Patient-Specific Stopping Power Calibration of Treatment Planning X-Ray CT Using Integrated Depth-Dose Profiles Acquired by Proton Transmission Imaging - A Feasibility Study
- Journal
- Physics in medicine and biology (Q1)
- Published
- 27 August 2026
- Study design
- Unclassified
- Evidence level
- Level 5, Expert Opinion (CEBM 5)
- Authors
- Ines Butz, Katia Parodi, Chiara Gianoli
- PMID
- 42660181
- DOI
- 10.1088/1361-6560/ae9fb0
Why clinicians should know about it
- Picked for Medical Physics (paper of the day, 31 August 2026): Patient‑specific stopping‑power calibration using proton IDDs
Abstract
Range uncertainties in proton therapy largely arise from the semi-empirical conversion of X-ray computed tomography (CT) Hounsfield Units to stopping power relative to water (RSP), requiring generous safety margins or robust optimization. Pencil beam-wise integrated depth-dose profiles (IDDs), obtained via proton transmission imaging using a particle integrating detector, can be combined with the treatment planning CT to obtain patient-specific conversion curves. Existing calibration approaches rely on projection images or water-equivalent path length (WEPL) histograms derived from IDDs via signal decomposition or deconvolution. A direct optimization approach based on the acquired IDD signal is proposed, avoiding the need for decomposition or deconvolution and their associated WEPL accuracy and resolution limitations.
Approach: The RSP conversion curve is iteratively optimized using Monte Carlo-simulated IDDs acquired from two orthogonal projection angles in a line-scan proton imaging setup. The differentiable implementation of the forward projection operator is embedded in a gradient-based optimization scheme.
Main results: The proposed IDD-based optimization approach significantly reduces the calibration error compared to the initial guess. The median mean absolute percentage error on a set of axial CT slices decreases from 1.88% to 0.58%, with a median computation time of 5.47 hours per slice. The optimized calibration improves dose accuracy for an exemplary treatment pencil beam. Increasing the spot spacing by a factor of ten decreases the computation time to 0.60 hours with minimal loss of accuracy. Using a single projection angle yields comparable results to using both projections (0.64% vs. 0.57%). With current detector depth resolutions of ~2 mm, calibration accuracy of ~0.7% is achievable, with potential improvements using finer-resolution detectors.
Significance: Particle integrating detectors offer potential for clinical translation due to lower cost and complexity. Direct optimization on IDDs using a differentiable forward operator enables accurate, fully automated calibration, improving upon earlier manual IDD-based or automated WEPL-based approaches.
Abstract as published, via PubMed.
For healthcare professionals. The summary is generated by AI from the published abstract, and the evidence level is assigned automatically from the study design on the Oxford CEBM hierarchy. Neither is medical advice. Read the full paper before changing practice.