3D-printed iodine-ink CT phantom for radiomics feature extraction - advantages and challenges.

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Version: Final published version
License: CC BY-NC 4.0
Serval ID
serval:BIB_0E7666567292
Type
Article: article from journal or magazin.
Collection
Publications
Institution
Title
3D-printed iodine-ink CT phantom for radiomics feature extraction - advantages and challenges.
Journal
Medical physics
Author(s)
Bach M., Aberle C., Depeursinge A., Jimenez-Del-Toro O., Schaer R., Flouris K., Konukoglu E., Müller H., Stieltjes B., Obmann M.M.
ISSN
2473-4209 (Electronic)
ISSN-L
0094-2405
Publication state
Published
Issued date
09/2023
Peer-reviewed
Oui
Volume
50
Number
9
Pages
5682-5697
Language
english
Notes
Publication types: Journal Article
Publication Status: ppublish
Abstract
To test and validate novel CT techniques, such as texture analysis in radiomics, repeat measurements are required. Current anthropomorphic phantoms lack fine texture and true anatomic representation. 3D-printing of iodinated ink on paper is a promising phantom manufacturing technique. Previously acquired or artificially created CT data can be used to generate realistic phantoms.
To present the design process of an anthropomorphic 3D-printed iodine ink phantom, highlighting the different advantages and pitfalls in its use. To analyze the phantom's X-ray attenuation properties, and the influences of the printing process on the imaging characteristics, by comparing it to the original input dataset.
Two patient CT scans and artificially generated test patterns were combined in a single dataset for phantom printing and cropped to a size of 26 × 19 × 30 cm <sup>3</sup> . This DICOM dataset was printed on paper using iodinated ink. The phantom was CT-scanned and compared to the original image dataset used for printing the phantom. The water-equivalent diameter of the phantom was compared to that of a patient cohort (N = 104). Iodine concentrations in the phantom were measured using dual-energy CT. 86 radiomics features were extracted from 10 repeat phantom scans and the input dataset. Features were compared using a histogram analysis and a PCA individually and overall, respectively. The frequency content was compared using the normalized spectrum modulus.
Low density structures are depicted incorrectly, while soft tissue structures show excellent visual accordance with the input dataset. Maximum deviations of around 30 HU between the original dataset and phantom HU values were observed. The phantom has X-ray attenuation properties comparable to a lightweight adult patient (∼54 kg, BMI 19 kg/m <sup>2</sup> ). Iodine concentrations in the phantom varied between 0 and 50 mg/ml. PCA of radiomics features shows different tissue types separate in similar areas of PCA representation in the phantom scans as in the input dataset. Individual feature analysis revealed systematic shift of first order radiomics features compared to the original dataset, while some higher order radiomics features did not. The normalized frequency modulus |f(ω)| of the phantom data agrees well with the original data. However, all frequencies systematically occur more frequently in the phantom compared to the maximum of the spectrum modulus than in the original data set, especially for mid-frequencies (e.g., for ω = 0.3942 mm <sup>-1</sup> , |f(ω)| <sub>original</sub> = 0.09 * |f <sub>max</sub> | <sub>original</sub> and |f(ω)| <sub>phantom</sub> = 0.12 * |f <sub>max</sub> | <sub>phantom</sub> ).
3D-iodine-ink-printing technology can be used to print anthropomorphic phantoms with a water-equivalent diameter of a lightweight adult patient. Challenges include small residual air enclosures and the fidelity of HU values. For soft tissue, there is a good agreement between the HU values of the phantom and input data set. Radiomics texture features of the phantom scans are similar to the input data set, but systematic shifts of radiomics features in first order features, due to differences in HU values, need to be considered. The paper substrate influences the spatial frequency distribution of the phantom scans. This phantom type is of very limited use for dual-energy CT analyses.
Keywords
Humans, Ink, Tomography, X-Ray Computed/methods, Phantoms, Imaging, Printing, Three-Dimensional, 15 quantitative imaging/analysis, 18 image reconstruction, 26 biomarkers, 3 IM-CT, 8 phantoms, physical
Pubmed
Web of science
Open Access
Yes
Create date
24/03/2023 10:02
Last modification date
13/02/2024 8:26
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