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Nemotron 3.5 ASR

Change history

  1. 1 Oct 2026
    NVIDIA Publishes Fine-Tuning Recipe for Dialect-Specific Speech Recognition with Nemotron
    ParameterBeforeNow
    WER (Najdi+Hijazi test)55.05%29.96%
    CER (Najdi+Hijazi test)31.63%12.18%
    Full SADA WER58.84%35.61%
    FLEURS English WER11.04%10.42%
    FLEURS Arabic WER12.67%11.41%
    Trainable parameters (top-8 layers unfrozen)Not specified230.4M of 638M total
    Language coverage40 language-locales (base model)Same, plus specialized Najdi/Hijazi dialects

News

Voice AI· Important· 🧪 Worth Testing

NVIDIA Publishes Fine-Tuning Recipe for Dialect-Specific Speech Recognition with Nemotron

NVIDIA released a detailed workflow for fine-tuning its Nemotron 3.5 ASR multilingual streaming model on Saudi Arabic dialects (Najdi and Hijazi). Using minimal data curation, replay mixing with FLEURS data, duration-based bucketing, and partial encoder unfreezing, they reduced word error rate on the target dialects from 55.05% to 29.96% while also slightly improving English and other Arabic performance. The post also covers decoding tweaks and speaker diarization extensions for multi-speaker transcription.

NVIDIA Developer
Nemotron 3.5 ASR · TENESYS AI NEWS