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docs/vi/docs/python-types.md
<img src="/img/python-types/image05.png"> Đa phần đều không thể đạt được nếu không có các kiểu dữ liệu. Chú ý rằng, biến `item` là một trong các phần tử trong danh sách `items`. Và do vậy, trình soạn thảo biết nó là một `str`, và cung cấp sự hỗ trợ cho nó. #### Tuple and Set Bạn sẽ làm điều tương tự để khai báo các `tuple` và các `set`:
Registered: Sun Nov 03 07:19:11 UTC 2024 - Last Modified: Sun Oct 06 20:36:54 UTC 2024 - 21.6K bytes - Viewed (0) -
docs/en/docs/tutorial/body-nested-models.md
``` //// With this, even if you receive a request with duplicate data, it will be converted to a set of unique items. And whenever you output that data, even if the source had duplicates, it will be output as a set of unique items. And it will be annotated / documented accordingly too. ## Nested Models Each attribute of a Pydantic model has a type.
Registered: Sun Nov 03 07:19:11 UTC 2024 - Last Modified: Sun Oct 06 20:36:54 UTC 2024 - 9.4K bytes - Viewed (0) -
docs/en/docs/tutorial/bigger-applications.md
* look for the subpackage `routers` (the directory at `app/routers/`)... * and from it, import the submodule `items` (the file at `app/routers/items.py`) and `users` (the file at `app/routers/users.py`)... The module `items` will have a variable `router` (`items.router`). This is the same one we created in the file `app/routers/items.py`, it's an `APIRouter` object. And then we do the same for the module `users`.
Registered: Sun Nov 03 07:19:11 UTC 2024 - Last Modified: Sun Oct 06 20:36:54 UTC 2024 - 18.4K bytes - Viewed (0) -
cmd/global-heal.go
// Heal all buckets with all objects for _, bucket := range healBuckets { if tracker.isHealed(bucket) { continue } var forwardTo string // If we resume to the same bucket, forward to last known item. b := tracker.getBucket() if b == bucket { forwardTo = tracker.getObject() } if b != "" { // Reset to where last bucket ended if resuming. tracker.resume() } tracker.setObject("")
Registered: Sun Nov 03 19:28:11 UTC 2024 - Last Modified: Sat Oct 26 09:58:27 UTC 2024 - 16.3K bytes - Viewed (0) -
ci/official/README.md
# Finally: Run your script of choice. # If you've clicked on a test result from our CI (via a dashboard or GitHub link), # click to "Invocation Details" and find BUILD_CONFIG, which will contain a # "build_file" item that indicates the script used. ci/official/wheel.sh # Advanced: Select specific build/test targets with "any.sh". # TF_ANY_TARGETS=":your/target" TF_ANY_MODE="test" ci/official/any.sh
Registered: Tue Nov 05 12:39:12 UTC 2024 - Last Modified: Thu Feb 01 03:21:19 UTC 2024 - 8K bytes - Viewed (0) -
docs/ru/docs/tutorial/body-nested-models.md
```Python hl_lines="9 14 20 23 27" {!> ../../docs_src/body_nested_models/tutorial007.py!} ``` //// /// info | "Информация" Заметьте, что у объекта `Offer` есть список объектов `Item`, которые, в свою очередь, могут содержать необязательный список объектов `Image` /// ## Тела с чистыми списками элементов
Registered: Sun Nov 03 07:19:11 UTC 2024 - Last Modified: Sun Oct 06 20:36:54 UTC 2024 - 14.8K bytes - Viewed (0) -
docs/ko/docs/tutorial/body-nested-models.md
## 깊게 중첩된 모델 단독으로 깊게 중첩된 모델을 정의할 수 있습니다: ```Python hl_lines="9 14 20 23 27" {!../../docs_src/body_nested_models/tutorial007.py!} ``` /// info | "정보" `Offer`가 선택사항 `Image` 리스트를 차례로 갖는 `Item` 리스트를 어떻게 가지고 있는지 주목하세요 /// ## 순수 리스트의 본문 예상되는 JSON 본문의 최상위 값이 JSON `array`(파이썬 `list`)면, Pydantic 모델에서와 마찬가지로 함수의 매개변수에서 타입을 선언할 수 있습니다: ```Python images: List[Image] ``` 이를 아래처럼:
Registered: Sun Nov 03 07:19:11 UTC 2024 - Last Modified: Sun Oct 06 20:36:54 UTC 2024 - 7.6K bytes - Viewed (0) -
src/main/config/openapi/openapi-user.yaml
type: array items: type: string example: ["aaa"] related_contents: type: array items: type: string example: [] data: type: array items: type: object
Registered: Thu Oct 31 13:40:30 UTC 2024 - Last Modified: Thu May 09 06:31:27 UTC 2024 - 21.6K bytes - Viewed (0) -
docs/en/docs/features.md
But by default, it all **"just works"**. ### Validation * Validation for most (or all?) Python **data types**, including: * JSON objects (`dict`). * JSON array (`list`) defining item types. * String (`str`) fields, defining min and max lengths. * Numbers (`int`, `float`) with min and max values, etc. * Validation for more exotic types, like: * URL. * Email. * UUID.
Registered: Sun Nov 03 07:19:11 UTC 2024 - Last Modified: Thu Aug 15 23:30:12 UTC 2024 - 9.2K bytes - Viewed (0) -
docs/tr/docs/features.md
Hepsi varsayılan olarak **çalışıyor**. ### Doğrulama * Neredeyse bütün (ya da hepsi?) Python **data typeları** için doğrulama, kapsadıkları: * JSON objeleri (`dict`). * JSON array (`list`) item type'ı belirtirken. * String (`str`) parametresi, minimum ve maksimum uzunluk gibi sınırlandırmalar yaparken. * Numaralar (`int`, `float`) maksimum ve minimum gibi sınırlandırmalar yaparken.
Registered: Sun Nov 03 07:19:11 UTC 2024 - Last Modified: Tue Aug 06 04:48:30 UTC 2024 - 11.1K bytes - Viewed (0)