Revise seccomp tutorial

- Drop docs for Kubernetes earlier than v1.19
- Have kubectl fetch manifests using HTTP where suitable
- General tidying
This commit is contained in:
Tim Bannister
2021-10-16 12:23:33 +01:00
parent 5a58eb4294
commit bb634e6db9
+165 -151
View File
@@ -36,16 +36,18 @@ profiles that give only the necessary privileges to your container processes.
## {{% heading "prerequisites" %}}
{{< version-check >}}
In order to complete all steps in this tutorial, you must install
[kind](https://kind.sigs.k8s.io/docs/user/quick-start/) and
[kubectl](/docs/tasks/tools/). This tutorial will show examples
both alpha (new in v1.22) and generally available seccomp functionality. You should
make sure that your cluster is [configured
correctly](https://kind.sigs.k8s.io/docs/user/quick-start/#setting-kubernetes-version)
[kind](/docs/tasks/tools/#kind) and [kubectl](/docs/tasks/tools/#kubectl).
This tutorial shows some examples that are still alpha (since v1.22) and
others that use only generally available seccomp functionality. You should
make sure that your cluster is
[configured correctly](https://kind.sigs.k8s.io/docs/user/quick-start/#setting-kubernetes-version)
for the version you are using.
The tutorial also uses the `curl` tool for downloading examples to your computer.
You can adapt the steps to use a different tool if you prefer.
{{< note >}}
It is not possible to apply a seccomp profile to a container running with
`privileged: true` set in the container's `securityContext`. Privileged containers always
@@ -54,6 +56,107 @@ run as `Unconfined`.
<!-- steps -->
## Create Seccomp Profiles
The contents of these profiles will be explored later on, but for now go ahead
and download them into a directory named `profiles/` so that they can be loaded
into the cluster.
{{< tabs name="tab_with_code" >}}
{{{< tab name="audit.json" >}}
{{< codenew file="pods/security/seccomp/profiles/audit.json" >}}
{{< /tab >}}
{{< tab name="violation.json" >}}
{{< codenew file="pods/security/seccomp/profiles/violation.json" >}}
{{< /tab >}}}
{{< tab name="fine-grained.json" >}}
{{< codenew file="pods/security/seccomp/profiles/fine-grained.json" >}}
{{< /tab >}}}
{{< /tabs >}}
Run these commands:
```shell
mkdir ./profiles
curl -L -o profiles/audit.json https://k8s.io/examples/pods/security/seccomp/profiles/audit.json
curl -L -o profiles/violation.json https://k8s.io/examples/pods/security/seccomp/profiles/violation.json
curl -L -o profiles/fine-grained.json https://k8s.io/examples/pods/security/seccomp/profiles/fine-grained.json
ls profiles
```
You should see three profiles listed at the end of the final step:
```
audit.json fine-grained.json violation.json
```
## Create a Local Kubernetes Cluster with kind
For simplicity, [kind](https://kind.sigs.k8s.io/) can be used to create a single
node cluster with the seccomp profiles loaded. Kind runs Kubernetes in Docker,
so each node of the cluster is a container. This allows for files
to be mounted in the filesystem of each container similar to loading files
onto a node.
{{< codenew file="pods/security/seccomp/kind.yaml" >}}
Download that example kind configuration, and save it to a file named `kind.yaml`:
```shell
curl -L -O https://k8s.io/examples/pods/security/seccomp/kind.yaml
```
You can set a specific Kubernetes version by setting the node's container image.
See [Nodes](https://kind.sigs.k8s.io/docs/user/configuration/#nodes) within the
kind documentation about configuration for more details on this.
This tutorial assumes you are using Kubernetes {{< param "version" >}}.
As an alpha feature, you can configure Kubernetes to use the profile that the
{{< glossary_tooltip text="container runtime" term_id="container-runtime" >}}
prefers by default, rather than falling back to `Unconfined`.
If you want to try that, see
[enable the use of `RuntimeDefault` as the default seccomp profile for all workloads](#enable-the-use-of-runtimedefault-as-the-default-seccomp-profile-for-all-workloads)
before you continue.
