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Chunyuan Zheng
Chunyuan Zheng
Verifierad e-postadress på ucsd.edu
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StableDR: Stabilized Doubly Robust Learning for Recommendation on Data Missing Not at Random
H Li, C Zheng, P Wu
The Eleventh International Conference on Learning Representations, 2023
622023
Propensity Matters: Measuring and Enhancing Balancing for Recommendation
H Li, Y Xiao, C Zheng, P Wu, P Cui
International Conference on Machine Learning, 2023
452023
Balancing unobserved confounding with a few unbiased ratings in debiased recommendations
H Li, Y Xiao, C Zheng, P Wu
Proceedings of the ACM Web Conference 2023, 1305-1313, 2023
442023
TDR-CL: Targeted Doubly Robust Collaborative Learning for Debiased Recommendations
H Li, Y Lyu, C Zheng, P Wu
The Eleventh International Conference on Learning Representations, 2022
432022
Removing hidden confounding in recommendation: a unified multi-task learning approach
H Li, K Wu, C Zheng, Y Xiao, H Wang, Z Geng, F Feng, X He, P Wu
Advances in Neural Information Processing Systems 36, 54614-54626, 2023
292023
Trustworthy Policy Learning under the Counterfactual No-Harm Criterion
H Li, C Zheng, Y Cao, Z Geng, Y Liu, P Wu
International Conference on Machine Learning, 2023
252023
Debiased collaborative filtering with kernel-based causal balancing
H Li, C Zheng, Y Xiao, P Wu, Z Geng, X Chen, P Cui
arXiv preprint arXiv:2404.19596, 2024
182024
Who should be given incentives? counterfactual optimal treatment regimes learning for recommendation
H Li, C Zheng, P Wu, K Kuang, Y Liu, P Cui
Proceedings of the 29th ACM SIGKDD Conference on Knowledge Discovery and …, 2023
132023
Uncovering the propensity identification problem in debiased recommendations
H Zhang, S Wang, H Li, C Zheng, X Chen, L Liu, S Luo, P Wu
2024 IEEE 40th International Conference on Data Engineering (ICDE), 653-666, 2024
112024
Be Aware of the Neighborhood Effect: Modeling Selection Bias under Interference
H Li, C Zheng, S Ding, P Wu, Z Geng, F Feng, X He
arXiv preprint arXiv:2404.19620, 2024
112024
Relaxing the accurate imputation assumption in doubly robust learning for debiased collaborative filtering
H Li, C Zheng, S Wang, K Wu, E Wang, P Wu, Z Geng, X Chen, XH Zhou
Forty-first International Conference on Machine Learning, 2024
102024
Debiased recommendation with noisy feedback
H Li, C Zheng, W Wang, H Wang, F Feng, XH Zhou
Proceedings of the 30th ACM SIGKDD Conference on Knowledge Discovery and …, 2024
92024
Pareto Invariant Representation Learning for Multimedia Recommendation
S Huang, H Li, Q Li, C Zheng, L Liu
Proceedings of the 31th ACM International Conference on Multimedia, 2023
92023
ADRNet: A Generalized Collaborative Filtering Framework Combining Clinical and Non-Clinical Data for Adverse Drug Reaction Prediction
H Li, T Hu, Z Xiong, C Zheng, F Feng, X He, XH Zhou
Proceedings of the 17th ACM Conference on Recommender Systems, 2023
32023
A Two-Stage Pretraining-Finetuning Framework for Treatment Effect Estimation with Unmeasured Confounding
C Zhou, Y Li, C Zheng, H Zhang, M Zhang, H Li, M Gong
arXiv preprint arXiv:2501.08888, 2025
12025
Learning Counterfactual Outcomes Under Rank Preservation
P Wu, H Li, C Zheng, Y Zeng, J Chen, Y Liu, R Guo, K Zhang
arXiv preprint arXiv:2502.06398, 2025
2025
Decomposing and Fusing Intra-and Inter-Sensor Spatio-Temporal Signal for Multi-Sensor Wearable Human Activity Recognition
H Xie, H Li, C Zheng, H Yuan, G Liao, J Liao, L Liu
arXiv preprint arXiv:2501.10917, 2025
2025
Classifying Treatment Responders: Bounds and Algorithms
A Wu, H Li, C Zheng, K Kuang, K Zhang
2025
CAP: Causal Air Quality Index Prediction Under Interference with Unmeasured Confounding
H Yang, G Liao, S Huang, C Zheng, J Liao, Z Gong, H Li, L Liu
2025
Sampling Process Brings Additional Bias for Debiased Recommendation
C Zheng, H Li, H Wang, C Zhou, X Chen, M Gong
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Artiklar 1–20