On the Privacy Risks of Cell-Based NAS Architectures

September 04, 2022 Β· Declared Dead Β· πŸ› Conference on Computer and Communications Security

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Authors Hai Huang, Zhikun Zhang, Yun Shen, Michael Backes, Qi Li, Yang Zhang arXiv ID 2209.01688 Category cs.CR: Cryptography & Security Cross-listed cs.LG Citations 8 Venue Conference on Computer and Communications Security Last Checked 5 months ago
Abstract
Existing studies on neural architecture search (NAS) mainly focus on efficiently and effectively searching for network architectures with better performance. Little progress has been made to systematically understand if the NAS-searched architectures are robust to privacy attacks while abundant work has already shown that human-designed architectures are prone to privacy attacks. In this paper, we fill this gap and systematically measure the privacy risks of NAS architectures. Leveraging the insights from our measurement study, we further explore the cell patterns of cell-based NAS architectures and evaluate how the cell patterns affect the privacy risks of NAS-searched architectures. Through extensive experiments, we shed light on how to design robust NAS architectures against privacy attacks, and also offer a general methodology to understand the hidden correlation between the NAS-searched architectures and other privacy risks.
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