Move Compute Resources topic to Concepts. (#2410)
This commit is contained in:
@@ -0,0 +1,430 @@
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---
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title: Managing Compute Resources for Containers
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---
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{% capture overview %}
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When you specify a [Pod](/docs/user-guide/pods), you can optionally specify how
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much CPU and memory (RAM) each Container needs. When Containers have resource
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requests specified, the scheduler can make better decisions about which nodes to
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place Pods on. And when Containers have their limits specified, contention for
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resources on a node can be handled in a specified manner. For more details about
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the difference between requests and limits, see
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[Resource QoS](https://github.com/kubernetes/community/blob/master/contributors/design-proposals/resource-qos.md).
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{% endcapture %}
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{% capture body %}
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## Resource types
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*CPU* and *memory* are each a *resource type*. A resource type has a base unit.
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CPU is specified in units of cores, and memory is specified in units of bytes.
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CPU and memory are collectively referred to as *compute resources*, or just
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*resources*. Compute
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resources are measurable quantities that can be requested, allocated, and
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consumed. They are distinct from
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[API resources](/docs/api/). API resources, such as Pods and
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[Services](/docs/user-guide/services) are objects that can be read and modified
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through the Kubernetes API server.
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## Resource requests and limits of Pod and Container
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Each Container of a Pod can specify one or more of the following:
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* `spec.containers[].resources.limits.cpu`
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* `spec.containers[].resources.limits.memory`
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* `spec.containers[].resources.requests.cpu`
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* `spec.containers[].resources.requests.memory`
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Although requests and limits can only be specified on individual Containers, it
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is convenient to talk about Pod resource requests and limits. A
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*Pod resource request/limit* for a particular resource type is the sum of the
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resource requests/limits of that type for each Container in the Pod.
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## Meaning of CPU
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Limits and requests for CPU resources are measured in *cpu* units.
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One cpu, in Kubernetes, is equivalent to:
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- 1 AWS vCPU
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- 1 GCP Core
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- 1 Azure vCore
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- 1 *Hyperthread* on a bare-metal Intel processor with Hyperthreading
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Fractional requests are allowed. A Container with
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`spec.containers[].resources.requests.cpu` of `0.5` is guaranteed half as much
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CPU as one that asks for 1 CPU. The expression `0.1` is equivalent to the
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expression `100m`, which can be read as "one hundred millicpu". Some people say
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"one hundred millicores", and this is understood to mean the same thing. A
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request with a decimal point, like `0.1`, is converted to `100m` by the API, and
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precision finer than `1m` is not allowed. For this reason, the form `100m` might
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be preferred.
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CPU is always requested as an absolute quantity, never as a relative quantity;
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0.1 is the same amount of CPU on a single-core, dual-core, or 48-core machine.
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## Meaning of memory
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Limits and requests for `memory` are measured in bytes. You can express memory as
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a plain integer or as a fixed-point integer using one of these SI suffixes:
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E, P, T, G, M, K. You can also use the power-of-two equivalents: Ei, Pi, Ti, Gi,
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Mi, Ki. For example, the following represent roughly the same value:
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```shell
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128974848, 129e6, 129M, 123Mi
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```
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Here's an example.
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The following Pod has two Containers. Each Container has a request of 0.25 cpu
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and 64MiB (2<sup>26</sup> bytes) of memory Each Container has a limit of 0.5
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cpu and 128MiB of memory. You can say the Pod has a request of 0.5 cpu and 128
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MiB of memory, and a limit of 1 core and 256MiB of memory.
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```yaml
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apiVersion: v1
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kind: Pod
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metadata:
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name: frontend
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spec:
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containers:
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- name: db
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image: mysql
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resources:
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requests:
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memory: "64Mi"
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cpu: "250m"
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limits:
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memory: "128Mi"
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cpu: "500m"
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- name: wp
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image: wordpress
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resources:
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requests:
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memory: "64Mi"
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cpu: "250m"
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limits:
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memory: "128Mi"
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cpu: "500m"
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```
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## How Pods with resource requests are scheduled
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When you create a Pod, the Kubernetes scheduler selects a node for the Pod to
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run on. Each node has a maximum capacity for each of the resource types: the
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amount of CPU and memory it can provide for Pods. The scheduler ensures that,
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for each resource type, the sum of the resource requests of the scheduled
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Containers is less than the capacity of the node. Note that although actual memory
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or CPU resource usage on nodes is very low, the scheduler still refuses to place
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a Pod on a node if the capacity check fails. This protects against a resource
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shortage on a node when resource usage later increases, for example, during a
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daily peak in request rate.
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## How Pods with resource limits are run
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When the kubelet starts a Container of a Pod, it passes the CPU and memory limits
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to the container runtime.
