Istio control plane component that configures proxies and handles service discovery
Pull the latest version of this image from the Ghost registry. Pulling requires authentication — generate a token and run docker login first (see Authentication below).
The Ghost catalog is public to browse, but pulling images requires an account. Generate a pull token below (or from your Account → Tokens page) — you'll get a ready-to-paste docker login command, then docker pull works.
The username is generated automatically (it looks like robot$<project>+<auto-id>, not the name you typed) and is included in the docker login command above. The secret is shown only once when you create the token.
All Ghost images are signed with cosign. Verifying the signature before deployment ensures the image has not been tampered with.
Install cosign via brew install cosign or download from the Sigstore releases page.
Reference this image in your Dockerfile as a base layer:
This is a vendor-built FIPS-enabled image: its cryptography runs on FIPS 140-3 validated modules configured by the upstream vendor. You can inspect the image metadata:
| Standard | FIPS 140-3 |
| Crypto module | Vendor-configured validated modules |
| Cryptography | Validated modules only |
| Use case | Government, regulated industries, compliance workloads |
All examples in this guide use the public image. If you've mirrored the repository for your own use (for example, to your Docker Hub namespace), update your commands to reference the mirrored image instead of the public one.
For example:
registry.ghost-prod.alphabravo.io/ghost-base/istio-pilot:<tag><your-namespace>/dhi-istio-pilot:<tag>For the examples, you must first use docker login registry.ghost-prod.alphabravo.io to authenticate to the registry to pull the images.
This Ghost hardened image includes:
pilot-discovery binary — the Istio control plane (Istiod) for service discovery and configuration distributionSSL_CERT_FILE pre-configured)The Istio Pilot image (also known as Istiod) is the control plane component that manages service discovery, configuration distribution, and certificate management for the Istio service mesh. It is designed to run as a Deployment in Kubernetes and requires a Kubernetes environment to function fully.
Run the following command and replace <tag> with the image variant you want to run (for example, 1.29-debian13):
$ docker run --rm registry.ghost-prod.alphabravo.io/ghost-base/istio-pilot:<tag> version
To check the short version:
$ docker run --rm registry.ghost-prod.alphabravo.io/ghost-base/istio-pilot:<tag> version --short
To view all available discovery flags:
$ docker run --rm registry.ghost-prod.alphabravo.io/ghost-base/istio-pilot:<tag> discovery --help
Istiod provides xDS-based service discovery, configuration distribution, and proxy management for all Envoy sidecars in the mesh. In a Kubernetes deployment, it listens on the following ports:
:15010 — gRPC (plaintext):15012 — gRPC (TLS):15017 — HTTPS (injection and validation webhooks):15014 — HTTP (self-monitoring and metrics):9876 — ControlZ introspection$ docker run --rm registry.ghost-prod.alphabravo.io/ghost-base/istio-pilot:<tag> discovery --help
Use the request subcommand to make HTTP requests to Pilot's internal metrics and debug endpoint while Istiod is
running in Kubernetes:
$ docker run --rm registry.ghost-prod.alphabravo.io/ghost-base/istio-pilot:<tag> request --help
Verify the version of the Istio Pilot image:
$ docker run --rm registry.ghost-prod.alphabravo.io/ghost-base/istio-pilot:<tag> version
For a concise single-line output:
$ docker run --rm registry.ghost-prod.alphabravo.io/ghost-base/istio-pilot:<tag> version --short
First follow the authentication instructions for DHI in Kubernetes.
