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Feasibility and Usability of Augmented Reality Technology in the Orthopaedic Operating Room.

作者信息

Canton Stephen P, Austin Confidence Njoku, Steuer Fritz, Dadi Srujan, Sharma Nikhil, Kass Nicolás M, Fogg David, Clayton Elizabeth, Cunningham Onaje, Scott Devon, LaBaze Dukens, Andrews Edward G, Biehl Jacob T, Hogan MaCalus V

机构信息

Department of Orthopaedic Surgery, University of Pittsburgh, 3471 Fifth Ave, Pittsburgh, PA, 15213, USA.

University of Pittsburgh School of Medicine, Pittsburgh, PA, USA.

出版信息

Curr Rev Musculoskelet Med. 2024 May;17(5):117-128. doi: 10.1007/s12178-024-09888-w. Epub 2024 Apr 12.


DOI:10.1007/s12178-024-09888-w
PMID:38607522
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC11068703/
Abstract

PURPOSE OF REVIEW: Augmented reality (AR) has gained popularity in various sectors, including gaming, entertainment, and healthcare. The desire for improved surgical navigation within orthopaedic surgery has led to the evaluation of the feasibility and usability of AR in the operating room (OR). However, the safe and effective use of AR technology in the OR necessitates a proper understanding of its capabilities and limitations. This review aims to describe the fundamental elements of AR, highlight limitations for use within the field of orthopaedic surgery, and discuss potential areas for development. RECENT FINDINGS: To date, studies have demonstrated evidence that AR technology can be used to enhance navigation and performance in orthopaedic procedures. General hardware and software limitations of the technology include the registration process, ergonomics, and battery life. Other limitations are related to the human response factors such as inattentional blindness, which may lead to the inability to see complications within the surgical field. Furthermore, the prolonged use of AR can cause eye strain and headache due to phenomena such as the vergence-convergence conflict. AR technology may prove to be a better alternative to current orthopaedic surgery navigation systems. However, the current limitations should be mitigated to further improve the feasibility and usability of AR in the OR setting. It is important for both non-clinicians and clinicians to work in conjunction to guide the development of future iterations of AR technology and its implementation into the OR workflow.

摘要

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[2]
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本文引用的文献

[1]
A systematic comparison of the accuracy of monocular RGB tracking and LiDAR for neuronavigation.

Healthc Technol Lett. 2022-10-17

[2]
Effects of virtual target size, position, and parallax on vergence-accommodation conflict as estimated by actual gaze.

Sci Rep. 2022-11-22

[3]
Microsoft HoloLens 2 in Medical and Healthcare Context: State of the Art and Future Prospects.

Sensors (Basel). 2022-10-11

[4]
Liquid crystal lens set in augmented reality systems and virtual reality systems for rapidly varifocal images and vision correction.

Opt Express. 2022-6-20

[5]
Augmented reality in minimally invasive spine surgery: early efficiency and complications of percutaneous pedicle screw instrumentation.

Spine J. 2023-1

[6]
Multicenter assessment of augmented reality registration methods for image-guided interventions.

Radiol Med. 2022-8

[7]
Augmented Reality in Arthroplasty: An Overview of Clinical Applications, Benefits, and Limitations.

J Am Acad Orthop Surg. 2022-5-15

[8]
First in man in-situ augmented reality pedicle screw navigation.

N Am Spine Soc J. 2021-5-1

[9]
Augmented reality and three-dimensional plate library-assisted posterior minimally invasive surgery for scapula fracture.

Int Orthop. 2022-4

[10]
Augmented Reality (AR) in Orthopedics: Current Applications and Future Directions.

Curr Rev Musculoskelet Med. 2021-12

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