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NOT YET RECRUITING
NCT06637293
NA

Deployment and Evaluation of Artificial Intelligence Software for Electrocardiogram Analysis and Management in Primary Care

Sponsor: Montreal Heart Institute

View on ClinicalTrials.gov

Summary

The DAISEA-ECG project aims to improve the diagnosis of heart diseases in primary care through the DeepECG platform, which combines ECG-AI and ECHONeXT algorithms. This study uses a stepped wedge design, where each Family Medicine Group acts as its own control. The FMGs will gradually transition from the control period (without AI recommendations) to the intervention period (with AI recommendations activated) in a randomized sequence. The primary objective is to compare the sensitivity of family physicians in detecting cardiac pathologies, with and without the assistance of the DeepECG platform. Sensitivity is defined as the proportion of patients correctly referred to cardiology or for transthoracic echocardiography (TTE) among those who indeed required cardiovascular evaluation, as confirmed by an independent adjudication committee.

Key Details

Gender

All

Age Range

18 Years - Any

Study Type

INTERVENTIONAL

Enrollment

2000

Start Date

2025-10-06

Completion Date

2027-03

Last Updated

2025-09-19

Healthy Volunteers

Yes

Interventions

DEVICE

DeepECG plateform diagnosis & recommendations

EchoNeXT\& ECG-AI algorithm

Locations (1)

Montreal Heart Institute

Montreal, Quebec, Canada