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CMNIE: An Information Extraction Benchmark for Chinese Military News

Researchers introduced CMNIE, an information extraction benchmark for Chinese military news containing 13,000 instances drawn from public Chinese military news and manually annotated for 7 event types, 10 argument roles, 7 entity types, and 8 relation types. The benchmark jointly annotates event triggers, event arguments, named entities, and entity relations under a unified domain schema, and evaluations of supervised IE models, zero-shot large language models, and fine-tuned LLM-based extraction methods show CMNIE remains challenging, particularly for relation extraction and exact matching of event-argument spans, with zero-shot LLMs often identifying relevant semantic units but failing to match gold span boundaries exactly.

by read1 min views2 publishedSep 11, 2026

arXiv:2609.10722v1 Announce Type: new Abstract: Structured extraction from Chinese military news supports intelligence analysis, decision-making, and knowledge base construction. However, existing resources provide limited support for joint informa?tion extraction in this domain, especially when events, event arguments, entities, and relations must be modeled together. We present CMNIE, an information extraction benchmark for Chinese military news. Extend?ing military-domain resources beyond document-level event annotations, CMNIE jointly annotates event triggers, event arguments, named enti?ties, and entity relations under a unified domain schema. The dataset contains 13,000 instances collected from public Chinese military news, with manual annotations for 7 event types, 10 argument roles, 7 entity types, and 8 relation types. We evaluate supervised IE models, zero-shot large language models, and fine-tuned LLM-based extraction methods on a shared test set. Experimental results show that CMNIE remains chal?lenging, especially for relation extraction and exact matching of event?argument spans; zero-shot LLMs often identify relevant semantic units but fail to match gold span boundaries exactly. CMNIE provides a stan?dardized benchmark for studying schema adherence, exact span match?ing, and joint structured extraction in specialized Chinese news.

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