No Free Lunch in LLM Watermarking: Trade-offs in Watermarking Design Choices
Qi Pang, Shengyuan Hu, Wenting Zheng, Virginia Smith
摘要
Advances in generative models have made it possible for AI-generated text, code, and images to mirror human-generated content in many applications. Watermarking, a technique that aims to embed information in the output of a model to verify its source, is useful for mitigating the misuse of such AI-generated content. However, we show that common design choices in LLM watermarking schemes make the resulting systems surprisingly susceptible to attack -- leading to fundamental trade-offs in robustness, utility, and usability. To navigate these trade-offs, we rigorously study a set of simple yet effective attacks on common watermarking systems, and propose guidelines and defenses for LLM watermarking in practice.
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引用它的顶会 Paper16
- Beyond Binary: Towards Fine-Grained LLM-Generated Text Detection via Role Recognition and Involvement MeasurementZihao Cheng, Li Zhou, Feng Jiang, Benyou Wang 等WWW 2025 · 被引用 20 次
- MorphMark: Flexible Adaptive Watermarking for Large Language ModelsZongqi Wang, Tianle Gu, Baoyuan Wu, Yujiu YangACL 2025 · 被引用 11 次
- Character-Level Perturbations Disrupt LLM WatermarksZhaoxi Zhang, Xiaomei Zhang, Yanjun Zhang, He Zhang 等NDSS 2026 · 被引用 10 次
- Enhancing LLM Watermark Resilience Against Both Scrubbing and Spoofing AttacksHuanming Shen, Baizhou Huang, Xiaojun WanNeurIPS 2025 · 被引用 8 次
- WaterMod: Modular Token-Rank Partitioning for Probability-Balanced LLM WatermarkingShinwoo Park, Hyejin Park, Hyeseon Ahn, Yo-Sub HanAAAI 2026 · 被引用 6 次
它引用的顶会 Paper14
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- A Watermark for Large Language ModelsJohn Kirchenbauer, Jonas Geiping, Yuxin Wen, Jonathan Katz 等ICML 2023 · 被引用 854 次
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