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--- |
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title: Submission Template |
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emoji: 🔥 |
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colorFrom: yellow |
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colorTo: green |
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sdk: docker |
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pinned: false |
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--- |
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# MountAIn model for smoke detection |
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## Model Description |
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This is an evolution from YOLO baseline to focus on small-to-medium objects and integrated SAHI-like approach |
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### Intended Use |
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- **Primary intended uses**: First submission of a novel class model |
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- **Primary intended users**: Researchers and developers participating in the Frugal AI Challenge |
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- **Out-of-scope use cases**: Not intended for production use or real-world classification tasks |
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## Training Data |
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The model the Pyro-SDIS Subset contains 33,636 images, including: |
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- 28,103 images with smoke |
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- 31,975 smoke instances |
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### Labels |
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0. Smoke |
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## Performance |
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### Metrics |
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- **Accuracy**: Still to be estimated but mAP:50 > 70% |
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- **Environmental Impact**: |
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Emissions impact if inference is run on Cloud and/or on-premise gateways |
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- Emissions tracked in gCO2eq |
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- Energy consumption tracked in Wh |
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Emissions are null if run on MountAIn vision sensors since they are powered by renewable energy |
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### Model Architecture |
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Evolution from YOLO baseline |
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## Environmental Impact |
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Environmental impact is tracked using CodeCarbon, measuring: |
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- Carbon emissions during inference |
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- Energy consumption during inference |
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This tracking helps establish a baseline for the environmental impact of model deployment and inference while running in Cloud and/or on-premise gateways. |
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The usage of MountAIn vision sensors enables no environmental impact thanks to the usage of renewable energy |
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## Limitations |
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- Not suitable for any real-world applications as is without proper export to tiny MCUs |
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## Ethical Considerations |
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- Environmental impact is tracked to promote awareness of AI's carbon footprint |
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``` |
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