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README.md
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datasets:
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- GIZ/policy_classification
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co2_eq_emissions:
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emissions:
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source: codecarbon
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training_type: fine-tuning
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on_cloud: true
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cpu_model: Intel(R) Xeon(R) CPU @ 2.00GHz
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ram_total_size: 12.6747894287109
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hours_used: 0.
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hardware_used: 1 x Tesla T4
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---
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## Training and evaluation data
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- Training Dataset:
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| Class | Positive Count of Class|
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| Policy | 1396|
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| Target | 2911 |
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| Class | Positive Count of Class|
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| Policy | 122 |
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| Target | 256 |
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## Training procedure
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|label | precision |recall |f1-score| support|
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### Framework versions
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datasets:
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- GIZ/policy_classification
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co2_eq_emissions:
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emissions: 37.5331346075112
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source: codecarbon
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training_type: fine-tuning
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on_cloud: true
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cpu_model: Intel(R) Xeon(R) CPU @ 2.00GHz
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ram_total_size: 12.6747894287109
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hours_used: 0.659
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hardware_used: 1 x Tesla T4
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---
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## Training and evaluation data
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- Training Dataset: 12538
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| Class | Positive Count of Class|
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| AdaptationLabel | 5439 |
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| MitigationLabel | 6659 |
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- Validation Dataset: 1190
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| Class | Positive Count of Class|
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|:-------------|:--------|
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| AdaptationLabel | 533 |
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| MitigationLabel | 604 |
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## Training procedure
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|label | precision |recall |f1-score| support|
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|:-------------:|:---------:|:-----:|:------:|:------:|
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|AdaptationLabel |0.909 |0.908 |0.909 | 533.0 |
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|MitigationLabel |0.891 |0.925 |0.908 | 604.0 |
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### Environmental Impact
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Carbon emissions were measured using [CodeCarbon](https://github.com/mlco2/codecarbon).
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- **Carbon Emitted**: 0.0375 kg of CO2
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- **Hours Used**: 0.659 hours
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### Training Hardware
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- **On Cloud**: yes
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- **GPU Model**: 1 x Tesla T4
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- **CPU Model**: Intel(R) Xeon(R) CPU @ 2.00GHz
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- **RAM Size**: 12.67 GB
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### Framework versions
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