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Review
. 2023 May:158:106848.
doi: 10.1016/j.compbiomed.2023.106848. Epub 2023 Apr 5.

Privacy-preserving artificial intelligence in healthcare: Techniques and applications

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Free article
Review

Privacy-preserving artificial intelligence in healthcare: Techniques and applications

Nazish Khalid et al. Comput Biol Med. 2023 May.
Free article

Abstract

There has been an increasing interest in translating artificial intelligence (AI) research into clinically-validated applications to improve the performance, capacity, and efficacy of healthcare services. Despite substantial research worldwide, very few AI-based applications have successfully made it to clinics. Key barriers to the widespread adoption of clinically validated AI applications include non-standardized medical records, limited availability of curated datasets, and stringent legal/ethical requirements to preserve patients' privacy. Therefore, there is a pressing need to improvise new data-sharing methods in the age of AI that preserve patient privacy while developing AI-based healthcare applications. In the literature, significant attention has been devoted to developing privacy-preserving techniques and overcoming the issues hampering AI adoption in an actual clinical environment. To this end, this study summarizes the state-of-the-art approaches for preserving privacy in AI-based healthcare applications. Prominent privacy-preserving techniques such as Federated Learning and Hybrid Techniques are elaborated along with potential privacy attacks, security challenges, and future directions.

Keywords: Artificial intelligence (AI); Electronic health record (EHR); Privacy; Privacy preservation.

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Conflict of interest statement

Declaration of Competing Interest The authors declare that they have no known competing financial interests or personal relationships that could have appeared to influence the work reported in this paper.

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