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Chunzhen Jin

1 accepted papers

2024

Reusing Transferable Weight Increments for Low-resource Style Generation

EMNLP 2024main

Text style transfer (TST) is crucial in natural language processing, aiming to endow text with a new style without altering its meaning. In real-world scenarios, not all styles have abundant resources. This work introduces TWIST (reusing Transferable Weight Increments for Style Text generation), a n…