A gradient-based approach to fast and accurate head motion compensation in cone-beam CT
Mareike Thies, Fabian Wagner, Noah Maul, Haijun Yu, Manuela Goldmann,, Linda-Sophie Schneider, Mingxuan Gu, Siyuan Mei, Lukas Folle, Alexander, Preuhs, Michael Manhart, Andreas Maier

TL;DR
This paper presents a fast, gradient-based method for head motion compensation in cone-beam CT, significantly improving image quality and processing speed for clinical applications like stroke assessment.
Contribution
It introduces a novel gradient-based optimization algorithm leveraging generalized derivatives for rapid and accurate head motion estimation in cone-beam CT.
Findings
Achieves 19-fold speed-up over existing methods
Reduces reprojection error from 3mm to 0.61mm
Demonstrates superior performance in realistic head anatomy experiments
Abstract
Cone-beam computed tomography (CBCT) systems, with their flexibility, present a promising avenue for direct point-of-care medical imaging, particularly in critical scenarios such as acute stroke assessment. However, the integration of CBCT into clinical workflows faces challenges, primarily linked to long scan duration resulting in patient motion during scanning and leading to image quality degradation in the reconstructed volumes. This paper introduces a novel approach to CBCT motion estimation using a gradient-based optimization algorithm, which leverages generalized derivatives of the backprojection operator for cone-beam CT geometries. Building on that, a fully differentiable target function is formulated which grades the quality of the current motion estimate in reconstruction space. We drastically accelerate motion estimation yielding a 19-fold speed-up compared to existing…
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Taxonomy
TopicsMedical Imaging Techniques and Applications · Advanced X-ray and CT Imaging · Acute Ischemic Stroke Management
