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Updated: Aug 7, 2026

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End-to-End Differentiable Photon Counting CT
We developed a novel differentiable photon-counting CT (PCCT) imaging framework. This enables quantitative imaging through end-to-end optimization, improving accuracy and reducing manual intervention for various imaging tasks.
Area of Science:
- Medical Imaging
- Computational Imaging
- Photon-Counting CT
Background:
- Quantitative imaging is crucial for spectral X-ray and CT systems.
- Photon-counting CT (PCCT) achieves quantitative imaging via material decomposition (MD).
- Current methods often require manual intervention and lack end-to-end optimization.
Purpose of the Study:
- To present a novel framework for end-to-end differentiable PCCT imaging.
- To enable cross-domain learning and optimization for upstream models using quantitative image data.
- To automate and adapt solutions for imaging tasks, achieving quantitative imaging computationally.
Main Methods:
- Developed a differentiable framework for the PCCT imaging chain.
- Made material decomposition (MD) differentiable using the Implicit Function Theorem.
- Integrated the differentiable MD as a layer for end-to-end optimization.
Main Results:
- The framework allows end-to-end training without direct-domain supervision.
- Demonstrated applicability in correcting detector energy bin drift.
- Successfully trained an object scatter correction network using quantitative material images.
Conclusions:
- The differentiable PCCT framework facilitates quantitative imaging through computation.
- Enables adaptive solutions for diverse imaging tasks by leveraging quantitative image information.
- Offers a powerful approach for optimizing imaging systems and improving image quality.
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