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HoloLens-Based Vascular Localization System: Precision Evaluation Study With a Three-Dimensional Printed Model

BACKGROUND: Vascular localization is crucial for perforator flap transfer. Augmented reality offers a novel method to seamlessly combine real information with virtual objects created by computed tomographic angiography to help the surgeon “see through” the skin and precisely localize the perforator....

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Detalles Bibliográficos
Autores principales: Jiang, Taoran, Yu, Dewang, Wang, Yuqi, Zan, Tao, Wang, Shuyi, Li, Qingfeng
Formato: Online Artículo Texto
Lenguaje:English
Publicado: JMIR Publications 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7195670/
https://www.ncbi.nlm.nih.gov/pubmed/32301738
http://dx.doi.org/10.2196/16852
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author Jiang, Taoran
Yu, Dewang
Wang, Yuqi
Zan, Tao
Wang, Shuyi
Li, Qingfeng
author_facet Jiang, Taoran
Yu, Dewang
Wang, Yuqi
Zan, Tao
Wang, Shuyi
Li, Qingfeng
author_sort Jiang, Taoran
collection PubMed
description BACKGROUND: Vascular localization is crucial for perforator flap transfer. Augmented reality offers a novel method to seamlessly combine real information with virtual objects created by computed tomographic angiography to help the surgeon “see through” the skin and precisely localize the perforator. The head-mounted display augmented reality system HoloLens (Microsoft) could facilitate augmented reality–based perforator localization for a more convenient and safe procedure. OBJECTIVE: The aim of this study was to evaluate the precision of the HoloLens-based vascular localization system, as the most important performance indicator of a new localization system. METHODS: The precision of the HoloLens-based vascular localization system was tested in a simulated operating room under different conditions with a three-dimensional (3D) printed model. The coordinates of five pairs of points on the vascular map that could be easily identified on the 3D printed model and virtual model were detected by a probe, and the distance between the corresponding points was calculated as the navigation error. RESULTS: The mean errors were determined under different conditions, with a minimum error of 1.35 mm (SD 0.43) and maximum error of 3.18 mm (SD 1.32), which were within the clinically acceptable range. There were no significant differences in the errors obtained under different visual angles, different light intensities, or different states (static or motion). However, the error was larger when tested with light compared with that tested without light. CONCLUSIONS: This precision evaluation demonstrated that the HoloLens system can precisely localize the perforator and potentially help the surgeon accomplish the operation. The authors recommend using HoloLens-based surgical navigation without light.
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spelling pubmed-71956702020-05-05 HoloLens-Based Vascular Localization System: Precision Evaluation Study With a Three-Dimensional Printed Model Jiang, Taoran Yu, Dewang Wang, Yuqi Zan, Tao Wang, Shuyi Li, Qingfeng J Med Internet Res Original Paper BACKGROUND: Vascular localization is crucial for perforator flap transfer. Augmented reality offers a novel method to seamlessly combine real information with virtual objects created by computed tomographic angiography to help the surgeon “see through” the skin and precisely localize the perforator. The head-mounted display augmented reality system HoloLens (Microsoft) could facilitate augmented reality–based perforator localization for a more convenient and safe procedure. OBJECTIVE: The aim of this study was to evaluate the precision of the HoloLens-based vascular localization system, as the most important performance indicator of a new localization system. METHODS: The precision of the HoloLens-based vascular localization system was tested in a simulated operating room under different conditions with a three-dimensional (3D) printed model. The coordinates of five pairs of points on the vascular map that could be easily identified on the 3D printed model and virtual model were detected by a probe, and the distance between the corresponding points was calculated as the navigation error. RESULTS: The mean errors were determined under different conditions, with a minimum error of 1.35 mm (SD 0.43) and maximum error of 3.18 mm (SD 1.32), which were within the clinically acceptable range. There were no significant differences in the errors obtained under different visual angles, different light intensities, or different states (static or motion). However, the error was larger when tested with light compared with that tested without light. CONCLUSIONS: This precision evaluation demonstrated that the HoloLens system can precisely localize the perforator and potentially help the surgeon accomplish the operation. The authors recommend using HoloLens-based surgical navigation without light. JMIR Publications 2020-04-17 /pmc/articles/PMC7195670/ /pubmed/32301738 http://dx.doi.org/10.2196/16852 Text en ©Taoran Jiang, Dewang Yu, Yuqi Wang, Tao Zan, Shuyi Wang, Qingfeng Li. Originally published in the Journal of Medical Internet Research (http://www.jmir.org), 17.04.2020. https://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0/), which permits unrestricted use, distribution, and reproduction in any medium, provided the original work, first published in the Journal of Medical Internet Research, is properly cited. The complete bibliographic information, a link to the original publication on http://www.jmir.org/, as well as this copyright and license information must be included.
spellingShingle Original Paper
Jiang, Taoran
Yu, Dewang
Wang, Yuqi
Zan, Tao
Wang, Shuyi
Li, Qingfeng
HoloLens-Based Vascular Localization System: Precision Evaluation Study With a Three-Dimensional Printed Model
title HoloLens-Based Vascular Localization System: Precision Evaluation Study With a Three-Dimensional Printed Model
title_full HoloLens-Based Vascular Localization System: Precision Evaluation Study With a Three-Dimensional Printed Model
title_fullStr HoloLens-Based Vascular Localization System: Precision Evaluation Study With a Three-Dimensional Printed Model
title_full_unstemmed HoloLens-Based Vascular Localization System: Precision Evaluation Study With a Three-Dimensional Printed Model
title_short HoloLens-Based Vascular Localization System: Precision Evaluation Study With a Three-Dimensional Printed Model
title_sort hololens-based vascular localization system: precision evaluation study with a three-dimensional printed model
topic Original Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7195670/
https://www.ncbi.nlm.nih.gov/pubmed/32301738
http://dx.doi.org/10.2196/16852
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