model-code

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mi804
2026-04-17 17:06:26 +08:00
parent 079e51c9f3
commit 36c203da57
23 changed files with 4230 additions and 2 deletions

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"""
Ace-Step 1.5 XL Base (32 layers, hidden_size=2560) — Text-to-Music inference example.
XL variant with larger capacity for higher quality generation.
"""
from diffsynth.pipelines.ace_step import AceStepPipeline, ModelConfig
import torch
import soundfile as sf
pipe = AceStepPipeline.from_pretrained(
torch_dtype=torch.bfloat16,
device="cuda",
model_configs=[
ModelConfig(
model_id="ACE-Step/acestep-v15-xl-base",
origin_file_pattern="model-*.safetensors"
),
ModelConfig(
model_id="ACE-Step/acestep-v15-xl-base",
origin_file_pattern="model-*.safetensors"
),
ModelConfig(
model_id="ACE-Step/acestep-v15-xl-base",
origin_file_pattern="Qwen3-Embedding-0.6B/model.safetensors"
),
],
tokenizer_config=ModelConfig(
model_id="ACE-Step/acestep-v15-xl-base",
origin_file_pattern="Qwen3-Embedding-0.6B/"
),
vae_config=ModelConfig(
model_id="ACE-Step/acestep-v15-xl-base",
origin_file_pattern="vae/"
),
)
prompt = "An epic symphonic metal track with double bass drums and soaring vocals"
lyrics = "[Intro - Heavy guitar riff]\n\n[Verse 1]\nSteel and thunder, fire and rain\nBurning through the endless pain\n\n[Chorus]\nRise up, break the chains\nUnleash the fire in your veins"
audio = pipe(
prompt=prompt,
lyrics=lyrics,
duration=30.0,
seed=42,
num_inference_steps=20,
cfg_scale=7.0,
shift=3.0,
)
sf.write("acestep-v15-xl-base.wav", audio.cpu().numpy(), pipe.sample_rate)
print(f"Saved, shape: {audio.shape}")