具有话语层面规划与美学特征的零射十四行诗生成

Yufei Tian, Nanyun Peng
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引用次数: 14

摘要

诗歌的生成,以及创造性语言的生成,通常都缺乏大量的训练数据。在本文中,我们提出了一种新的框架来生成十四行诗,而不需要诗歌训练。我们设计了一个分层框架,在解码前对诗歌草图进行规划。具体来说,内容规划模块对非诗歌文本进行了训练,以获得话语层面的连贯性;然后,韵律模块生成韵律词,抛光模块引入意象和明喻以达到美学目的。最后,我们设计了一种约束解码算法,对生成的十四行诗进行韵律约束。自动和人工评估表明,我们的多阶段方法没有对诗歌语料库进行训练,产生的十四行诗比几个强大的基线更连贯、更诗意、更有创造性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Zero-shot Sonnet Generation with Discourse-level Planning and Aesthetics Features
Poetry generation, and creative language generation in general, usually suffers from the lack of large training data. In this paper, we present a novel framework to generate sonnets that does not require training on poems. We design a hierarchical framework which plans the poem sketch before decoding. Specifically, a content planning module is trained on non-poetic texts to obtain discourse-level coherence; then a rhyme module generates rhyme words and a polishing module introduces imagery and similes for aesthetics purposes. Finally, we design a constrained decoding algorithm to impose the meter-and-rhyme constraint of the generated sonnets. Automatic and human evaluation show that our multi-stage approach without training on poem corpora generates more coherent, poetic, and creative sonnets than several strong baselines.
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