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license: cc-by-4.0 | |
sdk: streamlit | |
sdk_version: 1.25.0 | |
colorFrom: blue | |
pinned: false | |
title: Biomap | |
emoji: 🐢 | |
colorTo: green | |
app_file: biomap/streamlit_app.py | |
# Welcome to the project inno-satellite-images-segmentation-gan | |
![](docs/assets/banner.png) | |
- **Project name**: inno-satellite-images-segmentation-gan | |
- **Library name**: library | |
- **Authors**: Ekimetrics | |
- **Description**: Segmenting satellite images in a large scale is challenging because grondtruth labels are spurious for medium resolution images (Sentinel 2). We want to improve our algorithm either with data augmentation from a GAN, or to correct or adjust Corine labels. | |
## Project Structure | |
``` | |
- library/ # Your python library | |
- data/ | |
- raw/ | |
- processed/ | |
- docs/ | |
- tests/ # Where goes each unitary test in your folder | |
- scripts/ # Where each automation script will go | |
- requirements.txt # Where you should put the libraries version used in your library | |
``` | |
## Branch strategy | |
TBD | |
## Ethics checklist | |
TBD | |
## Starter package | |
This project has been created using the Ekimetrics Python Starter Package to enforce best coding practices, reusability and industrialization. <br> | |
If you have any questions please reach out to the inno team and [Théo Alves Da Costa](mailto:theo.alvesdacosta@ekimetrics.com) |