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392 results on '"Gu, Quanquan"'

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1. ProteinBench: A Holistic Evaluation of Protein Foundation Models

2. Relative-Translation Invariant Wasserstein Distance

3. Decomposed Direct Preference Optimization for Structure-Based Drug Design

4. Uncertainty-Aware Reward-Free Exploration with General Function Approximation

5. Self-Play Preference Optimization for Language Model Alignment

6. Matching the Statistical Query Lower Bound for k-sparse Parity Problems with Stochastic Gradient Descent

7. Guided Discrete Diffusion for Electronic Health Record Generation

8. Nearly Optimal Algorithms for Contextual Dueling Bandits from Adversarial Feedback

9. Settling Constant Regrets in Linear Markov Decision Processes

10. Feel-Good Thompson Sampling for Contextual Dueling Bandits

11. Antigen-Specific Antibody Design via Direct Energy-based Preference Optimization

12. Protein Conformation Generation via Force-Guided SE(3) Diffusion Models

13. DecompOpt: Controllable and Decomposed Diffusion Models for Structure-based Molecular Optimization

14. Causal Graph ODE: Continuous Treatment Effect Modeling in Multi-agent Dynamical Systems

15. Diffusion Language Models Are Versatile Protein Learners

16. DecompDiff: Diffusion Models with Decomposed Priors for Structure-Based Drug Design

17. Self-Play Fine-Tuning of Diffusion Models for Text-to-Image Generation

18. Reinforcement Learning from Human Feedback with Active Queries

19. Nearly Minimax Optimal Regret for Learning Linear Mixture Stochastic Shortest Path

20. Towards Robust Model-Based Reinforcement Learning Against Adversarial Corruption

21. Mitigating Object Hallucination in Large Vision-Language Models via Classifier-Free Guidance

22. TrustLLM: Trustworthiness in Large Language Models

23. Self-Play Fine-Tuning Converts Weak Language Models to Strong Language Models

24. Autonomous closed-loop mechanistic investigation of molecular electrochemistry via automation.

25. Sparse PCA with Oracle Property

26. Fast Sampling via Discrete Non-Markov Diffusion Models

27. Risk Bounds of Accelerated SGD for Overparameterized Linear Regression

28. Rephrase and Respond: Let Large Language Models Ask Better Questions for Themselves

29. Implicit Bias of Gradient Descent for Two-layer ReLU and Leaky ReLU Networks on Nearly-orthogonal Data

30. Corruption-Robust Offline Reinforcement Learning with General Function Approximation

31. Pure Exploration in Asynchronous Federated Bandits

32. How Many Pretraining Tasks Are Needed for In-Context Learning of Linear Regression?

33. Why Does Sharpness-Aware Minimization Generalize Better Than SGD?

34. Pessimistic Nonlinear Least-Squares Value Iteration for Offline Reinforcement Learning

35. Variance-Aware Regret Bounds for Stochastic Contextual Dueling Bandits

36. Understanding Transferable Representation Learning and Zero-shot Transfer in CLIP

37. Diffusion Language Models Can Perform Many Tasks with Scaling and Instruction-Finetuning

38. The Implicit Bias of Batch Normalization in Linear Models and Two-layer Linear Convolutional Neural Networks

39. Robust Learning with Progressive Data Expansion Against Spurious Correlation

40. Domain Specialization as the Key to Make Large Language Models Disruptive: A Comprehensive Survey

41. Horizon-free Reinforcement Learning in Adversarial Linear Mixture MDPs

42. Uniform-PAC Guarantees for Model-Based RL with Bounded Eluder Dimension

43. Cooperative Multi-Agent Reinforcement Learning: Asynchronous Communication and Linear Function Approximation

44. Personalized Federated Learning under Mixture of Distributions

46. Optimal Horizon-Free Reward-Free Exploration for Linear Mixture MDPs

47. On the Interplay Between Misspecification and Sub-optimality Gap in Linear Contextual Bandits

48. The Benefits of Mixup for Feature Learning

49. Borda Regret Minimization for Generalized Linear Dueling Bandits

50. Benign Overfitting for Two-layer ReLU Convolutional Neural Networks

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