Task-based assessment for radiation dose optimization in CT abdominal examinations: A phantom study

Recent advancements in Computed Tomography (CT) imaging technology have significantly enhanced healthcare delivery. However, public concern regarding the safety and health risks associated with increased exposure to ionizing radiation has escalated. In response, this study performs a quantitative an...

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Published in:RADIATION PHYSICS AND CHEMISTRY
Main Authors: Halim, Esnu; Kechik, Mohd Mustafa Awang; Ibahim, Mohamad Johari; Harun, Hanif Haspi; Shaffiq, Said Mohd; Yusof, Aimi Adibah; Karim, Muhammad Khalis Abdul
Format: Article
Language:English
Published: PERGAMON-ELSEVIER SCIENCE LTD 2024
Subjects:
Online Access:https://www-webofscience-com.uitm.idm.oclc.org/wos/woscc/full-record/WOS:001271109600001
author Halim
Esnu; Kechik
Mohd Mustafa Awang; Ibahim
Mohamad Johari; Harun
Hanif Haspi; Shaffiq
Said Mohd; Yusof
Aimi Adibah; Karim
Muhammad Khalis Abdul
spellingShingle Halim
Esnu; Kechik
Mohd Mustafa Awang; Ibahim
Mohamad Johari; Harun
Hanif Haspi; Shaffiq
Said Mohd; Yusof
Aimi Adibah; Karim
Muhammad Khalis Abdul
Task-based assessment for radiation dose optimization in CT abdominal examinations: A phantom study
Chemistry; Nuclear Science & Technology; Physics
author_facet Halim
Esnu; Kechik
Mohd Mustafa Awang; Ibahim
Mohamad Johari; Harun
Hanif Haspi; Shaffiq
Said Mohd; Yusof
Aimi Adibah; Karim
Muhammad Khalis Abdul
author_sort Halim
spelling Halim, Esnu; Kechik, Mohd Mustafa Awang; Ibahim, Mohamad Johari; Harun, Hanif Haspi; Shaffiq, Said Mohd; Yusof, Aimi Adibah; Karim, Muhammad Khalis Abdul
Task-based assessment for radiation dose optimization in CT abdominal examinations: A phantom study
RADIATION PHYSICS AND CHEMISTRY
English
Article
Recent advancements in Computed Tomography (CT) imaging technology have significantly enhanced healthcare delivery. However, public concern regarding the safety and health risks associated with increased exposure to ionizing radiation has escalated. In response, this study performs a quantitative analysis comparing the image quality of the standard CT abdomen protocol (P1 protocols) with alternative optimization techniques. Adjustments to standard CT scan parameters, including tube potential (P2 protocols), effective mAs value (P3), and pitch factor (P4, P5, P6 protocols), were made to evaluate the effectiveness of these optimization strategies. A 64slice CT scanner (Canon, Japan) and a polymethylmethacrylate (PMMA) textural water phantom was utilized in this study. CT dose descriptors, volume weighted CT Dose Index (CTDI vol ) and dose-length product (DLP) alongside evaluation parameters such as Hounsfield Unit (HU) number, noise levels, Signal-to-Noise Ratio (SNR), and Contrast-to-Noise Ratio (CNR) were measured and analysed. Furthermore, this research introduced a Figure of Merit (FOM) based on the ratio of image quality parameters (SNR and CNR) to the CTDI vol , establishing a quantitative measure for optimization. A notable reduction in radiation dose -34.85% below the standard protocol (P1) -was observed in protocol P6, attributed to an increased pitch factor. Conversely, increase the effective mAs value has improved SNR and CNR values. The findings reveal that protocols P1 and P2 deliver the highest FOM for soft tissue and fat imaging, respectively. Protocol P1, with its higher attenuation factor, is optimal for abdominal examinations targeting soft tissues. Meanwhile, protocol P2 's increase effective mAs value enhances beam intensity, improving CT numbers for fat tissues with their high-density composition. The study also found a strong correlation between FOM based on SNR and CNR values. In conclusion, adjustments to primary CT parameters significantly influence image quality. The FOM serves as an effective tool for measuring the overall performance of image quality, facilitating post-optimization assessment and contributing to the development of safer, more efficient CT imaging protocols.
PERGAMON-ELSEVIER SCIENCE LTD
0969-806X
1879-0895
2024
223

10.1016/j.radphyschem.2024.111966
Chemistry; Nuclear Science & Technology; Physics

WOS:001271109600001
https://www-webofscience-com.uitm.idm.oclc.org/wos/woscc/full-record/WOS:001271109600001
title Task-based assessment for radiation dose optimization in CT abdominal examinations: A phantom study
title_short Task-based assessment for radiation dose optimization in CT abdominal examinations: A phantom study
title_full Task-based assessment for radiation dose optimization in CT abdominal examinations: A phantom study
title_fullStr Task-based assessment for radiation dose optimization in CT abdominal examinations: A phantom study
title_full_unstemmed Task-based assessment for radiation dose optimization in CT abdominal examinations: A phantom study
title_sort Task-based assessment for radiation dose optimization in CT abdominal examinations: A phantom study
container_title RADIATION PHYSICS AND CHEMISTRY
language English
format Article
description Recent advancements in Computed Tomography (CT) imaging technology have significantly enhanced healthcare delivery. However, public concern regarding the safety and health risks associated with increased exposure to ionizing radiation has escalated. In response, this study performs a quantitative analysis comparing the image quality of the standard CT abdomen protocol (P1 protocols) with alternative optimization techniques. Adjustments to standard CT scan parameters, including tube potential (P2 protocols), effective mAs value (P3), and pitch factor (P4, P5, P6 protocols), were made to evaluate the effectiveness of these optimization strategies. A 64slice CT scanner (Canon, Japan) and a polymethylmethacrylate (PMMA) textural water phantom was utilized in this study. CT dose descriptors, volume weighted CT Dose Index (CTDI vol ) and dose-length product (DLP) alongside evaluation parameters such as Hounsfield Unit (HU) number, noise levels, Signal-to-Noise Ratio (SNR), and Contrast-to-Noise Ratio (CNR) were measured and analysed. Furthermore, this research introduced a Figure of Merit (FOM) based on the ratio of image quality parameters (SNR and CNR) to the CTDI vol , establishing a quantitative measure for optimization. A notable reduction in radiation dose -34.85% below the standard protocol (P1) -was observed in protocol P6, attributed to an increased pitch factor. Conversely, increase the effective mAs value has improved SNR and CNR values. The findings reveal that protocols P1 and P2 deliver the highest FOM for soft tissue and fat imaging, respectively. Protocol P1, with its higher attenuation factor, is optimal for abdominal examinations targeting soft tissues. Meanwhile, protocol P2 's increase effective mAs value enhances beam intensity, improving CT numbers for fat tissues with their high-density composition. The study also found a strong correlation between FOM based on SNR and CNR values. In conclusion, adjustments to primary CT parameters significantly influence image quality. The FOM serves as an effective tool for measuring the overall performance of image quality, facilitating post-optimization assessment and contributing to the development of safer, more efficient CT imaging protocols.
publisher PERGAMON-ELSEVIER SCIENCE LTD
issn 0969-806X
1879-0895
publishDate 2024
container_volume 223
container_issue
doi_str_mv 10.1016/j.radphyschem.2024.111966
topic Chemistry; Nuclear Science & Technology; Physics
topic_facet Chemistry; Nuclear Science & Technology; Physics
accesstype
id WOS:001271109600001
url https://www-webofscience-com.uitm.idm.oclc.org/wos/woscc/full-record/WOS:001271109600001
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