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TraceableSpeech: Towards Proactively Traceable Text-to-Speech with Watermarking

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arxiv 2406.04840 v3 pith:DULKL4IF submitted 2024-06-07 cs.SD eess.AS

classification cs.SDeess.AS
keywords speechtraceablespeechimperceptibilityqualitywatermarkapproachesattacksflexibility
verification ladder T0 review T1 audit T2 compute T3 formal
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Various threats posed by the progress in text-to-speech (TTS) have prompted the need to reliably trace synthesized speech. However, contemporary approaches to this task involve adding watermarks to the audio separately after generation, a process that hurts both speech quality and watermark imperceptibility. In addition, these approaches are limited in robustness and flexibility. To address these problems, we propose TraceableSpeech, a novel TTS model that directly generates watermarked speech, improving watermark imperceptibility and speech quality. Furthermore, We design the frame-wise imprinting and extraction of watermarks, achieving higher robustness against resplicing attacks and temporal flexibility in operation. Experimental results show that TraceableSpeech outperforms the strong baseline where VALL-E or HiFicodec individually uses WavMark in watermark imperceptibility, speech quality and resilience against resplicing attacks. It also can apply to speech of various durations. The code is avaliable at https://github.com/zjzser/TraceableSpeech

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Cited by 2 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. MusicMark: A Robust Generative Watermarking Framework for Music Generation

    cs.SD 2026-07 conditional novelty 6.5 of 10

    Embedding watermark bits into diffusion semantic latents via a frozen-backbone adapter yields far more robust music provenance than post-hoc watermarking under codecs and cover-song attacks.

  2. Traceable TTS: Toward Watermark-Free TTS with Strong Traceability

    eess.AS 2025-07 reject novelty 5.0 of 10

    A joint training loop makes an F5-TTS model produce audio that a paired wav2vec 2.0/LCNN discriminator can recognize, enabling watermark-free attribution; however, the reported generalization gain is not isolated from...

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