Can overfitted deep neural networks in adversarial training generalize? – An approximation viewpoint

Can overfitted deep neural networks in adversarial training generalize? – An approximation viewpoint

2024
52m
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"Analysis"

Overview

In this talk, I will discuss whether overfitted DNNs in adversarial training can generalize from an approximation viewpoint. We prove by construction the existence of infinitely many adversarial training classifiers on over-parameterized DNNs that obtain arbitrarily small adversarial training error (overfitting), whereas achieving good robust generalization error under certain conditions concerning the data quality, well separated, and perturbation level. This construction is optimal and thus points out the fundamental limits of DNNs under adversarial training with statistical guarantees. Part of this talk comes from our recent work.

Status: Released

Language: EN

Production Information

Production Companies
University of Warwick
Production Countries
United Kingdom

Quick Facts

Release Date March 1, 2024
Status Released
Language EN
Website Visit Site

Cast

Fanghui Liu
Fanghui Liu

Himself

Engineering Research Building
Engineering Research Building

Room 514
Room 514

Yuchen Zeng
Yuchen Zeng

Key Crew

Fanghui Liu
Director
Fanghui Liu
Writer
Fanghui Liu
Producer

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