Concepedia

Publication | Closed Access

Large efficiency improvements in BEAMnrc using directional bremsstrahlung splitting

222

Citations

6

References

2004

Year

TLDR

The performance of DBS depends on the details of the accelerator being simulated. The introduction into the BEAMnrc code of a new variance reduction technique, called directional bremsstrahlung splitting (DBS), is described. DBS uses a combination of interaction splitting for bremsstrahlung, annihilation, Compton scattering, pair production and photoabsorption, and Russian Roulette to achieve a much better efficiency of photon beam treatment head simulations compared to the splitting techniques already available in BEAMnrc (selective bremsstrahlung splitting, SBS, and uniform bremsstrahlung splitting, UBS). DBS boosts photon fluence efficiency by more than 8× relative to SBS and over 20× versus UBS, raises total dose efficiency by 6.4× over SBS, and retains a 3.5–7× advantage over SBS even at higher energies or larger field sizes.

Abstract

The introduction into the BEAMnrc code of a new variance reduction technique, called directional bremsstrahlung splitting (DBS), is described. DBS uses a combination of interaction splitting for bremsstrahlung, annihilation, Compton scattering, pair production and photoabsorption, and Russian Roulette to achieve a much better efficiency of photon beam treatment head simulations compared to the splitting techniques already available in BEAMnrc (selective bremsstrahlung splitting, SBS, and uniform bremsstrahlung splitting, UBS). In a simulated photon beam ( field) photon fluence efficiency in the beam using DBS is over 8 times higher than with optimized SBS and over 20 times higher than with UBS, with a similar improvement in electron fluence efficiency in the beam. Total dose efficiency in a central‐axis depth‐dose curve improves by a factor of 6.4 over SBS at all depths in the phantom. The performance of DBS depends on the details of the accelerator being simulated. At higher energies, the relative improvement in efficiency due to DBS decreases somewhat, but is still a factor of 3.5 improvement over SBS for total dose efficiency using DBS in a simulated photon beam. Increasing the field size of the simulated beam to (broad beam) causes the relative efficiency improvement of DBS to decrease by a factor of but is still up to 7 times more efficient than with SBS.

References

YearCitations

Page 1