том 61 издание S 01 страницы e12-e27

Privacy-Preserving Artificial Intelligence Techniques in Biomedicine

Тип публикацииJournal Article
Дата публикации2022-01-21
Связанные публикации
scimago Q1
wos Q3
white level БС1
SJR0.663
CiteScore5.1
Impact factor1.8
ISSN00261270, 2511705X
Health Informatics
Health Information Management
Advanced and Specialized Nursing
Краткое описание

Background Artificial intelligence (AI) has been successfully applied in numerous scientific domains. In biomedicine, AI has already shown tremendous potential, e.g., in the interpretation of next-generation sequencing data and in the design of clinical decision support systems.

Objectives However, training an AI model on sensitive data raises concerns about the privacy of individual participants. For example, summary statistics of a genome-wide association study can be used to determine the presence or absence of an individual in a given dataset. This considerable privacy risk has led to restrictions in accessing genomic and other biomedical data, which is detrimental for collaborative research and impedes scientific progress. Hence, there has been a substantial effort to develop AI methods that can learn from sensitive data while protecting individuals' privacy.

Method This paper provides a structured overview of recent advances in privacy-preserving AI techniques in biomedicine. It places the most important state-of-the-art approaches within a unified taxonomy and discusses their strengths, limitations, and open problems.

Conclusion As the most promising direction, we suggest combining federated machine learning as a more scalable approach with other additional privacy-preserving techniques. This would allow to merge the advantages to provide privacy guarantees in a distributed way for biomedical applications. Nonetheless, more research is necessary as hybrid approaches pose new challenges such as additional network or computation overhead.

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ГОСТ |
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Torkzadehmahani R. et al. Privacy-Preserving Artificial Intelligence Techniques in Biomedicine // Methods of Information in Medicine. 2022. Vol. 61. No. S 01. p. e12-e27.
ГОСТ со всеми авторами (до 50) Скопировать
Torkzadehmahani R., Nasirigerdeh R., Blumenthal D. B., Kacprowski T., List M., Matschinske J., Spaeth J., Wenke N. K., Baumbach J. Privacy-Preserving Artificial Intelligence Techniques in Biomedicine // Methods of Information in Medicine. 2022. Vol. 61. No. S 01. p. e12-e27.
RIS |
Цитировать
TY - JOUR
DO - 10.1055/s-0041-1740630
UR - https://doi.org/10.1055/s-0041-1740630
TI - Privacy-Preserving Artificial Intelligence Techniques in Biomedicine
T2 - Methods of Information in Medicine
AU - Torkzadehmahani, Reihaneh
AU - Nasirigerdeh, Reza
AU - Blumenthal, David B
AU - Kacprowski, Tim
AU - List, Markus
AU - Matschinske, Julian
AU - Spaeth, Julian
AU - Wenke, Nina Kerstin
AU - Baumbach, Jan
PY - 2022
DA - 2022/01/21
PB - Georg Thieme Verlag KG
SP - e12-e27
IS - S 01
VL - 61
PMID - 35062032
SN - 0026-1270
SN - 2511-705X
ER -
BibTex |
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BibTex (до 50 авторов) Скопировать
@article{2022_Torkzadehmahani,
author = {Reihaneh Torkzadehmahani and Reza Nasirigerdeh and David B Blumenthal and Tim Kacprowski and Markus List and Julian Matschinske and Julian Spaeth and Nina Kerstin Wenke and Jan Baumbach},
title = {Privacy-Preserving Artificial Intelligence Techniques in Biomedicine},
journal = {Methods of Information in Medicine},
year = {2022},
volume = {61},
publisher = {Georg Thieme Verlag KG},
month = {jan},
url = {https://doi.org/10.1055/s-0041-1740630},
number = {S 01},
pages = {e12--e27},
doi = {10.1055/s-0041-1740630}
}
MLA
Цитировать
Torkzadehmahani, Reihaneh, et al. “Privacy-Preserving Artificial Intelligence Techniques in Biomedicine.” Methods of Information in Medicine, vol. 61, no. S 01, Jan. 2022, pp. e12-e27. https://doi.org/10.1055/s-0041-1740630.
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