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Scalable Direction-Following TTS via Voice Impression-Guided Pseudo Triplet Construction

Kenichi Fujita, Yusuke Ijima

Latestcs.CLcs.LGcs.AIcs.CV
arXiv ID
2609.02623 v1
Category
Submitted
2026-09-02

Abstract

Voice actors often re-read the same script while modifying their delivery in response to performance directions. We study this setting as direction-following TTS, where a system generates a new utterance that reflects a given direction relative to a reference utterance while preserving speaker identity and linguistic content. A key challenge is the lack of training data capturing such relative modifications. To address this, we propose a scalable pseudo-triplet construction pipeline that generates~(reference utterance, direction text, modified utterance) triplets. It generates controlled style variations using an impression-controllable TTS model and uses an LLM to produce natural language directions from estimated impression differences. Experimental results demonstrate that pseudo-triplets alone enable stable speaker-preserving modification, and that combining pseudo and recorded data further improves direction alignment while maintaining speaker similarity. Audio examples are available on our demo page https://ntt-hilab-gensp.github.io/IS2026pseudo/

Comment: 5 pages,4 figures, Accepted to INTERSPEECH 2026

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