Development of a computational tool for estimating computed tomography dose parameters

dc.contributor.authorALMohiy, Hussain M.
dc.contributor.authorHussein, Khalid I.
dc.contributor.authorAlqahtani, Mohammed S.
dc.contributor.authorRawashdeh, Mohammad Ahmmad
dc.contributor.authorElshiekh, Elhussaien
dc.contributor.authorAlshahrani, Madshush M.
dc.contributor.authorSaad, Mohamed
dc.contributor.authorFoley, Shane J.
dc.contributor.authorSaade, Charbel
dc.contributor.departmentDivision of Health Professions
dc.contributor.departmentMedical Imaging Sciences
dc.contributor.facultyFaculty of Health Sciences (FHS)
dc.contributor.institutionAmerican University of Beirut
dc.date.accessioned2025-01-24T12:19:44Z
dc.date.available2025-01-24T12:19:44Z
dc.date.issued2020
dc.description.abstractBACKGROUND: Computed Tomographic (CT) imaging procedures have been reported as the main source of radiation in diagnostic procedures compared to other modalities. To provide the optimal quality of CT images at the minimum radiation risk to the patient, periodic inspections and calibration tests for CT equipment are required. These tests involve a series of measurements that are time consuming and may require specific skills and highly-trained personnel. OBJECTIVE: This study aims to develop a new computational tool to estimate the dose of CT radiation outputs and assist in the calibration of CT scanners. It may also provide an educational resource by which radiological practitioners can learn the influence of technique factors on both patient radiation dose and the produced image quality. METHODS: The computational tool was developed using MATLAB in order to estimate the CT radiation dose parameters for different technique factors. The CT radiation dose parameters were estimated from the calibrated energy spectrum of the x-ray tube for a CT scanner. RESULTS: The estimated dose parameters and the measured values utilising an Adult CT Head Dose Phantom showed linear correlations for different tube voltages (80 kVp, 100 kVp, 120 kVp, and 140 kVp), with R2 nearly equal to 1 (0.99). The maximum differences between the estimated and measured CTDIvol were under 5 %. For 80 kVp and low tube currents (50 mA, 100 mA), the maximum differences were under 10%. CONCLUSIONS: The prototyped computational model provides a tool for the simulation of a machine-specific spectrum and CT dose parameters using a single dose measurement. © 2020 - IOS Press and the authors. All rights reserved.
dc.identifier.doihttps://doi.org/10.3233/XST-190731
dc.identifier.eid2-s2.0-85097654216
dc.identifier.pmid32986646
dc.identifier.urihttp://hdl.handle.net/10938/34178
dc.language.isoen
dc.publisherIOS Press BV
dc.relation.ispartofJournal of X-Ray Science and Technology
dc.sourceScopus
dc.subjectComputed tomography (ct)
dc.subjectDose length product (dlp)
dc.subjectMatlab
dc.subjectVolume ct dose index (ctdi)
dc.subjectX-ray energy spectrum
dc.subjectCalibration
dc.subjectComputational methods
dc.subjectDosimetry
dc.subjectParameter estimation
dc.subjectRadiation
dc.subjectScanning
dc.subjectTuring machines
dc.subjectX ray tubes
dc.subjectComputational model
dc.subjectComputational tools
dc.subjectComputed tomographic
dc.subjectDiagnostic procedure
dc.subjectEducational resource
dc.subjectLinear correlation
dc.subjectPatient radiation dose
dc.subjectPeriodic inspection
dc.subjectComputerized tomography
dc.titleDevelopment of a computational tool for estimating computed tomography dose parameters
dc.typeArticle

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