Rex Cheng
commited on
Commit
·
c4dd2de
1
Parent(s):
a1c80b9
fix for hf
Browse files- .gitignore +144 -0
- app.py +7 -0
- mmaudio/ext/autoencoder/autoencoder.py +1 -1
- mmaudio/ext/autoencoder/vae.py +8 -4
- mmaudio/model/embeddings.py +3 -4
- mmaudio/model/networks.py +5 -3
- requirements.txt +1 -1
.gitignore
ADDED
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@@ -0,0 +1,144 @@
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+
run_*.sh
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+
log/
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+
saves
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+
saves/
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+
weights/
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+
weights
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+
output/
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+
output
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+
pretrained/
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+
workspace
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+
workspace/
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+
ext_weights/
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+
ext_weights
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+
.checkpoints/
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+
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+
# Byte-compiled / optimized / DLL files
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+
__pycache__/
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| 18 |
+
*.py[cod]
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+
*$py.class
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+
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+
# C extensions
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+
*.so
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+
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+
# Distribution / packaging
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+
.Python
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+
build/
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+
develop-eggs/
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+
dist/
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+
downloads/
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+
eggs/
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+
.eggs/
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+
lib/
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+
lib64/
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+
parts/
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+
sdist/
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+
var/
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+
wheels/
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+
pip-wheel-metadata/
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+
share/python-wheels/
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+
*.egg-info/
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+
.installed.cfg
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+
*.egg
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| 43 |
+
MANIFEST
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+
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+
# PyInstaller
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| 46 |
+
# Usually these files are written by a python script from a template
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| 47 |
+
# before PyInstaller builds the exe, so as to inject date/other infos into it.
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+
*.manifest
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+
*.spec
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+
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+
# Installer logs
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+
pip-log.txt
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+
pip-delete-this-directory.txt
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+
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+
# Unit test / coverage reports
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+
htmlcov/
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+
.tox/
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+
.nox/
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+
.coverage
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+
.coverage.*
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+
.cache
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| 62 |
+
nosetests.xml
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+
coverage.xml
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+
*.cover
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*.py,cover
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+
.hypothesis/
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.pytest_cache/
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+
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+
# Translations
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| 70 |
+
*.mo
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| 71 |
+
*.pot
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| 72 |
+
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| 73 |
+
# Django stuff:
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| 74 |
+
*.log
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| 75 |
+
local_settings.py
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| 76 |
+
db.sqlite3
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| 77 |
+
db.sqlite3-journal
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| 78 |
+
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# Flask stuff:
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| 80 |
+
instance/
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+
.webassets-cache
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+
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# Scrapy stuff:
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+
.scrapy
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| 85 |
+
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# Sphinx documentation
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| 87 |
+
docs/_build/
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+
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# PyBuilder
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target/
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# Jupyter Notebook
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.ipynb_checkpoints
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| 94 |
+
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# IPython
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+
profile_default/
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ipython_config.py
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# pyenv
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.python-version
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| 101 |
+
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# pipenv
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| 103 |
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# According to pypa/pipenv#598, it is recommended to include Pipfile.lock in version control.
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# However, in case of collaboration, if having platform-specific dependencies or dependencies
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# having no cross-platform support, pipenv may install dependencies that don't work, or not
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# install all needed dependencies.
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#Pipfile.lock
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# PEP 582; used by e.g. github.com/David-OConnor/pyflow
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__pypackages__/
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# Celery stuff
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celerybeat-schedule
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celerybeat.pid
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# SageMath parsed files
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*.sage.py
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# Environments
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.env
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.venv
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env/
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venv/
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ENV/
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env.bak/
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venv.bak/
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# Spyder project settings
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.spyderproject
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.spyproject
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# Rope project settings
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.ropeproject
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# mkdocs documentation
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/site
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# mypy
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.mypy_cache/
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.dmypy.json
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dmypy.json
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# Pyre type checker
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.pyre/
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app.py
CHANGED
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@@ -5,6 +5,13 @@ from pathlib import Path
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import gradio as gr
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import torch
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import torchaudio
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from mmaudio.eval_utils import (ModelConfig, all_model_cfg, generate, load_video, make_video,
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setup_eval_logging)
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import gradio as gr
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import torch
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import torchaudio
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import os
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try:
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import mmaudio
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except ImportError:
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os.system("pip install -e .")