Step 1: Create the namespace
$ kubectl create namespace istio-system
Step 2: Create the image pull secret
$ kubectl create secret docker-registry dhi-pull-secret \
--docker-server=registry.ghost-prod.alphabravo.io \
--docker-username=<your-docker-username> \
--docker-password=<your-docker-token> \
-n istio-system
Step 3: Create the ServiceAccount
$ kubectl create serviceaccount istiod -n istio-system
Step 4: Create the ClusterRole and bindings
Istiod requires cluster-wide permissions to manage service discovery, webhooks, and leader election:
$ kubectl apply -f - <<EOF
apiVersion: rbac.authorization.k8s.io/v1
kind: ClusterRole
metadata:
name: istiod-clusterrole
rules:
- apiGroups: [""]
resources: ["namespaces", "configmaps", "endpoints", "pods", "services", "secrets", "nodes", "serviceaccounts"]
verbs: ["get", "list", "watch", "create", "update", "patch", "delete"]
- apiGroups: ["networking.k8s.io"]
resources: ["ingresses", "ingressclasses"]
verbs: ["get", "list", "watch"]
- apiGroups: ["admissionregistration.k8s.io"]
resources: ["validatingwebhookconfigurations", "mutatingwebhookconfigurations"]
verbs: ["get", "list", "watch", "create", "update", "patch", "delete"]
- apiGroups: ["apiextensions.k8s.io"]
resources: ["customresourcedefinitions"]
verbs: ["get", "list", "watch"]
- apiGroups: ["discovery.k8s.io"]
resources: ["endpointslices"]
verbs: ["get", "list", "watch"]
- apiGroups: ["coordination.k8s.io"]
resources: ["leases"]
verbs: ["get", "list", "watch", "create", "update", "patch", "delete"]
EOF
$ kubectl create clusterrolebinding istiod-clusterrolebinding \
--clusterrole=istiod-clusterrole \
--serviceaccount=istio-system:istiod
Step 5: Create the deployment YAML
Save the following as deployment.yaml:
apiVersion: apps/v1
kind: Deployment
metadata:
name: istiod
namespace: istio-system
spec:
replicas: 1
selector:
matchLabels:
app: istiod
template:
metadata:
labels:
app: istiod
spec:
serviceAccountName: istiod
imagePullSecrets:
- name: dhi-pull-secret
containers:
- name: discovery
image: registry.ghost-prod.alphabravo.io/ghost-base/istio-pilot:<tag>
command: ["pilot-discovery", "discovery"]
ports:
- containerPort: 15010
- containerPort: 15012
- containerPort: 15014
- containerPort: 15017
securityContext:
runAsUser: 1337
Note: This configuration uses
runAsUser: 1337which matches the user set in the DHI image. The Istio project uses UID1337by convention for theistio-proxyuser.
Note: The
command: ["pilot-discovery", "discovery"]is required. Without it, the container prints help text and exits immediately.
Step 6: Apply and verify
$ kubectl apply -f deployment.yaml
$ kubectl get pods -n istio-system
Step 7: Confirm Istiod is running
$ kubectl logs -n istio-system -l app=istiod --tail=20
A healthy Istiod will show output similar to:
info leader election lock obtained: istio-leader
info Starting ingress status writer
info leader election lock obtained: istio-gateway-deployment-default
info ads XDS: Pushing Services:2 ConnectedEndpoints:0 Version:...
| Feature | DOI (istio/pilot) | DHI (registry.ghost-prod.alphabravo.io/ghost-base/istio-pilot) |
|---|---|---|
| User | 1337:1337 | 1337 |
| Shell | sh (present) | none |
| Package manager | apt-get (present) | none |
| Entrypoint | ["/usr/local/bin/pilot-discovery"] | ["/usr/local/bin/pilot-discovery"] |
| Uncompressed size | 375MB | 225MB (runtime), 351MB (dev) |
| Zero CVE commitment | No | Yes |
| FIPS variant | No | Yes (FIPS + STIG + CIS) |
| Base OS | Ubuntu 24.04 LTS | Ghost hardened images (Debian 13) |
| Compliance labels | None | CIS (runtime), FIPS+STIG+CIS (fips) |
| ENV | PATH, DEBIAN_FRONTEND=noninteractive | PATH, SSL_CERT_FILE |
| Architectures | amd64, arm64 | amd64, arm64 |
Ghost hardened images come in different variants depending on their intended use. Image variants are identified by their tag.
Runtime variants are intended for production use. They run as user 1337, contain no shell and no package manager,
and are CIS benchmark compliant.
