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Determination of optimal imaging settings for urolithiasis CT using filtered back projection (FBP), statistical iterative reconstruction (IR) and knowledge-based iterative model reconstruction (IMR): a physical human phantom study

Authors
Choi, Se YoungAhn, Seung H.Choi, Jae D.Kim, Jung H.Lee, Byoung-IlKim, Jeong-InPark, Sung Bin
Issue Date
Feb-2016
Publisher
BRITISH INST RADIOLOGY
Citation
BRITISH JOURNAL OF RADIOLOGY, v.89, no.1058
Journal Title
BRITISH JOURNAL OF RADIOLOGY
Volume
89
Number
1058
URI
https://scholarworks.bwise.kr/cau/handle/2019.sw.cau/8649
DOI
10.1259/bjr.20150527
ISSN
0007-1285
1748-880X
Abstract
Objective: The purpose of this study was to compare CT image quality for evaluating urolithiasis using filtered back projection (FBP), statistical iterative reconstruction (IR) and knowledge-based iterative model reconstruction (IMR) according to various scan parameters and radiation doses. Methods: A 5x5x5 mm(3) uric acid stone was placed in a physical human phantom at the level of the pelvis. 3 tube voltages (120, 100 and 80kV) and 4 current-time products (100, 70, 30 and 15mAs) were implemented in 12 scans. Each scan was reconstructed with FBP, statistical IR (Levels 5-7) and knowledge-based IMR (soft-tissue Levels 1-3). The radiation dose, objective image quality and signal-to-noise ratio (SNR) were evaluated, and subjective assessments were performed. Results: The effective doses ranged from 0.095 to 2.621mSv. Knowledge-based IMR showed better objective image noise and SNR than did FBP and statistical IR. The subjective image noise of FBP was worse than that of statistical IR and knowledge-based IMR. The subjective assessment scores deteriorated after a break point of 100 kV and 30 mAs. Conclusion: At the setting of 100 kV and 30 mAs, the radiation dose can be decreased by approximately 84% while keeping the subjective image assessment. Advances in knowledge: Patients with urolithiasis can be evaluated with ultralow-dose non-enhanced CT using a knowledge-based IMR algorithm at a substantially reduced radiation dose with the imaging quality preserved, thereby minimizing the risks of radiation exposure while providing clinically relevant diagnostic benefits for patients.
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의과대학 (의학부(임상-광명))
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