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Study identifier: NCT07235410 Synced from ClinicalTrials.gov · July 29, 2026
● Recruiting

Deep Learning-Based Multidimensional Body Composition Mapping for Outcome Prediction in HCC Patients Undergoing TACE

Condition: Hepatocellular Carcinoma  ·  Sponsor: Union Hospital, Tongji Medical College, Huazhong University of Science and Technology

PhaseN/A
Planned participants300
Who can joinAll sexes, 18 Years to no upper limit
Healthy volunteersNo

About this study

Hepatocellular carcinoma (HCC) is a common liver cancer, and many patients cannot receive surgery. For these patients, transarterial chemoembolization (TACE) is an important treatment. However, patients often respond differently to TACE, and it is difficult to predict who will benefit most. This study uses deep learning to automatically analyze routine CT images taken before TACE. By measuring body composition features, such as the size and condition of different abdominal organs and tissues, we aim to better understand patients' overall health status and treatment tolerance. The goal is to develop a prediction model that can help doctors estimate survival and treatment outcomes more accurately. This may assist in making more personalized treatment decisions and improving patient care.

This description comes directly from the study's public registry record.

Talk to the study team

Yuanyuan Chu  ·  +8602785726375  ·  whunionlunli@126.com

Always discuss trial participation with your own doctor first.

Locations (1)

Union Hospital, Tongji Medical College, Huazhong University of Science and TechnologyWuhan, Hubei, ChinaRecruiting

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Source record: clinicaltrials.gov/study/NCT07235410