Delete untranslated contents in the l10n(ko) directory (#11267)

This commit is contained in:
June Yi
2018-11-25 18:17:31 +09:00
committed by k8s-ci-robot
parent 8a7254c0b8
commit fb624c10b4
20 changed files with 0 additions and 3758 deletions
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---
title: CoreOS on AWS or GCE
content_template: templates/concept
---
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There are multiple guides on running Kubernetes with [CoreOS](https://coreos.com/kubernetes/docs/latest/).
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{{% capture body %}}
## Official CoreOS Guides
These guides are maintained by CoreOS and deploy Kubernetes the "CoreOS Way" with full TLS, the DNS add-on, and more. These guides pass Kubernetes conformance testing and we encourage you to [test this yourself](https://coreos.com/kubernetes/docs/latest/conformance-tests.html).
* [**AWS Multi-Node**](https://coreos.com/kubernetes/docs/latest/kubernetes-on-aws.html)
Guide and CLI tool for setting up a multi-node cluster on AWS.
CloudFormation is used to set up a master and multiple workers in auto-scaling groups.
* [**Bare Metal Multi-Node**](https://coreos.com/kubernetes/docs/latest/kubernetes-on-baremetal.html#automated-provisioning)
Guide and HTTP/API service for PXE booting and provisioning a multi-node cluster on bare metal.
[Ignition](https://coreos.com/ignition/docs/latest/) is used to provision a master and multiple workers on the first boot from disk.
* [**Vagrant Multi-Node**](https://coreos.com/kubernetes/docs/latest/kubernetes-on-vagrant.html)
Guide to setting up a multi-node cluster on Vagrant.
The deployer can independently configure the number of etcd nodes, master nodes, and worker nodes to bring up a fully HA control plane.
* [**Vagrant Single-Node**](https://coreos.com/kubernetes/docs/latest/kubernetes-on-vagrant-single.html)
The quickest way to set up a Kubernetes development environment locally.
As easy as `git clone`, `vagrant up` and configuring `kubectl`.
* [**Full Step by Step Guide**](https://coreos.com/kubernetes/docs/latest/getting-started.html)
A generic guide to setting up an HA cluster on any cloud or bare metal, with full TLS.
Repeat the master or worker steps to configure more machines of that role.
## Community Guides
These guides are maintained by community members, cover specific platforms and use cases, and experiment with different ways of configuring Kubernetes on CoreOS.
* [**Easy Multi-node Cluster on Google Compute Engine**](https://github.com/rimusz/coreos-multi-node-k8s-gce/blob/master/README.md)
Scripted installation of a single master, multi-worker cluster on GCE.
Kubernetes components are managed by [fleet](https://github.com/coreos/fleet).
* [**Multi-node cluster using cloud-config and Weave on Vagrant**](https://github.com/errordeveloper/weave-demos/blob/master/poseidon/README.md)
Configure a Vagrant-based cluster of 3 machines with networking provided by Weave.
* [**Multi-node cluster using cloud-config and Vagrant**](https://github.com/pires/kubernetes-vagrant-coreos-cluster/blob/master/README.md)
Configure a single master, multi-worker cluster locally, running on your choice of hypervisor: VirtualBox, Parallels, or VMware
* [**Single-node cluster using a small macOS App**](https://github.com/rimusz/kube-solo-osx/blob/master/README.md)
Guide to running a solo cluster (master + worker) controlled by an macOS menubar application.
Uses xhyve + CoreOS under the hood.
* [**Multi-node cluster with Vagrant and fleet units using a small macOS App**](https://github.com/rimusz/coreos-osx-gui-kubernetes-cluster/blob/master/README.md)
Guide to running a single master, multi-worker cluster controlled by an macOS menubar application.
Uses Vagrant under the hood.
* [**Multi-node cluster using cloud-config, CoreOS and VMware ESXi**](https://github.com/xavierbaude/VMware-coreos-multi-nodes-Kubernetes)
Configure a single master, single worker cluster on VMware ESXi.
