Bibliography
References
References
- Siddon, Robert L. (1985). Fast calculation of the exact radiological path for a three-dimensional CT array. Medical Physics, 12(2), 252-255. https://doi.org/10.1118/1.595715
- Dance, D. R., Christofides, S., Maidment, A. D. A., McLean, I. D. and Ng, K.-H. (eds.) (2014). Diagnostic Radiology Physics: A Handbook for Teachers and Students. Vienna: International Atomic Energy Agency. https://www.iaea.org/publications/8841/diagnostic-radiology-physics
- U.S. Food and Drug Administration (n.d.). Medical X-ray Imaging. https://www.fda.gov/radiation-emitting-products/medical-imaging/medical-x-ray-imaging
- Betts, J. Gordon, Young, Kelly A., Wise, James A., Johnson, Eddie, Poe, Brandon, Kruse, Dean H., Korol, Oksana, Johnson, Jody E., Womble, Mark and DeSaix, Peter (2022). Anatomy and Physiology 2e. Houston, Texas: OpenStax. https://openstax.org/books/anatomy-and-physiology-2e/pages/1-6-anatomical-terminology
- DICOM Standards Committee (2026). DICOM PS3.3 2026c: Information Object Definitions. National Electrical Manufacturers Association. https://dicom.nema.org/medical/dicom/current/output/chtml/part03/PS3.3.html
- Hernandez, Andrew M. and Boone, John M. (2014). Tungsten anode spectral model using interpolating cubic splines: Unfiltered x-ray spectra from 20 kV to 640 kV. Medical Physics, 41(4), 042101. https://doi.org/10.1118/1.4866216
- Poludniowski, Gavin, Omar, Artur, Bujila, Robert and Andreo, Pedro (2021). Technical Note: SpekPy v2.0—a software toolkit for modeling x-ray tube spectra. Medical Physics, 48(7), 3630-3637. https://doi.org/10.1002/mp.14945
- Hubbell, J. H. and Seltzer, S. M. (1995). Tables of X-Ray Mass Attenuation Coefficients and Mass Energy-Absorption Coefficients 1 keV to 20 MeV for Elements Z = 1 to 92 and 48 Additional Substances of Dosimetric Interest. Gaithersburg, Maryland: National Institute of Standards and Technology. https://doi.org/10.6028/NIST.IR.5632
- Berger, M. J., Hubbell, J. H., Seltzer, S. M., Chang, J., Coursey, J. S., Sukumar, R., Zucker, D. S. and Olsen, K. (2010). XCOM: Photon Cross Sections Database. National Institute of Standards and Technology. https://doi.org/10.18434/T48G6X
- Brooks, R. A. and Di Chiro, G. (1976). Beam hardening in X-ray reconstructive tomography. Physics in Medicine and Biology, 21(3), 390-398. https://doi.org/10.1088/0031-9155/21/3/004
- Alvarez, R. E. and Macovski, A. (1976). Energy-selective reconstructions in X-ray computerised tomography. Physics in Medicine and Biology, 21(5), 733-744. https://doi.org/10.1088/0031-9155/21/5/002
- Alvarez, Robert (2017). Conditions for the invertibility of dual energy data. arXiv. https://doi.org/10.48550/arXiv.1711.10836
- Siewerdsen, Jeffrey H. and Jaffray, David A. (2001). Cone-beam computed tomography with a flat-panel imager: Magnitude and effects of x-ray scatter. Medical Physics, 28(2), 220-231. https://doi.org/10.1118/1.1339879
- Xu, J., Zbijewski, W., Gang, G., Stayman, J. W., Taguchi, K., Lundqvist, M., Fredenberg, E., Carrino, J. A. and Siewerdsen, J. H. (2014). Cascaded systems analysis of photon counting detectors. Medical Physics, 41(10), 101907. https://doi.org/10.1118/1.4894733
- Prakash, P., Zbijewski, W., Gang, G. J., Ding, Y., Stayman, J. W., Yorkston, J., Carrino, J. A. and Siewerdsen, J. H. (2011). Task-based modeling and optimization of a cone-beam CT scanner for musculoskeletal imaging. Medical Physics, 38(10), 5612-5629. https://doi.org/10.1118/1.3633937
