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Style Transfer from Non-Parallel Text by Cross-Alignment

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abstract

This paper focuses on style transfer on the basis of non-parallel text. This is an instance of a broad family of problems including machine translation, decipherment, and sentiment modification. The key challenge is to separate the content from other aspects such as style. We assume a shared latent content distribution across different text corpora, and propose a method that leverages refined alignment of latent representations to perform style transfer. The transferred sentences from one style should match example sentences from the other style as a population. We demonstrate the effectiveness of this cross-alignment method on three tasks: sentiment modification, decipherment of word substitution ciphers, and recovery of word order.

fields

cs.CL 1

years

2025 1

verdicts

CONDITIONAL 1

representative citing papers

DiscoSum: Discourse-aware News Summarization

cs.CL · 2025-06-07 · conditional · novelty 6.0

DiscoSum pairs news articles with cross-platform human summaries and shows that beam search guided by a discourse labeler produces summaries that better match a target sentence structure.

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  • DiscoSum: Discourse-aware News Summarization cs.CL · 2025-06-07 · conditional · none · ref 36 · internal anchor

    DiscoSum pairs news articles with cross-platform human summaries and shows that beam search guided by a discourse labeler produces summaries that better match a target sentence structure.