* [**Single/Multi-node cluster using cloud-config, CoreOS and Foreman**](https://github.com/johscheuer/theforeman-coreos-kubernetes)
Configure a standalone Kubernetes or a Kubernetes cluster with [Foreman](https://theforeman.org).
## Support Level
IaaS Provider | Config. Mgmt | OS | Networking | Docs | Conforms | Support Level
-------------------- | ------------ | ------ | ---------- | --------------------------------------------- | ---------| ----------------------------
GCE | CoreOS | CoreOS | flannel | [docs](/docs/getting-started-guides/coreos) | | Community ([@pires](https://github.com/pires))
Vagrant | CoreOS | CoreOS | flannel | [docs](/docs/getting-started-guides/coreos) | | Community ([@pires](https://github.com/pires), [@AntonioMeireles](https://github.com/AntonioMeireles))
For support level information on all solutions, see the [Table of solutions](/docs/getting-started-guides/#table-of-solutions) chart.
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---
title: Installing Kubernetes on AWS with kops
content_template: templates/concept
---
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This quickstart shows you how to easily install a Kubernetes cluster on AWS.
It uses a tool called [`kops`](https://github.com/kubernetes/kops).
kops is an opinionated provisioning system:
* Fully automated installation
* Uses DNS to identify clusters
* Self-healing: everything runs in Auto-Scaling Groups
* Multiple OS support (Debian, Ubuntu 16.04 supported, CentOS & RHEL, Amazon Linux and CoreOS) - see the [images.md](https://github.com/kubernetes/kops/blob/master/docs/images.md)
* High-Availability support - see the [high_availability.md](https://github.com/kubernetes/kops/blob/master/docs/high_availability.md)
* Can directly provision, or generate terraform manifests - see the [terraform.md](https://github.com/kubernetes/kops/blob/master/docs/terraform.md)
If your opinions differ from these you may prefer to build your own cluster using [kubeadm](/docs/admin/kubeadm/) as
a building block. kops builds on the kubeadm work.
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## Creating a cluster
### (1/5) Install kops
#### Requirements
You must have [kubectl](/docs/tasks/tools/install-kubectl/) installed in order for kops to work.
#### Installation
Download kops from the [releases page](https://github.com/kubernetes/kops/releases) (it is also easy to build from source):
On macOS:
```shell
curl -OL https://github.com/kubernetes/kops/releases/download/1.10.0/kops-darwin-amd64
chmod +x kops-darwin-amd64
mv kops-darwin-amd64 /usr/local/bin/kops
# you can also install using Homebrew
brew update && brew install kops
```
On Linux:
```shell
wget https://github.com/kubernetes/kops/releases/download/1.10.0/kops-linux-amd64
chmod +x kops-linux-amd64
mv kops-linux-amd64 /usr/local/bin/kops
```
### (2/5) Create a route53 domain for your cluster
kops uses DNS for discovery, both inside the cluster and so that you can reach the kubernetes API server
from clients.
kops has a strong opinion on the cluster name: it should be a valid DNS name. By doing so you will
no longer get your clusters confused, you can share clusters with your colleagues unambiguously,
and you can reach them without relying on remembering an IP address.
You can, and probably should, use subdomains to divide your clusters. As our example we will use
`useast1.dev.example.com`. The API server endpoint will then be `api.useast1.dev.example.com`.
A Route53 hosted zone can serve subdomains. Your hosted zone could be `useast1.dev.example.com`,
but also `dev.example.com` or even `example.com`. kops works with any of these, so typically
you choose for organization reasons (e.g. you are allowed to create records under `dev.example.com`,
but not under `example.com`).
