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Phantom Study on the Robustness of MR Radiomics Features: Comparing the Applicability of 3D Printed and Biological Phantoms

The objectives of our study were to (a) evaluate the feasibility of using 3D printed phantoms in magnetic resonance imaging (MR) in assessing the robustness and repeatability of radiomic parameters and (b) to compare the results obtained from the 3D printed phantoms to metrics obtained in biological...

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Autores principales: Veres, Gergő, Kiss, János, Vas, Norman Félix, Kallos-Balogh, Piroska, Máthé, Nóra Beatrix, Lassen, Martin Lyngby, Berényi, Ervin, Balkay, László
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9497898/
https://www.ncbi.nlm.nih.gov/pubmed/36140598
http://dx.doi.org/10.3390/diagnostics12092196
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author Veres, Gergő
Kiss, János
Vas, Norman Félix
Kallos-Balogh, Piroska
Máthé, Nóra Beatrix
Lassen, Martin Lyngby
Berényi, Ervin
Balkay, László
author_facet Veres, Gergő
Kiss, János
Vas, Norman Félix
Kallos-Balogh, Piroska
Máthé, Nóra Beatrix
Lassen, Martin Lyngby
Berényi, Ervin
Balkay, László
author_sort Veres, Gergő
collection PubMed
description The objectives of our study were to (a) evaluate the feasibility of using 3D printed phantoms in magnetic resonance imaging (MR) in assessing the robustness and repeatability of radiomic parameters and (b) to compare the results obtained from the 3D printed phantoms to metrics obtained in biological phantoms. To this end, three different 3D phantoms were printed: a Hilbert cube (5 × 5 × 5 cm(3)) and two cubic quick response (QR) code phantoms (a large phantom (large QR) (5 × 5 × 4 cm(3)) and a small phantom (small QR) (4 × 4 × 3 cm(3))). All 3D printed and biological phantoms (kiwis, tomatoes, and onions) were scanned thrice on clinical 1.5 T and 3 T MR with 1 mm and 2 mm isotropic resolution. Subsequent analyses included analyses of several radiomics indices (RI), their repeatability and reliability were calculated using the coefficient of variation (CV), the relative percentage difference (RPD), and the interclass coefficient (ICC) parameters. Additionally, the readability of QR codes obtained from the MR images was examined with several mobile phones and algorithms. The best repeatability (CV ≤ 10%) is reported for the acquisition protocols with the highest spatial resolution. In general, the repeatability and reliability of RI were better in data obtained at 1.5 T (CV = 1.9) than at 3 T (CV = 2.11). Furthermore, we report good agreements between results obtained for the 3D phantoms and biological phantoms. Finally, analyses of the read-out rate of the QR code revealed better texture analyses for images with a spatial resolution of 1 mm than 2 mm. In conclusion, 3D printing techniques offer a unique solution to create textures for analyzing the reliability of radiomic data from MR scans.
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spelling pubmed-94978982022-09-23 Phantom Study on the Robustness of MR Radiomics Features: Comparing the Applicability of 3D Printed and Biological Phantoms Veres, Gergő Kiss, János Vas, Norman Félix Kallos-Balogh, Piroska Máthé, Nóra Beatrix Lassen, Martin Lyngby Berényi, Ervin Balkay, László Diagnostics (Basel) Article The objectives of our study were to (a) evaluate the feasibility of using 3D printed phantoms in magnetic resonance imaging (MR) in assessing the robustness and repeatability of radiomic parameters and (b) to compare the results obtained from the 3D printed phantoms to metrics obtained in biological phantoms. To this end, three different 3D phantoms were printed: a Hilbert cube (5 × 5 × 5 cm(3)) and two cubic quick response (QR) code phantoms (a large phantom (large QR) (5 × 5 × 4 cm(3)) and a small phantom (small QR) (4 × 4 × 3 cm(3))). All 3D printed and biological phantoms (kiwis, tomatoes, and onions) were scanned thrice on clinical 1.5 T and 3 T MR with 1 mm and 2 mm isotropic resolution. Subsequent analyses included analyses of several radiomics indices (RI), their repeatability and reliability were calculated using the coefficient of variation (CV), the relative percentage difference (RPD), and the interclass coefficient (ICC) parameters. Additionally, the readability of QR codes obtained from the MR images was examined with several mobile phones and algorithms. The best repeatability (CV ≤ 10%) is reported for the acquisition protocols with the highest spatial resolution. In general, the repeatability and reliability of RI were better in data obtained at 1.5 T (CV = 1.9) than at 3 T (CV = 2.11). Furthermore, we report good agreements between results obtained for the 3D phantoms and biological phantoms. Finally, analyses of the read-out rate of the QR code revealed better texture analyses for images with a spatial resolution of 1 mm than 2 mm. In conclusion, 3D printing techniques offer a unique solution to create textures for analyzing the reliability of radiomic data from MR scans. MDPI 2022-09-09 /pmc/articles/PMC9497898/ /pubmed/36140598 http://dx.doi.org/10.3390/diagnostics12092196 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Veres, Gergő
Kiss, János
Vas, Norman Félix
Kallos-Balogh, Piroska
Máthé, Nóra Beatrix
Lassen, Martin Lyngby
Berényi, Ervin
Balkay, László
Phantom Study on the Robustness of MR Radiomics Features: Comparing the Applicability of 3D Printed and Biological Phantoms
title Phantom Study on the Robustness of MR Radiomics Features: Comparing the Applicability of 3D Printed and Biological Phantoms
title_full Phantom Study on the Robustness of MR Radiomics Features: Comparing the Applicability of 3D Printed and Biological Phantoms
title_fullStr Phantom Study on the Robustness of MR Radiomics Features: Comparing the Applicability of 3D Printed and Biological Phantoms
title_full_unstemmed Phantom Study on the Robustness of MR Radiomics Features: Comparing the Applicability of 3D Printed and Biological Phantoms
title_short Phantom Study on the Robustness of MR Radiomics Features: Comparing the Applicability of 3D Printed and Biological Phantoms
title_sort phantom study on the robustness of mr radiomics features: comparing the applicability of 3d printed and biological phantoms
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9497898/
https://www.ncbi.nlm.nih.gov/pubmed/36140598
http://dx.doi.org/10.3390/diagnostics12092196
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