Digital Twin and Ml-basEd MOdel of TEVAR Interventions
Recruiting now
Conditions studied: Aorta Disease, Aorta, Thoracic Pathologies
In brief
The study aims to collect clinical data and pseudonymized CT images of patients undergoing TEVAR in order to create an anatomical digital twin capable of simulating procedural outcomes and training machine learning (ML) algorithms. This approach will support predictive models that may assist physicians in selecting the optimal medical device, improving pre-TEVAR planning, and predicting post-TEVAR complications.
Key facts
- Study ID
- NCT07640828
- Run by
- Fondazione IRCCS Ca' Granda, Ospedale Maggiore Policlinico
- People needed
- 5000
- Starts
- 2026-02-11
- Expected to finish
- 2026-09-30
- Last updated by the study team
- 2026-06-11
Who can join
Age: 18 and older. Sex: any. Healthy volunteers: not accepted.
You may qualify if…
- ≥18 Years and older (Adult, Older Adult)
- Female and male
- Received TEVAR for: Chronic or acute dissection, Aneurysm, Penetrating aortic ulcer, aortic thrombus, intramural hematoma or traumatic injury
You may not qualify if…
- Younger than 18 years old
- Received TEVAR in surgical graft that replaced native aorta
- Poor CT image quality that leads to failure in generating a high-fidelity 3D FE model of patient anatomy (no preoperative multidetector contrast-enhanced CT-scan available, preoperative CTscan slice thickness greater than 1mm, preoperative CT-scan with artifacts, motion artifacts due to the presence of other implanted devices affecting the region of interest)
Where it is running
- Fondazione IRCCS Ca' Granda Ospedale Maggiore Policlinico — Milan, Italy (enrolling)
Full record on ClinicalTrials.gov
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