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VoiceGuider: Enhancing Out-of-Domain Performance in Parameter-Efficient Speaker-Adaptive Text-to-Speech via Autoguidance

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arxiv 2409.15759 v2 pith:MVXQGERF submitted 2024-09-24 cs.SD eess.AS

classification cs.SDeess.AS
keywords performanceadaptationautoguidanceout-of-domainparameter-efficientspeakertext-to-speechvoiceguider
verification ladder T0 review T1 audit T2 compute T3 formal
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When applying parameter-efficient finetuning via LoRA onto speaker adaptive text-to-speech models, adaptation performance may decline compared to full-finetuned counterparts, especially for out-of-domain speakers. Here, we propose VoiceGuider, a parameter-efficient speaker adaptive text-to-speech system reinforced with autoguidance to enhance the speaker adaptation performance, reducing the gap against full-finetuned models. We carefully explore various ways of strengthening autoguidance, ultimately finding the optimal strategy. VoiceGuider as a result shows robust adaptation performance especially on extreme out-of-domain speech data. We provide audible samples in our demo page.

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