Dev variants are intended for build and development use. They run as root, include bash and apt-get, and are
useful for multi-stage builds or debugging workflows.
FIPS variants are intended for environments requiring FIPS 140, STIG, and CIS compliance. They run as user 1337
with no shell or package manager.
Note: FIPS variants require a Ghost hardened images subscription. Start a free 30-day trial at https://registry.ghost-prod.alphabravo.io.
To view the image variants and get more information about them, select the Tags tab for this repository, and then select a tag.
To migrate your application to a Ghost hardened image, you must update your Dockerfile. At minimum, you must update the base image in your existing Dockerfile to a Ghost hardened image. This and a few other common changes are listed in the following table of migration notes:
| Item | Migration note |
|---|---|
| Base image | Replace your base images in your Dockerfile with a Ghost hardened image. |
| Package management | Non-dev images, intended for runtime, don't contain package managers. Use package managers only in images with a dev tag. |
| Non-root user | By default, non-dev images, intended for runtime, run as the nonroot user. Ensure that necessary files and directories are accessible to the nonroot user. |
| Multi-stage build | Utilize images with a dev tag for build stages and non-dev images for runtime. For binary executables, use a static image for runtime. |
| TLS certificates | Ghost hardened images contain standard TLS certificates by default. There is no need to install TLS certificates. |
| Ports | Non-dev hardened images run as a nonroot user by default. As a result, applications in these images can't bind to privileged ports (below 1024) when running in Kubernetes or in Docker Engine versions older than 20.10. To avoid issues, configure your application to listen on port 1025 or higher inside the container. |
| Entry point | Ghost hardened images may have different entry points than images such as Docker Official Images. Inspect entry points for Ghost hardened images and update your Dockerfile if necessary. |
| No shell | By default, non-dev images, intended for runtime, don't contain a shell. Use dev images in build stages to run shell commands and then copy artifacts to the runtime stage. |
The following steps outline the general migration process.
Find hardened images for your app.
A hardened image may have several variants. Inspect the image tags and find the image variant that meets your needs.
Update the base image in your Dockerfile.
Update the base image in your application's Dockerfile to the hardened image you found in the previous step. For framework images, this is typically going to be an image tagged as dev because it has the tools needed to install packages and dependencies.
For multi-stage Dockerfiles, update the runtime image in your Dockerfile.
To ensure that your final image is as minimal as possible, you should use a multi-stage build. All stages in your Dockerfile should use a hardened image. While intermediary stages will typically use images tagged as dev, your final runtime stage should use a non-dev image variant.
Install additional packages
Ghost hardened images contain minimal packages in order to reduce the potential attack surface. You may need to install additional packages in your Dockerfile. Inspect the image variants to identify which packages are already installed.
Only images tagged as dev typically have package managers. You should use a multi-stage Dockerfile to install the packages. Install the packages in the build stage that uses a dev image. Then, if needed, copy any necessary artifacts to the runtime stage that uses a non-dev image.
For Alpine-based images, you can use apk to install packages. For Debian-based images, you can use apt-get to install packages.
The hardened images intended for runtime don't contain a shell nor any tools for debugging. The recommended method for debugging applications built with Ghost hardened images is to use Docker Debug to attach to these containers. Docker Debug provides a shell, common debugging tools, and lets you install other tools in an ephemeral, writable layer that only exists during the debugging session.
By default image variants intended for runtime, run as the nonroot user. Ensure that necessary files and directories are accessible to the nonroot user. You may need to copy files to different directories or change permissions so your application running as the nonroot user can access them.
Non-dev hardened images run as a nonroot user by default. As a result, applications in these images can't bind to privileged ports (below 1024) when running in Kubernetes or in Docker Engine versions older than 20.10.
By default, image variants intended for runtime don't contain a shell. Use dev images in build stages to run shell commands and then copy any necessary artifacts into the runtime stage. In addition, use Docker Debug to debug containers with no shell.
Ghost hardened images may have different entry points than images such as Docker Official Images. Use docker inspect
to inspect entry points for Ghost hardened images and update your Dockerfile if necessary.