma State University
231 MSCS OSU Campus
Stillwater
OK  US  74078-0001
Primary Place of Performance
Congressional District:
03
Unique Entity Identifier (UEI): NNYDFK5FTSX9
Parent UEI:
NSF Program(s): IRES Track I: IRES Sites (IS)
Primary Program Source: 01002122DB NSF RESEARCH & RELATED ACTIVIT
Program Reference Code(s): 5936, 5980, 7727
Program Element Code(s): 772700
Award Agency Code: 4900
Fund Agency Code: 4900
Assistance Listing Number(s): 47.079

ABSTRACT

The overall goal of this international project is to provide meaningful research experiences to a new generation of U.S. engineers and scientists in the design of Virtual Reality (VR) and haptic (touch) based environments to train medical residents in orthopedic surgery. Useful research experiences provided to our undergraduate and graduate students will prepare them to contribute to this important emerging area involving medicine/healthcare as well as provide them opportunities to become leaders in this growing field. The uniqueness of the research methods to be explored involves creating 3D computer based approaches and tools, which will enable medical residents to be better trained while reducing the need for them to be trained using small animals or on cadavers. The technology outcomes of this project will be 3D cyber tools which will prepare our residents and budding surgeons to be better trained in surgery; this in turn will enable them to serve the healthcare needs of our public.

This international project deals with cutting edge research issues with many engineering challenges and hold significant potential to impact health and medical applications. As breakthroughs in IT continue to revolutionize information centric practices, there is an ever increasing need for engineering and computer science students to be engaged in interdisciplinary research activities to create cyber intensive ?smart health? methods and tools to support medical training and related health care contexts. The research activities will include designing advanced 3D Virtual Reality environments (incorporating algorithm based surgical planning methods) which will allow residents to train immersively in complex orthopedic surgical procedures such as condylar plating, which is used to treat fractures of the femur. Another thrust is designing a haptic based approach to allow the residents to obtain a natural feel for drilling bones and related tasks virtually as part of a simulation based training process within this orthopedic surgical procedure. Such training approaches will enable these residents to be better trained without using cadavers and small animals. The adoption of such smart health approaches has the potential to bring down medical education costs as well as improve the level of surgical skills. As these cyber-intensive approaches become more commonplace, there will be a greater need to encourage more students to pursue such interdisciplinary careers that overlap medicine, engineering and computing. Through this project, our students will be exposed to leading research environments (in a technological advanced country such as Germany). Such experiences will enable our undergraduate and graduate students to become global leaders in smart health and related areas. This in turn will help our nation continue its leadership in cyber and smart health industries, which in turn will have a positive impact on our nation?s economy.

This award reflects NSF's statutory mission and has been deemed worthy of support through evaluation using the Foundation's intellectual merit and broader impacts review criteria.

PUBLICATIONS PRODUCED AS A RESULT OF THIS RESEARCH

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Gupta, A. and Cecil, J. and Moosavi, M.S and ., Williams and Merienne, F "Effect of Tactile Affordance During the Design of Extended Reality-Based Training Environments for Healthcare Contexts" International Conference on Human-Computer Interaction, July 23-28, 2023 , v.14027 , 2023 https://doi.org/10.1007/978-3-031-35634-6_31 Citation Details
Moosavi, M. and Williams, J. and Guillet, C. and Merienne, F. and Cecil, J. and Pickett, M "Disassociation of Visual-proprioception feedback to Enhance Endotracheal intubation," 2022 International Conference on Digital Transformation and Intelligence , 2022 https://doi.org/10.1109/ICFTSC57269.2022.10039795 Citation Details
Sadeghi Milani, A. and Cecil, J. and Pirela-Cruz, M and Kennison, S. "Role of HCI-based criteria in supporting the training of surgical residents using Mixed Reality environments" 2023 International Conference on Human-Computer Interaction , 2023 Citation Details

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