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Shakespearizing Modern Language Using Copy-Enriched Sequence to Sequence Models

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Variations in writing styles are commonly used to adapt the content to a specific context, audience, or purpose. However, applying stylistic variations is still largely a manual process, and there have been little efforts towards automating it. In this paper we explore automated methods to transform text from modern English to Shakespearean English using an end to end trainable neural model with pointers to enable copy action. To tackle limited amount of parallel data, we pre-train embeddings of words by leveraging external dictionaries mapping Shakespearean words to modern English words as well as additional text.

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Publication details

DOI
10.18653/v1/w17-4902
OpenAlex
W2732863878
Document type
conference-paper
Language
EN
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