Title of article :
Investigation of the Scaling Formula Accuracy for Poly-energetic Kernel Calculation in 6 MV Photon Beam
Author/Authors :
Hadisinia ، Tahereh Department of Medical physics - Tehran University of Medical Science , Geraily ، Ghazale Department of Medical physics - Tehran University of Medical Science , Etesami ، Mohsen School of Particles and Accelerators - Institute for Research in Fundamental Sciences (IPM) , Hoseini-Ghahfarokhi ، Mojtaba Department of Radiology and Nuclear Medicine - School of Paramedical Sciences - Kermanshah University of Medical Sciences , Mahmoudi ، Atefeh Department of Medical Physics - Iran University of Medical Sciences , Farzin ، Mostafa Brain and Spinal Cord Injury Research Center, Neuroscience Institute, Radiation Oncology Research Center, Cancer Institute - Tehran University of Medical Science , Maleki ، Maryam Department of Medical Physics - Isfahan University of Medical Sciences
Abstract :
Background: Dose distribution can be obtained from total energy released per unit mass (TERMA) and inhomogeneous energy deposition kernel (EDK) convolu tion. Since inhomogeneous EDK data is location-dependent, it is calculated by em ploying the density scaling method rather than Monte Carlo based user code EDKnrc. Objective: The present study aimed at investigating EDK scaling formula ac curacy in the presence of lung and bone inhomogeneities. Material and Methods: In this theoretical-practical study, six EDKs datasets with lung and bone inhomogeneity in different radii were generated using EDKnrc user code and density scaling formula. Then the scaling method data and correspond ing EDKnrc-generated ones were compared to enhance the calculations, and some correction factors for error reduction were also derived to create more consistency between these data. Results: The study has shown that the errors in the theoretical method for cal culating inhomogeneous EDKs were significantly reduced based on the attenuation coefficient and ρα rel parameter, with α equal to 1.2 and 0.8 for bone and lung voxels, respectively. Conclusion: Although the density scaling method has acceptable accuracy, the error values are significant at the location of lung or bone voxels. By using the mentioned correction factors, the calculation inaccuracy of heterogeneous EDKs can be reduced down to 5%. However, the lung heterogeneity results corrected by the method are not as good as the bone cases.
Keywords :
Radiosurgery , Monte Carlo Method , Kernel , Dose , Varian , Superposition , Energy Transfer , Scattering
Journal title :
Journal of Biomedical Physics and Engineering
Journal title :
Journal of Biomedical Physics and Engineering