cs.AI updates on arXiv.org 07月24日 13:31
Koel-TTS: Enhancing LLM based Speech Generation with Preference Alignment and Classifier Free Guidance
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本文介绍了一种名为Koel-TTS的TTS模型,通过结合偏好对齐技术和无分类器指导,显著提高了合成语音的相似性、可懂度和自然度。实验表明,该模型在较小数据集上训练,但仍优于现有TTS模型。

arXiv:2502.05236v2 Announce Type: replace-cross Abstract: While autoregressive speech token generation models produce speech with remarkable variety and naturalness, their inherent lack of controllability often results in issues such as hallucinations and undesired vocalizations that do not conform to conditioning inputs. We introduce Koel-TTS, a suite of enhanced encoder-decoder Transformer TTS models that address these challenges by incorporating preference alignment techniques guided by automatic speech recognition and speaker verification models. Additionally, we incorporate classifier-free guidance to further improve synthesis adherence to the transcript and reference speaker audio. Our experiments demonstrate that these optimizations significantly enhance target speaker similarity, intelligibility, and naturalness of synthesized speech. Notably, Koel-TTS directly maps text and context audio to acoustic tokens, and on the aforementioned metrics, outperforms state-of-the-art TTS models, despite being trained on a significantly smaller dataset. Audio samples and demos are available on our website.

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TTS模型 自动语音识别 语音合成 偏好对齐 自然度
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