Whisper Small β Fine-tuned on Slovak Plenary ASR Corpus
This model is a fine-tuned version of openai/whisper-small.
It is adapted for Slovak ASR using SloPalSpeech: 2,806 hours of aligned, β€30 s speechβtext pairs from official plenary sessions of the Slovak National Council.
- Language: Slovak
- Domain: Parliamentary / formal speech
- Training data: 2,806 h
- Intended use: Slovak speech recognition; strongest in formal/public-speaking contexts
π§ͺ Evaluation
| Dataset | Base WER | Fine-tuned WER | Ξ (abs) |
|---|---|---|---|
| Common Voice 21 (sk) | 58.4 | 25.7 | -32.7 |
| FLEURS (sk) | 36.1 | 10.6 | -25.5 |
Numbers from the paperβs final benchmark runs.
π§ Training Details
- Framework: Hugging Face Transformers
- Hardware: NVIDIA A10 GPUs
- Epochs: up to 3 with early stopping on validation WER
- Learning rate: ~40Γ smaller than Whisper pretraining LR
β οΈ Limitations
- Domain bias toward parliamentary speech (e.g., political vocabulary, formal register).
- As with Whisper models generally, occasional hallucinations may appear; consider temperature fallback / compression-ratio checks at inference time.
- Multilingual performance is not guaranteed (full-parameter finetuning emphasized Slovak).
π Citation & Paper
For more details, please see our paper on arXiv. If you use this model in your work, please cite it as:
@misc{boΕΎΓk2025slopalspeech2800hourslovakspeech,
title={SloPalSpeech: A 2,800-Hour Slovak Speech Corpus from Parliamentary Data},
author={Erik BoΕΎΓk and Marek Ε uppa},
year={2025},
eprint={2509.19270},
archivePrefix={arXiv},
primaryClass={cs.CL},
url={https://arxiv.org/abs/2509.19270},
}
π Acknowledgements
This work was supported by VΓB Banka who provided the GPU resources and backing necessary to accomplish it, enabling progress in Slovak ASR research.
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Model tree for erikbozik/whisper-small-sk
Base model
openai/whisper-smallDataset used to train erikbozik/whisper-small-sk
Evaluation results
- WER on Common Voice 21 (Slovak test set)self-reported25.700
- WER on FLEURS (Slovak test set)self-reported10.600