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src/main/java/org/codelibs/fess/opensearch/query/StoredLtrQueryBuilder.java
import org.opensearch.index.query.AbstractQueryBuilder; import org.opensearch.index.query.QueryBuilder; import org.opensearch.index.query.QueryShardContext; /** * A query builder for a stored LTR (Learning to Rank) query. * This builder constructs a query that uses a pre-trained LTR model * to re-rank search results based on a given set of features. */
Registered: Sat Dec 20 09:19:18 UTC 2025 - Last Modified: Thu Jul 17 08:28:31 UTC 2025 - 7.6K bytes - Viewed (0) -
docs/ja/docs/tutorial/path-params.md
/// /// tip | 豆知識 "AlexNet"、"ResNet"そして"LeNet"は機械学習<abbr title="Technically, Deep Learning model architectures">モデル</abbr>の名前です。 /// ### *パスパラメータ*の宣言 次に、作成したenumクラスである`ModelName`を使用した型アノテーションをもつ*パスパラメータ*を作成します: {* ../../docs_src/path_params/tutorial005.py hl[16] *} ### ドキュメントの確認
Registered: Sun Dec 28 07:19:09 UTC 2025 - Last Modified: Mon Nov 18 02:25:44 UTC 2024 - 10.4K bytes - Viewed (0) -
docs/en/data/topic_repos.yml
html_url: https://github.com/zhanymkanov/fastapi-best-practices stars: 14644 owner_login: zhanymkanov owner_html_url: https://github.com/zhanymkanov - name: machine-learning-zoomcamp html_url: https://github.com/DataTalksClub/machine-learning-zoomcamp stars: 12320 owner_login: DataTalksClub owner_html_url: https://github.com/DataTalksClub - name: fastapi_mcp html_url: https://github.com/tadata-org/fastapi_mcp
Registered: Sun Dec 28 07:19:09 UTC 2025 - Last Modified: Mon Dec 01 13:17:29 UTC 2025 - 16K bytes - Viewed (0) -
docs/es/docs/deployment/concepts.md
### Memoria por Proceso { #memory-per-process } Ahora, cuando el programa carga cosas en memoria, por ejemplo, un modelo de Machine Learning en una variable, o el contenido de un archivo grande en una variable, todo eso **consume un poco de la memoria (RAM)** del servidor.Registered: Sun Dec 28 07:19:09 UTC 2025 - Last Modified: Tue Dec 16 16:33:45 UTC 2025 - 20.1K bytes - Viewed (0) -
docs/ko/docs/tutorial/path-params.md
클라이언트에 반환하기 전에 해당 값(이 경우 문자열)으로 변환됩니다: {* ../../docs_src/path_params/tutorial005.py hl[18,21,23] *} 클라이언트는 아래의 JSON 응답을 얻습니다: ```JSON { "model_name": "alexnet", "message": "Deep Learning FTW!" } ``` ## 경로를 포함하는 경로 매개변수 경로를 포함하는 *경로 작동* `/files/{file_path}`이 있다고 해봅시다. 그런데 이 경우 `file_path` 자체가 `home/johndoe/myfile.txt`와 같은 경로를 포함해야 합니다.Registered: Sun Dec 28 07:19:09 UTC 2025 - Last Modified: Mon Nov 18 02:25:44 UTC 2024 - 9.6K bytes - Viewed (0) -
docs/de/docs/async.md
* **Maschinelles Lernen**: Normalerweise sind viele „Matrix“- und „Vektor“-Multiplikationen erforderlich. Stellen Sie sich eine riesige Tabelle mit Zahlen vor, in der Sie alle Zahlen gleichzeitig multiplizieren.
Registered: Sun Dec 28 07:19:09 UTC 2025 - Last Modified: Sat Sep 20 15:10:09 UTC 2025 - 27.9K bytes - Viewed (0) -
README.md
"article" ); suggester.indexer().indexFromDocument(reader, 4, 50); ``` ### Search Analytics ```java // Track user queries for analytics QueryLog userQuery = new QueryLog("machine learning tutorials", "user456"); suggester.indexer().indexFromQueryLog(userQuery); // Get trending searches PopularWordsResponse trending = suggester.popularWords() .setSize(10) .execute() .getResponse();
Registered: Sat Dec 20 13:04:59 UTC 2025 - Last Modified: Sun Aug 31 03:31:14 UTC 2025 - 12.1K bytes - Viewed (1) -
docs/ru/docs/tutorial/path-params.md
{* ../../docs_src/path_params/tutorial005_py39.py hl[18,21,23] *} Вы отправите клиенту такой JSON-ответ: ```JSON { "model_name": "alexnet", "message": "Deep Learning FTW!" } ``` ## Path-параметры, содержащие пути { #path-parameters-containing-paths } Предположим, что есть *операция пути* с путем `/files/{file_path}`.Registered: Sun Dec 28 07:19:09 UTC 2025 - Last Modified: Wed Dec 17 20:41:43 UTC 2025 - 14.2K bytes - Viewed (0) -
docs/tr/docs/tutorial/path-params.md
{* ../../docs_src/path_params/tutorial005.py hl[18,21,23] *} İstemci tarafında şuna benzer bir JSON yanıtı ile karşılaşırsınız: ```JSON { "model_name": "alexnet", "message": "Deep Learning FTW!" } ``` ## Yol İçeren Yol Parametreleri Farz edelim ki elinizde `/files/{file_path}` isminde bir *yol operasyonu* var.Registered: Sun Dec 28 07:19:09 UTC 2025 - Last Modified: Sun Aug 31 10:29:01 UTC 2025 - 10.5K bytes - Viewed (0) -
docs/en/docs/deployment/concepts.md
### Memory per Process { #memory-per-process } Now, when the program loads things in memory, for example, a machine learning model in a variable, or the contents of a large file in a variable, all that **consumes a bit of the memory (RAM)** of the server.Registered: Sun Dec 28 07:19:09 UTC 2025 - Last Modified: Sun Aug 31 09:15:41 UTC 2025 - 18.6K bytes - Viewed (1)