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XTTS: a Massively Multilingual Zero-Shot Text-to-Speech Model

About

Most Zero-shot Multi-speaker TTS (ZS-TTS) systems support only a single language. Although models like YourTTS, VALL-E X, Mega-TTS 2, and Voicebox explored Multilingual ZS-TTS they are limited to just a few high/medium resource languages, limiting the applications of these models in most of the low/medium resource languages. In this paper, we aim to alleviate this issue by proposing and making publicly available the XTTS system. Our method builds upon the Tortoise model and adds several novel modifications to enable multilingual training, improve voice cloning, and enable faster training and inference. XTTS was trained in 16 languages and achieved state-of-the-art (SOTA) results in most of them.

Edresson Casanova, Kelly Davis, Eren G\"olge, G\"orkem G\"oknar, Iulian Gulea, Logan Hart, Aya Aljafari, Joshua Meyer, Reuben Morais, Samuel Olayemi, Julian Weber• 2024

Related benchmarks

TaskDatasetResultRank
Text-to-Speech SynthesisLibriTTS (CLEAN), LibriVox (NOISY), YouTube (WILD), and My Science Tutor (KIDS) (test)
MOS2.77
21
Text-to-SpeechLibrispeech (test-clean)
Log F0 RMSE (Avg)0.31
7
Text-to-SpeechLibriSpeech EN (test)
WER0.05
5
Text-to-SpeechFLEURS KO (test)
CER0.05
5
Text-to-SpeechFLEURS DE (test)
Word Error Rate (WER)0.06
5
Audio GenerationFakeAVCeleb
FAD184.4
5
Audio GenerationCelebV-HQ
FAD509.9
5
Audio GenerationHDTF
FAD135.1
5
Gesture-to-Speech SynthesisPATS
Speech Quality75.79
5
Text-to-SpeechFLEURS FR (test)
Word Error Rate (WER)8
5
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