Kubernetes: Difference between revisions

From Leo's Notes
This page was last edited on 3 December 2018, at 04:31.
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** This example manifest has 2 labels applied: app, and tier
** This example manifest has 2 labels applied: app, and tier
** See it using {{code|1=kubectl get pods -l app=guestbook -l tier=frontend}}
** See it using {{code|1=kubectl get pods -l app=guestbook -l tier=frontend}}
You can change the scale of a deployment:
{{highlight|lang=terminal|code=
[root@kube guestbook]# kubectl get deployment frontend
NAME      DESIRED  CURRENT  UP-TO-DATE  AVAILABLE  AGE
frontend  3        3        3            3          44m
[root@kube guestbook]# kubectl scale deployment frontend --replicas=5
deployment.extensions/frontend scaled
[root@kube guestbook]# kubectl get deployment frontend
NAME      DESIRED  CURRENT  UP-TO-DATE  AVAILABLE  AGE
frontend  5        5        5            5          45m
[root@kube guestbook]# kubectl get pods
NAME                            READY  STATUS    RESTARTS  AGE
frontend-654c699bc8-5ngzj      1/1    Running  0          45m
frontend-654c699bc8-77b58      1/1    Running  0          45m
frontend-654c699bc8-ll7cr      1/1    Running  0          22s
frontend-654c699bc8-pqzvp      1/1    Running  0          22s
frontend-654c699bc8-sq682      1/1    Running  0          45m
}}
=== Service ===
An application may depend on a service that is provided by one or more Pods. While it is possible to hard code the Pod's IP address, it is better to abstract these Pod's services as a Pod's Service which can be discovered (via Service Discovery). In addition, Pods providing the Service could be migrated, turned off, or scaled up without affecting the Service's availability (as the Service can automatically route traffic to available Pods).
A Service by default provides a single IP address for the set of pods (known as a ClusterIP) and are only accessible within the cluster. This can be changed so that a Service provides a load balanced port (LoadBalancer) or a port which is exposed on the node (NodePort).
An example manifest:
{{highlight|lang=terminal|code=
apiVersion: v1
kind: Service
metadata:
  name: frontend
  labels:
    app: guestbook
    tier: frontend
spec:
  # comment or delete the following line if you want to use a LoadBalancer
  type: NodePort
  # if your cluster supports it, uncomment the following to automatically create
  # an external load-balanced IP for the frontend service.
  # type: LoadBalancer
  ports:
  - port: 80
  selector:
    app: guestbook
    tier: frontend
}}
* Apply the Service using {{code|kubectl apply -f frontend-service.yaml}}
* See Services using {{code|kubectl get services }}
If you use a NodePort and the service looks like this:
{{highlight|lang=terminal|code=
[root@kube guestbook]# kubectl get service frontend
NAME      TYPE      CLUSTER-IP      EXTERNAL-IP  PORT(S)        AGE
frontend  NodePort  10.97.195.242  <none>        80:32764/TCP  10m
}}
You can get to your service by accessing the Node on port 32764.


=== Namespaces ===
=== Namespaces ===
Line 358: Line 419:


The scheduler will place containers on Kubernetes (worker) nodes. The scheduler does this by checking a node's taint and will not schedule pods on nodes that contain things like {{code|node-role.kubernetes.io/master:NoSchedule}}. Attempting to do so will result in a {{code|FailedScheduling}} status and a message of {{code|0/1 nodes are available: 1 node(s) had taints that the pod didn't tolerate.}} when looking at pod events using {{code|kubectl describe pods pod-name}}.
The scheduler will place containers on Kubernetes (worker) nodes. The scheduler does this by checking a node's taint and will not schedule pods on nodes that contain things like {{code|node-role.kubernetes.io/master:NoSchedule}}. Attempting to do so will result in a {{code|FailedScheduling}} status and a message of {{code|0/1 nodes are available: 1 node(s) had taints that the pod didn't tolerate.}} when looking at pod events using {{code|kubectl describe pods pod-name}}.


== Commands ==
== Commands ==

Revision as of 04:31, 3 December 2018

This article goes over concepts as I try to understand everything about Kubernetes.

