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Xiaojie Mao (毛小介)
Xiaojie Mao (毛小介)
Assistant Professor, School of Economics and Management, Tsinghua University
Potvrđena adresa e-pošte na sem.tsinghua.edu.cn - Početna stranica
Naslov
Citirano
Citirano
Godina
Fairness under unawareness: Assessing disparity when protected class is unobserved
J Chen, N Kallus, X Mao, G Svacha, M Udell
Proceedings of the conference on fairness, accountability, and transparency …, 2019
3162019
Assessing algorithmic fairness with unobserved protected class using data combination
N Kallus, X Mao, A Zhou
Management Science 68 (3), 1959-1981, 2022
1612022
Interval estimation of individual-level causal effects under unobserved confounding
N Kallus, X Mao, A Zhou
The 22nd international conference on artificial intelligence and statistics …, 2019
962019
Causal inference with noisy and missing covariates via matrix factorization
N Kallus, X Mao, M Udell
Advances in neural information processing systems 31, 2018
762018
Causal inference under unmeasured confounding with negative controls: A minimax learning approach
N Kallus, X Mao, M Uehara
arXiv preprint arXiv:2103.14029, 2021
592021
On the role of surrogates in the efficient estimation of treatment effects with limited outcome data
N Kallus, X Mao
arXiv preprint arXiv:2003.12408, 2020
582020
Stochastic optimization forests
N Kallus, X Mao
Management Science 69 (4), 1975-1994, 2023
512023
Fast rates for contextual linear optimization
Y Hu, N Kallus, X Mao
Management Science 68 (6), 4236-4245, 2022
382022
Smooth contextual bandits: Bridging the parametric and non-differentiable regret regimes
Y Hu, N Kallus, X Mao
Conference on Learning Theory, 2007-2010, 2020
352020
Doubly robust distributionally robust off-policy evaluation and learning
N Kallus, X Mao, K Wang, Z Zhou
International Conference on Machine Learning, 10598-10632, 2022
272022
Long-term causal inference under persistent confounding via data combination
G Imbens, N Kallus, X Mao, Y Wang
arXiv preprint arXiv:2202.07234, 2022
232022
Controlling for unmeasured confounding in panel data using minimal bridge functions: From two-way fixed effects to factor models
G Imbens, N Kallus, X Mao
arXiv preprint arXiv:2108.03849, 2021
222021
Localized debiased machine learning: Efficient inference on quantile treatment effects and beyond
N Kallus, X Mao, M Uehara
arXiv preprint arXiv:1912.12945, 2019
192019
Fast rates for contextual linear optimization
Y Hu, N Kallus, X Mao
arXiv preprint arXiv:2011.03030, 2020
112020
Smooth contextual bandits: Bridging the parametric and nondifferentiable regret regimes
Y Hu, N Kallus, X Mao
Operations Research 70 (6), 3261-3281, 2022
82022
Localized debiased machine learning: Efficient estimation of quantile treatment effects, conditional value at risk, and beyond
N Kallus, X Mao, M Uehara
stat 1050, 30, 2019
82019
Minimax Instrumental Variable Regression and Convergence Guarantees without Identification or Closedness
A Bennett, N Kallus, X Mao, W Newey, V Syrgkanis, M Uehara
The Thirty Sixth Annual Conference on Learning Theory, 2291-2318, 2023
72023
Inference on strongly identified functionals of weakly identified functions
A Bennett, N Kallus, X Mao, W Newey, V Syrgkanis, M Uehara
arXiv preprint arXiv:2208.08291, 2022
62022
Source condition double robust inference on functionals of inverse problems
A Bennett, N Kallus, X Mao, W Newey, V Syrgkanis, M Uehara
arXiv preprint arXiv:2307.13793, 2023
22023
Localized Debiased Machine Learning: Efficient Inference on Quantile Treatment Effects and Beyond
N Kallus, X Mao, M Uehara
Journal of Machine Learning Research 25 (16), 1-59, 2024
12024
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