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1. Automated Design of Agentic Systems

2. The AI Scientist: Towards Fully Automated Open-Ended Scientific Discovery

3. OMNI-EPIC: Open-endedness via Models of human Notions of Interestingness with Environments Programmed in Code

4. Intelligent Go-Explore: Standing on the Shoulders of Giant Foundation Models

5. Scaling Instructable Agents Across Many Simulated Worlds

6. Genie: Generative Interactive Environments

7. Managing extreme AI risks amid rapid progress

8. Quality-Diversity through AI Feedback

9. Quality Diversity through Human Feedback: Towards Open-Ended Diversity-Driven Optimization

10. Reset It and Forget It: Relearning Last-Layer Weights Improves Continual and Transfer Learning

11. First-Explore, then Exploit: Meta-Learning Intelligent Exploration

12. OMNI: Open-endedness via Models of human Notions of Interestingness

13. Thought Cloning: Learning to Think while Acting by Imitating Human Thinking

14. Video PreTraining (VPT): Learning to Act by Watching Unlabeled Online Videos

15. Continual learning under domain transfer with sparse synaptic bursting

16. Multi-task curriculum learning in a complex, visual, hard-exploration domain: Minecraft

17. Open Questions in Creating Safe Open-ended AI: Tensions Between Control and Creativity

18. Synthetic Petri Dish: A Novel Surrogate Model for Rapid Architecture Search

19. First return, then explore

20. Fiber: A Platform for Efficient Development and Distributed Training for Reinforcement Learning and Population-Based Methods

21. Enhanced POET: Open-Ended Reinforcement Learning through Unbounded Invention of Learning Challenges and their Solutions

22. Scaling MAP-Elites to Deep Neuroevolution

23. Backpropamine: training self-modifying neural networks with differentiable neuromodulated plasticity

24. Learning to Continually Learn

25. Generative Teaching Networks: Accelerating Neural Architecture Search by Learning to Generate Synthetic Training Data

26. A deep active learning system for species identification and counting in camera trap images

27. Evolvability ES: Scalable and Direct Optimization of Evolvability

28. AI-GAs: AI-generating algorithms, an alternate paradigm for producing general artificial intelligence

29. Understanding Neural Networks via Feature Visualization: A survey

30. Go-Explore: a New Approach for Hard-Exploration Problems

31. Paired Open-Ended Trailblazer (POET): Endlessly Generating Increasingly Complex and Diverse Learning Environments and Their Solutions

32. Robustness to Out-of-Distribution Inputs via Task-Aware Generative Uncertainty

33. An Atari Model Zoo for Analyzing, Visualizing, and Comparing Deep Reinforcement Learning Agents

34. Evolving Multimodal Robot Behavior via Many Stepping Stones with the Combinatorial Multi-Objective Evolutionary Algorithm

35. Deep Curiosity Search: Intra-Life Exploration Can Improve Performance on Challenging Deep Reinforcement Learning Problems

36. VINE: An Open Source Interactive Data Visualization Tool for Neuroevolution

37. Differentiable plasticity: training plastic neural networks with backpropagation

38. The Surprising Creativity of Digital Evolution: A Collection of Anecdotes from the Evolutionary Computation and Artificial Life Research Communities

39. On the Relationship Between the OpenAI Evolution Strategy and Stochastic Gradient Descent

40. Improving Exploration in Evolution Strategies for Deep Reinforcement Learning via a Population of Novelty-Seeking Agents

41. ES Is More Than Just a Traditional Finite-Difference Approximator

42. Safe Mutations for Deep and Recurrent Neural Networks through Output Gradients

43. Deep Neuroevolution: Genetic Algorithms Are a Competitive Alternative for Training Deep Neural Networks for Reinforcement Learning

44. Biological underpinnings for lifelong learning machines

45. Diffusion-based neuromodulation can eliminate catastrophic forgetting in simple neural networks

46. The Emergence of Canalization and Evolvability in an Open-Ended, Interactive Evolutionary System

47. Automatically identifying, counting, and describing wild animals in camera-trap images with deep learning

48. Resolving the paradox of evolvability with learning theory: How evolution learns to improve evolvability on rugged fitness landscapes

49. Plug & Play Generative Networks: Conditional Iterative Generation of Images in Latent Space

50. Synthesizing the preferred inputs for neurons in neural networks via deep generator networks

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