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CORDIS - Forschungsergebnisse der EU
CORDIS

Privacy compliant health data as a service for AI development

CORDIS bietet Links zu öffentlichen Ergebnissen und Veröffentlichungen von HORIZONT-Projekten.

Links zu Ergebnissen und Veröffentlichungen von RP7-Projekten sowie Links zu einigen Typen spezifischer Ergebnisse wie Datensätzen und Software werden dynamisch von OpenAIRE abgerufen.

Leistungen

PHASE IV AI Initial Architecture (öffnet in neuem Fenster)

A description of the initial technical architecture.

Study initiation package – UC1-UC3 (öffnet in neuem Fenster)

A compiled version of the mandatory deliverable for the retrospective, registry-based studies in PHASE IV AI.

User stories, usage scenarios and use case validation v2 (öffnet in neuem Fenster)

User perspectives on PHASE IV AI use cases.

Dissemination, Communication and Exploitation Activities v1 (öffnet in neuem Fenster)

Report on the project's dissemination, communication and exploitation activities.

User stories, usage scenarios and use case validation v1 (öffnet in neuem Fenster)

User perspectives on PHASE IV AI use cases.

Legal and ethical framework and requirements v1 (öffnet in neuem Fenster)

An overview of legal and ethical requirements for the PHASE IV AI technologies.

Dissemination, Communication and Exploitation Plan (öffnet in neuem Fenster)

PHASE IV AI Dissemination, Communication and Exploitation Plan. Some sections of the exploitation plan could be considered sensitive (SEN).

PHASE IV AI Initial Technology Assessment and List (öffnet in neuem Fenster)

A document reflecting the developed PHASE IV AI technologies to the original requirements and specifications.

Security and Privacy measures (öffnet in neuem Fenster)

Description of the PHASE IV AI approaches to security anf privacy (technical measures).

Data Specifications (öffnet in neuem Fenster)

Data Specifications based on the selected use cases.

Guideline on EHDS Alignment v1 (öffnet in neuem Fenster)

Guidelines for aligning the PHASE IV AI technologies with the EHDS developments.

Data Harmonization for DaaS, MaaS and Specifications plan (öffnet in neuem Fenster)

The deliverable will identify the heterogeneities of the data arising from the different medical imaging and labelling expert that exists in the data of the same data owner and the heterogeneities among different data owners arising from different EMRs, language and logging process etc. Following this, it will setup the roadmap for the documentation of both processes (OMOP CDM, semantic mismatches, metadata of demographic characteristics) indicating the right harmonisation tools and methodologies to prepare the data in a common and standardized data model within the health data hub.

Project Handbook, Quality Plan & Risk Management (öffnet in neuem Fenster)

The project handbook prepared by the coordinator will guide the project's implementation.

Technologies for de-identification and synthetic data generation v1 (öffnet in neuem Fenster)

Algorithms for advanced anonymization and synthetic data generation. Lead beneficiaries UTU (de-identification) and EUT (synthetic data generation).

DaaS Toolbox v1 (öffnet in neuem Fenster)

ML algorithms for Data as a Service concept.Type: R+OTHER

Secure Multiparty Computation v1 (öffnet in neuem Fenster)

Improved methods for secure multi-party computation.Type: R+OTHER

Data Hub Design and Data Market v1 (öffnet in neuem Fenster)

Description of the PHASE IV AI Data Hub and Data Market.Type: R+OTHER

MaaS Toolbox v1 (öffnet in neuem Fenster)

ML algorithms for Model as a Service concept.Type: R + OTHER

Integrated Data Services v1 (öffnet in neuem Fenster)

Integration of PHASE IV AI Data ServicesType: R+OTHER

Veröffentlichungen

VisTAD: A Vision Transformer Pipeline for the Classification of Alzheimer’s Disease (öffnet in neuem Fenster)

Autoren: Noushath Shaffi, Vimbi Viswan, Mufti Mahmud
Veröffentlicht in: 2024 International Joint Conference on Neural Networks (IJCNN), 2024
Herausgeber: IEEE
DOI: 10.1109/IJCNN60899.2024.10650975

Understanding Feature Importance of Prediction Models Based on Lung Cancer Primary Care Data (öffnet in neuem Fenster)

Autoren: Teena Rai, Yuan Shen, Jun He, Mufti Mahmud, David J Brown, Jaspreet Kaur, Emma O’Dowd, David R Baldwin, Richard Hubbard
Veröffentlicht in: 2024 International Joint Conference on Neural Networks (IJCNN), 2024
Herausgeber: IEEE
DOI: 10.1109/IJCNN60899.2024.10650819