Once you have a kind configuration in place, create the kind cluster with
that configuration:
```shell
kind create cluster --config=kind.yaml
```
After the new Kubernetes cluster is ready, identify the Docker container running
as the single node cluster:
```shell
docker ps
```
You should see output indicating that a container is running with name
`kind-control-plane`. The output is similar to:
```
CONTAINER ID IMAGE COMMAND CREATED STATUS PORTS NAMES
6a96207fed4b kindest/node:v1.18.2 "/usr/local/bin/entr…" 27 seconds ago Up 24 seconds 127.0.0.1:42223->6443/tcp kind-control-plane
```
If observing the filesystem of that container, you should see that the
`profiles/` directory has been successfully loaded into the default seccomp path
of the kubelet. Use `docker exec` to run a command in the Pod:
```shell
# Change 6a96207fed4b to the container ID you saw from "docker ps"
docker exec -it 6a96207fed4b ls /var/lib/kubelet/seccomp/profiles
```
```
audit.json fine-grained.json violation.json
```
You have verified that these seccomp profiles are available to the kubelet
running within kind.
## Enable the use of `RuntimeDefault` as the default seccomp profile for all workloads
{{< feature-state state="alpha" for_k8s_version="v1.22" >}}
@@ -64,8 +167,8 @@ well as corresponding `--seccomp-default`
[command line flag](/docs/reference/command-line-tools-reference/kubelet).
Both have to be enabled simultaneously to use the feature.
If enabled, the kubelet will use the `RuntimeDefault` seccomp profile by default, which is
defined by the container runtime, instead of using the `Unconfined` (seccomp disabled) mode.
If enabled, the kubelet will use the `RuntimeDefault` seccomp profile by default, which is
defined by the container runtime, instead of using the `Unconfined` (seccomp disabled) mode.
The default profiles aim to provide a strong set
of security defaults while preserving the functionality of the workload. It is
possible that the default profiles differ between container runtimes and their
@@ -102,85 +205,14 @@ featureGates:
SeccompDefault: true
```
## Create Seccomp Profiles
The contents of these profiles will be explored later on, but for now go ahead
and download them into a directory named `profiles/` so that they can be loaded
into the cluster.
{{< tabs name="tab_with_code" >}}
{{{< tab name="audit.json" >}}
{{< codenew file="pods/security/seccomp/profiles/audit.json" >}}
{{< /tab >}}
{{< tab name="violation.json" >}}
{{< codenew file="pods/security/seccomp/profiles/violation.json" >}}
{{< /tab >}}}
{{< tab name="fine-grained.json" >}}
{{< codenew file="pods/security/seccomp/profiles/fine-grained.json" >}}
{{< /tab >}}}
{{< /tabs >}}
## Create a Local Kubernetes Cluster with Kind
For simplicity, [kind](https://kind.sigs.k8s.io/) can be used to create a single
node cluster with the seccomp profiles loaded. Kind runs Kubernetes in Docker,
so each node of the cluster is a container. This allows for files
to be mounted in the filesystem of each container similar to loading files
onto a node.
{{< codenew file="pods/security/seccomp/kind.yaml" >}}
<br>
Download the example above, and save it to a file named `kind.yaml`. Then create
the cluster with the configuration.
```
kind create cluster --config=kind.yaml
```
Once the cluster is ready, identify the container running as the single node
cluster:
```
docker ps
```
You should see output indicating that a container is running with name
`kind-control-plane`.
```
CONTAINER ID IMAGE COMMAND CREATED STATUS PORTS NAMES
6a96207fed4b kindest/node:v1.18.2 "/usr/local/bin/entr…" 27 seconds ago Up 24 seconds 127.0.0.1:42223->6443/tcp kind-control-plane
```
If observing the filesystem of that container, one should see that the
`profiles/` directory has been successfully loaded into the default seccomp path
of the kubelet. Use `docker exec` to run a command in the Pod:
```
docker exec -it 6a96207fed4b ls /var/lib/kubelet/seccomp/profiles
```
```
audit.json fine-grained.json violation.json
```
## Create a Pod with a seccomp profile for syscall auditing
To start off, apply the `audit.json` profile, which will log all syscalls of the
process, to a new Pod.
Download the correct manifest for your Kubernetes version:
Here's a manifest for that Pod:
{{< tabs name="audit_pods" >}}
{{< tab name="v1.19 or Later (GA)" >}}
{{< codenew file="pods/security/seccomp/ga/audit-pod.yaml" >}}
{{< /tab >}}}
{{{< tab name="Pre-v1.19 (deprecated)" >}}
{{< codenew file="pods/security/seccomp/alpha/audit-pod.yaml" >}}
{{< /tab >}}
{{< /tabs >}}
<br>
{{< note >}}
The functional support for the already deprecated seccomp annotations
@@ -192,14 +224,14 @@ the native API fields in favor of the annotations.
