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Development and applicability of a quality control phantom for dental cone‐beam CT

Cone‐beam CT (CBCT) has shown to be a useful imaging modality for various dentomaxillofacial applications. However, optimization and quality control of dental CBCT devices is hampered due to the lack of an appropriate tool for image quality assessment. To investigate the application of different ima...

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Autores principales: Pauwels, Ruben, Stamatakis, Harry, Manousaridis, Giorgos, Walker, Adrian, Michielsen, Koen, Bosmans, Hilde, Bogaerts, Ria, Jacobs, Reinhilde, Horner, Keith, Tsiklakis, Kostas
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2011
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5718749/
https://www.ncbi.nlm.nih.gov/pubmed/22089004
http://dx.doi.org/10.1120/jacmp.v12i4.3478
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author Pauwels, Ruben
Stamatakis, Harry
Manousaridis, Giorgos
Walker, Adrian
Michielsen, Koen
Bosmans, Hilde
Bogaerts, Ria
Jacobs, Reinhilde
Horner, Keith
Tsiklakis, Kostas
author_facet Pauwels, Ruben
Stamatakis, Harry
Manousaridis, Giorgos
Walker, Adrian
Michielsen, Koen
Bosmans, Hilde
Bogaerts, Ria
Jacobs, Reinhilde
Horner, Keith
Tsiklakis, Kostas
author_sort Pauwels, Ruben
collection PubMed
description Cone‐beam CT (CBCT) has shown to be a useful imaging modality for various dentomaxillofacial applications. However, optimization and quality control of dental CBCT devices is hampered due to the lack of an appropriate tool for image quality assessment. To investigate the application of different image quality parameters for CBCT, a prototype polymethyl methacrylate (PMMA) cylindrical phantom with inserts for image quality analysis was developed. Applicability and reproducibility of the phantom were assessed using seven CBCT devices with different scanning protocols. Image quality parameters evaluated were: CT number correlation, contrast resolution, image homogeneity and uniformity, point spread function, and metal artifacts. Deviations of repeated measurements were between 0.0% and 3.3%. Correlation coefficients of CBCT voxel values with CT numbers ranged between 0.68 and 1.00. Contrast‐to‐noise ratio (CNR) values were much lower for hydroxyapatite [Formula: see text] than for air and aluminum [Formula: see text]. Noise values ranged between 35 and 419. The uniformity index was between 3.3% and 11.9%. Full width at half maximum (FWHM) measurements varied between 0.43 mm and 1.07 mm. The increase of mean voxel values surrounding metal objects ranged between 6.7% and 43.0%. Results from preliminary analyses of the prototype quality control phantom showed its potential for routine quality assurance on CBCT. Large differences in image quality performance were seen between CBCT devices. Based on the initial evaluations, the phantom can be optimized and validated. PACS numbers: 87.57.C‐, 87.57.N‐, 87.57.Q‐
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spelling pubmed-57187492018-04-02 Development and applicability of a quality control phantom for dental cone‐beam CT Pauwels, Ruben Stamatakis, Harry Manousaridis, Giorgos Walker, Adrian Michielsen, Koen Bosmans, Hilde Bogaerts, Ria Jacobs, Reinhilde Horner, Keith Tsiklakis, Kostas J Appl Clin Med Phys Medical Imaging Cone‐beam CT (CBCT) has shown to be a useful imaging modality for various dentomaxillofacial applications. However, optimization and quality control of dental CBCT devices is hampered due to the lack of an appropriate tool for image quality assessment. To investigate the application of different image quality parameters for CBCT, a prototype polymethyl methacrylate (PMMA) cylindrical phantom with inserts for image quality analysis was developed. Applicability and reproducibility of the phantom were assessed using seven CBCT devices with different scanning protocols. Image quality parameters evaluated were: CT number correlation, contrast resolution, image homogeneity and uniformity, point spread function, and metal artifacts. Deviations of repeated measurements were between 0.0% and 3.3%. Correlation coefficients of CBCT voxel values with CT numbers ranged between 0.68 and 1.00. Contrast‐to‐noise ratio (CNR) values were much lower for hydroxyapatite [Formula: see text] than for air and aluminum [Formula: see text]. Noise values ranged between 35 and 419. The uniformity index was between 3.3% and 11.9%. Full width at half maximum (FWHM) measurements varied between 0.43 mm and 1.07 mm. The increase of mean voxel values surrounding metal objects ranged between 6.7% and 43.0%. Results from preliminary analyses of the prototype quality control phantom showed its potential for routine quality assurance on CBCT. Large differences in image quality performance were seen between CBCT devices. Based on the initial evaluations, the phantom can be optimized and validated. PACS numbers: 87.57.C‐, 87.57.N‐, 87.57.Q‐ John Wiley and Sons Inc. 2011-11-15 /pmc/articles/PMC5718749/ /pubmed/22089004 http://dx.doi.org/10.1120/jacmp.v12i4.3478 Text en © 2011 The Authors. This is an open access article under the terms of the Creative Commons Attribution (http://creativecommons.org/licenses/by/3.0/) License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Medical Imaging
Pauwels, Ruben
Stamatakis, Harry
Manousaridis, Giorgos
Walker, Adrian
Michielsen, Koen
Bosmans, Hilde
Bogaerts, Ria
Jacobs, Reinhilde
Horner, Keith
Tsiklakis, Kostas
Development and applicability of a quality control phantom for dental cone‐beam CT
title Development and applicability of a quality control phantom for dental cone‐beam CT
title_full Development and applicability of a quality control phantom for dental cone‐beam CT
title_fullStr Development and applicability of a quality control phantom for dental cone‐beam CT
title_full_unstemmed Development and applicability of a quality control phantom for dental cone‐beam CT
title_short Development and applicability of a quality control phantom for dental cone‐beam CT
title_sort development and applicability of a quality control phantom for dental cone‐beam ct
topic Medical Imaging
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5718749/
https://www.ncbi.nlm.nih.gov/pubmed/22089004
http://dx.doi.org/10.1120/jacmp.v12i4.3478
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