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src/main/java/org/codelibs/fess/app/web/api/admin/stats/ApiAdminStatsAction.java
/** * Data transfer object representing process CPU statistics. */ public static class ProcessCpuObj { /** * Default constructor. */ public ProcessCpuObj() { // Default constructor } /** CPU usage percentage for the process. */ public short percent; /** Total CPU time used by the process in milliseconds. */Created: Sat Dec 20 09:19:18 GMT 2025 - Last Modified: Thu Jul 17 08:28:31 GMT 2025 - 19.7K bytes - Click Count (0) -
README.md
A smaller CPU-only package is also available: ``` $ pip install tensorflow-cpu ``` To update TensorFlow to the latest version, add `--upgrade` flag to the above commands. *Nightly binaries are available for testing using the [tf-nightly](https://pypi.python.org/pypi/tf-nightly) and [tf-nightly-cpu](https://pypi.python.org/pypi/tf-nightly-cpu) packages on PyPI.*
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/ru/docs/deployment/concepts.md
С другой стороны, если у вас 2 сервера и вы используете **100% их CPU и RAM**, в какой‑то момент один процесс попросит больше памяти, и сервер начнёт использовать диск как «память» (что в тысячи раз медленнее) или даже **упадёт**. Или процессу понадобятся вычисления, но ему придётся ждать освобождения CPU.
Created: Sun Dec 28 07:19:09 GMT 2025 - Last Modified: Tue Sep 30 11:24:39 GMT 2025 - 29.6K bytes - Click Count (0) -
fess-crawler-lasta/src/main/resources/crawler/extractor.xml
"application/vnd.criticaltools.wbs+xml", "application/vnd.ctc-posml", "application/vnd.ctct.ws+xml", "application/vnd.cups-pdf", "application/vnd.cups-postscript", "application/vnd.cups-ppd", "application/vnd.cups-raster", "application/vnd.cups-raw", "application/vnd.curl.car", "application/vnd.curl.pcurl", "application/vnd.cybank", "application/vnd.data-vision.rdz",
Created: Sat Dec 20 11:21:39 GMT 2025 - Last Modified: Sun Nov 23 03:46:53 GMT 2025 - 50.1K bytes - Click Count (0) -
docs/zh/docs/deployment/concepts.md
## 资源利用率 您的服务器是一个**资源**,您可以通过您的程序消耗或**利用**CPU 上的计算时间以及可用的 RAM 内存。 您想要消耗/利用多少系统资源? 您可能很容易认为“不多”,但实际上,您可能希望在不崩溃的情况下**尽可能多地消耗**。 如果您支付了 3 台服务器的费用,但只使用了它们的一点点 RAM 和 CPU,那么您可能**浪费金钱** 💸,并且可能 **浪费服务器电力** 🌎,等等。 在这种情况下,最好只拥有 2 台服务器并使用更高比例的资源(CPU、内存、磁盘、网络带宽等)。 另一方面,如果您有 2 台服务器,并且正在使用 **100% 的 CPU 和 RAM**,则在某些时候,一个进程会要求更多内存,并且服务器将不得不使用磁盘作为“内存” (这可能会慢数千倍),甚至**崩溃**。 或者一个进程可能需要执行一些计算,并且必须等到 CPU 再次空闲。
Created: Sun Dec 28 07:19:09 GMT 2025 - Last Modified: Sun May 11 13:37:26 GMT 2025 - 16.2K bytes - Click Count (0) -
ci/official/envs/linux_arm64
TFCI_BAZEL_COMMON_ARGS="--repo_env=HERMETIC_PYTHON_VERSION=$TFCI_PYTHON_VERSION --repo_env=USE_PYWRAP_RULES=True --config release_arm64_linux" TFCI_BAZEL_TARGET_SELECTING_CONFIG_PREFIX=linux_arm64 # Note: this is not set to "--cpu", because that changes the package name # to tensorflow_cpu. These ARM builds are supposed to have the name "tensorflow" # despite lacking Nvidia CUDA support. TFCI_BUILD_PIP_PACKAGE_WHEEL_NAME_ARG="--repo_env=WHEEL_NAME=tensorflow"
Created: Tue Dec 30 12:39:10 GMT 2025 - Last Modified: Sat Dec 13 00:14:04 GMT 2025 - 1.6K bytes - Click Count (0) -
src/main/java/org/codelibs/fess/helper/SystemHelper.java
} } /** * Calibrates the CPU load. * * @return true if the CPU load is within the acceptable range, false otherwise. */ public boolean calibrateCpuLoad() { return calibrateCpuLoad(0L); } /** * Calibrates the CPU load with a timeout. * * @param timeoutInMillis The timeout in milliseconds.Created: Sat Dec 20 09:19:18 GMT 2025 - Last Modified: Sat Dec 20 08:30:43 GMT 2025 - 36.6K bytes - Click Count (0) -
ci/official/envs/linux_x86_cuda
TFCI_BAZEL_TARGET_SELECTING_CONFIG_PREFIX=linux_cuda TFCI_BUILD_PIP_PACKAGE_WHEEL_NAME_ARG="--repo_env=WHEEL_NAME=tensorflow" TFCI_DOCKER_ARGS="--gpus all" TFCI_LIB_SUFFIX="-gpu-linux-x86_64" # TODO: Set back to 610M once the wheel size is fixed.
Created: Tue Dec 30 12:39:10 GMT 2025 - Last Modified: Tue Feb 18 22:52:46 GMT 2025 - 1.1K bytes - Click Count (0) -
ci/official/utilities/rename_and_verify_wheels.sh
if [[ "$TFCI_WHL_NUMPY_VERSION" == 1 ]]; then # Uninstall tf nightly wheel built with numpy1. "$python" -m pip uninstall -y tf_nightly_numpy1 # Install tf nightly cpu wheel built with numpy2.x from PyPI in numpy1.x env. "$python" -m pip install tf-nightly-cpu if [[ "$TFCI_WHL_IMPORT_TEST_ENABLE" == "1" ]]; then "$python" -c 'import tensorflow as tf; t1=tf.constant([1,2,3,4]); t2=tf.constant([5,6,7,8]); print(tf.add(t1,t2).shape)'
Created: Tue Dec 30 12:39:10 GMT 2025 - Last Modified: Mon Sep 22 21:39:32 GMT 2025 - 4.4K bytes - Click Count (0) -
CHANGELOG/CHANGELOG-1.3.md
* Use local disk for ConfigMap volume instead of tmpfs ([#25306](https://github.com/kubernetes/kubernetes/pull/25306), [@pmorie](https://github.com/pmorie)) * Alpha support for scheduling pods on machines with NVIDIA GPUs whose kubelets use the `--experimental-nvidia-gpus` flag, using the alpha.kubernetes.io/nvidia-gpu resource ([#24836](https://github.com/kubernetes/kubernetes/pull/24836), [@therc](https://github.com/therc))
Created: Fri Dec 26 09:05:12 GMT 2025 - Last Modified: Thu Dec 24 02:28:26 GMT 2020 - 84K bytes - Click Count (0)