Create the Pod in the cluster:
```
kubectl apply -f audit-pod.yaml
```shell
kubectl apply -f https://k8s.io/examples/pods/security/seccomp/ga/audit-pod.yaml
```
This profile does not restrict any syscalls, so the Pod should start
successfully.
```
```shell
kubectl get pod/audit-pod
```
@@ -209,28 +241,31 @@ audit-pod 1/1 Running 0 30s
```
In order to be able to interact with this endpoint exposed by this
container,create a NodePort Service that allows access to the endpoint from
inside the kind control plane container.
container, create a NodePort {{< glossary_tooltip text="Services" term_id="service" >}}
that allows access to the endpoint from inside the kind control plane container.
```
kubectl expose pod/audit-pod --type NodePort --port 5678
```shell
kubectl expose pod audit-pod --type NodePort --port 5678
```
Check what port the Service has been assigned on the node.
```
kubectl get svc/audit-pod
```shell
kubectl get service audit-pod
```
The output is similar to:
```
NAME TYPE CLUSTER-IP EXTERNAL-IP PORT(S) AGE
audit-pod NodePort 10.111.36.142 <none> 5678:32373/TCP 72s
```
Now you can `curl` the endpoint from inside the kind control plane container at
the port exposed by this Service. Use `docker exec` to run a command in the Pod:
Now you can use `curl` to access that endpoint from inside the kind control plane container,
at the port exposed by this Service. Use `docker exec` to run the `curl` command within the
container belonging to that control plane container:
```
```shell
# Change 6a96207fed4b to the control plane container ID you saw from "docker ps"
docker exec -it 6a96207fed4b curl localhost:32373
```
@@ -243,13 +278,14 @@ Because this Pod is running in a local cluster, you should be able to see those
in `/var/log/syslog`. Open up a new terminal window and `tail` the output for
calls from `http-echo`:
```
```shell
tail -f /var/log/syslog | grep 'http-echo'
```
You should already see some logs of syscalls made by `http-echo`, and if you
`curl` the endpoint in the control plane container you will see more written.
For example:
```
Jul 6 15:37:40 my-machine kernel: [369128.669452] audit: type=1326 audit(1594067860.484:14536): auid=4294967295 uid=0 gid=0 ses=4294967295 pid=29064 comm="http-echo" exe="/http-echo" sig=0 arch=c000003e syscall=51 compat=0 ip=0x46fe1f code=0x7ffc0000
Jul 6 15:37:40 my-machine kernel: [369128.669453] audit: type=1326 audit(1594067860.484:14537): auid=4294967295 uid=0 gid=0 ses=4294967295 pid=29064 comm="http-echo" exe="/http-echo" sig=0 arch=c000003e syscall=54 compat=0 ip=0x46fdba code=0x7ffc0000
@@ -268,9 +304,9 @@ for this container.
Clean up that Pod and Service before moving to the next section:
```
kubectl delete pod/audit-pod
kubectl delete svc/audit-pod
```shell
kubectl delete service audit-pod --wait
kubectl delete pod audit-pod --wait --now
```
## Create Pod with seccomp Profile that Causes Violation
@@ -278,27 +314,20 @@ kubectl delete svc/audit-pod
For demonstration, apply a profile to the Pod that does not allow for any
syscalls.
Download the correct manifest for your Kubernetes version:
The manifest for this demonstration is:
{{< tabs name="violation_pods" >}}
{{< tab name="v1.19 or Later (GA)" >}}
{{< codenew file="pods/security/seccomp/ga/violation-pod.yaml" >}}
{{< /tab >}}}
{{{< tab name="Pre-v1.19 (deprecated)" >}}
{{< codenew file="pods/security/seccomp/alpha/violation-pod.yaml" >}}
{{< /tab >}}
{{< /tabs >}}
<br>
Create the Pod in the cluster:
Attempt to create the Pod in the cluster:
```
kubectl apply -f violation-pod.yaml
```shell
kubectl apply -f https://k8s.io/examples/pods/security/seccomp/ga/violation-pod.yaml
```
The Pod creates, but there is an issue.
If you check the status of the Pod, you should see that it failed to start.
```
```shell
kubectl get pod/violation-pod
```
@@ -316,8 +345,8 @@ only the privileges they need.
