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Diagnostic Accuracy of Large Language Models (GPT-4o and Claude) in HEART Score Calculation and 30-Day MACE Prediction in Emergency Department Chest Pain Patients: A Prospective Observational Validation Study Against Three-Expert Consensus

Status: Recruiting
Location: See location...
Intervention Type: Other
Study Type: Observational
SUMMARY

This prospective observational diagnostic accuracy study evaluates whether large language models (LLMs) - GPT-4o (OpenAI, gpt-4o-2024-11-20) and Claude (Anthropic, claude-sonnet-4-6) - can accurately calculate HEART scores from unstructured Turkish clinical notes and predict 30-day major adverse cardiac events (MACE) in emergency department patients presenting with non-traumatic chest pain. The study will enroll 600 consecutive adult patients. For each patient, the same anonymized data (free-text anamnesis, ECG report text, troponin value, and age) will be independently processed by both LLMs via separate API calls with deterministic settings (temperature=0, JSON format). A three-expert consensus HEART score - derived through blinded independent scoring by three emergency medicine physicians with majority-vote adjudication - serves as the reference standard for agreement analysis. Actual 30-day MACE (all-cause death, AMI Type 1/2/4b, unplanned revascularization) determined via national health database and telephone follow-up serves as the outcome for diagnostic accuracy analysis. A secondary documentation-quality sub-study will quantify how spontaneously Turkish emergency anamnesis notes capture HEART score parameters.

Eligibility
Participation Requirements
Sex: All
Minimum Age: 18
Healthy Volunteers: f
View:

• Age \>=18 years

• Chief complaint of non-traumatic chest pain at the emergency department

• Written informed consent obtained from the patient or legally authorized representative

• Availability for 30-day follow-up (reachable by telephone and/or actively registered in the e-Nabiz national health database)

Locations
Other Locations
Turkey
Marmara University Pendik Training and Research Hospital
RECRUITING
Istanbul
Contact Information
Primary
Emir Unal, Assistant Professor
emirunal@gmail.com
+905327766010
Backup
Emre Kudu, associate professor
dr.emre.kudu@gmail.com
Time Frame
Start Date: 2026-06
Estimated Completion Date: 2027-06
Participants
Target number of participants: 690
Related Therapeutic Areas
Sponsors
Leads: Marmara University Pendik Training and Research Hospital

This content was sourced from clinicaltrials.gov