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Titel:

Medical imaging deep learning with differential privacy.

Dokumenttyp:
Journal Article
Autor(en):
Ziller, Alexander; Usynin, Dmitrii; Braren, Rickmer; Makowski, Marcus; Rueckert, Daniel; Kaissis, Georgios
Abstract:
The successful training of deep learning models for diagnostic deployment in medical imaging applications requires large volumes of data. Such data cannot be procured without consideration for patient privacy, mandated both by legal regulations and ethical requirements of the medical profession. Differential privacy (DP) enables the provision of information-theoretic privacy guarantees to patients and can be implemented in the setting of deep neural network training through the differentially pr...     »
Zeitschriftentitel:
Sci Rep
Jahr:
2021
Band / Volume:
11
Heft / Issue:
1
Volltext / DOI:
doi:10.1038/s41598-021-93030-0
PubMed:
http://view.ncbi.nlm.nih.gov/pubmed/34188157
Print-ISSN:
2045-2322
TUM Einrichtung:
Institut für Diagnostische und Interventionelle Radiologie; Institut für Medizinische Statistik und Epidemiologie
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