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Can wide-volume CT improve pediatric head imaging? Insights from a newly fabricated anthropomorphic phantom and
Hamza Sekkat1, Youssef Madkouri2, Oussama El Mouden3
1Sciences and Engineering of Biomedicals, Biophysics and Health Laboratory, Higher Institute of Health Sciences, Hassan First University, Settat, 26000, Morocco; Higher Institute of Nursing Professions and Health Techniques, Rabat, Morocco.
Background:
Wide-volume acquisition may reduce radiation exposure in pediatric head CT by limiting unnecessary z-axis irradiation, but evidence on 80-row detector systems remains limited. This study compared wide-volume and conventional helical acquisition using a newly fabricated patient-derived anthropomorphic pediatric head phantom and a retrospective clinical cohort.
Methods:
The NZPH pediatric head phantom was scanned on an 80-row Canon CT system using matched helical and wide-volume protocols at 80, 100, and 120 kV with tube-current settings of 100, 150, 200, and 250 mA. Radiation output and quantitative image quality were compared across 12 matched settings. The clinical cohort comprised 84 consecutive retrospective non-contrast pediatric head CT examinations, including 42 helical and 42 wide-volume studies. Radiation dose, objective image-quality metrics, and six qualitative criteria were assessed; four radiologists independently performed image-quality scoring. Inter-reader agreement was evaluated using intraclass correlation coefficients.
Results:
In the phantom experiment, wide-volume acquisition produced lower DLP across all 12 matched settings, with reductions of 38.2%-50.7%. In the clinical cohort, median DLP was 586 mGy·cm for helical acquisition and 347 mGy·cm for wide-volume acquisition, corresponding to a 40.8% reduction. Mean effective dose was 1.99 versus 1.09 mSv, respectively. Age-stratified DLP reductions ranged from 41.6% to 48.4%. Gray- and white-matter attenuation remained comparable, whereas wide-volume acquisition showed higher image noise (4.58 ± 0.49 vs 4.12 ± 0.39 HU; p < 0.001) and lower SNR and CNR. Despite lower qualitative scores than helical acquisition, wide-volume examinations remained diagnostically acceptable, with a mean overall acceptability score of 4.11 ± 0.49.
Conclusion:
Wide-volume acquisition on an 80-row CT system was associated with substantial pediatric head CT dose reduction while maintaining clinically acceptable image quality, supporting its use as a practical dose-optimization strategy.
Plain Language Summary:
CT scans of a child's head are useful for diagnosis, but reducing radiation exposure is an important part of safe imaging. This study compared a newer wide-volume CT scanning method with a conventional method using both a child-sized test model and scans from 84 children. This study found that the newer method reduced radiation dose by about 40% while still providing image quality that was considered suitable for diagnosis. This matters because lower-dose scanning methods may help improve radiation safety for children without reducing the clinical value of the examination.
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