Literature DB >> 18069128

Managing patient dose in multi-detector computed tomography(MDCT). ICRP Publication 102.

J Valentin.   

Abstract

Computed tomography (CT) technology has changed considerably in recent years with the introduction of increasing numbers of multiple detector arrays. There are several parameters specific to multi-detector computed tomography (MDCT) scanners that increase or decrease patient dose systematically compared to older single detector computed tomography (SDCT) scanners. This document briefly reviews the MDCT technology, radiation dose in MDCT, including differences from SDCT and factors that affect dose, radiation risks, and the responsibilities for patient dose management. The document recommends that users need to understand the relationship between patient dose and image quality and be aware that image quality in CT is often higher than that necessary for diagnostic confidence. Automatic exposure control (AEC) does not totally free the operator from selection of scan parameters, and awareness of individual systems is important. Scanning protocols cannot simply be transferred between scanners from different manufacturers and should be determined for each MDCT. If the image quality is appropriately specified by the user, and suited to the clinical task, there will be a reduction in patient dose for most patients. Understanding of some parameters is not intuitive and the selection of image quality parameter values in AEC systems is not straightforward. Examples of some clinical situation shave been included to demonstrate dose management, e.g. CT examinations of the chest, the heart for coronary calcium quantification and non-invasive coronary angiography, colonography, the urinary tract, children, pregnant patients, trauma cases, and CT guided interventions. CT is increasingly being used to replace conventional x-ray studies and it is important that patient dose is given careful consideration, particularly with repeated or multiple examinations.

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Year:  2007        PMID: 18069128     DOI: 10.1016/j.icrp.2007.09.001

Source DB:  PubMed          Journal:  Ann ICRP        ISSN: 0146-6453


  118 in total

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4.  Radiation dose reduction in computed tomography: techniques and future perspective.

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Journal:  Imaging Med       Date:  2009-10

5.  Updated estimates of typical effective doses for common CT examinations in the UK following the 2011 national review.

Authors:  Paul C Shrimpton; Jan T M Jansen; John D Harrison
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6.  In vivo changes in plasma coenzyme Q10, carotenoid, tocopherol, and retinol levels in children after computer tomography.

Authors:  Brunhild M Halm; Jennifer F Lai; Cynthia M Morrison; Ian Pagano; Laurie J Custer; Robert V Cooney; Adrian A Franke
Journal:  Arch Biochem Biophys       Date:  2014-02-25       Impact factor: 4.013

7.  Intraoperative radiation exposure in spinal scoliosis surgery for pediatric patients using the O-arm® imaging system.

Authors:  Kazuyoshi Kobayashi; Kei Ando; Kenyu Ito; Mikito Tsushima; Masayoshi Morozumi; Satoshi Tanaka; Masaaki Machino; Kyotaro Ota; Naoki Ishiguro; Shiro Imagama
Journal:  Eur J Orthop Surg Traumatol       Date:  2018-02-02

8.  Practical interior tomography with radial Hilbert filtering and a priori knowledge in a small round area.

Authors:  Shaojie Tang; Yi Yang; Xiangyang Tang
Journal:  J Xray Sci Technol       Date:  2012       Impact factor: 1.535

9.  Radiation dose associated with common computed tomography examinations and the associated lifetime attributable risk of cancer.

Authors:  Rebecca Smith-Bindman; Jafi Lipson; Ralph Marcus; Kwang-Pyo Kim; Mahadevappa Mahesh; Robert Gould; Amy Berrington de González; Diana L Miglioretti
Journal:  Arch Intern Med       Date:  2009-12-14

10.  Projected cancer risks from computed tomographic scans performed in the United States in 2007.

Authors:  Amy Berrington de González; Mahadevappa Mahesh; Kwang-Pyo Kim; Mythreyi Bhargavan; Rebecca Lewis; Fred Mettler; Charles Land
Journal:  Arch Intern Med       Date:  2009-12-14
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