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Narrative Interpolation for Generating and Understanding Stories (2008.07466v1)

Published 17 Aug 2020 in cs.CL

Abstract: We propose a method for controlled narrative/story generation where we are able to guide the model to produce coherent narratives with user-specified target endings by interpolation: for example, we are told that Jim went hiking and at the end Jim needed to be rescued, and we want the model to incrementally generate steps along the way. The core of our method is an interpolation model based on GPT-2 which conditions on a previous sentence and a next sentence in a narrative and fills in the gap. Additionally, a reranker helps control for coherence of the generated text. With human evaluation, we show that ending-guided generation results in narratives which are coherent, faithful to the given ending guide, and require less manual effort on the part of the human guide writer than past approaches.

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Authors (3)
  1. Su Wang (66 papers)
  2. Greg Durrett (118 papers)
  3. Katrin Erk (23 papers)
Citations (33)

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