Cardiac health assessment across scenarios and devices using a multimodal foundation model pretrained on data from

Xiao Gu1, Wei Tang1,2,3, Jinpei Han4

  • 1Department of Engineering Science, University of Oxford, Oxford, UK.

Nature Machine Intelligence
|February 27, 2026
PubMed

Insights

A new cardiac sensing foundation model (CSFM) unifies diverse cardiac data, improving cardiovascular monitoring accuracy. This versatile AI model enhances performance across various signals and tasks, offering scalable solutions for real-world healthcare.

Area of Science:

  • Biomedical Engineering
  • Artificial Intelligence in Healthcare
  • Cardiovascular Monitoring

Background:

  • Cardiovascular diseases pose a significant global health burden.
  • Accurate cardiac monitoring is crucial for diagnosis, prevention, and management.
  • Existing methods struggle with heterogeneous data and limited generalizability.

Purpose of the Study:

  • To develop a robust and scalable foundation model for cardiac monitoring.
  • To learn unified representations from heterogeneous cardiac health records.
  • To improve the generalizability and adaptability of cardiac signal analysis.

Main Methods:

  • Utilized transformer architectures and generative masked pretraining.
  • Pretrained a cardiac sensing foundation model (CSFM) on multimodal data from ~1.7 million individuals.
  • Integrated cardiac signals (ECG, photoplethysmograms) with clinical text reports.

Main Results:

  • CSFM embeddings demonstrated effective, transferable features across diverse scenarios.
  • Outperformed traditional one-modal-one-task approaches in diagnostic tasks, vital sign measurement, and outcome prediction.
  • Maintained strong performance across 12-lead and single-lead ECGs, and mixed-modality inputs.

Conclusions:

  • CSFM offers a versatile and scalable foundation for comprehensive cardiac monitoring.
  • The model shows potential for seamless adaptation to varied input configurations and sensor modalities.
  • Represents a significant advancement in AI-driven cardiovascular health analysis.

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