Let's assume you're using `dev.example.com` as your hosted zone. You create that hosted zone using
the [normal process](http://docs.aws.amazon.com/Route53/latest/DeveloperGuide/CreatingNewSubdomain.html), or
with a command such as `aws route53 create-hosted-zone --name dev.example.com --caller-reference 1`.
You must then set up your NS records in the parent domain, so that records in the domain will resolve. Here,
you would create NS records in `example.com` for `dev`. If it is a root domain name you would configure the NS
records at your domain registrar (e.g. `example.com` would need to be configured where you bought `example.com`).
This step is easy to mess up (it is the #1 cause of problems!) You can double-check that
your cluster is configured correctly if you have the dig tool by running:
`dig NS dev.example.com`
You should see the 4 NS records that Route53 assigned your hosted zone.
### (3/5) Create an S3 bucket to store your clusters state
kops lets you manage your clusters even after installation. To do this, it must keep track of the clusters
that you have created, along with their configuration, the keys they are using etc. This information is stored
in an S3 bucket. S3 permissions are used to control access to the bucket.
Multiple clusters can use the same S3 bucket, and you can share an S3 bucket between your colleagues that
administer the same clusters - this is much easier than passing around kubecfg files. But anyone with access
to the S3 bucket will have administrative access to all your clusters, so you don't want to share it beyond
the operations team.
So typically you have one S3 bucket for each ops team (and often the name will correspond
to the name of the hosted zone above!)
In our example, we chose `dev.example.com` as our hosted zone, so let's pick `clusters.dev.example.com` as
the S3 bucket name.
* Export `AWS_PROFILE` (if you need to select a profile for the AWS CLI to work)
* Create the S3 bucket using `aws s3 mb s3://clusters.dev.example.com`
* You can `export KOPS_STATE_STORE=s3://clusters.dev.example.com` and then kops will use this location by default.
We suggest putting this in your bash profile or similar.
### (4/5) Build your cluster configuration
Run "kops create cluster" to create your cluster configuration:
`kops create cluster --zones=us-east-1c useast1.dev.example.com`
kops will create the configuration for your cluster. Note that it _only_ creates the configuration, it does
not actually create the cloud resources - you'll do that in the next step with a `kops update cluster`. This
give you an opportunity to review the configuration or change it.
It prints commands you can use to explore further:
* List your clusters with: `kops get cluster`
* Edit this cluster with: `kops edit cluster useast1.dev.example.com`
* Edit your node instance group: `kops edit ig --name=useast1.dev.example.com nodes`
* Edit your master instance group: `kops edit ig --name=useast1.dev.example.com master-us-east-1c`
If this is your first time using kops, do spend a few minutes to try those out! An instance group is a
set of instances, which will be registered as kubernetes nodes. On AWS this is implemented via auto-scaling-groups.
You can have several instance groups, for example if you wanted nodes that are a mix of spot and on-demand instances, or
GPU and non-GPU instances.
### (5/5) Create the cluster in AWS
Run "kops update cluster" to create your cluster in AWS:
`kops update cluster useast1.dev.example.com --yes`
That takes a few seconds to run, but then your cluster will likely take a few minutes to actually be ready.
`kops update cluster` will be the tool you'll use whenever you change the configuration of your cluster; it
applies the changes you have made to the configuration to your cluster - reconfiguring AWS or kubernetes as needed.
For example, after you `kops edit ig nodes`, then `kops update cluster --yes` to apply your configuration, and
sometimes you will also have to `kops rolling-update cluster` to roll out the configuration immediately.
Without `--yes`, `kops update cluster` will show you a preview of what it is going to do. This is handy
for production clusters!
### Explore other add-ons
See the [list of add-ons](/docs/concepts/cluster-administration/addons/) to explore other add-ons, including tools for logging, monitoring, network policy, visualization & control of your Kubernetes cluster.
