Bolbosh: Script-Aware Flow Matching for Kashmiri Text-to-Speech
Tajamul Ashraf, Burhaan Rasheed Zargar, Saeed Abdul Muizz, Ifrah Mushtaq, Nazima Mehdi, Iqra Altaf Gillani, Aadil Amin Kak, Janibul Bashir

TL;DR
This paper introduces Bolbosh, a novel script-aware flow matching neural TTS system for Kashmiri, significantly improving speech quality in a low-resource, diacritic-sensitive language.
Contribution
It presents the first open-source Kashmiri TTS system using supervised flow adaptation and a three-stage enhancement pipeline, setting a new benchmark in the field.
Findings
Achieved a MOS of 3.63, outperforming baselines.
Demonstrated the importance of script-aware modeling.
Established a new benchmark for Kashmiri TTS.
Abstract
Kashmiri is spoken by around 7 million people but remains critically underserved in speech technology, despite its official status and rich linguistic heritage. The lack of robust Text-to-Speech (TTS) systems limits digital accessibility and inclusive human-computer interaction for native speakers. In this work, we present the first dedicated open-source neural TTS system designed for Kashmiri. We show that zero-shot multilingual baselines trained for Indic languages fail to produce intelligible speech, achieving a Mean Opinion Score (MOS) of only 1.86, largely due to inadequate modeling of Perso-Arabic diacritics and language-specific phonotactics. To address these limitations, we propose Bolbosh, a supervised cross-lingual adaptation strategy based on Optimal Transport Conditional Flow Matching (OT-CFM) within the Matcha-TTS framework. This enables stable alignment under limited…
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Taxonomy
TopicsSpeech Recognition and Synthesis · Phonetics and Phonology Research · Speech and Audio Processing