Installing

Master Node

# firewall-cmd --permanent --add-port=6443/tcp
# firewall-cmd --permanent --add-port=2379-2380/tcp
# firewall-cmd --permanent --add-port=10250/tcp
# firewall-cmd --permanent --add-port=10251/tcp
# firewall-cmd --permanent --add-port=10252/tcp
# firewall-cmd --permanent --add-port=10255/tcp
# firewall-cmd --reload
## Kubernetes does not handle memory evictions, disable swap. remember to remove it from /etc/fstab too.
# swapoff -a
# cat <<EOF > /etc/yum.repos.d/kubernetes.repo
[kubernetes]
name=Kubernetes
baseurl=https://packages.cloud.google.com/yum/repos/kubernetes-el7-x86_64
enabled=1
gpgcheck=1
repo_gpgcheck=1
gpgkey=https://packages.cloud.google.com/yum/doc/yum-key.gpg
       https://packages.cloud.google.com/yum/doc/rpm-package-key.gpg
EOF
# yum -y install kubeadm docker
# systemctl enable docker kubelet
# systemctl start docker kubelet
# kubeadm init

# export kubever=$(kubectl version | base64 | tr -d '\n')
# kubectl apply -f "https://cloud.weave.works/k8s/net?k8s-version=$kubever"

Once everything finishes running, it may take a few more minutes before the node becomes ready as the WeaveWorks network containers get pulled and started.

Dashboard

To get the Web UI Dashboard working, see:

It boils down to:

# kubectl create -f https://raw.githubusercontent.com/kubernetes/dashboard/master/src/deploy/recommended/kubernetes-dashboard.yaml
# kubectl apply -f https://raw.githubusercontent.com/kubernetes/heapster/master/deploy/kube-config/influxdb/heapster.yaml
# kubectl apply -f https://raw.githubusercontent.com/kubernetes/heapster/master/deploy/kube-config/influxdb/influxdb.yaml
# kubectl apply -f https://raw.githubusercontent.com/kubernetes/heapster/master/deploy/kube-config/rbac/heapster-rbac.yaml

## Create a service account with permission:
# cat <<EOF > eks-admin-service-account.yaml
apiVersion: v1
kind: ServiceAccount
metadata:
  name: eks-admin
  namespace: kube-system
EOF
# kubectl apply -f eks-admin-service-account.yaml
# cat <<EOF > eks-admin-cluster-role-binding.yaml
apiVersion: rbac.authorization.k8s.io/v1beta1
kind: ClusterRoleBinding
metadata:
  name: eks-admin
roleRef:
  apiGroup: rbac.authorization.k8s.io
  kind: ClusterRole
  name: cluster-admin
subjects:
- kind: ServiceAccount
  name: eks-admin
  namespace: kube-system
EOF
# kubectl apply -f eks-admin-cluster-role-binding.yaml

## Get the access token
# kubectl -n kube-system describe secret $(kubectl -n kube-system get secret


Kubernetes (worker) Nodes

# firewall-cmd --permanent --add-port=10250/tcp
# firewall-cmd --permanent --add-port=10255/tcp
# firewall-cmd --permanent --add-port=30000-32767/tcp
# firewall-cmd --permanent --add-port=6783/tcp
# firewall-cmd  --reload
## Kubernetes does not handle memory evictions, disable swap. remember to remove it from /etc/fstab too.
# swapoff -a
# modprobe br_netfilter
# for i in ip_vs ip_vs_sh ip_vs_rr ip_vs_wrr ; do modprobe $i ; done

# cat <<EOF > /etc/yum.repos.d/kubernetes.repo
[kubernetes]
name=Kubernetes
baseurl=https://packages.cloud.google.com/yum/repos/kubernetes-el7-x86_64
enabled=1
gpgcheck=1
repo_gpgcheck=1
gpgkey=https://packages.cloud.google.com/yum/doc/yum-key.gpg
       https://packages.cloud.google.com/yum/doc/rpm-package-key.gpg
EOF

# yum -y install kubeadm docker
# systemctl enable docker kubelet
# systemctl start docker kubelet

To join the worker to the cluster, obtain the join token as well as the discovery token CA cert hash. On the master node, run:

# openssl x509 -pubkey -in /etc/kubernetes/pki/ca.crt | openssl rsa -pubin -outform der 2>/dev/null | openssl dgst -sha256 -hex | sed 's/^.* //'
4c6ee8dd02afae0f9231c1002a4fca671622addc7ff4b522a70d68ed0b525445
# kubeadm token list
TOKEN                     TTL         EXPIRES                     USAGES                   DESCRIPTION                                                EXTRA GROUPS
a0mjyg.eiqvzbpwf2dgn9z3   <invalid>   2018-11-29T11:57:02-07:00   authentication,signing   The default bootstrap token generated by 'kubeadm init'.   system:bootstrappers:kubeadm:default-node-token

