Clinical accuracy of holographic navigation using point-based registration on augmented-reality glasses

Publication date

2019-12-01

Authors

van Doormaal, Tristan P CORCID 0000-0002-6299-3859ISNI 0000000389942725
van Doormaal, Jesse A M
Mensink, Tom

Editors

Advisors

Supervisors

Document Type

Article

Collections

Open Access logo

License

cc_by_nc

Abstract

BACKGROUND: As current augmented-reality (AR) smart glasses are self-contained, powerful computers that project 3-dimensional holograms that can maintain their position in physical space, they could theoretically be used as a low-cost, stand-alone neuronavigation system. OBJECTIVE: To determine feasibility and accuracy of holographic neuronavigation (HN) using AR smart glasses. METHODS: We programmed a fully functioning neuronavigation system on commercially available smart glasses (HoloLens® , Microsoft, Redmond, Washington) and tested its accuracy and feasibility in the operating room. The fiducial registration error (FRE) was measured for both HN and conventional neuronavigation (CN) (Brainlab, Munich, Germany) by using point-based registration on a plastic head model. Subsequently, we measured HN and CN FRE on 3 patients. RESULTS: A stereoscopic view of the holograms was successfully achieved in all experiments. In plastic head measurements, the mean HN FRE was 7.2 ± 1.8 mm compared to the mean CN FRE of 1.9 ± 0.45 (mean difference: –5.3 mm; 95% confidence interval [CI]: –6.7 to –3.9). In the 3 patients, the mean HN FRE was 4.4 ± 2.5 mm compared to the mean CN FRE of 3.6 ± 0.5 (mean difference: –0.8 mm; 95% CI: –3.0 to 4.6). CONCLUSION: Owing to the potential benefits and promising results, we believe that HN could eventually find application in operating rooms. However, several improvements will have to be made before the device can be used in clinical practice.

Keywords

Augmented reality, Navigation, Surgery, Surgery, Clinical Neurology

Citation

Van Doormaal, T P C, Van Doormaal, J A M & Mensink, T 2019, 'Clinical accuracy of holographic navigation using point-based registration on augmented-reality glasses', Operative Neurosurgery, vol. 17, no. 6, pp. 588-593. https://doi.org/10.1093/ons/opz094