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import mmaudio
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from mmaudio.eval_utils import (ModelConfig, all_model_cfg, generate, load_video, make_video,
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setup_eval_logging)
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mmaudio/ext/autoencoder/autoencoder.py
CHANGED
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@@ -19,7 +19,7 @@ class AutoEncoderModule(nn.Module):
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super().__init__()
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self.vae: VAE = get_my_vae(mode).eval()
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vae_state_dict = torch.load(vae_ckpt_path, weights_only=True, map_location='cpu')
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-
self.vae.load_state_dict(vae_state_dict)
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self.vae.remove_weight_norm()
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if mode == '16k':
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super().__init__()
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self.vae: VAE = get_my_vae(mode).eval()
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vae_state_dict = torch.load(vae_ckpt_path, weights_only=True, map_location='cpu')
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self.vae.load_state_dict(vae_state_dict, strict=False)
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self.vae.remove_weight_norm()
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if mode == '16k':
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mmaudio/ext/autoencoder/vae.py
CHANGED
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@@ -75,11 +75,15 @@ class VAE(nn.Module):
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super().__init__()
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if data_dim == 80:
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-
self.data_mean =
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-
self.data_std =
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elif data_dim == 128:
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-
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self.data_std =
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self.data_mean = self.data_mean.view(1, -1, 1)
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self.data_std = self.data_std.view(1, -1, 1)
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super().__init__()
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if data_dim == 80:
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# self.data_mean = torch.tensor(DATA_MEAN_80D, dtype=torch.float32).cuda()
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# self.data_std = torch.tensor(DATA_STD_80D, dtype=torch.float32).cuda()
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self.register_buffer('data_mean', torch.tensor(DATA_MEAN_80D, dtype=torch.float32))
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self.register_buffer('data_std', torch.tensor(DATA_STD_80D, dtype=torch.float32))
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elif data_dim == 128:
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# torch.tensor(DATA_MEAN_128D, dtype=torch.float32).cuda()
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# self.data_std = torch.tensor(DATA_STD_128D, dtype=torch.float32).cuda()
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self.register_buffer('data_mean', torch.tensor(DATA_MEAN_128D, dtype=torch.float32))
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self.register_buffer('data_std', torch.tensor(DATA_STD_128D, dtype=torch.float32))
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self.data_mean = self.data_mean.view(1, -1, 1)
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self.data_std = self.data_std.view(1, -1, 1)
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mmaudio/model/embeddings.py
CHANGED
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@@ -21,12 +21,11 @@ class TimestepEmbedder(nn.Module):
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assert dim % 2 == 0, 'dim must be even.'
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with torch.autocast('cuda', enabled=False):
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self.freqs =
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1.0 / (10000**(torch.arange(0, frequency_embedding_size, 2, dtype=torch.float32) /
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frequency_embedding_size))
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persistent=False)
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freq_scale = 10000 / max_period
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self.freqs = freq_scale * self.freqs
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def timestep_embedding(self, t):
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"""
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assert dim % 2 == 0, 'dim must be even.'
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with torch.autocast('cuda', enabled=False):
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self.freqs = (
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1.0 / (10000**(torch.arange(0, frequency_embedding_size, 2, dtype=torch.float32) /
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frequency_embedding_size)))
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freq_scale = 10000 / max_period
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self.freqs = nn.Parameter(freq_scale * self.freqs)
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def timestep_embedding(self, t):
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"""
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mmaudio/model/networks.py
CHANGED
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@@ -166,8 +166,10 @@ class MMAudio(nn.Module):
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self._clip_seq_len,
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device=self.device)
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-
self.latent_rot =
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self.clip_rot =
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def update_seq_lengths(self, latent_seq_len: int, clip_seq_len: int, sync_seq_len: int) -> None:
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self._latent_seq_len = latent_seq_len
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@@ -346,7 +348,7 @@ class MMAudio(nn.Module):
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if 'clip_rot' in src_dict:
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del src_dict['clip_rot']
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self.load_state_dict(src_dict, strict=
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@property
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def device(self) -> torch.device:
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self._clip_seq_len,
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device=self.device)
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# self.latent_rot = latent_rot.to(self.device)
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# self.clip_rot = clip_rot.to(self.device)
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self.register_buffer('latent_rot', latent_rot)
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self.register_buffer('clip_rot', clip_rot)
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def update_seq_lengths(self, latent_seq_len: int, clip_seq_len: int, sync_seq_len: int) -> None:
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self._latent_seq_len = latent_seq_len
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if 'clip_rot' in src_dict:
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del src_dict['clip_rot']
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self.load_state_dict(src_dict, strict=False)
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@property
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def device(self) -> torch.device:
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requirements.txt
CHANGED
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@@ -1,4 +1,4 @@
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torch
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torchaudio
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torchvision
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python-dotenv
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torch == 2.4.0
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torchaudio
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torchvision
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python-dotenv
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