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Author

Jos Rozen

Naver Labs Europe

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#natural language process... Conference Aug 2025

FaST: Feature-aware Sampling and Tuning for Personalized Preference Alignment with Limited Data

This work focuses on a practical yet challenging setting where only a small set of preference annotations can be collected per user, and proposes FaST, a highly parameter-efficient approach that leverages high-level features automatically discovered from the data, achieving the best overall performance.

Thibaut Thonet, Germán Kruszewski, Jos Rozen et al. · 5 citations
#natural language process... Preprint Sep 2026

Ready to Speak: Aligning LLMs for TTS-Friendly Text Generation

This work studies how to make LLMs natively generate TTS-friendly text, which is frame as a preference alignment problem: instead of relying on downstream rewriting modules, this work directly align LLMs to generate text optimized for spoken delivery.

Thibaut Thonet, Jos Rozen, Laurent Besacier · 0 citations

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