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Existing watermarked generation algorithms employ token-level designs and therefore, are vulnerable to paraphrase attacks. To address this issue, we introduce watermarking on the semantic representation of sentences. We propose SemStamp, a robust sentence-level semantic watermarking algorithm that uses locality-sensitive hashing (LSH) to partition the semantic space of sentences. The algorithm encodes and LSH-hashes a candidate sentence generated by a language model, and conducts rejection sampling until the sampled sentence falls in watermarked partitions in the semantic embedding space. To test the paraphrastic robustness of watermarking algorithms, we propose a {``}bigram paraphrase{''} attack that produces paraphrases with small bigram overlap with the original sentence. This attack is shown to be effective against existing token-level watermark algorithms, while posing only minor degradations to SemStamp. Experimental results show that our novel semantic watermark algorithm is not only more robust than the previous state-of-the-art method on various paraphrasers and domains, but also better at preserving the quality of generation.more » « less
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Ko, Ching-Yun; Chen, Pin-Yu; Das, Payel; Chuang, Yung-Sung; Daniel, Luca (, ES-FoMo: Efficient Systems for Foundation Models Workshop at the 40th International Conference on Machine Learning (ICML), Honolulu, Hawaii, USA, 2023)
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Lai, Cheng-I Jeff; Shi, Freda; Peng, Puyuan; Kim, Yoon; Gimpel, Kevin; Chang, Shiyu; Chuang, Yung-Sung; Bhati, Saurabhchand; Cox, David; Harwath, David; et al (, IEEE Workshop on Automatic Speech Recognition and Understanding (ASRU))
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