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Building Multi lingual TTS using Cross Lingual Voice Conversion

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arxiv 2012.14039 v1 pith:HV3BQWGY submitted 2020-12-28 eess.AS cs.SD

classification eess.AScs.SD
keywords speechvoiceapproachconversionlingualmultilingualnaturalnesssimilarity
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In this paper we propose a new cross-lingual Voice Conversion (VC) approach which can generate all speech parameters (MCEP, LF0, BAP) from one DNN model using PPGs (Phonetic PosteriorGrams) extracted from inputted speech using several ASR acoustic models. Using the proposed VC method, we tried three different approaches to build a multilingual TTS system without recording a multilingual speech corpus. A listening test was carried out to evaluate both speech quality (naturalness) and voice similarity between converted speech and target speech. The results show that Approach 1 achieved the highest level of naturalness (3.28 MOS on a 5-point scale) and similarity (2.77 MOS).

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