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Stylistic Chinese Poetry Generation via Unsupervised Style Disentanglement

机译:通过无监督的风格解剖术语的文体中国诗歌一代

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The ability to write diverse poems in different styles under the same poetic imagery is an important characteristic of human poetry writing. Most previous works on automatic Chinese poetry generation focused on improving the coherency among lines. Some work explored style transfer but suffered from expensive expert labeling of poem styles. In this paper, we target on stylistic poetry generation in a fully unsupervised manner for the first time. We propose a novel model which requires no supervised style labeling by incorporating mutual information, a concept in information theory, into modeling. Experimental results show that our model is able to generate stylistic poems without losing fluency and coherency.
机译:在同一诗意图像下在不同风格中写不同诗歌的能力是人类诗歌写作的重要特征。最先前的自动中国诗歌的作品集中于改善线条之间的一致性。一些工作探索的风格转移,但遭受昂贵的专家标签诗歌风格。在本文中,我们首次以完全无人监督的方式瞄准风格诗歌生成。我们提出了一种新颖的模型,通过在建模中结合了相互信息,概念,不需要监督风格标签。实验结果表明,我们的模型能够在不失流畅性和一致性的情况下产生风格诗歌。

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