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  1. CITATION.cff

    cff-version: 1.2.0
    message: "If you use TensorFlow in your research, please cite it using these metadata. Software is available from tensorflow.org."
    title: TensorFlow, Large-scale machine learning on heterogeneous systems
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  2. docs/pt/docs/advanced/events.md

    ## Caso de uso
    
    Vamos iniciar com um exemplo de **caso de uso** e então ver como resolvê-lo com isso.
    
    Vamos imaginar que você tem alguns **modelos de _machine learning_** que deseja usar para lidar com as requisições. 🤖
    
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  3. docs/en/docs/advanced/events.md

    ## Use Case
    
    Let's start with an example **use case** and then see how to solve it with this.
    
    Let's imagine that you have some **machine learning models** that you want to use to handle requests. 🤖
    
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  4. docs/en/docs/tutorial/path-params.md

    !!! tip
        If you are wondering, "AlexNet", "ResNet", and "LeNet" are just names of Machine Learning <abbr title="Technically, Deep Learning model architectures">models</abbr>.
    
    ### Declare a *path parameter*
    
    Then create a *path parameter* with a type annotation using the enum class you created (`ModelName`):
    
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  5. docs_src/path_params/tutorial005.py

    
    app = FastAPI()
    
    
    @app.get("/models/{model_name}")
    async def get_model(model_name: ModelName):
        if model_name is ModelName.alexnet:
            return {"model_name": model_name, "message": "Deep Learning FTW!"}
    
        if model_name.value == "lenet":
            return {"model_name": model_name, "message": "LeCNN all the images"}
    
    Python
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  6. docs/en/docs/advanced/index.md

    Some course providers ✨ [**sponsor FastAPI**](../help-fastapi.md#sponsor-the-author){.internal-link target=_blank} ✨, this ensures the continued and healthy **development** of FastAPI and its **ecosystem**.
    
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  7. SECURITY.md

    ## TensorFlow models are programs
    
    TensorFlow
    [**models**](https://developers.google.com/machine-learning/glossary/#model) (to
    use a term commonly used by machine learning practitioners) are expressed as
    programs that TensorFlow executes. TensorFlow programs are encoded as
    computation
    [**graphs**](https://developers.google.com/machine-learning/glossary/#graph).
    Since models are practically programs that TensorFlow executes, using untrusted
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  8. .zenodo.json

    {
        "description": "TensorFlow is an end-to-end open source platform for machine learning. It has a comprehensive, flexible ecosystem of tools, libraries, and community resources that lets researchers push the state-of-the-art in ML and developers easily build and deploy ML-powered applications.",
        "license": "Apache-2.0",
        "title": "TensorFlow",
        "upload_type": "software",
        "creators": [
            {
                "name": "TensorFlow Developers"
            }
    Json
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  9. docs/en/docs/tutorial/body-fields.md

    You can declare extra information in `Field`, `Query`, `Body`, etc. And it will be included in the generated JSON Schema.
    
    You will learn more about adding extra information later in the docs, when learning to declare examples.
    
    !!! warning
        Extra keys passed to `Field` will also be present in the resulting OpenAPI schema for your application.
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  10. docs/es/docs/tutorial/path-params.md

    !!! tip "Consejo"
        Si lo estás dudando, "AlexNet", "ResNet", y "LeNet" son solo nombres de <abbr title="Técnicamente, arquitecturas de modelos de Deep Learning">modelos</abbr> de Machine Learning.
    
    ### Declara un *parámetro de path*
    
    Luego, crea un *parámetro de path* con anotaciones de tipos usando la clase enum que creaste (`ModelName`):
    
    ```Python hl_lines="16"
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