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SPRING: Studying the Paper and Reasoning to Play Games

  • Yue Wu
  • , Shrimai Prabhumoye
  • , So Yeon Min
  • , Yonatan Bisk
  • , Ruslan Salakhutdinov
  • , Amos Azaria
  • , Tom Mitchell
  • , Yuanzhi Li

نتاج البحث: فصل من :كتاب / تقرير / مؤتمرمنشور من مؤتمرمراجعة النظراء

9 اقتباسات (Scopus)

ملخص

Open-world survival games pose significant challenges for AI algorithms due to their multi-tasking, deep exploration, and goal prioritization requirements.Despite reinforcement learning (RL) being popular for solving games, its high sample complexity limits its effectiveness in complex open-world games like Crafter or Minecraft.We propose a novel approach, SPRING, to read Crafter's original academic paper and use the knowledge learned to reason and play the game through a large language model (LLM).Prompted with the LATEX source as game context and a description of the agent's current observation, our SPRING framework employs a directed acyclic graph (DAG) with game-related questions as nodes and dependencies as edges.We identify the optimal action to take in the environment by traversing the DAG and calculating LLM responses for each node in topological order, with the LLM's answer to final node directly translating to environment actions.In our experiments, we study the quality of in-context “reasoning” induced by different forms of prompts under the setting of the Crafter environment.Our experiments suggest that LLMs, when prompted with consistent chain-of-thought, have great potential in completing sophisticated high-level trajectories.Quantitatively, SPRING with GPT-4 outperforms all state-of-the-art RL baselines, trained for 1M steps, without any training.Finally, we show the potential of Crafter as a test bed for LLMs.Code at github.com/holmeswww/SPRING.

اللغة الأصليةالإنجليزيّة
عنوان منشور المضيفAdvances in Neural Information Processing Systems 36 - 37th Conference on Neural Information Processing Systems, NeurIPS 2023
المحررونA. Oh, T. Neumann, A. Globerson, K. Saenko, M. Hardt, S. Levine
رقم المعيار الدولي للكتب (الإلكتروني)9781713899921
حالة النشرنُشِر - 2023
الحدث37th Conference on Neural Information Processing Systems, NeurIPS 2023 - New Orleans, الولايات المتّحدة
المدة: 10 ديسمبر 202316 ديسمبر 2023

سلسلة المنشورات

الاسمAdvances in Neural Information Processing Systems
مستوى الصوت36
رقم المعيار الدولي للدوريات (المطبوع)1049-5258

!!Conference

!!Conference37th Conference on Neural Information Processing Systems, NeurIPS 2023
الدولة/الإقليمالولايات المتّحدة
المدينةNew Orleans
المدة10/12/2316/12/23

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