Characterization of Synthetic Lung Nodules in Conditional Latent Diffusion of Chest CT Scans (öffnet in neuem Fenster)

Autoren: Roger Marí Molas, Paula Subías-Beltrán, Carla Pitarch Abaigar, Mar Galofré Cardo, Rafael Redondo Tejedor
Veröffentlicht in: Frontiers in Artificial Intelligence and Applications, Artificial Intelligence Research and Development, 2024
Herausgeber: IOS Press
DOI: 10.3233/FAIA240408

Does Differentially Private Synthetic Data Lead to Synthetic Discoveries? (öffnet in neuem Fenster)

Autoren: Ileana Montoya Perez, Parisa Movahedi, Valtteri Nieminen, Antti Airola, Tapio Pahikkala
Veröffentlicht in: Methods of Information in Medicine, Ausgabe 63, 2024, ISSN 0026-1270
Herausgeber: Georg Thieme Verlag KG
DOI: 10.1055/a-2385-1355

Cognitive Computation (öffnet in neuem Fenster)

Autoren: Md. Easin Arafat; Md. Wakil Ahmad; S. M. Shovan; Towhid Ul Haq; Nazrul Islam; Mufti Mahmud; M. Shamim Kaiser
Veröffentlicht in: Accurate Prediction of Lysine Methylation Sites Using Evolutionary and Structural-Based Information, 2024, ISSN 1866-9956
Herausgeber: Springer Nature
DOI: 10.1007/S12559-024-10268-2

Ensemble of vision transformer architectures for efficient Alzheimer’s Disease classification (öffnet in neuem Fenster)

Autoren: Noushath Shaffi; Vimbi Viswan; Mufti Mahmud
Veröffentlicht in: Brain Informatics, 2024, ISSN 2198-4018
Herausgeber: Springer Open
DOI: 10.1186/S40708-024-00238-7

Towards practical federated learning and evaluation for medical prediction models (öffnet in neuem Fenster)

Autoren: Andrei Kazlouski, Ileana Montoya Perez, Faiza Noor, Mikael Högerman, Otto Ettala, Tapio Pahikkala, Antti Airola
Veröffentlicht in: International Journal of Medical Informatics, Ausgabe 204, 2025, ISSN 1386-5056
Herausgeber: Elsevier BV
DOI: 10.1016/J.IJMEDINF.2025.106046

Interpreting artificial intelligence models: a systematic review on the application of LIME and SHAP in Alzheimer’s disease detection (öffnet in neuem Fenster)

Autoren: Viswan Vimbi; Noushath Shaffi; Mufti Mahmud
Veröffentlicht in: Brain Informatics, 2024, ISSN 2198-4026
Herausgeber: Springer Nature
DOI: 10.1186/s40708-024-00222-1

Benchmarking Evaluation Protocols for Classifiers Trained on Differentially Private Synthetic Data (öffnet in neuem Fenster)

Autoren: Parisa Movahedi, Valtteri Nieminen, Ileana Montoya Perez, Hiba Daafane, Dishant Sukhwal, Tapio Pahikkala, Antti Airola
Veröffentlicht in: IEEE Access, Ausgabe 12, 2024, ISSN 2169-3536
Herausgeber: Institute of Electrical and Electronics Engineers (IEEE)
DOI: 10.1109/ACCESS.2024.3446913

Medical AI in the EU: Regulatory Considerations and Future Outlook (öffnet in neuem Fenster)

Autoren: Ranttila, Pertti; Sahebi, Golnaz; Kontio, Elina; Salmi, Jussi
Veröffentlicht in: AI - Ethical and Legal Challenges [Working Title], 2024, ISBN 978-0-85466-497-9
Herausgeber: IntechOpen
DOI: 10.5772/INTECHOPEN.1007443

Medical AI in the EU: Regulatory Considerations and Future Outlook (öffnet in neuem Fenster)

Autoren: Pertti Ranttila, Golnaz Sahebi, Elina Kontio, Jussi Salmi
Veröffentlicht in: AI - Ethical and Legal Challenges [Working Title], 2024
Herausgeber: IntechOpen
DOI: 10.5772/intechopen.1007443

Response to Letter by Dehaene et al. on Synthetic Discovery is not only a Problem of Differentially Private Synthetic Data (öffnet in neuem Fenster)

Autoren: Ileana Montoya Perez, Parisa Movahedi, Valtteri Nieminen, Antti Airola, Tapio Pahikkala
Veröffentlicht in: Methods of Information in Medicine, 2025
Herausgeber: Georg Thieme Verlag
DOI: 10.1055/A-2540-8346

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