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Continuous registration based on computed tomography for breathing motion compensation

INTRODUCTION: Image guidance for intervention is applied for complex and difficult anatomical regions. Nowadays, it is typically used in neurosurgery, otolaryngology, orthopedics and dentistry. The application of the image-guided system for soft tissues is challenging due to various deformations cau...

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Autores principales: Spinczyk, Dominik, Zyłkowski, Jaroslaw, Wróblewski, Tadeusz
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Termedia Publishing House 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3908646/
https://www.ncbi.nlm.nih.gov/pubmed/24501595
http://dx.doi.org/10.5114/wiitm.2013.39505
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author Spinczyk, Dominik
Zyłkowski, Jaroslaw
Wróblewski, Tadeusz
author_facet Spinczyk, Dominik
Zyłkowski, Jaroslaw
Wróblewski, Tadeusz
author_sort Spinczyk, Dominik
collection PubMed
description INTRODUCTION: Image guidance for intervention is applied for complex and difficult anatomical regions. Nowadays, it is typically used in neurosurgery, otolaryngology, orthopedics and dentistry. The application of the image-guided system for soft tissues is challenging due to various deformations caused by respiratory motion, tissue elasticity and peristalsis. AIM: The main task for the presented approach is continuous registration of preoperative computed tomography (CT) and patient position in the operating room (OR) without touching the patient and compensation of breathing motion. This approach is being developed as a step to image-guided percutaneous liver RF tumor ablation. MATERIAL AND METHODS: Up to ten integrated radiological markers are placed on the patient's skin before CT scans. Then the anatomical model based on CT images is calculated. Point-to-point registration based on the Horn algorithm during a few breathing cycles is performed using a videometric tracking system. The transformation which corresponds to the minimum fiducial registration error (FRE) is found during the registration and it is treated as the initial transformation for calculating local deformation field of breathing motion compensation based on the spline approach. RESULTS: For manual registration of the abdominal phantom, the mean values of target registration error (TRE), fiducial localization error (FLE) and FRE are all below 4 mm for the rigid transformation and are below 1 mm for the affine transformation. For the patient's data they are all below 9 mm and 6 mm, respectively. For the automatic method, different marker configurations have been evaluated while dividing the respiratory cycle into inhale and exhale. Average median values for FRE, TRE rigid estimation and TRE based on spline deformation were 15.56 mm, 0.82 mm and 7.21 mm respectively. CONCLUSIONS: In this application two registration methods of abdominal preoperative CT anatomical model and physical patient position in OR were presented and compared. The presented approach is being developed as a step to image-guided percutaneous liver radiofrequency ablation tumor ablation. Implementation of the automated registration method to clinical practice is easier because of shortening of preparation time in OR, no necessity of touching the patient, and no dependency on the physician's experience.
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spelling pubmed-39086462014-02-05 Continuous registration based on computed tomography for breathing motion compensation Spinczyk, Dominik Zyłkowski, Jaroslaw Wróblewski, Tadeusz Wideochir Inne Tech Maloinwazyjne Original Paper INTRODUCTION: Image guidance for intervention is applied for complex and difficult anatomical regions. Nowadays, it is typically used in neurosurgery, otolaryngology, orthopedics and dentistry. The application of the image-guided system for soft tissues is challenging due to various deformations caused by respiratory motion, tissue elasticity and peristalsis. AIM: The main task for the presented approach is continuous registration of preoperative computed tomography (CT) and patient position in the operating room (OR) without touching the patient and compensation of breathing motion. This approach is being developed as a step to image-guided percutaneous liver RF tumor ablation. MATERIAL AND METHODS: Up to ten integrated radiological markers are placed on the patient's skin before CT scans. Then the anatomical model based on CT images is calculated. Point-to-point registration based on the Horn algorithm during a few breathing cycles is performed using a videometric tracking system. The transformation which corresponds to the minimum fiducial registration error (FRE) is found during the registration and it is treated as the initial transformation for calculating local deformation field of breathing motion compensation based on the spline approach. RESULTS: For manual registration of the abdominal phantom, the mean values of target registration error (TRE), fiducial localization error (FLE) and FRE are all below 4 mm for the rigid transformation and are below 1 mm for the affine transformation. For the patient's data they are all below 9 mm and 6 mm, respectively. For the automatic method, different marker configurations have been evaluated while dividing the respiratory cycle into inhale and exhale. Average median values for FRE, TRE rigid estimation and TRE based on spline deformation were 15.56 mm, 0.82 mm and 7.21 mm respectively. CONCLUSIONS: In this application two registration methods of abdominal preoperative CT anatomical model and physical patient position in OR were presented and compared. The presented approach is being developed as a step to image-guided percutaneous liver radiofrequency ablation tumor ablation. Implementation of the automated registration method to clinical practice is easier because of shortening of preparation time in OR, no necessity of touching the patient, and no dependency on the physician's experience. Termedia Publishing House 2013-12-18 2013-12 /pmc/articles/PMC3908646/ /pubmed/24501595 http://dx.doi.org/10.5114/wiitm.2013.39505 Text en Copyright © 2013 Sekcja Wideochirurgii TChP http://creativecommons.org/licenses/by-nc-nd/3.0/ This is an Open Access article distributed under the terms of the Creative Commons Attribution-Noncommercial 3.0 Unported License, permitting all non-commercial use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Original Paper
Spinczyk, Dominik
Zyłkowski, Jaroslaw
Wróblewski, Tadeusz
Continuous registration based on computed tomography for breathing motion compensation
title Continuous registration based on computed tomography for breathing motion compensation
title_full Continuous registration based on computed tomography for breathing motion compensation
title_fullStr Continuous registration based on computed tomography for breathing motion compensation
title_full_unstemmed Continuous registration based on computed tomography for breathing motion compensation
title_short Continuous registration based on computed tomography for breathing motion compensation
title_sort continuous registration based on computed tomography for breathing motion compensation
topic Original Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3908646/
https://www.ncbi.nlm.nih.gov/pubmed/24501595
http://dx.doi.org/10.5114/wiitm.2013.39505
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