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      Sonnet or Not, Bot? Poetry Evaluation for Large Models and Datasets

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          Abstract

          Large language models (LLMs) can now generate and recognize text in a wide range of styles and genres, including highly specialized, creative genres like poetry. But what do LLMs really know about poetry? What can they know about poetry? We develop a task to evaluate how well LLMs recognize a specific aspect of poetry, poetic form, for more than 20 forms and formal elements in the English language. Poetic form captures many different poetic features, including rhyme scheme, meter, and word or line repetition. We use this task to reflect on LLMs' current poetic capabilities, as well as the challenges and pitfalls of creating NLP benchmarks for poetry and for other creative tasks. In particular, we use this task to audit and reflect on the poems included in popular pretraining datasets. Our findings have implications for NLP researchers interested in model evaluation, digital humanities and cultural analytics scholars, and cultural heritage professionals.

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          Author and article information

          Journal
          27 June 2024
          Article
          2406.18906
          8885746e-b75c-44d6-86c0-ca9914605308

          http://creativecommons.org/licenses/by-nc-sa/4.0/

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          cs.CL

          Theoretical computer science
          Theoretical computer science

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