Clean up that Pod and Service before moving to the next section:
```
kubectl delete pod/violation-pod
kubectl delete svc/violation-pod
kubectl delete service violation-pod --wait
kubectl delete pod violation-pod --wait --now
```
## Create Pod with seccomp Profile that Only Allows Necessary Syscalls
@@ -329,61 +358,56 @@ but explicitly allowing a set of syscalls in the `"action": "SCMP_ACT_ALLOW"`
block. Ideally, the container will run successfully and you will see no messages
sent to `syslog`.
Download the correct manifest for your Kubernetes version:
The manifest for this example is:
{{< tabs name="fine_pods" >}}
{{< tab name="v1.19 or Later (GA)" >}}
{{< codenew file="pods/security/seccomp/ga/fine-pod.yaml" >}}
{{< /tab >}}}
{{{< tab name="Pre-v1.19 (deprecated)" >}}
{{< codenew file="pods/security/seccomp/alpha/fine-pod.yaml" >}}
{{< /tab >}}
{{< /tabs >}}
<br>
Create the Pod in your cluster:
```
kubectl apply -f fine-pod.yaml
```shell
kubectl apply -f https://k8s.io/examples/pods/security/seccomp/ga/fine-pod.yaml
```
The Pod should start successfully.
```
kubectl get pod/fine-pod
```shell
kubectl get pod fine-pod
```
The Pod should be showing as having started successfully:
```
NAME READY STATUS RESTARTS AGE
fine-pod 1/1 Running 0 30s
```
Open up a new terminal window and `tail` the output for calls from `http-echo`:
Open up a new terminal window and use `tail` to monitor for log entries that
mention calls from `http-echo`:
```
```shell
# The log path on your computer might be different from "/var/log/syslog"
tail -f /var/log/syslog | grep 'http-echo'
```
Expose the Pod with a NodePort Service:
Next, expose the Pod with a NodePort Service:
```
kubectl expose pod/fine-pod --type NodePort --port 5678
```shell
kubectl expose pod fine-pod --type NodePort --port 5678
```
Check what port the Service has been assigned on the node:
```
kubectl get svc/fine-pod
```shell
kubectl get service fine-pod
```
The output is similar to:
```
NAME TYPE CLUSTER-IP EXTERNAL-IP PORT(S) AGE
fine-pod NodePort 10.111.36.142 <none> 5678:32373/TCP 72s
```
`curl` the endpoint from inside the kind control plane container:
Use `curl` to access that endpoint from inside the kind control plane container:
```
```shell
# Change 6a96207fed4b to the control plane container ID you saw from "docker ps"
docker exec -it 6a96207fed4b curl localhost:32373
```
@@ -391,7 +415,7 @@ docker exec -it 6a96207fed4b curl localhost:32373
just made some syscalls!
```
You should see no output in the `syslog` because the profile allowed all
You should see no output in the `syslog`. This is because the profile allowed all
necessary syscalls and specified that an error should occur if one outside of
the list is invoked. This is an ideal situation from a security perspective, but
required some effort in analyzing the program. It would be nice if there was a
@@ -399,9 +423,9 @@ simple way to get closer to this security without requiring as much effort.
Clean up that Pod and Service before moving to the next section:
```
kubectl delete pod/fine-pod
kubectl delete svc/fine-pod
```shell
kubectl delete service fine-pod --wait
kubectl delete pod fine-pod --wait --now
```
## Create Pod that uses the Container Runtime Default seccomp Profile
@@ -411,23 +435,13 @@ or not. The defaults can easily be applied in Kubernetes by using the
`runtime/default` annotation or setting the seccomp type in the security context
of a pod or container to `RuntimeDefault`.
Download the correct manifest for your Kubernetes version:
{{< tabs name="default_pods" >}}
{{< tab name="v1.19 or Later (GA)" >}}
{{< codenew file="pods/security/seccomp/ga/default-pod.yaml" >}}
{{< /tab >}}}
{{{< tab name="Pre-v1.19 (deprecated)" >}}
{{< codenew file="pods/security/seccomp/alpha/default-pod.yaml" >}}
{{< /tab >}}
{{< /tabs >}}
<br>
The default seccomp profile should provide adequate access for most workloads.
## {{% heading "whatsnext" %}}
Additional resources:
You can learn more about Linux seccomp:
* [A seccomp Overview](https://lwn.net/Articles/656307/)
* [Seccomp Security Profiles for Docker](https://docs.docker.com/engine/security/seccomp/)