Detection of Systemic Diseases Such as Hepatobiliary Diseases From Ocular Images Via Deep Learning
Study Overview
Status
Status
Conditions
Conditions
Intervention / Treatment
Intervention / Treatment
Study Type
Study Type
Enrollment (Actual)
Enrollment
Contacts and Locations
Study Locations
-
-
Guangdong
-
Guangzhou, Guangdong, China, 510000
- Zhongshan Ophthalmic Center, Sun Yat-sen Univerisity
-
-
Participation Criteria
Eligibility Criteria
Eligibility Criteria
Ages Eligible for Study
- Adult
- Older Adult
Accepts Healthy Volunteers
Sampling Method
Study Population
Description
Inclusion Criteria:
- The quality of ocular images should clinical acceptable.
- Complete clinical information such as baseline demographic characteristics, the history of systematic diseases and so on.
Exclusion Criteria:
- Individuals diagnosed with severe eye diseases or acute systematic diseases.
- Incompatible with ocular examinations.
Study Plan
How is the study designed?
Design Details
Number of groups / cohorts
Cohorts and Interventions
Group / CohortGroup / Cohort |
Intervention / TreatmentIntervention / Treatment |
|---|---|
|
development dataset 01
ocular images collected from the Third Affiliated Hospital of Sun Yat-sen University
|
The training dataset was used to train the deep learning model, which was validated and tested by the other two datasets.
|
|
development dataset 02
ocular images collected from Pazhou Medical Centre of Aikang Health Care
|
The training dataset was used to train the deep learning model, which was validated and tested by the other two datasets.
|
|
test dataset 01
ocular images collected from the Third Affiliated Hospital of Sun Yat-sen University
|
The training dataset was used to train the deep learning model, which was validated and tested by the other two datasets.
|
|
test dataset 02
ocular images collected from Pazhou Medical Centre of Aikang Health Care
|
The training dataset was used to train the deep learning model, which was validated and tested by the other two datasets.
|
What is the study measuring?
Primary Outcome Measures
Primary Outcome Measures
Outcome Measure |
Measure Description |
Time Frame |
|---|---|---|
|
area under the receiver operating characteristic curve of the deep learning system
Time Frame: baseline
|
The investigators will calculate the area under the receiver operating characteristic curve of deep learning system and compare this index between deep learning system and human doctors
|
baseline
|
Secondary Outcome Measures
Secondary Outcome Measures
Outcome Measure |
Measure Description |
Time Frame |
|---|---|---|
|
sensitivity of the deep learning system
Time Frame: baseline
|
The investigators will calculate the sensitivity of deep learning system and compare this index between deep learning system and human doctors
|
baseline
|
|
specificity of the deep learning system
Time Frame: baseline
|
The investigators will calculate the specifity of deep learning system and compare this index between deep learning system and human doctors
|
baseline
|
Collaborators and Investigators
Sponsor
Sponsor
Collaborators
Collaborators
Study record dates
Study Major Dates
Study Start (Actual)
Study Start
Primary Completion (Actual)
Primary Completion
Study Completion (Actual)
Study Completion
Study Registration Dates
First Submitted
First Submitted
First Submitted That Met QC Criteria
First Submitted That Met QC Criteria
First Posted (Actual)
First Posted
Study Record Updates
Last Update Posted (Actual)
Last Update Posted
Last Update Submitted That Met QC Criteria
Last Update Submitted That Met QC Criteria
Last Verified
Last Verified
More Information
Terms related to this study
Additional Relevant MeSH Terms
Other Study ID Numbers
Other Study ID Numbers
- 2019KYPJ163
Plan for Individual participant data (IPD)
Plan to Share Individual Participant Data (IPD)?
Drug and device information, study documents
Studies a U.S. FDA-regulated drug product
Studies a U.S. FDA-regulated device product
This information was retrieved directly from the website clinicaltrials.gov without any changes. If you have any requests to change, remove or update your study details, please contact register@clinicaltrials.gov. As soon as a change is implemented on clinicaltrials.gov, this will be updated automatically on our website as well.
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