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Related Concept Videos

Glaucoma: Overview01:25

Glaucoma: Overview

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Glaucoma is an eye condition characterized by increased intraocular pressure that damages the retina and optic nerve, leading to irreversible blindness if left untreated. The human eye has various components, including the cornea, iris, pupil, lens, and optic nerve. Aqueous humor is secreted by the epithelium of the ciliary body in the posterior chamber and flows through the trabecular meshwork and canal of Schlemm, maintaining normal intraocular pressure. The trabecular meshwork and the canal...
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Open Angle Glaucoma: Treatment01:27

Open Angle Glaucoma: Treatment

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In open-angle glaucoma, the iridocorneal angle remains open, but the trabecular meshwork becomes stiff, slowing down the outflow of aqueous humor. This causes a buildup of aqueous humor in the anterior chamber, leading to a sudden increase in intraocular pressure. The treatment for open-angle glaucoma focuses on reducing the elevated intraocular pressure by either decreasing the secretion of aqueous humor or increasing its outflow.
Drugs such as carbonic anhydrase inhibitors, α2- and...
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Angle Closure Glaucoma: Treatment01:28

Angle Closure Glaucoma: Treatment

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Angle-closure glaucoma, or closed-angle glaucoma, is an eye condition where the iris bulges out and blocks the iridocorneal angle, resulting in a buildup of aqueous humor and increased intraocular pressure. Immediate medical attention is necessary due to the sudden onset of symptoms. The treatment for angle-closure glaucoma includes short-term and long-term approaches. Short-term treatment involves using eye drops like pilocarpine to lower intraocular pressure by increasing aqueous humor...
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Related Experiment Video

Updated: Jan 16, 2026

Assessing Early Stage Open-Angle Glaucoma in Patients by Isolated-Check Visual Evoked Potential
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Assessing Early Stage Open-Angle Glaucoma in Patients by Isolated-Check Visual Evoked Potential

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Clinically Informed Semi-Supervised Learning Improves Disease Annotation and Equity from Electronic Health Records: A

Mousa Moradi1, Rishi Shah1, Asahi Fujita2

  • 1Harvard Ophthalmology AI Lab, Schepens Eye Research Institute of Massachusetts Eye and Ear, Harvard Medical School, Boston, MA, United States.

Medrxiv : the Preprint Server for Health Sciences
|September 26, 2025
PubMed
Summary
This summary is machine-generated.

Ci-SSGAN, a novel AI framework, enhances disease characterization using clinical notes, improving accuracy and equity in patient data. This method offers better performance than traditional methods, especially for underrepresented groups.

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Area of Science:

  • Artificial Intelligence in Medicine
  • Clinical Informatics
  • Medical Data Analysis

Background:

  • Structured Electronic Health Record (EHR) data, like ICD codes, are often insufficient for detailed disease characterization.
  • Limitations in EHR data hinder accurate disease pathogenesis studies and AI system development.
  • Clinical notes offer rich information but are largely underutilized.

Purpose of the Study:

  • To introduce Ci-SSGAN (Clinically Informed Semi-Supervised Generative Adversarial Network), a novel framework to reannotate patient conditions using clinical text.
  • To improve the accuracy and equity of patient data for disease research and AI development.
  • To address limitations in current EHR data for complex disease characterization.

Main Methods:

  • Leveraging large-scale unlabeled clinical text for semi-supervised learning.
  • Utilizing a Generative Adversarial Network (GAN) architecture informed by clinical data.
  • Integrating demographic conditioning for equitable AI model performance.
  • Case study application to glaucoma using 2.1 million ophthalmology notes.

Main Results:

  • Ci-SSGAN achieved 0.85 accuracy and 0.95 AUROC for glaucoma annotation.
  • Demonstrated a 10.19% AUROC improvement over ICD-based labels (0.85 vs. 0.74).
  • Narrowed performance gaps in subgroups, showing F1 gains for Black patients (+0.05), women (+0.06), and younger patients (+0.033).

Conclusions:

  • Ci-SSGAN effectively reannotates patient conditions from clinical text with high accuracy and equity.
  • The framework significantly outperforms traditional ICD-based labeling for complex diseases like glaucoma.
  • Ci-SSGAN's semi-supervised approach and demographic conditioning reduce reliance on expert annotations, enhancing AI accessibility in healthcare.