Diffusion-LM Improves Controllable Text Generation
–Neural Information Processing Systems
Controlling the behavior of language models (LMs) without re-training is a major open problem in natural language generation. While recent works have demonstrated successes on controlling simple sentence attributes (e.g., sentiment), there has been little progress on complex, fine-grained controls (e.g., syntactic structure). To address this challenge, we develop a new non-autoregressive language model based on continuous diffusions that we call Diffusion-LM.
Neural Information Processing Systems
Dec-23-2025, 20:57:00 GMT
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