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arXiv · 2609.22032

Model-Based Iterative Reconstruction with View-Dependent Detector Displacements for Cone-Beam CT

Abstract

Detector shifting is used in industrial cone-beam computed tomography to reduce ring artifacts, but the resulting detector motion can vary nonuniformly across projection views and produce detector positions that cannot be represented by fixed offsets. Although analytical reconstruction can accommodate this motion, approaches that use projection interpolation or rebinning may limit spatial resolution and introduce artifacts. MBIR provides an alternative by representing the acquisition geometry explicitly within the reconstruction model. Existing separable distance-driven MBIR formulations assume fixed detector geometry across projection views and therefore cannot directly represent nonuniform motion in both detector dimensions, as this motion changes the voxel-to-detector mapping. We extend the separable distance-driven MBIR model to incorporate recorded horizontal and vertical detector displacements into the distance-driven overlap computation while leaving measured projections unchanged. Forward-projection validation achieved an NRMSE of 0.0338 across 1080 views. The proposed model achieved a 3D SSIM of 0.9404 and NRMSE of 0.0406, compared with 0.5396 and 0.1740 for fixed-detector MBIR. A second industrial dataset showed reduced structured artifacts compared with FDK.

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Doga Topcicek, Sharmin Majumder, Whitney A. Poling, Dmitriy D. Bruder, Zhili Feng, Dali Wang, Xiao Wang. 2026-09-18. Model-Based Iterative Reconstruction with View-Dependent Detector Displacements for Cone-Beam CT. https://arxiv.org/abs/2609.22032

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