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1. M-RewardBench: Evaluating Reward Models in Multilingual Settings

2. Mix Data or Merge Models? Optimizing for Diverse Multi-Task Learning

3. Nexus: Specialization meets Adaptability for Efficiently Training Mixture of Experts

4. Multilingual Arbitrage: Optimizing Data Pools to Accelerate Multilingual Progress

5. To Code, or Not To Code? Exploring Impact of Code in Pre-training

6. The Future of Open Human Feedback

7. Open Problems in Technical AI Governance

8. Consent in Crisis: The Rapid Decline of the AI Data Commons

9. On the Limitations of Compute Thresholds as a Governance Strategy

10. How Does Quantization Affect Multilingual LLMs?

11. RLHF Can Speak Many Languages: Unlocking Multilingual Preference Optimization for LLMs

12. LLM See, LLM Do: Guiding Data Generation to Target Non-Differentiable Objectives

13. The Multilingual Alignment Prism: Aligning Global and Local Preferences to Reduce Harm

14. IrokoBench: A New Benchmark for African Languages in the Age of Large Language Models

15. Critical Learning Periods: Leveraging Early Training Dynamics for Efficient Data Pruning

16. Aya 23: Open Weight Releases to Further Multilingual Progress

17. From One to Many: Expanding the Scope of Toxicity Mitigation in Language Models

18. Back to Basics: Revisiting REINFORCE Style Optimization for Learning from Human Feedback in LLMs

19. Aya Model: An Instruction Finetuned Open-Access Multilingual Language Model

20. Aya Dataset: An Open-Access Collection for Multilingual Instruction Tuning

21. On The Fairness Impacts of Hardware Selection in Machine Learning

22. A large-scale audit of dataset licensing and attribution in AI

23. Generalisable Agents for Neural Network Optimisation

24. The Data Provenance Initiative: A Large Scale Audit of Dataset Licensing & Attribution in AI

25. Locally Differentially Private Document Generation Using Zero Shot Prompting

26. Which Prompts Make The Difference? Data Prioritization For Efficient Human LLM Evaluation

27. Goodtriever: Adaptive Toxicity Mitigation with Retrieval-augmented Models

28. The Grand Illusion: The Myth of Software Portability and Implications for ML Progress

29. Pushing Mixture of Experts to the Limit: Extremely Parameter Efficient MoE for Instruction Tuning

30. When Less is More: Investigating Data Pruning for Pretraining LLMs at Scale

32. Frontier AI Regulation: Managing Emerging Risks to Public Safety

33. Evaluating the Social Impact of Generative AI Systems in Systems and Society

34. Intriguing Properties of Quantization at Scale

35. On the Challenges of Using Black-Box APIs for Toxicity Evaluation in Research

36. FAIR-Ensemble: When Fairness Naturally Emerges From Deep Ensembling

37. Intriguing Properties of Compression on Multilingual Models

38. The Goldilocks of Pragmatic Understanding: Fine-Tuning Strategy Matters for Implicature Resolution by LLMs

39. Metadata Archaeology: Unearthing Data Subsets by Leveraging Training Dynamics

40. Efficient Methods for Natural Language Processing: A Survey

41. Studying the impact of magnitude pruning on contrastive learning methods

42. Robust Distillation for Worst-class Performance

43. When less is more: Simplifying inputs aids neural network understanding

44. The Low-Resource Double Bind: An Empirical Study of Pruning for Low-Resource Machine Translation

45. A Tale Of Two Long Tails

46. When does loss-based prioritization fail?

47. Randomness In Neural Network Training: Characterizing The Impact of Tooling

48. Keep the Gradients Flowing: Using Gradient Flow to Study Sparse Network Optimization

49. Characterising Bias in Compressed Models

50. The Hardware Lottery

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