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2004.12492
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Bias Busters: Robustifying DL-based Lithographic Hotspot Detectors Against Backdooring Attacks
26 April 2020
Kang Liu
Benjamin Tan
Gaurav Rajavendra Reddy
S. Garg
Yiorgos Makris
Ramesh Karri
AAML
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Papers citing
"Bias Busters: Robustifying DL-based Lithographic Hotspot Detectors Against Backdooring Attacks"
9 / 9 papers shown
Title
On Improving Hotspot Detection Through Synthetic Pattern-Based Database Enhancement
Gaurav Rajavendra Reddy
Constantinos Xanthopoulos
Yiorgos Makris
21
8
0
12 Jul 2020
Stop-and-Go: Exploring Backdoor Attacks on Deep Reinforcement Learning-based Traffic Congestion Control Systems
Yue Wang
Esha Sarkar
Wenqing Li
Michail Maniatakos
Saif Eddin Jabari
AAML
129
63
0
17 Mar 2020
Defending Neural Backdoors via Generative Distribution Modeling
Ximing Qiao
Yukun Yang
H. Li
AAML
49
183
0
10 Oct 2019
Are Adversarial Perturbations a Showstopper for ML-Based CAD? A Case Study on CNN-Based Lithographic Hotspot Detection
Kang Liu
Haoyu Yang
Yuzhe Ma
Benjamin Tan
Bei Yu
Evangeline F. Y. Young
Ramesh Karri
S. Garg
AAML
37
10
0
25 Jun 2019
Targeted Backdoor Attacks on Deep Learning Systems Using Data Poisoning
Xinyun Chen
Chang-rui Liu
Yue Liu
Kimberly Lu
Basel Alomair
AAML
SILM
143
1,852
0
15 Dec 2017
Wild Patterns: Ten Years After the Rise of Adversarial Machine Learning
Battista Biggio
Fabio Roli
AAML
130
1,410
0
08 Dec 2017
Towards Deep Learning Models Resistant to Adversarial Attacks
Aleksander Madry
Aleksandar Makelov
Ludwig Schmidt
Dimitris Tsipras
Adrian Vladu
SILM
OOD
310
12,117
0
19 Jun 2017
Adversarial Machine Learning at Scale
Alexey Kurakin
Ian Goodfellow
Samy Bengio
AAML
472
3,147
0
04 Nov 2016
Intriguing properties of neural networks
Christian Szegedy
Wojciech Zaremba
Ilya Sutskever
Joan Bruna
D. Erhan
Ian Goodfellow
Rob Fergus
AAML
277
14,961
1
21 Dec 2013
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