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Browse files- .pre-commit-config.yaml +59 -34
- .style.yapf +0 -5
- .vscode/settings.json +30 -0
- app.py +13 -19
.pre-commit-config.yaml
CHANGED
@@ -1,35 +1,60 @@
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repos:
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- repo: https://github.com/pre-commit/pre-commit-hooks
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- repo: https://github.com/pre-commit/mirrors-mypy
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repos:
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- repo: https://github.com/pre-commit/pre-commit-hooks
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rev: v4.6.0
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hooks:
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- id: check-executables-have-shebangs
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- id: check-json
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- id: check-merge-conflict
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- id: check-shebang-scripts-are-executable
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- id: check-toml
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- id: check-yaml
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- id: end-of-file-fixer
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- id: mixed-line-ending
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args: ["--fix=lf"]
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- id: requirements-txt-fixer
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- id: trailing-whitespace
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- repo: https://github.com/myint/docformatter
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rev: v1.7.5
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hooks:
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- id: docformatter
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args: ["--in-place"]
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- repo: https://github.com/pycqa/isort
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rev: 5.13.2
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hooks:
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- id: isort
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args: ["--profile", "black"]
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- repo: https://github.com/pre-commit/mirrors-mypy
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rev: v1.10.0
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hooks:
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- id: mypy
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args: ["--ignore-missing-imports"]
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additional_dependencies:
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[
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"types-python-slugify",
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"types-requests",
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"types-PyYAML",
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"types-pytz",
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]
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- repo: https://github.com/psf/black
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rev: 24.4.2
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hooks:
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- id: black
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language_version: python3.10
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args: ["--line-length", "119"]
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- repo: https://github.com/kynan/nbstripout
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rev: 0.7.1
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hooks:
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- id: nbstripout
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args:
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[
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"--extra-keys",
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"metadata.interpreter metadata.kernelspec cell.metadata.pycharm",
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]
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- repo: https://github.com/nbQA-dev/nbQA
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rev: 1.8.5
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hooks:
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- id: nbqa-black
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- id: nbqa-pyupgrade
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args: ["--py37-plus"]
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- id: nbqa-isort
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args: ["--float-to-top"]
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.style.yapf
DELETED
@@ -1,5 +0,0 @@
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[style]
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based_on_style = pep8
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blank_line_before_nested_class_or_def = false
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spaces_before_comment = 2
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split_before_logical_operator = true
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.vscode/settings.json
ADDED
@@ -0,0 +1,30 @@
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{
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"editor.formatOnSave": true,
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"files.insertFinalNewline": false,
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"[python]": {
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"editor.defaultFormatter": "ms-python.black-formatter",
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"editor.formatOnType": true,
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"editor.codeActionsOnSave": {
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"source.organizeImports": "explicit"
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}
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},
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"[jupyter]": {
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"files.insertFinalNewline": false
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},
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"black-formatter.args": [
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"--line-length=119"
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],
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"isort.args": ["--profile", "black"],
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"flake8.args": [
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"--max-line-length=119"
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],
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"ruff.lint.args": [
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"--line-length=119"
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],
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"notebook.output.scrolling": true,
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"notebook.formatOnCellExecution": true,
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"notebook.formatOnSave.enabled": true,
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"notebook.codeActionsOnSave": {
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"source.organizeImports": "explicit"
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}
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}
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app.py
CHANGED
@@ -12,20 +12,18 @@ import torch
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import torch.nn as nn
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from huggingface_hub import hf_hub_download
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sys.path.insert(0,
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TITLE =
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DESCRIPTION =
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def generate_z(z_dim: int, seed: int, device: torch.device) -> torch.Tensor:
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return torch.from_numpy(np.random.RandomState(seed).randn(
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1, z_dim)).to(device).float()
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@torch.inference_mode()
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def generate_image(seed: int, truncation_psi: float, model: nn.Module,
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device: torch.device) -> np.ndarray:
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seed = int(np.clip(seed, 0, np.iinfo(np.uint32).max))
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z = generate_z(model.z_dim, seed, device)
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def load_model(file_name: str, device: torch.device) -> nn.Module:
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path = hf_hub_download(
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with open(path,
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model = pickle.load(f)[
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model.eval()
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model.to(device)
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with torch.inference_mode():
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return model
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device = torch.device(
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model = load_model(
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fn = functools.partial(generate_image, model=model, device=device)
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gr.Interface(
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fn=fn,
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inputs=[
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gr.Slider(label=
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gr.Slider(label=
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minimum=0,
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maximum=2,
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step=0.05,
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value=0.7),
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],
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outputs=gr.Image(label=
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title=TITLE,
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description=DESCRIPTION,
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).queue(max_size=10).launch()
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import torch.nn as nn
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from huggingface_hub import hf_hub_download
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sys.path.insert(0, "StyleGAN-Human")
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TITLE = "StyleGAN-Human"
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DESCRIPTION = "https://github.com/stylegan-human/StyleGAN-Human"
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def generate_z(z_dim: int, seed: int, device: torch.device) -> torch.Tensor:
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return torch.from_numpy(np.random.RandomState(seed).randn(1, z_dim)).to(device).float()
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@torch.inference_mode()
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def generate_image(seed: int, truncation_psi: float, model: nn.Module, device: torch.device) -> np.ndarray:
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seed = int(np.clip(seed, 0, np.iinfo(np.uint32).max))
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z = generate_z(model.z_dim, seed, device)
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def load_model(file_name: str, device: torch.device) -> nn.Module:
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path = hf_hub_download("public-data/StyleGAN-Human", f"models/{file_name}")
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with open(path, "rb") as f:
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model = pickle.load(f)["G_ema"]
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model.eval()
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model.to(device)
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with torch.inference_mode():
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return model
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device = torch.device("cuda:0" if torch.cuda.is_available() else "cpu")
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model = load_model("stylegan_human_v2_1024.pkl", device)
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fn = functools.partial(generate_image, model=model, device=device)
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gr.Interface(
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fn=fn,
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inputs=[
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gr.Slider(label="Seed", minimum=0, maximum=100000, step=1, value=0),
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gr.Slider(label="Truncation psi", minimum=0, maximum=2, step=0.05, value=0.7),
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],
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outputs=gr.Image(label="Output", type="numpy"),
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title=TITLE,
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description=DESCRIPTION,
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).queue(max_size=10).launch()
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