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Results 181 - 190 of 243 for def (0.01 sec)

  1. docs/nl/docs/features.md

    Je schrijft gewoon standaard Python met types:
    
    ```Python
    from datetime import date
    
    from pydantic import BaseModel
    
    # Declareer een variabele als een str
    # en krijg editorondersteuning in de functie
    def main(user_id: str):
        return user_id
    
    
    # Een Pydantic model
    class User(BaseModel):
        id: int
        name: str
        joined: date
    ```
    
    Vervolgens kan je het op deze manier gebruiken:
    
    ```Python
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  2. docs/es/docs/advanced/custom-response.md

    /// tip | Consejo
    
    Nota que aquí como estamos usando `open()` estándar que no admite `async` y `await`, declaramos el path operation con `def` normal.
    
    ///
    
    ### `FileResponse`
    
    Transmite un archivo asincrónicamente como response.
    
    Toma un conjunto diferente de argumentos para crear un instance que los otros tipos de response:
    
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  3. docs/tr/docs/features.md

    ```Python
    from typing import List, Dict
    from datetime import date
    
    from pydantic import BaseModel
    
    # Değişkeni str olarak belirt
    # ve o fonksiyon için harika bir editör desteği al
    def main(user_id: str):
        return user_id
    
    
    # Pydantic modeli
    class User(BaseModel):
        id: int
        name: str
        joined: date
    ```
    
    Sonrasında bu şekilde kullanabilirsin
    
    ```Python
    Registered: Sun Sep 07 07:19:17 UTC 2025
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  4. docs/pl/docs/features.md

    Wystarczy, że napiszesz standardowe deklaracje typów Pythona:
    
    ```Python
    from datetime import date
    
    from pydantic import BaseModel
    
    # Zadeklaruj parametr jako str
    # i uzyskaj wsparcie edytora wewnątrz funkcji
    def main(user_id: str):
        return user_id
    
    
    # Model Pydantic
    class User(BaseModel):
        id: int
        name: str
        joined: date
    ```
    
    A one będą mogły zostać później użyte w następujący sposób:
    
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  5. docs/de/docs/features.md

    ```Python
    from typing import List, Dict
    from datetime import date
    
    from pydantic import BaseModel
    
    # Deklarieren Sie eine Variable als ein `str`
    # und bekommen Sie Editor-Unterstütung innerhalb der Funktion
    def main(user_id: str):
        return user_id
    
    
    # Ein Pydantic-Modell
    class User(BaseModel):
        id: int
        name: str
        joined: date
    ```
    
    Das kann nun wie folgt verwendet werden:
    
    ```Python
    Registered: Sun Sep 07 07:19:17 UTC 2025
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  6. docs/en/docs/features.md

    You write standard Python with types:
    
    ```Python
    from datetime import date
    
    from pydantic import BaseModel
    
    # Declare a variable as a str
    # and get editor support inside the function
    def main(user_id: str):
        return user_id
    
    
    # A Pydantic model
    class User(BaseModel):
        id: int
        name: str
        joined: date
    ```
    
    That can then be used like:
    
    ```Python
    Registered: Sun Sep 07 07:19:17 UTC 2025
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  7. tensorflow/c/c_api_experimental.cc

                                           TF_Status* status) {
      status->status = tensorflow::FindKernelDef(
          tensorflow::DeviceType(device_type), builder->BuildNodeDef(),
          /* def = */ nullptr, /* kernel_class_name = */ nullptr);
    }
    
    const char* TF_GetNumberAttrForOpListInput(const char* op_name, int input_index,
                                               TF_Status* status) {
    Registered: Tue Sep 09 12:39:10 UTC 2025
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  8. docs/ja/docs/tutorial/dependencies/classes-as-dependencies.md

    ```Python
    something(some_argument, some_keyword_argument="foo")
    ```
    
    これを「呼び出し可能」なものと呼びます。
    
    ## 依存関係としてのクラス
    
    Pythonのクラスのインスタンスを作成する際に、同じ構文を使用していることに気づくかもしれません。
    
    例えば:
    
    ```Python
    class Cat:
        def __init__(self, name: str):
            self.name = name
    
    
    fluffy = Cat(name="Mr Fluffy")
    ```
    
    この場合、`fluffy`は`Cat`クラスのインスタンスです。
    
    そして`fluffy`を作成するために、`Cat`を「呼び出している」ことになります。
    
    そのため、Pythonのクラスもまた「呼び出し可能」です。
    
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  9. docs/ko/docs/tutorial/request-files.md

    * `close()`: 파일을 닫습니다.
    
    상기 모든 메소드들이 `async` 메소드이기 때문에 “await”을 사용하여야 합니다.
    
    예를들어, `async` *경로 작동 함수*의 내부에서 다음과 같은 방식으로 내용을 가져올 수 있습니다:
    
    ```Python
    contents = await myfile.read()
    ```
    
    만약 일반적인 `def` *경로 작동 함수*의 내부라면, 다음과 같이 `UploadFile.file` 에 직접 접근할 수 있습니다:
    
    ```Python
    contents = myfile.file.read()
    ```
    
    /// note |  "`async` 기술적 세부사항"
    
    `async` 메소드들을 사용할 때 **FastAPI**는 스레드풀에서 파일 메소드들을 실행하고 그들을 기다립니다.
    
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  10. docs/pt/docs/features.md

    Você escreve Python padrão com tipos:
    
    ```Python
    from datetime import date
    
    from pydantic import BaseModel
    
    # Declare uma variável como str
    # e obtenha suporte do editor dentro da função
    def main(user_id: str):
        return user_id
    
    
    # Um modelo do Pydantic
    class User(BaseModel):
        id: int
        name: str
        joined: date
    ```
    
    Que então pode ser usado como:
    
    ```Python
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