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Fooling Partial Dependence via Data Poisoning

Fooling Partial Dependence via Data Poisoning

26 May 2021
Hubert Baniecki
Wojciech Kretowicz
P. Biecek
    AAML
ArXivPDFHTML

Papers citing "Fooling Partial Dependence via Data Poisoning"

5 / 5 papers shown
Title
Manifold Integrated Gradients: Riemannian Geometry for Feature
  Attribution
Manifold Integrated Gradients: Riemannian Geometry for Feature Attribution
Eslam Zaher
Maciej Trzaskowski
Quan Nguyen
Fred Roosta
AAML
29
4
0
16 May 2024
Why You Should Not Trust Interpretations in Machine Learning:
  Adversarial Attacks on Partial Dependence Plots
Why You Should Not Trust Interpretations in Machine Learning: Adversarial Attacks on Partial Dependence Plots
Xi Xin
Giles Hooker
Fei Huang
AAML
43
6
0
29 Apr 2024
Understanding User Preferences in Explainable Artificial Intelligence: A
  Survey and a Mapping Function Proposal
Understanding User Preferences in Explainable Artificial Intelligence: A Survey and a Mapping Function Proposal
M. Hashemi
Ali Darejeh
Francisco Cruz
40
3
0
07 Feb 2023
On the Robustness of Explanations of Deep Neural Network Models: A
  Survey
On the Robustness of Explanations of Deep Neural Network Models: A Survey
Amlan Jyoti
Karthik Balaji Ganesh
Manoj Gayala
Nandita Lakshmi Tunuguntla
Sandesh Kamath
V. Balasubramanian
XAI
FAtt
AAML
32
4
0
09 Nov 2022
Fool SHAP with Stealthily Biased Sampling
Fool SHAP with Stealthily Biased Sampling
Gabriel Laberge
Ulrich Aïvodji
Satoshi Hara
M. Marchand
Foutse Khomh
MLAU
AAML
FAtt
8
2
0
30 May 2022
1