Based on the values above, on the worker node, run:

# kubeadm join --token a0mjyg.eiqvzbpwf2dgn9z3 --discovery-token-ca-cert-hash sha256:4c6ee8dd02afae0f9231c1002a4fca671622addc7ff4b522a70d68ed0b525445 10.1.3.252:6443

Alternatively, you could generate a new token on the master node:

# kubeadm token create --print-join-command
kubeadm join 10.1.3.252:6443 --token so4o6b.fyzvgwpgmpoq6mdm --discovery-token-ca-cert-hash sha256:4c6ee8dd02afae0f9231c1002a4fca671622addc7ff4b522a70d68ed0b525445


Quick Start

Get an application running

What you want to do to get an application running as a service:

  • Create a deployment which defines how many replicas should exist, the container to use, and exposed ports.
    • This will create a Pod. Each replica creates an additional Pod (that ideally resides on different nodes).
    • kubectl get deployments to see deployments
    • kubectl get pods to see pods
  • Create a service which defines the name of the service and the port the service is exposed on
    • kubectl get service

Concepts

See the Kubernetes documentation at https://kubernetes.io/docs/concepts/

In summary:

  • A Deployment defines the desired state for pods and ReplicaSets.
  • A ReplicaSets creates or destroys Pods (depending on scaling?).
  • A Pod is a collection of container(s) all residing on one node.
  • A Service is an abstraction that defines the logical set of Pods. The Pods could be turned off or migrated without affecting the overall Service.
  • A Master Node is responsible for maintaining the state of the Kubernetes cluster.
  • A Kubernetes (Worker) Node is responsible for running the actual applications managed by Kubernetes.

Each concept will be covered in more detail below.


Pods

A pod is:

  • A collection of application containers
  • Guaranteed to land on the same kubernetes cluster machine
  • Shares the same cgroup, IP address, hostname (hence, runs in the same execution environment)

A pod should provide one individual component of an application that can:

  • Be scaled independently of all other components in the application (eg. Database with respect to the frontend web server)
  • Work even if placed (ie. orchestrated) on a different machine
In general, the right question to ask yourself when designing Pods is, “Will these containers work correctly if they land on different machines?” If the answer is “no,” a Pod is the correct grouping for the containers. If the answer is “yes,” multiple Pods is probably the correct solution. In the example at the beginning of this chapter, the two containers interact via a local filesystem. It would be impossible for them to operate correctly if the containers were scheduled on different machines.
—Thinking with Pods, Kubernetes: Up and Running

Pods are defined in text file as a manifest. The Kubernetes API server processes the manifest, then stores it in persistent storage (etcd). A scheduler then finds pods that need to be scheduled and deploys the pods on the appropriate resource that satisfies any constraints defined in the manifest.

Creating

Imperatively create a Pod with a command: kubectl run kuard --image=registry/something/something:tag.

Using a manifest (example below):

apiVersion: v1
kind: Pod
metadata:
  name: kuard
spec:
  containers:
    - image: gcr.io/kuar-demo/kuard-amd64:1
      name: kuard
      ports:
        - containerPort: 8080
          name: http
          protocol: TCP
      env:
        - value: something
      resources:
        requests:
          cpu: 100m
          cpu: 100Mi
  • Create using kubectl apply -f pod-manifest.yml
  • See it using kubectl get pods
  • Detailed information about it using kubectl describe pods pod-name
  • Delete it using kubectl delete pods/pod-name or kubectl delete -f pod-manifest.yml

Pods that are set for deletion will cease to have new requests sent to it. After a 30 second termination grace period, the pods are then terminated. This extra time allows for the pod to reliably finish active requests.


Deployments

Deployments defines the state of Pods or ReplicaSets.

The manifest's spec should contain a template that contains the information about a new Pod.

