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 employing GEANT4 equipped with the QGSP_BIC_HP physics package. Results: Our simulation results show that GEVI imaging can determine the proton beam range very accurately, withi...
Particle therapy (PT), including proton therapy, has important advantages compared to external beam ...
Treatments delivered by proton therapy are affected by uncertainties on the range of the beam within...
Prompt gamma (PG) imaging is widely investigated for spot-by-spot in vivo range verification for pro...
The major paradigm in the treatment of cancer has been to develop and improve methods for more focus...
Background and purpose: To improve precision of particle therapy, in vivo range verification is high...
Proton beam usage to treat cancer has recently experienced rapid growth, as it offers the ability to...
Particle therapy is an advanced cancer therapy that uses a feature known as the Bragg peak, in which...
Protons are used in radiation therapy of cancerous tissue as they have the potential benefit of spar...
The mechanical-collimation imaging is the most mature technology in prompt gamma (PG) imaging which ...
Treatments delivered by proton therapy are affected by uncertainties on the range of the beam within...
Treatments delivered by proton therapy are affected by uncertainties on the range of the beam within...
Purpose: A prompt gamma (PG) slit camera prototype recently demonstrated 1‐2 mm accuracy for the det...
In-vivo imaging is a strategy to monitor the range of protons inside the patient during radiation tr...
In a growing number of cutting edge centres around the world, radiotherapy treatments delivered by b...
Particle therapy (PT), including proton therapy, has important advantages compared to external beam ...
Treatments delivered by proton therapy are affected by uncertainties on the range of the beam within...
Prompt gamma (PG) imaging is widely investigated for spot-by-spot in vivo range verification for pro...
The major paradigm in the treatment of cancer has been to develop and improve methods for more focus...
Background and purpose: To improve precision of particle therapy, in vivo range verification is high...
Proton beam usage to treat cancer has recently experienced rapid growth, as it offers the ability to...
Particle therapy is an advanced cancer therapy that uses a feature known as the Bragg peak, in which...
Protons are used in radiation therapy of cancerous tissue as they have the potential benefit of spar...
The mechanical-collimation imaging is the most mature technology in prompt gamma (PG) imaging which ...
Treatments delivered by proton therapy are affected by uncertainties on the range of the beam within...
Treatments delivered by proton therapy are affected by uncertainties on the range of the beam within...
Purpose: A prompt gamma (PG) slit camera prototype recently demonstrated 1‐2 mm accuracy for the det...
In-vivo imaging is a strategy to monitor the range of protons inside the patient during radiation tr...
In a growing number of cutting edge centres around the world, radiotherapy treatments delivered by b...
Particle therapy (PT), including proton therapy, has important advantages compared to external beam ...
Treatments delivered by proton therapy are affected by uncertainties on the range of the beam within...
Prompt gamma (PG) imaging is widely investigated for spot-by-spot in vivo range verification for pro...