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Synthetic Dataset Generation for Privacy-Preserving Machine Learning. (arXiv:2210.03205v3 [cs.CR] UPDATED)
Nov. 28, 2022, 2:10 a.m. | Efstathia Soufleri, Gobinda Saha, Kaushik Roy
cs.CR updates on arXiv.org arxiv.org
Machine Learning (ML) has achieved enormous success in solving a variety of
problems in computer vision, speech recognition, object detection, to name a
few. The principal reason for this success is the availability of huge datasets
for training deep neural networks (DNNs). However, datasets cannot be publicly
released if they contain sensitive information such as medical records, and
data privacy becomes a major concern. Encryption methods could be a possible
solution, however their deployment on ML applications seriously impacts
classification …
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