## Cleanup
* To delete your cluster: `kops delete cluster useast1.dev.example.com --yes`
## Feedback
* Slack Channel: [#kops-users](https://kubernetes.slack.com/messages/kops-users/)
* [GitHub Issues](https://github.com/kubernetes/kops/issues)
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* Learn more about Kubernetes [concepts](/docs/concepts/) and [`kubectl`](/docs/user-guide/kubectl-overview/).
* Learn about `kops` [advanced usage](https://github.com/kubernetes/kops)
* See the `kops` [docs](https://github.com/kubernetes/kops) section for tutorials, best practices and advanced configuration options.
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---
title: Installing Kubernetes On-premises/Cloud Providers with Kubespray
content_template: templates/concept
---
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This quickstart helps to install a Kubernetes cluster hosted on GCE, Azure, OpenStack, AWS, vSphere, Oracle Cloud Infrastructure (Experimental) or Baremetal with [Kubespray](https://github.com/kubernetes-incubator/kubespray).
Kubespray is a composition of [Ansible](http://docs.ansible.com/) playbooks, [inventory](https://github.com/kubernetes-incubator/kubespray/blob/master/docs/ansible.md), provisioning tools, and domain knowledge for generic OS/Kubernetes clusters configuration management tasks. Kubespray provides:
* a highly available cluster
* composable attributes
* support for most popular Linux distributions
* Container Linux by CoreOS
* Debian Jessie, Stretch, Wheezy
* Ubuntu 16.04, 18.04
* CentOS/RHEL 7
* Fedora/CentOS Atomic
* openSUSE Leap 42.3/Tumbleweed
* continuous integration tests
To choose a tool which best fits your use case, read [this comparison](https://github.com/kubernetes-incubator/kubespray/blob/master/docs/comparisons.md) to [kubeadm](/docs/admin/kubeadm/) and [kops](../kops).
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## Creating a cluster
### (1/5) Meet the underlay requirements
Provision servers with the following [requirements](https://github.com/kubernetes-incubator/kubespray#requirements):
* **Ansible v2.4 (or newer) and python-netaddr is installed on the machine that will run Ansible commands**
* **Jinja 2.9 (or newer) is required to run the Ansible Playbooks**
* The target servers must have **access to the Internet** in order to pull docker images
* The target servers are configured to allow **IPv4 forwarding**
* **Your ssh key must be copied** to all the servers part of your inventory
* The **firewalls are not managed**, you'll need to implement your own rules the way you used to. in order to avoid any issue during deployment you should disable your firewall
* If kubespray is ran from non-root user account, correct privilege escalation method should be configured in the target servers. Then the `ansible_become` flag or command parameters `--become` or `-b` should be specified
Kubespray provides the following utilities to help provision your environment:
* [Terraform](https://www.terraform.io/) scripts for the following cloud providers:
* [AWS](https://github.com/kubernetes-incubator/kubespray/tree/master/contrib/terraform/aws)
* [OpenStack](https://github.com/kubernetes-incubator/kubespray/tree/master/contrib/terraform/openstack)
### (2/5) Compose an inventory file
After you provision your servers, create an [inventory file for Ansible](http://docs.ansible.com/ansible/intro_inventory.html). You can do this manually or via a dynamic inventory script. For more information, see "[Building your own inventory](https://github.com/kubernetes-incubator/kubespray/blob/master/docs/getting-started.md#building-your-own-inventory)".
### (3/5) Plan your cluster deployment
Kubespray provides the ability to customize many aspects of the deployment:
* Choice deployment mode: kubeadm or non-kubeadm
* CNI (networking) plugins
* DNS configuration
* Choice of control plane: native/binary or containerized with docker or rkt
* Component versions
* Calico route reflectors
* Component runtime options
* docker
* rkt
* cri-o
* Certificate generation methods
Kubespray customizations can be made to a [variable file](http://docs.ansible.com/ansible/playbooks_variables.html). If you are just getting started with Kubespray, consider using the Kubespray defaults to deploy your cluster and explore Kubernetes.
