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An international multi-centre study to develop and validate federated learning-based prognostic models for anal cancer

Stelios Theophanous et al · Nature Portfolio · 2026

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Abstract Precision oncology relies on access to high-quality data for increasingly smaller patient subgroups. The international atomCAT consortium investigates the potential of federated learning to support this, using anal cancer as a rare cancer exemplar. Here, we show that federated multivariable Cox models trained across 14 centres (1428 patients) and externally validated in two additional centres (277 patients) achieve consistent calibration and discrimination during leave-one-centre-out and external validation (c-indices 0.68-0.79). Lower T stage, absence of nodal involvement, smaller tumour volume, female sex, younger age, and mitomycin- or cisplatin-based chemotherapy are associated with improved overall survival. Lower T stage, smaller tumour volume, and female sex are associated with improved locoregional control, while absence of nodal involvement and smaller tumour volume are associated with better freedom from distant metastases. These findings demonstrate that federated learning enables robust, privacy-preserving prognostic modelling for rare cancers using real-world data, supporting international collaboration without data sharing.

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APA 7

al, S. T. E. (2026). An international multi-centre study to develop and validate federated learning-based prognostic models for anal cancer. https://doi.org/10.1038/s41467-026-70297-3

MLA

al, Stelios Theophanous et. "An international multi-centre study to develop and validate federated learning-based prognostic models for anal cancer." 2026. https://doi.org/10.1038/s41467-026-70297-3.

Chicago

al, Stelios Theophanous et. 2026. "An international multi-centre study to develop and validate federated learning-based prognostic models for anal cancer.". https://doi.org/10.1038/s41467-026-70297-3.

Harvard

al, S. T. E. 2026, An international multi-centre study to develop and validate federated learning-based prognostic models for anal cancer, Nature Portfolio, available at: https://doi.org/10.1038/s41467-026-70297-3 [Accessed 22 Jun. 2026].

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Título
An international multi-centre study to develop and validate federated learning-based prognostic models for anal cancer
Autor / colaboradores
Stelios Theophanous et al
Editorial
Nature Portfolio
Año de publicación
2026
ISSN
2041-1723
ISSN
2041-1723
Idioma
eng
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