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CCS2025顶会

Anonymity Unveiled: A Practical Framework for Auditing Data Use in Deep Learning Models

Zitao Chen, Karthik Pattabiraman

2025年份
4顶会引用

摘要

The rise of deep learning (DL) has led to a surging demand for training data, which incentivizes the creators of DL models to trawl through the Internet for training materials. Meanwhile, users often have limited control over whether their data (e.g., facial images) are used to train DL models without their consent, which has engendered pressing concerns.

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