Condition: Artificial Intelligence · Ultrasonography · Elasticity Imaging Techniques · Sponsor: Technische Universität Dresden
The goal of this clinical trial is to test the performance of neuronal networks trained on ultrasonic raw Data (=radiofrequency data) for the assessment of liver diseases in patients undergoing a clinical ultrasound examination. The general feasibility is currently evaluated in a retrospective cohort. The main questions the study aims to answer are: * Can a neuronal network trained on RF Data perform equally good as elastography in the assessment of diffuse liver diseases? * Can a neuronal network trained on RF Data perform better than a neuronal network trained on b-mode images in the assessment of diffuse liver diseases? * Can a neuronal network trained on RF Data distinguish focal pathologies in the liver from healthy tissue? To answer these questions participants with a clinically indicated fibroscan will undergo: * a clinical elastography in Case ob suspected diffuse liver disease * a reliable ground truth (if normal ultrasound is not sufficient e.g. contrast enhanced ultrasound, biopsy, MRI or CT) in case of focal liver diseases, depending on the standard routine of the participating center * a clinical ultrasound examination during which b-mode images and the corresponding RF-Data sets are captured
This description comes directly from the study's public registry record.
Moritz Herzog, MD · 0049 351 458 11501 · moritz.herzog@ukdd.de
Always discuss trial participation with your own doctor first.
| University Hospital | Dresden, Germany | Recruiting |
| Diakonissen Hospital Dresden | Dresden, Germany | Recruiting |
| University Hospital Halle (Saale) | Halle, Germany | Recruiting |
| University Hospital Leipzig | Leipzig, Germany | Recruiting |
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Source record: clinicaltrials.gov/study/NCT06317181