@fotosyfondos · Post #9728 · 11/23/2018, 04:39 PM
📸🖼📸🖼📸🖼📸🖼📸🖼📸🖼 ➡️ Fantasmas #Fantasmas#Terror#Luigi#FondosDePantalla @fotosyfondos 📸🖼📸🖼📸🖼📸🖼📸🖼📸🖼
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Source channel @githubtrending · Post #15021 · Aug 1
#go#argocd#cloud_native#cncf#container_management#devops#ebpf#hacktoberfest#istio#jenkins#k8s#kubernetes#kubernetes_platform_solution#kubesphere#llm#multi_cluster#observability#servicemesh KubeSphere is an easy-to-use, open-source platform that helps you manage Kubernetes clusters across clouds, data centers, and edge devices from one place. It offers a friendly web interface, supports multi-cluster and multi-tenant management, and automates DevOps tasks like CI/CD pipelines. You get built-in monitoring, logging, alerting, and security features such as role-based access control. It also includes an App Store for quick deployment of applications and supports various storage and networking options. This makes managing complex Kubernetes environments simpler, faster, and more secure, saving you time and reducing operational challenges. https://github.com/kubesphere/kubesphere
Search: #luigi
@fotosyfondos · Post #9728 · 11/23/2018, 04:39 PM
📸🖼📸🖼📸🖼📸🖼📸🖼📸🖼 ➡️ Fantasmas #Fantasmas#Terror#Luigi#FondosDePantalla @fotosyfondos 📸🖼📸🖼📸🖼📸🖼📸🖼📸🖼
@djangoproject · Post #275 · 03/18/2017, 01:51 AM
https://github.com/spotify/luigi Writing batch jobs is generally only one part of processing heaps of data; you also have to string all the jobs together into something resembling a #workflow or a #pipeline. #Luigi, created by Spotify and named for the other plucky plumber made famous by Nintendo, was built to "address all the plumbing typically associated with long-running batch processes." With Luigi, a developer can take several different unrelated data processing tasks — "a Hive query, a Hadoop job in Java, a Spark job in Scala, dumping a table from a database" — and create a workflow that runs them, end to end. The entire description of a job and its dependencies are created as Python modules, not as XML config files or another data format, so it can be integrated into other Python-centric projects. #Machine_learning