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When using Docker:
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- The `spec.containers[].resources.requests.cpu` is converted to its core value,
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which is potentially fractional, and multiplied by 1024. This number is used
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as the value of the
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[`--cpu-shares`](https://docs.docker.com/engine/reference/run/#/cpu-share-constraint)
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flag in the `docker run` command.
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- The `spec.containers[].resources.limits.cpu` is converted to its millicore value,
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multiplied by 100000, and then divided by 1000. This number is used as the value
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of the [`--cpu-quota`](https://docs.docker.com/engine/reference/run/#/cpu-quota-constraint)
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flag in the `docker run` command. he [`--cpu-period`] flag is set to 100000,
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which represents the default 100ms period for measuring quota usage. The
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kubelet enforces cpu limits if it is started with the
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[`--cpu-cfs-quota`] flag set to true. As of Kubernetes version 1.2, this flag
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defaults to true.
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- The `spec.containers[].resources.limits.memory` is converted to an integer, and
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used as the value of the
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[`--memory`](https://docs.docker.com/engine/reference/run/#/user-memory-constraints)
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flag in the `docker run` command.
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If a Container exceeds its memory limit, it might be terminated. If it is
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restartable, the kubelet will restart it, as with any other type of runtime
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failure.
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If a Container exceeds its memory request, it is likely that its Pod will
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be evicted whenever the node runs out of memory.
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A Container might or might not be allowed to exceed its CPU limit for extended
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periods of time. However, it will not be killed for excessive CPU usage.
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To determine whether a Container cannot be scheduled or is being killed due to
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resource limits, see the
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[Troubleshooting](#troubleshooting) section.
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## Monitoring compute resource usage
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The resource usage of a Pod is reported as part of the Pod status.
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If [optional monitoring](http://releases.k8s.io/{{page.githubbranch}}/cluster/addons/cluster-monitoring/README.md)
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is configured for your cluster, then Pod resource usage can be retrieved from
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the monitoring system.
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## Troubleshooting
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### My Pods are pending with event message failedScheduling
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If the scheduler cannot find any node where a Pod can fit, the Pod remains
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unscheduled until a place can be found. An event is produced each time the
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scheduler fails to find a place for the Pod, like this:
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```shell
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$ kubectl describe pod frontend | grep -A 3 Events
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Events:
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FirstSeen LastSeen Count From Subobject PathReason Message
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36s 5s 6 {scheduler } FailedScheduling Failed for reason PodExceedsFreeCPU and possibly others
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```
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In the preceding example, the Pod named "frontend" fails to be scheduled due to
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insufficient CPU resource on the node. Similar error messages can also suggest
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failure due to insufficient memory (PodExceedsFreeMemory). In general, if a Pod
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is pending with a message of this type, there are several things to try:
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- Add more nodes to the cluster.
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- Terminate unneeded Pods to make room for pending Pods.
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- Check that the Pod is not larger than all the nodes. For example, if all the
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nodes have a capacity of `cpu: 1`, then a Pod with a limit of `cpu: 1.1` will
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never be scheduled.
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You can check node capacities and amounts allocated with the
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`kubectl describe nodes` command. For example:
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```shell
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$ kubectl.sh describe nodes e2e-test-minion-group-4lw4
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Name: e2e-test-minion-group-4lw4
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[ ... lines removed for clarity ...]
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Capacity:
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alpha.kubernetes.io/nvidia-gpu: 0
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cpu: 2
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memory: 7679792Ki
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pods: 110
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Allocatable:
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alpha.kubernetes.io/nvidia-gpu: 0
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cpu: 1800m
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memory: 7474992Ki
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pods: 110
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[ ... lines removed for clarity ...]
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Non-terminated Pods: (5 in total)
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Namespace Name CPU Requests CPU Limits Memory Requests Memory Limits
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--------- ---- ------------ ---------- --------------- -------------
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kube-system fluentd-gcp-v1.38-28bv1 100m (5%) 0 (0%) 200Mi (2%) 200Mi (2%)
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kube-system kube-dns-3297075139-61lj3 260m (13%) 0 (0%) 100Mi (1%) 170Mi (2%)
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kube-system kube-proxy-e2e-test-... 100m (5%) 0 (0%) 0 (0%) 0 (0%)
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kube-system monitoring-influxdb-grafana-v4-z1m12 200m (10%) 200m (10%) 600Mi (8%) 600Mi (8%)
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kube-system node-problem-detector-v0.1-fj7m3 20m (1%) 200m (10%) 20Mi (0%) 100Mi (1%)
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Allocated resources:
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(Total limits may be over 100 percent, i.e., overcommitted.)
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CPU Requests CPU Limits Memory Requests Memory Limits
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------------ ---------- --------------- -------------
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680m (34%) 400m (20%) 920Mi (12%) 1070Mi (14%)
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```
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In the preceding output, you can see that if a Pod requests more than 1120m
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CPUs or 6.23Gi of memory, it will not fit on the node.
