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AlignTTS: Efficient Feed-Forward Text-to-Speech System without Explicit Alignment

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arxiv 2003.01950 v1 pith:I2ONYKMN submitted 2020-03-04 eess.AS cs.CLcs.SD

classification eess.AScs.CLcs.SD
keywords alignttsmel-spectrumtransformeralignmentdurationefficiencyfeed-forwardhigh
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Targeting at both high efficiency and performance, we propose AlignTTS to predict the mel-spectrum in parallel. AlignTTS is based on a Feed-Forward Transformer which generates mel-spectrum from a sequence of characters, and the duration of each character is determined by a duration predictor.Instead of adopting the attention mechanism in Transformer TTS to align text to mel-spectrum, the alignment loss is presented to consider all possible alignments in training by use of dynamic programming. Experiments on the LJSpeech dataset show that our model achieves not only state-of-the-art performance which outperforms Transformer TTS by 0.03 in mean option score (MOS), but also a high efficiency which is more than 50 times faster than real-time.

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    cs.LG 2024-11 conditional novelty 4.0 of 10

    ADFWI is an open-source PyTorch framework that uses automatic differentiation to replace hand-derived adjoint-state gradients in full waveform inversion across acoustic, elastic, and anisotropic media.

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