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goldirana 0da6fd4975
update model eval
4 months ago
f307e416e6
kidney ct scans project
4 months ago
0da6fd4975
update model eval
4 months ago
0da6fd4975
update model eval
4 months ago
0da6fd4975
update model eval
4 months ago
f307e416e6
kidney ct scans project
4 months ago
f307e416e6
kidney ct scans project
4 months ago
src
0da6fd4975
update model eval
4 months ago
f307e416e6
kidney ct scans project
4 months ago
f307e416e6
kidney ct scans project
4 months ago
f307e416e6
kidney ct scans project
4 months ago
f307e416e6
kidney ct scans project
4 months ago
0da6fd4975
update model eval
4 months ago
0da6fd4975
update model eval
4 months ago
f307e416e6
kidney ct scans project
4 months ago
f307e416e6
kidney ct scans project
4 months ago
0da6fd4975
update model eval
4 months ago
f307e416e6
kidney ct scans project
4 months ago
f307e416e6
kidney ct scans project
4 months ago
f307e416e6
kidney ct scans project
4 months ago
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README.md

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Kidney CT Scans

A short description of the project.

Project Organization

├── LICENSE
├── Makefile           <- Makefile with commands like `make data` or `make train`
├── README.md          <- The top-level README for developers using this project.
├── data
│   ├── external       <- Data from third party sources.
│   ├── interim        <- Intermediate data that has been transformed.
│   ├── processed      <- The final, canonical data sets for modeling.
│   └── raw            <- The original, immutable data dump.
│
├── docs               <- A default Sphinx project; see sphinx-doc.org for details
│
├── models             <- Trained and serialized models, model predictions, or model summaries
│
├── notebooks          <- Jupyter notebooks. Naming convention is a number (for ordering),
│                         the creator's initials, and a short `-` delimited description, e.g.
│                         `1.0-jqp-initial-data-exploration`.
│
├── references         <- Data dictionaries, manuals, and all other explanatory materials.
│
├── reports            <- Generated analysis as HTML, PDF, LaTeX, etc.
│   └── figures        <- Generated graphics and figures to be used in reporting
│
├── requirements.txt   <- The requirements file for reproducing the analysis environment, e.g.
│                         generated with `pip freeze > requirements.txt`
│
├── setup.py           <- makes project pip installable (pip install -e .) so src can be imported
├── src                <- Source code for use in this project.
│   ├── __init__.py    <- Makes src a Python module
│   │
│   ├── data           <- Scripts to download or generate data
│   │   └── make_dataset.py
│   │
│   ├── features       <- Scripts to turn raw data into features for modeling
│   │   └── build_features.py
│   │
│   ├── models         <- Scripts to train models and then use trained models to make
│   │   │                 predictions
│   │   ├── predict_model.py
│   │   └── train_model.py
│   │
│   └── visualization  <- Scripts to create exploratory and results oriented visualizations
│       └── visualize.py
│
└── tox.ini            <- tox file with settings for running tox; see tox.readthedocs.io

Project workflow

    1. Update config.yaml
    2. Update secrets.yaml [Optional]
    3. Update params.yaml
    4. Update the entity
    5. Update the configuration manager in src config
    6. Update the components
    7. Update the pipeline
    8. Update the main.py
    9. Update the dvc.yaml
    10. app.py

Project based on the cookiecutter data science project template. #cookiecutterdatascience

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