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20242026
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cs.IR2026

Graph Engineering in the Era of LLM Agents: From Individual Intelligence to System Intelligence

Yuyuan Feng, Zhishang Xiang, Chaobin Yang +32

LLMs have evolved from language generators to autonomous agents capable of complex, long-horizon tasks. This evolution has produced paradigms including Prompt Engineering to elicit…

cs.IR2025

GFM-RAG: Graph Foundation Model for Retrieval Augmented Generation

Linhao Luo, Zicheng Zhao, Gholamreza Haffari +3

Retrieval-augmented generation (RAG) has proven effective in integrating knowledge into large language models (LLMs). However, conventional RAGs struggle to capture complex relatio…

cs.IR2025

Youtu-GraphRAG: Vertically Unified Agents for Graph Retrieval-Augmented Complex Reasoning

Junnan Dong, Siyu An, Yifei Yu +6

Graph retrieval-augmented generation (GraphRAG) has effectively enhanced large language models in complex reasoning by organizing fragmented knowledge into explicitly structured gr…

cs.IR2024

Graph Stochastic Neural Process for Inductive Few-shot Knowledge Graph Completion

Zicheng Zhao, Linhao Luo, Shirui Pan +2

Knowledge graphs (KGs) store enormous facts as relationships between entities. Due to the long-tailed distribution of relations and the incompleteness of KGs, there is growing inte…

cs.IR2024

LLM-Powered Explanations: Unraveling Recommendations Through Subgraph Reasoning

Guangsi Shi, Xiaofeng Deng, Linhao Luo +6

Recommender systems are pivotal in enhancing user experiences across various web applications by analyzing the complicated relationships between users and items. Knowledge graphs(K…