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MSSRNet: Manipulating Sequential Style Representation for Unsupervised Text Style Transfer (2306.07994v1)

Published 12 Jun 2023 in cs.CL, cs.AI, and cs.LG

Abstract: Unsupervised text style transfer task aims to rewrite a text into target style while preserving its main content. Traditional methods rely on the use of a fixed-sized vector to regulate text style, which is difficult to accurately convey the style strength for each individual token. In fact, each token of a text contains different style intensity and makes different contribution to the overall style. Our proposed method addresses this issue by assigning individual style vector to each token in a text, allowing for fine-grained control and manipulation of the style strength. Additionally, an adversarial training framework integrated with teacher-student learning is introduced to enhance training stability and reduce the complexity of high-dimensional optimization. The results of our experiments demonstrate the efficacy of our method in terms of clearly improved style transfer accuracy and content preservation in both two-style transfer and multi-style transfer settings.

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Authors (3)
  1. Yazheng Yang (16 papers)
  2. Zhou Zhao (219 papers)
  3. Qi Liu (485 papers)
Citations (2)

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