Privacy-Preserving Workflow for the Cross-Border Federated Analysis of Clinical Data.


Journal

Studies in health technology and informatics
ISSN: 1879-8365
Titre abrégé: Stud Health Technol Inform
Pays: Netherlands
ID NLM: 9214582

Informations de publication

Date de publication:
22 Aug 2024
Historique:
medline: 23 8 2024
pubmed: 23 8 2024
entrez: 23 8 2024
Statut: ppublish

Résumé

The motivation behind this research is to perform a privacy-preserving analysis of data located at remote sites and in different jurisdictions with no possibility of sharing individual-level information. Here, we present key findings from requirements analysis and a resulting federated data analysis workflow built using open-source research software, where patient-level information is securely stored and never exposed during the analysis process. We present additional improvements to further strengthen the security of the workflow. We emphasize and showcase the use of data harmonization in the analysis. The data analysis is done using the R language for statistical computing and DataSHIELD libraries for non-disclosive analysis of sensitive data. The workflow was validated against two data analysis scenarios, confirming the results obtained with a centralized analysis approach. The clinical datasets are part of the large Pan-European SARS-Cov-2 cohort, collected and managed by the ORCHESTRA project. We demonstrate the viability of establishing a cross-border federated data analysis framework and conducting an analysis without exposing patient-level information, achieving results equivalent to centralized non-secure analysis. However, it is vital to ensure requirements associated with data harmonization, anonymization and IT infrastructure to maintain availability, usability and data security.

Identifiants

pubmed: 39176524
pii: SHTI240737
doi: 10.3233/SHTI240737
doi:

Types de publication

Journal Article

Langues

eng

Sous-ensembles de citation

IM

Pagination

1637-1641

Auteurs

Miroslav Puskaric (M)

HLRS, University of Stuttgart, Germany.

Balasubramanian Chandramouli (B)

HPC Department, CINECA Consorzio Interuniversitario, Italy.

Thomas Osmo (T)

CINES Centre Informatique National de l'Enseignement Supérieur, France.

Roy Gusinow (R)

Life and Medical Sciences Institute, University of Bonn, Germany.

Chiara Dellacasa (C)

HPC Department, CINECA Consorzio Interuniversitario, Italy.

Elisa Rossi (E)

HPC Department, CINECA Consorzio Interuniversitario, Italy.

Salvatore Cataudella (S)

HPC Department, CINECA Consorzio Interuniversitario, Italy.

Anna Górska (A)

Department of Diagnostics and Public Health, University of Verona, Italy.

Eugenia Rinaldi (E)

Berlin Institute of Health (BIH), Charité, Germany.

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Classifications MeSH