Portfolio item number 1
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Published in Proceedings of the Thirty-Second International Joint Conference on Artificial Intelligence (IJCAI 2023), 2023
Recommended citation: F. Wu, G. Zhao, X. Qian, L.H. Lehman. (2023). "A Diffusion Model with Contrastive Learning for ICU False Arrhythmia Alarm Reduction." Proceedings of the Thirty-Second International Joint Conference on Artificial Intelligence (IJCAI 2023).
Published in Advances in Neural Information Processing Systems 36 (NeurIPS 2023), 2023
Recommended citation: L. Lehman, B. Moody, H. Deep, F. Wu, H. Saeed, L. McCullum, D. Perry, et al. (2023). "VTaC: A Benchmark Dataset of Ventricular Tachycardia Alarms from ICU Monitors." Advances in Neural Information Processing Systems 36, 38827-38843.
Published in IEEE Transactions on Biomedical Engineering, 2023
Recommended citation: F. Wu, G. Zhao, Y. Zhou, X. Qian, B.K. Elias, L.H. Lehman. (2023). "Forecasting Treatment Outcomes Over Time Using Alternating Deep Sequential Models." IEEE Transactions on Biomedical Engineering, 71(4), 1237-1246.
Published in Proceedings of the 9th Machine Learning for Healthcare Conference (MLHC 2024), PMLR 252, 2024
Recommended citation: H. Xiong*, F. Wu*, L. Deng, M. Su, L.H. Lehman. (2024). "G-Transformer: Counterfactual Outcome Prediction under Dynamic and Time-varying Treatment Regimes." Proceedings of the 9th Machine Learning for Healthcare Conference, PMLR 252. (*equal contribution)
Published in Proceedings of Machine Learning Research 259 (ML4H 2024), 2024
Recommended citation: L. Deng, H. Xiong, F. Wu, S. Kapoor, S. Ghosh, Z. Shahn, L.H. Lehman. (2024). "Uncertainty Quantification for Conditional Treatment Effect Estimation under Dynamic Treatment Regimes." Proceedings of Machine Learning Research, 259, 248.
Published in IEEE Transactions on Knowledge and Data Engineering, 2024
Recommended citation: F. Wu, G. Zhao, T. Li, J. Shen, X. Qian. (2024). "Improving Conversational Recommendation System through Personalized Preference Modeling and Knowledge Graph." IEEE Transactions on Knowledge and Data Engineering, 36(12), 8529-8540.
Published in International Conference on Intelligent Computing (ICIC 2025), 2025
Recommended citation: Y. Liu, F. Wu, M.X. Zhu. (2025). "Alleviating User-Sensitive Bias with Fair Generative Sequential Recommendation Model." International Conference on Intelligent Computing, 223-235.
Published in Advances in Neural Information Processing Systems (NeurIPS 2025), 2025
Recommended citation: X. Lan, F. Wu, K. He, Q. Zhao, S. Hong, M. Feng. (2025). "GEM: Empowering MLLM for Grounded ECG Understanding with Time Series and Images." NeurIPS 2025.
Published in npj Digital Medicine, 2026
Recommended citation: Q. Xu, F. Wu, Z.Y.C. Thong, M.S.L. Goh, P. Chen, J. Yang, C. Huang, Z. Zhang, et al. (2026). "HRRT: Hierarchical Reinforcement Learning for Renal Replacement Therapy Decision Support." npj Digital Medicine.
Published in arXiv preprint arXiv:2602.03305, 2026
Recommended citation: Q. Xu, G. Habib, F. Wu, Y. Du, Z. Chen, S. Mishra, D. Perera, M. Feng. (2026). "medR: Reward Engineering for Clinical Offline Reinforcement Learning via Tri-Drive Potential Functions." arXiv preprint arXiv:2602.03305. https://arxiv.org/abs/2602.03305
Published in arXiv preprint arXiv:2602.17251, 2026
Recommended citation: J. Ma*, F. Wu*, Y. Xing, Q. Lin, T. Liu, C. Liu, Z. Jia, M. Feng. (2026). "Structured Prototype-Guided Adaptation for EEG Foundation Models." arXiv preprint arXiv:2602.17251. (*equal contribution) https://arxiv.org/abs/2602.17251
Published in International Conference on Learning Representations (ICLR 2026), 2026
Recommended citation: J. Ma*, F. Wu*, Q. Lin, Y. Xing, C. Liu, Z. Jia, M. Feng. (2026). "CodeBrain: Bridging Decoupled Tokenizer and Multi-Scale Architecture for EEG Foundation Model." ICLR 2026. (*equal contribution)
Published in arXiv preprint arXiv:2606.19888, 2026
Recommended citation: F. Wu, H. Deep, E. Lehman, S. Kapoor, G. Zhao, R. Krishnan, G. Clifford, et al. (2026). "SL-S4Wave: Self-Supervised Learning of Physiological Waveforms with Structured State Space Models." arXiv preprint arXiv:2606.19888. https://arxiv.org/abs/2606.19888
Published in ACM SIGKDD Conference on Knowledge Discovery and Data Mining (KDD 2026), 2026
Recommended citation: Q. Xu, G. Habib, F. Wu, D. Perera, M. Feng. (2026). "MedDreamer: Model-Based Reinforcement Learning with Latent Imagination on Complex EHRs for Clinical Decision Support." KDD 2026.
Published:
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Published:
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Undergraduate course, University 1, Department, 2014
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Workshop, University 1, Department, 2015
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