Gamma electron vertex imaging and application to beam range verification in proton therapy
Purpose: This paper describes a new gamma-ray imaging method, “gamma electron vertex imaging (GEVI),” which can be used for precise beam range verification in proton therapy. Methods: In GEVI imaging, the high-energy gammas from a source or nuclear interactions are first converted, by Compton scatte...
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Veröffentlicht in: | Medical physics (Lancaster) 2012-02, Vol.39 (2), p.1001-1005 |
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Format: | Artikel |
Sprache: | eng |
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Zusammenfassung: | Purpose:
This paper describes a new gamma-ray imaging method, “gamma electron vertex imaging
(GEVI),” which can be used for precise beam range verification in proton therapy.
Methods:
In GEVI imaging, the high-energy gammas from a source or nuclear interactions are
first converted, by Compton scattering, to electrons, which subsequently are traced by
hodoscopes to determine the location of the gamma source or the vertices of the
nuclear
interactions. The performance of GEVI imaging
for use in-beam range verification was evaluated by Monte Carlo simulations
employinggeant4 equipped with the QGSP_BIC_HP physics package.
Results:
Our simulation results show that GEVI imaging can determine the
proton beam
range very accurately, within 2–3 mm of error, even without any sophisticated analysis.
The results were obtained under simplified conditions of monoenergetic pencil beams
stopped in a homogeneous phantom and on the basis of the obtained results it is expected
to achieve submillimeter accuracy in proton beam range measurement.
Conclusions:
If future experimental work confirms the simulated results presented in this paper, the
use of GEVI imaging is expected to have a great potential in increasing the
accuracy of proton beam range verification in a patient, resulting in significant
improvement of treatment effectiveness by enabling tight conformation of radiation
dose to the
tumor volume and patient safety. |
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ISSN: | 0094-2405 2473-4209 |
DOI: | 10.1118/1.3662890 |