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LexRel: Benchmarking Legal Relation Extraction for Chinese Civil Cases

Published: December 14, 2025 | arXiv ID: 2512.12643v1

By: Yida Cai , Ranjuexiao Hu , Huiyuan Xie and more

Potential Business Impact:

Helps computers understand Chinese legal cases better.

Business Areas:
Natural Language Processing Artificial Intelligence, Data and Analytics, Software

Legal relations form a highly consequential analytical framework of civil law system, serving as a crucial foundation for resolving disputes and realizing values of the rule of law in judicial practice. However, legal relations in Chinese civil cases remain underexplored in the field of legal artificial intelligence (legal AI), largely due to the absence of comprehensive schemas. In this work, we firstly introduce a comprehensive schema, which contains a hierarchical taxonomy and definitions of arguments, for AI systems to capture legal relations in Chinese civil cases. Based on this schema, we then formulate legal relation extraction task and present LexRel, an expert-annotated benchmark for legal relation extraction in Chinese civil law. We use LexRel to evaluate state-of-the-art large language models (LLMs) on legal relation extractions, showing that current LLMs exhibit significant limitations in accurately identifying civil legal relations. Furthermore, we demonstrate that incorporating legal relations information leads to consistent performance gains on other downstream legal AI tasks.

Country of Origin
🇨🇳 China

Page Count
14 pages

Category
Computer Science:
Computation and Language