Actively Recruiting
Deep Learning for Histopathological Classification and Prognostication of Gynaecologic Smooth Muscle Tumours
Led by Institut Bergonié · Updated on 2026-01-15
392
Participants Needed
1
Research Sites
156 weeks
Total Duration
On this page
AI-Summary
What this Trial Is About
Smooth muscle tumors of the uterus that do not fit the diagnostic criteria of benignity (such as leiomyomas) or malignancy (such as leiomyosarcomas) are called STUMP (smooth muscle tumor of uncertain malignant potential). A potential solution to this problem could be the application of predictive models using artificial intelligence (AI) to aid in the histopathological classification and prognosis of gynecological smooth muscle tumors. Deep learning using convolutional neural networks represents a specific class of machine learning, in which predictive models are trained by considering small groups of pixels in digital images and iteratively identifying salient features. In this study, we aim to develop deep learning models capable of accurately subclassifying and predicting the prognosis of gynecological smooth muscle tumors, based on histopathological features of hematoxylin and eosin (H\&E) slides. The aim is to develop a diagnostic and prognostic algorithm to help pathologists better classify and diagnose uterine smooth muscle tumors and predict their clinical course.
CONDITIONS
Official Title
Deep Learning for Histopathological Classification and Prognostication of Gynaecologic Smooth Muscle Tumours
Who Can Participate
Eligibility Criteria
You may qualify if you...
- Patients with a diagnosis of uterine smooth muscle tumors (leiomyomas, smooth muscle tumors of uncertain malignancy and leiomyosarcomas), registered in the RRePS database and/or treated at Institut Bergonié or one of the participating centers.
- Histopathological material available (kerosene blocks and/or slides).
- The follow-up (outcome) is required for each LMS/ STUMP.
You will not qualify if you...
- na
AI-Screening
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Trial Site Locations
Total: 1 location
1
Institut Bergonie
Bordeaux, France
Actively Recruiting
Research Team
S
Sabrina CROCE
CONTACT
How is the study designed?
Study Type
OBSERVATIONAL
Masking
N/A
Allocation
N/A
Model
N/A
Primary Purpose
N/A
Number of Arms
2
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