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Published in: European Radiology 9/2013

01-09-2013 | Neuro

How far can the radiation dose be lowered in head CT with iterative reconstruction? Analysis of imaging quality and diagnostic accuracy

Authors: Tung-Hsin Wu, Sheng-Che Hung, Jing-Yi Sun, Chung-Jung Lin, Chung-Hsien Lin, Chen Fen Chiu, Min-Jsuan Liu, Michael Mu Huo Teng, Wan-Yuo Guo, Cheng-Yen Chang

Published in: European Radiology | Issue 9/2013

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Abstract

Objective

To evaluate the imaging quality of head CT at lowered radiation dose by combining filtered back projection (FBP) and iterative reconstruction (IR) algorithms.

Methods

Experimental group A (n = 66) underwent CT with 43 % tube current reduction, and group B (n = 58) received an equivalent reduced dose by lowering the tube voltage. An age- and sex-matched control group (n = 72) receiving the conventional radiation dose was retrospectively collected. Imaging for the control group was reconstructed by FBP only, while images for groups A and B were reconstructed by FBP and IR. The signal-to-noise ratios (SNRs), contrast-to-noise ratios (CNRs), sharpness, number of infarcts and severity of subcortical arteriosclerotic encephalopathy (SAE) were compared to assess imaging quality and diagnostic accuracy.

Results

There were no significant differences in SNRs and CNRs between group A and the control group. There were significantly decreased SNRs and increased CNRs in group B. Image sharpness decreased in both groups. Correlations between detected infarcts and severity of SAE across FBP and IR were high (r = 0.73-0.93). Head diameter was the only significant factor inversely correlated with infratentorial imaging quality.

Conclusion

Head CT with 43 % reduced tube current reconstructed by IR provides diagnostic imaging quality for outpatient management.

Key Points

Cranial CT using iterative reconstruction provides diagnostic images with 43 % mAs reduction.
Blurring of infratentorial images becomes evident using low-radiation head CT.
Head diameter was inversely correlated with imaging quality in the infratentorium.
Lowering tube kilovoltage requires a higher radiation dose to maintain image quality.
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Metadata
Title
How far can the radiation dose be lowered in head CT with iterative reconstruction? Analysis of imaging quality and diagnostic accuracy
Authors
Tung-Hsin Wu
Sheng-Che Hung
Jing-Yi Sun
Chung-Jung Lin
Chung-Hsien Lin
Chen Fen Chiu
Min-Jsuan Liu
Michael Mu Huo Teng
Wan-Yuo Guo
Cheng-Yen Chang
Publication date
01-09-2013
Publisher
Springer Berlin Heidelberg
Published in
European Radiology / Issue 9/2013
Print ISSN: 0938-7994
Electronic ISSN: 1432-1084
DOI
https://doi.org/10.1007/s00330-013-2846-6

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