### (4/5) Deploy a Cluster
Next, deploy your cluster:
Cluster deployment using [ansible-playbook](https://github.com/kubernetes-incubator/kubespray/blob/master/docs/getting-started.md#starting-custom-deployment).
```shell
ansible-playbook -i your/inventory/hosts.ini cluster.yml -b -v \
--private-key=~/.ssh/private_key
```
Large deployments (100+ nodes) may require [specific adjustments](https://github.com/kubernetes-incubator/kubespray/blob/master/docs/large-deployments.md) for best results.
### (5/5) Verify the deployment
Kubespray provides a way to verify inter-pod connectivity and DNS resolve with [Netchecker](https://github.com/kubernetes-incubator/kubespray/blob/master/docs/netcheck.md). Netchecker ensures the netchecker-agents pods can resolve DNS requests and ping each over within the default namespace. Those pods mimic similar behavior of the rest of the workloads and serve as cluster health indicators.
## Cluster operations
Kubespray provides additional playbooks to manage your cluster: _scale_ and _upgrade_.
### Scale your cluster
You can add worker nodes from your cluster by running the scale playbook. For more information, see "[Adding nodes](https://github.com/kubernetes-incubator/kubespray/blob/master/docs/getting-started.md#adding-nodes)".
You can remove worker nodes from your cluster by running the remove-node playbook. For more information, see "[Remove nodes](https://github.com/kubernetes-incubator/kubespray/blob/master/docs/getting-started.md#remove-nodes)".
### Upgrade your cluster
You can upgrade your cluster by running the upgrade-cluster playbook. For more information, see "[Upgrades](https://github.com/kubernetes-incubator/kubespray/blob/master/docs/upgrades.md)".
## Cleanup
You can reset your nodes and wipe out all components installed with Kubespray via the [reset playbook](https://github.com/kubernetes-incubator/kubespray/blob/master/reset.yml).
{{< caution >}}
When running the reset playbook, be sure not to accidentally target your production cluster!
{{< /caution >}}
## Feedback
* Slack Channel: [#kubespray](https://kubernetes.slack.com/messages/kubespray/)
* [GitHub Issues](https://github.com/kubernetes-incubator/kubespray/issues)
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Check out planned work on Kubespray's [roadmap](https://github.com/kubernetes-incubator/kubespray/blob/master/docs/roadmap.md).
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#cloud-config
---
write-files:
- path: /etc/conf.d/nfs
permissions: '0644'
content: |
OPTS_RPC_MOUNTD=""
- path: /opt/bin/wupiao
permissions: '0755'
content: |
#!/bin/bash
# [w]ait [u]ntil [p]ort [i]s [a]ctually [o]pen
[ -n "$1" ] && \
until curl -o /dev/null -sIf http://${1}; do \
sleep 1 && echo .;
done;
exit $?