- Schneider, Uwe, Pedroni, Eros and Lomax, Antony (1996). The calibration of CT Hounsfield units for radiotherapy treatment planning. Physics in Medicine and Biology, 41(1), 111-124. https://doi.org/10.1088/0031-9155/41/1/009
- Rauch, Phillip, Lin, Pei-Jan Paul, Balter, Stephen, Fukuda, Atsushi, Goode, Allen, Hartwell, Gary, LaFrance, Terry, Nickoloff, Edward, Shepard, Jeff and Strauss, Keith (2012). Functionality and operation of fluoroscopic automatic brightness control/automatic dose rate control logic in modern cardiovascular and interventional angiography systems: A Report of Task Group 125 Radiography/Fluoroscopy Subcommittee, Imaging Physics Committee, Science Council. Medical Physics, 39(5), 2826-2828. https://doi.org/10.1118/1.4704524
- Otake, Yoshito, Wang, Adam S., Stayman, J. Webster, Uneri, Ali, Kleinszig, Gerhard, Vogt, Sebastian, Khanna, A. Jay, Gokaslan, Ziya L. and Siewerdsen, Jeffrey H. (2013). Robust 3D–2D image registration: application to spine interventions and vertebral labeling in the presence of anatomical deformation. Physics in Medicine and Biology, 58(23), 8535-8553. https://doi.org/10.1088/0031-9155/58/23/8535
- International Atomic Energy Agency (n.d.). Radiation doses in interventional procedures. Radiation Protection of Patients. https://www.iaea.org/resources/rpop/health-professionals/interventional-procedures/radiation-doses-in-interventional-fluoroscopy
- Max, N. (1995). Optical models for direct volume rendering. IEEE Transactions on Visualization and Computer Graphics, 1(2), 99-108. https://doi.org/10.1109/2945.468400
- Swank, Robert K. (1973). Absorption and noise in x-ray phosphors. Journal of Applied Physics, 44(9), 4199-4203. https://doi.org/10.1063/1.1662918
- Gopalakrishnan, Vivek and Golland, Polina (2023). Fast Auto-differentiable Digitally Reconstructed Radiographs for Solving Inverse Problems in Intraoperative Imaging. Clinical Image-Based Procedures, 13746, 1-11. Cham: Springer. https://doi.org/10.1007/978-3-031-23179-7_1
- Gopalakrishnan, Vivek, Dey, Neel and Golland, Polina (2024). Intraoperative 2D/3D Image Registration via Differentiable X-ray Rendering. Proceedings of the IEEE/CVF Conference on Computer Vision and Pattern Recognition, 11662-11672. https://doi.org/10.1109/CVPR52733.2024.01108
- PyTorch contributors (2026). Autograd mechanics. PyTorch documentation. https://docs.pytorch.org/docs/2.14/notes/autograd.html
- Lynch, Kevin M. and Park, Frank C. (2017). Modern Robotics: Mechanics, Planning, and Control. Cambridge University Press. https://doi.org/10.1017/9781316661239
- Geant4 Collaboration (n.d.). Physics Reference Manual: True Step Length. https://geant4.web.cern.ch/documentation/pipelines/master/prm_html/PhysicsReferenceManual/generalities/particletransport/occurence.html
- Geant4 Collaboration (n.d.). Physics Reference Manual: Compton Scattering. https://geant4.web.cern.ch/documentation/pipelines/master/prm_html/PhysicsReferenceManual/electromagnetic/gamma_incident/compton/compton.html
- Mohamed, Shakir, Rosca, Mihaela, Figurnov, Michael and Mnih, Andriy (2020). Monte Carlo Gradient Estimation in Machine Learning. Journal of Machine Learning Research, 21(132), 1-62. https://jmlr.org/papers/v21/19-346.html
