init
Browse files- .gitignore +116 -0
- README.md +1 -1
- app.py +26 -0
- requirements.txt +3 -0
.gitignore
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# Byte-compiled / optimized / DLL files
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__pycache__/
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*.py[cod]
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*$py.class
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# C extensions
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*.so
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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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*.egg-info/
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.installed.cfg
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*.egg
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MANIFEST
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# PyInstaller
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# Usually these files are written by a python script from a template
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# 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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# Installer logs
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pip-log.txt
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pip-delete-this-directory.txt
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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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nosetests.xml
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coverage.xml
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*.cover
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.hypothesis/
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.pytest_cache/
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# Translations
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*.mo
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*.pot
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# Django stuff:
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*.log
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local_settings.py
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db.sqlite3
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# Flask stuff:
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instance/
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.webassets-cache
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# Scrapy stuff:
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.scrapy
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# Sphinx documentation
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docs/_build/
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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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# 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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# celery beat schedule file
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celerybeat-schedule
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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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.idea/
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README.md
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---
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title: Best Anime Or Not
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-
emoji:
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colorFrom: purple
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colorTo: indigo
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sdk: gradio
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---
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title: Best Anime Or Not
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emoji: ❤️🖼️
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colorFrom: purple
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colorTo: indigo
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sdk: gradio
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app.py
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import cv2
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import numpy as np
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import gradio as gr
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import onnxruntime as rt
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from huggingface_hub import hf_hub_download
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def predict(img):
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img = img.astype(np.float32) / 255
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s = 640
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h, w = img.shape[:-1]
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h, w = (s, int(s * w / h)) if h > w else (int(s * h / w), s)
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ph, pw = s - h, s - w
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img_input = np.zeros([s, s, 3], dtype=np.float32)
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img_input[ph // 2:ph // 2 + h, pw // 2:pw // 2 + w] = cv2.resize(img, (w, h))
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img_input = np.transpose(img_input, (2, 0, 1))
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img_input = img_input[np.newaxis, :]
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pred = model.run(None, {"img": img_input})[0][0]
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return {"not best": pred[0].item(), "best": pred[1].item()}
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if __name__ == "__main__":
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model_path = hf_hub_download(repo_id="skytnt/anime_quality", filename="classifier.onnx")
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model = rt.InferenceSession(model_path, providers=['CUDAExecutionProvider', 'CPUExecutionProvider'])
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app = gr.Interface(predict, gr.Image(label="input image"), gr.Label(label="result"),title="Best Anime or Not", allow_flagging="never")
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app.launch()
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requirements.txt
ADDED
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onnxruntime-gpu
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opencv-python
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numpy
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