hostname: master
coreos:
etcd2:
name: master
listen-client-urls: http://0.0.0.0:2379,http://0.0.0.0:4001
advertise-client-urls: http://$private_ipv4:2379,http://$private_ipv4:4001
initial-cluster-token: k8s_etcd
listen-peer-urls: http://$private_ipv4:2380,http://$private_ipv4:7001
initial-advertise-peer-urls: http://$private_ipv4:2380
initial-cluster: master=http://$private_ipv4:2380
initial-cluster-state: new
fleet:
metadata: "role=master"
units:
- name: etcd2.service
command: start
- name: generate-serviceaccount-key.service
command: start
content: |
[Unit]
Description=Generate service-account key file
[Service]
ExecStartPre=-/usr/bin/mkdir -p /opt/bin
ExecStart=/bin/openssl genrsa -out /opt/bin/kube-serviceaccount.key 2048 2>/dev/null
RemainAfterExit=yes
Type=oneshot
- name: setup-network-environment.service
command: start
content: |
[Unit]
Description=Setup Network Environment
Documentation=https://github.com/kelseyhightower/setup-network-environment
Requires=network-online.target
After=network-online.target
[Service]
ExecStartPre=-/usr/bin/mkdir -p /opt/bin
ExecStartPre=/usr/bin/curl -L -o /opt/bin/setup-network-environment -z /opt/bin/setup-network-environment https://github.com/kelseyhightower/setup-network-environment/releases/download/v1.0.0/setup-network-environment
ExecStartPre=/usr/bin/chmod +x /opt/bin/setup-network-environment
ExecStart=/opt/bin/setup-network-environment
RemainAfterExit=yes
Type=oneshot
- name: fleet.service
command: start
- name: flanneld.service
command: start
drop-ins:
- name: 50-network-config.conf
content: |
[Unit]
Requires=etcd2.service
[Service]
ExecStartPre=/usr/bin/etcdctl set /coreos.com/network/config '{"Network":"10.244.0.0/16", "Backend": {"Type": "vxlan"}}'
- name: docker.service
command: start
- name: kube-apiserver.service
command: start
content: |
[Unit]
Description=Kubernetes API Server
Documentation=https://github.com/kubernetes/kubernetes
Requires=setup-network-environment.service etcd2.service generate-serviceaccount-key.service
After=setup-network-environment.service etcd2.service generate-serviceaccount-key.service
[Service]
EnvironmentFile=/etc/network-environment
ExecStartPre=-/usr/bin/mkdir -p /opt/bin
ExecStartPre=/usr/bin/curl -L -o /opt/bin/kube-apiserver -z /opt/bin/kube-apiserver https://storage.googleapis.com/kubernetes-release/release/v1.1.2/bin/linux/amd64/kube-apiserver
ExecStartPre=/usr/bin/chmod +x /opt/bin/kube-apiserver
ExecStartPre=/opt/bin/wupiao 127.0.0.1:2379/v2/machines
ExecStart=/opt/bin/kube-apiserver \
--service-account-key-file=/opt/bin/kube-serviceaccount.key \
--service-account-lookup=false \
--enable-admission-plugins=NamespaceLifecycle,LimitRanger,SecurityContextDeny,ServiceAccount,ResourceQuota \
--runtime-config=api/v1 \
--allow-privileged=true \
--insecure-bind-address=0.0.0.0 \
--insecure-port=8080 \
--kubelet-https=true \
--secure-port=6443 \
--service-cluster-ip-range=10.100.0.0/16 \
--etcd-servers=http://127.0.0.1:2379 \
--public-address-override=${DEFAULT_IPV4} \
--logtostderr=true
Restart=always
RestartSec=10
- name: kube-controller-manager.service
command: start
content: |
[Unit]
Description=Kubernetes Controller Manager
Documentation=https://github.com/kubernetes/kubernetes
Requires=kube-apiserver.service
After=kube-apiserver.service
[Service]
ExecStartPre=/usr/bin/curl -L -o /opt/bin/kube-controller-manager -z /opt/bin/kube-controller-manager https://storage.googleapis.com/kubernetes-release/release/v1.1.2/bin/linux/amd64/kube-controller-manager
ExecStartPre=/usr/bin/chmod +x /opt/bin/kube-controller-manager
ExecStart=/opt/bin/kube-controller-manager \
--service-account-private-key-file=/opt/bin/kube-serviceaccount.key \
--master=127.0.0.1:8080 \
--logtostderr=true
Restart=always
RestartSec=10
- name: kube-scheduler.service
command: start
content: |
[Unit]
Description=Kubernetes Scheduler
Documentation=https://github.com/kubernetes/kubernetes
Requires=kube-apiserver.service
After=kube-apiserver.service
[Service]
ExecStartPre=/usr/bin/curl -L -o /opt/bin/kube-scheduler -z /opt/bin/kube-scheduler https://storage.googleapis.com/kubernetes-release/release/v1.1.2/bin/linux/amd64/kube-scheduler
ExecStartPre=/usr/bin/chmod +x /opt/bin/kube-scheduler
ExecStart=/opt/bin/kube-scheduler --master=127.0.0.1:8080
Restart=always
RestartSec=10
update:
group: alpha
reboot-strategy: off
@@ -1,92 +0,0 @@
#cloud-config
write-files:
- path: /opt/bin/wupiao
permissions: '0755'
content: |
#!/bin/bash
# [w]ait [u]ntil [p]ort [i]s [a]ctually [o]pen
[ -n "$1" ] && [ -n "$2" ] && while ! curl --output /dev/null \
--silent --head --fail \
http://${1}:${2}; do sleep 1 && echo -n .; done;
exit $?
