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Christina Lee Yu (formerly Christina E. Lee)
Christina Lee Yu (formerly Christina E. Lee)
Verified email at cornell.edu - Homepage
Title
Cited by
Cited by
Year
Pennylane: Automatic differentiation of hybrid quantum-classical computations
V Bergholm, J Izaac, M Schuld, C Gogolin, S Ahmed, V Ajith, MS Alam, ...
arXiv preprint arXiv:1811.04968, 2018
4442018
Peer effects and stability in matching markets
E Bodine-Baron, C Lee, A Chong, B Hassibi, A Wierman
Algorithmic Game Theory: 4th International Symposium, SAGT 2011, Amalfi …, 2011
2202011
Blind regression: Nonparametric regression for latent variable models via collaborative filtering
D Song, CE Lee, Y Li, D Shah
Advances in Neural Information Processing Systems 29, 2016
492016
Blind regression: Nonparametric regression for latent variable models via collaborative filtering
D Song, CE Lee, Y Li, D Shah
Advances in Neural Information Processing Systems 29, 2016
492016
Adaptive discretization for episodic reinforcement learning in metric spaces
SR Sinclair, S Banerjee, CL Yu
Proceedings of the ACM on Measurement and Analysis of Computing Systems 3 (3 …, 2019
402019
Thy friend is my friend: Iterative collaborative filtering for sparse matrix estimation
C Borgs, J Chayes, CE Lee, D Shah
Advances in neural information processing systems 30, 2017
322017
Computing the stationary distribution locally
CE Lee, A Ozdaglar, D Shah
Advances in Neural Information Processing Systems 26, 2013
242013
Nearest neighbors for matrix estimation interpreted as blind regression for latent variable model
Y Li, D Shah, D Song, CL Yu
IEEE Transactions on Information Theory 66 (3), 1760-1784, 2019
23*2019
Reducing crowdsourcing to graphon estimation, statistically
D Shah, C Lee
International Conference on Artificial Intelligence and Statistics, 1741-1750, 2018
202018
Sequential fair allocation: Achieving the optimal envy-efficiency tradeoff curve
SR Sinclair, S Banerjee, CL Yu
ACM SIGMETRICS Performance Evaluation Review 50 (1), 95-96, 2022
192022
Adaptive discretization for model-based reinforcement learning
S Sinclair, T Wang, G Jain, S Banerjee, C Yu
Advances in Neural Information Processing Systems 33, 3858-3871, 2020
182020
Solving systems of linear equations: Locally and asynchronously
CE Lee, AE Ozdaglar, D Shah
arXiv preprint arXiv:1411.2647, 2014
182014
Iterative collaborative filtering for sparse noisy tensor estimation
D Shah, CL Yu
2019 IEEE International Symposium on Information Theory (ISIT), 41-45, 2019
172019
Sequential fair allocation of limited resources under stochastic demands
SR Sinclair, G Jain, S Banerjee, CL Yu
arXiv preprint arXiv:2011.14382, 2020
162020
Nonparametric contextual bandits in metric spaces with unknown metric
N Wanigasekara, C Yu
Advances in Neural Information Processing Systems 32, 2019
132019
Unifying framework for crowd-sourcing via graphon estimation
CE Lee, D Shah
arXiv preprint arXiv:1703.08085, 2017
122017
Iterative collaborative filtering for sparse matrix estimation
C Borgs, JT Chayes, D Shah, CL Yu
Operations Research 70 (6), 3143-3175, 2022
92022
Asynchronous approximation of a single component of the solution to a linear system
CE Lee, A Ozdaglar, D Shah
arXiv preprint arXiv:1411.2647, 2014
82014
Overcoming the long horizon barrier for sample-efficient reinforcement learning with latent low-rank structure
T Sam, Y Chen, CL Yu
Proceedings of the ACM on Measurement and Analysis of Computing Systems 7 (2 …, 2023
72023
Estimating the total treatment effect in randomized experiments with unknown network structure
CL Yu, EM Airoldi, C Borgs, JT Chayes
Proceedings of the National Academy of Sciences 119 (44), e2208975119, 2022
72022
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