Literature DB >> 29934836

Simultaneous characterization of electron density and effective atomic number for radiotherapy planning using stoichiometric calibration method and dual energy algorithms.

Mohammad J Tahmasebi Birgani1,2, Maziyar Mahdavi3,4, Mansour Zabihzadeh1,2, Mehrzad Lotfi5, Mohammad A Mosleh-Shirazi6,7.   

Abstract

Relative electron densities of body tissues (ρe) for radiotherapy treatment planning are normally obtained by CT scanning of tissue substitute materials (TSMs) and producing a Hounsfield Unit-ρe calibration curve. Aiming for more accurate, simultaneous characterization of ρe and effective atomic number (Zeff) of real tissues, an in-house phantom (including 10 water solutions plus composite cork as TSMs) was constructed and scanned at 4 kVps. Dual-energy algorithms were applied to 80-140 and 100-140 kVp combination scans, for better differentiation of tissues with same attenuation coefficient at 120 kVp but different ρe and Zeff. Stoichiometric calibration and closeness of the ρe of the 11 TSMs to real tissues (≤ 0.5%) resulted in smaller ρe calculation discrepancies, compared to studies with commercial phantoms (p < 0.024). Applying an energy subtraction algorithm further mitigated errors by spectral separation and reduction of beam hardening artifacts and noise, reducing the mean and standard deviation of the absolute difference of ρe at 80-140 kVp (p < 0.003) and 100-140 kVp (p < 0.0001) scans, compared to 120 kVp scan, respectively. Moreover, a parametrization algorithm decreased the Zeff discrepancy from real tissues at 80-140 kVp scans; for thyroid, the residual error was ≤ 0.18 units of Zeff (vs. 0.2 with the Gammex 467 phantom from a previous study). These results further suggest that a dual-energy algorithm in combination with stoichiometry can decrease errors in calculation of the ρe of real tissues to ameliorate inhomogeneity for dose calculation in radiotherapy treatment planning, especially when the energy spectrum of the X-ray tube of the CT machine is not available.

Entities:  

Keywords:  Dual-energy CT algorithm; Effective atomic number; Electron density; Multi-detector computed tomography; Radiotherapy treatment planning; Tissue characterization

Mesh:

Year:  2018        PMID: 29934836     DOI: 10.1007/s13246-018-0653-8

Source DB:  PubMed          Journal:  Australas Phys Eng Sci Med        ISSN: 0158-9938            Impact factor:   1.430


  2 in total

1.  Application of Dual-Energy Spectral Computed Tomography in Bone Mineral Density Measurement: Phantom and Clinical Research.

Authors:  Mingyue Wang; Yan Wu; Yue Zhou; Junqiang Dong; Shenshen Hu; Ping Hou; Jianbo Gao
Journal:  Int J Gen Med       Date:  2022-08-29

2.  Comparison of virtual non-contrast dual-energy CT and a true non-contrast CT for contouring in radiotherapy of 3D printed lung tumour models in motion: a phantom study.

Authors:  Dominik Alexander Hering; Kai Kröger; Ralf W Bauer; Hans Theodor Eich; Uwe Haverkamp
Journal:  Br J Radiol       Date:  2020-10-01       Impact factor: 3.039

  2 in total

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