Papers › AriGraph: Learning Knowledge Graph World Models with Episodic Memory for LLM Agents

AriGraph: Learning Knowledge Graph World Models with Episodic Memory for LLM Agents

5 Jul 2024arXiv:2407.04363archive 2025-07-28

Petr Anokhin, Nikita Semenov, Artyom Sorokin, Dmitry Evseev, Andrey Kravchenko, Mikhail Burtsev, Evgeny Burnaev

Advancements in the capabilities of Large Language Models (LLMs) have created a promising foundation for developing autonomous agents. With the right tools, these agents could learn to solve tasks in new environments by accumulating and updating their knowledge. Current LLM-based agents process past experiences using a full history of observations, summarization, retrieval augmentation. However, these unstructured memory representations do not facilitate the reasoning and planning essential for complex decision-making. In our study, we introduce AriGraph, a novel method wherein the agent constructs and updates a memory graph that integrates semantic and episodic memories while exploring the environment. We demonstrate that our Ariadne LLM agent, consisting of the proposed memory architecture augmented with planning and decision-making, effectively handles complex tasks within interactive text game environments difficult even for human players. Results show that our approach markedly outperforms other established memory methods and strong RL baselines in a range of problems of varying complexity. Additionally, AriGraph demonstrates competitive performance compared to dedicated knowledge graph-based methods in static multi-hop question-answering.

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gather_nograd airi-institute/arigraph/src/dist_utils.py official repository ran · honoured contract fingerprinted MIT (permissive) · 01971cc37e6fe583 · report
get_answer airi-institute/arigraph/musique_test_big.py official repository ran MIT (permissive) · d7983fb0733e663e · report
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varsize_gather_nograd airi-institute/arigraph/src/dist_utils.py official repository unverified MIT (permissive) · b1ad8cd3a7168b7f · report

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Decision MakingMulti-hop Question AnsweringQuestion AnsweringRetrieval

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