Principled Coarse-Grained Acceptance for Speculative Decoding in Speech
machinelearning.apple.com·3d
🧠LLM Inference
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AuthorsMoran Yanuka†, Paul Dixon, Eyal Finkelshttein, Daniel Rotman, Raja Giryes†

Speculative decoding accelerates autoregressive speech generation by letting a fast draft model propose tokens that a larger target model verifies. However, for speech LLMs that generate acoustic tokens, exact token matching is overly restrictive: many discrete tokens are acoustically or semantically interchangeable, reducing acceptance rates and limiting speedups. We introduce Principled Coarse-Graining (PCG), which verifies proposals at the level of Acoustic Similarity Groups (ASGs) derived from the target model’s embedding space. By splitting each token’s probability mass across the overlapping groups that contain it, we define an overlap-aware coarse-grained distribution and perform rejection samp…

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