whisper-large-v3 / README.md
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---
license: apache-2.0
base_model: openai/whisper-large-v3
library_name: basert
pipeline_tag: automatic-speech-recognition
tags:
- basert
- apple-silicon
- whisper
- speech-recognition
---
# whisper-large-v3
[BaseRT](https://github.com/basecompute/baseRT) `.base` build of
[`openai/whisper-large-v3`](https://huggingface.co/openai/whisper-large-v3),
OpenAI's 1.55B-parameter Whisper speech-recognition model (v3: 128 mel bins, 100 languages incl. Cantonese),
for fast local transcription on Apple Silicon.
## Files
| File | Precision | Size |
|------|-----------|------|
| `whisper-large-v3-F16.base` | float16 | 3.10 GB |
| `whisper-large-v3-Q8.base` | 8-bit linears, f16 embeddings/conv/norms | 1.68 GB |
| `whisper-large-v3-Q4.base` | 4-bit linears, f16 embeddings/conv/norms | 987 MB |
F16 and Q8 are transcription-quality equivalent (Q8 passes the same
word-error parity gates against reference openai-whisper). Q4 is the
smallest and remains accurate; on some smaller variants it can
occasionally repeat a word in timestamped beam decoding.
## Usage
```bash
curl -LsSf https://basecompute.co/install.sh | sh
basert serve --model whisper-large-v3-F16.base
```
`POST /v1/audio/transcriptions` (multipart or JSON) returns `json`, `text`,
`srt`, `vtt`, or `verbose_json` (with per-segment `avg_logprob` /
`no_speech_prob` / `compression_ratio` / `temperature` and the detected
`language`), with optional SSE streaming and `POST /v1/audio/translations`. Supported
request fields: `language` (or `"auto"` to detect), `prompt`
(initial prompt / vocabulary bias), `task` (`transcribe`/`translate`). Or transcribe directly
from the CLI:
```bash
basert-transcribe whisper-large-v3-F16.base audio.wav --lang auto
```
Multilingual: pass `language` (e.g. `--lang de`), or `auto` to detect, across the 100 supported languages. `task=translate` produces English from any source language (also via `POST /v1/audio/translations`).
Released under the apache-2.0 license, inherited from the base model.