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.github/workflows/run-mint.sh
docker pull docker.io/minio/mint:edge docker-compose -f minio-${MODE}.yaml up -d sleep 1m docker system prune -f || true docker volume prune -f || true docker volume rm $(docker volume ls -q -f dangling=true) || true # Stop two nodes, one of each pool, to check that all S3 calls work while quorum is still there [ "${MODE}" == "pools" ] && docker-compose -f minio-${MODE}.yaml stop minio2Registered: Sun Sep 07 19:28:11 UTC 2025 - Last Modified: Mon Jan 20 14:49:07 UTC 2025 - 1.9K bytes - Viewed (0) -
cmd/batch-expire_test.go
delay: 500ms # least amount of delay between each retry ` var job BatchJobRequest err := yaml.Unmarshal([]byte(expireYaml), &job) if err != nil { t.Fatal("Failed to parse batch-job-expire yaml", err) } if !slices.Equal(job.Expire.Prefix.F(), []string{"myprefix"}) { t.Fatal("Failed to parse batch-job-expire yaml") } multiPrefixExpireYaml := ` expire: # Expire objects that match a condition apiVersion: v1
Registered: Sun Sep 07 19:28:11 UTC 2025 - Last Modified: Thu Aug 01 12:53:30 UTC 2024 - 5.5K bytes - Viewed (0) -
docs/fr/docs/advanced/path-operation-advanced-configuration.md
{* ../../docs_src/path_operation_advanced_configuration/tutorial007.py hl[17:22,24] *} Néanmoins, bien que nous n'utilisions pas la fonctionnalité par défaut, nous utilisons toujours un modèle Pydantic pour générer manuellement le schéma JSON pour les données que nous souhaitons recevoir en YAML.Registered: Sun Sep 07 07:19:17 UTC 2025 - Last Modified: Sat Nov 09 16:39:20 UTC 2024 - 7.8K bytes - Viewed (0) -
docs/de/docs/advanced/path-operation-advanced-configuration.md
Dann verwenden wir den Request direkt und extrahieren den Body als `bytes`. Das bedeutet, dass FastAPI nicht einmal versucht, den Request-Payload als JSON zu parsen. Und dann parsen wir in unserem Code diesen YAML-Inhalt direkt und verwenden dann wieder dasselbe Pydantic-Modell, um den YAML-Inhalt zu validieren: //// tab | Pydantic v2
Registered: Sun Sep 07 07:19:17 UTC 2025 - Last Modified: Mon Nov 18 02:25:44 UTC 2024 - 8.3K bytes - Viewed (0) -
docs/orchestration/docker-compose/README.md
## 2. Run Distributed MinIO on Docker Compose
Registered: Sun Sep 07 19:28:11 UTC 2025 - Last Modified: Tue Aug 12 18:20:36 UTC 2025 - 3.1K bytes - Viewed (0) -
.github/workflows/mint.yml
docker-compose -f ${GITHUB_WORKSPACE}/.github/workflows/mint/minio-${mode}.yaml rm || true done docker-compose -f ${GITHUB_WORKSPACE}/.github/workflows/multipart/docker-compose-site1.yaml rm -s -f || true docker-compose -f ${GITHUB_WORKSPACE}/.github/workflows/multipart/docker-compose-site2.yaml rm -s -f || trueRegistered: Sun Sep 07 19:28:11 UTC 2025 - Last Modified: Wed Apr 09 14:28:39 UTC 2025 - 2.9K bytes - Viewed (0) -
docs/es/docs/advanced/path-operation-advanced-configuration.md
Luego usamos el request directamente, y extraemos el cuerpo como `bytes`. Esto significa que FastAPI ni siquiera intentará parsear la carga útil del request como JSON. Y luego en nuestro código, parseamos ese contenido YAML directamente, y nuevamente estamos usando el mismo modelo Pydantic para validar el contenido YAML: //// tab | Pydantic v2
Registered: Sun Sep 07 07:19:17 UTC 2025 - Last Modified: Mon Dec 30 17:46:44 UTC 2024 - 7.9K bytes - Viewed (0) -
src/test/java/org/codelibs/fess/util/SearchEngineUtilTest.java
OutputStream jsonOutput = SearchEngineUtil.getXContentBuilderOutputStream(callback, XContentType.JSON); assertNotNull(jsonOutput); // Test with YAML OutputStream yamlOutput = SearchEngineUtil.getXContentBuilderOutputStream(callback, XContentType.YAML); assertNotNull(yamlOutput); } public void test_getXContentOutputStream_success() { ToXContent xContent = new ToXContent() {
Registered: Thu Sep 04 12:52:25 UTC 2025 - Last Modified: Sat Jul 12 07:34:10 UTC 2025 - 13.6K bytes - Viewed (0) -
docs/pt/docs/advanced/path-operation-advanced-configuration.md
Então utilizamos a requisição diretamente, e extraímos o corpo como `bytes`. Isso significa que o FastAPI não vai sequer tentar analisar o corpo da requisição como JSON. E então no nosso código, nós analisamos o conteúdo YAML diretamente, e estamos utilizando o mesmo modelo Pydantic para validar o conteúdo YAML: //// tab | Pydantic v2
Registered: Sun Sep 07 07:19:17 UTC 2025 - Last Modified: Mon Nov 18 02:25:44 UTC 2024 - 8.3K bytes - Viewed (0) -
.github/workflows/upgrade-ci-cd.yaml
Harshavardhana <******@****.***> 1744208919 -0700
Registered: Sun Sep 07 19:28:11 UTC 2025 - Last Modified: Wed Apr 09 14:28:39 UTC 2025 - 729 bytes - Viewed (0)