Literature DB >> 34333463

Development of an inside-out augmented reality technique for neurosurgical navigation.

Yun-Sik Dho1, Sang Joon Park2, Haneul Choi2, Youngdeok Kim2, Hyeong Cheol Moon1, Kyung Min Kim3, Ho Kang3, Eun Jung Lee3, Min-Sung Kim3, Jin Wook Kim3, Yong Hwy Kim3, Young Gyu Kim1, Chul-Kee Park3.   

Abstract

OBJECTIVE: With the advancement of 3D modeling techniques and visualization devices, augmented reality (AR)-based navigation (AR navigation) is being developed actively. The authors developed a pilot model of their newly developed inside-out tracking AR navigation system.
METHODS: The inside-out AR navigation technique was developed based on the visual inertial odometry (VIO) algorithm. The Quick Response (QR) marker was created and used for the image feature-detection algorithm. Inside-out AR navigation works through the steps of visualization device recognition, marker recognition, AR implementation, and registration within the running environment. A virtual 3D patient model for AR rendering and a 3D-printed patient model for validating registration accuracy were created. Inside-out tracking was used for the registration. The registration accuracy was validated by using intuitive, visualization, and quantitative methods for identifying coordinates by matching errors. Fine-tuning and opacity-adjustment functions were developed.
RESULTS: ARKit-based inside-out AR navigation was developed. The fiducial marker of the AR model and those of the 3D-printed patient model were correctly overlapped at all locations without errors. The tumor and anatomical structures of AR navigation and the tumors and structures placed in the intracranial space of the 3D-printed patient model precisely overlapped. The registration accuracy was quantified using coordinates, and the average moving errors of the x-axis and y-axis were 0.52 ± 0.35 and 0.05 ± 0.16 mm, respectively. The gradients from the x-axis and y-axis were 0.35° and 1.02°, respectively. Application of the fine-tuning and opacity-adjustment functions was proven by the videos.
CONCLUSIONS: The authors developed a novel inside-out tracking-based AR navigation system and validated its registration accuracy. This technical system could be applied in the novel navigation system for patient-specific neurosurgery.

Entities:  

Keywords:  augmented reality; brain tumor; inside-out tracking; navigation; surgical planning

Year:  2021        PMID: 34333463     DOI: 10.3171/2021.5.FOCUS21184

Source DB:  PubMed          Journal:  Neurosurg Focus        ISSN: 1092-0684            Impact factor:   4.047


  2 in total

1.  Navigation of frameless fixation for gamma knife radiosurgery using fixed augmented reality.

Authors:  Hyeong Cheol Moon; Sang Joon Park; Young Deok Kim; Kyung Min Kim; Ho Kang; Eun Jung Lee; Min-Sung Kim; Jin Wook Kim; Yong Hwy Kim; Chul-Kee Park; Young Gyu Kim; Yun-Sik Dho
Journal:  Sci Rep       Date:  2022-03-16       Impact factor: 4.379

Review 2.  Visualization, navigation, augmentation. The ever-changing perspective of the neurosurgeon.

Authors:  A Boaro; F Moscolo; A Feletti; G M V Polizzi; S Nunes; F Siddi; M L D Broekman; F Sala
Journal:  Brain Spine       Date:  2022-08-17
  2 in total

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