Example Deployment manifest:

No code provided.
  • Create using kubectl apply -f frontend-deployment.yml
  • See it using kubectl get deployments
  • Pods that this deployment creates can be seen using the label selector.
    • This example manifest has 2 labels applied: app, and tier
    • See it using kubectl get pods -l app=guestbook -l tier=frontend

You can change the scale of a deployment:

[root@kube guestbook]# kubectl get deployment frontend
NAME       DESIRED   CURRENT   UP-TO-DATE   AVAILABLE   AGE
frontend   3         3         3            3           44m
[root@kube guestbook]# kubectl scale deployment frontend --replicas=5
deployment.extensions/frontend scaled
[root@kube guestbook]# kubectl get deployment frontend
NAME       DESIRED   CURRENT   UP-TO-DATE   AVAILABLE   AGE
frontend   5         5         5            5           45m
[root@kube guestbook]# kubectl get pods
NAME                            READY   STATUS    RESTARTS   AGE
frontend-654c699bc8-5ngzj       1/1     Running   0          45m
frontend-654c699bc8-77b58       1/1     Running   0          45m
frontend-654c699bc8-ll7cr       1/1     Running   0          22s
frontend-654c699bc8-pqzvp       1/1     Running   0          22s
frontend-654c699bc8-sq682       1/1     Running   0          45m



Service

An application may depend on a service that is provided by one or more Pods. While it is possible to hard code the Pod's IP address, it is better to abstract these Pod's services as a Pod's Service which can be discovered (via Service Discovery). In addition, Pods providing the Service could be migrated, turned off, or scaled up without affecting the Service's availability (as the Service can automatically route traffic to available Pods).

A Service by default provides a single IP address for the set of pods (known as a ClusterIP) and are only accessible within the cluster. This can be changed so that a Service provides a load balanced port (LoadBalancer) or a port which is exposed on the node (NodePort).

An example manifest:

apiVersion: v1
kind: Service
metadata:
  name: frontend
  labels:
    app: guestbook
    tier: frontend
spec:
  # comment or delete the following line if you want to use a LoadBalancer
  type: NodePort 
  # if your cluster supports it, uncomment the following to automatically create
  # an external load-balanced IP for the frontend service.
  # type: LoadBalancer
  ports:
  - port: 80
  selector:
    app: guestbook
    tier: frontend
  • Apply the Service using kubectl apply -f frontend-service.yaml
  • See Services using kubectl get services

If you use a NodePort and the service looks like this:

[root@kube guestbook]# kubectl get service frontend
NAME       TYPE       CLUSTER-IP      EXTERNAL-IP   PORT(S)        AGE
frontend   NodePort   10.97.195.242   <none>        80:32764/TCP   10m

You can get to your service by accessing the Node on port 32764.


Namespaces

A namespace organizes objects in the cluster. It is analogous to OU containers in Active Directory, folders in a filesystem, or classes in object oriented languages.

Contexts

Contexts are like a profile. A context can have different default namespace, or user credentials to manage different clusters.

Change the current context using kubectl config use-context my-context

Config File

Located in ~/.kube/config. This file contains credentials to authenticate to the cluster.

It contains the default namespace and context values.

Kubernetes API

The Kubernetes API is a RESTful API, providing access to the Kubernetes backend.

Objects in the Kubernetes API are represented as JSON or Yaml files. Files can be used to create, update, or delete objects from the server.

Description Command
Create/Update
# kubectl apply -f obj.yaml
Edit
# kubectl edit <resource-name> <object-name>
Delete
# kubectl delete -f obj.yaml
## or
# kubectl delete <resource-name> <object-name>

All objects can be annotated or given a label.

Description Command
Label pod 'bar' color=red
# kubectl label pods bar color=red
## pass --overwrite if it already exists.
Remove label color from pod 'bar'
# kubectl label pods bar -color


Master Node

A master node contains containers that provide the API server, scheduler, etc. that manages the cluster.

The master node should have the following components:

  • controller-manager: Responsible for running controllers that regulate behavior int he cluster. Eg. ensure replicas for a service are available and healthy.
  • scheduler: Places pods into different nodes in the cluster
  • etcd: storage for cluster; stores API objects.

All components deployed by Kubernetes run under the kube-system namespace.

# kubectl describe nodes kube
...
Non-terminated Pods:         (8 in total)
  Namespace                  Name                            CPU Requests  CPU Limits  Memory Requests  Memory Limits
  ---------                  ----                            ------------  ----------  ---------------  -------------
  kube-system                coredns-576cbf47c7-6mphw        100m (2%)     0 (0%)      70Mi (0%)        170Mi (2%)
  kube-system                coredns-576cbf47c7-75n6g        100m (2%)     0 (0%)      70Mi (0%)        170Mi (2%)
  kube-system                etcd-kube                       0 (0%)        0 (0%)      0 (0%)           0 (0%)
  kube-system                kube-apiserver-kube             250m (6%)     0 (0%)      0 (0%)           0 (0%)
  kube-system                kube-controller-manager-kube    200m (5%)     0 (0%)      0 (0%)           0 (0%)
  kube-system                kube-proxy-cmdsn                0 (0%)        0 (0%)      0 (0%)           0 (0%)
  kube-system                kube-scheduler-kube             100m (2%)     0 (0%)      0 (0%)           0 (0%)
  kube-system                weave-net-swwgs                 20m (0%)      0 (0%)      0 (0%)           0 (0%)
...

