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SEF-VC: Speaker Embedding Free Zero-Shot Voice Conversion with Cross Attention

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abstract

Zero-shot voice conversion (VC) aims to transfer the source speaker timbre to arbitrary unseen target speaker timbre, while keeping the linguistic content unchanged. Although the voice of generated speech can be controlled by providing the speaker embedding of the target speaker, the speaker similarity still lags behind the ground truth recordings. In this paper, we propose SEF-VC, a speaker embedding free voice conversion model, which is designed to learn and incorporate speaker timbre from reference speech via a powerful position-agnostic cross-attention mechanism, and then reconstruct waveform from HuBERT semantic tokens in a non-autoregressive manner. The concise design of SEF-VC enhances its training stability and voice conversion performance. Objective and subjective evaluations demonstrate the superiority of SEF-VC to generate high-quality speech with better similarity to target reference than strong zero-shot VC baselines, even for very short reference speeches.

fields

cs.SD 1

years

2025 1

verdicts

REJECT 1

representative citing papers

EZ-VC: Easy Zero-shot Any-to-Any Voice Conversion

cs.SD · 2025-05-22 · reject · novelty 4.0

EZ-VC combines discrete units from a multilingual self-supervised encoder (Xeus) with an F5-TTS flow-matching decoder to achieve zero-shot any-to-any voice conversion, without text labels or multiple disentangling encoders.

citing papers explorer

Showing 1 of 1 citing paper.

  • EZ-VC: Easy Zero-shot Any-to-Any Voice Conversion cs.SD · 2025-05-22 · reject · none · ref 14 · internal anchor

    EZ-VC combines discrete units from a multilingual self-supervised encoder (Xeus) with an F5-TTS flow-matching decoder to achieve zero-shot any-to-any voice conversion, without text labels or multiple disentangling encoders.