coreos:
etcd2:
listen-client-urls: http://0.0.0.0:2379,http://0.0.0.0:4001
advertise-client-urls: http://0.0.0.0:2379,http://0.0.0.0:4001
initial-cluster: master=http://<master-private-ip>:2380
proxy: on
fleet:
metadata: "role=node"
units:
- name: etcd2.service
command: start
- name: fleet.service
command: start
- name: flanneld.service
command: start
- name: docker.service
command: start
- name: setup-network-environment.service
command: start
content: |
[Unit]
Description=Setup Network Environment
Documentation=https://github.com/kelseyhightower/setup-network-environment
Requires=network-online.target
After=network-online.target
[Service]
ExecStartPre=-/usr/bin/mkdir -p /opt/bin
ExecStartPre=/usr/bin/curl -L -o /opt/bin/setup-network-environment -z /opt/bin/setup-network-environment https://github.com/kelseyhightower/setup-network-environment/releases/download/v1.0.0/setup-network-environment
ExecStartPre=/usr/bin/chmod +x /opt/bin/setup-network-environment
ExecStart=/opt/bin/setup-network-environment
RemainAfterExit=yes
Type=oneshot
- name: kube-proxy.service
command: start
content: |
[Unit]
Description=Kubernetes Proxy
Documentation=https://github.com/kubernetes/kubernetes
Requires=setup-network-environment.service
After=setup-network-environment.service
[Service]
ExecStartPre=/usr/bin/curl -L -o /opt/bin/kube-proxy -z /opt/bin/kube-proxy https://storage.googleapis.com/kubernetes-release/release/v1.1.2/bin/linux/amd64/kube-proxy
ExecStartPre=/usr/bin/chmod +x /opt/bin/kube-proxy
# wait for kubernetes master to be up and ready
ExecStartPre=/opt/bin/wupiao <master-private-ip> 8080
ExecStart=/opt/bin/kube-proxy \
--master=<master-private-ip>:8080 \
--logtostderr=true
Restart=always
RestartSec=10
- name: kube-kubelet.service
command: start
content: |
[Unit]
Description=Kubernetes Kubelet
Documentation=https://github.com/kubernetes/kubernetes
Requires=setup-network-environment.service
After=setup-network-environment.service
[Service]
EnvironmentFile=/etc/network-environment
ExecStartPre=/usr/bin/curl -L -o /opt/bin/kubelet -z /opt/bin/kubelet https://storage.googleapis.com/kubernetes-release/release/v1.1.2/bin/linux/amd64/kubelet
ExecStartPre=/usr/bin/chmod +x /opt/bin/kubelet
# wait for kubernetes master to be up and ready
ExecStartPre=/opt/bin/wupiao <master-private-ip> 8080
ExecStart=/opt/bin/kubelet \
--address=0.0.0.0 \
--port=10250 \
--hostname-override=${DEFAULT_IPV4} \
--api-servers=<master-private-ip>:8080 \
--allow-privileged=true \
--logtostderr=true \
--healthz-bind-address=0.0.0.0 \
--healthz-port=10248
Restart=always
RestartSec=10
update:
group: alpha
reboot-strategy: off