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Transforming Delete, Retrieve, Generate Approach for Controlled Text Style Transfer

机译:转换删除,检索,生成受控文本样式传输的方法

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Text style transfer is the task of transferring the style of text having certain stylistic attributes, while preserving non-stylistic or content information. In this work we introduce the Generative Style Transformer (GST) - a new approach to rewriting sentences to a target style in the absence of parallel style corpora. GST leverages the power of both, large unsupervised pre-trained language models as well as the Transformer. GST is a part of a larger 'Delete Retrieve Generate' framework, in which we also propose a novel method of deleting style attributes from the source sentence by exploiting the inner workings of the Transformer. Our models outperform state-of-art systems across 5 datasets on sentiment, gender and political slant transfer. We also propose the use of the GLEU metric as an automatic metric of evaluation of style transfer, which we found to compare better with human ratings than the predominantly used BLEU score.
机译:文本样式传输是传输具有某些风格属性的文本样式的任务,同时保留非风格或内容信息。在这项工作中,我们介绍了生成式变压器(GST) - 在没有并行样式的语料库的情况下重写对目标风格的句子的新方法。 GST利用两者的功率,大型无人监督的预训练的语言模型以及变压器。 GST是一个较大的'删除检索生成'框架的一部分,其中我们还通过利用变压器的内部工作来提出通过源句中删除样式属性的新方法。我们的型号以情绪,性别和政治倾斜转移的5个数据集,俯视了5个数据集的最先进系统。我们还建议使用GLEU公制作为风格转移评估的自动度量,我们发现与人类评级更好地比主要使用的BLEU评分更好。

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