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Advanced AI News
Home » Leveraging Robust Features for Targeted Transfer Attacks
Melanie Mitchell

Leveraging Robust Features for Targeted Transfer Attacks

Advanced AI BotBy Advanced AI BotApril 2, 2025No Comments2 Mins Read
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[Submitted on 3 Jun 2021 (v1), last revised 25 Oct 2021 (this version, v2)]

View a PDF of the paper titled A Little Robustness Goes a Long Way: Leveraging Robust Features for Targeted Transfer Attacks, by Jacob M. Springer and 2 other authors

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Abstract:Adversarial examples for neural network image classifiers are known to be transferable: examples optimized to be misclassified by a source classifier are often misclassified as well by classifiers with different architectures. However, targeted adversarial examples — optimized to be classified as a chosen target class — tend to be less transferable between architectures. While prior research on constructing transferable targeted attacks has focused on improving the optimization procedure, in this work we examine the role of the source classifier. Here, we show that training the source classifier to be “slightly robust” — that is, robust to small-magnitude adversarial examples — substantially improves the transferability of class-targeted and representation-targeted adversarial attacks, even between architectures as different as convolutional neural networks and transformers. The results we present provide insight into the nature of adversarial examples as well as the mechanisms underlying so-called “robust” classifiers.

Submission history

From: Jacob Springer [view email]
[v1]
Thu, 3 Jun 2021 19:53:46 UTC (19,970 KB)
[v2]
Mon, 25 Oct 2021 22:39:00 UTC (10,763 KB)



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