RecruitingNCT06851429

Ovarian Cancer Identification on CT Using Deep Learning

Development and Validation of a Deep Learning Model for Ovarian Cancer Identification on CT: A Nationwide Population-Based and International Study


Sponsor

Chang Gung Memorial Hospital

Enrollment

12,578 participants

Start Date

Sep 1, 2022

Study Type

OBSERVATIONAL

Conditions

Summary

Ovarian cancer remains the deadliest gynecologic malignancy, with poor survival rates largely due to late-stage diagnosis. Early detection is crucial, yet no universally accepted screening method exists. Current imaging techniques and biomarkers, such as CA-125, have limitations in specificity and sensitivity. This study aims to develop and evaluate a deep learning-based computer-aided diagnosis tool (CAT-OV), for ovarian cancer detection using CT imaging. The system integrates a Body Part Regression (BPR) model for pelvic localization and a Multiple Instance Learning (MIL) ensemble classifier for cancer prediction. The model was trained and validated using retrospective datasets from Taiwan, the United States, and a nationwide real-world cohort. Stringent preprocessing and quality control measures were implemented to enhance model accuracy. Results highlight the potential of AI-driven CT screening in improving early detection, though further validation is needed for clinical adoption.


Eligibility

Sex: FEMALEMin Age: 20 Years

Plain Language Summary

Simplified for easier understanding

This clinical trial is studying a new treatment for people with ovarian cancer. The study is currently recruiting participants at 2 locations. People eligible for this study include women aged 20 Years and older.

This summary was AI-generated to explain the trial in plain language. It is not medical advice. Always discuss eligibility with your doctor before enrolling in a clinical trial.

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Locations(2)

Chang Gung Memorial Hospital

Taoyuan City, Guishan District, Taiwan

Department of Medical Imaging and Intervention, Chang Gung Memorial Hospital

Taoyuan, Guishan, Taiwan

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NCT06851429


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