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  1. .gitignore +162 -0
  2. README.md +39 -0
  3. app.py +79 -0
  4. requirements.txt +11 -0
.gitignore ADDED
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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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+
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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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+ share/python-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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+
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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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+
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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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+ 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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+ cover/
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+
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+ # Translations
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+ *.mo
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+ *.pot
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+
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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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+ db.sqlite3-journal
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+
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+ # Flask stuff:
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+ 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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+
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+ # Sphinx documentation
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+ docs/_build/
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+
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+ # PyBuilder
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+ .pybuilder/
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+ target/
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+
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+ # Jupyter Notebook
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+ .ipynb_checkpoints
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+
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+ # IPython
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+ profile_default/
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+ ipython_config.py
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+
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+ # pyenv
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+ # For a library or package, you might want to ignore these files since the code is
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+ # intended to run in multiple environments; otherwise, check them in:
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+ # .python-version
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+
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+ # pipenv
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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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+
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+ # poetry
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+ # Similar to Pipfile.lock, it is generally recommended to include poetry.lock in version control.
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+ # This is especially recommended for binary packages to ensure reproducibility, and is more
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+ # commonly ignored for libraries.
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+ # https://python-poetry.org/docs/basic-usage/#commit-your-poetrylock-file-to-version-control
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+ #poetry.lock
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+
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+ # pdm
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+ # Similar to Pipfile.lock, it is generally recommended to include pdm.lock in version control.
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+ #pdm.lock
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+ # pdm stores project-wide configurations in .pdm.toml, but it is recommended to not include it
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+ # in version control.
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+ # https://pdm.fming.dev/latest/usage/project/#working-with-version-control
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+ .pdm.toml
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+ .pdm-python
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+ .pdm-build/
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+
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+ # PEP 582; used by e.g. github.com/David-OConnor/pyflow and github.com/pdm-project/pdm
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+ __pypackages__/
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+
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+ # Celery stuff
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+ celerybeat-schedule
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+ celerybeat.pid
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+
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+ # SageMath parsed files
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+ *.sage.py
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+
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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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+
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+ # Spyder project settings
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+ .spyderproject
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+ .spyproject
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+
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+ # Rope project settings
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+ .ropeproject
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+
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+ # mkdocs documentation
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+ /site
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+
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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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+
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+ # Pyre type checker
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+ .pyre/
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+
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+ # pytype static type analyzer
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+ .pytype/
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+
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+ # Cython debug symbols
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+ cython_debug/
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+
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+ # PyCharm
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+ # JetBrains specific template is maintained in a separate JetBrains.gitignore that can
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+ # be found at https://github.com/github/gitignore/blob/main/Global/JetBrains.gitignore
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+ # and can be added to the global gitignore or merged into this file. For a more nuclear
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+ # option (not recommended) you can uncomment the following to ignore the entire idea folder.
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+ .idea/
README.md ADDED
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+ # Object detection
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+
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+ Aim: AI-driven object detection (on COCO image dataset)
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+
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+ ## Direct object detection via python scripts
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+
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+ ### 1. Use of torch library
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+ > python detect_torch.py
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+
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+ ### 2. Use of transformers library
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+ > python detect_transformers.py
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+
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+ ### 3. Use of HuggingFace pipeline library
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+ > python detect_pipeline.py
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+
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+ ## Object detection via User Interface
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+ Use of Gradio library for web interface
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+
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+ Command line:
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+ > python app.py
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+
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+ <b>Note:</b> The Gradio app should now be accessible at http://localhost:7860
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+
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+ ## Object detection via Gradio client API
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+
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+ <b>Note:</b> Use of existing Gradio server (running locally, in a Docker container, or in the cloud as a HuggingFace space or AWS)
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+
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+ ### 1. Creation of docker container
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+
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+ Command lines:
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+ > sudo docker build -t gradio-app .
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+
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+ > sudo docker run -p 7860:7860 gradio-app
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+
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+ The Gradio app should now be accessible at http://localhost:7860
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+
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+ ### 2. Direct inference via API
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+ Command line:
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+ > python inference_API.py
app.py ADDED
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+ # app.py
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+
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+ import gradio as gr
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+ #import spaces
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+ #import torch
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+
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+ from PIL import Image
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+ from transformers import pipeline
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+ import matplotlib.pyplot as plt
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+ import io
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+
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+ model_pipeline = pipeline(model="facebook/detr-resnet-50")
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+
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+
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+ COLORS = [
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+ [0.000, 0.447, 0.741],
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+ [0.850, 0.325, 0.098],
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+ [0.929, 0.694, 0.125],
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+ [0.494, 0.184, 0.556],
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+ [0.466, 0.674, 0.188],
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+ [0.301, 0.745, 0.933],
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+ ]
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+
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+
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+ def get_output_figure(pil_img, results, threshold):
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+ plt.figure(figsize=(16, 10))
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+ plt.imshow(pil_img)
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+ ax = plt.gca()
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+ colors = COLORS * 100
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+
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+ for result in results:
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+ score = result["score"]
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+ label = result["label"]
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+ box = list(result["box"].values())
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+ if score > threshold:
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+ c = COLORS[hash(label) % len(COLORS)]
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+ ax.add_patch(
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+ plt.Rectangle((box[0], box[1]), box[2] - box[0], box[3] - box[1], fill=False, color=c, linewidth=3)
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+ )
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+ text = f"{label}: {score:0.2f}"
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+ ax.text(box[0], box[1], text, fontsize=15, bbox=dict(facecolor="yellow", alpha=0.5))
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+ plt.axis("off")
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+
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+ return plt.gcf()
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+
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+
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+ #@spaces.GPU
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+ def detect(image):
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+ results = model_pipeline(image)
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+ print(results)
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+
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+ output_figure = get_output_figure(image, results, threshold=0.9)
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+
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+ buf = io.BytesIO()
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+ output_figure.savefig(buf, bbox_inches="tight")
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+ buf.seek(0)
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+ output_pil_img = Image.open(buf)
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+
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+ return output_pil_img
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+
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+
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+ with gr.Blocks() as demo:
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+ gr.Markdown("# Object detection with DETR on COCO dataset")
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+ gr.Markdown(
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+ """
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+ This application uses a DETR (DEtection TRansformers) model to detect objects on images.
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+ This version was trained using the COCO dataset.
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+ You can load an image and see the predictions for the objects detected.
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+ """
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+ )
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+
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+ gr.Interface(
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+ fn=detect,
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+ inputs=gr.Image(label="Input image", type="pil"),
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+ outputs=[gr.Image(label="Output prediction", type="pil")],
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+ examples=['samples/savanna.jpg'],
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+ )
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+
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+ demo.launch(show_error=True)
requirements.txt ADDED
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+ numpy==1.26.4
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+ pillow==11.0.0
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+ torch==2.2.2
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+ torchvision==0.17.2
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+ requests==2.32.3
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+ matplotlib==3.9.2
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+ scipy==1.14.1
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+ transformers==4.46.2
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+ huggingface-hub==0.26.2
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+ gradio==5.5.0
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+ timm==1.0.11