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1. Large Language Models Prompting With Episodic Memory

2. Variable-Agnostic Causal Exploration for Reinforcement Learning

3. Composite Concept Extraction through Backdooring

4. Multi-Reference Preference Optimization for Large Language Models

5. Novel Kernel Models and Exact Representor Theory for Neural Networks Beyond the Over-Parameterized Regime

6. Enhancing Length Extrapolation in Sequential Models with Pointer-Augmented Neural Memory

7. Enhanced Bayesian Optimization via Preferential Modeling of Abstract Properties

8. Revisiting the Dataset Bias Problem from a Statistical Perspective

9. Enabling discovery of materials through enhanced generalisability of deep learning models

10. Intelligent Sensing to Inform and Learn (InSTIL): A Scalable and Governance-Aware Platform for Universal, Smartphone-Based Digital Phenotyping for Research and Clinical Applications

11. Root Cause Explanation of Outliers under Noisy Mechanisms

12. Learn to Unlearn for Deep Neural Networks: Minimizing Unlearning Interference with Gradient Projection

13. LaGR-SEQ: Language-Guided Reinforcement Learning with Sample-Efficient Querying

14. Beyond Surprise: Improving Exploration Through Surprise Novelty

15. Predictive Modeling through Hyper-Bayesian Optimization

16. Persistent-Transient Duality: A Multi-mechanism Approach for Modeling Human-Object Interaction

17. Enhanced Bayesian Optimization via Preferential Modeling of Abstract Properties

18. A web-based video messaging intervention for suicide prevention in men: study protocol for a five-armed randomised controlled trial

20. BO-Muse: A human expert and AI teaming framework for accelerated experimental design

21. Zero-shot Sim2Real Adaptation Across Environments

22. Gradient Descent in Neural Networks as Sequential Learning in RKBS

23. Memory-Augmented Theory of Mind Network

24. On Instance-Dependent Bounds for Offline Reinforcement Learning with Linear Function Approximation

25. Momentum Adversarial Distillation: Handling Large Distribution Shifts in Data-Free Knowledge Distillation

26. Black-box Few-shot Knowledge Distillation

27. Guiding Visual Question Answering with Attention Priors

28. Fast Conditional Network Compression Using Bayesian HyperNetworks

29. Persistent-Transient Duality in Human Behavior Modeling

30. Learning to Constrain Policy Optimization with Virtual Trust Region

31. Learning to Transfer Role Assignment Across Team Sizes

32. Learning Theory of Mind via Dynamic Traits Attribution

33. Regret Bounds for Expected Improvement Algorithms in Gaussian Process Bandit Optimization

34. Towards Effective and Robust Neural Trojan Defenses via Input Filtering

35. Uncertainty Aware System Identification with Universal Policies

36. Fast Model-based Policy Search for Universal Policy Networks

37. Episodic Policy Gradient Training

38. Offline Neural Contextual Bandits: Pessimism, Optimization and Generalization

39. Model-Based Episodic Memory Induces Dynamic Hybrid Controls

40. Balanced Q-learning: Combining the Influence of Optimistic and Pessimistic Targets

41. Semantic Host-free Trojan Attack

42. A Field Guide to Scientific XAI: Transparent and Interpretable Deep Learning for Bioinformatics Research

43. Plug and Play, Model-Based Reinforcement Learning

44. Clustering by Maximizing Mutual Information Across Views

45. Combining Online Learning and Offline Learning for Contextual Bandits with Deficient Support

46. A New Representation of Successor Features for Transfer across Dissimilar Environments

48. A Spatio-temporal Attention-based Model for Infant Movement Assessment from Videos

49. Bayesian Optimistic Optimisation with Exponentially Decaying Regret

50. Intuitive Physics Guided Exploration for Sample Efficient Sim2real Transfer

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