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An Interpretable Fundus Diseases Report Generating System Based On Weakly Labelings
Sponsor: Zhongshan Ophthalmic Center, Sun Yat-sen University
Summary
To establish a multimodal fundus image report generation model to realize an interpretable system for multiple fundus diseases, multimodal image analysis, diagnosis, and treatment decision automatic reporting based on weakly labeled training data. Construct an interpretable feature fusion network for the clinical and imaging features of fundus lesions, and we hope to extract new imaging markers that can predict the occurrence and progression of various fundus lesions at an early stage, and ultimately verify them in real clinical data, further providing possible directions for exploring the molecular mechanisms of refractory fundus lesions, and may also provide new ideas for the precise prevention and treatment of fundus lesions.
Official title: To Construct an Interpretable Multi-modal Report Generating System For Fundus Diseases Based On Weakly Labelings
Key Details
Gender
All
Age Range
Any - Any
Study Type
OBSERVATIONAL
Enrollment
9999
Start Date
2025-05
Completion Date
2026-12
Last Updated
2025-04-09
Healthy Volunteers
Yes
Conditions
Interventions
With fundus diseases
With fundus diseases
Without fundus diseases
Without fundus diseases
Locations (1)
Zhongshan Ophthalmic Center
Guangzhou, Guangdong, China