Whisper-Tiny-24Lang — 24 languages fine-tune, standard architecture (scientific control)

A plain openai/whisper-tiny (unmodified architecture) fine-tuned on the 24 languages of the CC0 Whispered corpus. This is the matched scientific control for burakaydinofficial/whisper-tiny-mla-24lang — trained identically, minus the MHA→MLA conversion — published so the MLA conversion cost is independently reproducible. No custom code: loads directly in transformers, and — being a plain unmodified Whisper — is convertible for faster-whisper / CTranslate2 / whisper.cpp via their standard converters.

from transformers import AutoModelForSpeechSeq2Seq, AutoProcessor
model = AutoModelForSpeechSeq2Seq.from_pretrained("burakaydinofficial/whisper-tiny-24lang")   # no trust_remote_code
processor = AutoProcessor.from_pretrained("burakaydinofficial/whisper-tiny-24lang")

Reproduce the conversion cost

Evaluate this control and whisper-tiny-mla-24lang on CommonVoice-17 (scripts/validate.py in the code repo); the per-language difference is the conversion cost reported on the MLA card and in docs/results/.

Results (CommonVoice-17 test, greedy, Whisper normalization + Arabic folding; CER for th/zh/ja)

Reconstructed numbers. This control's per-language WER/CER in the table are reconstructed as (the MLA model's absolute score − the measured paired conversion cost), not from a separate evaluation of this checkpoint; an independent re-eval may differ by a few tenths. The paired conversion cost is the directly measured quantity.

Lang this control
en 28.1 WER
de 42.1 WER
es 29.5 WER
fr 44.8 WER
it 43.8 WER
pt 43.1 WER
ru 40.6 WER
nl 38.8 WER
pl 47.3 WER
id 53.0 WER
tr 52.1 WER
hi 45.9 WER
ms 49.5 WER
sv-SE 57.9 WER
th 32.0 CER
zh-CN 34.7 CER
cs 67.2 WER
vi 54.4 WER
fi 66.9 WER
el 63.7 WER
da 73.7 WER
ja 48.8 CER
nn-NO 93.1 WER
ko 71.3 WER

Encoder frozen during fine-tuning; 15,000 steps, warmup+cosine, fp16. Read-speech domain (CommonVoice + FLEURS-validated). "Compression cost" does not apply to this unconverted control.

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