- Li, Tzu-Mao, Aittala, Miika, Durand, Frédo and Lehtinen, Jaakko (2018). Differentiable Monte Carlo Ray Tracing through Edge Sampling. ACM Transactions on Graphics, 37(6), 222:1-222:11. https://doi.org/10.1145/3272127.3275109
- Vicini, Delio, Speierer, Sébastien and Jakob, Wenzel (2021). Path Replay Backpropagation: Differentiating Light Paths using Constant Memory and Linear Time. ACM Transactions on Graphics, 40(4), 108:1-108:14. https://doi.org/10.1145/3450626.3459804
- NVIDIA Corporation (n.d.). CUDA Math API Reference Manual 13.0: Single Precision Mathematical Functions. https://docs.nvidia.com/cuda/archive/13.0.0/cuda-math-api/cuda_math_api/group__CUDA__MATH__SINGLE.html
- Whitehead, Nathan and Fit-Florea, Alex (n.d.). Floating Point and IEEE 754. NVIDIA Corporation. https://docs.nvidia.com/cuda/archive/13.0.0/floating-point/index.html
- NVIDIA Warp contributors (n.d.). Warp 1.17.0: Tape implementation. https://github.com/NVIDIA/warp/blob/v1.17.0/warp/_src/tape.py
- Liu, Dong C. and Nocedal, Jorge (1989). On the limited memory BFGS method for large scale optimization. Mathematical Programming, 45(1–3), 503–528. https://doi.org/10.1007/BF01589116
- Salmon, John K., Moraes, Mark A., Dror, Ron O. and Shaw, David E. (2011). Parallel random numbers: As easy as 1, 2, 3. Proceedings of 2011 International Conference for High Performance Computing, Networking, Storage and Analysis (SC '11). Association for Computing Machinery. https://doi.org/10.1145/2063384.2063405
- Zhao, Can, Guo, Pengfei, Yang, Dong, He, Yufan, Tang, Yucheng, Simon, Benjamin, Belue, Mason, Harmon, Stephanie, Turkbey, Baris and Xu, Daguang (2026). MAISI-v2: Accelerated 3D High-Resolution Medical Image Synthesis with Rectified Flow and Region-specific Contrastive Loss. Proceedings of the AAAI Conference on Artificial Intelligence, 40(15), 13088-13098. https://doi.org/10.1609/aaai.v40i15.38309
- Momeni, Mohammadhossein, Gopalakrishnan, Vivek, Dey, Neel, Golland, Polina and Frisken, Sarah (2024). Differentiable Voxel-based X-ray Rendering Improves Sparse-View 3D CBCT Reconstruction. arXiv. https://doi.org/10.48550/arXiv.2411.19224
- Burger, M, Hauptmann, A, Helin, T, Hyvönen, N and Puska, J-P (2021). Sequentially optimized projections in x-ray imaging. Inverse Problems, 37(7), 075006. https://doi.org/10.1088/1361-6420/ac01a4
- Hayakawa, Carole K., Spanier, Jerome and Venugopalan, Vasan (2014). Comparative analysis of discrete and continuous absorption weighting estimators used in Monte Carlo simulations of radiative transport in turbid media. Journal of the Optical Society of America A, 31(2), 301–311. https://doi.org/10.1364/JOSAA.31.000301
- Hayakawa, Carole K., Spanier, Jerome and Venugopalan, Vasan (2021). Comparative analysis of discrete and continuous absorption weighting estimators used in Monte Carlo simulations of radiative transport in turbid media: erratum. Journal of the Optical Society of America A, 38(5), 749. https://doi.org/10.1364/JOSAA.427204
- Chen, R., Menickelly, M. and Scheinberg, K. (2018). Stochastic optimization using a trust-region method and random models. Mathematical Programming, 169(2), 447–487. https://doi.org/10.1007/s10107-017-1141-8
- Barzilai, Jonathan and Borwein, Jonathan M. (1988). Two-Point Step Size Gradient Methods. IMA Journal of Numerical Analysis, 8(1), 141–148. https://doi.org/10.1093/imanum/8.1.141