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--- |
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license: cc-by-sa-4.0 |
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metrics: |
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- mse |
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pipeline_tag: graph-ml |
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--- |
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# AIFS Single - v0.2.1 |
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<!-- Provide a quick summary of what the model is/does. --> |
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Here, we introduce the **Artificial Intelligence Forecasting System (AIFS)**, a data driven forecast |
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model developed by the European Centre for Medium-Range Weather Forecasts (ECMWF). |
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AIFS is based on a graph neural network (GNN) encoder and decoder, and a sliding window transformer processor, |
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and is trained on ECMWF’s ERA5 re-analysis and ECMWF’s operational numerical weather prediction (NWP) analyses. |
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It has a flexible and modular design and supports several levels of parallelism to enable training on |
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high resolution input data. AIFS forecast skill is assessed by comparing its forecasts to NWP analyses |
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and direct observational data. |
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We show that AIFS produces highly skilled forecasts for upper-air variables, surface weather parameters and |
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tropical cyclone tracks. AIFS is run four times daily alongside ECMWF’s physics-based NWP model and forecasts |
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are available to the public under ECMWF’s open data policy. |
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## Model Details |
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### Model Description |
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- **Developed by:** {{ developers | default("[More Information Needed]", true)}} |
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- **Funded by [optional]:** {{ funded_by | default("[More Information Needed]", true)}} |
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- **Shared by [optional]:** {{ shared_by | default("[More Information Needed]", true)}} |
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- **Model type:** {{ model_type | default("[More Information Needed]", true)}} |
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- **Language(s) (NLP):** {{ language | default("[More Information Needed]", true)}} |
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- **License:** {{ license | default("[More Information Needed]", true)}} |
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- **Finetuned from model [optional]:** {{ base_model | default("[More Information Needed]", true)}} |
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### Model Sources [optional] |
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- **Repository:** https://anemoi-docs.readthedocs.io/en/latest/index.html |
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- **Paper:** https://arxiv.org/pdf/2406.01465 |
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## Uses |
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### Direct Use |
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<!-- This section is for the model use without fine-tuning or plugging into a larger ecosystem/app. --> |
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### Downstream Use [optional] |
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<!-- This section is for the model use when fine-tuned for a task, or when plugged into a larger ecosystem/app --> |
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### Out-of-Scope Use |
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<!-- This section addresses misuse, malicious use, and uses that the model will not work well for. --> |
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## Bias, Risks, and Limitations |
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### Recommendations |
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{{ bias_recommendations | default("Users (both direct and downstream) should be made aware of the risks, biases and limitations of the model. More information needed for further recommendations.", true)}} |
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## How to Get Started with the Model |
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Use the code below to get started with the model. |
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{{ get_started_code | default("[More Information Needed]", true)}} |
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## Training Details |
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### Training Data |
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<!-- This should link to a Dataset Card, perhaps with a short stub of information on what the training data is all about as well as documentation related to data pre-processing or additional filtering. --> |
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{{ training_data | default("[More Information Needed]", true)}} |
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### Training Procedure |
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<!-- This relates heavily to the Technical Specifications. Content here should link to that section when it is relevant to the training procedure. --> |
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#### Preprocessing [optional] |
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{{ preprocessing | default("[More Information Needed]", true)}} |
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#### Training Hyperparameters |
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- **Training regime:** {{ training_regime | default("[More Information Needed]", true)}} <!--fp32, fp16 mixed precision, bf16 mixed precision, bf16 non-mixed precision, fp16 non-mixed precision, fp8 mixed precision --> |
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#### Speeds, Sizes, Times [optional] |
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{{ speeds_sizes_times | default("[More Information Needed]", true)}} |
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## Evaluation |
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<!-- This section describes the evaluation protocols and provides the results. --> |
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### Testing Data, Factors & Metrics |
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#### Testing Data |
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{{ testing_data | default("[More Information Needed]", true)}} |
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#### Factors |
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<!-- These are the things the evaluation is disaggregating by, e.g., subpopulations or domains. --> |
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{{ testing_factors | default("[More Information Needed]", true)}} |
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#### Metrics |
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{{ testing_metrics | default("[More Information Needed]", true)}} |
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### Results |
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{{ results | default("[More Information Needed]", true)}} |
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#### Summary |
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{{ results_summary | default("", true) }} |
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## Model Examination [optional] |
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<!-- Relevant interpretability work for the model goes here --> |
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{{ model_examination | default("[More Information Needed]", true)}} |
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## Environmental Impact |
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<!-- Total emissions (in grams of CO2eq) and additional considerations, such as electricity usage, go here. Edit the suggested text below accordingly --> |
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Carbon emissions can be estimated using the [Machine Learning Impact calculator](https://mlco2.github.io/impact#compute) presented in [Lacoste et al. (2019)](https://arxiv.org/abs/1910.09700). |
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- **Hardware Type:** {{ hardware_type | default("[More Information Needed]", true)}} |
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- **Hours used:** {{ hours_used | default("[More Information Needed]", true)}} |
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- **Cloud Provider:** {{ cloud_provider | default("[More Information Needed]", true)}} |
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- **Compute Region:** {{ cloud_region | default("[More Information Needed]", true)}} |
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- **Carbon Emitted:** {{ co2_emitted | default("[More Information Needed]", true)}} |
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## Technical Specifications [optional] |
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### Model Architecture and Objective |
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{{ model_specs | default("[More Information Needed]", true)}} |
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### Compute Infrastructure |
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#### Hardware |
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#### Software |
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## Citation |
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<!-- If there is a paper or blog post introducing the model, the APA and Bibtex information for that should go in this section. --> |
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If you use this model in your work, please cite it as follows: |
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**BibTeX:** |
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``` |
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@article{lang2024aifs, |
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title={AIFS-ECMWF's data-driven forecasting system}, |
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author={Lang, Simon and Alexe, Mihai and Chantry, Matthew and Dramsch, Jesper and Pinault, Florian and Raoult, Baudouin and Clare, Mariana CA and Lessig, Christian and Maier-Gerber, Michael and Magnusson, Linus and others}, |
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journal={arXiv preprint arXiv:2406.01465}, |
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year={2024} |
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} |
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``` |
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**APA:** |
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``` |
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Lang, S., Alexe, M., Chantry, M., Dramsch, J., Pinault, F., Raoult, B., ... & Rabier, F. (2024). AIFS-ECMWF's data-driven forecasting system. arXiv preprint arXiv:2406.01465. |
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``` |
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## Glossary [optional] |
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<!-- If relevant, include terms and calculations in this section that can help readers understand the model or model card. --> |
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{{ glossary | default("[More Information Needed]", true)}} |
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## More Information [optional] |
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## Model Card Authors [optional] |
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## Model Card Contact |
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