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MULTIPLi Health 2026 : 1st Workshop on MULTIcentric and Privacy- preserving Learning in Healthcare

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Link: https://multipli26.di.unito.it/
 
When Jul 10, 2026 - Jul 10, 2026
Where Ottawa
Submission Deadline May 22, 2026
Notification Due Jun 5, 2026
 

Call For Papers

As healthcare data becomes increasingly distributed across institutions, unlocking its full potential for AI-driven medicine remains a major challenge. Strict privacy regulations, data governance constraints, and institutional boundaries often prevent data sharing, limiting the development of robust and generalizable models. Federated Learning and related privacy-preserving approaches offer a promising solution by enabling collaborative learning without exchanging sensitive patient data.

MULTIPLi Health aims to bring together researchers and practitioners working on
multicentric and privacy-aware AI in healthcare. We invite submissions on methods,
systems, and real-world applications that address the challenges of learning from
heterogeneous, distributed data, with a focus on privacy, robustness, trustworthiness, and clinical impact.

We welcome contributions including but not limited to:
• Federated and distributed learning for healthcare
• Privacy-preserving machine learning
• Learning under data heterogeneity and imbalance
• Multicentric, multi-modal, and longitudinal data analysis
• Evaluation, benchmarking, and reproducibility
• Systems and infrastructures for collaborative AI
• Clinical applications and real-world deployments
• Trust, robustness, fairness, and explainability

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