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Michael P. Kim
Michael P. Kim
在 cs.cornell.edu 的电子邮件经过验证 - 首页
标题
引用次数
引用次数
年份
Multicalibration: Calibration for the (computationally-identifiable) masses
U Hébert-Johnson, M Kim, O Reingold, G Rothblum
International Conference on Machine Learning, 1939-1948, 2018
4422018
Multiaccuracy: Black-box post-processing for fairness in classification
MP Kim, A Ghorbani, J Zou
Proceedings of the 2019 AAAI/ACM Conference on AI, Ethics, and Society, 247-254, 2019
3552019
Fairness through computationally-bounded awareness
M Kim, O Reingold, G Rothblum
Advances in neural information processing systems 31, 2018
1712018
A distributional framework for data valuation
A Ghorbani, M Kim, J Zou
International Conference on Machine Learning, 3535-3544, 2020
1182020
Planting undetectable backdoors in machine learning models
S Goldwasser, MP Kim, V Vaikuntanathan, O Zamir
2022 IEEE 63rd Annual Symposium on Foundations of Computer Science (FOCS …, 2022
652022
Outcome indistinguishability
C Dwork, MP Kim, O Reingold, GN Rothblum, G Yona
Proceedings of the 53rd Annual ACM SIGACT Symposium on Theory of Computing …, 2021
632021
Calibrating predictions to decisions: A novel approach to multi-class calibration
S Zhao, M Kim, R Sahoo, T Ma, S Ermon
Advances in Neural Information Processing Systems 34, 22313-22324, 2021
492021
Who can win a single-elimination tournament?
MP Kim, W Suksompong, VV Williams
SIAM Journal on Discrete Mathematics 31 (3), 1751-1764, 2017
492017
Preference-informed fairness
MP Kim, A Korolova, GN Rothblum, G Yona
arXiv preprint arXiv:1904.01793, 2019
422019
Synthesis of enantiopure, trisubstituted cryptophane-A derivatives
O Taratula, MP Kim, Y Bai, JP Philbin, BA Riggle, DN Haase, ...
Organic letters 14 (14), 3580-3583, 2012
372012
Fixing tournaments for kings, chokers, and more
MP Kim, VV Williams
Proceedings of the 24th International Conference on Artificial Intelligence …, 2015
362015
Low-degree multicalibration
P Gopalan, MP Kim, MA Singhal, S Zhao
Conference on Learning Theory, 3193-3234, 2022
352022
Universal adaptability: Target-independent inference that competes with propensity scoring
MP Kim, C Kern, S Goldwasser, F Kreuter, O Reingold
Proceedings of the National Academy of Sciences 119 (4), e2108097119, 2022
342022
Learning from outcomes: Evidence-based rankings
C Dwork, MP Kim, O Reingold, GN Rothblum, G Yona
2019 IEEE 60th Annual Symposium on Foundations of Computer Science (FOCS …, 2019
292019
Loss minimization through the lens of outcome indistinguishability
P Gopalan, L Hu, MP Kim, O Reingold, U Wieder
arXiv preprint arXiv:2210.08649, 2022
272022
On estimating edit distance: Alignment, dimension reduction, and embeddings
M Charikar, O Geri, MP Kim, W Kuszmaul
arXiv preprint arXiv:1804.09907, 2018
182018
Swap Agnostic Learning, or Characterizing Omniprediction via Multicalibration
P Gopalan, MP Kim, O Reingold
arXiv preprint arXiv:2302.06726v2, 2023
152023
Making decisions under outcome performativity
MP Kim, JC Perdomo
14th Innovations in Theoretical Computer Science Conference (ITCS 2023), 2023
152023
Tracking and improving information in the service of fairness
S Garg, MP Kim, O Reingold
Proceedings of the 2019 ACM Conference on Economics and Computation, 809-824, 2019
122019
Beyond bernoulli: Generating random outcomes that cannot be distinguished from nature
C Dwork, MP Kim, O Reingold, GN Rothblum, G Yona
International Conference on Algorithmic Learning Theory, 342-380, 2022
102022
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