GPT-2-based Human-in-the-loop Theatre Play Script Generation

Rudolf Rosa, Patrícia Schmidtová, Ondrej Dusek, Tomáš Musil, D. Mareček, Saad Obaid, Marie Nováková, Klára Vosecká, Josef Doležal
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引用次数: 1

Abstract

We experiment with adapting generative language models for the generation of long coherent narratives in the form of theatre plays. Since fully automatic generation of whole plays is not currently feasible, we created an interactive tool that allows a human user to steer the generation somewhat while minimizing intervention. We pursue two approaches to long-text generation: a flat generation with summarization of context, and a hierarchical text-to-text two-stage approach, where a synopsis is generated first and then used to condition generation of the final script. Our preliminary results and discussions with theatre professionals show improvements over vanilla language model generation, but also identify important limitations of our approach.
基于gpt -2的人在循环戏剧剧本生成
我们尝试适应生成语言模型,以戏剧戏剧的形式生成长连贯的叙事。由于目前还无法实现全集的全自动生成,我们创建了一个交互式工具,允许人类用户在一定程度上控制生成,同时最大限度地减少干预。我们采用两种方法来生成长文本:一种是具有上下文摘要的平面生成,另一种是分层的文本到文本两阶段方法,其中首先生成摘要,然后用于最终脚本的条件生成。我们的初步结果和与戏剧专业人士的讨论表明,相比于普通语言模型生成,我们有所改进,但也发现了我们方法的重要局限性。
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