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Rendering-based video-CT registration with physical constraints for image-guided endoscopic sinus surgery

Authors :
Simon Leonard
Austin Reiter
Gary L. Gallia
Gregory D. Hager
Masaru Ishii
Jeffrey H. Siewerdsen
Yoshito Otake
Purnima Rajan
Russell H. Taylor
Source :
Medical Imaging: Image-Guided Procedures
Publication Year :
2015
Publisher :
SPIE, 2015.

Abstract

We present a system for registering the coordinate frame of an endoscope to pre- or intra- operatively acquired CT data based on optimizing the similarity metric between an endoscopic image and an image predicted via rendering of CT. Our method is robust and semi-automatic because it takes account of physical constraints, specifically, collisions between the endoscope and the anatomy, to initialize and constrain the search. The proposed optimization method is based on a stochastic optimization algorithm that evaluates a large number of similarity metric functions in parallel on a graphics processing unit. Images from a cadaver and a patient were used for evaluation. The registration error was 0.83 mm and 1.97 mm for cadaver and patient images respectively. The average registration time for 60 trials was 4.4 seconds. The patient study demonstrated robustness of the proposed algorithm against a moderate anatomical deformation.

Details

ISSN :
0277786X
Database :
OpenAIRE
Journal :
SPIE Proceedings
Accession number :
edsair.doi.dedup.....929e17bc2f0c366922c5b8b381ac911b
Full Text :
https://doi.org/10.1117/12.2081732