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A Framework for Automating Psychiatric Distress Screening in Ophthalmology Clinics Using an EHR-Derived AI Algorithm.

Publication ,  Journal Article
Berchuck, SI; Jammal, AA; Page, D; Somers, TJ; Medeiros, FA
Published in: Transl Vis Sci Technol
October 3, 2022

PURPOSE: In patients with ophthalmic disorders, psychosocial risk factors play an important role in morbidity and mortality. Proper and early psychiatric screening can result in prompt intervention and mitigate its impact. Because screening is resource intensive, we developed a framework for automating screening using an electronic health record (EHR)-derived artificial intelligence (AI) algorithm. METHODS: Subjects came from the Duke Ophthalmic Registry, a retrospective EHR database for the Duke Eye Center. Inclusion criteria included at least two encounters and a minimum of 1 year of follow-up. Presence of distress was defined at the encounter level using a computable phenotype. Risk factors included available EHR history. At each encounter, risk factors were used to discriminate psychiatric status. Model performance was evaluated using area under the receiver operating characteristic (ROC) curve and area under the precision-recall curve (PR AUC). Variable importance was presented using odds ratios (ORs). RESULTS: Our cohort included 358,135 encounters from 40,326 patients with an average of nine encounters per patient over 4 years. The ROC and PR AUC were 0.91 and 0.55, respectively. Of the top 25 predictors, the majority were related to existing distress, but some indicated stressful conditions, including chemotherapy (OR = 1.36), esophageal disorders (OR = 1.31), central pain syndrome (OR = 1.25), and headaches (OR = 1.24). CONCLUSIONS: Psychiatric distress in ophthalmology patients can be monitored passively using an AI algorithm trained on existing EHR data. TRANSLATIONAL RELEVANCE: When paired with an effective referral and treatment program, such algorithms may improve health outcomes in ophthalmology.

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Published In

Transl Vis Sci Technol

DOI

EISSN

2164-2591

Publication Date

October 3, 2022

Volume

11

Issue

10

Start / End Page

6

Location

United States

Related Subject Headings

  • Retrospective Studies
  • Ophthalmology
  • Electronic Health Records
  • Artificial Intelligence
  • Algorithms
  • 3212 Ophthalmology and optometry
  • 1113 Opthalmology and Optometry
  • 0903 Biomedical Engineering
 

Citation

APA
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ICMJE
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Berchuck, S. I., Jammal, A. A., Page, D., Somers, T. J., & Medeiros, F. A. (2022). A Framework for Automating Psychiatric Distress Screening in Ophthalmology Clinics Using an EHR-Derived AI Algorithm. Transl Vis Sci Technol, 11(10), 6. https://doi.org/10.1167/tvst.11.10.6
Berchuck, Samuel I., Alessandro A. Jammal, David Page, Tamara J. Somers, and Felipe A. Medeiros. “A Framework for Automating Psychiatric Distress Screening in Ophthalmology Clinics Using an EHR-Derived AI Algorithm.Transl Vis Sci Technol 11, no. 10 (October 3, 2022): 6. https://doi.org/10.1167/tvst.11.10.6.
Berchuck SI, Jammal AA, Page D, Somers TJ, Medeiros FA. A Framework for Automating Psychiatric Distress Screening in Ophthalmology Clinics Using an EHR-Derived AI Algorithm. Transl Vis Sci Technol. 2022 Oct 3;11(10):6.
Berchuck, Samuel I., et al. “A Framework for Automating Psychiatric Distress Screening in Ophthalmology Clinics Using an EHR-Derived AI Algorithm.Transl Vis Sci Technol, vol. 11, no. 10, Oct. 2022, p. 6. Pubmed, doi:10.1167/tvst.11.10.6.
Berchuck SI, Jammal AA, Page D, Somers TJ, Medeiros FA. A Framework for Automating Psychiatric Distress Screening in Ophthalmology Clinics Using an EHR-Derived AI Algorithm. Transl Vis Sci Technol. 2022 Oct 3;11(10):6.

Published In

Transl Vis Sci Technol

DOI

EISSN

2164-2591

Publication Date

October 3, 2022

Volume

11

Issue

10

Start / End Page

6

Location

United States

Related Subject Headings

  • Retrospective Studies
  • Ophthalmology
  • Electronic Health Records
  • Artificial Intelligence
  • Algorithms
  • 3212 Ophthalmology and optometry
  • 1113 Opthalmology and Optometry
  • 0903 Biomedical Engineering