Streaming T5-based Text-to-Speech Synthesis with Limited Lookahead

June 20, 2026 ยท Grace Period ยท ๐Ÿ› Interspeech 2026

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Authors Muyang Du, Jason Roche, Junjie Lai arXiv ID 2606.21882 Category cs.SD: Sound Cross-listed cs.AI Citations 0 Venue Interspeech 2026
Abstract
Streaming text-to-speech synthesis in cascaded LLM-TTS systems still faces latency challenges as most TTS models require full context before initiating generation. We present S5-TTS, a streaming variant of T5-TTS that enables low-latency, word-by-word incremental speech synthesis through encoder-decoder language modeling and monotonic alignment learning. S5-TTS begins generating speech immediately after receiving the first few words, substantially reducing end-to-end response latency. To maintain quality under limited lookahead, we introduce a lookahead-causal masking mechanism with Conv-based auxiliary attention that preserves intelligibility and speaker similarity, and employ interleaved multi-source distillation to further restore naturalness. Experiments show that S5-TTS achieves comparable quality to full-context T5-TTS, supports zero-shot synthesis with high speaker similarity, and significantly reduces end-to-end latency for practical conversational AI systems.
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