cs.AI updates on arXiv.org 10月01日
EASPO:情感感知逐步偏好优化文本转语音
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本文提出了一种名为EASPO的文本转语音技术,通过在中间去噪步骤中与细粒度情感偏好对齐,实现了情感表达和语音自然度的优化。

arXiv:2509.25416v1 Announce Type: cross Abstract: Emotional text-to-speech seeks to convey affect while preserving intelligibility and prosody, yet existing methods rely on coarse labels or proxy classifiers and receive only utterance-level feedback. We introduce Emotion-Aware Stepwise Preference Optimization (EASPO), a post-training framework that aligns diffusion TTS with fine-grained emotional preferences at intermediate denoising steps. Central to our approach is EASPM, a time-conditioned model that scores noisy intermediate speech states and enables automatic preference pair construction. EASPO optimizes generation to match these stepwise preferences, enabling controllable emotional shaping. Experiments show superior performance over existing methods in both expressiveness and naturalness.

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文本转语音 情感感知 偏好优化 去噪步骤 TTS
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