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Study identifier: NCT06350201 Synced from ClinicalTrials.gov · July 29, 2026
● Recruiting

Machine Learning-based Classification of Symptom Clusters and Online CBT

Condition: Depression and Anxiety Symptom  ·  Sponsor: Wuhan Mental Health Centre

PhaseNA
Planned participants380
Who can joinAll sexes, 18 Years to 64 Years
Healthy volunteersNo

About this study

To breakthrough the bottleneck identified, we will conduct a cross-sectional study to develop a symptom clustering model for depression and anxiety. A wide range of statistical methods as well as machine learning approaches were explored, and a cohesive hierarchical clustering algorithm will be used. After developing the model, a symptom-matched intervention program based on problem solving therapy will be formulated. We are supposed to examine whether its use for personalizing symptom-matched psychological treatment can lead to improved patient outcomes, compared with usual care. This project is expected to provide a new and precise method for the emotion management, which will provide a standardized intervention pathway combining screening with treatment for the management of depression symptom and anxiety symptom. A preciser intervention matched to individual symptoms may provide important insight in improving patient outcome as well as a standardized mood management pathway targeting to the early detection and intervention for community residents.

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

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Locations (1)

Renmin Hospital of Wuhan UniversityWuhan, ChinaRecruiting

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Source record: clinicaltrials.gov/study/NCT06350201