The Kubernetes proxy is responsible for routing network traffic to services in the kubernetes cluster. (Question: Does it do the load balancing?). A proxy exists on every node.

# kubectl get daemonsets --namespace=kube-system
NAME         DESIRED   CURRENT   READY   UP-TO-DATE   AVAILABLE   NODE SELECTOR   AGE
kube-proxy   1         1         1       1            1           <none>          26h
weave-net    1         1         1       1            1           <none>          28m

Question: What is a DaemonSet?

Kubernetes also runs a DNS server that provides naming and discovery for services in the cluster.

# kubectl get deployments --namespace=kube-system
NAME      DESIRED   CURRENT   UP-TO-DATE   AVAILABLE   AGE
coredns   2         2         2            2           26h

# kubectl get services --namespace=kube-system
NAME       TYPE        CLUSTER-IP   EXTERNAL-IP   PORT(S)         AGE
kube-dns   ClusterIP   10.96.0.10   <none>        53/UDP,53/TCP   26h

The DNS service for the cluster runs on 10.96.0.10. If you log into a container in the cluster, this server will be used as the primary DNS server.

Kubernetes Dashboard UI can be installed. Like the DNS service, it is both a deployment and a service:

# kubectl get deployments --namespace=kube-system kubernetes-dashboard
NAME                   DESIRED   CURRENT   UP-TO-DATE   AVAILABLE   AGE
kubernetes-dashboard   1         1         1            1           2m26s

[root@kube ~]# kubectl get services --namespace=kube-system kubernetes-dashboard
NAME                   TYPE        CLUSTER-IP       EXTERNAL-IP   PORT(S)         AGE
kubernetes-dashboard   ClusterIP   10.108.158.128   <none>        443/TCP         2m36s

Run kubectl proxy to proxy the server on localhost:8001 and then access it in a web browser at http://localhost:8001/ui. If this is on a remote server, create a SSH tunnel.

Kubernetes Node

The scheduler will place containers on Kubernetes (worker) nodes. The scheduler does this by checking a node's taint and will not schedule pods on nodes that contain things like node-role.kubernetes.io/master:NoSchedule. Attempting to do so will result in a FailedScheduling status and a message of 0/1 nodes are available: 1 node(s) had taints that the pod didn't tolerate. when looking at pod events using kubectl describe pods pod-name.

Commands

The kubectl command line tool is the official kubernetes client for interacting with the Kubernetes API.

Description Command
Get all nodes
# kubectl get nodes
Get all pods
# kubectl  get pods  --all-namespaces
Get information about a node
# kubectl describe nodes
See components in the cluster
# kubectl get componentstatuses

Tips: When using kubectl get, pass

  • --no-headers to remove headers for easier parsing
  • -o json|yaml to format output in json/yaml.


Description Command
Create a pod
# kubectl run kuard --image=gcr.io/kuar-demo/kuard-amd64:1
# kubectl apply -f kuard-pod.yaml
Listing pods
# kubectl get pods
## Filter by label with -l, can supply multiple of these.
# kubectl get pods -l label=something
Delete pod
# kubectl delete deployments/kuard
# kubectl delete -f kuard-pod.yaml
Pod Details
# kubectl describe pods kuard
Pod Logs
# kubectl logs kuard
Enter a container
# kubectl exec kuard cmd
# kubectl exec -it kuard sh
Copy to/from container
# kubectl cp podname:/src ./dst
# kubectl cp ./src podname:/dst


A pod manifest looks something like this:

apiVersion: v1
kind: Pod
metadata:
  name: kuard
spec:
  containers:
    - image: gcr.io/kuar-demo/kuard-amd64:1
      name: kuard
      ports:
        - containerPort: 8080
          name: http
          protocol: TCP

Questions

  • What is involved in setting up a cluster on multiple VMs?
  • What is the Kubernetes API?
  • What is this persistent storage (etcd)?
  • What is the WeaveWorks network and how does it work?

See Also