Feature Inference Attack on Shapley Values

Author:

Luo Xinjian1,Jiang Yangfan1,Xiao Xiaokui1

Affiliation:

1. National University of Singapore, Singapore, Singapore

Funder

A*STAR, Singapore

Ministry of Education, Singapore

Publisher

ACM

Reference69 articles.

1. Rishabh Agarwal , Levi Melnick , Nicholas Frosst , Xuezhou Zhang , Benjamin J. Lengerich , Rich Caruana , and Geoffrey E. Hinton . 2021 . Neural Additive Models: Interpretable Machine Learning with Neural Nets. In Advances in Neural Information Processing Systems 34: Annual Conference on Neural Information Processing Systems 2021 , NeurIPS 2021 , December 6--14, 2021, virtual. 4699--4711. Rishabh Agarwal, Levi Melnick, Nicholas Frosst, Xuezhou Zhang, Benjamin J. Lengerich, Rich Caruana, and Geoffrey E. Hinton. 2021. Neural Additive Models: Interpretable Machine Learning with Neural Nets. In Advances in Neural Information Processing Systems 34: Annual Conference on Neural Information Processing Systems 2021, NeurIPS 2021, December 6--14, 2021, virtual. 4699--4711.

2. IBM Research Trusted AI. 2022. AI Explainability 360 - Resources. http://aix360.mybluemix.net/resources. Online; accessed 24-March-2022. IBM Research Trusted AI. 2022. AI Explainability 360 - Resources. http://aix360.mybluemix.net/resources. Online; accessed 24-March-2022.

3. Ulrich A"i vodji, Alexandre Bolot , and Sé bastien Gambs . 2020. Model extraction from counterfactual explanations. CoRR , Vol. abs/ 2009 .0 1884 (2020). showeprint[arXiv]2009.01884 https://arxiv.org/abs/2009.01884 Ulrich A"i vodji, Alexandre Bolot, and Sé bastien Gambs. 2020. Model extraction from counterfactual explanations. CoRR , Vol. abs/2009.01884 (2020). showeprint[arXiv]2009.01884 https://arxiv.org/abs/2009.01884

4. Marco Ancona , Enea Ceolini , Cengiz Ö ztireli, and Markus Gross . 2018 . Towards better understanding of gradient-based attribution methods for Deep Neural Networks . In 6th International Conference on Learning Representations, ICLR 2018, Vancouver, BC, Canada, April 30 - May 3, 2018, Conference Track Proceedings. OpenReview.net. Marco Ancona, Enea Ceolini, Cengiz Ö ztireli, and Markus Gross. 2018. Towards better understanding of gradient-based attribution methods for Deep Neural Networks. In 6th International Conference on Learning Representations, ICLR 2018, Vancouver, BC, Canada, April 30 - May 3, 2018, Conference Track Proceedings. OpenReview.net.

5. Marco Ancona , Cengiz Ö ztireli, and Markus H. Gross . 2019. Explaining Deep Neural Networks with a Polynomial Time Algorithm for Shapley Value Approximation . In Proceedings of the 36th International Conference on Machine Learning, ICML 2019, 9--15 June 2019 , Long Beach, California, USA , Vol. 97 . PMLR, 272--281. Marco Ancona, Cengiz Ö ztireli, and Markus H. Gross. 2019. Explaining Deep Neural Networks with a Polynomial Time Algorithm for Shapley Value Approximation. In Proceedings of the 36th International Conference on Machine Learning, ICML 2019, 9--15 June 2019, Long Beach, California, USA, Vol. 97. PMLR, 272--281.

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