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Feiyang Pan

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Style Miner: Find Significant and Stable Explanatory Factors in Time Series with Constrained Reinforcement Learning

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Mar 21, 2023
Dapeng Li, Feiyang Pan, Jia He, Zhiwei Xu, Dandan Tu, Guoliang Fan

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Learn Continuously, Act Discretely: Hybrid Action-Space Reinforcement Learning For Optimal Execution

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Jul 22, 2022
Feiyang Pan, Tongzhe Zhang, Ling Luo, Jia He, Shuoling Liu

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Follow the Prophet: Accurate Online Conversion Rate Prediction in the Face of Delayed Feedback

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Aug 13, 2021
Haoming Li, Feiyang Pan, Xiang Ao, Zhao Yang, Min Lu, Junwei Pan, Dapeng Liu, Lei Xiao, Qing He

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GuideBoot: Guided Bootstrap for Deep Contextual Bandits

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Jul 18, 2021
Feiyang Pan, Haoming Li, Xiang Ao, Wei Wang, Yanrong Kang, Ao Tan, Qing He

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Trust the Model When It Is Confident: Masked Model-based Actor-Critic

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Oct 10, 2020
Feiyang Pan, Jia He, Dandan Tu, Qing He

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GoChat: Goal-oriented Chatbots with Hierarchical Reinforcement Learning

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May 26, 2020
Jianfeng Liu, Feiyang Pan, Ling Luo

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Towards reliable and fair probabilistic predictions: field-aware calibration with neural networks

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May 28, 2019
Feiyang Pan, Xiang Ao, Pingzhong Tang, Min Lu, Dapeng Liu, Qing He

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Warm Up Cold-start Advertisements: Improving CTR Predictions via Learning to Learn ID Embeddings

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Apr 25, 2019
Feiyang Pan, Shuokai Li, Xiang Ao, Pingzhong Tang, Qing He

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Policy Optimization with Model-based Explorations

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Nov 18, 2018
Feiyang Pan, Qingpeng Cai, An-Xiang Zeng, Chun-Xiang Pan, Qing Da, Hualin He, Qing He, Pingzhong Tang

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Policy Gradients for General Contextual Bandits

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May 22, 2018
Feiyang Pan, Qingpeng Cai, Pingzhong Tang, Fuzhen Zhuang, Qing He

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