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By looking at the `Pods` section, you can see which Pods are taking up space on
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the node.
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The amount of resources available to Pods is less than the node capacity, because
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system daemons use a portion of the available resources. The `allocatable` field
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[NodeStatus](/docs/resources-reference/v1.5/#nodestatus-v1)
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gives the amount of resources that are available to Pods. For more information, see
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[Node Allocatable Resources](https://github.com/kubernetes/community/blob/master/contributors/design-proposals/node-allocatable.md).
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The [resource quota](/docs/admin/resourcequota/) feature can be configured
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to limit the total amount of resources that can be consumed. If used in conjunction
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with namespaces, it can prevent one team from hogging all the resources.
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### My Container is terminated
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Your Container might get terminated because it is resource-starved. To check
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whether a Container is being killed because it is hitting a resource limit, call
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`kubectl describe pod` on the Pod of interest:
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```shell
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[12:54:41] $ ./cluster/kubectl.sh describe pod simmemleak-hra99
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Name: simmemleak-hra99
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Namespace: default
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Image(s): saadali/simmemleak
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Node: kubernetes-node-tf0f/10.240.216.66
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Labels: name=simmemleak
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Status: Running
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Reason:
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Message:
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IP: 10.244.2.75
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Replication Controllers: simmemleak (1/1 replicas created)
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Containers:
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simmemleak:
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Image: saadali/simmemleak
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Limits:
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cpu: 100m
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memory: 50Mi
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State: Running
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Started: Tue, 07 Jul 2015 12:54:41 -0700
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Last Termination State: Terminated
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Exit Code: 1
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Started: Fri, 07 Jul 2015 12:54:30 -0700
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Finished: Fri, 07 Jul 2015 12:54:33 -0700
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Ready: False
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Restart Count: 5
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Conditions:
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Type Status
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Ready False
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Events:
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FirstSeen LastSeen Count From SubobjectPath Reason Message
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Tue, 07 Jul 2015 12:53:51 -0700 Tue, 07 Jul 2015 12:53:51 -0700 1 {scheduler } scheduled Successfully assigned simmemleak-hra99 to kubernetes-node-tf0f
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Tue, 07 Jul 2015 12:53:51 -0700 Tue, 07 Jul 2015 12:53:51 -0700 1 {kubelet kubernetes-node-tf0f} implicitly required container POD pulled Pod container image "gcr.io/google_containers/pause:0.8.0" already present on machine
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Tue, 07 Jul 2015 12:53:51 -0700 Tue, 07 Jul 2015 12:53:51 -0700 1 {kubelet kubernetes-node-tf0f} implicitly required container POD created Created with docker id 6a41280f516d
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Tue, 07 Jul 2015 12:53:51 -0700 Tue, 07 Jul 2015 12:53:51 -0700 1 {kubelet kubernetes-node-tf0f} implicitly required container POD started Started with docker id 6a41280f516d
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Tue, 07 Jul 2015 12:53:51 -0700 Tue, 07 Jul 2015 12:53:51 -0700 1 {kubelet kubernetes-node-tf0f} spec.containers{simmemleak} created Created with docker id 87348f12526a
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```
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In the preceding example, the `Restart Count: 5` indicates that the `simmemleak`
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Container in the Pod was terminated and restarted five times.
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You can call `get pod` with the `-o go-template=...` option to fetch the status
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of previously terminated Containers:
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```shell{% raw %}
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[13:59:01] $ ./cluster/kubectl.sh get pod -o go-template='{{range.status.containerStatuses}}{{"Container Name: "}}{{.name}}{{"\r\nLastState: "}}{{.lastState}}{{end}}' simmemleak-60xbc
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Container Name: simmemleak
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LastState: map[terminated:map[exitCode:137 reason:OOM Killed startedAt:2015-07-07T20:58:43Z finishedAt:2015-07-07T20:58:43Z containerID:docker://0e4095bba1feccdfe7ef9fb6ebffe972b4b14285d5acdec6f0d3ae8a22fad8b2]]{% endraw %}
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```
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You can see that the Container was terminated because of `reason:OOM Killed`,
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where `OOM` stands for Out Of Memory.
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## Opaque integer resources (Alpha feature)
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Kubernetes version 1.5 introduces Opaque integer resources. Opaque
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integer resources allow cluster operators to advertise new node-level
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resources that would be otherwise unknown to the system.
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Users can consume these resources in Pod specs just like CPU and memory.
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The scheduler takes care of the resource accounting so that no more than the
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available amount is simultaneously allocated to Pods.
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**Note:** Opaque integer resources are Alpha in Kubernetes version 1.5.
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Only resource accounting is implemented; node-level isolation is still
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under active development.
