cs.SDJul 22, 2026

StellarTTS: Sparse Temporal Embedding for Low-Latency and Robust Speech Synthesis

Authors: Kaicheng LuoXuefei GongYutao SunJinling HeYujie HouXiaoyang XingHuiyan LiBing Han+1 more

Organizations: Honor Device Co., Ltd., China · Auditory Cognition and Computational Acoustics Lab MoE Key Lab of Artificial Intelligence, AI Institute School of Computer Science, Shanghai Jiao Tong University, Shanghai, China

Abstract

The trade-off between robustness, latency, and prosody critically challenges text-to-speech (TTS) systems. Autoregressive models, despite fidelity, are slow and error-prone; non-autoregressive (NAR) alternatives, while fast, often sacrifice prosodic naturalness via rigid alignments. This paper introduces StellarTTS, a novel mobile-optimized NAR TTS framework based on a sparse temporal embedding strategy, enabling granular control of phoneme duration, pronunciation, and prosody. Furthermore, we propose a semantic-aware codec that facilitates efficient single-stage decoding. Conditioned on the sparse temporal embedding, our 83M-parameter lightweight masked generative transformer achieves a real-time factor (RTF) of 0.08. Experiments demonstrate that StellarTTS attains lower latency and stronger robustness compared to state-of-the-art TTS systems, while maintaining competitive performance in audio quality, prosodic naturalness, and speaker similarity.

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