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CEVAR: Centerline Embedding Extraction for Endovascular Aneurysm Repair
June 14, 2026 Β· Grace Period Β· π MICCAI 2026
Authors
Roman Naeem, Timo Niiniskorpi, Charlotte SandstrΓΆm, Naman Desai, Anders Jeppsson, Ida HΓ€ggstrΓΆm, Fredrik Kahl, HΓ₯kan Roos, Jennifer AlvΓ©n
arXiv ID
2606.15667
Category
cs.CV: Computer Vision
Citations
0
Venue
MICCAI 2026
Abstract
Long-term mortality rates after endovascular aneurysm repair (EVAR) remain elevated due to post-EVAR rupture caused by loss of seal in stent graft sealing zones. Structured CT review using centerline measurements improves detection, but current workflows require manual centerline editing and expert operators. We propose a transformer framework for automated, protocol-driven sealing zone assessment that combines 3D centerline tracking with embedding-based geometric prediction. Two state-of-the-art image-to-graph models are evaluated for aorto-iliac centerline extraction from follow-up CT and for measurement of stent position, vessel diameters, and seal lengths according to EVAR4C protocol. Across the full test set and a challenging no-contrast subset, the proposed fully automatic method outperforms the commercial semi-automatic workflow.
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