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magma90909/vocence_miner_v7. Two things distinguish this checkpoint:pip install qwen-tts transformers torch soundfile1from qwen_tts import Qwen3TTSModel
2import soundfile as sf
3
4m = Qwen3TTSModel.from_pretrained("magma90909/vocence_miner_v8")
5
6wavs, sr = m.generate_voice_design(
7 text="The train to Edinburgh departs from platform four.",
8 instruct="A man with a British English accent, calm and natural.",
9 language="english",
10)
11sf.write("out.wav", wavs[0], sr)demo.py walks through three preset prompts.instruct| Layer | Phrasings |
|---|---|
| Accent / region | British English, Scottish, Welsh, Northern Irish, Irish, unspecified |
| Gender | a man, a woman, a British woman |
| Mood | speaking warmly, softly sad, quietly pleased, with a touch of anger |
| Persona | bedtime storyteller, soft and warm; news anchor, professional and neutral; meditation guide, soft and serene |
| Pace | unhurried, brisk steady, naturally measured |
A British man speaks calmly and naturally.
A woman with a Scottish accent, in an everyday speaking tone.
A man, softly sad, calm and unhurried.
A British news anchor, professional and neutral, at a brisk steady pace.
A clear, neutral voice reading the sentence.model.safetensors # merged Talker weights (3.6 GB)
speech_tokenizer/ # Qwen3 12 Hz audio codec (~650 MB)
tokenizer.json + ... # text tokenizer
config.json + ... # model configs
miner.py # Vocence engine
chute_config.yml # Chutes build (TEE / pro_6000)
vocence_config.yaml # runtime knobs
demo.py # quick smoke test