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2203.04886
Cited By
Reverse Engineering
ℓ
p
\ell_p
ℓ
p
attacks: A block-sparse optimization approach with recovery guarantees
9 March 2022
D. Thaker
Paris V. Giampouras
René Vidal
AAML
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Papers citing
"Reverse Engineering $\ell_p$ attacks: A block-sparse optimization approach with recovery guarantees"
21 / 21 papers shown
Title
On the Limitations of Denoising Strategies as Adversarial Defenses
Zhonghan Niu
Zhaoxi Chen
Linyi Li
Yubin Yang
Yue Liu
Jinfeng Yi
AAML
62
14
0
17 Dec 2020
Locally Linear Attributes of ReLU Neural Networks
Benjamin Sattelberg
R. Cavalieri
Michael Kirby
C. Peterson
Ross Beveridge
FAtt
31
10
0
30 Nov 2020
Adversarial Robustness Against the Union of Multiple Perturbation Models
Pratyush Maini
Eric Wong
J. Zico Kolter
OOD
AAML
47
151
0
09 Sep 2019
Adversarial Training and Robustness for Multiple Perturbations
Florian Tramèr
Dan Boneh
AAML
SILM
66
378
0
30 Apr 2019
Certified Adversarial Robustness via Randomized Smoothing
Jeremy M. Cohen
Elan Rosenfeld
J. Zico Kolter
AAML
147
2,038
0
08 Feb 2019
Decoupling Direction and Norm for Efficient Gradient-Based L2 Adversarial Attacks and Defenses
Jérôme Rony
L. G. Hafemann
Luiz Eduardo Soares de Oliveira
Ismail Ben Ayed
R. Sabourin
Eric Granger
AAML
54
298
0
23 Nov 2018
Defense-GAN: Protecting Classifiers Against Adversarial Attacks Using Generative Models
Pouya Samangouei
Maya Kabkab
Rama Chellappa
AAML
GAN
84
1,177
0
17 May 2018
Mad Max: Affine Spline Insights into Deep Learning
Randall Balestriero
Richard Baraniuk
AI4CE
59
78
0
17 May 2018
Adversarial Risk and the Dangers of Evaluating Against Weak Attacks
J. Uesato
Brendan O'Donoghue
Aaron van den Oord
Pushmeet Kohli
AAML
150
604
0
15 Feb 2018
Obfuscated Gradients Give a False Sense of Security: Circumventing Defenses to Adversarial Examples
Anish Athalye
Nicholas Carlini
D. Wagner
AAML
219
3,185
0
01 Feb 2018
Evasion Attacks against Machine Learning at Test Time
Battista Biggio
Igino Corona
Davide Maiorca
B. Nelson
Nedim Srndic
Pavel Laskov
Giorgio Giacinto
Fabio Roli
AAML
157
2,151
0
21 Aug 2017
Towards Deep Learning Models Resistant to Adversarial Attacks
Aleksander Madry
Aleksandar Makelov
Ludwig Schmidt
Dimitris Tsipras
Adrian Vladu
SILM
OOD
304
12,063
0
19 Jun 2017
Adversarial Examples Are Not Easily Detected: Bypassing Ten Detection Methods
Nicholas Carlini
D. Wagner
AAML
121
1,857
0
20 May 2017
On the (Statistical) Detection of Adversarial Examples
Kathrin Grosse
Praveen Manoharan
Nicolas Papernot
Michael Backes
Patrick McDaniel
AAML
76
713
0
21 Feb 2017
On Detecting Adversarial Perturbations
J. H. Metzen
Tim Genewein
Volker Fischer
Bastian Bischoff
AAML
61
950
0
14 Feb 2017
Adversarial Machine Learning at Scale
Alexey Kurakin
Ian Goodfellow
Samy Bengio
AAML
472
3,140
0
04 Nov 2016
Towards Evaluating the Robustness of Neural Networks
Nicholas Carlini
D. Wagner
OOD
AAML
261
8,552
0
16 Aug 2016
Explaining and Harnessing Adversarial Examples
Ian Goodfellow
Jonathon Shlens
Christian Szegedy
AAML
GAN
277
19,049
0
20 Dec 2014
Intriguing properties of neural networks
Christian Szegedy
Wojciech Zaremba
Ilya Sutskever
Joan Bruna
D. Erhan
Ian Goodfellow
Rob Fergus
AAML
270
14,918
1
21 Dec 2013
Sparse Subspace Clustering: Algorithm, Theory, and Applications
Ehsan Elhamifar
René Vidal
104
2,332
0
05 Mar 2012
Block-Sparse Recovery via Convex Optimization
Ehsan Elhamifar
René Vidal
CVBM
98
158
0
04 Apr 2011
1