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Human Imperceptible Attacks and Applications to Improve Fairness

Human Imperceptible Attacks and Applications to Improve Fairness

30 November 2021
Xinru Hua
Huanzhong Xu
Jose H. Blanchet
V. Nguyen
    AAML
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Papers citing "Human Imperceptible Attacks and Applications to Improve Fairness"

7 / 7 papers shown
Title
Wasserstein distributional robustness of neural networks
Wasserstein distributional robustness of neural networks
Xingjian Bai
Guangyi He
Yifan Jiang
J. Obłój
OOD
AAML
8
6
0
16 Jun 2023
How Biased are Your Features?: Computing Fairness Influence Functions
  with Global Sensitivity Analysis
How Biased are Your Features?: Computing Fairness Influence Functions with Global Sensitivity Analysis
Bishwamittra Ghosh
D. Basu
Kuldeep S. Meel
FaML
4
9
0
01 Jun 2022
Image Quality Assessment for Perceptual Image Restoration: A New
  Dataset, Benchmark and Metric
Image Quality Assessment for Perceptual Image Restoration: A New Dataset, Benchmark and Metric
Jinjin Gu
Haoming Cai
Haoyu Chen
Xiaoxing Ye
Jimmy S. J. Ren
Chao Dong
26
42
0
30 Nov 2020
A Survey on Bias and Fairness in Machine Learning
A Survey on Bias and Fairness in Machine Learning
Ninareh Mehrabi
Fred Morstatter
N. Saxena
Kristina Lerman
Aram Galstyan
SyDa
FaML
294
4,203
0
23 Aug 2019
Shield: Fast, Practical Defense and Vaccination for Deep Learning using
  JPEG Compression
Shield: Fast, Practical Defense and Vaccination for Deep Learning using JPEG Compression
Nilaksh Das
Madhuri Shanbhogue
Shang-Tse Chen
Fred Hohman
Siwei Li
Li-Wei Chen
Michael E. Kounavis
Duen Horng Chau
FedML
AAML
38
224
0
19 Feb 2018
Adversarial examples in the physical world
Adversarial examples in the physical world
Alexey Kurakin
Ian Goodfellow
Samy Bengio
SILM
AAML
250
5,833
0
08 Jul 2016
Sample Out-Of-Sample Inference Based on Wasserstein Distance
Sample Out-Of-Sample Inference Based on Wasserstein Distance
Jose H. Blanchet
Yang Kang
23
35
0
04 May 2016
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