Xinyang Yi
Xinyang Yi
Google Research & Machine Intelligence
Verified email at google.com
Title
Cited by
Cited by
Year
Fast algorithms for robust PCA via gradient descent
X Yi, D Park, Y Chen, C Caramanis
Advances in Neural Information Processing Systems, 361-369, 2016
2272016
Modeling task relationships in multi-task learning with multi-gate mixture-of-experts
J Ma, Z Zhao, X Yi, J Chen, L Hong, EH Chi
Proceedings of the 24th ACM SIGKDD International Conference on Knowledge …, 2018
1492018
Recommending what video to watch next: a multitask ranking system
Z Zhao, L Hong, L Wei, J Chen, A Nath, S Andrews, A Kumthekar, ...
Proceedings of the 13th ACM Conference on Recommender Systems, 43-51, 2019
1132019
Alternating minimization for mixed linear regression
X Yi, C Caramanis, S Sanghavi
International Conference on Machine Learning, 613-621, 2014
1122014
Regularized em algorithms: A unified framework and statistical guarantees
X Yi, C Caramanis
arXiv preprint arXiv:1511.08551, 2015
732015
A convex formulation for mixed regression with two components: Minimax optimal rates
Y Chen, X Yi, C Caramanis
Conference on Learning Theory, 560-604, 2014
652014
Sampling-bias-corrected neural modeling for large corpus item recommendations
X Yi, J Yang, L Hong, DZ Cheng, L Heldt, A Kumthekar, Z Zhao, L Wei, ...
Proceedings of the 13th ACM Conference on Recommender Systems, 269-277, 2019
422019
Solving a mixture of many random linear equations by tensor decomposition and alternating minimization
X Yi, C Caramanis, S Sanghavi
arXiv preprint arXiv:1608.05749, 2016
422016
Binary embedding: Fundamental limits and fast algorithm
X Yi, C Caramanis, E Price
International Conference on Machine Learning, 2162-2170, 2015
422015
Optimal linear estimation under unknown nonlinear transform
X Yi, Z Wang, C Caramanis, H Liu
Advances in neural information processing systems 28, 1549, 2015
392015
Off-policy learning in two-stage recommender systems
J Ma, Z Zhao, X Yi, J Yang, M Chen, J Tang, L Hong, EH Chi
Proceedings of The Web Conference 2020, 463-473, 2020
252020
Efficient training on very large corpora via gramian estimation
W Krichene, N Mayoraz, S Rendle, L Zhang, X Yi, L Hong, E Chi, ...
arXiv preprint arXiv:1807.07187, 2018
192018
Mixed negative sampling for learning two-tower neural networks in recommendations
J Yang, X Yi, D Zhiyuan Cheng, L Hong, Y Li, S Xiaoming Wang, T Xu, ...
Companion Proceedings of the Web Conference 2020, 441-447, 2020
162020
Learning multi-granular quantized embeddings for large-vocab categorical features in recommender systems
WC Kang, DZ Cheng, T Chen, X Yi, D Lin, L Hong, EH Chi
Companion Proceedings of the Web Conference 2020, 562-566, 2020
152020
Minimax gaussian classification & clustering
T Li, X Yi, C Carmanis, P Ravikumar
Artificial Intelligence and Statistics, 1-9, 2017
122017
Chi, and John Anderson. 2018. Efficient training on very large corpora via gramian estimation
W Krichene, N Mayoraz, S Rendle, L Zhang, X Yi, L Hong
arXiv preprint arXiv:1807.07187, 2018
112018
Convex and nonconvex formulations for mixed regression with two components: Minimax optimal rates
Y Chen, X Yi, C Caramanis
IEEE Transactions on Information Theory 64 (3), 1738-1766, 2017
92017
Chi,“
Z Zhao, L Hong, L Wei, J Chen, A Nath, S Andrews, A Kumthekar, ...
Recommending What Video to Watch Next: A Multitask Ranking System,” in …, 2019
72019
Deep Hash Embedding for Large-Vocab Categorical Feature Representations
WC Kang, DZ Cheng, T Yao, X Yi, T Chen, L Hong, EH Chi
arXiv preprint arXiv:2010.10784, 2020
52020
H Chi, Steve Tjoa, Evan Ettinger, et al. 2020. Self-supervised Learning for Deep Models in Recommendations
T Yao, X Yi, DZ Cheng, F Yu, A Menon, L Hong
arXiv preprint arXiv:2007.12865, 2020
52020
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