Comparing LLM-generated and human-authored news text using formal syntactic theory
Olga Zamaraeva, Dan Flickinger, Francis Bond, Carlos Gómez-Rodríguez
2025年份
8被引次数
2顶会引用
摘要
This study provides the first comprehensive comparison of New York Times-style text generated by six large language models against real, human-authored NYT writing. The comparison is based on a formal syntactic theory. We use Head-driven Phrase Structure Grammar (HPSG) to analyze the grammatical structure of the texts. We then investigate and illustrate the differences in the distributions of HPSG grammar types, revealing systematic distinctions between human and LLM-generated writing. These findings contribute to a deeper understanding of the syntactic behavior of LLMs as well as humans, within the NYT genre.
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- More Aligned, Less Diverse? Analyzing the Grammar and Lexicon of Two Generations of LLMsAdrián Gude, Roi Santos-Rios, Francis Bond, Dan Flickinger 等ACL 2026
- Learn-to-learn on Arbitrary Textual Conditioning: A Hypernetwork-Driven Meta-gated LLMLuo Ji, Qi Qin, Ningyuan Xi, Teng Chen 等ICML 2026
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