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1. What is a Number, That a Large Language Model May Know It?

2. RLHS: Mitigating Misalignment in RLHF with Hindsight Simulation

3. Understanding the Limits of Vision Language Models Through the Lens of the Binding Problem

4. Mind Your Step (by Step): Chain-of-Thought can Reduce Performance on Tasks where Thinking Makes Humans Worse

5. Centaur: a foundation model of human cognition

6. Towards Foundation Models for 3D Vision: How Close Are We?

7. Rational Metareasoning for Large Language Models

8. When a language model is optimized for reasoning, does it still show embers of autoregression? An analysis of OpenAI o1

9. Automating the Practice of Science -- Opportunities, Challenges, and Implications

10. Capturing the Complexity of Human Strategic Decision-Making with Machine Learning

11. Building Machines that Learn and Think with People

12. Deciphering the Factors Influencing the Efficacy of Chain-of-Thought: Probability, Memorization, and Noisy Reasoning

13. Large Language Models Assume People are More Rational than We Really are

14. Representational Alignment Supports Effective Machine Teaching

15. What Should Embeddings Embed? Autoregressive Models Represent Latent Generating Distributions

16. Analyzing the Benefits of Prototypes for Semi-Supervised Category Learning

17. Eliciting the Priors of Large Language Models using Iterated In-Context Learning

18. Learning Human-Aligned Representations with Contrastive Learning and Generative Similarity

19. Language Models Trained to do Arithmetic Predict Human Risky and Intertemporal Choice

20. Embodied LLM Agents Learn to Cooperate in Organized Teams

22. Learning with Language-Guided State Abstractions

23. Program-Based Strategy Induction for Reinforcement Learning

24. Analyzing the Roles of Language and Vision in Learning from Limited Data

25. How do Large Language Models Navigate Conflicts between Honesty and Helpfulness?

26. Distilling Symbolic Priors for Concept Learning into Neural Networks

27. A Rational Analysis of the Speech-to-Song Illusion

28. Human-Like Geometric Abstraction in Large Pre-trained Neural Networks

29. Measuring Implicit Bias in Explicitly Unbiased Large Language Models

30. Comparing Abstraction in Humans and Large Language Models Using Multimodal Serial Reproduction

31. Preference-Conditioned Language-Guided Abstraction

32. Recovering Mental Representations from Large Language Models with Markov Chain Monte Carlo

33. Incoherent Probability Judgments in Large Language Models

34. Deep de Finetti: Recovering Topic Distributions from Large Language Models

35. Learning Human-like Representations to Enable Learning Human Values

36. Reconciling Shared versus Context-Specific Information in a Neural Network Model of Latent Causes

40. Exploring the hierarchical structure of human plans via program generation

41. A Metalearned Neural Circuit for Nonparametric Bayesian Inference

42. Machine Culture

43. Implicit Maximum a Posteriori Filtering via Adaptive Optimization

44. MacGyver: Are Large Language Models Creative Problem Solvers?

45. Bayes in the age of intelligent machines

46. Improving Interpersonal Communication by Simulating Audiences with Language Models

47. Concept Alignment as a Prerequisite for Value Alignment

48. Getting aligned on representational alignment

49. Dimensions of Disagreement: Unpacking Divergence and Misalignment in Cognitive Science and Artificial Intelligence

50. Structurally guided task decomposition in spatial navigation tasks

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