At what price? exploring the potential and challenges of differentially private machine learning for healthcare
- ,
- Tizian Matschak,
- Maike Greve,
- Simon Trang,
- Lutz M Kolbe
- Georg August University of Göttingen
Research Output:
Conference Article in Proceeding or Book/Report chapter
Article in proceedings
Peer-reviewOpen access
Publication Information
Output type
Research Output:
Conference Article in Proceeding or Book/Report chapter
Article in proceedings
Peer-reviewOriginal language
EnglishPages from-to (Number of pages)
Pages 3277-3286 (10 pages)Publication milestones
- Published - 03/01/2023
Publication status
Published - 03/01/2023
Publication IDs
- ORCID: /0000-0002-5755-9310/work/183744923
- Scopus: 85152140930
Host publication title
HICSS 2023 ProceedingsAbstract
The increased generation of data has become one of the main drivers of technological innovation in healthcare. This applies in particular to the adoption of Machine Learning models that are used to generate value from the growing available healthcare data. However, the increased processing of sensitive healthcare data comes with challenges in terms of data privacy. Differential privacy, the method of adding randomness to the data to increase privacy, has gained popularity in the last few years as a possible solution. However, while the addition of randomness increases privacy, it also reduces overall model performance, generating a privacy-utility trade-off. Examining this trade-off, we contribute to the literature by providing an empirical paper that experimentally evaluates two prominent and innovative methods of differentially private Machine Learning on medical image and text data to deepen the understanding of the existing potential and challenges of such methods for the healthcare domain.
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Related Event
Title
Hawaii International Conference on System Sciences
Event type
ConferenceDegree of recognition
International eventDate
03/01/2023 - 06/01/2023Location
United StatesLahainaUnited States
