A simulation study on proton computed tomography (CT) stopping power accuracy using dual energy CT scans as benchmark

Authors

  • David C. Hansen Department of Oncology, Aarhus University Hospital, Aarhus, Denmark
  • Joao Seco Massachussetts General Hospital and Harvard Medical School, Boston, USA
  • Thomas Sangild Sørensen Department of Clinical Medicine, Aarhus University, Aarhus, Denmark
  • Jørgen Breede Baltzer Petersen Department of Medical Physics, Aarhus University Hospital, Denmark
  • Joachim E. Wildberger Department of Radiology, Maastricht University Medical Center (MUMC), The Netherlands
  • Frank Verhaegen Department of Radiation Oncology (MAASTRO), Maastricht University Medical Center (MUMC), Maastricht, the Netherlands; Medical Physics Unit, Department of Oncology, McGill University, Canada
  • Guillaume Landry Department of Radiation Oncology (MAASTRO), Maastricht University Medical Center (MUMC), Maastricht, the Netherlands; Faculty of Physics, Department of Medical Physics, Ludwig-Maximilians-University, Munich, Germany

DOI:

https://doi.org/10.3109/0284186X.2015.1061212

Abstract

Background. Accurate stopping power estimation is crucial for treatment planning in proton therapy, and the uncertainties in stopping power are currently the largest contributor to the employed dose margins. Dual energy x-ray computed tomography (CT) (clinically available) and proton CT (in development) have both been proposed as methods for obtaining patient stopping power maps. The purpose of this work was to assess the accuracy of proton CT using dual energy CT scans of phantoms to establish reference accuracy levels.

Material and methods. A CT calibration phantom and an abdomen cross section phantom containing inserts were scanned with dual energy and single energy CT with a state-of-the-art dual energy CT scanner. Proton CT scans were simulated using Monte Carlo methods. The simulations followed the setup used in current prototype proton CT scanners and included realistic modeling of detectors and the corresponding noise characteristics. Stopping power maps were calculated for all three scans, and compared with the ground truth stopping power from the phantoms.

Results. Proton CT gave slightly better stopping power estimates than the dual energy CT method, with root mean square errors of 0.2% and 0.5% (for each phantom) compared to 0.5% and 0.9%. Single energy CT root mean square errors were 2.7% and 1.6%. Maximal errors for proton, dual energy and single energy CT were 0.51%, 1.7% and 7.4%, respectively.

Conclusion. Better stopping power estimates could significantly reduce the range errors in proton therapy, but requires a large improvement in current methods which may be achievable with proton CT.

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Published

2015-10-21

How to Cite

Hansen, D. C., Seco, J., Sangild Sørensen, T., Baltzer Petersen, J. B., Wildberger, J. E., Verhaegen, F., & Landry, G. (2015). A simulation study on proton computed tomography (CT) stopping power accuracy using dual energy CT scans as benchmark. Acta Oncologica, 54(9), 1638–1642. https://doi.org/10.3109/0284186X.2015.1061212