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Opaque integer resources are resources that begin with the prefix
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`pod.alpha.kubernetes.io/opaque-int-resource-`. The API server
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restricts quantities of these resources to whole numbers. Examples of
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_valid_ quantities are `3`, `3000m` and `3Ki`. Examples of _invalid_
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quantities are `0.5` and `1500m`.
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There are two steps required to use opaque integer resources. First, the
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cluster operator must advertise a per-node opaque resource on one or more
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nodes. Second, users must request the opaque resource in Pods.
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To advertise a new opaque integer resource, the cluster operator should
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submit a `PATCH` HTTP request to the API server to specify the available
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quantity in the `status.capacity` for a node in the cluster. After this
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operation, the node's `status.capacity` will include a new resource. The
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`status.allocatable` field is updated automatically with the new resource
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asynchronously by the kubelet. Note that because the scheduler uses the
|
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node `status.allocatable` value when evaluating Pod fitness, there may
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be a short delay between patching the node capacity with a new resource and the
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first pod that requests the resource to be scheduled on that node.
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**Example:**
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Here is an HTTP request that advertises five "foo" resources on node `k8s-node-1`.
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```http
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PATCH /api/v1/nodes/k8s-node-1/status HTTP/1.1
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Accept: application/json
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Content-Type: application/json-patch+json
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Host: k8s-master:8080
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[
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{
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"op": "add",
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"path": "/status/capacity/pod.alpha.kubernetes.io~1opaque-int-resource-foo",
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||||
"value": "5"
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||||
}
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||||
]
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||||
```
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||||
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**Note**: In the preceding request, `~1` is the encoding for the character `/`
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in the patch path. The operation path value in JSON-Patch is interpreted as a
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||||
JSON-Pointer. For more details, see
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[IETF RFC 6901, section 3](https://tools.ietf.org/html/rfc6901#section-3).
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||||
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To consume an opaque resource in a Pod, include the name of the opaque
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||||
resource as a key in the `spec.containers[].resources.requests` map.
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||||
|
||||
The Pod is scheduled only if all of the resource requests are
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||||
satisfied, including cpu, memory and any opaque resources. The Pod will
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remain in the `PENDING` state as long as the resource request cannot be met by
|
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any node.
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||||
|
||||
**Example:**
|
||||
|
||||
The Pod below requests 2 cpus and 1 "foo" (an opaque resource.)
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||||
|
||||
```yaml
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||||
apiVersion: v1
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kind: Pod
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metadata:
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name: my-pod
|
||||
spec:
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||||
containers:
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||||
- name: my-container
|
||||
image: myimage
|
||||
resources:
|
||||
requests:
|
||||
cpu: 2
|
||||
pod.alpha.kubernetes.io/opaque-int-resource-foo: 1
|
||||
```
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||||
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||||
## Planned Improvements
|
||||
|
||||
Kubernetes version 1.5 only allows resource quantities to be specified on a
|
||||
Container. It is planned to improve accounting for resources that are shared by
|
||||
all Containers in a Pod, such as
|
||||
[emptyDir volumes](/docs/user-guide/volumes/#emptydir).
|
||||
|
||||
Kubernetes version 1.5 only supports Container requests and limits for CPU and
|
||||
memory. It is planned to add new resource types, including a node disk space
|
||||
resource, and a framework for adding custom
|
||||
[resource types](https://github.com/kubernetes/community/blob/{{page.githubbranch}}/contributors/design-proposals/resources.md).
|
||||
|
||||
Kubernetes supports overcommitment of resources by supporting multiple levels of
|
||||
[Quality of Service](http://issue.k8s.io/168).
|
||||
|
||||
In Kubernetes version 1.5, one unit of CPU means different things on different
|
||||
cloud providers, and on different machine types within the same cloud providers.
|
||||
For example, on AWS, the capacity of a node is reported in
|
||||
[ECUs](http://aws.amazon.com/ec2/faqs/), while in GCE it is reported in logical
|
||||
cores. We plan to revise the definition of the cpu resource to allow for more
|
||||
consistency across providers and platforms.
|
||||
|
||||
{% endcapture %}
|
||||
|
||||
|
||||
{% capture whatsnext %}
|
||||
|
||||
* Get hands-on experience
|
||||
[assigning CPU and RAM resources to a container](/docs/tasks/configure-pod-container/assign-cpu-ram-container/).
|
||||
|
||||
* [Container](/docs/api-reference/v1/definitions/#_v1_container)
|
||||
|
||||
* [ResourceRequirements](/docs/resources-reference/v1.5/#resourcerequirements-v1)
|
||||
|
||||
{% endcapture %}
|
||||
|
||||
{% include templates/concept.md %}
|
||||
|
||||
Reference in New Issue
Block a user