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ci/official/utilities/generate_index_html.sh
<li><a href="http://cs/f:devtools/kokoro/config/prod/$KOKORO_JOB_NAME">Codesearch - job definition</a></li> <li><a href="http://cs/f:learning/brain/testing/kokoro/$(echo "$KOKORO_JOB_NAME" | sed 's!tensorflow/!!g')">Codesearch - build definition & scripts</a></li> <li><a href="http://cs/$KOKORO_JOB_NAME">Codesearch - All references to this job</a></li> </ul>
Created: Tue Dec 30 12:39:10 GMT 2025 - Last Modified: Fri Sep 29 20:26:13 GMT 2023 - 2.3K bytes - Click Count (0) -
tensorflow/BUILD
# TODO(b/173549186): Move Google-internal TF code out of learning/brain package_group( name = "internal", packages = [ "//devtools/python/indexer/...", "//learning/brain/keras/...", "//learning/brain/mlir/...", "//learning/brain/tfrt/...", "//learning/lib/ami/simple_ml/...", "//learning/pathways/...",
Created: Tue Dec 30 12:39:10 GMT 2025 - Last Modified: Wed Nov 12 19:21:56 GMT 2025 - 53.1K bytes - Click Count (0) -
tensorflow/c/BUILD
# Tests tf_cuda_library( name = "c_test_util", testonly = 1, srcs = ["c_test_util.cc"], hdrs = ["c_test_util.h"], visibility = [ "//learning/brain:__subpackages__", "//tensorflow:__subpackages__", ], deps = [ ":c_api", ":c_api_experimental", "//tensorflow/core:lib", "//tensorflow/core:protos_all_cc",Created: Tue Dec 30 12:39:10 GMT 2025 - Last Modified: Sun Dec 07 13:04:09 GMT 2025 - 30.4K bytes - Click Count (0) -
README.md
researchers push the state-of-the-art in ML and developers easily build and deploy ML-powered applications. TensorFlow was originally developed by researchers and engineers working within the Machine Intelligence team at Google Brain to conduct research in machine learning and neural networks. However, the framework is versatile enough to be used in other areas as well. TensorFlow provides stable [Python](https://www.tensorflow.org/api_docs/python)
Created: Tue Dec 30 12:39:10 GMT 2025 - Last Modified: Fri Jul 18 14:09:03 GMT 2025 - 11.6K bytes - Click Count (0) -
docs/en/docs/features.md
* If you know Python types you know how to use Pydantic. * Plays nicely with your **<abbr title="Integrated Development Environment: similar to a code editor">IDE</abbr>/<abbr title="A program that checks for code errors">linter</abbr>/brain**: * Because pydantic data structures are just instances of classes you define; auto-completion, linting, mypy and your intuition should all work properly with your validated data. * Validate **complex structures**:
Created: Sun Dec 28 07:19:09 GMT 2025 - Last Modified: Sat Oct 11 17:48:49 GMT 2025 - 9.5K bytes - Click Count (0) -
docs/tr/docs/features.md
* Kullandığın geliştirme araçları ile iyi çalışır **<abbr title="Integrated Development Environment, kod editörüne benzer">IDE</abbr>/<abbr title="Code errorlarınızı inceleyen program">linter</abbr>/brain**: * Pydantic'in veri yapıları aslında sadece senin tanımladığın classlar; Bu yüzden doğrulanmış dataların ile otomatik tamamlama, linting ve mypy'ı kullanarak sorunsuz bir şekilde çalışabilirsin
Created: Sun Dec 28 07:19:09 GMT 2025 - Last Modified: Sat Oct 11 17:48:49 GMT 2025 - 11.1K bytes - Click Count (0) -
docs/zh/docs/features.md
* **更简单**: * 没有新的模式定义 micro-language 需要学习。 * 如果你知道 Python types,你就知道如何使用 Pydantic。 * 和你 **<abbr title="集成开发环境,和代码编辑器类似">IDE</abbr>/<abbr title="一个检查代码错误的程序">linter</abbr>/brain** 适配: * 因为 pydantic 数据结构仅仅是你定义的类的实例;自动补全,linting,mypy 以及你的直觉应该可以和你验证的数据一起正常工作。 * 验证**复杂结构**: * 使用分层的 Pydantic 模型, Python `typing`的 `List` 和 `Dict` 等等。 * 验证器使我们能够简单清楚的将复杂的数据模式定义、检查并记录为 JSON Schema。Created: Sun Dec 28 07:19:09 GMT 2025 - Last Modified: Sat Oct 11 17:48:49 GMT 2025 - 8.9K bytes - Click Count (0) -
tensorflow/c/eager/BUILD
], ) tf_cuda_library( name = "c_api_test_util", testonly = 1, srcs = ["c_api_test_util.cc"], hdrs = ["c_api_test_util.h"], visibility = [ "//learning/brain:__subpackages__", "//tensorflow:__subpackages__", ], deps = [ ":c_api", ":c_api_experimental", ":c_api_internal", "//tensorflow/c:c_test_util",Created: Tue Dec 30 12:39:10 GMT 2025 - Last Modified: Mon Apr 14 23:08:27 GMT 2025 - 33.3K bytes - Click Count (0) -
docs/zh-hant/docs/features.md
* **更簡單**: * 不需要學習新的 micro-language 來定義結構。 * 如果你知道 Python 型別,你就知道如何使用 Pydantic。 * 和你的 **<abbr title="Integrated Development Environment,和程式碼編輯器類似">IDE</abbr>/<abbr title="一個檢查程式碼錯誤的工具">linter</abbr>/brain** 都能好好配合: * 因為 Pydantic 的資料結構其實就是你自己定義的類別實例,所以自動補齊、linting、mypy 以及你的直覺都能很好地在經過驗證的資料上發揮作用。 * 驗證**複雜結構**: * 使用 Pydantic 模型時,你可以把資料結構分層設計,並且用 Python 的 `List` 和 `Dict` 等型別來定義。Created: Sun Dec 28 07:19:09 GMT 2025 - Last Modified: Sat Oct 11 17:48:49 GMT 2025 - 9.6K bytes - Click Count (0) -
cmd/erasure-object.go
minDisks = er.setDriveCount - er.defaultParityCount } if minDisks == er.setDriveCount/2 { // when data and parity are same we must atleast // wait for response from 1 extra drive to avoid // split-brain. minDisks++ } calcQuorum := func(metaArr []FileInfo, errs []error) (FileInfo, []FileInfo, []StorageAPI, time.Time, string, error) {Created: Sun Dec 28 19:28:13 GMT 2025 - Last Modified: Fri Oct 24 04:05:31 GMT 2025 - 80.4K bytes - Click Count (0)