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TARGET-AI ECG-image ViT

ecg-clip-beit-base-384

Yale School of Medicine (CarDS Lab)

12-lead ECG image

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ECG

Structural heart disease (composite)

Filter catalog by Disease / Trait:
Structural Heart & Cardiomyopathy

Embedding

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Representation Learning

Vision Transformer

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Transformer

PyTorch

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PyTorch

CC BY-NC 4.0

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Non-commercial / Research-only

BEiT-base Vision Transformer that embeds images of standard 12-lead ECG printouts into a representation space, enabling zero-shot screening for structural heart disease by comparing a new ECG against reference case/control embedding centroids rather than requiring task-specific training. Trained on private Yale New Haven Health System ECG images and validated against the public EchoNext dataset. Aimed at scanned or legacy ECG images still common in EHR systems. Developed by Yale's CarDS Lab.

memory Specifications

category

Architecture

Vision Transformer

BEiT-base Vision Transformer (384px) trained to embed images of printed/scanned 12-lead ECG waveforms for zero-shot, reference-embedding-based screening

code

Framework

PyTorch

calendar_month

Added to catalog

2026-07-10

gavel License

CC BY-NC 4.0

check_small Open source close_small No commercial use check_small Modifications allowed Attribution required No share-alike requirement

License for model weights only. Associated code may be licensed seperately, check code source for specific terms.

description Publication

database Training & evaluation data

UK Biobank External Validation Cohort (TARGET-AI)

validation

public 33,518 subjects · United Kingdom

Yale New Haven Health ECG-Echo Paired Cohort (TARGET-AI)

train

public 159,322 subjects · USA

754,533 ECG-echo pairs from 159,322 individuals

Yale Temporally-Distinct Evaluation Cohort (TARGET-AI)

test

public 5,198 subjects · USA

science Capabilities & performance

Embedding

Structural heart disease (composite)